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Abstract

Methane is accompanied by most of the coal deposits. The methane hazard is excessive content of this gas in the mining excavations. This is a source of high risk security and continuity of the mine. The Piast–Ziemowit is the only non-methane mine in the Polish Mining Group. In 2015, 66,4% of the coal mined in Kompania Węglowa S.A. mines comes from methane coal seams. Methane drainage is the most effective but very costly method of combating methane hazard.The costs of prevention and eradication of methane hazard is charged to the costs of coal mining. Therefore, performance of methane drainage in the mines of the Polish Mining Group is adapted to the scale of the methane hazard. The article presents an analysis of the costs of prevention of methane hazard for mines with different absolute methane and its impact on the level of these costs.

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Authors and Affiliations

Halina Potoczek
Piotr Bojarski
Leszek Kloc
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Abstract

A proper description of ground motions generated by seismic and paraseismic events requires gathering data of six components of seismic waves. T hree of them, the so called translational waves, are well researched and identified. Unfortunately, until recently, the remaining three components named as rotational waves were generally estimated with the use of indirect methods based on theoretical calculations. T his was related mostly with the lack of proper instruments for the recording of rotational seismic waves. T hus, rotational waves were not fully recognized thus far. Recently, several types of advanced instruments for direct measurements of rotation were invented. Based on the measurements of strong ground motions it was indicated that the amplitude of the rotational components in close distances from the seismic source can be significantly larger than expected. Apart from this, there is still a lack of analyses considering the characteristic of rotational seismic waves generated by induced seismic events. In this paper, the results of preliminary measurements of rotational motions generated by induced seismic waves were presented. Ground movements related with mining tremors were analyzed in terms of amplitude, frequency and duration.

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Authors and Affiliations

Krzysztof Fuławka
Witold Pytel
Piotr Mertuszka
Eugeniusz Koziarz
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Abstract

The underground mining of coal deposits in the Upper Silesian Coal Basin (GZW) re-sults in an imbalance in the distribution of the stress in the rock mass, both in the immediate and distant surroundings of mining excavations. The occurrence of seismic tremors, among others, is the consequence of this process,. The intensities of seismic phenomena, which occur in several regions of the GZW (Bytomian Basin, Main Saddle, Main Basin, Kazimierzowska Basin, and the Jejkowice Basin) are very diverse, ranging from tremors unrecognizable by humans to strong tremors of the nature of weak earthquakes (Patyńska and Stec 2017). During the period of 15 years, i.e. from 2001 to 2015, the level of seismic activity changed and de-pended on both the intensity of the excavation work and the variability of the lithological and tectonic structures. On the other hand, the seismic activity analysis has shown that in recent years, despite a decrease in total output, seismic activity and rockburst hazard have increased. One of the rea-sons was the increase in mining output. Almost half of the output came from coal seams under the rockburst hazard. This resulted in an increase in the number of great energy tremors with the energy of 107, 108 and 109 J. It has been shown that the amount of energy tremors has a high impact on the level of the rockburst hazard. Between 2001 and 2015, as many as 20 rockburst were caused by seismic tremors above 107 J with 42 total phenomena (Patyńska 2002–2016). The purpose of characterizing the causes of this phenomenon was determined by the parameters characterizing the structure of the rock mass in places where the rockburst was recorded.

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Authors and Affiliations

Renata Patyńska
Krystyna Stec
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Abstract

The current rockburst hazard conditions in the copper mines are the consequence of mining-induced seismicity of the rock strata whilst the majority of registered rockbursts have been caused by high-energy seismic events. T he analysis of seismic activity in recent years indicates that the region of the Rudna mine is the region of the highest seismic activity. This paper is an attempt at evaluating the seismicity levels in the Rudna mine in the period from 2006-2015, within the entire mine and in its particular sections. Key parameters of seismic activity include the number of registered seismic events, total energy emission levels, and a unit energy factor. The variability of Gutenberg -Richter (GR) parameters are analyzed and the epicenters’ locations are investigated with respect to the stope position. T he distinction is made between low-energy (103 ≤ As < 105 J) and high-energy (As ≥ 105J) seismic events ahead of the stope, in the opening-up cross-throughs and in the gob areas. It appears that the risk level of a high-energy event occurrence in the R udna mine has not changed in recent years and has remained on a high level whilst the differences in seismic activity, in particular mine sections, are attributed to the varied extraction height and varied thickness of rockburst-prone carbonate layers in the roof of the copper ore deposit. The analysis of the epicenters’ locations with respect to the stope reveals that no matter what the seismic energy levels, the largest number of rockbursts are registered in the opening-up cross-through zone. Low-energy tremors are mostly located in the gob areas, high-energy events occur mostly ahead of the stope. T hus, the evaluation of the seismicity conditions in the Rudna mine seems to positively verify the relationship between the number of registered events and the levels of generated seismic energy, taking the local geological and mining conditions and the specificity of the room and pillar mining method into account.

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Authors and Affiliations

Zbigniew Burtan
Dariusz Chlebowski
Jerzy Cieślik
Andrzej Zorychta
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Abstract

Mining-induced seismicity, particularly high-energy seismic events, is a major factor giving rise to dynamic phenomena within the rock strata. Rockbursts and stress relief events produce the most serious consequences in underground mines, are most difficult to predict and tend to interact with other mining hazards, thus making control measures difficult to implement. In the context of steadily increasing mining depth within copper mines in the Legnica-Głogów Copper Belt Area (Poland) alongside the gradually decreasing effective mining thickness, a study of the causes and specificity of mining-induced seismicity in specific geological and mining settings may improve the effectiveness of the prevention and control measures taken to limit the negative impacts of rockbursts in underground mine workings, thus ensuring safe working conditions for miners. This study investigates the presumed relationship between the mined ore deposit thickness and fundamental parameters of mining-induced seismicity, with the main focus on the actual locations of their epicenters with respect to the working face in commonly used room-and-pillar systems. Data recalled in this study was supplied by the O/ZG Rudna geophysics station. Based on information about the actual ore deposit thickness in particular sections of the mines (Rudna Główna, Rudna Północna, Rudna Zachodnia) and recent reports on seismic activity in this area, three panels were selected for further studies (each in different mine region), where the ore deposit thickness was varied (panel G-7/5 – Rudna Główna, panel XX/1 – Rudna Północna, panel XIX/1 – Rudna Zachodnia). Data from seismic activity reports in those regions was used for energetic and quantitative analysis of seismic events in the context of the epicenter location with respect to the selected mining system components: undisturbed strata, working face and abandoned excavations. In consideration of the available rockburst control methods and preventive measures, all events (above 1 × 103 J) registered in the database were analysed to infer about the global rockburst hazard level in the panel and phenomena induced (provoked) by blasting were considered in order to evaluate the effectiveness of the implemented control measures.

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Authors and Affiliations

Dariusz Chlebowski
Marek Świeżowski
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Abstract

As a preliminary point, four longwalls, where inertisation of goafs using nitrogen was applied, have been characterised. Next, the issue concerning the unreliable Graham’s ratio values, which occur in certain ranges of its denominator value, were discussed. The reliability criterion of this indicator was also quoted. Afterwards, a basic statistical sample consisting of the results of chromatographic analyses of air samples taken from longwalls areas, where nitrogen inertisation was not applied and were classified by Graham’s ratio as samples safe from endogenous fire hazard was described. Then, the results of comparative analyses of the base sample with the concentrations of gases contained in air samples taken from the areas of the previously described four longwalls, which according to Graham’s ratio, were also safe from the endogenous fire were presented. Comparative analyses were performed before and after applying Graham’s ratio reliability criterion.
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Bibliography

[1] S. Bajic, S. Muller, M. Gido, Oxygen deficiency in Graham’s Ratio evaluation. Proceedings of Coal Operators’ Conference, University of Wollongong, 314-320 (2020).
[2] D. Brady, The influence analytical techniques and uncertainties in measurement have on the assessment of underground coal mine atmospheres. Proceedings of the Queensland Mining Industry Health and Safety Conference, 1-11 (2007).
[3] D. Brady, Problems with Determining Oxygen Deficiencies in Ratios Used for Assessing Spontaneous Combustion Activity. Aziz Coal Operators’ Conference, 209-216 (2008).
[4] D. Cliff, The ability of current gas monitoring techniques to adequately detect spontaneous combustion. Brisbane Coal Conference, 26-28 (2005).
[5] J. Cygankiewicz, Ocena rozwoju ognisk samozagrzewania na podstawie precyzyjnej analizy chemicznej prób powietrza kopalnianego. Prace Naukowe Głównego Instytutu Górnictwa 14, 505-513 (1996).
[6] A . Luszniewicz, T. Słaby, Statystyka z pakietem komputerowym STATISTICA PL. Teoria i zastosowania. Wydawnictwo C.H. Beck (2008).
[7] P . Mackenzie-Wood, J. Strang, Fire gases and their interpretation. The Mining Engineer (1990).
[8] D.W. Mitchell, Mine Fires: Prevention Detection and Fighting. Third Edition, 82-83 (1996).
[9] R . Moraru, G. Babut, Oxygen deficiencies interpretation for use in ratios assessing spontaneous combustion activity. Revista Minerol 3 (2010).
[10] S . Muller, L. Ryan, J. Hollyer, S. Bajic, Review of oxygen deficiency requirements for Graham’s ratio. Proceedings of the 17th Coal Operators’ Conference, University of Wollongong, 382-390 (2017).
[11] S .K. Ray, R.P. Singh, N. Sahay, N.K. Varma, Assessing the status of sealed fire in underground coal mines. Journal of Scientific & Industrial Research 63, 579-591 (2003).
[12] Rozporządzenie Ministra Energii z dnia 23 listopada 2016 r. w sprawie szczegółowych wymagań dotyczących prowadzenia ruchu podziemnych zakładów górniczych.
[13] S . Słowik, L. Świerczek, Ujemne i zawyżone wartości wskaźnika Grahama. Przegląd Górniczy 12, 98-105 (2014).
[14] S . Słowik, L. Świerczek, Przedział wiarygodności wskaźnika Grahama. Przegląd Górniczy 12, 49-61 (2015).
[15] N . Szlązak, K. Piergies, Inertyzacja zrobów ścian zawałowych. Systemy wspomagania w inżynierii produkcji. Górnictwo – perspektywy i zagrożenia 7 (2018).
[16] S . Trenczek, Ocena stanu zagrożenia pożarem endogenicznym, na podstawie temperatury zrobów wyznaczonej metodą gazów istotnych. Zeszyty Naukowe Politechniki Śląskiej, seria Górnictwo 258, 363-375 (2003).
[17] S. Trenczek, Ocena zagrożenia pożarami endogenicznymi pokładów węgla kamiennego i sposoby jego zapobiegania. Wydawnictwo Politechniki Śląskiej (2010).
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Authors and Affiliations

Lucjan Świerczek
1
ORCID: ORCID

  1. Central Mining Institute, Department of Mining Aerology, 1 Gwarków Sq., 40-166 Katowice, Poland
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Abstract

The authors of the paper describe the way in which the longitudinal working Gussmann was mined in level V and the longitudinal working Kosocice in level VI, which in both cases resulted in a water flux from behind the northern boundary of the salt deposit. Only after concrete dams were seated on both levels, the brine flux was stopped leaving a direct contact of the dams with the pressurized water around the mine. For the sake of controlling water beyond the dams, steel pipelines were conducted through both dams and equipped with gauges before the dams. Their use in a saline environment, the developing corrosion increased the possibility that the tightness of the pipelines would be damaged. For this reason a decision was made to protect the mine by making a tight reconstruction of the safety pillar in both levels along the longitudinal working for about 600 m from the dams eastwards. For this purpose the pipeline injection method was applied. As the volume of voids to be tightly filled equaled to about 3800 m3, the task had to be divided into stages. Because of considerable distances of the liquidated workings from the closest shaft, the sealing slurries were prepared in a special injection center on the surface from where they were transported to the destination with a pumping pipeline through the Kościuszko shaft. The most important aspect of liquidating the end parts of the longitudinal working was to properly select the sealing slurries in view of their best cooperation with the rock mass, and such parameters as tightness, durability and cost. At the end stage of works, both longitudinal workings were equipped with dams, which were sealed up with the hole injection method. The innovative technology was implemented in the Wieliczka Salt Mine to reconstruct the safety pillar in levels VI and V in the most westward workings, the mine was shortened by about 600 m, the length of the ventilation system was reduced, systematic observations and pressure read-outs in dams 3 and 4 were systematically eliminated in dams 3 and 4. In this way the costs were lowered and safety of the mine improved.
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Bibliography

1] M. Cała, A. Stopkowicz, M. Kowalski, M. Blajer, K. Cyran, K. d’Obyrn, Stability analysis of underground mining openings with complex geometry. Studia Geotechnica et Mechanica 38, 1, 25-32 (2016).
[2] K . d’Obyrn, K. Brudnik, Results of hydrogeological monitoring in ‘Wieliczka’ Salt Mine after closing water inflow in transverse working Mina, level IV (Wyniki monitoringu hydrogeologicznego w Kopalni Soli „Wieliczka” po zamknięciu dopływu wody w poprzeczni Mina na poz. IV). Mining Review (Przegląd Górniczy) 6, 90-96 (2011).
[3[ K . d’Obyrn, Possible way of protecting Jakubowice chambers in ‘Wieliczka’ Salt Mine (Możliwości zabezpieczenia komór Jakubowice w Kopalni Soli „Wieliczka”). Mining and Geoengineering (Górnictwo i Geoinżynieria), Yearly 35, 2, 171-182 (2011).
[4] D . Flisiak, K. Cyran, Geomechanical parameters of miocene rock salt (Właściwości geomechaniczne mioceńskich soli kamiennych). Geological Bulletin of the Polish Geological Institute (Biuletyn Państwowego Instytutu Geologicznego) 429, 43-49 (2008).
[5] A . Garlicki, A. Gonet, S. Stryczek, Reinforcement of saline rock mass on the example of the salt mine Wieliczka. Proc. of the 2001 ISRM Intern. Symposium Frontiers of Rock Mechanics and Sustainable Development in the 21st Centry Beijing, China., A.A. Balkema Publishers, 581-583 (2001).
[6] A . Garlicki, Z. Wilk, Geological and hydrogeological background of water breakdown at level IV in ‘Wieliczka’ Salt Mine (Geologiczne i hydrogeologiczne tło awarii wodnej na poziomie IV kopalni soli Wieliczka). Geological Review (Przegląd Geologiczny) 41, 3, 183-192 (1993).
[7] A . Gonet, S. Stryczek et al., Patent PL 170267 of 29.11.1996. Method of filling empty voids in the rock mass (Sposób wypełniania pustych przestrzeni górotworu).
[8] A . Gonet, S. Stryczek, A. Garlicki, W. Brylicki, Protection of Salt Mines against Water Inflow Threat on the Example of Wieliczka Salt Mine. 8th World Symposium Hague, Elsevier 1, 363-368 (2000).
[9] S. Stryczek et al., Patent PL 171213 of 28.03.1997. Mixture for filling and sealing empty spaces in the rock mass (Mieszanina do wypełniania i uszczelniania pustych przestrzeni górotworu).
[10] S. Stryczek, A. Gonet, Selection of slurries for reinforcing saline rock mass (Dobór zaczynów do wzmacniania górotworu solnego). Conference proceedings ‘Restoring usability value to mining areas. Old mines – new perspectives’ (Materiały konferencyjne pt. Przywracanie wartości użytkowych terenom górniczym. Stare kopalnie – nowe perspektywy), PAN -IGSMiE, Kraków, 327-335 (2001).
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Authors and Affiliations

Andrzej Gonet
1
ORCID: ORCID
Stanisław Antoni Stryczek
1
ORCID: ORCID

  1. AGH University of Science and Technology, Faculty of Drilling, Oil and Gas, Al. A. Mickiewicza 30, 30-059 Krakow, Poland
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Abstract

The introduction of the article presents the problem of interpreting the level of fire hazard basing on Graham’s ratio, which, in certain ranges of the value of its denominator, may be wrong. The range of credibility for the index is also discussed. The issue of nitrogen inertisation and its influence on the value of the discussed index is also addressed. To determine the influence, two statistical samples were set. They consisted of the results of precise chromatographic analyses of the air samples collected in the longwall areas which were not subjected to inertisation and in the areas where nitrogen was applied as the inert gas. Then, with Student’s t-test, there was conducted a comparative analysis of both groups with regard to the equality of the average concentrations of gases emitted in the coal self-heating process. At the end, there were developed criteria for the application of Graham’s ratio for the air samples of the increased content of nitrogen, which, according to the discussed index, did not indicate the occurrence of an endogenous fire hazard.

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Authors and Affiliations

Lucjan Świerczek
ORCID: ORCID
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Abstract

Solidification/Stabilization (S/S) method with cement as a binder to remediate metals in petroleum sludge has been successfully proven. However, this technique has not yet been explored to remediate organic contaminants since a high concentration of Total Petroleum Hydrocarbon (TPH) was also detected in the sludge. This study focuses on remediating 16 Polycyclic Aromatic Hydrocarbons (PAHs) compounds in raw petroleum sludge with Portland cement as a binder using the S/S method. The initial concentration of 16 PAHs in the raw sludge was first measured before the performance of the S/S method to remediate the PAHs were evaluated. The S/S matrices were tested for leaching behavior and strength after 7 and 28 days by air curing. The leaching test was measured using the Toxicity Characteristics Leaching Procedure (TCLP), and the remaining PAHs concentration in the matrices was analyzed using a Gas Chromatography-Mass Spectrometer (GC-MS). In the raw sludge, all 16 PAHs compounds were below the standard limit except for Benzo(a)anthracene, Benzo(a)pyrene, Dibenzo(ah)anthracene, and Indeno(1,2,3- cd_ pyrene), which are considered as high rings PAHs. The high rings PAHs show lower concentration in leachate than low rings PAHs, which indicates the potential of the S/S method in remediating high rings PAHs. The high sludge ratio in S/S matrices has shown that the percentage strength is increasing, similar to Portland cement. Therefore, this study contributed to the possibility of the S/S method in the remediation of PAHs in petroleum sludge by using only Portland cement as a binder.
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Authors and Affiliations

Noor Faiza Roslee
1
ORCID: ORCID
Nor Amani Filzah Mohd Kamil
1
ORCID: ORCID
Aeslina Abdul Kadir
2
ORCID: ORCID
Abdul Rahim Jalil
3
ORCID: ORCID
Nurhidayah Hamzah
4
ORCID: ORCID
Norazian Mohamed Noor
5
ORCID: ORCID
Andrei Victor Sandu
6
ORCID: ORCID

  1. Universiti Tun Hussien Onn Malaysia, Faculty of Civil Engineering and Built Environment, Batu Pahat, Johor, Malaysia
  2. Universiti Tun Hussien Onn Malaysia, Micro Pollutant Research Centre, Batu Pahat, Johor, Malaysia
  3. Pengerang Refining Company Sdn. Bhd. 81600 Pengerang, Johor Malaysia
  4. Universiti Teknologi MARA Department of Water Resource and Environmental System, 40450, Selangor, Malaysia
  5. Universiti Malaysia Perlis (UniMAP), Faculty of Civil Engineering Technology, 01000 Perlis Malaysia
  6. "Gheorghe Asachi” Technical University, Faculty of Materials Science and Engineering, 700050 lasi, Romania
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Abstract

There are about 8.5 million workers employed in the construction sector in India. Construction workers constitute a major portion of the unorganized labour and are characterized by their casual nature of employment, temporary relationship with the employer, prolonged and uncertain working hours, lack of safety and health measures, and inadequacy of basic amenities and welfare facilities. There are many legislation clauses providing safeguards for contract workers in India. Construction safety has been made legally enforceable after the enactment of The Building and Other Construction Workers (Regulation of Employment and Conditions of Service) Act in 1996 and the Central Rules in 1998. This paper details various statutory provisions for construction safety in India with specific reference to the BOCW Act, Central Rules, and State Rules.

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Authors and Affiliations

P. Sivaprakash
S. Kanchana
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Abstract

The construction industry in India is the country’s second largest industrial sector, after agriculture. The construction industry makes a remarkable contribution to the Indian economy and provides employment to a large number of people of Idia. Fire is a chemical reaction of a combustible substance with oxygen, involving heat and is usually accompanied by a visual flame or incandescence. Ensuring fire safety has always been a challenge to the stakeholders, i.e. building owners, construction companies, contractors and sub-contractors, and government employees due to the multiplicity of the factors involved and their complexity. There are various legal standards and requirements for ensuring fire safety on construction sites. The buildings are normally provided with firewalls during construction and these firewalls separate two structures or divide a structure into smaller portions to prevent the spread of fire. The lightweight construction and trusses are designed to support only their own weight. During a fire, if one fails, a domino effect happens and all fail rapidly within 5 to 10 minutes. Prolonged exposure to fire may result in structural collapse and injury or death of the occupants of the building under construction. Fire safety on construction sites is still in its primitive stages in India. There is a great necessity to improve fire safety on construction sites to protect construction workers and other occupants of the buildings. This study aims to design and implement fire safety systems for construction sites, thereby enhancing the standards to meet the system requirements at par with global standards.

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Authors and Affiliations

C. Sivakumar
R. Malathy
P. Sivaprakash
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Abstract

This document provides a simplified solution to the problem of calculation of laser hazard distances defined in the Advisory Circular 70-1B by the U.S. Federal Aviation Administration regarding atmospheric attenuation (assuming its constant value) and measurement uncertainties. The calculation approaches and examples presented in this document do not specify the procedure that should be followed in the case of atmospheric attenuation, nor do they take into account the uncertainties associated with the measured parameters. The analysis presented in the article complements to some extent AC 70-1B and can be used by those who need such a simplified solution regarding illumination of landing or taking off aircrafts. The article presents a sample analysis for a typical laser pointer, where the necessary parameters of the laser beam along with the appropriate uncertainties were determined in accordance with the methods accredited by the Polish Centre for Accreditation while the appropriate laser hazard distances were calculated taking into account different atmospheric attenuation coefficients.
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Authors and Affiliations

Jarosław Młyńczak
1

  1. Military University of Technology, Institute of Optoelectronics, Gen. S. Kaliskiego 2, 00-908 Warszawa, Poland
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Abstract

This paper considers modern production technologies of solid biofuels from the point of view of compliance with labor protection and environmental safety measures. The relevance of the study lies in the fact that environmental safety, in our opinion, supported by the results of the analysis of literature sources and their research, covers almost all residential areas of the community. The purpose of this scientific research is to develop theoretical foundations and practical management solutions to ensure environmental safety when producing solid biofuels. Thematic works of domestic and foreign specialists form the theoretical and methodological basis of the research. The following methods of scientific research were used as objective methods: logical analysis of knowledge, scientific generalization, deduction and analogies. The practical significance of the obtained results lies in the application of established models and emergency situations as well as environmental safety in practice. An environmental safety system was developed that regulates the state in its natural conditions based on established production control models for solid biofuels. The article presents recommendations for students of higher educational institutions (technical areas) to study materials on labor protection and the environmental safety of our time.
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Authors and Affiliations

Larysa E. Piskunova
1
ORCID: ORCID
Oleksandr I. Yeremenko
1
ORCID: ORCID
Tetiana O. Zubok
1
ORCID: ORCID
Hanna A. Serbeniuk
1
ORCID: ORCID
Zoia V. Korzh
1
ORCID: ORCID

  1. National University of Life and Environmental Sciences of Ukraine, Ukraine
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Abstract

Subnetwork with two nodes shared with entire ventilation network can be separated as its part. For the network under common ventilation conditions, one of these nodes will become the subnetwork starting node, while the other will be the subnetwork end node. According to the graphs theory, such a piece of the network can be considered as a subgraph of the graph representing the entire ventilation network. A special feature of that subgraph is lack of predecessors of the subnetwork starting node and lack of successors of the subnetwork end node. Ventilation district of a mine may be often treated as a subnetwork. Vicinity is a part of the network which is not separated as subnetwork. In the case of a ventilation district its vicinity forces air flow through the district. The alternative characteristic curve of the vicinity can therefore be compared to the characteristics curve of a fictional fan that forces the airflow in the district.

The alternative characteristics (later in the text: the characteristics) of the vicinity of the ventilation district in an underground mine strongly influence air quantity and therefore play a crucial role in the reduction of methane, fire and thermal hazards. The role of these characteristics and proper selection of their approximating function were presented in the article.

The reduction of resistance of an intake stopping (having influence on entire resistance of a ventilation district) produces increased airflow in the district. This changes of airflow in the district caused by a variation in internal resistance (e.g. by opening an internal regulation stopping) depends on the characteristic of the vicinity of the district. Proper selection of its approximating function is also important for this matter.

The methods of determination of the alternative characteristic curve of the district vicinity are presented. From these procedures it was possible to obtain the results of air quantities and differences in isentropic potentials between an inlet and an outlet to/from the ventilation district. Following this, the characteristics were determined by graphic and analytic methods. It was proved that, in contrast to flat vicinity characteristics, steep ones have a smaller influence on the airflow modification in the district (which are caused by a regulation of the district resistance). The characteristic curve of the vicinity determines the ability to regulate air quantity and velocity in the district.

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Authors and Affiliations

Grzegorz Pach
ORCID: ORCID
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Abstract

The occurrence of faults in coal seams has an impact on the possibility of methane hazard. There are several methods for identifying tectonic faults, but they cannot be applied directly to solve dynamic hazard problems in coal mine. Thus, searching for appropriate methods, that can detect faults in regional and local scales is needed. In order to meet this need, the paper proposes a new measurement method of estimating changes to the coal structure, based on profilometry measurements (roughness analysis) and application of madogram functions. Based on examining coal samples from near fault zones it was shown that the proposed approach allows us to detect changes of the coal surface that appear as the distance to a tectonic fault gets shorter. The proposed method, due to its simplicity and speed of measurement, implies a potential for practical application in the process of detecting local tectonic dislocations in coal mines.
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Authors and Affiliations

Mariusz Młynarczuk
1
ORCID: ORCID
Marta Skiba
1
ORCID: ORCID

  1. AGH University of Science and Technology, Faculty of Geology, Geophysics and Environmental Protection, al. Mickiewicza 30, 30-059 Krakow, Poland
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Abstract

Mercury is ranked third on the Substance Priority List, an index of substances determined to pose the most significant potential threat to human health compiled by the Agency for Toxic Substances and Disease Registry. This element is activated with the extraction of hard coal and accumulated in the natural environment or re-emitted from the waste deposited on dumping grounds. So far, studies on mercury content have focused on the analysis of the dumps surface and the adjacent areas. In this paper, the detection of mercury content inside mining waste dumping grounds was analysed. The recognition of mercury content in the profile of the mining waste dump is important in terms of the dismantling of the facility. The dismantling may pose a risk of environmental pollution with mercury due to the possibility of increased fire risk, re-emission, and the transfer of xenobiotics to another place. In this paper, the study of mercury content in the mining waste dump profile was presented. The research demonstrated that there is no significant relationship between the mercury content and the sampling depth. The mercury content in the mining waste was determined based on the rank and origin of hard coal only. Therefore, intensive efforts should be undertaken to identify the environmental hazards arising from the dismantling of mining waste dumps and to adopt measures to prevent these hazards.
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Bibliography

[1] S.A. Musstjab, A.K. Bhowmik, S. Qamar, S.T. Abbas Shah, M. Sohail, S.I. Mulla, M. Fasola, H. Shen, Mercury contamination in deposited dust and its bioaccumulation patterns throughout Pakistan. Sci. Total Environ. 569-570, 585-593 (2016).
[2] X. Wang, Z. He, H. Luo, M. Zhang, D. Zhang, X. Pan, G.M. Gadd, Multiple-pathway remediation of mercury contamination by a versatile selenite-reducing bacterium. Sci. Total Environ. 615 (15), 615-623 (2018).
[3] K . Halbach, Ø. Mikkelsen, T. Berg, E. Steinnes, The presence of mercury and other trace metals in surface soils in the Norwegian Arctic. Chemosphere 188, 567-574 (2017).
[4] D . Yu, H. Duan, Q. Song, X. Li, H. Zhang, H. Zhang, Y. Liu, W. Shen, J. Wang, Characterizing the environmental impact of metals in construction and demolition waste. Environ. Sci. Pollut. Res. 25, 13823-13832 (2018).
[5] J. Yang, M. Takaoka, A. Sano, A. Matsuyama, R. Yanase, Vertical distribution of total mercury and mercury methylation in a landfill site in Japan. Int. J. Environ. Res. Public Health 15 (6), 1252 (2018).
[6] K . Gogola, T. Rogala, M. Magdziarczyk, A. Smolinski, The mechanisms of endogenous fires occurring in extractive waste dumping facilities, Sustainability 12, 2856 (2020). DOI: https://doi.org/10.3390/su12072856
[7] D . Raj, A. Chowdhury, S.K. Maiti, Ecological risk assessment of mercury and other heavy metals in soils of coal mining area: A case study from the eastern part of a Jharia coal field, India. Hum. Ecol. Risk Assess. 23, 767-787 (2017).
[8] R . Fernández-Martínez, J.M. Esbrí, P. Higueras, I. Rucandio, Comparison of mercury distribution and mobility in soils affected by anthropogenic pollution around chloralkali plants and ancient mining sites. Sci. Total Environ. 671, 1066-1076 (2019).
[9] A. González-Martínez, M. de Simón-Martín, R. López, R. Táboas-Fernández, A. Bernardo-Sánchez, Remediation of potential toxic elements from wastes and soils: analysis and energy prospects. Sustainability 11, 3307 (2019). DOI: https://doi.org/10.3390/su11123307
[10] U nited Nations Environment Programme, 2013. Global Mercury Assessment, Sources, emissions, releases and environmental transport. Accessed: January 6, 2016 at: http://www.unep.org/PDF/PressReleases/GlobalMercuryAssessment2013.pdf.
[11] N . Howaniec, A. Smolinski, Biowaste utilization in the process of co-gasification with bituminous coal and lignite. Energy 118, 18-23 (2017).
[12] P. Krawczyk, N. Howaniec, A. Smolinski, Economic efficiency analysis of substitute natural gas (SNG) production in steam gasification of coal with the utilization of HTR excess heat. Energy 114, 1207-1213 (2016).
[13] A. Smolinski, N. Howaniec, Analysis of porous structure parameters of biomass chars versus bituminous coal and lignite carbonized at high pressure and temperature – chemometric study. Energies 10, 1457 (2017). DOI: https://doi.org/10.3390/en10101457
[14] J. Zdeb, N. Howaniec, A. Smolinski, Utilization of carbon dioxide in coal gasification – an experimental study. Energies 12, 140 (2019). DOI: https://doi.org/10.3390/en12010140
[15] M. Sexauer, M. Gustin, M. Coolbaugh, B. Engle, R. Fitzgerald, S. Keislar, D. Lindberg, J. Nacht, J. Quashnick, C. Rytuba, H. Sladek, R. Zhang, R. Zehner, Atmospheric mercury emissions from mine wastes and surrounding geologically enriched terrains. Environ. Geol. 43, 339-351 (2003).
[16] F. Steenhuisen, S.J. Wilson, Development and application of an updated geospatial distribution model for gridding 2015 global mercury emissions. Atmosph. Environ. 211, 138-150 (2019).
[17] A. Michalska, B. Bialecka, A. Bauerek, The hazard of mercury contamination of the environment resulting from the disposal of mining waste. Science and technologies in geology, exploration and mining, Conference Proceedings 3, (2015). ISBN 978-619-7105-33-9 / ISSN 1314-2704. DOI: https://doi.org/10.5593/sgem2015B13
[18] T . Antoszczyszyn, A. Michalska, The potential risk of environmental contamination by mercury contained in coal mining waste. Journal of Sustainable Mining 15, 191-196 (2017).
[19] P. Rompalski, A. Smolinski, H. Krzton, J. Gazdowicz, N. Howaniec, L. Róg, Determination of mercury content in hard coal and fly ash using X-ray diffraction and scanning electron microscopy coupled with chemical analysis. Arab. J. Chem. 12 (8), 3927-3942 (2019).
[20] B.G. Miller, Clean Coal Engineering Technology, Butterworth-Heinemann (2017). ISBN 978-0-12-811365-3.
[21] X. Bai, W. Li, Y. Wang, H. Ding, The distribution and occurrence of mercury in Chinese coals. Int. J. Coal Sci. Technol. 4, 172-182 (2017).
[22] G . Ozbayoglu, Removal of hazardous air pollutants based on commercial coal preparation data. Physicochem. Probl. Miner Process. 49 (2), 621-629 (2013).
[23] H .N. Dougherty, A.P. Schissler, SME Mining Reference Handbook, second ed. Society for Mining, Metallurgy & Exploration (2020). ISBN 978-0-87335-435-6.
[24] J.E. Gray, P.M. Theodorakos, D.L. Fey, D.P. Krabbenhoft, Mercury concentrations and distribution in soil, water, mine waste leachates, and air in and around mercury mines in the Big Bend region, Texas, USA, Environ. Geochem. Health 37, 35-48 (2015).
[25] T .B. Das, S.K. Pal, T. Gouricharan, K.K. Sharma, A. Choudhury, Evaluation of reduction potential of selected heavy metals from Indian coal by conventional coal cleaning. Int. J. Coal Prep. Util. 33, 300-312 (2013).
[26] T . Dziok, A. Strugala, A. Rozwadowski, M. Macherzynski, S. Ziomber, Mercury in the waste coming from hard coal processing. Gospodarka Surowcami Mineralnymi 31 (1), 107-122 (2015).
[27] B. Klojzy-Karczmarczyk, J. Mazurek, Mercury in soils surrounded by selected dumps of coal mining waste. Energy Policy 13 (2), 245-252 (2010).
[28] B. Klojzy-Karczmarczyk, J. Mazurek, Soil contamination with mercury compounds within the range of a conventional coal-fired power plant. Energy Policy 10 (2), 593-601 (2007).
[29] Ministry of Environment. Regulation of the Minister of the Environment of September 9, 2002 on soil quality standards and land quality standards. Journal of Laws 165, 2002, item 1359.
[30] Mining Waste Act. Mining Waste Act (Journal of Laws No. 138 of 2008, 2008, item 865).
[31] Waste Act, 2016. The Waste Act. Journal of Laws of 2016, 2016, item 1987.
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Authors and Affiliations

Anna Michalska
1
ORCID: ORCID
Adam Smoliński
1
ORCID: ORCID
Aleksandra Koteras
1
ORCID: ORCID

  1. Central Mining Institute (GIG), 1 Gwarków Sq., 40-166 Katowice, Poland
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Abstract

There are approx. 250 coal waste dumping grounds in Poland, yet there are countries in which this number is even higher. One of the largest sites for depositing mining and power plant waste in the Upper Silesian Coal Basin is the Przezchlebie dumping ground. In the article, it is considered as a secondary deposit of raw materials. An assessment of mining waste collected on the Przezchlebie dumping ground was carried out in terms of its impact on the environment and the possibility of its use. Mining waste samples were tested to determine their chemical composition. Physicochemical properties and chemical compositions of water extracts obtained from the investigated waste and groundwater in the vicinity of the dumping ground were analyzed. Due to the fire hazard resulting from the natural oxidation process of chiefly carbonaceous matter and pyrite, the thermal condition of the dumping ground was assessed. The results of the obtained tests confirmed the slight impact of mining waste deposited on the Przezchlebie dumping ground on the environment. The chemical composition, low radioactive activity of waste itself and the results of water extract tests referred to the permissible values according to the Polish Journal of Laws allow for multi-directional waste management. Due to the significant carbon content, the risk of self-ignition poses a significant threat on the dumping ground. Re-mining of the dumping ground and the recovery of raw materials, including coal contained in waste, will eliminate the risk of fire, allowing for a wider use of waste and, at the same time, will allow for other benefits, e.g. in the form of financial resources and the possibility of managing the dumping ground area.

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Authors and Affiliations

Zenon Różański
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Abstract

A large amount of solid and liquid wastes produced by mines and mills each year needs to be managed and minimized by alternative disposal methods like paste and dry stack. Increasingly strict environmental legislation and cost competitiveness also dictate the utilization of technically suitable, economically viable, environmentally acceptable, and socially responsible techniques. This paper reviews some of these techniques that could potentially reduce large volumes of mine wastes (with a focus on mine tailings and waste rocks) without causing significant environmental hazards. The new emerging techniques such as environmental desulphurization, covers built with sulphide-free tailings, co-disposal of tailings and waste rocks, geotextile tube dewatering, and use of tailings in the cement production and road construction for both industrial and environmental purposes are discussed in terms of waste minimization. The existing methods and approaches for efficient waste treatment and disposal are also discussed in this review paper.

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Authors and Affiliations

Erol Yilmaz
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Abstract

The mining in seams with a high methane content by means of a longwall system, under conditions of high extraction concentration, results in exceeding methane concentrations allowed by the regulations at workings of the longwall environment, with the effect of mining machines’ standstill periods. The paper is a part of a study supporting the development of a system for shearing cutting speed control at the longwall, which should substantially reduce the production standstills due to exceeded limits and switching off the supply of electric equipment. Such a control system may be appropriate for longwalls ventilated using “Y” and “short Y” methods. Efficient Computer simulations of the 3D airflow and methane propagation may assist the design and initial evaluation of the control system performance. First chapters present studies that are necessary for a proper formulation of the properties of the longwall model. Synthetic analysis of production during the period of longwall operation allowed one to choose the input assumptions to carry out ventilation-methane computations in a CFD numerical model of longwall Z-11. This study is followed by a description of the model that is used for a case study, considering three variants of the shearer position. Finally, initial simulation results and directions of further studies are discussed.
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Bibliography

[1] S. Prusek, E. Krause, J. Skiba, Designing coal panels in the conditions of associated methane and spontaneous fire hazards 30 ( 4), 525-531 (2020). DOI: https://doi.org/10.1016/j.ijmst.2020.05.015
[2] W. Dziurzyński, A. Krach, T. Pałka, Shearer control algorithm and identification of control parameters. Arch. Min. Sci. 63 (3), 537-552 (2018).
[3] W. Dziurzyński, A. Krach, J. Krawczyk, T. Pałka, Numerical Simulation of Shearer Operation in a Longwall District. Numerical Simulation of Shearer Operation in a Longwall District. Energies 13, 5559 (2020). DOI: https://doi.org/10.3390/en13215559
[4] E. Krause, A. Przystolik, B. Jura, Warunki bezpieczeństwa wentylacyjno-metanowego w ścianach o wysokiej koncentracji wydobycia. XXI Międzynarodowa Konferencja Naukowo-techniczna Górnicze Zagrożenia Naturalne. 6-8.11.2019 r., Jawor k. Bielska Białej.
[5] A. Walentek, T. Janoszek, S. Prusek, A. Wrana, Influence of longwall gateroad convergence on the process of mine ventilation network-model tests. International Journal of Mining Science and Technology 29, (4), 585-590 (2019).
[6] A. Juganda, J. Brune, G. Bogin, J. Grubb, S. Lolon, CFD modeling of longwall tailgate ventilation conditions. In: Proceedings of the 16th North American mine ventilation. Golden, CO; 2017.
[7] E. Krause, Z. Lubosik, Wpływ koncentracji wydobycia podczas eksploatacji pokładów silnie metanowych na wydzielanie się metanu do środowiska ścian. 9th International Symposium on Occupational Heat and Safety Petrosani Rumunia. October 3rd 2019 r.
[8] E. Krause, J. Skiba, B. Jura, Overview of Ventilation Characteristic, Practices and regulations in Poland. XXVIII Szkoła Eksploatacji Podziemnej, Kraków, 25-27.02.2019 r. https://unece.org/fileadmin/DAM/energy/images/CMM/CMM_CE/12._Krause_Skiba_Jura.pdf
[9] E. Krause, B. Jura, J. Skiba, Mining speed control in the coal panel with high coal output concentration. Kontrola prędkości urabiania w ścianach o wysokiej koncentracji wydobycia. Spotkanie Grupy Roboczej Ekspertów ds. metanu z kopalń Europejskiej Komisji Gospodarczej ONZ. Genewa 7-8.11.2019 r.
[10] J. Qin, Q. Qingdong, H. Guo, CFD simulations for longwall gas drainage design optimization. International Journal of Mining Science and Technology 27 (5), 777-782 (2017). DOI: https://doi.org/10.1016/j.ijmst.2017.07.012
[11] E. Krause, Ocena i zwalczanie zagrożenia metanowego w kopalniach węgla kamiennego. Prace Naukowe GIG nr 878. Katowice 2009.
[12] K .M. Tanguturi, R.S. Balusu, Computational fluid dynamics simulations for investigation of parameters affecting goaf gas distribution. Journal of Mining and Environment 9, 3, 547-557 (2018). DOI: https://doi.org/10.22044/jme.2018.5960.1410
[13] G . Xu, K.D. Luxbacher, S. Ragab, J. Xu, X. Ding, Computational fluid dynamics applied to mining engineering: a review. International Journal of Mining, Reclamation and Environment 31 (4), 251-275 (2017).
[14] Z . Wang, T. Ren, L. Ma, J. Zhang, Investigations of ventilation airflow characteristics on a longwall face – a computational approach. Energies 11, 1564 (2018). DOI: https://doi.org/10.3390/en11061564
[15] Z . Wang, T. Ren, Y. Cheng, Numerical investigations of methane flow characteristics on a longwall face Part I: Methane emission and base model results, Journal of Natural Gas Science and Engineering 43, 242-253 (2017).
[16] Z . Wang, T. Ren, Y. Cheng, Numerical investigations of methane flow characteristics on a longwall face Part II: Parametric studies. Journal of Natural Gas Science and Engineering 43, 242-253 (2017).
[17] SolidWorks Flow Simulation 2012 Technical Reference. https://d2t1xqejof9utc.cloudfront.net/files/18565/SW_CFD_technical_reference.pdf?1361897013
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Authors and Affiliations

Tomasz Janoszek
1
ORCID: ORCID
Jerzy Krawczyk
2
ORCID: ORCID

  1. Central Mining Institute (GIG), 1 Gwarków Sq., 40-166 Katowice, Poland
  2. Strata Mechanics Research Institute, Polish Academy of Science, 27 Reymonta Str., 30-059 Kraków, Poland
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Abstract

The closure of deep mines, featuring multi level seam extraction, lasts many years. During this time period, the ventilation system must ensure adequate working conditions, and ensure the safety and stability of fan operation in gas and fire hazards conditions. The analysis of air flows and methane inflows during the progress of mining mine excavations closure, is the primary object of the article. Execution of such analysis requires knowledge of the mining mine excavations’ closure schedule, the structure of the ventilation system under consideration, the values of the parameters describing the air flows delivered to the mine excavations, and the current characteristics of operating fans and predicted methane exhalation. A computer database, currently being updated by a mine ventilation department for the VentGraph-Plus computer software, has been used simulate the various ventilation scenarios experienced, during the final stage of closure, including the shutdown of the main fans and the backfilling of shafts. The results of case study, containing 2 variants of simulated examples, are presented in the form of diagrams of methane concentration changes in time at characteristic places of the mine. The completed simulations of ventilation processes during the closure of mine excavations and transfer of inflowing methane, indicate useful possibilities of the computational tool used.
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Authors and Affiliations

Wacław Dziurzyński
1
ORCID: ORCID
Jerzy Krawczyk
1
ORCID: ORCID
Teresa Pałka
1
ORCID: ORCID
Andrzej Krach
1
ORCID: ORCID
Przemysław Skotniczny
1
ORCID: ORCID

  1. Strata Mechanics Research Institutes of Polish Academy of Science, 27 Reymonta Str., 30-059 Kraków, Poland
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Abstract

Human health risk assessment of pesticide residues in agricultural commodities is a key element of food safety strategy. The present study focused on potential risks resulting from selected fruit, vegetable and cereal samples with pesticide residues exceeding maximum residue levels (MRLs) from a 5-year survey of official control in Poland (2017–2021). A novel, common tool, the EFSA Pesticide Residue Intake Model PRIMo was used for short-term exposure calculation with embedded consumption data from EU Member States. The challenge of the research was to determine whether the International Estimated Short Time Intakes (IESTI) of toxic pesticides in the diet are acceptable or not. For the first time with long-term investigation which involved many legislative changes, we prepared a picture of the most dangerous pesticides present in fruits, vegetables and cereals for the most critical sub-populations of adults and children. We examined whether these substances have the potential to cause harm to humans. From the full spectrum of 545 analyzed pesticides, we considered 13 pesticides above safety limits in the concentration range of 0.03 to 2.5 mg · kg –1. The most frequently detected compound was the non-authorized, organophospate insecticide chlorpyrifos, which poses toxicological risks to humans. The results of acute exposure were up to 93% ARfD for adults and up to 130% for children. The Hazard Quotient (HQ) showed that consumption of agricultural plants with potential risk can be safe for adults and children, with some exceptions. Samples containing flonicamid/Brussel sprouts (HQ = 1.3) and chlorpyrifos/rucola (HQ = 1.1) could have negative health effects on humans. However, an approach which overestimates the exposure due to a worst-case scenario ensures the widest possible safety margin for the consumers.
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Authors and Affiliations

Magdalena Jankowska
1
ORCID: ORCID
Izabela Hrynko
1
ORCID: ORCID
Bożena Łozowicka
1
ORCID: ORCID

  1. Laboratory of Food and Feed Safety, Institute of Plant Protection – NRI, Bialystok, Poland
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Abstract

The global demand for water has been growing rapidly in the last decade with a global population growth rate of 1.1% p.a., which is equivalent to 81 million people per year. Southeast Asian countries are facing severe water scarcity challenge due to their location in the tropics. In 2018, the Sumba Island experienced the highest temperature of 36°C and lesser rain-fall of 911.1 mm3 per year and it was classified as a long dry island prone to drought due to dry winds from Australian des-serts. This paper focuses on the perceived effect of water scarcity on livelihoods in the Mandahu Village, Indonesia, due to climate change. Sampling and survey covered rural households and the findings showed that the average household of 4 to 8 people consumed around 250 dm3 of water per day. The community relied on two main sources of clean water from two main springs. However, the prolonged dry season from May until December every year results in major challenges to ac-cess water and eventually affect the agricultural productivity. Hence, the feasibility of the fog collection technology has been investigated from technological, economic and social points of view as a reliable and cost-effective source of water. The outcome of this work will produce a feasibility statement for fog-to-water as an alternative solution counteracting water scarcity in the Sumba Island, a solution which can be replicated in other climate change stricken hot spots in South-east Asia.
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Bibliography

ABDELKHALEQ R.A., ALHAJ AHMED I. 2007. Rainwater harvesting in ancient civilizations in Jordan. Water Science and Technology: Water Supply. Vol. 7(1) p. 85–93. DOI 10.2166/ws.2007.010.
ABDUL‐WAHAB S.A., LEA V. 2008. Reviewing fog water collection worldwide and in Oman. International Journal of Environmental Studies. Vol. 65(3) p. 487–500. DOI 10.1080/ 00207230802149983.
AHMED W., GARDNER T., TOZE S. 2011. Microbiological quality of roof-harvested rainwater and health risks: A review. Journal of Environmental Quality. Vol. 40(1) p. 13–21. DOI 10.2134/jeq2010.0345.
AL-FARUQ U., SAGALA S., RIANAWATI E., CURRIE E. 2016. Assessment of renewable energy impact to community resilience in Sumba Island [online]. Resilience Development Initiative. Working Paper Series. No. 9 pp. 14. [Access 12.04.2020]. Available at: https://www.preventionweb.net/go/51505
AMOATEY P., BANI R. 2011. Wastewater management. In: Waste water: Evaluation and management [online]. Ed. F.S.G. Einschlag p. 379–398. DOI 10.5772/16158. [Access: 17.03.2020]. Available at: https://www.intechopen.com/books/waste-water-evaluation-and-management/wastewater-management
ARIFFIN N., ABDULLAH M.M.A.B., ZAINOL M.R.R.M.A., MURSHED M.F., FARIS M.A., BAYUAJI R. 2017. Review on adsorption of heavy metal in wastewater by using geopolymer. MATEC Web of Conferences. Vol. 97, 01023 pp. 8.
BAAWAIN M., CHOUDRI B.S., AHMED M., PURNAMA A. (eds.). 2015. Recent progress in desalination, environmental and marine outfall systems. Basel, Switzerland: Springer International Publishing.
BHUVANESWARI K., GEETHALAKSHMI V., LAKSHMANAN A., SRINIVASAN R., SEKHAR N.U. 2013. The impact of El Nino/ Southern oscillation on hydrology and rice productivity in the Cauvery Basin, India: Application of the soil and water assessment tool. Weather and Climate Extremes. Vol. 2 p. 39–47. DOI 10.1016/j.wace.2013.10.003.
BPS 2013. Sumba Timur Dalam Angka 2013. Katalog BPS 1102001.5302. Waingapu. Badan Pusat Statistik Kabupaten Sumba Timurp Rovinsi Nusa Tenggara Timur pp. 431.
BPS 2016. Provinsi Nusa Tenggara Timur Dalam Angka 2016 [Nusa Tenggara Timur Province in Figures 2016]. Badan Pusat Statistik Provinsi Nusa Tenggara Timur. ISSN 0215-2223 pp. 511.
BPS 2017. Jumlah UMK dan Jumlah Penduduk Menurut Pulau di Peovinsi NTT [Number of UMK and Total Population by Island in NTT Province] [online]. Badan Pusat Statistic Provinsi Nusa Tenggara Timur. [Access 10.05.2020]. Available at: https://ntt.bps.go.id/statictable/
CERECEDA P., SCHEMENAUER R.S., SUIT M. 1992. An alternative water supply for Chilean coastal desert villages. International Journal of Water Resources Development. Vol. 8(1) p. 53–59.
CHANDRAPPA R., GUPTA S., KULSHRESTHA U.C. 2011. Coping with climate change: principles and Asian context. Berlin–Heidelberg. Springer Verlag. ISBN 978-3-642-44745-7 pp. 370. DOI 10.1007/978-3-642-19674-4. CRAINE S. 2013. Final short fieldwork report for a village electrification options on Sumba Island. Hivos.
DAVTALAB R., SALAMAT A., OJI R. 2013. Water harvesting from fog and air humidity in the warm and coastal regions in the south of Iran. Irrigation and Drainage. Vol. 62(3) p. 281–288. DOI 10.1002/ird.1720.
DEVI R., DIBOCH B., SINGH V. 2012. Rainwater harvesting practices: A key concept of energy-water linkage for sustainable development. Scientific Research and Essays. Vol. 7(5) p. 538–543. DOI 10.5897/SRE09.487.
DHINGRA N., SINGH N.S., SHARMA R., PARWEEN T. 2020. Rainwater harvesting and current advancements. In: Modern age waste water problems. Solutions Using Applied Nanotechnology. Eds. M. Oves, M. Omaish Ansari, M. Zain Khan, M., Shahadat, I.M.I. Ismail. Springer Nature Switzerland p. 293–307.
DODSON L.L., BARGACH J. 2015. Harvesting fresh water from fog in rural Morocco: research and impact Dar Si Hmad’s Fogwater Project in Aït Baamrane’. Procedia Engineering. Vol. 107 p. 186–193. DOI 10.1016/j.proeng.2015.06.073.
DOMEN J.K., STRINGFELLOW W.T., CAMARILLO M.K., GULATI S. 2014. Fog water as an alternative and sustainable water resource. Clean Technologies and Environmental Policy. Vol. 16(2) p. 235–249. DOI 10.1007/s10098-013-0645-z.
FESSEHAYE M., ABDUL-WAHAB S.A., SAVAGE M.J., KOHLER T., GHEREZGHIHER T., HURNI H. 2017. Assessment of fog-water collection on the eastern escarpment of Eritrea. Water International. Vol. 42(8) p. 1022–1036. DOI 10.1080/02508060.2017.1393714.
FISHER R., BOBANUBA W.E., RAWAMBAKU A., HILL G.J., RUSSELL-SMITH J. 2006. Remote sensing of fire regimes in semi-arid Nusa Tenggara Timur, eastern Indonesia: Current patterns, future prospects. International Journal of Wildland Fire. Vol. 15(3) p. 307–317. DOI 10.1071/WF05083.
FREDERIKS B. 2013. Sumba energy from waste. Desk study report. Sumba Iconic Island Reports [online]. [Access 20.05.2020]. Hivos pp. 20 + App.. Available at: https://sumbaiconicisland.org/wp-content/
GANDHIDASAN P., ABUALHAMAYEL H.I., PATEL F. 2018. Simplified modeling and analysis of the fog water harvesting system in the Asir Region of the Kingdom of Saudi Arabia. Aerosol and Air Quality Research. Vol. 18(1) p. 200–213. DOI 10.4209/aaqr.2016.11.0481.
GOKKON B. 2015. Sumba renewable energy: A bright future where the lights don’t go out [online]. [Access 10.04.2020]. Available at: http://jakartaglobe.id/news/sumba-renewable-energybright-future-lights-dont-go/
HAMILTON K., REYNEKE B., WASO M., CLEMENTS T., NDLOVU T., KHAN W., …, AHMED W. 2019. A global review of the microbiological quality and potential health risks associated with roof-harvested rainwater tanks. npj Clean Water. Vol. 2(1), 7 p. 1–18. DOI 10.1038/s41545-019-0030-5.
HELMREICH B., HORN H. 2009. Opportunities in rainwater harvesting. Desalination. Vol. 248(1–3) p. 118–124. DOI 10.1016/j.desal.2008.05.046. Hivos 2012. Sumba: An iconic island to demonstrate the potential of renewable energy. Poverty reduction, economic development and energy access combined [online]. [Access 20.05.2020]. Available at: https://sumbaiconicisland.org/wp-content/
KHAWAJI A.D., KUTUBKHANAH I.K., WIE J. M. 2008. Advances in seawater desalination technologies. Desalination. Vol. 221(1–3) p. 47–69. DOI 10.1016/j.desal.2007.01.067.
LATTEMANN S., HÖPNER T. 2008. Environmental impact and impact assessment of seawater desalination. Desalination. Vol. 220(1–3) p. 1–15. DOI 10.1016/j.desal.2007.03.009.
MAYERHOFER M., LOSTER T. 2015. Fog nets. Available at: https://www.munichre-foundation.org/content/dam/munichre/
MBILINYI B.P., TUMBO S.D., MAHOO H.F., SENKONDO E.M., HATIBU N. 2005. Indigenous knowledge as decision support tool in rainwater harvesting. Physics and Chemistry of the Earth. P. A/B/C. Vol. 30(11–16) p. 792–798. DOI 10.1016/ j.pce.2005.08.022.
MCSWEENEY C., NEW M., LIZCANO G., LU X. 2010. The UNDP Climate Change Country Profiles Improving the Accessibility of Observed and Projected Climate Information for Studies of Climate Change in Developing Countries. Bulletin of the American Meteorological Society. Vol. 91 p. 157–166. DOI 10.1175/2009BAMS2826.1.
METER K.J.V., BASU N.B., TATE E., WYCKOFF J. 2014. Monsoon harvests: The living legacies of rainwater harvesting systems in South India. Environmental Science & Technology. Vol. 48(8) p. 4217–4225. DOI 10.1021/es4040182.
MILLER J. 2019. Aqualonis: Converting fog into drinking water. Obtaining drinking water from fog [online]. [Access 12.04.2020]. Available at: https://www.european-business.com/aqualonis-gmbh/aqualonis-converting-fog-into-drinking-water
MONK K.A., DE FRETES Y., REKSODIHARDJO-LILLEY G. 1997. The ecology of Nusa Tenggara and Maluku. Vol. V. The Ecology of Indonesia Series. Hong Kong: Periplus Editions pp. 966.
OKTAVIANI R., AMALIAH S., RINGLER C., ROSEGRANT M.W., SULSER T.B. 2011. The impact of global climate change on the Indonesian economy [online]. International Food Policy Research Institute Discussion paper, 01148. [Access 17.05.2020]. Available at: http://ebrary.ifpri.org/cdm/ref/collection/p15738coll2/id/126762
OLIVIER J. 2008. Anyone for a glass of fresh fog? Alternative water sources for South Africa [online]. Research Report. Cape Town. UNISA p. 30–31. [Access 30.05.2020]. Available at: https://www.yumpu.com/en/document/view/27593719/unisa-2008-research-report-university-of-south-africa
PEREIRA D. 2008. Atacama [online]. flickr. [Access 20.05.2020]. Available at: https://www.flickr.com/photos/galeria_miradas/5816252302/in/photostream/
PIRNIA A., GOLSHAN M., DARABI H., ADAMOWSKI J., ROZBEH S. 2019. Using the Mann–Kendall test and double mass curve method to explore stream flow changes in response to climate and human activities. Journal of Water and Climate Change. Vol. 10(4) p. 725–742. DOI 10.2166/wcc.2018.162.
QADIR M., JIMÉNEZ G.C., FARNUM R.L., DODSON L.L., SMAKHTIN V. 2018. Fog water collection: Challenges beyond technology. Water. Vol. 10(4), 372 p. 1–10. DOI 10.3390/w10040372.
QDAIS H.A. 2008. Environmental impacts of the mega desalination project: the Red–Dead Sea conveyor. Desalination. Vol. 220(1–3) p. 16–23. DOI 10.1016/j.desal.2007.01.019.
RAHMAN A. 2017. Recent advances in modelling and implementation of rainwater harvesting systems towards sustainable development. Water. Vol. 9(12), 959. DOI 10.3390/ w9120959.
REARDON C., DOWNTON P., MCGEE C. 2013. Construction systems [online]. Your Home Australia’s guide to environmentally sustainable homes. [Access 17.05.2020]. Available at: https://www.yourhome.gov.au/materials/construction-systems
SASSEN K., WANG Z., LIU D. 2009. Cirrus clouds and deep convection in the tropics: Insights from CALIPSO and CloudSat. Journal of Geophysical Research: Atmospheres. Vol. 114. Iss. D4, ID D00H06. DOI 10.1029/2009JD011916.
SCHEMENAUER R.S., CERECEDA P. 1994. Fog collection's role in water planning for developing countries. Natural Resources Forum. Vol. 18. No. 2 p. 91–100. DOI 10.1111/j.1477-8947.1994.tb00879.x.
SCHEMENAUER R.S., OSSES P., LEIBBRAND M. 2004. Fog collection evaluation and operational projects in the Hajja Governorate, Yemen. In: Proceedings of the 3rd International Conference on Fog, Fog Collection and Dew. 11–15.10.2004. Cape Town, South Africa.
SHANYENGANA E.S., SANDERSON R.D., SEELY M.K., SCHEMENAUER R.S. 2003. Testing greenhouse shade nets in collection of fog for water supply. Journal of Water Supply: Research and Technology – AQUA. Vol. 52(3) p. 237–241.
SIDDIQUE M.N.I., MUNAIM M.S.A., ZULARISAM A.W. 2015. Feas¬ibility analysis of anaerobic co-digestion of activated manure and petrochemical wastewater in Kuantan (Malaysia). Journal of Cleaner Production. Vol. 106 p. 380–388. DOI 10.1016/j.jclepro.2014.08.003.
SII 2016. The iconic island for renewable energy. Sumba Iconic Island [online]. [Access 07.05.2020]. Available at: https://sumbaiconicisland.org/
SIPAYUNG S.B., SUSANTI I., MARYADI E., NURLATIFAH A., SISWANTO B., NAFAYEST M., PUTRI F.A., HERMAWAN E. 2019. Analysis of drought potential in Sumba Island until 2040 caused by climate change. Journal of Physics: Conference Series. Vol. 1373, 012004. DOI 10.1088/1742-6596/1373/1/012004.
SYAUKAT Y. 2011. The impact of climate change on food production and security and its adaptation programs in Indonesia. Journal of the International Society for Southeast Asian Agricultural Sciences. Vol. 17(1) p. 40–51. The Guardian 2016. Cloud fishing' reels in precious water for villagers in rural Morocco [online]. [Access 26.5.2020]. Available at: https://www.theguardian.com/global-development/2016/dec/26/cloud-fishing-reels-in-precious-water-villagers-rural-morocco-dar-si-hmad
TIEDEMANN K.J., LUMMERICH A. 2010. Fog harvesting on the verge of economic competitiveness [online]. 5th International Conference on Fog, Fog Collection and Dew. 25–30.07.2010. Münster, Germany. id.FOGDEW2010-93. [Access 07.05.2020]. Available at: http://meetings.copernicus.org/fog2010
TORTAJADA C. 2006. Water management in Singapore. Water Resources Development. Vol. 22(2) p. 227–240. DOI 10.1080/07900620600691944.
UNDP 2017. Sisi lain perubahan iklim: Mengapa Indonesia harus beradaptasi untuk melindungi rakyat iskinnya. United Nations Development Programme Indonesia. ISBN 978-979-17069-0-2 pp. 20.
USAID 2017. Climate risk profile: Indonesia [online]. Fact sheet pp. 5. [Access 30.05.2020]. Available at: https://www.climatelinks.org/sites/default/files/asset/document/2017_USAID_ATLAS_Climate%20Risk%20Profile_Indonesia.pdf
VINKE K., SCHELLNHUBER H.J., COUMOU D., GEIGER T., GLANEMANN N., HUBER V., KNAUS M., KROPP J., KRIEWALD S., LAPLANTE B., LEHMANN J. 2017. A region at risk: The human dimensions of climate change in Asia and the Pacific [online]. Mandaluyong City, Metro Manila: Asian Development Bank. [Access 30.04.2020]. Available at: https://www.adb.org/sites/default/files/publication/325251/region-risk-climate-change.pdf
WINQVIST G., DAHLBERG E., SMITH B., BERLEKOM M. 2008. Indonesia environmental and climate change policy brief. Gothenburg. Sida Helpdesk for Environmental Economics, University of Gothenburg pp. 24. WV 2016. World vision’s response to El Niño in Asia-Pacific. Snapshot of interventions in priority countries and funding available per response [online]. World Vision Asia Pacific, OCHA, US National Oceanic & Atmospheric Administration, World Meteorological Organization [Access 30.04.2020]. Available at: http://www.wvi.org/sites/default/files/ElNino_AsiaPacific_April2016.pdf
YOUNOS T. 2005. Environmental issues of desalination. Journal of Contemporary Water Research and Education. Vol. 132(1) p. 11–18. DOI 10.1111/j.1936-704X.2005.mp132001003.x.
ZHANG S.X., BABOVIC V. 2012. A real options approach to the design and architecture of water supply systems using innov-ative water technologies under uncertainty. Journal of Hydroinformatics. Vol. 14(1) p. 13–29. DOI 10.2166/hydro.2011.078.

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Authors and Affiliations

Zaitizila Ismail
1
ORCID: ORCID
Yun Ii Go
1
ORCID: ORCID
Mahawan Karuniasa
2
ORCID: ORCID

  1. Heriot-Watt University Malaysia, School of Engineering and Physical Science, 62200 Putrajaya, Wilayah Persekutuan Putrajaya, Malaysia
  2. Universitas Indonesia, School of Environmental Science, Jakarta, Indonesia
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Abstract

The construction of the Keuliling Reservoir aims to accommodate and utilise water for agricultural purposes. In this research, soil erosion modelling using the USLE method showed that the level of erosion hazard for each Keuliling Reservoir sub-watershed was classified into low-moderate. Land erosion occurred in the area around the reservoir inundation is the most significant contribution to the magnitude of erosion (38.62 Mg∙ha–1∙y–1. Based on the point of sediment sampling in the Keuliling reservoir, the sediment volume was 1.43 Mg∙m–3. So, the volumetric sediment input from the Keuliling reservoir watershed is 20.918,32 m3∙y–1. The degradation of reservoir function due to sedimentation can affect reservoir services. The ability to estimate the rate of watershed surface erosion and sediment deposition in the reservoir is vital for reservoir sustainability. Besides the land erosion in the Keuliling Reservoir, there are also other potential sources of erosion that can reduce the capacity of the reservoir, i.e. the rate of sedimentation from a reservoir cliff landslide. The USLE estimation results show that the soil erosion analysis provides important and systematic information about nature, intensity and spatial distribution in the watershed and sediment volume in the Keuliling Reservoir. This finding allows the identification of the most vulnerable areas and the type of erosion dominant for long-term land management.
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Bibliography

ADEDIJI A., TUKUR A.M., ADEPOJU K.A. 2010. Assessment of Revised Universal Soil Loss Equation (RUSLE) in Katsina Area, Katsina State of Nigeria using Remote Sensing (RS) and Geographic Information System (GIS). Iranian Journal of Energy and Environment. Vol. 1(3) p. 255–264.
ALEXAKIS D.D., HADJIMITSIS D.G., AGAPIOU A. 2013. Integrated use of remote sensing, GIS and precipitation data for the assessment of soil erosion rate in the catchment area of “Yialias” in Cyprus. Atmospheric Research. Vol. 131 p. 108–124. DOI 10.1016/j.atmosres.2013.02.013.
ARIF A. 2013. Study of erodibility level of several land types in Baturagung Mountains Putat Village and Nglanggeran District Patuk Gunungkidul Regency. Information. Vol. 39. No. 2 p. 15– 31. DOI 10.21831/informasi.v0i2.4441.
ARMIDO A., AZMERI A., FATIMAH E., NURBAITI N., YOLANDA S.N. 2020. The sedimentation datasets of Keuliling Reservoir. Data in Brief. Vol. 32, 106181. DOI 10.1016/j.dib.2020.106181.
ARNOLDUS H.M.J. 1980. An approximation of the rainfall factor in the Universal Soil Loss Equation. In: Assessment of erosion. Eds. M. De Boodt, D. Gabriels. Chichester, UK. Wiley p. 127–132.
ARSYAD S. 2012. Conservation of Land and Water. Second edition. IPB Press, Bogor. ISBN 979-493-003-2 pp. 96. ASDAK C. 2014. Hydrology and watershed management. 3rd edition. Yogyakarta. Gajah Mada University Press. ISBN 979-420-737-3 pp. 625.
AZMERI A., LEGOWO S., REZKYNA N. 2020. Interphase modeling of soil erosion hazard using a Geographic Information System and the Universal Soil Loss Equation. Journal of Chinese Soil and Water Conservation. Vol. 51(2) p. 65–75. DOI 10.29417/JCSWC.202006_51(2).0003.
AZMERI, HADIHARDAJA I.K., VADYA R. 2016. Identificationof flashfloodhazard zones in the small mountainous watershed of Aceh Besar Regency, Aceh Province, Indonesia. The Egyptian Journal of Remote Sensing and Space Sciences. Vol. 19 p. 143–160. DOI 10.1016/j.ejrs.2015.11.001.
BENZER N. 2010. Using the geographical information system and remote sensing techniques for soil erosion assessment. Polish Journal of Environmental Study. Vol. 19(5) p. 881–886.
BISWAS S. 2012. Estimation of soil erosion using remote sensing and GIS and prioritization of catchments. International Journal of Emerging Technology and Advanced Engineering. Vol. 2(7) p. 124–128.
BWS Sumatera I. 2018. Report of Survey and Sedimentation Study of Keuliling Reservoir. Balai Wilayah Sungai Sumatera I. Banda Aceh pp. 181.
CHATTERJEE S., KRISHNA A.P., SHARMA A.P. 2014. Geospatial assessment of soil erosion vulnerability at watershed level in some sections of the Upper Subarnarekha river basin, Jharkhand, India. Environmental Earth Sciences. Vol. 71(1) p. 357–374.
DABRAL P.P., BAITHURI N., PANDEY A. 2008. Soil erosion assessment in a hilly catchment of North eastern India using USLE, GIS and remote sensing. Water Resources Management. Vol. 22(12) p. 1783–1798. DOI 10.1007/s11269-008-9253-9.
DEMIRCI A., KARABURUN A. 2012. Estimation of soil erosion using RUSLE in a GIS framework: A case study in the Buyukcekmece Lake watershed, Northwest Turkey. Environmental Earth Sciences. Vol. 66 p. 903–913.
DUTA S. 2016. Soil erosion, sediment yield and sedimentation of reservoir: A review. Modeling Earth Systems and Environment. Vol. 2, 123. DOI 10.1007/2Fs40808-016-0182-y.
DOUCET-BEER E. 2011. Modelling alternative agricultural scenarios using RUSLE and GIS to determine erosion risk in the Chippewa River Watershed, Minnesota [online]. PhD Thesis. University of Michigan pp. 87. [Access 10.03.2021]. Avalable at: http://hdl.handle.net/2027.42/88166.https://deepblue.lib.umich.edu/bit-stream/handle/2027.42/88166/EDoucetBeer_MS_Practicum_F-inal.pdf?sequence=1&isAllowed=y
FU B.J., ZHAO W.W., CHEN L.D., ZHANG Q.J., LU Y.H., GULINCK H., POESEN J. 2005. Assessment of soil erosion at large watershed scale using RUSLE and GIS: A case study in the Loess Plateau of China. Land Degradation & Development. Vol. 16, 7385. DOI 10.1002/ldr.646.
HAREGEWEYN N., POESEN J., NYSSEN J., GOVERS G., VERSTRAETEN G., DECKERS J., MOEYERSONS J., HAILE M., DE VENTE J. 2008. Sediment yield variability in Northern Ethiopia: A quantitative analysis of its controlling factors. Catena. Vol. 75 p. 65–76. DOI 10.1016/j.catena.2008.04.011.
HOYOS N. 2005. Spatial modeling of soil erosion potential in a tropical watershed of the Colombian Andes. Catena. Vol. 63 (1) p. 85–108. DOI https://doi.org/10.1016/j.catena.2005.05.012.
IONUŞ O., BOENGIU S., LICURICI M., POPESCU L., SIMULESCU D. 2013. Mapping soil erosion susceptibility using GIS techniques within the Danube Floodplain, the Calafat – Turnu Măgurele Sector (Romania). Journal of the Geographical Institute “Jovan Cvijic”, SASA 2013. Vol. 63. Iss. 3. Conference Issue: International Conference Natural Hazards – Link between Science and Practice p. 73–82. DOI 10.2298/IJGI1303073I.
ISSA L.K., LECH-HAB K.B.H., RAISSOUNI A., EL ARRIM A. 2016. Cartographie quantitative du risque d’erosion des sols par approche SIG/USLE au niveau dubassin versant Kalaya (Maroc Nord Occidental) [Quantitative mapping of soil erosion risk using GIS/USLE approach at the Kalaya Watershed (North Western Morocco)]. Journal of Materials and Environmental Science. Vol. 7(8) p. 2778–2795.
JIANG B. 2013. GIS-based time series study of soil erosion risk using the Revised Universal Soil Loss Equation (RUSLE) model in a microcatchment on Mount Elgon, Uganda. MSc Thesis. Department of Earth and Ecosystem Sciences Physical Geography and Ecosystems Analysis Lund University, Sweden pp. 51.
KALSUM U., YUNUS Y., FERIJAL T. 2017. Meureudu Watershed Conservation Directive using Geographic Information Systems. Vol. 2. No. 2. p. 423–429.
KAMUJU N. 2016. Soil erosion and sediment yield analysis using prototype & enhanced SATEEC GIS system models. International Journal of Advanced Remote Sensing and GIS. Vol. 5(1) p. 1471– 1482. DOI 10.23953/cloud.ijarsg.39
KIRONOTO B.A. 2003. Sediment Transpor. Civil Engineering Graduate Program UGM, Yogyakarta pp. 100.
KOTHYARI U.C., JAIN S.K. 1997. Sediment yield estimation using GIS. Hydrology Science Journal. Vol. 42 p. 833–843. DOI 10.1080/0262666970949208.
KOURGIALAS N.N., KOUBOURIS G.C., KARATZAS G.P., METZIDAKIS I. 2016. Assessing water erosion in Mediterranean tree crops using GIS techniques and field measurements: The effect of climate change. Natural Hazards. Vol. 83(1) p. 65–81. DOI 10.1007/s11069-016-2354-5.
KURNIA U., SUWARDJO H. 1984. Erosion sensitivity of several soil types in Java according to the USLE Method. Pemberitaan Penelitian Tanah dan Pupuk. No. 3 p. 17–20.
LAL R. 2001. Soil degradation by erosion. Land Degradation and Development. Vol. 12(6) p. 519–539. DOI 10.1002/ldr.472.
LEGOWO S., HADIHARDAJA I.K., AZMERI 2009. Estimation of bank erosion due to reservoir operation in cascade (Case study: Citarum cascade reservoir). ITB ITB Journal of Engineering Science. Vol. 41(2) p. 148–166. DOI 10.5614/itbj.eng.sci.2009.41.2.5
LIM J.K., SAGONG M., ENGEL B.A., TANG Z., CHOI J., KIM K. 2005. GIS based sediment assessment tool. Catena. Vol 64 p. 61–80. DOI 10.1016/J.CATENA.2005.06.013.
MERRITT W.S., LETCHER R.A., JAKEMAN A.J. 2003. A review of erosion and sediment transport models. Environmental Modelling and Software. Vol. 18 p. 761–799. DOI 10.1016/S1364-8152(03)00078-1.
MEUSBURGER K., BÄNNINGER D., ALEWELL C. 2010. Estimating vegeta-tion parameter for soil erosion assessment in an alpine catchment by means of QuickBird imagery. International Journal of Applied Earth Observation and Geoinformation. Vol. 12 p. 201–207. DOI 10.1016/j.jag.2010.02.009.
NAMR K.I., MRABET R. 2004. Influence of agricultural management on chemical quality of a clay soil of semi-arid Morocco. Journal of African Earth Sciences. Vol. 39 p. 485–489. DOI 10.1016/j.jafrearsci.2004.07.016.
PANDEY A., CHOWDARY V.M., MAL B.C. 2007. Identification of critical erosion prone areas in the small agricultural watershed using USLE, GIS and remote sensing. Water Resources Management. Vol. 21(4) p. 729–746. DOI 10.1007/s11269-006-9061-z.
PARK S., OH C., JEON S., JUNG H., CHOI C. 2011. Soil erosion risk in Korean watershed, assessed using Revised Universal Soil Loss Equation. Journal Hydrology. Vol. 399(3–4) p. 263–273. DOI 10.1016/j.jhydrol.2011.01.004.
PEROVIĆ V., ŽIVOTIĆ L., KADOVIĆ R., ĐORĐEVIĆ A., JARAMAZ D., MRVIĆ V., TODOROVIĆ M. 2013. Spatial modelling of soil erosion potential in a mountainous watershed of South-eastern Serbia. Environmental Earth Sciences. Vol. 68 p. 115–128. DOI 10.1007/s12665-012-1720-1.
PRASANNAKUMAR V., VIJITH H., ABINOD S., GEETHA N. 2012. Estimation of soil erosion risk within a small mountainous sub-watershed in Kerala, India, using Revised Universal Soil Loss Equation (RUSLE) and geo-information technology. Geoscience Frontiers. Vol. 3(2) p. 209–215. DOI 10.1016/j.gsf.2011.11.003.
RAHMAN M.R., SHI Z.H., CHONGFA C. 2009. Soil erosion hazard evaluation – An integrated use of remote sensing, GIS and statistical approaches with biophysical parameters towards management strategies. Ecological Modelling. Vol. 220. Iss. 13–14 p. 1724–1734. DOI 10.1016/j.ecolmodel.2009.04.004.
SAHU A., BAGHEL T., SINHA M.K., AHMAD I., VERMA M.K. 2017. Soil erosion modeling using Rusle and GIS on Dudhawa catchment. International Journal of Applied Environmental Sciences. Vol. 12. No. 6 p. 1147–1158.
SHEIKH A.H., PALRIA S., ALAM A. 2011. Integration of GIS and Universal Soil Loss Equation (USLE) for soil loss estimation in a Himalayan watershed. Recent Research in Science and Technology. Vol. 3(3) p. 51–57.
Peraturan Direktur Jenderal Bina Pengelolaan Daerah Aliran Sungai dan Perhutanan Sosial nomor: P. 3/V-SET/2013 tentang pedoman identifikasi karakteristik daerah aliran sungai [The Regulation of the Director-General of Watershed Management and Social Forestry of the Republic of Indonesia number P. 3/V-SET/2013 regarding guidelines for identifying watershed characteristics] [online]. [Access 15.02.2020]. Available at: https://www.course-hero.com/file/44617251/P3-V-SET-2013-PEDOMAN-IDENTI-FIKASI-KARAKTERISTIK-DAERAH-ALIRAN-SUNGAIpdf/
Peraturan Menteri Kehutanan Republik Indonesia nomor: P. 61 /Menhut-II/2014 tentang monitoring dan evaluasi pengelolaan daerah aliran sungai [Regulation of the Minister of Forestry of the Republic of Indonesia number: P. 61 /Menhut-II/2014 regarding monitoring and evaluation of watershed management] [online]. [Access 15.02.2020]. Available at: http://satudata.semarangkota.go.id/adm/file/20171004150653PERMENKEMENHUTNo-morP.61-MENHUT-II-2014Tahun2014kemenhutnop.61-menhut-II-2014.pdf
Qanun Kabupetan Aceh Besar nomor 4 tahun 2013 tentang rencana tata ruang Willayah Kabupaten Aceh Besar tahun 2012–2032 [The Regulation of the spatial plan for the Aceh Besar Regency, 2012– 2032] [online]. [Access 15.02.2020]. Available at: http://bappeda.acehbesarkab.go.id/?p=820
TATIPATA W.H., SOEKARNO I., SABAR A., DAN LEGOWO S. 2015. Analysis of settle sediment volumes after t-year reservoirs in operation (Case study: Cirata Reservoir). Journal of Civil Engineering Theoretical and Applied Journal of Civil Engineering. Vol. 22(3) p. 235–242. DOI 10.5614/jts.2015.22.3.7.
UDDIN K., MURTHY M.S.R., SHAHRIAR M., WAHID MIR A., MATIN 2016. Estimation of Soil Erosion Dynamics in the Koshi Basin Using GIS and Remote Sensing to Assess Priority Areas for Conserva-tion. PLOS ONE. Vol. 1(3), e0150494. DOI 10.1371/journal.pone.0150494.
VERSTRAETEN G., POESEN J. 2001. Variability of dry sediment bulk density between and within retention ponds and its impact on the calculation of sediment yield. Earth Surface Processes and Landforms. Vol. 26 p. 375–394. DOI 10.1002/esp.186.
VIJITH H., MADHU G. 2008. Estimating potential landslide sites of an upland sub-watershed in Western Ghat’s of Kerala (India) through frequency ratio and GIS. Environmental Geology. Vol. 55(7) p. 1397–1405. DOI 10.1007/s00254-007-1090-2.
WISCHMEIER W.H., SMITH D.D. 1978. Predicting rainfall erosion losses – A guide to conservation planning. Agriculture Handbook. No. 537. Washington, DC, USA. US Department of Agriculture Science and Education Administration pp. 168.
XU Y., SHAO X., KONG X., PENG J., CAI Y. 2008. Adapting the RUSLE and GIS to model soil erosion risk in a mountains karst watershed, Guizhou Province, China. Environmental Monitoring and Assessment. Vol. 141 p. 275–286. DOI 10.1007/s10661-007-9894-9.
ZARFL C., LUCIA A. 2018. The connectivity between soil erosion and sediment entrapment in reservoirs. Current Opinion in Environ-mental Science & Health. Vol. 5 p. 53–59. DOI https://dx.doi.org/10.1016/j.coesh.2018.05.001.
ZHANG K., SHU A., XU X., YANG Q., YU B. 2008. Soil erodibility and its estimation for agricultural soils in China. Journal of Arid Environments. Vol. 72 p. 1002–1011. DOI 10.1016/j.jaridenv.2007.11.018.
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Authors and Affiliations

Azmeri Azmeri
1
ORCID: ORCID
Nurbaiti Nurbaiti
2
Nurul Mawaddah
1
Halida Yunita
1
ORCID: ORCID
Faris Zahran Jemi
3
ORCID: ORCID
Devi Sundary
1
ORCID: ORCID

  1. Universitas Syiah Kuala, Engineering Faculty, Civil Engineering Department, Syech Abdur-Rauf No. 7 Darussalam, 23111, Banda Aceh, Indonesia
  2. Ministry of Public Works and Housing (PUPR) BWS Sumatera-I, Indonesia
  3. Universitas Syiah Kuala, Engineering Faculty, Electrical Engineering Department, Banda Aceh, Indonesia
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Abstract

The aim of this study is to analyse the spatio-temporal evolution of hydro-rainfall variables in the Agnéby watershed in a disturbed climatic context. Rainfall data from the stations of Arrah, Bongouanou, M’Batto, Akoupé, Céchi, Agboville, Adzopé, Sikensi, Abidjan Airport and Dabou as well as hydrometric data from the stations of Agboville, Offoliguié, M’Bessé and Guessiguié were used. The methodological approach is based on the application of independence and trend tests and spatio-temporal analysis of daily rainfall maxima, duration of consecutive rainfall events, number of rainfall events above a threshold and daily flow maxima. The hypothesis of independence justified the relevance of the choice of variables. The trend test showed the dynamic upward evolution of extreme rainfall and the decrease in the duration of consecutive rainy episodes, in the number of rainy episodes and in the flows feeding the main watercourse. Moreover, spatial analysis of daily maximum rainfall amounts above 120 mm, consecutive maximum rainfall amounts above 160 mm and Gumbel rainfall amounts above 190 mm indicated heavy rainfall in the southern part of the watershed. However, a decrease in rainfall is recorded in the areas covered by the stations of Arrah, Bongouanou, M’Batto, Ce chi and Akoupé. An increase in the flood flow calculated from the Generalized Extreme Value (GEV) between 76.60 m3∙s–1 and 225.70 m3∙s–1 is presented in the main river. The spatio-temporal variation in annual rainfall heights showed a high rainfall in the southern part of the watershed with a decrease in rainfall over the decades (1976–1985 and 1996–2005) followed by an increase over the decades (1986–1995 and 2006–2015). Despite the general decrease in rainfall, extreme rainfall has become frequent, causing flooding in the watershed.
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Bibliography


AHOUSSI K.E., KOFFI Y.B., KOUASSI A.M., SORO G., SORO N., BIEMI J. 2013. Etude de la variabilité hydroclimatique et de ses conséquences sur les ressources en eau du Sud forestier et agricole de la Côte d’Ivoire : Cas de la région d’Abidjan-Agboville [Study of hydroclimatic variability and its consequences on water resources in the forested and agricultural south of Côte d'Ivoire:The case of the Abidjan-Agboville region]. International Journal of Pure & Applied Bioscience. Vol. 1. No. 6 p. 30–50.
BENHATTAB K., BOUVIER C., MEDDI M. 2014. Analyse fréquentielle régionale des précipitations journalières maximales annuelles dans le bassin hydrographique – Chéliff, Algérie [Regional frequency analysis of maximal daily annual rainfalls in Cheliff catchment, Algeria Regional frequency analysis of maximal daily annual rainfalls in Cheliff catchment, Algeria]. Revue des Sciences de l’Eau. Vol. 27. No. 3 p. 189–203.
BODIAN A. 2011. Approche par modélisation pluie-débit de la connaissance régionale de la ressource en eau : Application au haut bassin du fleuve Sénégal [Rainfall-flow modelling approach to regional water resource knowledge: Application to the upper Senegal River basin]. PhD Thesis. Université Cheikh Anta Diop de Dakar pp. 288.
DE LONGUEVILLE F., HOUNTONDJI Y.C., KINDO I., GEMENNE F., OZER P. 2016. Long-term analysis of rainfall and temperature data in Burkina Faso (1950–2013). International Journal of Climatology. Vol. 36 p. 4393–4405. DOI 10.1002/joc.4640.
DEMAREE G.R. 1990. An indication of climatic change as seen from the rainfall data of a Mauritanian station. Theoretical and Applied Climatology. Vol. 42 p. 139–147.
EL GHACHI M., MORCHID F.Z. 2015. Analyse des tendances pluviomé- triques dans la ville de Khénifra dans un contexte de variabilité climatique [Rainfall trend analysis in Khenifra city in a context of climate variability]. Journal of Materials and Environmental Science. Vol. 6. No. 11 p. 3346–3358.
GOULA B.T.A., SORO G.E., DAO A., KOUASSI F.W., SROHOUROU B. 2010. Frequency analysis and new cartography of extremes daily rainfall events in Côte d’Ivoire. Journal of Applied Sciences. Vol. 10 p. 1684–1694.
HANGNON H., DE LONGUEVILLE F., OZER P. 2015. Précipitations ‘extrêmes’ et inondations à Ouagadougou : Quand le développement urbain est mal maîtrisé... [Extreme precipitations and floods in Ouagadougou: When urban development is badly controlled]. XXVIIIe Colloque de l’Association Internationale de Climatologie, Liège p. 497–502.
HENNEQUI M. 2010. Spatialisation des données de modélisation par Krigeage [Spatialization of modeling data by Kriging]. Métho- dologie [stat.ME] pp. 74. HAL Id: dumas-00520260.
HUBERT P., CARBONNEL L.P., CHAOUCHE A. 1989. Segmentation of hydrometric series. Application to rainfall and flow series in West Africa. Journal of Hydrology. Vol. 110 p. 349–367.
KOUADIO Z.A., SORO G.E., KOUAKOU K.E., GOULA B.T.A., SAVANE I. 2018. Inondations fréquentes à Agboville (Côte d’Ivoire) : Quelles origines ? [Frequent flooding in Agboville (Côte d’Ivoire): What origins?]. Larhyss Journal. No. 33 p. 189–207.
KOUAME K.F. 1999. Hydrogéologie des aquifères discontinus de la région semi-montagneuse de Man-Danané (Ouest de la Côte d’Ivoire), Apports des données des images satellitales, des méthodes statistique et fractale à l’élaboration d’un système d’information hydrogéologique à référence spatiale [Hydrogeology of discontinuous aquifers in the semi-mountainous region of Man-Danane (West of Ivory Coast), contributions of satellite image data, statistical and fractal methods to the development of a spatially referenced hydrogeological information system]. 3rd cycle thesis. Abidjan. Université de Cocody pp. 210.
KOUASSI A.M., KOUAME K.F., KOFFI Y.B., DJÈ K.B., PATUREL J.E., OULARE S. 2019. Analyse de la variabilité climatique et de ses influences sur les régimes pluviométriques saisonniers en Afrique de l’Ouest : Cas du bassin versant du N’zi (Bandama) en Côte d’Ivoire [Analysis of climate variability and its influences on seasonal rainfall patterns in West Africa: Case of N’zi (Bandama) watershed in Ivory Coast]. European Journal of Geography. Vol. 513 p. 1–29. DOI 10.4000/cybergeo.23388.
KUNDZEWICZ Z. W., GRACZYK D., MAURER T., PINSKWAR I., RADZIEJEWSKI M., SVENSSON C., SZWED M. 2005. Trend detection in river flow series: 1. Annual maximum flow. Hydrological Sciences Journal. Vol. 50. No. 5 p. 797–810. DOI 10.1623/hysj.2005.50.5.797.
MAHE G., DIELL O.P., PATUREL J.E., BARBIER B., KARAMBIRI H., DEZETTER A., DIEULIN C., ROUCHE N. 2010. Baisse des pluies et augmentation des écoulements au Sahel : Impact climatique et anthropique sur les écoulements du Nakambé au Burkina-Faso [Decrease of rainfall and increase of runoff in the Sahel: Climatic and anthropogenic impacts on runoff of the Nakambe River in Burkina Faso]. Sécheresse. Vol. 21. No. 4 p. 330–332.
MEDDI M., ABBES A.S.B. 2014. Analyse statistique et prévision des débits de crues dans le bassin-versant de l’Oued Mekerra (Ouest de l’Algérie) [Statistical analysis and forecasting of flood flows in the Oued Mekerra watershed (Western Algeria)]. Revue Nature et Technologie. C-Sciences de l’Environnement. No. 10 p. 21–31.
NEW M., HEWISTON B., DAVID B., TSIGA S.A., KRUGER A., MANHINSUE A., MANHIQUE A., ..., LAJOIE R. 2006. Evidence of trends in daily climate extremes over southern and West Africa. Journal of Geophysical Research. Vol. 111. Iss. D14102 p. 1–11. DOI 10.1029/2005JD006289.
ONDO J.-C. 2002. Etude comparative des tests de stationnarité [Comparative study of stationarity tests]. PhD Thesis. Université du Québec, Institut Nationale de la Recherche Scientifique-Eau, Terre et Environnement (Canada) pp. 268.
OZER P. 2014. Catastrophes naturelles et aménagement du territoire : De l’intérêt des images Google Earth dans les pays en développement [Natural disasters and urban planning: On the interest of the use of Google Earth images in developing countries]. Géo-Eco-Trop. No. 38 p. 209–220.
PANTHOU G., VISCHEL A.T., LEBEL T. 2014. Short Communication Recent trends in the regime of extreme rainfall in the Central Sahel. International Journal of Climatology. Vol. 34 p. 3998–4006. DOI 10.1002/joc.3984.
PATUREL J.E., SERVAT E., KOUAME B., BOYER J.F., LUBES N.H., MASSON J.M. 1996. Procédures d’identification de «ruptures» dans des séries chronologiques – modification du régime pluviométrique en Afrique de l’Ouest non sahélienne. En : L’hydrologie tropicale: géoscience et outil pour le développement : mélanges à la mémoire de Jean Rodier [Procedures for identifying “breaks” in chronological series – modification of the rainfall regime in non- Sahelian West Africa. In: Tropical hydrology: A geoscience and a tool for sustainability: Dedicated to the memory of Jean Rodier]. Eds. P. Chevallier, B. Pouyaud. IAHS Publication. Vol. 238. Wallingford. IAHS p. 99–110. PENOT D. 2014. Cartographie des événements hydrologiques extrêmes et estimation SCHADEX en sites non jaugés [Mapping of extreme hydrological events and SCHADEX estimation at ungauged sites]. PhD Thesis. Grenoble, France. Université de Grenoble pp. 244.
QUENTIN S. 2016. Modélisation spatiale de valeurs extrêmes : Applica-tion à l’étude de précipitations en France [Spatial modeling of extreme values: Application to precipitation in France]. PhD Thesis. Lyon, France. Université de Lyon. NNT 2016LYSE1244 pp. 196.
RADZIEJEWSKI M., BARDOSSY A., KUNDZEWICZ Z.W. 2000. Detection of change in river flow using phase randomization. Hydrological Sciences Journal. Vol. 45. No. 4 p. 547–558. DOI 10.1080/02626660009492356.
RENARD B. 2006. Détection et prise en compte d’éventuels impacts du changement climatique sur les extrêmes hydrologiques en France [Detection and consideration of possible impacts of climate change on hydrological extremes in France]. PhD Thesis. Grenoble, France. Institut National Polytechnique de Grenoble pp. 269.
SAHANI M., TREFOIS P., MOEYERSONS J., VANDECASTEELE I., OZER P. 2012. Évolution des caractéristiques pluviométriques dans la zone urbaine de Butembo (RDC) de 1957 à 2010 [Recent trends in the urban area Butembo (DRC) rainfall regime (1957–2010)]. Géo-Eco-Trop. Vol. 36 p. 121–136.
SALEY M.B. 2003. Système d’Information hydrogéologique à référence spatiale, discontinuités pseudo images et cartographie thématique des ressources en eau de la région semi-montagneuse de Man (Ouest de la Côte d’Ivoire) [Hydrogeological information system with spatial reference, pseudo image discontinuities and thematic mapping of water resources in the semi-mountainous region of Man (West of Ivory Coast)]. PhD Thesis. Abidjan, Côte d’Ivoire. Université de Cocody pp. 211.
SALEY M.B., KOUAME K.F., PENVEN M.J., BIEMI J., KOUADIO B.H. 2005. Cartographie des zones à risque d’inondation dans la région semi-montagneuse à l’Ouest de la Côte d’Ivoire : Apport des MNA et de l’imagerie [Mapping of the flooding risk areas of western semi-mountainous region of Côte d’Ivoire: Contribution of digital elevation model and satellite imagery]. Télédétection. No. 1–2–3 p. 53–67.
SIRCOULON J. 1987. Variation des débits des cours d’eau et des niveaux des lacs en Afrique de l’ouest depuis le début du XXe siècle [Variation of stream flows and lake levels in West Africa since the beginning of the 20th century]. In: The influence of climate change and climatic variability on the hydrologie regime and water resources. Proceedings of the Vancouver Symposium. IAHS-AISH Publication. No. 168 p. 13–25.
SORO G.E. 2011. Modélisation statistique des pluies extrêmes en Côte d’Ivoire [Statistical modeling of extreme rains in Ivory Coast]. PhD Thesis. Université Nangui Abrogoua (Côte d’Ivoire) pp. 172.
SORO G.E., DAO A., FADIKA V., GOULA B.T.A., SROHOUROU B. 2016. Estimation des pluies journalières extrêmes supérieures à un seuil en climat tropical : Cas de la Côte d’Ivoire [Estimation of extreme daily rainfall above a threshold in tropical climate: The case of the Ivory Coast]. Physio-Geo. Vol. 10 p. 211–227. DOI 10.4000/ physio-geo.5011.
YAHIAOUI A. 2012. Inondations torrentielles, cartographie des zones vulnérables en Algérie du Nord (Cas de l’oued Mekerra, Wilaya de Sidi Bel Abbès) [Torrential floods, cartography of vulnerable areas in Northern Algeria (Case of Wadi Mekerra, Wilaya of Sidi Bel Abbès)]. PhD Thesis. Université de Bechar pp. 186.
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Authors and Affiliations

N’Da Jean Claude Konin
1
ORCID: ORCID
Yao Alexis N’go
1
ORCID: ORCID
Gneneyougo Emile Soro
1
ORCID: ORCID
Bi Tié Albert Goula
1
ORCID: ORCID

  1. Université Nangui Abrogoua, Unité de Formation et de Recherche en Sciences et Gestion de l’Environnement, Laboratoire Géosciences et Environnement, 02 BP 801 Abidjan, Ivory Coast

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