LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE

Laboratory Experimental Design for Backfilling in Barapukuria Coal Mine

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Auteurs principaux: TAJIB – UL – ISLAM, MD., EMON, NEAZ MAHMUD
Format: Thèse
Langue:anglais
Publié: 2025
Accès en ligne:http://dspace.mist.ac.bd:8080/xmlui/handle/123456789/907
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author TAJIB – UL – ISLAM, MD.
EMON, NEAZ MAHMUD
author_browse EMON, NEAZ MAHMUD
TAJIB – UL – ISLAM, MD.
author_facet TAJIB – UL – ISLAM, MD.
EMON, NEAZ MAHMUD
author_sort TAJIB – UL – ISLAM, MD.
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description Laboratory Experimental Design for Backfilling in Barapukuria Coal Mine
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spelling oai:localhost:123456789-9072025-05-12T11:38:55Z LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE TAJIB – UL – ISLAM, MD. EMON, NEAZ MAHMUD Laboratory Experimental Design for Backfilling in Barapukuria Coal Mine Backfilling, an essential process in mining and construction subsequent to foundation and utility work, involves filling excavated areas around structures with sand or gravel to ensure stability, support, and insulation. It ranges from simple to complex, often requiring specialized equipment. This procedure not only minimizes the need for costly dilution and surface storage but also aids in mitigating mining instability and subsidence. Our exploration delved into various facets of backfilling, particularly focusing on how finite element method analysis can elucidate its intricacies. Through examining cases designed with different ratios of outlet and inlet diameters and employing varied velocities to flow backfill materials through the model, we gained insights into the process. ANSYS, a finite element analysis (FEA) tool, played a pivotal role in characterizing the qualities of backfill. Consequently, these analyses yielded comprehensive simulations of backfill material flow patterns and pressure distributions. The laboratory experiment's backfilling design model was effectively simulated utilizing finite element simulation methodology. Notably, the k-epsilon constants of Cmu emerged as the predominant influential factor within the simulation process. Within the laboratory setting, the designed experimental box featured dimensions of 20 cm in width and 40 cm in height. To optimize functionality, it is imperative to set the pump's flow velocity capacity at 1 m/s, incorporating a safety factor of 2, resulting in a pressure transducer reading of 6700 Pascal. Moreover, for the efficient distribution of flow, the ideal ratio of the outlet to the inlet pipe diameter in the experimental setup should be maintained at 0.33. 2025-05-12T11:38:55Z 2025-05-12T11:38:55Z 2024-03 Thesis http://dspace.mist.ac.bd:8080/xmlui/handle/123456789/907 en application/pdf
spellingShingle TAJIB – UL – ISLAM, MD.
EMON, NEAZ MAHMUD
LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE
title LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE
title_full LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE
title_fullStr LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE
title_full_unstemmed LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE
title_short LABORATORY EXPERIMENT DESIGN FOR BACKFILLING IN BARAPUKURIA COAL MINE
title_sort laboratory experiment design for backfilling in barapukuria coal mine
url http://dspace.mist.ac.bd:8080/xmlui/handle/123456789/907
work_keys_str_mv AT tajibulislammd laboratoryexperimentdesignforbackfillinginbarapukuriacoalmine
AT emonneazmahmud laboratoryexperimentdesignforbackfillinginbarapukuriacoalmine