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		<identifier>oai:zbc.uz.zgora.pl:97200</identifier>
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<dc:title xml:lang="pl"><![CDATA[Numerical Simulation of Unconfined Compression Tests of Sandstone Using the Discrete Element Method in LS-DYNA]]></dc:title>
<dc:creator><![CDATA[Rahman, Muhammad Ashiqur]]></dc:creator>
<dc:creator><![CDATA[Nordin, Nur Syafiq Aiman]]></dc:creator>
<dc:creator><![CDATA[Shahrin, Muhammad Irfan]]></dc:creator>
<dc:creator><![CDATA[Abdullah, Rini Asnida]]></dc:creator>
<dc:creator><![CDATA[Yunus,Nor Zurairahetty Mohd]]></dc:creator>
<dc:subject xml:lang="pl"><![CDATA[unconfined compression test]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[discrete element method]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[LS-DYNA software]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[mesh convergence]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[sandstone rock]]></dc:subject>
<dc:description xml:lang="pl"><![CDATA[This study presents a numerical simulation of unconfined compression tests (UCTs) on sandstone, utilizing the Discrete Element Method (DEM) in LS-DYNA. The primary objective of this research was to find an optimal mesh configuration to imitate the laboratory testing process by numerical modeling to enhance the reliability of data and reduce the time and cost required for complex experiments. Laboratory-derived rock properties were integrated into the DEM simulation as input parameters.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[Five numerical models were simulated with varying mesh densities to optimize mesh size. The results were validated by comparing failure mode, stress-strain curves, and uniaxial compressive strength (UCS) with experimental data. A model with a mesh size of 40/30 elements illustrated the closest correlation to the laboratory test, exhibiting a similar stress-strain curve pattern and a minimal UCS difference of 2.62%. Additionally, the failure modes observed in both simulations aligned closely.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[This similarity between the results of the laboratory experiment and the numerical model proves the efficiency of the numerical model in simulated laboratory tests and offers an opportunity to calibrate the micro-parameters of other constitutive models which can save both the time and money required to determine complex parameters, especially avoiding the risk of critical laboratory experiments.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[tytuł dodatkowy: Prace z Inżynierii Lądowej i Środowiska]]></dc:description>
<dc:publisher><![CDATA[Zielona Góra: Oficyna Wydawnicza Uniwersytetu Zielonogórskiego]]></dc:publisher>
<dc:contributor><![CDATA[Kuczyński, Tadeusz - red.]]></dc:contributor>
<dc:date><![CDATA[2025]]></dc:date>
<dc:type xml:lang="pl"><![CDATA[artykuł]]></dc:type>
<dc:format xml:lang="pl"><![CDATA[application/pdf]]></dc:format>
<dc:identifier><![CDATA[http://www.zbc.uz.zgora.pl/repozytorium/Content/97200/ceer_2025_2_14_rahman_numerical.pdf]]></dc:identifier>
<dc:identifier><![CDATA[https://zbc.uz.zgora.pl/repozytorium/dlibra/publication/109012/edition/97200/content]]></dc:identifier>
<dc:identifier><![CDATA[oai:zbc.uz.zgora.pl:97200]]></dc:identifier>
<dc:source xml:lang="pl"><![CDATA[Civil and Environmental Engineering Reports (CEER), no 35, vol. 2]]></dc:source>
<dc:language><![CDATA[eng]]></dc:language>
<dc:relation><![CDATA[oai:zbc.uz.zgora.pl:publication:109012]]></dc:relation>
<dc:rights xml:lang="pl"><![CDATA[Biblioteka Uniwersytetu Zielonogórskiego]]></dc:rights>
<dc:rights xml:lang="pl"><![CDATA[CC 4.0]]></dc:rights>
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