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分形物理学在微电子学研究中的应用
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作者 王君 《现代科技译丛(哈尔滨)》 2003年第1期16-17,共2页
当涉及到微电子学时,科学家发现有一种新的形状出现,那就是分形.人们通常看到的分形是在自然界中那些不规则的带分叉的形状,比如叶子、树或雪花等.这样一种非常小的带分叉的重复结构,使这种结构有一种独特的外形,和经典的几何学不相容.
关键词 分形物理学 微电子学 集簇玻璃 磁性维数
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Enhanced permeability mechanism in coal seams through liquid nitrogen immersion:multi-scale pore structure analysis
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作者 LI Xue-long CHEN De-you +5 位作者 LIU Shu-min WANG Deng-ke SUN Hai-tao YIN Da-wei ZHANG Yong-gang GONG Bin 《Journal of Central South University》 2025年第7期2732-2749,共18页
The geological structure of coal seams in China is remarkably varied and complex,with coalbed methane reservoirs marked by significant heterogeneity and low permeability,creating substantial technical challenges for e... The geological structure of coal seams in China is remarkably varied and complex,with coalbed methane reservoirs marked by significant heterogeneity and low permeability,creating substantial technical challenges for efficient extraction.This study systematically investigates the impact of liquid nitrogen immersion(LNI)on the coal’s pore structure and its mechanism of enhancing permeability with a combination of quantitative nuclear magnetic resonance(NMR)analysis,nitrogen adsorption experiments,and fractal dimension calculations.The results demonstrate that LNI can damage the coal’s pore structure and promote fracture expansion through thermal stress induction and moisture phase transformation,thereby enhancing the permeability of coal seams.The T_(2)peak area in the NMR experiments on coal samples subjected to LNI treatment shows a significant increase,the Brunauer-Emmett-Teller(BET)specific surface area decreases to 6.02 m^(2)/g,and the Barrett-Joyner-Halenda(BJH)total pore volume increases to 14.99 mm^(3)/g.Furthermore,changes in fractal dimensions(D_(1)rising from 2.804 to 2.837,and D_(2)falling from 2.757 to 2.594)indicate a notable enhancement in the complexity of the pore structure.With increasing LNI cycles,the adsorption capacity of the coal samples diminishes,suggesting a significant optimization of the pore structure.This optimization is particularly evident in the reconstruction of the micropore structure,which in turn greatly enhances the complexity and connectivity of the sample’s pore network.In summary,the study concludes that LNI technology can effectively improve the permeability of coal seams and the extraction efficiency of coalbed methane by optimizing the micropore structure and enhancing pore connectivity,which offers a potential method for enhancing the permeability of gas-bearing coal seams and facilitating the development and utilization of coalbed methane. 展开更多
关键词 liquid nitrogen immersion(LNI) coal seam pore structure permeability nuclear magnetic resonance(NMR) fractal dimension
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