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二氧化碳驱动用储层微观界限研究 被引量:25
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作者 邓瑞健 田巍 +2 位作者 李中超 赵良金 戴厚柱 《特种油气藏》 CAS CSCD 北大核心 2019年第3期133-137,共5页
为深入研究CO2驱动用储层的微观界限,采用微观可视化模型与岩心实验相结合的方法,分别研究了CO2驱的微观驱替特征和微观作用孔喉范围,进一步验证了CO2驱是老油田效益开发可行的技术手段。研究表明:CO2具有较高的洗油效率,并具有扩大波... 为深入研究CO2驱动用储层的微观界限,采用微观可视化模型与岩心实验相结合的方法,分别研究了CO2驱的微观驱替特征和微观作用孔喉范围,进一步验证了CO2驱是老油田效益开发可行的技术手段。研究表明:CO2具有较高的洗油效率,并具有扩大波及体积的作用,CO2可将孔道中的原油驱替采出,能将孔道中的剩余油抽提采出;在水驱的基础上CO2将动用储量微观空间降低一个数量级,使孔喉半径大于10-2μm以上的原油储集空间都成为CO2驱可动用空间,增加了可动用储量范围。采用CO2驱新增可动用储量达20. 00个百分点以上,渗透率越低,水驱后采用CO2驱新增可动用储量越多。研究成果为CO2驱的实施提供了理论基础,同时也为老油田效益开发提供重要参考。 展开更多
关键词 动用储量 剩余油 孔喉空间 饱和度 微观界限
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Microstructure and mechanical behavior of Ti/Cu/Ti laminated composites produced by corrugated and flat rolling 被引量:2
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作者 Zhu-bo LIU Xin-yue WANG +4 位作者 Ming-shuo LIU Yuan-ming LIU Jiang-lin LIU A.V.IGNATOV Tao WANG 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2022年第8期2598-2608,共11页
Ti/Cu/Ti laminated composites were fabricated by corrugated rolling(CR) and flat rolling(FR) method.Microstructure and mechanical properties of CR and FR laminated composites were investigated by scanning electron mic... Ti/Cu/Ti laminated composites were fabricated by corrugated rolling(CR) and flat rolling(FR) method.Microstructure and mechanical properties of CR and FR laminated composites were investigated by scanning electron microscopy, numerical simulation methods, peel and tensile examinations. The effect of CR and FR was comparatively analyzed. The results showed that the CR and FR laminated composites exhibited different effective plastic strain distributions of the Ti layer and Cu layer at the interface. The recrystallization texture, prismatic texture and pyramidal texture were developed in the Ti layer by CR, while the R-Goss texture and shear texture were developed in the Cu layer by CR. The typical deformation texture components were developed in the Ti layer and Cu layer of FR laminated composites. The CR laminated composites had higher bond strength, tensile strength and ductility. 展开更多
关键词 Ti/Cu/Ti laminated composites corrugated rolling flat rolling bond strength interfacial microstructure finite element analysis
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