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现代油气井射孔技术发展现状与展望 被引量:85
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作者 刘合 王峰 +2 位作者 王毓才 高扬 成建龙 《石油勘探与开发》 SCIE EI CAS CSCD 北大核心 2014年第6期731-737,共7页
射孔技术是油气田开发的重要环节。为了适应不同类型油气田开发的要求,经过10多年的发展,先后形成了深穿透聚能射孔、复合射孔、定向射孔、全通径射孔、负压及动态负压射孔、泵送射孔、定面射孔等一系列射孔技术及其配套射孔工艺,一方... 射孔技术是油气田开发的重要环节。为了适应不同类型油气田开发的要求,经过10多年的发展,先后形成了深穿透聚能射孔、复合射孔、定向射孔、全通径射孔、负压及动态负压射孔、泵送射孔、定面射孔等一系列射孔技术及其配套射孔工艺,一方面提高了射孔完井和增产改造效果及作业效率,另一方面通过合理保护储集层,延长了油气藏开发寿命。同时,射孔优化设计方法和射孔检测技术不断丰富和完善,进一步提高了射孔安全性和成功率,并使射孔技术的测试手段和现场应用更加规范。对于非常规致密油气,深层、超深层,薄差层、边底水油层,水平井分段压裂以及老井增产改造,应充分结合油气藏和油气井特点,开展"3D"射孔技术、超深穿透定向射孔技术、高温高压射孔技术、储集层个性化射孔方案制定以及射孔补孔优化方法等技术的研究。 展开更多
关键词 射孔技术 射孔工艺 现状 发展趋势 定面射孔 3d射孔
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Hierarchical 3D mesoporous silicon@graphene nanoarchitectures for lithium ion batteries with superior performance 被引量:20
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作者 Shuangqiang Chen Peite Bao +2 位作者 Xiaodan Huang Bing Sun Guoxiu Wang 《Nano Research》 SCIE EI CAS CSCD 2014年第1期85-94,共10页
Silicon has been recognized as the most promising anode material for high capacity lithium ion batteries. However, large volume variations during charge and discharge result in pulverization of Si electrodes and fast ... Silicon has been recognized as the most promising anode material for high capacity lithium ion batteries. However, large volume variations during charge and discharge result in pulverization of Si electrodes and fast capacity loss on cycling. This drawback of Si electrodes can be overcome by combination with well-organized graphene foam. In this work, hierarchical three-dimensional carbon-coated mesoporous Si nanospheres@graphene foam (C@Si@GF) nanoarchitectures were successfully synthesized by a thermal bubble ejection assisted chemical-vapor-deposition and magnesiothermic reduction method. The morphology and structure of the as-prepared nanocomposites were characterized by field emission scanning electron microscopy, transmission electron microscopy and Raman spectroscopy. When employed as anode materials in lithium ion batteries, C@Si@GF nanocomposites exhibited superior electrochemical per- formance including a high specific capacity of 1,200 mAh/g at the current density of 1A/g, excellent high rate capabilities and an outstanding cyclability. Post-mortem analyses identified that the morphology of 3D C@Si@GF electrodes after 200 cycles was well maintained. The synergistic effects arising from the combination of mesoporous Si nanospheres and graphene foam nanoarchitectures may address the intractable pulverization problem of Si electrode. 展开更多
关键词 silicon anode graphene foam chemical vapor deposition lithium ion battery
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