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低摩阻耐压防漏低密度水泥浆固井技术 被引量:10
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作者 王鼎 万向臣 杨晨 《钻井液与完井液》 CAS 北大核心 2022年第5期608-614,共7页
长庆苏里格气田刘家沟组地层承压能力低,现有低密度水泥浆体系耐压性能差,受压后密度上升、流变性能差,施工压力高,易发生漏失,造成水泥浆返高不够、封固段固井质量差。为此设计研发了一种低摩阻耐压防漏低密度水泥浆体系,运用紧密堆积... 长庆苏里格气田刘家沟组地层承压能力低,现有低密度水泥浆体系耐压性能差,受压后密度上升、流变性能差,施工压力高,易发生漏失,造成水泥浆返高不够、封固段固井质量差。为此设计研发了一种低摩阻耐压防漏低密度水泥浆体系,运用紧密堆积理论进行水泥浆四级颗粒级配,优选耐压性能优良的减轻材料,选用合适的外加剂形成低摩阻耐压防漏低密度水泥浆配方。水泥浆密度为1.25~1.35 g/cm^(3),范宁摩阻系数降低约50%;耐压性能良好,防漏效果明显,综合性能优良。开展混拌工艺研究,采用纯机械混拌工艺,混拌大样与小样性能吻合率达到99%,保证了混灰质量和效率。在苏里格气田试验应用4口井,固井施工正常,未发生漏失,固井质量合格;施工压力明显降低,固井质量显著提升,为低压易漏地层固井提供有力的技术支撑。 展开更多
关键词 低摩阻 颗粒级配 耐压性能 防漏 混拌工艺 固井
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Improving tribological behavior of friction stir processed A413/SiC_p surface composite using MoS_2 lubricant particles 被引量:2
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作者 M.JANBOZORGI M.SHAMANIAN +1 位作者 M.SADEGHIAN P.SEPEHRINIA 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2017年第2期298-304,共7页
The effect of MoS2 lubricant particles on the microstructure, microhardness and tribological behavior of A413/SiCp surface composite, fabricated via friction stir processing (FSP), was studied. For this purpose, ... The effect of MoS2 lubricant particles on the microstructure, microhardness and tribological behavior of A413/SiCp surface composite, fabricated via friction stir processing (FSP), was studied. For this purpose, the FSP was carried out with tool rotational speed of 1600 r/min, tool travel speed of 25 mm/min and tool tilt angle of 3° through only a “single pass”. The optical and scanning electron microscopies, microhardness and reciprocating wear tests were used to characterize the samples. The results showed that the addition of MoS2 lubricant particles to A413/SiCp surface composite leads to the decrease of friction coefficient and mass loss. In fact, the generation of mechanically mixed layer (MML) containing MoS2 lubricant particles in A413/SiCp/MoS2p surface hybrid composite results in the reduction of metal-to-metal contact and subsequently leads to the improvement of tribological behavior. 展开更多
关键词 friction stir processing surface hybrid composite microstructure MICROHARDNESS tribological behavior
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