期刊文献+

含气条件对井下油水分离旋流器性能影响的数值模拟 被引量:4

Numerical Simulation Study of Gas Content's Effect on Performance of Oil-Water Separation Cyclone
在线阅读 下载PDF
导出
摘要 为探究气体对井下油水旋流器性能的影响规律,针对新型螺旋流道倒锥式旋流器,采用Fluent软件对气液比分别为0.01、0.03、0.05、0.08、0.10时旋流器的油相分布进行模拟分析。通过对比分析发现:不含气时旋流器的分离效率为89.31%;在结构参数和分流比不变的条件下,旋流器分离效率随气液比的增加呈降低趋势,气液比为0.10时,分离效率为36.90%;气液比越大,溢流口的油相体积分数越小,底流口的油相体积分数越大;溢流口和底流口的压力损失随气液比的增大而递减。 In order to explore gas content's influence on the performance of oil-water cyclones underground,the Fluent software was employed to simulate and analyze cyclone' s oil phase distribution when gas-liquid ratio stays at 0.01,0.03,0.05,0.08 and 0.10,respectively.Comparative analysis shows that cyclone's separation efficiency can reach 89.31% when no any gas can be found there; and the cyclone separation efficiency decreases with the increase of gas-liquid ratio; and for a gas-liquid ratio of 0.10,the efficiency can reach 36.90% ; higher gas-liquid ratio brings about smaller oil phase volume fraction at the overflow port and higher oil phase volume fraction at the underflow port,and the pressure loss at both overflow and underflow ports decreases with the increase of gas-liquid ratio.
出处 《化工机械》 CAS 2014年第5期629-632,共4页 Chemical Engineering & Machinery
基金 国家"863"计划课题资助项目(2012AA061303)
关键词 旋流器 井下分离 气液比 分离效率 油相体积分数 cyclone separation underground gas-liquid ratio separation efficiency oil phase volume fraction
  • 相关文献

参考文献5

二级参考文献47

共引文献98

同被引文献53

  • 1马艺,金有海,王振波.两种不同入口结构型式旋流器内的流场模拟[J].化工进展,2009,28(S1):497-501. 被引量:21
  • 2李福军,曹广胜,夏惠芬,王德喜.聚合物溶液流变特性试验研究[J].石油钻采工艺,1997,19(2):72-75. 被引量:6
  • 3GONG Guangcai, YANG Zhouzhou, ZHU Shaolin. Numerical investigation of the effect of helix angle and leaf margin on the flow pattern and the performance of the axial flow cyclone separator[J]. Applied MathematicalModelling, 2012, 36 (8): 3916-3930.
  • 4史仕荧,吴应湘,许晶禹,等.导流片型管道式分离器油水分离结构优化[C].第十三届全国水动力学学术会议暨第二十六届全国水动力学研讨会,青岛,2014:1063-1067.
  • 5杨磊,李宝军,胡平.网格变体方法的工程应用与进展综述[C]//中国计算力学大会2014暨第三届钱令希计算力学奖颁奖大会,贵阳,2014.
  • 6B1ANCOLINI Marco Evangelos. Mesh morphing accelerates design optimization[E/OL]. Rome, Italy, 2010. http://www.ansys.com/ staticassets/ANSYS/staticassets/resourcelibrary/article/AA-V4-I 1 - Mesh-Morphing-Accelerates-Design-Optimization.pdf.
  • 7JEMCOV Aleksandar, MARUSZEWSKI Joseph. Shape optimization based on downhill simplex optimizer and free-form deformation in general purpose CFD code[C]// 17th Annual Conference of CFD Society of Canada, Ottawa, Ontario, Canada, 2009.
  • 8MURUGAN S, WOODS B K S, FRISWELL M I. Hierarchical modeling and optimization of camber morphing airfoil[J]. Aerospace Science and Technology, 2015, 42 (2): 31-38.
  • 9BIANCOLINI Marco Evangelos. Advanced mesh morphing for automotive applications using RBF Morph[C]//Automotive Simulation World Congress, Frankfurt am Main, Germany, 2013.
  • 10RAIDL Gtinther R, WUTM Christian. Approximation with evolutionary optimized tensor product Bemstein Polynomials[A]. Karlsplatz 13, 1040Vienna, Austria, 2003.

引证文献4

二级引证文献21

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部