Modeling and characteristic analysis of viscous resistance in annulus gap of coalbed gas well drainage pump

Hao Hu, Fenglian Zhang, Chuan-kai Jing, Bin Wang, Ying-ying Zhang, Y. Qi
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Abstract

The viscous resistance caused by the relative motion of plunger and pump barrel is an important factor in the dynamic analysis of the drainage and production mechanism during coalbed methane exploitation. Existing studies mostly focus on deep well (1000–3000 m) large-displacement pump (usually 80–300 m3/d), and the interstitial medium is mainly crude oil. Regression fitting is mainly carried out based on empirical formula or experimental simulation method, without considering the characteristics of shallower coalbed gas well (400–800 m) small-displacement pump (<10 m3/d). The variation of the clearance between plunger and barrel and the variation of viscous resistance between plunger and barrel are not revealed. Based on the Navier-Stokes equation and Newton's internal friction law, a mathematical model of the annular viscous resistance between the plunger and the pump barrel is established, and an analytical method is used to describe the influence of stroke times, annular clearance, and differential pressure between the upper and lower plungers on the viscous resistance. The results show that the plunger stroke is directly proportional to the variation range of viscous resistance, and low stroke is beneficial to reduce the viscous resistance. The effect of differential pressure between upper and lower plunger of rod pump on viscous resistance of small displacement coalbed gas well is significantly greater than that of plunger running speed. The annular clearance is directly proportional to the differential pressure between the upper and lower parts of the plunger, the inertia force of the plunger, and the shear force of the moving fluid. The annular viscous resistance model between plunger and pump barrel is helpful to improve the calculation accuracy of suspending point load of coalbed gas well pumping unit, analyze the working condition of coalbed gas drainage gas production process, and provide basis for the optimization design of coalbed gas well rod pump clearance.
煤层气气井抽气泵环空间隙粘滞阻力建模及特性分析
柱塞与泵筒相对运动所产生的粘滞阻力是煤层气开采排采机理动力学分析中的一个重要因素。现有研究多集中于深井(1000 ~ 3000 m)大排量泵(通常为80 ~ 300 m3/d),间隙介质以原油为主。回归拟合主要基于经验公式或实验模拟方法进行,未考虑浅层煤层气气井(400-800 m)小排量泵(<10 m3/d)的特点。柱塞与筒体间隙的变化和柱塞与筒体之间的粘滞阻力的变化没有揭示。基于Navier-Stokes方程和牛顿内摩擦定律,建立了柱塞与泵筒之间环空粘性阻力的数学模型,并采用解析方法描述了冲程次数、环空间隙和上下柱塞压差对粘性阻力的影响。结果表明:柱塞行程与黏性阻力的变化范围成正比,较小的行程有利于降低黏性阻力;有杆泵上下柱塞压差对小排量煤层气井粘滞阻力的影响显著大于柱塞运行速度的影响。环空间隙与柱塞上下压差、柱塞惯性力和运动流体的剪切力成正比。柱塞与泵筒间的环空粘性阻力模型有助于提高煤层气气井抽油机悬浮点载荷的计算精度,分析煤层气抽采过程的工况,为煤层气气井抽油泵间隙的优化设计提供依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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