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Physics of failure analysis of power section assembly for positive displacement motor

机译:正排量电动机动力部分总成故障分析的物理原理

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Power section assembly is the core part of positive displacement motor (PDM), and its mechanical behavior and service life determine the drilling efficiency and cycle. In this paper, fault tree of power section assembly was established, failure reasons were analyzed and improvement measures were put forward. Finite element models of conventional lining and uniform wall thickness lining of 5/6 PDM were established, and the mechanical behaviors were investigated. Working parameters such as drilling fluid pressure, rubber hardness, downhole temperature and pressure difference were discussed. The results show that wear and rust are the main failure modes of the rotor. Failure modes of rubber lining are wear, tear, rupture, peeling off, thermal failure and fatigue failure. Under the action of drilling fluid pressure, the maximum effective stress of rubber lining appears in the bottom of arc, and the minimum stress appears at the top of arc. But deformation distribution is opposite to the effective stress. Deformation of uniform wall thickness lining is more uniform. Effective stress of the lining increases with the increasing of drilling fluid pressure and rubber hardness, but it decreases with the downhole temperature increases. Deformation of the lining increases with the drilling fluid pressure increases, but it decreases with the increasing of rubber hardness and downhole temperature. Effective stress and deformation distribution of rubber lining are more uneven with the pressure difference increases. High stress area lies between the two smallest chambers. (C) 2016 Elsevier Ltd. All rights reserved.
机译:动力部分的组装是容积式电动机(PDM)的核心部分,其机械性能和使用寿命决定了钻井效率和周期。本文建立了动力段总成的故障树,分析了故障原因并提出了改进措施。建立了常规衬砌和均匀壁厚5/6 PDM衬砌的有限元模型,并研究了其力学性能。讨论了钻井液压力,橡胶硬度,井下温度和压差等工作参数。结果表明,磨损和生锈是转子的主要失效方式。橡胶衬里的失效模式是磨损,撕裂,破裂,剥落,热失效和疲劳失效。在钻井液压力的作用下,橡胶衬里的最大有效应力出现在弧形的底部,最小应力出现在弧形的顶部。但是变形分布与有效应力相反。壁厚均匀的衬里变形更加均匀。衬砌的有效应力随钻井液压力和橡胶硬度的增加而增加,但随井下温度的升高而减小。衬里变形随钻井液压力的增加而增加,但随橡胶硬度和井下温度的增加而减小。随着压力差的增加,橡胶衬里的有效应力和变形分布更加不均匀。高应力区域位于两个最小的腔室之间。 (C)2016 Elsevier Ltd.保留所有权利。

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