键合图
原动机
计算机科学
弦(物理)
定子
系统建模
图形
算法
控制理论(社会学)
控制工程
拓扑(电路)
模拟
机械工程
工程类
理论计算机科学
数学
人工智能
电气工程
软件工程
组合数学
控制(管理)
数学物理
作者
Jeronimo de Moura,Geoff Rideout,Stephen Butt
标识
DOI:10.1115/omae2020-18845
摘要
Abstract One commonly used pump in the petroleum sector is the Progressing Cavity Pump (PCP). The PCP is a type of positive displacement pump that is used as an artificial lifting system which consists of a helical rotor and elastomeric stator. A mathematical solution to a PCP system model requires that we solve a partial differential equation system. The solution is inherently complex and requires considerable computational time. This paper uses the bond graph formalism, which is based on energy and information flow, to implement a model of a PCP system. Its purpose is to predict the dynamic response of the PCP system when it is subjected to a specific reservoir condition. Specifically focusing on the rod string, the torsional effects are captured by a lumped segment approximation. The software 20-Sim© was used to simulate a realistic PCP system application scenario. The model presented in this paper is able to determine the prime mover, rod string, and other component requirements. This paper shows that the multi-body lumped segment model is a useful way to simulate the rod string performance. The bond graph is effective at modeling the PCP system which contains elements from different energy domains.
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