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首頁» 過刊瀏覽» 2024» Vol.9» lssue(1) 130-147???? DOI : 10.3969/j.issn.2096-1693.2024.01.010
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電潛泵氣液兩相流工況水力增壓性能預測模型
朱建軍, 姬煜晨, 彭建霖, 朱海文
1 中國石油大學( 北京) 機械與儲運工程學院,,北京 102249 2 中海油研究總院,,北京 100027 3 塔爾薩大學石油工程系,塔爾薩74104,,美國
A new mechanistic model on boosting pressure of Electrical Submersible Pumps (ESPs) under gas-liquid two-phase flow
ZHU Jianjun, JI Yuchen, PENG Jianlin, ZHU Haiwen
1 College of Mechanical and Transportation Engineering, China University of Petroleum-Beijing, Beijing 102249, China 2 CNOOC Research Institute Ltd. Drilling and Production Research Dept., Beijing 100027, China 3 McDougall School of Petroleum Engineering, The University of Tulsa, Tulsa 74104, USA

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摘要? 電潛泵自20 世紀以來廣泛應用于海上和非常規(guī)油氣田,來提高油井的生產效率,是一種革命性的油田生產方法,,主要適用于自然壓力和能量不足的井,。潛水離心泵最初是用于抽取礦井中積水而開發(fā)的。阿邁斯·阿魯圖諾夫開發(fā)了第一臺用于油井生產的電潛泵。此后電潛泵逐漸在石油行業(yè)中廣為人知并流行起來。然而,電潛泵對流動條件非常敏感,,為了提高其耐受性、效率,、可靠性以及適應惡劣和復雜的井下流動條件,,電潛泵經歷了許多重大的技術改進。目前電潛泵通常由電動機,、密封和一系列離心泵級組成,,非常適合于高產的深井和偏斜井中,也常用于非常規(guī)井,,如頁巖油井,。因此,電潛泵的耐氣性,、粘度影響以及長期開采能力已經引起了重大關注,。由于其內部流動規(guī)律復雜,兩相混輸風險高,,高粘/氣液兩相流工況下耐受極限和長效開采能力受限,,嚴重制約了電潛泵在深水和非常規(guī)油氣田安全高效開采中的運用。本文基于歐拉方程,,利用最佳流速概念推導回流,、摩擦和泄漏等損失,提出了適用于井下旋轉電潛泵復雜工況下增壓性能預測的理論模型,。針對氣液兩相流動,,該模型基于離心場中兩相的力學分析,,建立旋轉葉輪內部體含氣率模型,并根據流型選擇曳力系數(shù),,計算兩相滑移效應,,修正混合相密度,進而提升揚程預測的準確性,。模型預測和實驗數(shù)據的對比驗證了該模型預測的精度和可靠性均高于文獻中常見的計算方法,。本文所提出的方法可準確預測油的粘度、含水乳化液和氣液流對泵性能的影響,。該模型可幫助泵工程師開發(fā)新的電潛泵幾何形狀,,同時幫助人工舉升工程師改進油井完井舉升工藝設計。
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關鍵詞 : 電潛泵,采油工程,性能預測,理論建模,氣液兩相流
Abstract

Electrical Submersible Pumps (ESPs) are widely used in offshore and unconventional oil/gas fields to increase production and efficiency since 20th century. It is a revaluation oil production method, which is particularly used in wells with less sufficient natural pressure and energy. The submerged centrifugal pump was firstly developed to pump water in mines, and Armais Arutunoff developed the first ESP that used in oil wells, which later became popular and well-known in the industry. However, the ESP is very sensitive to flow conditions, and it has undergone significant technological advancements to improve their tolerance, efficiency, reliability, and adaptability to hash and complex downhole flow conditions. ESPs are usually comprised with an electric motor, seal, and a series of centrifugal pump stages, and are widely adept at handling high-volume fluid lifting in deep and deviated wells. Nowadays. ESPs are also commonly used in unconventional wells, like shale-oil wells. Therefore, the gas tolerance ability, viscosity effect, and long-term exploitation capability of ESPs have drawn significant attention. Due to the compact assembly and high-shear flow field in a rotating impeller, the gas-liquid two-phase flow inside ESPs is complicated, bringing in high risks for two-phase transportation and difficulties for safety control. Thus, the applications of ESP-based artificial lift technology in offshore and unconventional oil/gas fields for safe and efficient production is restricted considerably. In this work, aiming at the difficulties of performance prediction for ESPs under multiphase flow, a novel mechanistic model to predict the boosting pressure in ESPs is proposed. The new model starts form from Euler equations and introduces a best-match flowrate at which the flow direction at ESP impeller outlet matches the designed flow direction. The mismatch of velocity triangle in a rotating impeller is result from the varying liquid flow rates. Losses due to flow direction change, friction, and leakage etc., were incorporated in the model. Based on the force balance on a stable gas bubble in a centrifugal flow field, the in-situ gas void fraction inside a rotating ESP impeller can be estimated, from which the gas-liquid mixture density is calculated. The predicted ESP boosting pressures match the corresponding experimental measurements with acceptable accuracy. The proposed method can be used to accurately predict the the oil viscosity, water-cut emulsion, and gas-liquid flow effect on pump performance. The model can be used to help pump engineer to develop new pump geometries, as well as help artificial lift engineer to improve well completion design.

Key words: electrical submersible pump; petroleum production; performance prediction; mechanistic modeling; gas-liquid twophase flow
收稿日期: 2024-02-29 ????
PACS: ? ?
基金資助:國家自然科學基金青年基金( 項目號:52004304) 和中央高校基本科研業(yè)務費專項資金( 項目號:20190184, 20200127) 聯(lián)合資助
通訊作者: [email protected]
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朱建軍, 姬煜晨, 彭建霖, 朱海文. 電潛泵氣液兩相流工況水力增壓性能預測模型. 石油科學通報, 2024, 01: 130-147 ZHU Jianjun, JI Yuchen, PENG Jianlin, ZHU Haiwen. A new mechanistic model on boosting pressure of Electrical Submersible Pumps (ESPs) under gas-liquid two-phase flow. Petroleum Science Bulletin, 2024, 01: 130-147.
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