在液体和气体/液体条件下运行的原型涡旋泵的物理性能测试

IF 1.4 4区 工程技术 Q2 ENGINEERING, PETROLEUM Spe Production & Operations Pub Date : 2021-05-01 DOI:10.2118/203407-PA
C. Ejim, Xiao Jinjiang, Lanre Oshinowo
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引用次数: 0

摘要

摆线转子是容积泵,在石油和天然气行业具有潜在的人工举升选择。本研究介绍了一种独特的单级等壁摆线转子泵设计在油和油/空气混合物中运行的物理测试的性能特征。该泵在流动回路中以不同的转速进行了测试。在开始现场原型泵的制造和测试之前,获得了性能结果,以确定泵的潜在设计优化。设计、制造、组装和测试了适用于5.5英寸套管的一级400系列摆线泵的物理原型。使用矿物油和空气作为操作介质。对于给定的泵出口阀设置,泵转速设置为200、250、300和350转/分钟。泵入口处的气体体积分数(GVF)从0%变化到当前泵设计所能处理的最大值。对于每个测试点,测量相应的泵参数。建立了无量纲性能图,用于获得其他流动条件下的泵性能。结果表明,泵的流量随压差的增大而减小,这是容积泵的典型现象。在200和350转/分钟的转速下,在零压差下,泵的最大输送量分别约为190和330 B/D油。泵可以在高达约5.5的压差下提供流量 200转/分钟和15 psi,转速为350转/分钟。在200至350转/分钟的转速范围内,容积效率在30%至73%之间变化,而电力输入在145至191之间变化 W.当泵送油/空气混合物时,当前的摆线转子泵设计可以在250、300和350转/分钟的转速下处理最大15%的GVF。对于某些泵出口压力,总流体流速随着GVF增加到15%而降低。在300至350转/分钟的速度范围内,15%GVF下的体积效率在32%至53%之间变化,而电机电力输入随着GVF的增加而降低,最高可达15%。总之,增加泵转速提高了摆线转子泵的容积效率和气体处理能力。这些观察结果将有助于所需的设计优化,以提高未来现场原型摆线转子泵的性能。这项研究展示了摆线转子作为潜在的人工举升替代品的能力,可以处理液体和气体/液体混合物,用于油田作业中的增压应用。具有额外设计优化的技术可以很容易地集成到油田设备架构中。摆线转子的机械简单性及其紧凑性提供了一种很有前途的人工举升替代品,该替代品可用于石油和天然气工业中液体或气体/液体混合物的井下或地面生产。
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Physical Performance Testing of a Prototype Gerotor Pump Operating in Liquid and Gas/Liquid Conditions
Gerotors are positive displacement pumps and potential artificial lift options in the oil and gas industry. This study presents the performance characteristics from physical testing of a unique one-stage, equal-walled gerotor pump design operating in oil and oil/air mixtures. The pump was tested at various rotational speeds in a flow loop. The performance results were obtained to ascertain potential design optimizations of the pump before embarking on manufacturing and testing of the field prototype pump. A physical prototype of a one-stage 400 series gerotor pump, suitable for application in a 5.5-in. casing, was designed, manufactured, assembled, and tested. Mineral oil and air were used as the operating media. For given pump outlet valve settings, the pump rotational speeds were set to 200, 250, 300, and 350 rev/min. Gas volume fractions (GVFs) at the pump inlet were varied from 0% to the maximum the current pump design could handle. For each test point, the corresponding pump parameters were measured. Dimensionless performance plots were established for obtaining pump performance at other flow conditions. The results showed that pump flow rate decreased with increasing differential pressure, typical of positive displacement pumps. At 200 and 350 rev/min, maximum pump delivery is approximately 190 and 330 B/D of oil, respectively, at zero differential pressure. The pump can supply flow against a differential pressure of up to approximately 5.5 psi at 200 rev/min and 15 psi at 350 rev/min. For the 200 to 350 rev/min speed range, volumetric efficiencies varied from 30 to 73%, whereas the electric power input varied from 145 to 191 W. When pumping oil/air mixtures, the current gerotor pump design can handle 15% GVF maximum, at 250, 300, and 350 rev/min. For certain pump outlet pressures, the total fluid flow rates decreased as the GVF increased to 15%. The volumetric efficiencies at 15% GVF varied from 32 to 53% for the 300 to 350 rev/min speed range, whereas the motor electric power input decreased with increasing GVF up to 15%. In conclusion, increasing the pump rotational speed improves the volumetric efficiency and gas-handling capability of the gerotor pump. These observations will aid in the required design optimization to enhance the performance of the future field prototype gerotor pump. This study presents the capabilities of gerotors as potential artificial lift alternatives to handle liquid and gas/liquid mixtures for boosting applications in oilfield operations. The technology with additional design optimization can be readily integrated into oilfield equipment architecture. The mechanical simplicity of gerotors and their compactness provides a promising artificial lift substitute that may be implemented for downhole or surface production of liquid or gas/liquid mixtures in the oil and gas industry.
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来源期刊
Spe Production & Operations
Spe Production & Operations 工程技术-工程:石油
CiteScore
3.70
自引率
8.30%
发文量
54
审稿时长
3 months
期刊介绍: SPE Production & Operations includes papers on production operations, artificial lift, downhole equipment, formation damage control, multiphase flow, workovers, stimulation, facility design and operations, water treatment, project management, construction methods and equipment, and related PFC systems and emerging technologies.
期刊最新文献
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