新型 Summit ESP 气体分离器提高了效率和流量

Hydro-Helical 气体分离器设计采用了新的分离组件,可影响 100% 通过分离器的流体,同时消除腐蚀并将不同的流体相流引导至交叉流路。

在对独特的多相流系统进行测试期间进行的观察促使了 Hydro-Helical 气体分离器的开发。该测试系统由透明罐组成,用于检查流量状况,以收集整个系统不同点的压力和流量数据,从而提供任何点状况的完整图像。(所有图片均由 Summit ESP 提供)

提出者:

勘探与生产标志

编者注:本文出现在新的 E&P 时事通讯中。请在此处订阅时事通讯 


对气体分离器如何工作的基本理解可能有点神秘,因为涉及所有相关变量:两相流、分离器内部和外部的压力变化、涡流形成、流体的速度和粘度、下游泵的影响、固有的侵蚀问题、单一设计与串联设计等。过去,工程师仅依靠仪器和有根据的假设来设计分离器。 

Summit ESP 投资于经验丰富的人员和新技术,以解开井下机械气体分离的奥秘。Summit ESP 团队研究了改进的测试方法,并最终创建了一个测试系统,可以直观地显示内部各个流态和组件性能,以便更好地理解。该测试系统结合了高速摄影、CFD 验证和增强型仪器,使 Summit ESP 工程师能够研究机械分离器系统的每个组件。Hydro-Helical 气体分离器是这项测试工作以及这些先进技术的产物。  

三个主要关注领域是增加通过分离器的总流体,减少或消除传统气体分离器设计中常见的侵蚀特征,以及最大限度地提高系统每个内部和外部组件的效率。  

Hydro-Helical 气体分离器是 30 年来第一个新的井下动态概念。这种新颖的设计采用了一种新的分离组件,可以影响 100% 通过分离器的流体,同时消除腐蚀并将不同的流体相流引导到交叉流路中。先进的级设计创造了业内最高的总流量范围。

更高性能的元素

所有气体分离器将多相流体吸入分离室,分离气相和液相,将分离的气相流体喷射到井环空中,并向泵提供足够的液相流体。现有的设计各不相同,但它们都存在局限性,包括在较高流速下效率降低。

新型 Hydro-Helical 气体分离器提高了分离器的效率和流速:

  • 入口最大限度地减少了含有固体的流体的流量损失和侵蚀。通过入口的流路允许流体移动阶段以最小的流动方向偏差吸入大量液体。
  • 流体移动级以高流速移动充满固体的多相流体,而不会遭受侵蚀和气锁。经验数据验证了先进级在气体体积分数高达 100% 时的抗气锁能力。该设计允许增加流量,并包含防气锁机构和带有耐磨轴承的推力保护技术。
  • 固定式水螺旋涡流诱导器利用流体流过其螺旋流路来产生离心分离。流路允许高流速,并且分离效率随着流速的增加而增加。诱导轮的入口和出口角度、扩大的横截面和螺距有助于最大限度地减少侵蚀并显着提高分离效率。
  • 受航空航天工业影响的交叉叶片具有可调节的出口,接受来自涡流诱导器和分离室的精确定向的流体相流。改进的轴承系统提供了更高的扭转刚度和对轴的支撑,从而提高了可靠性。

这些组件与水力螺旋分离概念结合使用,可利用流体的动能并在高流速下运行时实现高效分离。智能地利用这种能量可驱动分离并最大限度地减少通过出口的流体再循环和摄入。 

Summit ESP多相流测试系统
带透明罐的多相流测试系统

影响

在对独特的多相流系统进行测试期间进行的观察促使了 Hydro-Helical 气体分离器的开发。该测试系统由透明罐组成,用于检查气体分离器和仪表内部和外部的流动状况,或收集整个系统不同点的压力和流量数据。这提供了任何时候的情况的完整情况。

测试立即凸显了传统气体分离器设计的缺陷。现有的涡流引发机制会产生促进流体重新混合的湍流区域,从而导致复杂且低效的分离。增加穿过传统涡流分离器的流量会增加分离室内的湍流混合区域的规模。 

在一些传统设计中,由于限制而导致的流量损失过大,从而限制了最大流量。这反过来又限制了泵与这些分离器的兼容性,因为由于通过出口吸入流体以满足泵的流体需求而导致效率降低。

Hydro-Helical 气体分离器克服了这些效率降低和流量限制的现象。流量损失最小化和压差管理可实现更高的流速,并在所有流速下实现有效分离。

Summit ESP 传统气体分离器内的混合和分离区域
该特写图像显示了传统气体分离器内部的混合和分离区域,描绘了从左到右增加的流量。 

Hydro-Helical 气体分离器可处理的最大流量比所宣传的传统气体分离器至少高 20%。

气体分离器比较
 

水力螺旋

竞争对手A

竞争对手B

竞争对手C

竞争对手D

400 单流量范围 (BPD)

最大 10000

最大 8000

2000-6000

180-3000

500-4000

400 串联流量范围 (BPD)

最大 12000

最大 8000

2000-6000

180-3000

500-4000

538 单流量范围 (BPD)

最大 20000

最大 15000

2000-15000

1050-9600

1000-7000

538 串联流量范围 (BPD)

最大 24000

最大 15000

2000-15000

1050-9600

1000-7000

% 气体处理

95%+

75%

80%

最大 72%

未知

% 效率

95%+

未知

未知

未知

未知

AR轴承

最多 7 个

3

3

3

3

侵蚀防护

+++

++

++

++

++


单个 Hydro-Helical 气体分离器的性能甚至超过了传统的串联气体分离器。由于传统串联气体分离器固有的设计限制会导致流量损失、再循环和气体吸入,因此与新的水力螺旋设计相比,其性能效率较低。串联水螺旋配置进一步克服了传统串联分离器的局限性,并且总流量提高了 33%。

现场试验数据

初步现场试验数据显示,降水能力显着提高。取消了电潜泵 (ESP) 系统,唯一的变化是用新的 Hydro-Helical 气体分离器替换标准的高流量分离器;然后重新安装 ESP 字符串。更换之前,由于进气压力为 1,400 psi,系统出现性能下降。更换后,泵入口压力降低表明分离器性能比标准高流量分离器有所改善。

Summit ESP Hydro-Helical 气体分离器安装 1

Summit ESP Hydro-Helical 气体分离器前后
安装新的 Hydro-Helical 气体分离器后(迄今为止),性能指标稳定,进气压力降至 1,167 psi。 

与现有井中的现有系统相比,具有 Hydro-Helical 气体分离器的 ESP 系统在多相条件下的运行更加有效。它与较高流量的泵和较高气体体积分数的井一起运行。 


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原文链接/hartenergy

New Summit ESP Gas Separator Provides Increased Efficiency and Flow Rate

The Hydro-Helical gas separator design employs a new separation component that affects 100% of the fluid through the separator, while eliminating erosion and directing distinct fluid-phase streams into crossover flow paths.

Observations made during testing on a unique multiphase flow system prompted development of the Hydro-Helical gas separator. The test system consists of transparent canisters to examine flow conditions for collection of pressure and flow data at different points throughout the system, providing a complete picture of conditions at any point. (All images courtesy of Summit ESP)

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The basic understanding of how a gas separator operates can be somewhat of a mystery because of all the associated variables: two-phase flow, pressure variation both inside and outside the separator, vortex formation, velocity and viscosity of fluids, effect of the pump downstream, inherent erosion issues, single versus tandem designs, and others. In the past, engineers relied solely on instrumentation and educated assumptions for their separator designs. 

Summit ESP invests in experienced personnel and new technology to unlock the mysteries of downhole mechanical gas separation. The Summit ESP team investigated improved methods of testing and, as a result, created a test system that visually displays internal individual flow regimes and component performance for better understanding. This testing system, along with a combination of high-speed photography, CFD validation and enhanced instrumentation, allows Summit ESP engineers to study every component of a mechanical separator system. The Hydro-Helical gas separator is a product of this testing effort, along with these sophisticated technologies.  

The three main areas of focus were to increase the total fluid through the separator, reduce or eliminate erosion characteristics common in traditional gas separator designs, and maximize the efficiency of every internal and external component of the system.  

The Hydro-Helical gas separator is the first new downhole, dynamic concept in 30 years. This novel design employs a new separation component that affects 100% of the fluid through the separator, while eliminating erosion and directing distinct fluid-phase streams into crossover flow paths. The advanced stage design creates the highest total flow range in the industry.

Higher performing elements

All gas separators ingest multiphase fluid into a separation chamber, separate gas and liquid phases, eject separated gas phase fluid into the well annulus, and provide sufficient liquid phase fluid to the pump. Existing designs vary, but they share the limitations including decreased efficiency at higher flow rates.

The new Hydro-Helical gas separator provides increased efficiency and flow rate through the separator:

  • The intake minimizes flow losses and erosion from solids-laden fluid. Flow paths through the intake allow fluid moving stages to ingest large volumes with minimal deviations in flow direction.
  • The fluid moving stages move solids-laden, multiphase fluid at high flow rates without suffering erosion and gas locking. Empirical data validated the advanced stages' immunity to gas locking at gas volume fractions up to 100%. The design allows increased flow rates and contains an anti-gas locking mechanism and thrust protection technology with abrasion-resistant bearings.
  • The stationary hydro-helix vortex inducer uses the flow of fluid through its helical flow paths to create centrifugal separation. The flow paths allow high flow rates, and separation efficiency increases with increased flow rate. The entry and exit angles, expanding cross-section and pitch of the inducer help minimize erosion and significantly improve separation efficiency.
  • The crossover vanes, influenced by the aerospace industry, with adjustable exit ports accept precisely directed fluid-phase streams from the vortex inducer and separation chamber. An improved bearing system provides increased torsional rigidity and support to the shaft, increasing reliability.

These components work in conjunction with the Hydro-Helical separation concept to harness the fluid’s kinetic energy and achieve high-efficiency separation, while operating at a high flow rate. Intelligent use of this energy drives separation and minimizes recirculation and ingestion of fluid through exit ports. 

Summit ESP multiphase flow test system
Multiphase flow test system with transparent canisters

Impacts

Observations made during testing on a unique multiphase flow system prompted development of the Hydro-Helical gas separator. The test system consists of transparent canisters to examine flow conditions—internal and external to the gas separator and instrumentation—for collection of pressure and flow data at different points throughout the system. This provided a complete picture of conditions at any point.

Testing immediately highlighted deficiencies in conventional gas separator designs. Existing vortex inducing mechanisms cause regions of turbulent flow that promote remixing of fluid, resulting in complex and inefficient separation. Increasing flow across a conventional vortex separator increases the scale of turbulent mixing regions within the separation chamber. 

Flow losses due to restrictions are excessive in some conventional designs, limiting maximum flow rate. This in turn limits pump compatibility with these separators, as efficiency decreases due to ingestion of fluid through exit ports to supply the pump’s fluid needs.

The Hydro-Helical gas separator overcomes these efficiency-draining and flow-rate-limiting phenomena. Minimization of flow losses and management of differential pressure allow higher flow rates, with effective separation at all flow rates.

Summit ESP mixing and separating regions inside conventional gas separator
This closeup image shows mixing and separating regions inside a conventional gas separator, depicting increasing flow from left to right. 

The Hydro-Helical gas separator can handle maximum flow rates at least 20% greater than, as advertised, conventional gas separators.

Gas separator comparison
 

Hydro-Helical

Competitor A

Competitor B

Competitor C

Competitor D

400 Single flow range (BPD)

10000 Max

8000 Max

2000-6000

180-3000

500-4000

400 Tandem flow range (BPD)

12000 Max

8000 Max

2000-6000

180-3000

500-4000

538 Single flow range (BPD)

20000 Max

15000 Max

2000-15000

1050-9600

1000-7000

538 Tandem flow range (BPD)

24000 Max

15000 Max

2000-15000

1050-9600

1000-7000

% Gas handling

95% +

75%

80%

72% Max

Not Known

% Efficiency

95% +

Not Known

Not Known

Not Known

Not Known

AR bearings

Up to 7

3

3

3

3

Erosion protection

+++

++

++

++

++


The performance of a single Hydro-Helical gas separator exceeds even conventional tandem gas separators. Due to inherent design limitations in conventional tandem gas separators, which cause flow losses, recirculation and gas ingestion, their performance is inefficient compared to the new Hydro-Helical design. The tandem Hydro-Helical configuration further overcomes the limitations of conventional tandem separators and operates at 33% greater total flow capacity.

Field trial data

Initial field trial data show a marked improvement in drawdown capability. An electrical submersible pumping (ESP) system was pulled, and the only change was replacing a standard, high flow separator with the new Hydro-Helical gas separator; then the ESP string was reinstalled. Before the changeout, the system was experiencing performance degradation due to gas at 1,400 psi intake pressure. After the changeout, the reduced pump intake pressure indicated improvement in separator performance over a standard, high flow separator.

Summit ESP Hydro-Helical gas separator installation 1

Summit ESP Hydro-Helical gas separator before and after
Performance indicators stabilized and intake pressure was reduced down to 1,167 psi after the new Hydro-Helical gas separator was installed (to date). 

Operation of an ESP system with the Hydro-Helical gas separator under multiphase conditions is more effective when compared to current systems in existing wells. It operates with pumps of higher flow rate and in wells with higher gas volume fractions. 


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