Study of the ultrasonic propagation law in the gas–liquid two-phase flow of deepwater riser through numerical simulation
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Study of the ultrasonic propagation law in the gas–liquid two-phase flow of deepwater riser through numerical simulation

机译:用数值模拟研究深水提升机气液两相流超声波繁殖法

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AbstractIn the drilling of deepwater wells, early detection of gas kicks is a crucial and difficult well-control task. A common and advantageous method is the underwater ultrasonic monitoring of the gas–liquid two-phase flow of deepwater risers. This study focuses on the problems of the early-stage ultrasonic monitoring of gas kicks in deepwater risers, and combines theoretical analysis and experimental verification to establish a method for finite element numerical simulation of ultrasonic wave propagation in the gas–liquid two-phase flow of a deepwater riser annulus. The acoustic-solid coupling module of COMSOL Multiphysics software was adopted. Through pattern analysis of ultrasonic wave propagation under different conditions, the sensitivity analysis was carried out by combining time domain and frequency domain analysis. Through analysis, two characteristic parameters of ultrasonic signals sensitive to the gas–liquid ratio, namely, the amplitude standard deviation (S) and frequency domain mean (μ) were selected. Their degrees of sensitivity to gas bubble size and density were analyzed to determine the optimal installation location of an ultrasonic receiver probe. And the optimal installation locations were located at 66°–88° and ?66°??88° of the arc area. Finally, a quantitative relationship between the ultrasonic signal characteristic parameters (S and μ) and the void fractions of risers (β) was established by using two-factor regression analysis. It was proved that its relative error was 4.5%, which was less than the acceptable error threshold of 5%, thus meeting the engineering requirements.Highlights?A numerical simulation method of ultrasonic propagation in the gas–liquid two-phase flow of deepwater riser was established.?The study confirmed S and μ to represent the sensitive characteristic parameters of ultrasonic signals in relation toβ.?Two-factor regression analysis was employed to establish the quantitative relationship betweenμ, S, andβ.?The optimal locations of ultrasonic receiver probe for early gas kick detection were analyzed.]]>
机译:<![CDATA [ 抽象 在深水井的钻井中,早期检测气体踢球是一个至关重要的良好的控制任务。一种常见的和有利的方法是深水提升管气液两相流的水下超声波监测。本研究重点介绍了深水提升管中气体踢的早期超声波监测的问题,并结合了理论分析和实验验证,建立了在气液两相流中超声波传播的有限元数值模拟的方法深水提升管环。采用COMSOL Multiphysics软件的声学 - 固体耦合模块。通过不同条件下超声波传播的图案分析,通过组合时域和频域分析来进行灵敏度分析。通过分析,选择了对气液比敏感的超声波信号的两个特征参数,即选择幅度标准偏差和频域平均值(μ)。分析了对气泡尺寸和密度的敏感度,以确定超声波接收器探头的最佳安装位置。最佳安装位置位于66°-88°且圆弧区域的88°88°。最后,通过使用双因素回归分析建立了超声信号特征参数(S和μ)与升序的空隙分数(β)之间的定量关系。事实证明,其相对误差为4.5%,低于可接受的误差阈值5%,从而满足工程要求。 亮点 建立了深水提升管的气液两相流中超声波传播的数值模拟方法。 研究证实的S和μ表示超声波信号的敏感特性参数与β相关。 两个 - 采用因子回归分析来建立μ,s和β之间的定量关系。 超声波接收器探头的最佳位置分析了早期气体循环检测。 ]]>

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