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THE EFFECTS OF PULSATIONS ON THE SURGE MARGIN OF CENTRIFUGAL COMPRESSORS IN STATIONS WITH BOTH RECIPROCATING AND CENTRIFUGAL COMPRESSORS

机译:往复式和离心式压缩机站中离心压缩机浪涌浆料对离心式压缩机的影响

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Mixed operation with both centrifugal and reciprocating compressors in a compression plant poses significant operational challenges as pressure pulsations and machine mismatches lead to centrifugal compressors' instabilities or poor performance. Arrangements with reciprocating compressors placed in series with centrifugal compressors generally lead to higher suction/discharge pulsations on the centrifugal compressor than conventional parallel operation. This paper demonstrates that by properly analyzing and designing the interconnecting piping between the compressors, utilizing pulsation attenuation devices, and matching the compressors' volumetric-flow rates, a satisfactory functional compression system design can be achieved for even the worst cases of mixed centrifugal and reciprocating compressor operation. However, even small analysis errors, design deviations, or machine mismatches result in a severely limited (or even inoperable) compression system. Also, pulsation attenuation often leads to a significant pressure loss in the interconnect piping system. Utilizing analysis tools in the design process that can accurately model the transient fluid dynamics of the piping system, the pulsation attenuation devices, and the compressor machine behaviors is critical to avoid potentially costly design mistakes and minimize pressured losses. This paper presents the methodology and examples of such an analysis using a 1-D transient Navier-Stokes code for complex compression piping networks. The code development, application, and example results for a set of mixed operational cases are discussed. This code serves as a design tool to avoid critical piping layout and compressor matching mistakes early in the compressor station design process.
机译:与压缩设备中的离心和往复式压缩机的混合操作在压力脉动和机器不匹配导致离心压缩机的不稳定或性能不佳时构成了显着的操作挑战。往复式压缩机的布置与离心式压缩机串联放置在离心式压缩机上的较高吸入/放电脉动而不是传统的并联操作。本文表明,通过适当地分析和设计压缩机之间的互连管道,利用脉动衰减装置和匹配压缩机的体积流速,可以实现令人满意的功能压缩系统设计,以实现混合离心和往复运动的最糟糕的情况压缩机操作。然而,即使是小的分析错误,设计偏差或机器错配导致严重限制的(或甚至无法操作)的压缩系统。而且,脉动衰减通常导致互连管道系统中的显着压力损失。利用分析工具在设计过程中,可以准确地模拟管道系统的瞬态流体动力学,脉动衰减装置和压缩机机器行为对于避免潜在的昂贵设计错误并最大限度地减少压力损失至关重要。本文介绍了使用1-D瞬态Navier-Stokes代码进行复杂压缩管道网络的这种分析的方法和示例。讨论了一组混合操作案例的代码开发,应用和示例结果。此代码用作设计工具,以避免在压缩机站设计过程中早期临界管道布局和压缩机匹配错误。

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