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SIMULATING PRESSURE TRANSIENT EVENTS IN THE FUEL GAS SUPPLY TO A MULTI-BLOCK COMBINED CYCLE PLANT

机译:模拟燃料气体供应中的压力瞬态事件到多块组合循环厂

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As power plant combustion turbines (CTs) are pushed towards higher thermal efficiencies, increased attention is being given to operating requirements for their fuel gas supply such as the maximum allowable rate-of-change in pressure. It is important to perform detailed analyses for multi-unit plants to ascertain whether pressure transient events, such as those caused by initial trip of one or two combustion turbines, will cause additional combustion turbines to trip off. In this paper, single and dual CT trips were postulated in a near-realistic combined cycle power plant. Predictions of the gas flow behavior, along with propagation and superposition of pressure waves, was carried out using the method of characteristics (MOC) for compressible flows. Specifically, the rate of change in fuel gas supply pressure to each CT was monitored and compared against a typical manufacturer limit of 0.8 bar/s. Instances where simulations showed this threshold exceeded were noted, since such events correspond to automatic valve closure that would shut down one more CT and thereby further reduce plant electrical output. The overall goal of fuel gas transient analyses is to improve pipeline designs, iteratively when necessary, such that those additional trips are avoided. To that end, this paper presents several simulation cases to illustrate pressure transient phenomena and to show the impact of various pipeline design alterations, some of which caused 40% reductions in the worst pressure rate-of-change during simulations.
机译:随着发电厂燃烧涡轮机(CTS)推动较高的热效,因此对其燃料气体供应的操作要求进行增加,例如压力最大允许的变化率。重要的是要对多单元设备进行详细分析,以确定压力瞬变事件是否是由一个或两个燃烧涡轮机的初始行程引起的压力瞬变事件,将导致额外的燃烧涡轮机撤销。本文在近乎逼真的联合循环发电厂假设单一和双CT次数。使用用于可压缩流动的特性(MOC)的方法进行气流行为的预测以及压力波的传播和叠加。具体地,监测燃料气体供应压力的变化率,并与0.8巴/秒的典型制造商限制进行比较。仿真显示出该阈值超过的情况,因为这种事件对应于自动阀闭合,其将再次关闭一个CT,从而进一步降低植物电输出。燃料气体瞬态分析的总体目标是在必要时迭代地改善管道设计,从而避免额外的旅行。为此,本文提出了几种模拟案例,以说明压力瞬态现象,并展示各种管道设计改变的影响,其中一些在模拟期间导致最差压力变化的40%。

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