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首页> 外文期刊>Thermal science >Fluid dynamic forces in the main steam pipeline of thermal power plant upon stop valves closure
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Fluid dynamic forces in the main steam pipeline of thermal power plant upon stop valves closure

机译:止动阀闭合时热电厂主蒸汽管道中的流体动力力

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A steam turbine trip is followed by a prompt closure of stop valves in front of the turbine and consequently to a pressure rise in the main steam pipeline. This steam hammer transient leads to the generation of intensive fluid dynamic forces that act along the pipeline axis and induce additional dynamic loads on the main steam pipeline. It is a common practice to assume a simultaneous closure of all stop valves in the safety analysis of the main steam pipeline. In the present paper computer simulations and analyses of the fluid dynamic forces are performed for several scenarios that take into account the possibility of delayed closure of the stop valve in front of the turbine. The influence of the failure of the steam by-pass line opening is considered too. The results show that the delay of the stop valve closure increases the maximum intensity of fluid dynamic force in the pipeline segment in front of the stop valve and decreases the intensity of fluid dynamic forces in segments along the pipeline. The failure of the by-pass line to open leads to prolonged steam pressure and fluid dynamic forces oscillation in pipeline segments. The simulations were performed with the in-house computer code based on the method of characteristics for the solving of the hyperbolic system of PDE that represent the mass, momentum and energy balance equations of the 1-D, compressible and transient fluid-flow. The obtained results are a support to safety analyses of thermal power plants under transient conditions.
机译:蒸汽轮机跳闸之后是促进涡轮机前面的止动阀的螺母,因此在主蒸汽管道中的压力升高。该蒸汽锤瞬态导致产生沿管道轴起作用的密集流体动力力,并在主蒸汽管道上引起额外的动态载荷。在主蒸汽管道的安全性分析中,假设在主蒸汽管道的安全性分析中同时闭合所有止动阀。在本文的计算机模拟和分析中,对若干场景进行了几种情况,考虑到涡轮机前面的止动阀延迟关闭的可能性。也考虑了蒸汽旁路开线失效的影响。结果表明,止动阀闭合的延迟增加了停止阀前面的管道段中的流体动力量的最大强度,并降低了管道沿线段中的流体动力力的强度。旁路线路打开的故障导致蒸汽压力和流体动力学振荡在管道区段中。基于用于求解PDE的双曲线系统的特性方法,用内部计算机代码进行模拟,其代表1-D,可压缩和瞬态流体流动的质量,动量和能量平衡。获得的结果是在瞬态条件下对热电厂的安全分析的支持。

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