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Experiments and transient simulation on spring-loaded pressure relief valve under high temperature and high pressure steam conditions

机译:高温高压蒸汽条件下弹簧式溢流阀的试验与瞬态模拟

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摘要

Reliable performances of high temperature and high pressure operating steam pressure relief valves (HTHP PRVs) are extremely important for the safety of nuclear power plants. It is still a challenge to accurately describe the dynamic performance of HTHP PRVs. In this study, the accuracy of computational fluid dynamics (CFD) based modelling of the transient processes is examined. For one of the HTHP PRVs named DWPRV, the effects of different parameters on the dynamic performance were investigated by combining CFD simulation and experiments. In the simulation, the domain decomposition method (DDM) and the Grid Pre-deformation Method (GPM) were adopted to handle the moving disk geometry and the large mesh deformation. The effect of damping was also studied. It is confirmed that the use of CFD simulation can improve the design and settings of a HTHP PRV in a highly energetic service that is difficult to test due to safety reasons. For the DWPRV, it was found that the maximum flow rate occurs when the curtain area is 1.18 times the throat area. The degree of superheat ranging from 0 C to 100 C has a negligible effect on the performance of DWPRV regardless of the changes in the material mechanical properties with operating temperatures. The reseating pressure increases linearly with the rise in the distance between the upper adjusting ring and the sealing face. The lower adjusting ring exhibits a weak effect on the reseating pressure. For the ratios of rated lift to throat diameter equalling to 0.3 and 0.35, the DWPRV exhibits the higher blowdown for the ratio of 0.35
机译:高温高压操作蒸汽减压阀(HTHP PRV)的可靠性能对于核电厂的安全至关重要。准确描述HTHP PRV的动态性能仍然是一个挑战。在这项研究中,检查了基于计算流体动力学(CFD)的瞬态过程建模的准确性。对于其中一种名为DWPRV的HTHP PRV,通过结合CFD仿真和实验研究了不同参数对动态性能的影响。在仿真中,采用了区域分解法(DDM)和网格预变形法(GPM)处理动盘几何形状和较大的网格变形。还研究了阻尼的影响。可以肯定的是,使用CFD仿真可以改善高安全性服务中HTHP PRV的设计和设置,该服务由于安全原因而难以测试。对于DWPRV,发现当幕面积为喉部面积的1.18倍时会出现最大流量。无论材料机械性能随工作温度如何变化,从0°C到100°C的过热度对DWPRV的性能影响都可以忽略不计。复位压力随着上调节环和密封面之间距离的增加而线性增加。下调节环对复位压力的作用较弱。对于额定升力与喉道直径之比等于0.3和0.35的情况,当DWPRV的比率为0.35时,其排污量较高

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