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DEVELOPMENT OF HIGH PERFORMANCE MOISTURE SEPARATOR REHEATER

机译:高性能除湿机的开发

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Moisture Separator Reheaters (MSRs) of Nuclear power plants, especially 1 st generation type ( commercial operation started from between 1970 and 1982), has been suffered from various problems like severe erosion, moisture separation performance deterioration, drain sub cooling. To solve these problems and performance improvement, improved MSR was developed. At the new MSR, high performance SS439 stainless steel round type tube bundle was applied, where heating steam distribution is optimized by orifice plate in order to minimize the drain sub cooling. Based on the CFD approach, cycle steam distribution was optimized and FAC resistant material application for the internal parts of MSRs was determined. As a result, pressure drop was reduced by 0.6% against the HP turbine exhaust pressure.rnPerformance of moisture separation was improved by the latest chevron type separator. Where, the reverse pressure is locally caused at the drainage area of the separator because remarkable longitudinal pressure distribution is formed by the high-speed steam flow in the manifold. Then, a new moisture separation structure was developed in consideration of the influence that this reverse pressure gave to the separator performance.
机译:核电站的水分分离器再热器(MSR),尤其是第一代类型的蒸汽分离器再热器(商业运行始于1970年至1982年),已遭受各种问题的困扰,例如严重腐蚀,水分分离性能下降,排水过冷。为了解决这些问题并提高性能,开发了改进的MSR。在新的MSR上,应用了高性能的SS439不锈钢圆形管束,其中通过孔板优化了加热蒸汽的分配,从而最大程度地减少了排水冷却。基于CFD方法,优化了循环蒸汽分配,并确定了MSR内部零件的耐FAC材料应用。结果,相对于高压涡轮排气压力,压降降低了0.6%。rn最新的人字形分离器提高了水分分离的性能。在此,在分离器的排水区域局部产生反向压力,因为歧管中的高速蒸汽流动形成了明显的纵向压力分布。然后,考虑到该反向压力对分离器性能的影响,开发了新的水分分离结构。

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