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Effect of Loop Configuration on Steam Drum Level Control for a Multiple Drum Interconnected Loops Pressure Tube Type Boiling Water Reactor

机译:回路配置对多筒互联回路压力管式沸水反应堆汽包液位控制的影响

摘要

For AHWR (Advanced Heavy Water Reactor), a pressure tube type Boiling Water Reactor (BWR) with parallel inter-connected loops, the Steam Drum (SD) level control is closely related to Main Heat Transport (MHT) coolant inventory and sustained heat removal through natural circulation, hence overall safety of the power plant. The MHT configuration with multiple (four) interconnected loops influences the SD level control in a manner which has not been previously addressed. The MHT configuration has been chosen based on comprehensive overall design requirements and certain Postulated Initiated Event (PIEs) for Loss of Coolant Accident (LOCA), which postulates a double ended break in the four partitioned Emergency Core Cooling System (ECCS) header. A conventional individual three-element SD level controller can not account for the highly coupled and interacting behaviors, of the four SD levels. An innovative three-element SD level control scheme is proposed to overcome this situation. The response obtained for a variety of unsymmetrical disturbances shows that the SD levels do not diverge and quickly settle to the various new set points assigned. The proposed scheme also leads to enhanced safety margins for most of the PIEs considered with a little influence on the 100% full power steady-state design conditions.
机译:对于AHWR(高级重水反应堆),压力管式沸水反应堆(BWR),具有并联的相互连接的回路,蒸汽鼓(SD)液位控制与主热传输(MHT)冷却液存量和持续除热密切相关通过自然循环,从而保证了发电厂的整体安全。具有多个(四个)互连环路的MHT配置以以前未解决的方式影响SD级别控制。选择MHT配置是基于全面的总体设计要求和某些“冷却剂事故丢失”(LOCA)的“假定启动事件”(PIE),它假定了四个分区的“紧急核心冷却系统”(ECCS)接头中的双头中断。传统的单个三元素SD级别控制器无法解决四个SD级别中高度耦合和交互的行为。为了克服这种情况,提出了一种创新的三元标清水平控制方案。针对各种非对称干扰获得的响应表明,SD级别不会发散,并迅速稳定到分配的各种新设置点。提议的方案还可以提高大多数PIE的安全裕度,而对100%全功率稳态设计条件的影响很小。

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