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MODELING THE AGING EFFECTS OF NUCLEAR POWER PLANT RESISTANCE TEMPERATURE DETECTORS

机译:核电站电阻温度检测器的老化效应建模

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Most of the critical process temperatures in nuclear power plants are measured using resistance temperature detectors (RTDs) and thermocouples. The primary coolant temperature and feedwater temperature are measured using RTDs. Primary coolant RTDs feed plant control and safety systems. As a result, these RTDs are usually subject to very stringent requirements for accuracy and response time performance. Aging of RTDs refers to decalibration or response time degradation of RTDs with normal environments and under normal operating conditions in a nuclear power plant. Calibration shift could occur due to stress, contamination or metallurgical changes in the sensing element or moisture in the insulation material of RTDs. The effect of temperature is the most critical as the RTD materials have different thermal expansion coefficients leading to stress on the RTD element when temperature changes. Over time, degradation of the response time of RTDs can be induced by changes of its heat transfer characteristics caused by high temperature, vibration and thermal cycling, etc. Past experience showed that air gaps between RTD/thermowell interface play an important role in controlling the response time of RTDs. In this paper, a finite-element multi-physics simulation tool, COMSOL 4.2a, is used to model the aging effects of nuclear power plant primary coolant RTDs. Response time of RTDs installed in the thermowell is characterized by inducing temperature changes on the surface of the thermowell. Key material properties such as the thermal conductivity of the thermowell and the insulation materials of RTDs are varied to represent the materials aging due to corrosion of the thermowell and moisture in the insulation materials of the RTD.
机译:核电厂的大多数关键过程温度都是使用电阻温度检测器(RTD)和热电偶测量的。使用RTD测量一次冷却液温度和给水温度。初级冷却剂RTD为工厂控制和安全系统供料。因此,这些RTD通常要对准确性和响应时间性能提出非常严格的要求。 RTD的老化是指在核电厂中,在正常环境下和正常运行条件下,RTD的失标或响应时间降低。由于应力,污染或传感元件的冶金学变化或RTD绝缘材料中的水分,可能会发生校准偏移。温度的影响最为关键,因为RTD材料具有不同的热膨胀系数,从而在温度变化时会在RTD元件上产生应力。随着时间的流逝,由于高温,振动和热循环等引起的热传递特性的变化,RTD的响应时间会降低。过去的经验表明,RTD /热套管接口之间的气隙在控制热电阻方面起着重要的作用。 RTD的响应时间。本文使用有限元多物理场仿真工具COMSOL 4.2a对核电厂一次冷却剂RTD的老化效应进行建模。安装在热电偶套管中的RTD的响应时间的特征是引起热电偶套管表面的温度变化。改变诸如热电偶套管的热导率和热电阻的绝缘材料之类的关键材料属性,以代表由于热电偶套管的腐蚀和热电阻的绝缘材料中的水分而导致的材料老化。

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