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Designing of cooling water system for a pyro-breaker utilized in superconductive fusion facility

机译:超导聚变设备用热解断路器冷却水系统设计

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Pyro-breaker used as a backup breaker in Quench Protection System (QPS) guarantees the safety of a superconductive fusion facility. High current flows through the pyro-breaker and great amount of heat flux will be brought into the breaker due to the structure and mechanism of the Pyro-breaker. Requirement of each subsystem is crucial for the overall designing of the entire Cooling Water System (CWS). In this paper an optimized design of the CWS for Pyro-breaker is presented. Theoretical calculation and Computational Fluid Dynamics (CFD) are used to analysis the heat transfer coefficient of the cooling system. Thermal-electrical simulation is performed on the model and the result is verified by experiment on a prototype. It can be concluded that the presented Pyro-breaker model has the current capacity of 40kA with the coolant velocity of 1 m/s. Optimization of the CWS is made based on the verified method and a set of required coolant velocities is proposed when the current capacity reaches up to 80kA. The pressure drop, which is an important factor for the entire CWS, is calculated in ANSYS CFX when the breaker is applied under 80kA.
机译:淬火保护系统(QPS)中用作备用断路器的高温断路器确保了超导聚变设施的安全性。高电流流经热解断路器,由于热解断路器的结构和机理,大量的热通量将进入热断路器。每个子系统的要求对于整个冷却水系统(CWS)的总体设计至关重要。在本文中,提出了一种用于高温断路器的CWS的优化设计。理论计算和计算流体动力学(CFD)用于分析冷却系统的传热系数。对模型进行热电模拟,并通过对原型的实验验证了结果。可以得出结论,所提出的高温断路器模型的电流容量为40kA,冷却剂速度为1 m / s。基于已验证的方法对CWS进行了优化,并提出了当电流容量达到80kA时所需的一组冷却剂速度。当断路器在80kA以下时,压降是整个CWS的重要因素,在ANSYS CFX中计算得出。

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