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Exploration of a Fast Pathway to Nuclear Fusion: Thermal Analysis and Cooling Design Considerations for the ARC Reactor

机译:探索核聚变的快速途径:ARC反应堆的热分析和冷却设计注意事项

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Progress in technological fields such as high-temperature superconductors, additive manufacturing, and innovative materials has led to new scenarios and to a second generation of fusion reactor designs. The new Affordable Robust Compact (ARC) fusion reactor, which compared to other designs meets its goal to achieve fusion energy in a less expensive, smaller but even more powerful, faster way, has been designed at Massachusetts Institute of Technology. In order to define ARC's role in future electricity grids, a feasibility investigation of the load-following concept has been carried out, starting on ARC's vacuum vessel (VV), which is the component closest to the plasma. Finite element analysis models have been designed, and thermomechanical analyses have been conducted. In this framework thermal fatigue and creep remain the main issues. This study identifies and verifies a suitable temperature range for the VV coolant. Indeed, it is found to satisfy both requirements for the lifetime of the structural material and thermodynamic efficiency optimization.
机译:高温超导体,增材制造和创新材料等技术领域的进步,带来了新的场景和第二代聚变反应堆设计。与其他设计相比,新型经济实惠的紧凑型紧凑型(ARC)聚变反应堆已达到其目标,即以更便宜,更小但功能更强大,更快的方式实现聚变能,这是美国麻省理工学院设计的。为了定义ARC在未来电网中的作用,已经从最接近等离子体的ARC真空容器(VV)开始对负载跟踪概念进行了可行性研究。设计了有限元分析模型,并进行了热机械分析。在此框架下,热疲劳和蠕变仍然是主要问题。这项研究确定并验证了VV冷却液的合适温度范围。实际上,发现它满足了结构材料寿命和热力学效率优化的两个要求。

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