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Advancements in the Helium-Cooled Pebble Bed Breeding Blanket for the EU DEMO: Holistic Design Approach and Lessons Learned

机译:欧盟DEMO氦气卵石床育种毯的进展:整体设计方法和经验教训

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摘要

The helium-cooled pebble bed (HCPB) blanket is one of the two concepts proposed as a driver blanket for the European Union Demonstration Fusion Power Reactor (EU DEMO). In contrast to past conceptual design studies, in the frame of the current Power Plant Physics and Technology of the EUROfusion Consortium, the ongoing EU DEMO preconceptual design activities have adopted a holistic and integrated (i.e., systems engineering) design approach. As a consequence of this new approach, many interfaces and requirements have been identified, some of them driving the design of the blankets. This paper shows the advancements in the HCPB breeding blanket and describes the lessons learned after implementing the new approach. This new set of requirements has led us to reconsider fundamental aspects of the HCPB blanket design, especially in the way of how the heat is extracted from the blanket. Among others, the requirement to achieve a mature balance of plant (BOP) system plays a central role as a key design driver and has forced us to reduce pressure drops in the breeding blanket. In this regard, the blanket has been redesigned, leading to an enhanced concept based on single-module segments with a hexagonal matrix of fuel-breeder pins. Both the fuel-breeder pins and the first wall (FW) are equipped with turbulence promoters (augmented wall roughness in the fuel-breeder pins and V-ribs in the FW), following a similar idea as in the past MAGNOX, Advanced Gas Reactor (AGR), and Gas Cooled Reactor (GCR) programs in fission. This has led to minimizing the pressure drops while maximizing the heat transfer. Also, the blanket outlet temperature has been extended to 520 degrees C, following the same principle as in Generation IV's GCRs of maximizing the temperature difference across the core to minimize the reactor mass flow rate and thus the circulating power. All these features have led to a remarkably low plant circulating power (80 to 90MW) and the required power per helium blower (5 to 6MW), which potentially solves the key long-standing problem of the BOP technology readiness level for an approximate to 2.4-GW(thermal) helium-cooled DEMO reactor.
机译:氦冷却卵石床(HCPB)毯是被提议作为欧盟示范聚变动力堆(EU DEMO)的驱动毯的两个概念之一。与过去的概念设计研究相反,在EUROfusion财团当前的电厂物理和技术框架内,正在进行的EU DEMO前概念设计活动采用了整体和集成(即系统工程)设计方法。作为这种新方法的结果,已经确定了许多接口和要求,其中一些驱动了毯子的设计。本文展示了HCPB育种毯的进步,并介绍了实施新方法后的经验教训。这套新的要求使我们重新考虑了HCPB毯子设计的基本方面,尤其是在如何从毯子中吸收热量的方式上。除其他外,实现成熟植物平衡(BOP)系统的要求作为关键设计驱动力发挥了核心作用,并迫使我们减少了育种毯的压降。在这方面,毯子已经过重新设计,从而导致了基于带有燃料添加销的六边形矩阵的单模块段的增强概念。燃料育种销和第一壁(FW)均配备了湍流促进器(燃料育苗销和FW中的V型肋增加了壁面粗糙度),其遵循的想法与过去的MAGNOX高级气体反应堆相似(AGR)和气冷堆(GCR)裂变程序。这导致压降最小化,而传热最大化。同样,毯层出口温度已按照与第四代GCR中相同的原理扩展到520摄氏度,该原则是最大程度地增加堆芯之间的温差,以最大程度地减少反应堆质量流速,从而最大程度地降低循环功率。所有这些功能导致工厂循环功率极低(80至90MW)和每台鼓风机所需的功率(5至6MW),这有可能解决BOP技术准备水平长期存在的关键问题,约为2.4。 -GW(热)氦冷却的DEMO反应器。

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