首页> 外文期刊>Fusion Engineering and Design >Preliminary investigation on W foams as protection strategy for advanced FW PFCs
【24h】

Preliminary investigation on W foams as protection strategy for advanced FW PFCs

机译:W泡沫作为高级FW PFC的保护策略的初步研究

获取原文
获取原文并翻译 | 示例
       

摘要

As one among the core missions towards the realization of nuclear fusion, a future reactor must provide efficient and safe power exhaust through both divertor and first wall (FW). Recent studies have confirmed that the greatest challenges arise from the occurrence of plasma transients. Indeed, extensive damage of the plasma facing component (PFC) may occur during transients, with the risk of loss of coolant accidents (LOCA) that would hinder the safety of a future reactor as well as its prompt return to normal operation. Among the possible wall protection strategies, a sacrificial and micro-engineered surface made of porous tungsten (W) may promote the heat flux reduction while preventing the failure of the cooling pipe. As a preliminary step in this direction, the present study aims to investigate the possible application of W-based open cell foams as a sacrificial armor material. At first, an equivalent solid model, originally validated for Al open cell foams, was transferred to W foams. Then, a steady state thermal FEM analysis was carried out to evaluate the equivalent thermal conductivity provided by several foam configurations. Ultimately, a scaling law of the thermal response was developed as a function of the most influential foam parameters. As a future outlook with respect to DEMO-relevant transients scenarios, the scaling law will support design optimization and tailoring of an advanced FW PFC provided with a sacrificial W foam armor.
机译:作为实现核聚变的核心任务之一,未来的反应堆必须通过分流器和第一壁(FW)提供有效和安全的动力排出。最近的研究证实,最大的挑战来自血浆瞬态的发生。实际上,在瞬变过程中,可能会面临面向等离子体的组件(PFC)的广泛损坏,并且有损失冷却剂事故(LOCA)的风险,这会阻碍未来反应堆的安全以及迅速返回正常运行的危险。在可能的墙壁保护策略中,由多孔钨(W)制成的牺牲性微工程表面可以促进热通量的降低,同时防止冷却管发生故障。作为朝这个方向迈出的第一步,本研究旨在研究基于W的开孔泡沫作为牺牲性装甲材料的可能应用。首先,将最初对Al开孔泡沫验证的等效实体模型转换为W泡沫。然后,进行了稳态热有限元分析,以评估几种泡沫构造提供的等效导热系数。最终,根据最有影响力的泡沫参数开发了热响应的比例定律。作为对与DEMO相关的瞬态场景的未来展望,缩放定律将支持设计优化和定制具有牺牲W泡沫装甲的高级FW PFC。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号