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Thermal-hydraulic and thermo-structural analysis of first wall for Indian DEMO blanket module

机译:印度DEMO橡皮布模块第一壁的热工和热结构分析

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摘要

The first wall (FW) is one of the most important components of any fusion blanket design. India has developed two concepts of breeding blanket for the DEMO reactor: the first one is Lead-Lithium cooled Ceramic Breeder (LLCB), and the second one is Helium-Cooled Ceramic Breeder (HCCB) concept. Both the concept has the same kind of FW structure. Reduced Activation Ferritic Martensitic steel (RAFMS) used as the structural material and helium (He) gas is used to actively cool the FW structure. Beryllium (Be) layer of 2 mm is coated on the plasma side of the FW as the plasma facing material. Cooling channels running in radial-toroidal-radial direction in the RAFMS structure are designed to withstand the maximum He pressure of 8 MPa. Heat transfer coefficients (HTC) obtained form the correlations revealed that required cooling could be achieved by artificially roughened surface towards the plasma-side wall of He cooling channel which helps to keep the RAFMS temperatures below the allowable limit. A 1D analytical and 2D thermal-hydraulic simulation studies using ANSYS has been performed based on the heat load obtained from neutronics calculations to confirm the heat removal and structural integrity under various conditions including 1TER transient events. The required helium flow through the cooling channels are evaluated and used to optimize the suitable header design. The detail design of FW thermal-hydraulics, thermo-structural analyses, and He flow distribution network will be presented in this paper.
机译:第一壁(FW)是任何融合毯设计中最重要的组成部分。印度为DEMO反应堆开发了两个育种毯概念:第一个是铅锂冷却陶瓷育种器(LLCB),第二个是氦冷却陶瓷育种器(HCCB)概念。这两个概念具有相同的FW结构。降低活化作用铁素体马氏体钢(RAFMS)用作结构材料,氦气(He)用于主动冷却FW结构。将2 mm的铍(Be)层涂覆在FW的等离子体侧,作为面对等离子体的材料。 RAFMS结构中沿径向-径向-径向方向运行的冷却通道设计为可承受8 MPa的最大He压力。通过相关性获得的传热系数(HTC)表明,可以通过朝向He冷却通道的等离子体侧壁人工粗糙化表面来实现所需的冷却,这有助于将RAFMS温度保持在允许的限值以下。基于中子学计算获得的热负荷,使用ANSYS进行了1D分析和2D热工水力模拟研究,以确认在包括1TER瞬态事件在内的各种条件下的除热和结构完整性。评估通过冷却通道所需的氦气流量,并将其用于优化合适的集管设计。本文将介绍FW热工液压油的详细设计,热结构分析和He流量分配网络。

著录项

  • 来源
    《Fusion Engineering and Design》 |2009年第6期|573-577|共5页
  • 作者单位

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, Gujarat, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    blanket; DEMO; first wail; thermal-hydraulics;

    机译:毯;演示第一次哭热工液压;

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