首页> 外文期刊>Fusion Science and Technology >DEVELOPMENT STATUS OF A SiC-FOAM BASED FLOW CHANNEL INSERT FOR A U.S.-ITER DCLL TBM
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DEVELOPMENT STATUS OF A SiC-FOAM BASED FLOW CHANNEL INSERT FOR A U.S.-ITER DCLL TBM

机译:美制DCLL TBM的基于SiC泡沫的流道插入件的开发现状

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摘要

The U.S.-ITER DCLL (Dual Coolant Liquid Lead) TBM (Test Blanket Module) uses a Flow Channel Insert (FCI), to test the feasibility of high temperature DCLL concepts for future power reactors. The FCI serves a dual function of electrical insulation, to mitigate MHD effects, and thermal insulation to keep steel-PbLi interface temperatures below allowable limits. As a non-structural component, the key performance requirements of the FCI structure are compatibility with PbLi, long-term radiation damage resistance, maintaining insulating properties over the lifetime, adequate insulation even in case of localized failures, and manufacturability. The main loads on the FCI are thermally induced due to through the thickness temperature gradients and due to non-uniform PbLi temperatures along the flow channel (~1.6 m). A number of SiC-based materials are being developed for FCI applications, including SiC/SiC composites and porous SiC bonded between CVD SiC face sheets. Here, we report on an FCI design based on open-cell SiC-foam material. Thermo-mechanical analysis of this FCI concept indicate that a SiC-foam FCI structure is capable of withstanding anticipated primary and secondary stresses during operation in an ITER TBM environment. A complete 30 cm long prototypical segment of the FCI structure was designed and is being fabricated, demonstrating the SiC-foam based FCI structure to be very low-cost and viability candidate for an ITER TBM FCI structure.
机译:美国-ITER DCLL(双冷却液铅)TBM(测试毯模块)使用流道插入件(FCI),以测试高温DCLL概念在未来动力反应堆中的可行性。 FCI具有双重功能:电绝缘(减轻MHD效应)和热绝缘(保持钢-PbLi界面温度低于允许极限)。作为一种非结构性组件,FCI结构的关键性能要求是与PbLi的相容性,长期的抗辐射损伤性,在整个使用寿命内保持绝缘性能,即使在局部故障的情况下也要具有足够的绝缘性以及可制造性。 FCI上的主要载荷是通过厚度温度梯度以及沿流道的PbLi温度不均匀(约1.6 m)引起的。正在为FCI应用开发许多基于SiC的材料,包括SiC / SiC复合材料和结合在CVD SiC面板之间的多孔SiC。在这里,我们报告基于开孔SiC泡沫材料的FCI设计。对这种FCI概念的热机械分析表明,SiC泡沫FCI结构能够在ITER TBM环境中运行期间承受预期的一次和二次应力。设计并正在制造完整的30厘米长的FCI结构原型段,这表明基于SiC泡沫的FCI结构是ITER TBM FCI结构的非常低成本和可行性的候选者。

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    《Fusion Science and Technology》 |2009年第2期|883-891|共9页
  • 作者单位

    University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA, 90095, U.S.A.;

    University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA, 90095, U.S.A.;

    University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA, 90095, U.S.A.;

    University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA, 90095, U.S.A.;

    Oak Ridge National Laboratory, Oak Ridge, TV, 37831, U.S.A.;

    Ultramet Inc., Pacoima, CA, 91331, U.S.A.;

    University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA, 90095, U.S.A.;

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