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Fatigue life assessment in lateral support element of a magnet for nuclear fusion experiment 'Wendelstein 7-X'

机译:用于核聚变实验的磁体横向支撑疲劳寿命评估“Wendelstein 7-X”

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摘要

Wendelstein 7-X (W7X), a nuclear fusion experiment of modular stellarator type, started operation in 2015 and will be upgraded with a water cooled first wall for steady state operation in 2020. A hot hydrogen plasma of ultra-low density is confined in a plasma vessel by an electromagnetic field generated by specially shaped superconducting coils. Such coils, embedded in a cryostat working at 4. K, are kept by a central support ring and joined together by welded lateral support elements (LSEs). In this paper, a coupled FEM-DBEM (Dual BEM) submodelling approach is adopted for crack-growth simulations of the cracks detected in LSEs and driven by a fatigue load spectra.A global analysis on one fifth of the fivefold symmetric magnet system is performed by FEM, whereas the submodelling approach is adopted to solve the crack propagation by DBEM. In particular, the adopted approach is based on the application of the superposition principle to solve a LEFM problem: the only boundary conditions for the DBEM submodel consist of tractions, calculated by the FEM global analysis and applied to the crack faces in the local submodel. The obtained speed of crack advance and crack kinking are compared with literature results to highlight the accuracy of the proposed approach together with inherent computational advantages.
机译:Wendelstein 7-X(W7X)是模块化恒星器类型的核聚变实验,于2015年开始运行,并将于2020年升级为水冷第一壁以实现稳态运行。超低密度的热氢等离子体限于等离子体容器通过特殊形状的超导线圈产生的电磁场产生。嵌入在工作于4. K的低温恒温器中的此类线圈由中央支撑环保持,并通过焊接的侧向支撑元件(LSE)连接在一起。本文采用耦合FEM-DBEM(Dual BEM)子建模方法对LSE中检测到并由疲劳载荷谱驱动的裂纹进行裂纹扩展模拟,对五重对称磁体系统的五分之一进行了全局分析有限元法,而子模型法则用于解决DBEM的裂纹扩展问题。特别是,采用的方法是基于叠加原理来解决LEFM问题:DBEM子模型的唯一边界条件包括牵引力,这些牵引力是通过FEM全局分析计算的,并应用于局部子模型中的裂纹面。将获得的裂纹前进和裂纹扭结速度与文献结果进行比较,以突出提出的方法的准确性以及固有的计算优势。

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