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The ITER EC-HCD Upper Launcher: FEM analyses of the blanket shield module with respect to surface and nuclear heat loads

机译:ITER EC-H&CD上发射器:橡皮布屏蔽模块的FEM分析相对于表面和核热负荷

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In the frame of the new grant signed in November 2011 between Fusion for Energy (F4E) and the ECHUL-CA consortium, the development process of the Electron Cyclotron Heating and Current Drive (EC H&CD) Upper Launcher (UL) in ITER has moved a step towards the final design phase. The Blanket Shield Module (BSM) is a plasma facing component located at the tip of the launcher. The structure consists of a first wall panel (FWP) and a shell both with embedded cooling channels. A flange on the rear part allows the BSM to be connected by bolts to the main frame of the UL. Being a plasma facing component, the BSM is subjected to severe heat loads due to both thermal and nuclear irradiation. The current baseline value of surface heat load during normal plasma operation is 0.5 MW/m², while the volumetric nuclear heating is responsible for a total generation of about 160 kW. The temperature gradients resulting from the abovementioned heat loads have been assessed by FEM analyses. The temperature distributions are then transferred to a structural model for calculation of the induced thermal stresses. The surface heat load is applied to the FWP as a constant flux. The nuclear loads, instead, were assessed by MCNP calculations and are provided by means of a mesh tally with a grid step of 1 cm. The results have shown that the temperature reaches 260 °C at the FWP and at the flange of the BSM. As a consequence of large temperature gradients, high stresses (in the order of 200 MPa) are also induced at the inner cooling channels of the BSM's structure.
机译:在2011年11月签署的新拨款框架中,在融合的能源(F4E)和呼应 - 加利亚联盟之间,电子回火加热和电流驱动器(EC H&CD)上发射器(UL)的开发过程已经移动了迈向最终设计阶段。毯子屏蔽模块(BSM)是位于发射器尖端的等离子体面部部件。该结构由第一壁板(FWP)和嵌入式冷却通道的壳体组成。后部的法兰允许BSM通过螺栓连接到UL的主框架。作为等离子体面向等离子体,BSM由于热和核照射而受到严重的热载荷。正常等离子体操作期间表面热负荷的电流基线值为0.5mW /平方米,体积核加热负责总产生约160千瓦。由上述热载导致的温度梯度已经通过有限元分析评估。然后将温度分布转移到用于计算诱导的热应力的结构模型。将表面热负荷施加到FWP作为恒定通量。相反,通过MCNP计算评估核负荷,并通过网格计数,具有1cm的网格步骤。结果表明,温度在FWP和BSM的法兰处达到260℃。由于大的温度梯度的结果,在BSM结构的内冷却通道也诱导高应力(约200MPa)。

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