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首页> 外文期刊>Fusion Engineering and Design >Design and thermal fluid structure interaction analysis of liquid nitrogen cryostat of cryogenic molecular sieve bed adsorber for hydrogen isotopes removal system
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Design and thermal fluid structure interaction analysis of liquid nitrogen cryostat of cryogenic molecular sieve bed adsorber for hydrogen isotopes removal system

机译:氢同位素去除系统用低温分子筛床吸附器液氮低温恒温器的设计及热流结构相互作用分析

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摘要

Efficient design of Tritium Extraction System (TES) for the fuel cycle of any fusion reactor is very important to maintain the tritium breeding ratio and hence sustain the fusion reaction. Hydrogen Isotopes Removal System (HIRS) for Indian Tritium Breeder Blanket removes Q(2) (Q = H, D or T) and impurities using Cryogenic Molecular Sieve Bed (CMSB) adsorber at 77 K. The CMSB is maintained at liquid nitrogen temperature using a double walled cryostat made up of SS304. The paper describes the design and thermal Fluid Structure Interaction (FSI) analysis of cryostat assembly for CMSB of HIRS. The coupled analysis performed in this work involves solving for the fluid domain and transferring the results to ANSYS Thermal-Static structural set up to determine the stresses and displacement due to combined effects in the system. The mechanical design of the cryostat components is analytically performed using ASME codes. The velocity, pressure drop and time taken to cool the CMSB are determined by solving the fluid and energy equations in ANSYS Fluent analysis system. The solutions are imported into ANSYS Thermal-Static structural analysis system and the thermal-structural stresses and deformations are determined considering the temperature, pressure and acceleration loads. The space between inner and outer vessel is maintained at vacuum, which might lead to buckling. So, the critical buckling load multiplier factor is determined. These results are used in fabricating the complete cryostat system for CMSB of HIRS.
机译:对于任何聚变反应堆的燃料循环,of提取系统(TES)的高效设计对于维持the的繁殖率并维持聚变反应非常重要。印度Tri育种毯的氢同位素去除系统(HIRS)使用低温分子筛床(CMSB)吸附器在77 K下去除Q(2)(Q = H,D或T)和杂质。CMSB保持在液氮温度下,使用由SS304制成的双层低温恒温器。本文介绍了用于HIRS CMSB的低温恒温器组件的设计和热流体结构相互作用(FSI)分析。在这项工作中进行的耦合分析涉及求解流体域,并将结果传输到ANSYS Thermal-Static结构设置中,以确定由于系统中的综合效应而产生的应力和位移。低温恒温器组件的机械设计使用ASME规范进行分析。通过求解ANSYS Fluent分析系统中的流体和能量方程,可以确定冷却CMSB的速度,压降和时间。将解决方案输入到ANSYS热静态结构分析系统中,并考虑温度,压力和加速载荷来确定热结构应力和变形。内部和外部容器之间的空间保持真空,这可能会导致屈曲。因此,确定了临界屈曲载荷乘数因子。这些结果被用于制造用于HIRS的CMSB的完整低温恒温器系统。

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