印度散裂中子源3mev, 325mhz射频四极加速器热管理的多物理场分析

N. Sharma, C. Paul, S. Joshi, G. Kane, A. Chaturvedi
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引用次数: 0

摘要

我们提出了用于1 GeV质子直线加速器前端的325 MHz 3 MeV射频四极杆(RFQ)结构的多物理场热管理设计研究,该结构用于拟议的印度散裂中子源(ISNS)。在最大占空比为10%的情况下,对ISNS应用的RFQ进行了物理设计。RFQ在大功率工作时,射频加热会导致RFQ的温升、热变形和频率偏离设计值。因此,热管理是RFQ发展的重要设计考虑因素之一。在设计研究中,利用SUPERFISH和ANSYS软件对RFQ腔体进行电磁分析,计算RFQ表面的射频诱导热流。两种规范的模拟结果比较一致。设计了一种水冷却方案来吸收RFQ结构产生的射频热。采用单变量搜索优化技术对冷却参数进行优化。提出了一种射频-热-结构-射频耦合多物理场分析方法来评价ISNS RFQ结构的热致频率失谐。对冷却水温度对RFQ频率的影响进行了参数化研究。根据分析结果,调整冷却水温度以使RFQ频率恢复到设计值。因此,水冷却不仅可以使结构散热,还可以用于RFQ结构稳态运行时谐振频率的在线控制。本文介绍了ISNS RFQ热管理的数值研究结果。
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Multiphysics Analysis for Thermal Management of a 3 MeV, 325 MHz Radio Frequency Quadrupole Accelerator for Indian Spallation Neutron Source
We present multiphysics design studies for thermal management of a 325 MHz 3 MeV Radio Frequency Quadrupole (RFQ) structure for the front end of 1 GeV proton linac for proposed Indian Spallation Neutron Source (ISNS). Physics design of RFQ for ISNS application has been carried out for 10% (maximum) duty factor. During high power operation of RFQ, RF-induced heating would result in temperature rise, thermal deformations and frequency shift of RFQ from designed values. Therefore thermal management is one of the important design considerations for RFQ development. During design studies, electromagnetic analysis of RFQ cavity is performed to compute RF induced heat fluxes on RFQ surfaces using SUPERFISH and ANSYS software. Simulated results for both codes were compared and found in well agreement. A water cooling scheme has been designed to absorb RF induced heat from RFQ structure. Cooling parameters are optimized by employing univariate search method optimization technique. An RF-Thermal-Structural-RF coupled multi-physics analysis methodology is developed to evaluate thermal induced frequency detuning of ISNS RFQ structure. Parametric studies are carried out to investigate the effect of cooling water temperatures on RFQ frequency. Based on analysis results, cooling water temperatures are varied to restore RFQ frequency to designed values. Thus, water cooling will not only remove heat from structure, but it will also be used for online control of resonating frequency during steady state operation of RFQ structure. Results of numerical studies carried out for thermal management of ISNS RFQ are presented in this paper.
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