首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Thermal analysis of injection beam dump of high-intensity rapid-cycling synchrotron in J-PARC
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Thermal analysis of injection beam dump of high-intensity rapid-cycling synchrotron in J-PARC

机译:J-PARC中高强度快速循环同步加速器注入束流的热分析

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The beam dump at the beam injection area in the J-PARC 3-GeV rapid cycling synchrotron (RCS) accepts beams that pass through the charge exchange foil without ideal electron stripping during the multi-turn beam injection. The injection beam dump consists of the beam pipe, beam stopper, radiation shield, and cooling mechanism. The ideal beam power into the injection beam dump is 400 W in the case of design RCS extraction beam power of 1 MW with a healthy foil, which has 99.7 % charge stripping efficiency. On the other hand, as a radiation generator, the RCS is permitted to be operated with maximum average beam power of 4 kW into the injection beam dump based on the radiation shielding calculation, in consideration of lower charge stripping efficiency due to the foil deterioration. In this research, to evaluate the health of the RCS injection beam dump system from the perspective of the heat generation, a thermal analysis was performed based on the actual configuration with sufficiently large region, including the surrounding concrete and soil. The calculated temperature and heat flux density distribution showed the validity of the mesh spacing and model range. The calculation result showed that the dumped 4 kW beam causes the temperature to increase up to 330, 400, and 140 °C at the beam pipe, beam stopper, and radiation shield, respectively. Although these high temperatures induce stress in the constituent materials, the calculated stress values were lower than the ultimate tensile strength of each material. Transient temperature analysis of the beam stopper, which simulated the sudden break of the charge stripper foil, demonstrated that one bunched beam pulse with the maximum beam power does not lead to a serious rise in the temperature of the beam stopper. Furthermore, from the measured outgassing rate of stainless steel at high temperature, the rise in beam line pressure due to additive outgassing from the heated beam pipe was estimated to have a negligible effect on beam line pressure. The flow and results of the evaluation in this analysis would provide a good indication for both the verification of the existing beam dumps, and the design of beam dumps in new accelerators with higher intensity beam.
机译:J-PARC 3-GeV快速循环同步加速器(RCS)中束注入区的束流接收器接收通过电荷交换箔的束,而在多圈束注入过程中,束流没有理想的电子剥离。注入束流收集器由束管,束塞,辐射屏蔽罩和冷却机构组成。在设计RCS提取光束功率为1 MW且带有健康箔片的情况下,注入射束收集器的理想光束功率为400 W,电荷剥离效率为99.7%。另一方面,考虑到由于箔劣化而导致的电荷剥离效率较低,因此作为放射线产生器,基于放射线屏蔽计算,可以使RCS以最大4 kW的平均平均射束功率进入注入光束收集器。在这项研究中,为了从生热的角度评估RCS注入束倾卸系统的健康状况,根据实际构型进行了热分析,该构型具有足够大的区域,包括周围的混凝土和土壤。计算得到的温度和热通量密度分布显示了网格间距和模型范围的有效性。计算结果表明,抛弃的4 kW束使束管,束塞和辐射屏蔽罩处的温度分别升高至330、400和140°C。尽管这些高温会在组成材料中引起应力,但计算得出的应力值低于每种材料的极限拉伸强度。束流塞的瞬态温度分析模拟了电荷剥离剂箔片的突然断裂,结果表明,束流最大的光束脉冲束不会导致束流塞的温度严重升高。此外,从测得的高温下不锈钢的脱气率,估计由于加热的束管的添加剂脱气而引起的束线压力的升高对束线压力的影响可忽略不计。分析中评估的流程和结果将为验证现有的束流收集器,以及为具有更高强度束的新型加速器中的束流收集器提供良好的指示。

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