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Temperature Control for Spallation Target in Accelerator Driven System

Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Ato...(2019)SCI 4区

Chinese Acad Sci

Cited 7|Views15
Abstract
In an accelerator driven critical or sub-critical system (ADS), a spallation target is irradiated by high-power proton beam to drive a reactor. To continuously produce very intense neutrons, it is very important to ensure that the target operates in a setting temperature environment. This paper reports several techniques of temperature control for the spallation target in China initiative ADS system, where tungsten granules in the target container are used as both coolant and target materials. In order to avoid high temperatures at the target center due to the Gaussian distribution of beam intensity, the proton beam should be scanned on the surface of the target to provide a high degree of uniformity in energy deposition. The target temperature can be controlled by adjusting automatically the speed of the coolant. If the speed attains the maximum setting value, the beam intensity will be decreased for a given value to reduce the heat generation. To evaluate the proposed control techniques, the heat transfer model of particles has been employed to investigate the spatio-temporal variations of the target temperatures. The simulation results indicate that the beam scanning technique reduces dramatically the temperatures. The target temperatures can be controlled by adjusting automatically both the granular speed and the beam intensity. The target can operate normally in the setting working temperature range even if the target is irradiated by the proton beam with the maximum power.
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Accelerator driven system,Spallation target,Energy deposition,Beam intensity,Scanning irradiation
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要点】:本文提出了在中国加速器驱动系统(ADS)中,通过扫描质子束和自动调节冷却剂速度及质子束强度来控制裂变靶温度的创新方法,确保靶材在设定的工作温度范围内稳定运行。

方法】:采用质子束扫描技术和自动调节冷却剂速度及质子束强度的方法,以实现裂变靶的温度控制。

实验】:通过建立颗粒传热模型,研究了靶温度的时空变化,验证了所提出控制技术的有效性。使用的数据集为模拟结果,具体数据集名称未提及。结果显示,质子束扫描技术显著降低了靶温度,且通过自动调节颗粒速度和质子束强度,可以控制靶温度在设定的工作温度范围内。