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Multi-MW accelerator target material properties under proton irradiation at Brookhaven National Laboratory linear isotope producer

机译:Brookhaven国家实验室线性同位素生产商在质子辐射下的多兆瓦级加速器靶材性能

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The effects of proton beams irradiating materials considered for targets in high-power accelerator experiments have been studied using the Brookhaven National Laboratory's (BNL) 200 MeV proton linac. A wide array of materials and alloys covering a wide range of the atomic number (Z) are being scoped by the high-power accelerator community prompting the BNL studies to focus on materials representing each distinct range, i.e. low-Z, mid-Z and high-Z. The low range includes materials such as beryllium and graphite, the midrange alloys such as Ti-6Al-4V, gum metal and super-Invar and finally the high-Z range pure tungsten and tantalum. Of interest in assessing proton irradiation effects are (a) changes in physiomechanical properties which are important in maintaining high-power target functionality, (b) identification of possible limits of proton flux or fluence above which certain materials cease to maintain integrity, (c) the role of material operating temperature in inducing or maintaining radiation damage reversal, and (d) phase stability and microstructural changes. The paper presents excerpt results deduced from macroscopic and microscopic post-irradiation evaluation (PIE) following several irradiation campaigns conducted at the BNL 200 MeV linac and specifically at the isotope producer beam-line/target station. The microscopic PIE relied on high energy x-ray diffraction at the BNL NSLS X17B1 and NSLS II XPD beam lines. The studies reveal the dramatic effects of irradiation on phase stability in several of the materials, changes in physical properties and ductility loss as well as thermally induced radiation damage reversal in graphite and alloys such as super-Invar.
机译:已经使用布鲁克海文国家实验室(BNL)的200 MeV质子直线加速器研究了质子束辐照材料在大功率加速器实验中被视为目标的影响。高功率加速器社区正在研究涵盖广泛原子序数(Z)的各种材料和合金,这促使BNL研究着重研究代表各个不同范围的材料,即低Z,中Z和高Z。低频范围包括铍和石墨等材料,中等范围合金如Ti-6Al-4V,口香糖金属和超殷钢,最后是高Z范围的纯钨和钽。评估质子辐照效果感兴趣的是(a)对保持高功率目标功能至关重要的物理力学性能变化;(b)识别质子通量或通量的可能极限,某些材料在该极限之上不再保持完整性;(c)材料工作温度在诱导或维持辐射破坏逆转中的作用,以及(d)相稳定性和微结构变化。本文介绍了在BNL 200 MeV直线加速器(特别是在同位素生产线的射线线/目标站)进行的几次辐照活动后,从宏观和微观辐照后评估(PIE)得出的摘录结果。微观PIE依赖于BNL NSLS X17B1和NSLS II XPD光束线上的高能X射线衍射。研究表明,辐射对几种材料的相稳定性,物理性能和延展性变化的变化以及石墨和超级因瓦合金等热致辐射损伤的逆转具有显着影响。

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