Optimizing a photon absorber using conformal cooling channels and additive manufacturing in copper.

IF 2.5 3区 物理与天体物理
Journal of Synchrotron Radiation Pub Date : 2025-07-01 Epub Date: 2025-05-13 DOI:10.1107/S1600577525003078
Younes Chahid, Carolyn Atkins, Stephen Hodbod, John Robinson, Xia Liu, Stephen Watson, Maia Jones, Mark Cliffe, Dayo Ogunkanmi, Richard Kotlewski, Lee Chapman, Scott Beamish, Jorge Linde Cerezo, Thomas Wearing, Ahmad Baroutaji, Arun Arjunan, Chantal Fowler, Paul Vivian
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Abstract

Many of the 70 synchrotron facilities worldwide are undergoing upgrades to their infrastructure to meet a growing demand for increased beam brightness with nanometre-level stability. These upgrades increase the mechanical and thermal challenges faced by beamline components, creating opportunities to apply novel methodologies and manufacturing processes to optimize hardware performance and beam accuracy. Absorbers are important beamline components that rely on water-cooled channels to absorb thermal energy from excess light caused by synchrotron radiation or photon beams created by insertion devices, all within a limited volume, to protect downstream equipment and ensure safe, reliable operation. Additive manufacturing (AM) has been shown to meet criteria relevant to synchrotron environments like leak tightness and vacuum compatibility. However, there is a research gap on the heat transfer and pressure drop impact of different AM conformal cooling channel geometries, as well as the print quality of AM copper parts using low-power infrared lasers and their compliance with absorber requirements. In this study, an intermediate model of a Diamond Light Source photon absorber was optimized to incorporate AM conformal cooling channels, leading to two concept designs named `Horizontal' and `Coil'. When compared with the baseline design, the lightweight Horizontal concept performed the best in this study, with simulations showing a maximum temperature drop of 11%, a calculated pressure drop reduction of 82%, a mass reduction of 86%, and the consolidation of 21 individually brazed pipes into a single manifold. The AM print quality and compliance with the synchrotron environment was examined by producing custom benchmark artefacts and measuring their surface roughness, dimensional accuracy and porosity levels, which are characteristics that can affect heat absorption, structural integrity, thermal conductivity and vacuum performance. The study demonstrates the benefits and addresses outstanding challenges in reducing thermal fatigue, as well as the size, vibrations and energy consumption of AM absorbers.

利用共形冷却通道和铜增材制造优化光子吸收体。
全球70个同步加速器设施中的许多正在对其基础设施进行升级,以满足对增加光束亮度和纳米级稳定性的日益增长的需求。这些升级增加了光束线组件面临的机械和热挑战,创造了应用新方法和制造工艺来优化硬件性能和光束精度的机会。吸收器是重要的光束线组件,依靠水冷通道吸收由同步加速器辐射或插入设备产生的光子光束引起的多余光中的热能,所有这些都在有限的体积内,以保护下游设备并确保安全可靠的运行。增材制造(AM)已被证明符合与同步加速器环境相关的标准,如密封性和真空兼容性。然而,不同的增材制造共形冷却通道几何形状对传热和压降的影响,以及小功率红外激光器增材制造铜件的打印质量及其对吸收体要求的符合性等方面的研究还存在空白。在这项研究中,优化了金刚石光源光子吸收器的中间模型,以纳入AM保形冷却通道,从而产生了两个概念设计,分别名为“水平”和“线圈”。与基准设计相比,轻量化水平设计在本次研究中表现最佳,模拟结果显示最大温度下降11%,计算压降降低82%,质量降低86%,并且将21根单独的钎焊管合并为一个管汇。通过生产定制基准工件并测量其表面粗糙度、尺寸精度和孔隙度水平(这些特征会影响吸热性、结构完整性、导热性和真空性能),测试AM打印质量和对同步加速器环境的依从性。该研究证明了AM吸收器在减少热疲劳、尺寸、振动和能耗方面的优势,并解决了突出的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Synchrotron Radiation
Journal of Synchrotron Radiation INSTRUMENTS & INSTRUMENTATIONOPTICS&-OPTICS
CiteScore
5.60
自引率
12.00%
发文量
289
审稿时长
1 months
期刊介绍: Synchrotron radiation research is rapidly expanding with many new sources of radiation being created globally. Synchrotron radiation plays a leading role in pure science and in emerging technologies. The Journal of Synchrotron Radiation provides comprehensive coverage of the entire field of synchrotron radiation and free-electron laser research including instrumentation, theory, computing and scientific applications in areas such as biology, nanoscience and materials science. Rapid publication ensures an up-to-date information resource for scientists and engineers in the field.
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