Yijia Liu, Siyu Qin, Changming Yang, Xiangzhao Meng, Chun Yang, Liwen Jin
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The conical structure of 1 mm axial height was fabricated on the evaporation surface by computer numerical control (CNC) machining technology. A visualization experimental system was developed to investigate the effect of the conical microstructure on the two-phase behaviours, and the boiling heat transfer characteristics under different heating conditions (Q\n in = 35 W, 50 W, 65 W) in a confined vapor chamber. The high-speed camera was used to capture the bubble behaviours. Experimental results found that compared with the smooth surface, the integration of the conical structure increasing the number of bubble nucleation sites and the bubble departure frequency. The bubble growth period at stable heating stage is 162 ms shorter than initial heating stage on the evaporation surface with conical structure. The thermal resistance (R\n vc) of vapor chamber with conical structure is improved by 5.85% compared to the smooth one at Q\n in = 65 W, which indicate that the conical microstructure can enhance the boiling heat transfer performance. This study aims to provide a reference for the design of thermal management system for green data centre.","PeriodicalId":506254,"journal":{"name":"IOP Conference Series: Earth and Environmental Science","volume":"38 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A visualization study of a confined vapor chamber with conical microstructure applied in data centres\",\"authors\":\"Yijia Liu, Siyu Qin, Changming Yang, Xiangzhao Meng, Chun Yang, Liwen Jin\",\"doi\":\"10.1088/1755-1315/1372/1/012085\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"\\n With the development of the informatization technology, the scale of the data centre is expanding rapidly. The energy consumptions of the electronic equipment in the data centre are rising regularly, which lead to the thermal management becoming an argent issue to be settled. To realize the sustainable development of green data centre, the passive two-phase vapor chamber (VC) has turned into the focus of electronic cooling research. Constructing nucleation induced structures on the evaporation surface is an effective method to improve the performance of the vapor chamber. To address the problem of achieving enhanced boiling, a novel conical microstructure was designed in the vapor chamber with 50 mm height. The conical structure of 1 mm axial height was fabricated on the evaporation surface by computer numerical control (CNC) machining technology. A visualization experimental system was developed to investigate the effect of the conical microstructure on the two-phase behaviours, and the boiling heat transfer characteristics under different heating conditions (Q\\n in = 35 W, 50 W, 65 W) in a confined vapor chamber. The high-speed camera was used to capture the bubble behaviours. 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引用次数: 0
摘要
随着信息化技术的发展,数据中心的规模迅速扩大。数据中心电子设备的能耗也在不断攀升,热管理成为亟待解决的问题。为实现绿色数据中心的可持续发展,被动式两相蒸发腔(VC)已成为电子冷却研究的重点。在蒸发表面构建成核诱导结构是提高蒸发腔性能的有效方法。为了解决增强沸腾的问题,我们在高度为 50 毫米的蒸发室内设计了一种新型锥形微结构。通过计算机数控(CNC)加工技术在蒸发面上制作了轴向高度为 1 毫米的锥形结构。为了研究锥形微结构对两相行为的影响,以及在密闭蒸发室中不同加热条件(Q in = 35 W、50 W、65 W)下的沸腾传热特性,开发了一套可视化实验系统。高速摄像机用于捕捉气泡行为。实验结果发现,与光滑表面相比,锥形结构的集成增加了气泡成核点的数量和气泡离去的频率。在具有锥形结构的蒸发表面上,稳定加热阶段的气泡生长周期比初始加热阶段短 162 毫秒。在 Q in = 65 W 条件下,锥形结构蒸发室的热阻(R vc)比光滑蒸发室提高了 5.85%,这表明锥形微结构可以提高沸腾传热性能。本研究旨在为绿色数据中心的热管理系统设计提供参考。
A visualization study of a confined vapor chamber with conical microstructure applied in data centres
With the development of the informatization technology, the scale of the data centre is expanding rapidly. The energy consumptions of the electronic equipment in the data centre are rising regularly, which lead to the thermal management becoming an argent issue to be settled. To realize the sustainable development of green data centre, the passive two-phase vapor chamber (VC) has turned into the focus of electronic cooling research. Constructing nucleation induced structures on the evaporation surface is an effective method to improve the performance of the vapor chamber. To address the problem of achieving enhanced boiling, a novel conical microstructure was designed in the vapor chamber with 50 mm height. The conical structure of 1 mm axial height was fabricated on the evaporation surface by computer numerical control (CNC) machining technology. A visualization experimental system was developed to investigate the effect of the conical microstructure on the two-phase behaviours, and the boiling heat transfer characteristics under different heating conditions (Q
in = 35 W, 50 W, 65 W) in a confined vapor chamber. The high-speed camera was used to capture the bubble behaviours. Experimental results found that compared with the smooth surface, the integration of the conical structure increasing the number of bubble nucleation sites and the bubble departure frequency. The bubble growth period at stable heating stage is 162 ms shorter than initial heating stage on the evaporation surface with conical structure. The thermal resistance (R
vc) of vapor chamber with conical structure is improved by 5.85% compared to the smooth one at Q
in = 65 W, which indicate that the conical microstructure can enhance the boiling heat transfer performance. This study aims to provide a reference for the design of thermal management system for green data centre.