Self-Adaptive VO2 Radiative Cooling Multilayer Structure with Diffenrent Band Selective Emissivity for Electronic Cooling
编号:14 访问权限:仅限参会人 更新:2025-09-30 11:09:50 浏览:4次 张贴报告

报告开始:2025年10月11日 15:10(Asia/Shanghai)

报告时间:20min

所在会场:[P] Poster Presentation [P2] Poster Presentation 2

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摘要
As a technology without requiring any energy consumption, radiative cooling has the potential to be applied in the field of electronic device cooling. To improve the cooling efficiency, studies mainly focuses on improving the solar reflectivity and infrared emissivity of materials. However, it is more applicable when the temperature of electronic devices is higher than that of the environment. To ensure the high cooling power at different temperatures, this study focuses on the influence of emissivity in different wavelength. It is found that under high temperature conditions, the cooling efficiency of the full-band (3-25 μm) non-selective high emissivity structure is the highest. On the contrary, the dual-band (8-13 and 16-25 μm) high emissivity structure exhibits the best performance. Based on the above results, it can be concluded that the static thermal emissivity is unable to meet the requirements of practical applications. Therefore, a multilayer structure with temperature adaptive emissivity is designed based on the phase transition material W-doped VO2. It is composed of alternating layers of VO2, Si3N4, TiO2, CaF2 and SiO2, and the parameters are optimized via the transfer matrix method. The results show that at high temperature, the structure has high emissivity across the entire wavelength range, with an average value of 0.82. At low temperature, the dual-band emissivity is 0.87, while the emissivity in other wavelength range decreases to 0.42. Meanwhile, the structure has high solar reflectivity over 0.93 at different temperatures. This design achieves superior cooling performance under various conditions, providing a comprehensive and reliable radiative cooling solution for the thermal management of electronic devices.
关键词
Phase change material, radiative cooling, thermal management, vanadium dioxide
报告人
Xin Zhao
Xi'an Jiaotong University, China

稿件作者
Xin Zhao Xi'an Jiaotong University;MOE Key Laboratory of Thermo-Fluid Science and Engineering; School of Energy and Power Engineering
Chunlei Sun Xi'an Jiaotong University;School of Energy and Power Engineering;MOE Key Laboratory of Thermo-Fluid Science and Engineering
Guihua Tang Xi'an Jiaotong University
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重要日期
  • 会议日期

    10月09日

    2025

    10月13日

    2025

  • 08月30日 2025

    初稿截稿日期

  • 10月13日 2025

    注册截止日期

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Huazhong University of Science and Technology
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