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弯曲的热管:用于增强移动设备散热的创新超薄柔性环路热管
Bending the heat: Innovative ultra-thin flexible loop heat pipes for enhanced mobile device cooling
| 作者 | Qingjie Cui · Xiang Ma · Ziyi You · Xiaoping Yang · Yonghai Zhang · Jinjia Wei |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 325 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 DAB |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | Developed a 0.7 mm ultra-thin flexible loop [heat pipe](https://www.sciencedirect.com/topics/engineering/heat-pipes "Learn more about heat pipe from ScienceDirect's AI-generated Topic Pages") for foldable device. |
语言:
中文摘要
摘要 5G技术的快速发展显著加速了移动设备的进步,推动智能手机、平板电脑以及虚拟现实(VR)和增强现实(AR)眼镜等电子产品向日益可折叠的设计方向演进。然而,由于空间和结构特性的固有约束,传统的热管理方案已无法满足这些可折叠设备的性能需求。因此,迫切需要开发与芯片设计中跨铰链结构相兼容的高效热管理解决方案。本研究提出并制备了一种厚度仅为0.7 mm的新型超薄柔性环路热管(UFLHP),以应对跨铰链设计带来的传热挑战。通过采用粉末烧结与线切割技术,开发出一种创新方法,用于制造厚度为0.4 mm的金属粉末芯体。在实验中,选用乙醇作为工作流体,系统地研究了热负荷、倾斜角度和弯曲角度对UFLHP稳态传热性能的影响。实验结果表明,UFLHP的最大热流密度可达5 W/cm²。在此热流密度下,UFLHP蒸发器的温度达到72.15 °C,测得其热阻为2.48 K/W,有效导热系数高达10,273.27 W/(m·K)。倾斜角度在重力作用下对UFLHP的性能具有积极影响,而弯曲角度则因增加流动阻力而对其性能产生不利影响。本研究为可折叠电子设备的散热难题提供了一种可行的解决方案。
English Abstract
Abstract The rapid advancement of 5G technology has significantly accelerated the progression of mobile devices, promoting the evolution of electronic products such as smartphones, tablet computers, and virtual reality (VR) and augmented reality (AR) eyewear towards an increasingly foldable design. However, due to the inherent constraints of spatial and structural characteristics, conventional thermal management solutions are no longer adequate to meet the performance requirements of these foldable devices. Therefore, it is imperative to develop efficient thermal management solutions that are compatible with the cross-hinge structures within chip design. This study proposes and fabricates a novel ultra-thin flexible loop heat pipe (UFLHP) with a thickness of merely 0.7 mm to address the heat transfer challenges posed by cross-hinge designs. By utilizing powder sintering and wire cutting techniques, an innovative approach has been developed for fabricating a metallic powder wick with a thickness of 0.4 mm. During the experiments, ethanol was employed as the working fluid to systematically investigate the effects of thermal loading, tilt angle, and bending angle on the steady-state heat transfer performance of the UFLHP. The experimental results indicate that the maximum heat flux density of the UFLHP reaches 5 W/cm2. Under this heat flux density, the evaporator temperature of the UFLHP attains 72.15 °C, while the thermal resistance is measured at 2.48 K/W, resulting in an effective thermal conductivity of 10,273.27 W/(m·K). The tilt angle has a beneficial effect on the UFLHP’s performance under gravitational influence, while the bending angle adversely affects its performance due to increased flow resistance. This research provides a feasible solution for the heat dissipation challenges in foldable electronic devices.
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SunView 深度解读
该超薄柔性环路热管技术对阳光电源储能系统和充电桩产品具有重要应用价值。ST系列PCS和PowerTitan储能系统中功率器件(SiC/IGBT)及DAB变换器在高功率密度设计下面临严峻散热挑战,该0.7mm厚柔性热管可适配紧凑空间布局,最大热流密度5W/cm²和等效热导率10273W/(m·K)可显著提升功率模块散热效率。对于户外充电桩,柔性弯曲特性能适应复杂结构设计,倾角适应性强化了不同安装角度下的热管理稳定性,为提升设备功率密度和环境适应性提供创新方案。