通过微/纳米结构表面增强液体-蒸汽相变热传递
Xiuliang Liu1, Jianye Yang1, Qifan Zou1
1School of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
ACS nano
|March 10, 2025
概括
微/纳米结构表面通过控制滴滴和泡动态来增强液体-蒸汽相变热传递. 本综述涵盖了各种工业应用中高效传热的制造方法和设计策略.
科学领域:
- 材料科学与工程 材料科学与工程
- 热力工程是热力工程中的一个.
- 纳米技术纳米技术
背景情况:
- 液体-蒸汽相变热传递对于发电,冷却和海水淡化至关重要.
- 微/纳米制造技术的进步允许对流体动力学进行操纵,以提高热传输.
- 对设计和制造用于相变热传输的微型/纳米结构表面的全面审查尚缺.
研究的目的:
- 审查微/纳米结构在相变传热应用中的进展.
- 讨论微型/纳米结构表面的设计和制造,以控制形态和可湿性.
- 突出了增强不同相变热传递过程的策略.
主要方法:
- 传统方法 (加工,烧结) 和先进的微型/纳米制造技术 (激光纹理,氧化,光刻,喷涂) 的审查.
- 在相变过程中分析多尺度滴滴,泡和液膜动态.
- 检查表面设计要求的湿度和形态,以控制相变现象.
主要成果:
- 先进的制造方法使得具有层次结构和异质可湿性的表面成为可能.
- 微/纳米结构的表面可以设计为增强核化,生长,运输,并离开滴和气泡.
- 功能化的微/纳米结构通过维持薄膜和促进沸来改善活跃相变过程.
结论:
- 微/纳米结构为提高不同应用的相变热传递效率提供了显著的潜力.
- 表面湿度和形态的协调设计是优化多尺度动态的关键.
- 需要进一步考虑微/纳米热传输的可靠性和可扩展性等实际方面.
关键词:
通过毛细血管驱动的蒸发.凝结和沸的情况.流量凝结和沸的过程.喷气冲击沸沸的时间液体薄膜沸沸的时间微型/纳米结构的结构.变相转换传热传热的过程喷雾冷却 喷雾冷却热地面平面 热地面平面热管理 热管理更多相关视频
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