在阳光直接照射下,被动辐射冷却低于环境空气温度
Aaswath P Raman1, Marc Abou Anoma2, Linxiao Zhu3
1Ginzton Laboratory, Department of Electrical Engineering, Stanford University, Stanford, California 94305, USA.
Nature
|November 28, 2014
概括
被动辐射冷却技术实现了在环境温度以下的白天显著的冷却. 这项创新使用光子太阳能反射器和热发射器,为能源效率提供了一条新的道路,而无需电力输入.
科学领域:
- 材料科学 材料科学 材料科学
- 热力学是一种热力学.
- 能源科学 能源科学
背景情况:
- 冷却是全球主要的能源消费者,推动了电力需求的高峰期,特别是在建筑物中.
- 通过减少输入的电力,被动冷却策略可以大幅节省能源.
- 辐射冷却利用地球大气透明度窗口,在夜间是有效的,但在白天不是.
研究的目的:
- 为了证明白天的辐射冷却低于直接阳光下的环境空气温度.
- 开发和测试一种能够在需求高峰时段被动冷却的光子装置.
- 探索使用宇宙的寒冷作为可再生的热力学资源冷却.
主要方法:
- 在阳光直射下的被动冷却装置的实验演示.
- 使用热光子方法与集成的光子太阳反射器和热发射器.
- 制造一个七层HfO2和SiO2装置,旨在反射太阳辐射并在大气透明窗口内发射热辐射.
主要成果:
- 在直接阳光下实现了近5°C低于环境空气温度的辐射冷却.
- 光子辐射冷却器反射了97%的落入阳光.
- 在强烈的太阳辐射 (>850 W/m2) 下,在环境温度下显示了 40.1 W/m2 的冷却功率.
结论:
- 量身定制的光子方法可以实现被动冷却技术,提高能源效率.
- 在环境温度以下的日间辐射冷却在实验上是可行的.
- 太空的寒冷可以被利用为可再生的热力学资源用于冷却,即使是在白天.
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