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用于节能建筑应用的可扩展、可图案化的玻璃渗透陶瓷辐射冷却器。

Scalable, Patternable Glass-Infiltrated Ceramic Radiative Coolers for Energy-Saving Architectural Applications.

作者信息

Jeon Seung Kyu, Kim June Tae, Kim Min Seong, Kim In Soo, Park Sung Jin, Jeong Hyeondeok, Lee Gil Ju, Kim Yeong Jae

机构信息

Ceramic Total Solution Center, Korea Institute of Ceramic Engineering and Technology, 3321, Gyeongchung-daero, Sindun-myeon, Icheon-si, Gyeonggi-do, Icheon, 17303, Republic of Korea.

Department of Electronics Engineering, Pusan National University, 2, Busandaehak-ro 63 beon-gil, Busan, 46241, Republic of Korea.

出版信息

Adv Sci (Weinh). 2023 Sep;10(27):e2302701. doi: 10.1002/advs.202302701. Epub 2023 Jul 23.

Abstract

A huge concern on global climate/energy crises has triggered intense development of radiative coolers (RCs), which are promising green-cooling technologies. The continuous efforts on RCs have fast-tracked notable energy-savings by minimizing solar absorption and maximizing thermal emission. Recently, in addition to spectral optimization, ceramic-based thermally insulative RCs are reported to improve thermoregulation by suppressing heat gain from the surroundings. However, a high temperature co-firing process of ceramic-based thick film inevitably results in a large mismatch of structural parameters between designed and fabricated components, thereby breaking spectral optimization. Here, this article proposes a scalable, non-shrinkable, patternable, and thermally insulative ceramic RC (SNPT-RC) using a roll-to-roll process, which can fill a vital niche in the field of radiative cooling. A stand-alone SNPT-RC exhibits excellent thermal insulation (≈0.251 W m  K ) with flame-resistivity and high solar reflectance/long-wave emissivity (≈96% and 92%, respectively). Alternate stacks of intermediate porous alumina/borosilicate (Al O -BS) layers not only result in outstanding thermal and spectral characteristics, causing excellent sub-ambient cooling (i.e., 7.05 °C cooling), but also non-shrinkable feature. Moreover, a perforated SNPT-RC demonstrates its versatility as a breathable radiative cooling shade and as a semi-transparent window, making it a highly promising technology for practical deployment in energy-saving architecture.

摘要

全球气候/能源危机引发了人们的高度关注,这推动了辐射冷却器(RCs)的迅猛发展,辐射冷却器是很有前景的绿色冷却技术。在辐射冷却器方面的持续努力通过最小化太阳能吸收和最大化热发射实现了显著的节能。最近,除了光谱优化外,据报道基于陶瓷的隔热辐射冷却器通过抑制周围环境的热量获取来改善温度调节。然而,基于陶瓷的厚膜高温共烧工艺不可避免地导致设计和制造部件之间的结构参数存在较大不匹配,从而破坏光谱优化。在此,本文提出一种采用卷对卷工艺的可扩展、不收缩、可图案化且隔热的陶瓷辐射冷却器(SNPT-RC),它可以在辐射冷却领域填补重要空白。独立的SNPT-RC表现出优异的隔热性能(≈0.251 W m K),具有阻燃性以及高太阳反射率/长波发射率(分别约为96%和92%)。交替堆叠的中间多孔氧化铝/硼硅酸盐(Al O -BS)层不仅产生出色的热学和光谱特性,实现优异的低于环境温度的冷却(即7.05°C冷却),还具有不收缩的特性。此外,穿孔的SNPT-RC展示了其作为透气辐射冷却遮阳罩和半透明窗户的多功能性,使其成为节能建筑中实际应用的极具前景的技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/869c/10520670/36e74f0f2c3b/ADVS-10-2302701-g002.jpg

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