IP Library › Granted Patent US 11,473,855
Granted Patent B2
US 11,473,855 · App. 16/385,999 · Granted Oct 18, 2022

Structures for passive radiative cooling

Inventor: Romy M. Fain (Ithaca, NY)
F28F13/18F28F21/02F28F21/067H01L31/00H01L31/024H01L31/052F25B23/003F28F2245/06H05K7/20427
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Quick Facts
Patent No.
US 11,473,855
App. No.
16/385,999
Granted
Oct 18, 2022
Kind
B2
Abstract

Passive radiative cooling structures and apparatus manufactured with such cooling structures conserve energy needs. A flexible film transparent to visible light incorporates particles at a volume percentage larger than 25% so as to absorb and emit infrared radiation at wavelengths where Earth's atmosphere is transparent. Another film transparent to visible light is thin and flexible and configured to absorb and emit infrared radiation at wavelengths where Earth's atmosphere is transparent, wherein etchings or depositions are present on one or both surfaces. A high efficiency cooling structure has an emissive layer sandwiched between a waveguide layer and a thermal conductive layer. A solar cell panel is covered by a transparent passive radiative cooling film. A container housing an active cooling unit incorporates passive radiative cooling structures on one or more exterior surfaces.

Claims (17)

1. A passive radiative cooling structure comprising:

one or more cooling stacks;

wherein each cooling stack is configured with a first waveguide layer, a first emissive layer and a thermal conductive layer, wherein the first emissive layer is sandwiched between the first waveguide layer and the thermal conductive layer;

wherein the first emissive layer is configured to absorb and emit infrared radiation at wavelengths where Earth's atmosphere is transparent;

wherein the thermally conductive layer has a proximal end and a distal end;

wherein the thermally conductive layer is substantially perpendicular to and in thermal contact at its proximal end with a source of heat to be cooled,

wherein the first waveguide layer comprises a first sublayer and a second sublayer, and

wherein the first sublayer of the first waveguide layer is configured with lenses to collect and focus the infrared radiation from the first emissive layer onto redirecting coupling elements embedded in the second sublayer of the first waveguide layer, the redirecting coupling elements configured to direct the infrared radiation from the first emissive layer upwards towards the sky, and to inhibit the infrared radiation from being reflected backwards in an opposite direction.

2. A passive radiative cooling structure according to claim 1 , further comprising a window fitted over the passive radiative cooling structure that is transparent to the wavelengths where the Earth's atmosphere is transparent.

3. A passive radiative cooling structure according to claim 1 , wherein the redirecting coupling elements are configured parallel to one another with each redirecting coupling element having an injection facet on one end, configured to direct the infrared radiation upwards towards the sky, and a narrowing on the other end, configured to inhibit the infrared radiation from being reflected backwards in the opposite direction.

4. A passive radiative cooling structure according to claim 1 , configured to cool an object to a temperature below ambient air temperature.

5. A passive radiative cooling structure according to claim 1 , wherein each cooling stack further comprises a second waveguide layer, and a second emissive layer;

wherein the second emissive layer is sandwiched between the second waveguide layer and the thermal conductive layer;

wherein the thermal conductive layer is sandwiched between the first emissive layer and the second emissive layer;

wherein the second emissive layer is configured to absorb and emit infrared radiation at wavelengths where Earth's atmosphere is transparent,

wherein the second waveguide layer comprises a first sublayer and a second sublayer, and

wherein the first sublayer of the second waveguide layer is configured with lenses to collect and focus the infrared radiation from the second emissive layer onto redirecting coupling elements embedded in the second sublayer of the second waveguide layer, the redirecting coupling elements configured to direct the infrared radiation from the second emissive layer upwards towards the sky, and to inhibit the infrared radiation from being reflected backwards in an opposite direction.

Continuity (2)
Provisional Application 62658146 · Apr 16, 2018
Related Publication 20190316854A1 · Oct 17, 2019