IP Library › Granted Patent US 12,620,932
Granted Patent B2
US 12,620,932 · App. 18/667,109 · Granted May 5, 2026

Photovoltaics panel, photovoltaics system and evaporating system for photovoltaics system

Inventors: Wei Wu (Tsim Sha Tsui, HK); Fuxiang Li (Mongkok, HK)
Assignee: City University of Hong Kong
H02S40/425F28D15/0275F28D2021/0029
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Quick Facts
Patent No.
US 12,620,932
App. No.
18/667,109
Granted
May 5, 2026
Kind
B2
Abstract

A photovoltaics (PV) panel includes a PV module ( 102, 202 ) with a front face ( 102 a, 202 a ) for exposure to sunlight and absorbing solar energy for conversion to electric energy and a back face opposite to the front face, and an evaporator ( 104, 204, 312 ) engaged with the back face of the PV module, an upper end ( 106, 206 ) of the evaporator being in close proximity to or in contact with a water source for absorbing the water by capillary action, the evaporator being of a structure allowing the water to move through, and the PV module being in a heat-transferrable relationship with the water moving through the evaporator.

Claims (64)

1 . A photovoltaics (PV) panel including:

a PV module with a front face for exposure to sunlight and absorbing solar energy for conversion to electric energy and a back face opposite to said front face, and

an evaporator engaged with said back face of said PV module,

wherein a first end of said evaporator is adapted to be in close proximity to or in contact with a source of a cooling medium for absorbing said cooling medium by capillary action,

wherein said evaporator is of a structure allowing said cooling medium to move through,

wherein said PV module is adapted to be in a heat-transferrable relationship with said cooling medium moving through said evaporator,

wherein said evaporator is of a porous structure allowing said cooling medium absorbed by said evaporator to move from said first end of said evaporator to an opposite second end of said evaporator and to exit said evaporator from said second end,

wherein said evaporator is configured to permit at least a portion of said cooling medium to evaporate to an environment as said cooling medium is absorbed by said evaporator, and

wherein said environment is outside of said photovoltaics PV panel.

2 . The PV panel of claim 1 , wherein said evaporator is made at least of a cooling medium absorbent material.

3 . The PV panel of claim 2 , wherein said evaporator is engaged with said back face of said PV module via a thermally-conductive layer.

4 . The PV panel of claim 3 , wherein said thermally-conductive layer is made at least of an adhesive thermally-conductive material.

5 . The PV panel of claim 1 , wherein said second end of said evaporator is adapted to be in close proximity to or in contact with a lower container for collecting said cooling medium exiting said evaporator from said second end.

6 . A photovoltaics (PV) system including a PV panel according to claim 1 .

7 . The PV system of claim 6 ,

wherein said PV module is inclined relative to the horizontal, and

wherein said evaporator is of a porous structure allowing at least a portion of said cooling medium absorbed by said evaporator to move under gravity from said first end to an opposite second end which is lower than said first end to exit said evaporator.

8 . The PV system of claim 6 , wherein said evaporator is engaged with said back face of said PV module via a thermally-conductive layer.

9 . The PV system of claim 8 , wherein said thermally-conductive layer is made at least of an adhesive thermally-conductive material.

10 . A photovoltaics (PV) system including a PV panel including:

a PV module with a front face for exposure to sunlight and absorbing solar energy for conversion to electric energy and a back face opposite to said front face, and

an evaporator engaged with said back face of said PV module,

wherein a first end of said evaporator is adapted to be in close proximity to or in contact with a source of a cooling medium for absorbing said cooling medium by capillary action,

wherein said evaporator is of a structure allowing said cooling medium to move through, and

wherein said PV module is adapted to be in a heat-transferrable relationship with said cooling medium moving through said evaporator,

said PV system further including:

a pump operable to pump said cooling medium to an upper container to be absorbed by said evaporator,

an irradiance sensor,

a liquid-level sensor, and

a control system,

wherein said control system is adapted to:

stop operation of said pump when solar irradiance on said PV panel as measured by said irradiance sensor is below a threshold level,

activate operation of said pump for a first predetermined period of time to pump said cooling medium to said upper container when solar irradiance on said PV panel as measured by said irradiance sensor is above said threshold level, and

activate operation of said pump for a second predetermined period of time to pump said cooling medium to said upper container when solar irradiance on said PV panel as measured by said irradiance sensor is above said threshold level and said cooling medium in said upper container as sensed by said liquid-level sensor is below a pre-set level.

11 . The PV system of claim 7 , further including a path allowing said cooling medium exiting said evaporator from said second end of said evaporator to move to a pump.

12 . The PV system of claim 11 , wherein said second end of said evaporator is in close proximity to or in contact with a lower container for collecting said cooling medium exiting said evaporator from said second end.

13 . An evaporating system for a photovoltaics (PV) system, including:

an evaporator engageable with a back face of a PV module, and

an upper container for a cooling medium,

wherein a first end of said evaporator extends in close proximity to or at least partly into said upper container and is adapted to absorb said cooling medium in said upper container by capillary action,

wherein said evaporator is of a structure allowing said cooling medium to move through,

wherein, when said evaporator is engaged with said PV panel, said PV module is adapted to be in a heat-transferrable relationship with said cooling medium moving through said evaporator, and

wherein said evaporator includes a face facing away from said front face of said PV module allowing at least a portion of said cooling medium absorbed by said evaporator to evaporate to an environment outside of said PV system.

14 . The evaporating system of claim 13 , wherein said evaporator is made at least of a cooling medium absorbent material.

15 . The evaporating system of claim 13 , wherein said evaporator is of a porous structure allowing at least a portion of said cooling medium absorbed by said evaporator to move under gravity from said first end to an opposite second end which is lower than said first end to exit said evaporator.

16 . The evaporator system of claim 15 , wherein said second end of said evaporator is in close proximity to or in contact with a lower container for collecting said cooling medium exiting said evaporator from said second end.

17 . The evaporating system of claim 13 , wherein said evaporator is engageable with said back face of said PV module via a thermally-conductive layer.

18 . The evaporating system of claim 17 , wherein said thermally-conductive layer is made at least of an adhesive thermally-conductive material.

19 . The evaporating system of claim 13 , further including a pump operable to pump said cooling medium to said upper container to be absorbed by said cooling member.

20 . An evaporating system for a photovoltaics (PV) system, including:

an evaporator engageable with a back face of a PV module, and

an upper container for a cooling medium,

wherein a first end of said evaporator extends in close proximity to or at least partly into said upper container and is adapted to absorb said cooling medium in said upper container by capillary action,

wherein said evaporator is of a structure allowing said cooling medium to move through, and

wherein, when said evaporator is engaged with said PV panel, said PV module is adapted to be in a heat-transferrable relationship with said cooling medium moving through said evaporator,

said evaporating system further including:

a pump operable to pump said cooling medium to said upper container to be absorbed by said cooling member,

an irradiance sensor,

a liquid-level sensor, and

a control system

wherein said control system is adapted to:

stop operation of said pump when solar irradiance on said PV panel as measured by said irradiance sensor is below a threshold level, activate operation of said pump for a first predetermined period of time to pump said cooling medium to said upper container when solar irradiance on said PV panel as measured by said irradiance sensor is above said threshold level, and

activate operation of said pump for a second predetermined period of time to pump said cooling medium to said upper container when solar irradiance on said PV panel as measured by said irradiance sensor is above said threshold level and said cooling medium in said upper container as sensed by said liquid-level sensor is below a pre-set level.

21 . The evaporating system of claim 16 , further including a path allowing said cooling medium exiting said evaporator from said second end of said evaporator to be returned to a pump.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2024
From: WU, WEI; LI, FUXIANG
To: CITY UNIVERSITY OF HONG KONG
Reel/Frame 067445/0716 →
Continuity (2)
Provisional Application 63508481 · Jun 15, 2023
Related Publication 20240421763A1 · Dec 19, 2024
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