CONCENTRATING PHOTOVOLTAIC MODULE
20210066526 ยท 2021-03-04
Inventors
Cpc classification
H01L31/052
ELECTRICITY
H02S40/44
ELECTRICITY
F24S10/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S40/55
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/44
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01L31/0547
ELECTRICITY
Y02E10/52
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01L31/0521
ELECTRICITY
International classification
H01L31/054
ELECTRICITY
Abstract
This invention relates to a photovoltaic module intended to convert solar radiation energy in electricity, and, more specifically, to a concentrating photovoltaic module provided with a parabolic dish-shaped mirror and a small-size photovoltaic receiver positioned in the focal plane of this parabolic dish-shaped mirror and the focal spot is overlapped mostly by the photovoltaic receiver.
The photovoltaic module is based on usage of combination of two-phase thermosiphon, which includes a flexible sub-section designed as a bellows, with the parabolic dish-shaped mirror installed on the distal sub-section of the two-phase thermosiphon by the truss struts.
A tracking manipulator is installed below the parabolic dish-shaped mirror and joined with a certain spot of a supporting structure of the parabolic dish-shaped mirror; it provides orientation of the axis of the parabolic dish-shaped mirror towards the sun.
Claims
1. A concentrating photovoltaic module comprising following elements and units: a two-phase thermosiphon intended to reject heat from photovoltaic cells being installed on the external end butt of a plug, which seals the lower section of said two-phase thermosiphon; said lower section of said two-phase thermosiphon is divided onto three sub-sections: a distal rigid sub-section from a pipe, a middle sub-section designed as a bellows and a proximal rigid sub-section from another pipe, which is substantially oriented vertically; said proximal rigid sub-section of said lower section of said two-phase thermosiphon is in fluid communication via a metal 3-way connector with two inclined upper sections shaped as pipes; the proximal ends of said inclined upper sections are sealed and supported by two supporting units installed on two posts; a bushing, which is fastened on said rigid distal sub-section of said lower section of said two-phase thermosiphon; said bushing is joined by truss struts with a supporting structure of a parabolic dish-shaped mirror; a focal spot (the sun image in the focal plane) of said parabolic dish-shaped mirror illuminates said photovoltaic cells; a tracking manipulator, which is joined with said supporting structure; said tracking manipulator provides orientation of the axis of said parabolic dish-shaped mirror and, therefore, of the axis of said rigid distal sub-section of said lower section of said two-phase thermosiphon towards the sun; said tracking manipulator is joined with said supporting structure of said parabolic dish-shaped mirror at a certain point; the outer surface of said bellows is protected by a braid; said inclined upper sections of said two-phase thermosiphon are provided with external fins.
2. The concentrating photovoltaic module as claimed in claim 1, wherein there is an optical unit, which provides uniform illumination of the photovoltaic cells installed on the external end butt of the plug of the lower section of the two-phase thermosiphon; said optical unit is installed below said external end butt.
3. The concentrating photovoltaic module as claimed in claim 1, wherein there are fans installed on the fins of the upper sections of the two-phase thermosiphon.
4. The concentrating photovoltaic module as claimed in claim 1, wherein the distal sub-section of the lower section of the two-phase thermosiphon is terminated with a truncated cone, which is sealed with a plug serving for installation of the photovoltaic cells on its external end butt.
5. The concentrating photovoltaic module as claimed in claim 1, wherein the photovoltaic cells are multi junction photovoltaic cells.
6. The concentrating photovoltaic module as claimed in claim 1, wherein the proximal rigid sub-section of the lower section of the two-phase thermosiphon is joined with the posts by a cross-bar.
7. The concentrating photovoltaic module as claimed in claim 1, wherein the internal end butt of the plug, which seals the distal sub-section of lower section of the two-phase thermosiphon, is covered with a capillary coating.
8. A concentrating photovoltaic module comprising following elements and units: a two-phase thermosiphon intended to reject heat from photovoltaic cells being installed on the external end butt of a plug, which seals the lower section of said two-phase thermosiphon; said lower section of said two-phase thermosiphon is divided onto three sub-sections: a distal rigid sub-section from a pipe, a middle sub-section designed as a flexible bellows and a proximal rigid sub-section from another pipe, which is substantially oriented vertically. a bushing, which is fastened on said rigid distal sub-section of said lower section of said two-phase thermosiphon; said bushing is joined by truss struts with a supporting structure of a parabolic dish-shaped mirror; a tracking manipulator which is joined with said supporting structure; said tracking manipulator provides orientation of the axis of said parabolic dish-shaped mirror and, therefore, of the axis of said rigid distal sub-section of said lower section of said two-phase thermosiphon towards the sun; a focal spot (the sun image in the focal plane) of said parabolic dish-shaped mirror illuminates said photovoltaic cells; said tracking manipulator is joined with said supporting structure of said parabolic dish-shaped parabolic mirror at a certain point; the outer surface of said bellows is protected by a braid; an upper section of said two-phase thermosiphon is a first pipe having concave axis; said first pipe is in fluid communication with said lower section of said two-phase thermosiphon via 3-way connector with the concave upper axis; a second pipe having concave axis and a smaller diameter than said first pipe is situated partially and coaxially in the internal space of said first pipe; in such a way the terminal sections of said second pipe are protruded from the said first pipe; the terminal sections of said first pipe of are sealed with the proximal sub-sections of said second pipe by two annular plugs; said second pipe is applied for cooling and condensation of vapors of a working medium of said two-phase thermosiphon by a cooling medium, which flows in said second pipe; said cooling medium is circulating via a radiator with its external finning, and there is a fan installed on said radiator; a pump circulates said cooling medium.
9. The concentrating photovoltaic module as claimed in claim 8, wherein there is an optical unit, which provides uniform illumination of the photovoltaic cells installed on external end butt of the plug of the lower section of the two-phase thermosiphon; said optical unit is installed below said external end butt of the lower section of said two-phase thermosiphon.
10. The concentrating photovoltaic module as claimed in claim 8, wherein the distal sub-section of the lower section of the two-phase thermosiphon is terminated with a truncated cone, which is sealed with a plug; the external end butt of said plug serves for installation of the photovoltaic cells.
11. The concentrating photovoltaic module as claimed in claim 8, wherein the photovoltaic cells are multi junction photovoltaic cells.
12. The concentrating photovoltaic module as claimed in claim 8, wherein the proximal rigid sub-section of the lower section of the two-phase thermosiphon is joined with the posts by a cross-bar.
12. The concentrating photovoltaic module as claimed in claim 8, wherein the internal end butt of the plug sealing the distal sub-section of lower section of the two-phase thermosiphon is covered with a capillary coating.
13. The concentrating photovoltaic module as claimed in claim 8, wherein the first pipe is provided with two sub-sections of additional bellows.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0040]
[0041] The lower section of the two-phase thermosiphon is joined with a supporting structure of a parabolic dish-shaped mirror. This supporting structure is joined, in turn, with a tracking manipulator shown schematically.
[0042] In such a way, a photovoltaic receiver of the proposed photovoltaic module is positioned on the external end butt of the distal plug and the focal spot of the parabolic dish-shaped mirror is mostly overlapped by the photovoltaic cells of this photovoltaic receiver.
[0043] The upper sections of the two-phase thermosiphon are provided with external fins, which serve for heat dissipation by forced convection. This forced convection caused by fans installed on the external fins.
[0044]
[0045]
[0046] The external end butt of the plug, which seals the two-phase thermosiphon's lower section, serves for installation of photovoltaic cells. In addition, there is an optical unit arranged below the photovoltaic cells, which ensures uniform illumination of the photovoltaic cells by concentrated solar radiation obtained from a parabolic dish-shaped mirror.
[0047] There is a bushing, which is fastened on the distal sub-section of the lower section of the two-phase thermosiphon and serves, in turn, for installation of the parabolic dish-shaped mirror; this parabolic dish-shaped mirror is joined with a tracking manipulator (shown schematically).
[0048] The upper section of the two-phase thermosiphon comprises a first pipe having concave axis, and a second pipe of smaller diameter; the second pipe has concave axis too and is situated coaxially in the internal space of the first pipe; the terminal sections of this second pipe are protruded from the first pipe and the ends of the first pipe are sealed with the proximal sub-sections of the second pipe.
[0049] In such a way, this second pipe can be applied for cooling and condensation of vapors of working medium of the two-phase thermosiphon by a cooling medium, which flows in this second pipe.
[0050] In addition, there is a pump, radiator and fan; they serve for chilling the cooling medium. These units are shown schematically.
[0051]
DETAILED DESCRIPTION OF THE INVENTION
[0052]
[0053] The upper sections of the two-phase thermosiphon are provided with external fins, which serve for heat dissipation by forced convection. This forced convection is caused by fans installed on the external fins.
[0054] In such a way, the concentrating photovoltaic module comprises: a two-phase thermosiphon 100 with its lower section including, in turn, an upper rigid sub-section 101, bellows 103, a distal rigid sub-section 119, which is terminated with a conical member 117; this conical member 117 is sealed by plug 116; photovoltaic cells 109 are fastened on the external end butt of this plug 116 and its internal end butt is covered with a capillary coating 118.
[0055] Bushing 104 is installed on the distal rigid sub-section 119 of the lower section of the two-phase thermosiphon 100; this bushing 104 serves for installation of a parabolic dish-shaped mirror 102; a supporting structure 120 of the parabolic dish-shaped mirror is joined with bushing 104 by truss struts 105.
[0056] A tracking manipulator 110 is joined with the supporting structure 120 of the parabolic dish-shaped mirror 102 at a certain point of the supporting structure 120.
[0057] There is an optical unit 108 arranged below the lower section of the two-phase thermosiphon 100; this optical unit 108 provides uniform illumination of the photovoltaic cells by concentrated solar radiation obtained from the parabolic dish-shaped mirror 102.
[0058] An upper rigid sub-section 101 of the lower section of the two-phase thermosiphon 100 is joined by cross-bar 115 with posts 112; it provides mechanical rigidity to the upper rigid sub-section 101 of the lower section of the two-phase thermosiphon 100.
[0059] There are two inclined upper sections 106 of the two-phase thermosiphon 100, these upper inclined sections 106 are in fluid communication with the lower section of the two-phase thermosiphon 100 via a metal 3-way connector 121.
[0060] The proximal sub-sections of the upper sections are sealed with plugs 113; these proximal sub-sections are supported by supporting members 114 installed on posts 112.
[0061] The external surface of the upper sections of the two-phase thermosiphon are provided with fins 107 and fans 111 for enhancement of forced convection from these fins 107 to the environment.
[0062]
[0063] It comprises the lower sub-section 119 of the lower section of the two-phase thermosiphon 100; bushing 104 is installed on this lower sub-section 119.
[0064] The lower rigid sub-section 119 is terminated at its distal part with a truncated cone 117, which is sealed with plug 116. The photovoltaic cells 109 are installed on the external end butt of of plug 116; its internal end butt is covered with the capillary coating 118.
[0065] The optical unit 108 is arranged below the photovoltaic cells 109.
[0066] Bushing 104 is joined with the truss strut 105.
[0067]
[0068] The protruded terminal sections of the internal pipe 209 are sealed by plugs 213, which are provided with openings serving for passage of a cooling medium.
[0069] The protruded terminal sections of the second pipe 209 are supported by supporting members 212 installed on posts 217.
[0070] In such a way, this second pipe 209 of smaller diameter can be applied for cooling and condensation of vapors of working medium of the two-phase thermosiphon 200 by the cooling medium, which flows in this second pipe 209.
[0071] The first pipe 207 is provided with two bellows 208 in order to diminish tensions caused by temperatures' difference between the first pipe 207 and the second pipe 209.
[0072] In addition, there is pump 215, radiator 214 and fan 216; they serve for chilling the cooling medium. These units are shown schematically.
[0073] The lower section of the two-phase thermosiphon 200 comprises an upper rigid sub-section 201, bellows 203, a distal rigid sub-section 206, which is terminated with a truncated conical member 224; this truncated conical member is sealed by plug 222; photovoltaic cells 218 are fastened on the external end butt of this plug 222 and its internal end butt is provided with a capillary coating 223.
[0074] Bushing 204 is installed on the distal rigid sub-section 206 of the lower section of the two-phase thermosiphon 200; this bushing 204 serves for installation of a parabolic dish-shaped mirror 202 and its supporting structure 221, which is joined with bushing 204 by truss struts 205.
[0075] A tracking manipulator 210 is joined with the supporting structure 221 of the parabolic dish-shaped mirror 202 at a certain point of this supporting structure 221.
[0076] There is an optical unit 219 arranged below the conical member 224; this optical unit 219 provides uniform illumination of the photovoltaic cells 218.
[0077] The upper sub-section 201 of the lower section of the two-phase thermosiphon 200 is joined by cross-bar 220 with posts 217; this provides mechanical rigidity to the upper sub-section 201 of this lower section.
[0078]
[0079] It comprises the lower sub-section of the lower section of the two-phase thermosiphon 200; bushing 204 is installed on this lower sub-section 206.
[0080] The lower sub-section 206 is terminated at its distal part with the truncated conical member 224, which is sealed with plug 222. The photovoltaic cells 218 are installed on the external end butt of plug 222; its internal end butt is provided with the capillary coating 223.
[0081] The optical unit 219 is arranged below the conical member 224 and the photovoltaic cells 218; this optical unit 219 provides uniform illumination of the photovoltaic cells 218.
[0082] Bushing 204 is joined with the truss strut 205.