COMBINED CONCENTRATOR PHOTOVOLTAIC INSTALLATION
20170353154 · 2017-12-07
Inventors
- Aleksandr Ilich KHUDYSH (Ryazan Ryazanskaya obl., RU)
- Evgenii Valerevich OSHKIN (Ryazan Ryazanskaya obl., RU)
- Aleksandr Viktorovich IVANOV (Ryazan Ryazanskaya obl., RU)
Cpc classification
F24S23/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S10/25
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
F24S90/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02S40/425
ELECTRICITY
Y02E10/60
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
H02S40/44
ELECTRICITY
Y02E10/40
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
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
International classification
H02S40/44
ELECTRICITY
Abstract
A solar power installation having cooled bifacial photovoltaic solar modules for converting solar energy into electrical and thermal energy. The installation comprises a bifacial photovoltaic (PV) module having a liquid cooling system, a panel including bifacial PV cells, and a flat mirror concentrator for concentrating light on the panel. The installation also comprises a heat exchanger; a solar tracking system; and a parabolic mirror concentrator. The liquid cooling system has a closed circulation circuit. A first circuit section has a passage located over surfaces of the panel with the bifacial PV cells for cooling the surfaces of the panel. A second circuit section is located such that coolant passes through a focus of the parabolic mirror concentrator for additional heating of the coolant passing therein prior to entering the heat exchanger.
Claims
1. A solar power installation comprising: a bifacial photovoltaic (PV) module having: a liquid cooling system including non-return valves, and a panel including: bifacial PV cells, and intermediate panel sections; a flat mirror concentrator for concentrating light on the panel; a heat exchanger with a fluid circulation system in fluid communication with the liquid cooling system; a solar tracking system; and a parabolic mirror concentrator, the liquid cooling system further comprising a closed circulation circuit having: a first circuit section having a passage located over surfaces of the panel with the bifacial PV cells for cooling the surfaces of the panel with the bifacial PV cells when a coolant passes therein; and a second circuit section located such that coolant passes through a focus of the parabolic mirror concentrator for additional heating of the coolant passing therein prior to entering the heat exchanger.
2. The solar power installation according to claim 1, further comprising: glass sheets, the glass sheets being interconnected by spacers through openings in the intermediate panel sections; spacer plates, the spacer plates being located on both sides of the panel between the glass sheets and the spacers; a coolant inlet being located at the lowest point of the PV module relative to the ground level, and a coolant output being located at the highest point of the PV module relative to the ground level.
3. The solar power installation according to claim 1, wherein: the coolant is chosen such that a transmission spectrum of the coolant coincides with a photoactive part of the PV module absorption spectrum, and the transmission spectrum of the coolant being between 400 and 1200 nm.
4. The solar power installation according to claim 2, wherein: the coolant is chosen such that a transmission spectrum of the coolant coincides with a photoactive part of the PV module absorption spectrum, and the transmission spectrum of the coolant is in the range of 400 to 1200 nm.
5. A solar power plant comprising: at least one bifacial photovoltaic (PV) module each having: a liquid cooling system including unidirectional valves; a flat mirror concentrator; PV cells; and a frame for circulating a cooling fluid along the bifacial PV module, the frame comprising: a cavity within a body of the frame, the cavity being connected to an output channel in the upper portion of the PV module, so that the cooling liquid enters the frame from surfaces of the PV cells, the cavity being connected through the input channel to the lower portion of the PV module, a distance between the input and output channels being at least 0.5 m when calculated relative to the ground level.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] These and other features, aspects and advantages of the present technology will become better understood with regard to the following description, appended claims and accompanying drawings where:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION OF THE NON-LIMITING EMBODIMENTS
[0037] The examples and conditional language recited herein are principally intended to aid the reader in understanding the principles of the present technology and not to limit its scope to such specifically recited examples and conditions. It will be appreciated that those skilled in the art may devise various arrangements which, although not explicitly described or shown herein, nonetheless embody the principles of the present technology and are included within its spirit and scope.
[0038] Furthermore, as an aid to understanding, the following description may describe relatively simplified implementations of the present technology. As persons skilled in the art would understand, various implementations of the present technology may be of a greater complexity.
[0039] In some cases, what are believed to be helpful examples of modifications to the present technology may also be set forth. This is done merely as an aid to understanding, and, again, not to define the scope or set forth the bounds of the present technology. These modifications are not an exhaustive list, and a person skilled in the art may make other modifications while nonetheless remaining within the scope of the present technology. Further, where no examples of modifications have been set forth, it should not be interpreted that no modifications are possible and/or that what is described is the sole manner of implementing that element of the present technology.
[0040] Moreover, all statements herein reciting principles, aspects, and implementations of the technology, as well as specific examples thereof, are intended to encompass both structural and functional equivalents thereof, whether they are currently known or developed in the future.
[0041] To solve the above mentioned problem(s), a solar power installation is disclosed herein. The solar power installation comprises at least one bifacial PV module with a liquid cooling system, a flat mirror concentrator, a parabolic mirror concentrator, a heat exchanger with a fluid circulation system in the circuit, unidirectional valves, and a solar tracking system.
[0042] The cooling system is a single circulation circuit, divided functionally into two sections. One part of the contour (a first circuit section) is the volume located inside the PV module above the surfaces of the panel with bifacial PV cells, bounded by transparent glass sheets. The second part of the contour (a second circuit section) passes through the focus of the parabolic mirror concentrator. Thus, the functional purpose of the coolant in these areas is different.
[0043] In the first section, in the volume of the PV module, the coolant flowing along the PV module from below upwards take heat away due to convection from the PV cells ensuring the temperature of PV cells within the operating limits—not higher than +85° C. Passing through the parabolic concentrator, the coolant is additionally heated and then flows into the heat exchanger. After the heat exchanger, the coolant is again fed via a circulation system to the PV module volume. To prevent the mutual influence of the fluid from different PV modules in the circulation circuit, unidirectional valves are installed at the output of each PV module.
[0044] Such construction of the SPI may allow increasing the efficiency of obtaining solar electrical and thermal energy:
[0045] (1) In this SPI, the bifacial PV modules can have significant dimensions and a high specific peak power, more than 450 W/m2 even at high ambient temperatures.
[0046] (2) The second parabolic mirror concentrator monitors the sun with the help of the same system that monitors the sun for the PV module and does not require additional costs to organize this tracking.
[0047] The SPI monitors the position of the sun in the polar coordinate system.
[0048] Referring to
[0049] Referring now to
[0050] In some non-limiting embodiments of the present technology, to compensate the fluid pressure and to ensure the geometric dimensions of the PV module, the glass sheets 8 are interconnected by the spacers 9 through the holes (also referred to herein as “openings”) in the panel sections free of PV cells (also referred to herein as “intermediate panel sections”). Between the glass sheets 8 and the panel 7, and between the spacers 9, spacer plates 10 are installed on both sides of the panel 7 to effectively cool the PV cells.
[0051] A coolant input for the PV module can be located at a lowest point, and an output can be located at a highest point of the PV module relative to the ground level and made in the form of fittings depicted at 11 and 12.
[0052] In at least one embodiment, the installation may have a transmission spectrum of the coolant coinciding with the photoactive part of the PV module absorption spectrum. For example, such spectrum may be in the range from 400 to 1200 nm.
[0053] Referring now to
[0054] In this embodiment, the shape and the area of the frame may be selected such that the liquid entering the cavity through the channel 14 at the upper point of the PV module has sufficient time to cool in the aluminum frame and enter the volume of the PV module through a similar channel at the lower point of the PV module with a temperature that does not allow the flexible panel with bifacial PV cells to be heated above the maximum permissible operating temperature.
[0055] In some embodiments of the present technology, the PV module (for example, as depicted in
[0056] It should be expressly understood that not all technical effects mentioned herein need to be enjoyed in each and every implementation of the present technology. For example, implementations of the present technology may be implemented without the user enjoying some of these technical effects, while other implementations may be implemented with the user enjoying other technical effects or none at all.
[0057] Modifications and improvements to the above-described implementations of the present technology may become apparent to those skilled in the art. The foregoing description is intended to be exemplary rather than limiting. The scope of the present technology is therefore intended to be limited solely by the scope of the appended claims.