PHOTOVOLTAlC MODULE
20200403567 ยท 2020-12-24
Inventors
- Martin Andrew Green (Bronte, New South Wales, AU)
- Yajie Jessica JIANG (Caringbah, New South Wales, AU)
- Mark KEEVERS (Maroubra, New South Wales, AU)
- Nicholas EKINS-DAUKES (Kensington, New South Wales, AU)
- Zibo ZHOU (Rhodes, New South Wales, AU)
Cpc classification
H01L31/02366
ELECTRICITY
Y02E10/50
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
H01L31/0488
ELECTRICITY
F28F2245/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present disclosure provides a photovoltaic module, which comprises a photon absorbing material comprising a solar cell; The photovoltaic module also comprises a glass material positioned within a plane and being positioned over the photon absorbing material such that in use light is incident on the glass material and the glass material transmits light towards the photon absorbing material, the glass material having a front surface facing away from the photon absorbing material. The front surface of the glass material has a shape which is profiled such that the emittance of infrared light from the front surface of the glass material is increased compared to that of a flat front surface, the emittance of the infrared light being associated with absorbance of infrared light that is incident upon the front surface. A rear backing sheet of the photovoltaic module may have a shape that is profiled in a corresponding manner.
Claims
1. A photovoltaic module, comprising: a photon absorbing material comprising a solar cell; and a glass material being positioned within a plane and being position over the photon absorbing material such that in use light is incident on the glass material and the glass material transmits light towards the photon absorbing material, the glass material having a front surface facing away from the photon absorbing material; wherein the front surface of the glass material has a shape which is profiled such that the emittance of infrared light from the front surface of the glass material is increased compared to that of a flat front surface, the emittance of the infrared light being associated with absorbance of infrared light that is incident upon the front surface within a predefined angular range relative to a surface normal of the plane in which the glass material is positioned.
2. The photovoltaic module of claim 1 wherein the front surface of the glass material has a shape which is profiled such that the emittance of infrared radiation is increased compared to that of a flat front surface, the emittance of the infrared radiation being associated with absorption of light that is incident at oblique angles relative to a surface normal of the plane in which the glass material is positioned.
3. The photovoltaic module of claim 1 comprising recesses or projections which have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at an angle within the range of less than 90-80, 80-70 or 70-60.
4. The photovoltaic module of claim 1 comprising recesses or projections which have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at an angle within the range of 60-50 50-40, or 40-30.
5. The photovoltaic module of claim 1 comprising recesses or projections which have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at an angle within the range of 30-20, 20 to 10 or less than 10.
6. The photovoltaic module of claim 1 further comprising a rear backing sheet positioned such that the photon absorbing material is located between the glass material and the rear backing sheet, the rear backing sheet having a rear surface facing away from the photon absorbing material and having a shape which is profiled such that the emittance of infrared radiation is increased compared to that of a flat rear surface, the emittance being associated with absorption of infrared light that is incident upon the rear surface of the rear backing sheet.
7. The photovoltaic module of claim 6 wherein the rear surface of the rear backing sheet has a shape which is profiled such that the emittance of infrared radiation is increased compared to that of a flat rear backing sheet, the emittance of the infrared radiation being associated with absorption of light that is incident at oblique angles relative to a surface normal of the plane in which the rear backing sheet is positioned.
8. The photovoltaic module of claim 6 wherein the rear backing sheet is formed from a glass material.
9. A photovoltaic module comprising: a glass material; a photon absorbing material for absorbing received electromagnetic radiation, the photon absorbing material comprising a solar cell; and a rear backing sheet positioned such that the photon absorbing material is located between the glass material and the rear backing sheet; wherein the rear backing sheet has a rear surface facing away from the photon absorbing material, the rear surface having a shape which is profiled such that the emittance of infrared radiation is increased compared to a that of a flat rear surface, the emittance of the infrared light being associated with absorbance of infrared light that is incident upon the rear surface of the rear backing sheet within a predefined angular range relative to a surface normal of the plane in which the glass material is positioned.
10. The photovoltaic module of claim 8 wherein the rear surface of the rear backing sheet has a shape which is profiled such that the emittance of infrared radiation is increased compared to that of a flat rear backing sheet, the emittance of the infrared radiation being associated with absorption of light that is incident at oblique angles relative to a surface normal of the plane in which the rear backing sheet is positioned.
11. The photovoltaic module of claim 9 comprising recesses or projections which have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at an angle within the range of less than 90-80, 80-70, 70-60 or 60-50.
12. The photovoltaic module of claim 9 comprising recesses or projections which have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at an angle within the range of 60-50, 50-40, 40-30.
13. The photovoltaic module of claim 9 comprising recesses or projections which have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at an angle within the range of 30-20, 20 to 10 or less than 10.
14. The photovoltaic module of claim 9 wherein the rear backing sheet is formed from a glass material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Embodiments of the invention will now be described, by way of example, with reference to the accompanying drawings in which:
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION OF EMBODIMENTS
[0028] A photovoltaic module in accordance with embodiments of the present invention is now described.
[0029] The photovoltaic module further comprises a glass material 106 that has a front surface 107. The photovoltaic module also comprises a back sheet 108 having a rear surface 109.
[0030] A person skilled in the art will appreciate that the photovoltaic module may comprise additional components which are omitted for clarity.
[0031] The front surface 107 of the glass material 106 has a shape which is profiled such that the emittance of infrared light from the front surface 107 of the glass material 106 is increased compared to that of a flat front surface. The emittance of the infrared light is associated with absorbance of infrared light that is incident upon the front surface 107 within a predefined angular range relative to a surface normal of the plane in which the glass material 106 is positioned.
[0032] In one specific embodiment predefined angular range is an angular range of oblique angles.
[0033] The front surface may comprise structures, such as inverted pyramids or any other suitable type of recesses or projections. The recesses or projections may have surfaces that recess or project, respectively, from the plane in which the glass material is positioned at suitable oblique angles. As described above, smaller angles are advantageous for cleaning purposes and preventing accumulation of particles, whereas larger angles have optical advantages.
[0034] The rear surface 109 of the rear sheet 108 may have a shape that is profiled in the same manner as the front surface 107 of the glass material 106.
[0035] The profiled front surface 107 and the profiled rear surface 109 will be described in more detail further below.
[0036] Turning now to
[0037] For example, the upper curve (showing the emission along the surface normal) of the graph shown in
[0038] In particular the absorption at wavelengths of 12 microns and 21 microns by the glass material reduces the thermal emission from the glass and results in an increase in temperature of the photovoltaic module and consequently is unwanted (these strong absorption bands change the refractive index in the vicinity of these absorption bands, which in turn increases reflection and hence decreases absorption and emissivity in the vicinity of the absorption bands).
[0039] The calculated emissivity illustrated in
[0040] The front surface 107 in accordance with embodiments of the present invention is profiled in a manner such that the emissivity especially at oblique angles is increased. The recesses or projections of the front surface 107 have surfaces that recess or project, respectively, as angles at which the emittance of infrared radiation (and associated absorption of incident infrared radiation) is increased compared to that of a flat front surface, which reduces heating of the photovoltaic module.
[0041]
[0042]
[0043] A person skilled in the art will appreciate that the front surface may alternatively have a shape that is profiled in any other suitable manner that increases emissivity of infrared radiation at oblique angles.
[0044] In the above-illustrated examples the front surface 107 of the glass material 106 is macro-textured. Alternatively or additionally, the rear surface 109 of the back sheet 108 may be macro-textured and profiled in the same manner as the front surface 107 of the glass material 106 to increase loss of thermal radiation through the back sheet 108. The back sheet 108 may also be formed from glass.
[0045] It will be appreciated by persons skilled in the art that numerous variations and/or modifications may be made to the invention as shown in the specific embodiments without departing from the spirit or scope of the invention as broadly described. The present embodiments are, therefore, to be considered in all respects as illustrative and not restrictive.