Back side contact layer for PV module with by-pass configuration
10056514 · 2018-08-21
Assignee
Inventors
- Evert Eugène Bende (Petten, NL)
- Bas Bernardus van Aken (Petten, NL)
- Nicolas Guillevin (Petten, NL)
- Markus Johan Jansen (Petten, NL)
- Ilkay Cesar (Petten, NL)
Cpc classification
H01L27/1421
ELECTRICITY
H01L31/022441
ELECTRICITY
H01L31/02245
ELECTRICITY
H01L31/0443
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
H01L31/022458
ELECTRICITY
H01L31/046
ELECTRICITY
H01L31/0516
ELECTRICITY
International classification
H01L31/046
ELECTRICITY
H01L31/05
ELECTRICITY
H01L31/0443
ELECTRICITY
Abstract
Back side connection layer for a photo-voltaic module with a plurality of PV-cells. The PV-cells are of a type having a plurality of back side contacts. A by-pass diode connection path is formed in the back side connection layer along an edge direction of two adjacent cells with a straight or meandering pattern around outer contacts of the plurality of back side contacts of the two adjacent cells.
Claims
1. A photovoltaic module comprising a plurality of photovoltaic cells and a conductive back side connection layer electrically connecting positive back side contacts on a back side of adjacent cells of the plurality of photovoltaic (PV) cells, and electrically connecting negative back side contacts on a back side of the adjacent cells of the plurality of photovoltaic (PV) cells, wherein the back side connection layer comprises an electrically conductive by-pass diode connection path having a width (w) along an edge direction of two of the adjacent cells, the two adjacent cells being positioned at an inter-cell distance (s) from each other, two isolation scribe lanes adjacent to the by-pass diode connection path, the bypass diode connection path being positioned in between two contact layer parts of the back side connection layer and separated by the two isolation scribe lanes, wherein edge contacts, which are a subset of the positive and negative back side contacts, on each of the adjacent cells are arranged at a distance (d) from an edge of the respective adjacent cell, wherein the distance (d) is larger than 0, such that the total distance (2d+s) is larger than or equal to the sum of the width (w) of the by-pass diode connection path and a width (2i) of the two isolation scribe lanes adjacent to the by-pass diode connection path, wherein the photovoltaic module further comprises a by-pass diode directly connected to the by-pass diode connection path.
2. The photovoltaic module according to claim 1, wherein the plurality of cells comprise cells having a symmetric pattern of the positive and negative back side contacts.
3. The photovoltaic module according to claim 1, wherein the two adjacent cells are oriented with respect to each other such that the edge contacts are interspersed along the edge direction.
4. The photovoltaic module according to claim 1, wherein the positive and negative back side contacts are arranged in a plurality of rows, and wherein an outer one of the plurality of rows comprising the edge contacts has less contacts than the other of the plurality of rows.
5. The photovoltaic module according to claim 1, wherein the edge contacts of the two adjacent cells are indented toward a center of the respective cell.
6. The photovoltaic module according to claim 1, wherein the plurality of cells comprise Interdigitated Back Contact cells or Emitter Wrap Through cells.
7. The photovoltaic module according to claim 1, wherein the by-pass diode connection path extends to a junction box connection part of the back side connection layer.
8. The photovoltaic module according to claim 1, wherein the width (w) of the by-pass diode connection path is at least 2 mm.
9. The photovoltaic module according to claim 1, wherein the inter-cell distance (s) between the two adjacent cells is less than 2 mm.
10. A photovoltaic module comprising a plurality of photovoltaic cells and a conductive back side connection layer electrically connecting positive back side contacts on a back side of adjacent cells of the plurality of photovoltaic (PV) cells, and electrically connecting negative back side contacts on a back side of the adjacent cells of the plurality of photovoltaic (PV) cells, wherein the back side connection layer comprises an electrically conductive by-pass diode connection path having a width (w) along an edge direction of first and second adjacent cells, the first and second adjacent cells being positioned at an inter-cell distance (s) from each other, the by-pass diode connection path comprising a meandering pattern around edge contacts on the first and second cell, the edge contacts being a subset of the positive and negative back side contacts, and positioned near edges of the first and second adjacent cells, the meandering path comprising a continuous path extending around a first edge contact on the first cell followed by extending around an edge contact on the second cell and then extending around a second edge contact on the first cell; and wherein the photovoltaic module further comprises a by-pass diode directly connected to the by-pass diode connection path.
11. The photovoltaic module according to claim 10, wherein the plurality of cells comprise cells having a symmetric pattern of the positive and negative back side contacts.
12. The photovoltaic module according to claim 10, wherein the first and second adjacent cells are oriented with respect to each other such that the edge contacts are interspersed along the edge direction.
13. The photovoltaic module according to claim 10, wherein the positive and negative back side contacts are arranged in a plurality of rows, and wherein an outer one of the plurality of rows comprising the edge contacts has less contacts than the other of the plurality of rows.
14. The photovoltaic module according to claim 10, wherein the edge contacts are arranged directly on an edge of the respective cell.
15. The photovoltaic module according to claim 10, wherein the edge contacts of the first and second adjacent cells are indented toward a center of the respective cell.
16. The photovoltaic module according to claim 10, wherein the plurality of cells comprise Interdigitated Back Contact cells or Emitter Wrap Through cells.
17. The photovoltaic module according to claim 10, wherein the by-pass diode connection path extends to a junction box connection part of the back side connection layer.
18. The photovoltaic module according to claim 10, wherein the width (w) of the by-pass diode connection path is at least 2 mm.
Description
SHORT DESCRIPTION OF DRAWINGS
(1) The present invention will be discussed in more detail below, using a number of exemplary embodiments, with reference to the attached drawings, in which
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
(7) The present invention embodiments relate to an improved lay-out and placement of a back side connecting sheet in a photovoltaic module having a plurality of photovoltaic cells 1 utilizing by-pass diodes and associated circuitry to improve performance of the PV module when e.g. partially shaded.
(8)
(9) If two cells 1, 2 (see also
(10) As an example thereof the following calculations can be made for a small Cu track for a by-pass diode. The properties of a typical foil used for the bypass diode conductor 6 are a length l=0.5 m; a thickness t=35 m, a width w=0.75 mm and a resistivity =17.10.sup.9 m, resulting in a resistance
(11)
In a conducting state the by-pass diode typically carries a current of 8 A, which implies a power dissipation of P=R I.sup.221 W. Since a typical PV module power rating is about 200 W, this would result in a loss of more than 10%, which is not acceptable.
(12) This problem may be solved in a first aspect of the present invention by a group of embodiments wherein a by-pass diode connection path 6 having a predetermined minimal width (w) is formed in the back side connection layer 3 along an edge direction of two adjacent cells 1, 2, the two adjacent cells being positioned at an inter-cell distance (s) from each other, wherein outer contacts 4, 5 on each of the adjacent cells are displaced to a distance (d) from an edge of the respective adjacent cell such that the total distance between a row of outer contacts 2d+s is larger than the sum of the predetermined minimal width (w) and the width (2i) of two scribe lanes adjacent to the by-pass diode connection path 6. In mathematical terms, the distance (d) of outer contact 4, 5 of two neighboring the cells 1, 2 is chosen to meet the formula 2d+s>w+2i. The resulting by-pass diode connection path 6 may in this group of embodiments even be implemented as a straight metallization path.
(13) In
(14) More generically, the plurality of cells 1, 2 comprise cells having a symmetric pattern of the positive and negative back side contacts 11, 12, wherein a subset 4, 5 of positive or negative back side contacts are arranged along the edge direction of neighboring cells 1, 2. Examples of such cells 1, 2 are Interdigitated Back Contact (IBC) cells or Emitter Wrap Through (EWT) cells,
(15) In a further embodiment, the two adjacent cells 1, 2 are oriented with respect to each other such that the outer contacts 4, 5 are interspersed along the edge direction. E.g. in the case of a PV cell 1, 2 having a length l along the edge direction of the two adjacent cells 1, 2, a number of n contacts are positioned equidistantly at one edge with an offset 0, and with an offset of l/2n at the opposite edge. This is shown more clearly in the schematic view of
(16) In a further embodiment the positive and negative back side contacts 11, 12 are arranged in a plurality of rows, and an outer one of the plurality of rows comprising the outer contacts 4, 5 has less contacts than the other of the plurality of rows 11, 12. This will allow a more smooth meandering of the conductive lead for the bypass diode (by-pass diode conductor 6) and thus provides advantages for the manufacturing of the back side connection layer, more particular for providing the isolation lanes 8 therein, e.g. by scribing.
(17) By realizing a meandering conductive track 6 and by positioning the edge contacts 4, 5 of two adjacent cells 1, 2 in an interspersed fashion as shown in
(18) The present invention in general relates to a configuration of back contacted cells 1, 2 with contacts 4, 5 along the edges attached to a PCB-like Cu-foil (back side connection layer 3) that comprises small strips 6 of Cu-foil that meanders in between the edge contacts 4, 5 of adjacent cells 1, 2. The by-pass diode connection path 6 extends to a junction box connection part of the back side connection layer 3 in a further embodiment. The by-pass connection path 6 can then stretch out towards the junction box where they are connected to bypass diodes and where they form a bypass circuit in a usual fashion for PV modules. The contacts 4, 5 of two adjacent cells 1, 2 are interspersed, allowing a meandering path 6 in between the edge contacts 4, 5 of either cells 1, 2 that can in an alternating way be under the first cell and the second, neighboring, cells 1, 2.
(19) In a further embodiment, which is shown schematically in
(20) Or, in respect to regular PV cells 1, 2 having edge contacts, the outer back contacts 4, 5 on an edge of a cell 1, 2 are moved towards the center of the cell 1, 2, away from the edge (cf. the outer contacts 4, 5 in
(21) The present invention embodiments allow application of a foil technology for back-contacted cells 1, 2 with contacts 4, 5 positioned along the edges of the cell 1, 2 (which is required by cell symmetry), and allows realizing a metal foil-based PV module with back contacted cells including but not limited to IBC cells and EWT cells, wherein standard bypass circuit can be integrated.
(22) In a further embodiment, the back side connection layer further comprises a by-pass diode directly connected to the by-pass diode connection path 6, i.e. as part of the contacting foil 3, which allows protection of the by-pass diodes as well by an encapsulating layer of the PV module.
(23) The present invention embodiments have been described above with reference to a number of exemplary embodiments as shown in the drawings. Modifications and alternative implementations of some parts or elements are possible, and are included in the scope of protection as defined in the appended claims.