Electrically isolated heat dissipating junction box
09748896 ยท 2017-08-29
Assignee
Inventors
- Guy Sella (Beit Aharon, IL)
- Lior Handelsman (Givataim, IL)
- Vadim Shmukler (Rishon-Lezion, IL)
- Meir Adest (Raanana, IL)
- Meir Gazit (Ashkelon, IL)
- Yoav Galin (Raanana, IL)
Cpc classification
G08B13/1409
PHYSICS
Y10S248/906
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
H02G15/10
ELECTRICITY
H05K7/2039
ELECTRICITY
H02S40/345
ELECTRICITY
H05K5/062
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
Y10T29/49117
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
H02S40/34
ELECTRICITY
International classification
H05K9/00
ELECTRICITY
H05K7/20
ELECTRICITY
H02S40/34
ELECTRICITY
Abstract
A junction box used for making electrical connections to a photovoltaic panel. The junction box has two chambers including a first chamber and a second chamber and a wall common to and separating both chambers. The wall may be adapted to have an electrical connection therethrough. The two lids are adapted to seal respectively the two chambers. The two lids are on opposite sides of the junction box relative to the photovoltaic panel. The two lids may be attachable using different sealing processes to a different level of hermeticity. The first chamber may be adapted to receive a circuit board for electrical power conversion. The junction box may include supports for mounting a printed circuit board in the first chamber. The second chamber is configured for electrical connection to the photovoltaic panel. A metal heat sink may be bonded inside the first chamber.
Claims
1. A junction box comprising a first chamber and a second chamber separated by a wall and designed to be mounted to a photovoltaic panel, wherein: the first chamber comprises a circuit board designed to convert electrical power received from the photovoltaic panel to at least one of a DC voltage or an AC voltage; the second chamber comprises an electrical connection designed to receive the electrical power from the photovoltaic panel; the wall allows for mutual separation and reattachment of the first chamber and the second chamber; and the first chamber is configured to disconnect from the photovoltaic panel without disconnecting the second chamber from the photovoltaic panel.
2. The junction box of claim 1, further comprising a heat sink having a dovetail structure, wherein at least a portion of the dovetail structure is adapted to deform to prevent mutual separation of the heat sink and the first chamber.
3. The junction box of claim 2, wherein the dovetail structure comprises a hollow portion to allow for deforming of at least the portion of the dovetail structure.
4. The junction box of claim 1, further comprising a first lid and a second lid, wherein: the first lid is designed to seal a first end of the first chamber; the second lid designed to seal a second end of the second chamber; and the second chamber comprises an open end designed to mount flat to the photovoltaic panel.
5. The junction box of claim 4, wherein the first chamber is sealed via the first lid with a first level of hermiticity, and wherein the second chamber is designed to be sealed via the second lid with a second level of hermiticity different than the first level of hermiticity when the open end is mounted flat to the photovoltaic panel.
6. The junction box of claim 1, wherein the wall is common to and separates the first chamber and the second chamber, and wherein the circuit board and the electrical connection are connected by a bus bar.
7. The junction box of claim 6, wherein the bus bar is sealed in the wall to maintain a first level of hermeticity for the second chamber.
8. The junction box of claim 1, further comprising a support adapted to mount a bus bar, wherein a first end of the bus bar is connected to the circuit board via a first connector and a second end of the bus bar is connected to the electrical connection via a second connector, wherein the support maintains a hermetic sealing between the first connector and the second connector.
9. The junction box of claim 1, further comprising a thermal pad between a heat sink and the first chamber, wherein the thermal pad is adapted to deform to accommodate non-uniformity in a surface of the heat sink and in a surface of the first chamber.
10. A junction box comprising: a first chamber, the first chamber comprising a circuit board designed to convert electrical power received from a photovoltaic panel to at least one of a DC voltage or an AC voltage; a second chamber comprising an electrical connection designed to receive the electrical power from the photovoltaic panel; and a double wall constructed between the first chamber and the second chamber such that the first chamber and the second chamber are mutually separable and re-attachable.
11. The junction box of claim 10, wherein the first chamber is sealed with a first level of hermiticity by a first lid and the second chamber is sealed with a second level of hermiticity by a second lid, wherein the second level of hermiticity is different than the first level of hermiticity.
12. The junction box of claim 10, wherein the first chamber is hermetically sealed by a first lid and the second chamber comprises an open end designed to mount flat against the photovoltaic panel.
13. The junction box of claim 12, further comprising a gasket configured to seal the open end of the second chamber.
14. The junction box of claim 10, further comprising: supports in the first chamber for mounting the circuit board; and terminals mounted in the second chamber, the terminals connecting the electrical connection to the photovoltaic panel.
15. The junction box of claim 14, further comprising a bypass diode connected between the terminals.
16. The junction box of claim 10, further comprising a shielded lid that seals the first chamber and is adapted to suppress Radio Frequency Interference (RFI) emissions from the junction box.
17. The junction box of claim 16, wherein the sealing of the first chamber by the shielded lid electrically isolates the junction box.
18. A method of manufacturing a junction box, the method comprising: installing, in a first chamber of the junction box, a circuit board that converts electrical power received from a photovoltaic panel to at least one of a DC voltage or an AC voltage; installing, in a second chamber of the junction box, an electrical connection to receive the electrical power from the photovoltaic panel; and connecting the first chamber to the second chamber at a double wall between the first chamber and the second chamber, the double wall being adapted to provide for mutual separation and re-attachment of the first chamber to the second chamber.
19. The method of claim 18, further comprising sealing the first chamber with a first level of hermeticity and the second chamber with a second level of hermeticity different than the first level of hermeticity.
20. The method of claim 18, further comprising: connecting the circuit board and the electrical connection with a bus bar; and sealing the bus bar to the double wall to maintain a first level of hermeticity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Aspects of the invention are herein described, by way of example only, with reference to the accompanying drawings, wherein:
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(6) The foregoing and/or other aspects will become apparent from the following detailed description when considered in conjunction with the accompanying drawing figures.
DETAILED DESCRIPTION
(7) Reference will now be made in detail to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The embodiments are described below to explain the present invention by referring to the figures.
(8) By way of introduction, diodes and/or electronic modules within junction boxes attached to the photovoltaic modules dissipate heat. When insulating junction boxes are used, heat must be dissipated mostly through air inside the junction box. When metallic junction boxes are used then heat may be dissipated directly through the junction box. However, the use of a metallic junction boxes may be inconvenient because of regulations which require accessible metallic surfaces to be grounded and extra wiring is required.
(9) Before explaining exemplary embodiments of the invention in detail, it is to be understood that the invention is not limited in its application to the details of design and the arrangement of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments or of being practiced or carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein is for the purpose of description and should not be regarded as limiting.
(10) Referring now to the drawings,
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(13) Chamber A includes circuit board 260, thermally conductive pad 262, heat sink 264, outer casing 102 and lid 108. Circuit board 260 is preferably mounted on supports adapted to receive circuit board 260. Thermal pad 262 provides electrical isolation and thermal conductivity between heat sink 264 and circuit board 260. The component side of circuit board 260 is preferably in contact with thermal pad 262 so that heat created by the components of circuit board 260 is dissipated by heat sink 264 via thermal pad 262. Radio Frequency Interference (RFI) emission from junction box 12 as a result of the operation of circuit board 260 is reduced by having the side of lid 108 coated in an electrically conductive shielding 108a. Shielding 108a connects electrically to heat sink 264 to form a Faraday cage which suppresses RFI emission from junction box 12.
(14) Lid 108 according to an aspect of the present invention is preferably manufactured by an injection molding process. During the injection molding process of lid 108 a shield 108a may be placed in situ and bonded to lid 108 during the injection molding process. Thus, when lid 108 is attached to box chamber A; junction box 12 is electrically isolated by heat sink 264 and shield 108a. Outer casing 102 and lid 108 additionally provide a non-electrically conductive isolation of heat sink 264 and shield 108a between the backside 4 of panel 16 and the exterior of junction box 12. Lid 108 is optionally permanently and/or hermetically sealed to chamber A.
(15) Chamber B includes terminal 104, support 214, bypass diode 110, lid 106, bus bar 212 and wall 202. Wall 202 provides physical separation between chambers A and B. Electrical connectivity between circuit board 260 in chamber A and electrical connector 104 in chamber B is via bus bar 212. Bus bar 212 is sealed in wall 202 in such a way as to preserve the desired hermeticity of chamber A for example against the ingress of water or humidity. Both electrical connector 104 and bus bar 212 are supported mechanically by support 214. Support 214 may also provide hermetic sealing and/or electrical isolation between one end of connector 104 which connects to bus bar 212 and the other end of connector 104 which connects to connections provided by photovoltaic panel 16. Bypass diode 110 connected to connector 104 may be located between support 214 or backside 4 of panel 16 or between support 214 and lid 106. Lid 106 gives access to chamber B whilst junction box 12 is physically attached photovoltaic panel 16 but electrically isolated from panel 16. A preferred mechanism of attaching lid 106 to junction box 12 is to use a rubber gasket arrangement such that chamber B is hermetically sealed against for example the ingress of water/humidity through lid 106 into chamber B.
(16) According to another embodiment of the present invention, junction box 12 is constructed with a wall 202 that may be a double wall so that chamber A and chamber B are mutually separable and re-attachable. Similarly, bus bar 212 is re-connectable between chamber A and chamber B. In this embodiment, a failure within the electronics of circuit board 260 may be repaired by replacing chamber A with a new circuit board 260 without requiring disconnection of chamber B from photovoltaic panel 16. Similarly, an electronics upgrade may be easily achieved.
(17) Junction box 12 including casing 102, lids 108/106, heat sink 264, and thermal pad 262 are preferably adapted to comply with temperature and insulation standard of IEC 61215 (Ed. 2) or other applicable industry standards for use with connection to photovoltaic panels. Junction box 12 and lids 108/106 may be manufactured by injection molding of acrylonitrile butadiene styrene (ABS) thermoplastic, Polybutylene terephthalate (PBT), Poly(p-phenylene oxide) (PPO) or a thermoset such as epoxy resin.
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(19) The manufacture of box chamber sections A and B of junction box 12 in a preferred embodiment of the present invention is by an injection molding process. During the injection molding process heat sink 264 with or without dovetail structure 264a is placed inside box chamber A and is bonded in situ to box chamber A as a result of the injection molding process.
(20) Additional strength of the bonding between heat sink 264 and box chamber A may be provided by a dovetail structure 264a which may be an integral part of heat sink 264. A further function of dovetail structure 264a ensures that the bonding between heat sink 264 and chamber A remains intact when for example junction box 12 is subjected to thermal stresses as a result of electronic components operating inside chamber A, high ambient heat and sunlight when junction box 12 attached to a photovoltaic panel. Where a fastener, e.g. screw is used to fasten chamber A to heat sink 264, the lateral dimensions of dovetail structure 264a is typically increased in order to accommodate the size of the fastener. A further feature of dovetail structure 264a is a hollow structure within dovetail structure 264a which allows for a deformation of dovetail structure 264a. The deformation of dovetail structure 264a allows for the different rates of thermal expansion of enclosure 102 and heat sink 264/dovetail structure 264a during the curing/cooling of the bond between heat sink 264 and enclosure 102 of chamber A.
(21) Reference is now made to
(22) The articles a an as used herein mean one or more such as a heat-sink, a circuit board have the meaning of one or more that is one or more heat-sinks or one or more circuit boards.
(23) Although selected embodiments of the present invention have been shown and described, it is to be understood the present invention is not limited to the described embodiments. Instead, it is to be appreciated that changes may be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and the equivalents thereof.