This Nonprovisional application claims priority under 35 U.S.C. §119(a) on Patent Application No. 2009-125733 filed in Japan on May 25, 2009, the entire contents of which are hereby incorporated by reference.
The present invention relates to a type of portable electronics device, and a power generator which is included in the portable electronics device and which functions as an energy source for the portable electronics device.
Significance of a portable electronics device such as a mobile phone has recently increased as a commodity for daily life. The portable electronics device generally operates with a secondary cell, such as a lithium cell, as a power source. The secondary cell is charged by receiving electric power from an external power source such as an outlet. An amount of charge of the portable electronics device decreases while being used or toted, and it is often difficult to acquire a power source for charging the portable electronics device.
For increasing the amount of charge, a device for charging the portable electronics device by a dry cell, or another secondary cell in which electric power generated by a solar cell device is stored, may be used. Fortunately, such a charging device does not require the external power source. However, the charging device requires to be toted with the portable electronics device and to be connected to the portable electronics device so as to charge the portable electronics device. This causes an inconvenience to handle the charging device while traveling. For this reason, it is desired that the portable electronics device include the solar cell device.
The solar cell device converts solar energy, such as sunlight, into electric energy. The solar cell device is mainly used as a secondary power source for charging a storage cell or as a primary power source for a device which requires a power source. The solar cell device which has been recently used is generally for household use.
Generally, in a solar cell module, solar cells that are connected with each other in series or in parallel via interconnectors are sealed in transparent resin. Some solar cell modules are fitted in frames made from aluminum or the like or in plastic vessels. Unfortunately, such a conventional solar cell module is heavy for securing mechanical strength thereof.
To solve the problem, a method of further decreasing the solar cell module in weight is proposed. Patent Literature 1 is disclosed for attaining decrease in weight and sufficient mechanical strength of the solar cell module. In a technique of Patent Literature 1, the decrease in weight is realized by arranging the solar cell module to have an outer shape made only from photic plastic resin. Further, the mechanical strength is enhanced by providing a frame so as to surround the solar cell module.
Patent Literature 1
Japanese Patent Application Publication, Tokukaihei, No. 9-51117 A (Publication Date: Feb. 18, 1997)
Decrease in weight and size will be required as various electronics devices become portable. On this account, a solar cell device included in a portable electronics device also will be required to decrease in weight and size.
As described above, the solar cell device which has been recently used is generally for household use. Therefore, even if the technique of Patent Literature 1 realizes the decrease of the solar cell device in size so that the solar cell device becomes applicable to the portable electronics device, the technique causes problems, such as a decrease in strength, an increase in weight, poor appearance or an increase in cost. Further, if a conventional solar cell module is provided along a curved surface of an electronics device, strong stress that is put on a substrate of the solar cell module would break the solar cell module.
Furthermore, the portable electronics device should be usable under severe environments for the electronics device, such as exposure to the sun, high temperature, high humidity, pressure on the portable electronics device, or drop of the portable electronics device while toted. Therefore, the solar cell device which can endure under these external environments is required.
The present invention is made in view of the problems, and an object of the present invention is to provide a solar cell module which can be provided along a curved surface of an electronics device and which has sufficient mechanical strength, a method for producing the solar cell module, and an electronics device including the solar cell module.
In order to attain the object, a solar cell module of the present invention includes a plurality of solar cells, and comprises: a plurality of pad sections on each of which a corresponding one of the plurality of solar cells is provided such that the each of the plurality of pad sections is electrically connected to a first polar surface of the corresponding one of the plurality of solar cells; at least one inner lead section that is electrically connected to a second polar surface of at least one of the plurality of solar cells, the second polar surface having a polarity different from the first polar surface; a cathode section and an anode section, from which an electric current generated by each of the plurality of solar cells is fed; a lead frame made from a metal, in which lead frame the plurality of pad sections, the at least one inner lead section, the cathode section and the anode section are provided as a part of the lead frame itself; an insulating layer provided on a side of the lead frame which is opposite to another side of the lead frame on which the plurality of solar cells are provided; and a sealing layer for sealing at least the plurality of solar cells, the anode section and the cathode section.
According to the configuration, the solar cell module of the present invention includes the plurality of solar cells, the lead frame, the insulating layer and the sealing layer. The lead frame made from a metal is used as a substrate on which the solar cells are to be provided. In the lead frame, the pad sections, the inner lead section, and the cathode and anode sections are provided as a part of the lead frame itself.
A respective of the plurality of solar cells are fixed to the respective pad sections and electrically connected to the inner lead section. The plurality of solar cells are connected with each other via the inner lead section to which the respective of the plurality of solar cells are electrically connected. A cathode of the solar cells connected with each other is provided as a cathode section in the lead frame. Similarly, an anode of the solar cells connected with each other is provided as an anode section in the lead frame. The cathode and anode sections feed electric power generated by the plurality of solar cells.
The sealing layer is provided on a surface of the lead frame on which surface the solar cells are provided so that the sealing layer seals the solar cells, the cathode and anode sections. Meanwhile, the insulating layer is provided on another surface of the lead frame which surface is opposite to the surface where the solar cells are provided.
As described above, the solar cell module of the present invention does not use an interconnector which is conventionally used for connecting the solar cells with each other. This makes it possible to reduce a total thickness of the solar cell module as compared to a conventional solar cell module. Further, the sealing layer covers an upper surface of the lead frame and the insulating layer covers a lower surface of the lead frame, thereby reinforcing the solar cell module.
Furthermore, the metal lead frame is used in the solar cell module of the present invention. This enables the solar cell module to endure against bending stress. Therefore, the solar cell module of the present invention can be curved. As a result, if a surface of an electronics device on which the solar cell module is to be provided is curved, the solar cell module can be provided on the surface without being broken.
As described above, the solar cell module of the present invention is thin and has sufficient mechanical strength even if the solar cell module is curved.
In order to attain the object, a solar cell module of the present invention includes a plurality of solar cells, and comprises: a plurality of pad sections on each of which a corresponding one of the plurality of solar cells is provided; at least one inner lead section that is electrically connected, via a metal wire, to the corresponding one of the plurality of solar cells; a lead frame made from a metal which lead frame includes at least the plurality of pad sections and the at least one inner lead section; an insulating layer provided on a side of the lead frame which is opposite to another side of the lead frame on which the plurality of solar cells are provided; and a sealing layer for sealing the plurality of solar cells and the metal wire, the solar cell module being capable of being disposed on a housing of an electronics device with the solar cell module curved.
The configuration makes it possible to provide a solar cell module which can be provided in a housing of an electronics device with the solar cell module curved.
In order to attain the object, a method for producing a solar cell module of the present invention is a method for producing a solar cell module including a plurality of solar cells, and comprises the steps of: preparing a lead frame made from a metal by forming, in the lead frame, a plurality of pad sections, an inner lead section, an anode section and a cathode section as a part of the lead frame itself; disposing a conductive material having a thermosetting property on each of the plurality of pad sections; disposing a corresponding one of the plurality of solar cells on the each of the plurality of pad sections on which the conductive material is disposed, the corresponding one of the plurality of solar cells being disposed in such a manner that a first polar surface of the corresponding one of the plurality of the solar cells faces the each of the plurality of pad sections; hardening the conductive material by heating the lead frame on which the plurality of solar cells are disposed; connecting a second polar surface of each of the plurality of solar cells to the inner lead section via a metal wire, the second polar surface having a polarity different from the first polar surface; forming an insulating layer provided on a side of the lead frame which is opposite to another side of the lead frame on which the plurality of solar cells are provided; and forming a sealing layer so as to seal at least the plurality of solar cells, the anode section and the cathode section.
The configuration makes it possible to produce a solar cell module which can be used in an curved state and provided in a portable electronics device.
Further, in order to attain the object, an electronics device of the present invention includes any one of the foregoing solar cell modules.
The configuration makes it possible to provide an electronics device in which a solar cell module can be provided in a curved state.
For a fuller understanding of the nature and advantages of the invention, reference should be made to the ensuing detailed description taken in conjunction with the accompanying drawings.
In a solar cell module of the present invention, with the use of a lead frame as a substrate on which solar cells are to be provided, it is possible to connect a plurality of solar cells with each other. In the configuration, the solar cells are connected with each other without using a conventional interconnector, thereby resulting in that a thin solar cell module can be attained. Further, an upper surface of the lead frame is ultimately covered with transparent resin and a lower surface of the lead frame is ultimately covered with an insulating sheet, thereby reinforcing the solar cell module. Consequently, the solar cell module in accordance with the present invention is thin and has sufficient mechanical strength, thereby resulting in that the solar cell module can be provided in a portable electronics device.
Further, provision of a bendable portion between adjacent solar cells allows the solar cell module of the present invention to be disposed in a curved housing.
(a) of
(a) of
(a) of
(a) of
The following describes an embodiment of the present invention in detail with reference to drawings.
(Outline of Solar Cell Module 1)
The following describes an outline of a solar cell module 1 in accordance with a first embodiment of the present invention with reference to
The respective solar cells 30 are fixed, by the conductive material, to the respective pad sections 112 provided in the lead frame 10. The respective solar cells 30 are connected to the respective inner lead sections 120 provided in the lead frame 10 via the respective gold wires 50. The plurality of solar cells 30 are electrically connected with each other via the conductive material, the gold wires 50 and the coupling section 122. The plurality of solar cells 30 can be arranged such that (i) all of them are connected with each other in series or in parallel, (ii) sets of the solar cells 30 that are connected in parallel with each other are connected in series with each other, or (iii) sets of the solar cells 30 that are connected in series with each other are connected in parallel with each other. The following describes the first embodiment in which all of the plurality of solar cells 30 are connected in series with each other.
(a) of
(b) of
(Manufacturing Process of Solar Cell Module 1)
The following describes a manufacturing process of the solar cell module 1 with reference to
Firstly, the conductive material is applied to the pad sections 112. In the present embodiment, silver paste 40 is used as the conductive material.
The sheet 62 has dent portions 66 so as not to make contact with the gold wires 50 in putting the sheet 62 on the solar cells 30. The sheet 62 is spread over the solar cells 30 by being heated under pressure so as to fit uneven portions with which a lower surface of the sheet 62 makes contact. As a result, the sheet 62 spreads up to approximately 44×71×0.25 mm in size, thereby perfectly sealing vicinity of the gold wires 50.
The sheet 64 functions to prevent the sheet 62 from making contact with a tool in being pressed and to secure flatness of a surface of the solar cell module 1. Further, the insulating sheet 20 attached to a side of the solar panels 30 which is opposite to another side of the solar panels 30 where the sheet 64 is attached prevents the sheet 64 from leaking toward the insulating sheet 20.
A laminated body of the sheets 62 and 64 constitutes the transparent resin 60. The transparent resin 60 may be made from the epoxy resin or the EVA.
Lastly, a cradle section 110 is cut off or punched out by a cutter or a puncher. Thus, a substantially cuboid solar cell module 1 as shown in
(Structure of Solar Cell 30)
The following describes a solar cell 30 included in the solar cell module 1 in detail with reference to
The solar cell 30 is made in such a manner that a flat plate cut out from a polycrystalline silicone ingot is processed and then the processed plate is divided into individual pieces. For example, the flat plate is 156×156 mm in size, and an individual solar cell 30 is 12×18×0.2 mm in size. In this case, the number of the solar cells 30 cut out from a single flat plate is 12×8 (i.e., 96).
A top portion of the solar cell 30 serves as a cathode section, and a bottom portion of the solar cell 30 serves as an anode section. (a) of
(b) of
(Mechanism of Power Generation of Solar Cell 30)
The following describes a mechanism of power generation of the solar cell 30 in detail with reference to
(Structure of Lead Frame 10)
The following describes the lead frame 10 including the solar cells 30 in detail with reference to
It can be considered that the surface of the lead frame 10 is colored by various colors, and the colored surface is viewed from the upper surface of the solar cell module 1. In the present embodiment, because the pad sections 112 are smaller in size than the solar cells 30, the pad sections 112 are totally covered with the solar cells 30. Therefore, the color of the lead frame 10 is not viewed from the upper surface of the solar cell module 1. However, appearance may be put great importance on in combination of the color of the solar cells 30 with the color of the lead frame 10 in the final stage of manufacture of the solar cell module 1. In view of this, the color of the lead frame 10 may be viewed from the upper surface of the solar cell module 1.
The lead frame 10 is made from a metal having malleability. The metal encompasses a metal alloy. In the present embodiment, the lead frame 10 is made from an alloy (42 alloy or copper alloy). The 42 alloy includes 42% of nickel, and mainly includes iron except for nickel. Further, the copper alloy mainly includes copper. Use of the lead frame 10 made from the metal enables the solar cell module 1 to endure against bending stress, thereby allowing the solar cell module 1 to be disposed in a curved state along a curved surface of a housing of an electronics device.
As described above, in the present embodiment, the lead frame 10 is used as a substrate on which the solar cells 30 are to be provided. The use of the lead frame 10 allows the solar cells 30 to be connected with each other. In this arrangement, the solar cells 30 are connected with each other without using a conventional interconnector, thereby making it possible to provide a thin solar cell module 1. Further, ultimately, the upper surface of the lead frame 10 is covered with the transparent resin 60 and the lower surface of the lead frame 10 is covered with the insulating sheet 20, thereby reinforcing the solar cell module 1. As such, the solar cell module 1 in accordance with the present embodiment is thin and has sufficient mechanical strength, thereby resulting in that the solar cell module 1 can be provided in a portable electronics device.
(Outline of Solar Cell Module 2)
The following describes an outline of a solar cell module 2 in accordance with a second embodiment of the present invention with reference to
(a) of
(Outline of Solar Cell Modules 1 and 2, Each of Which Includes Insulating Tapes 70 and 72 Attached Thereto)
The following describes an outline of a solar cell module in accordance with a third embodiment of the present invention with reference to
In the present embodiment, as shown in
The insulating sheet 20, if necessary, is provided on a lower surface of the lead frame (10, 12) after formation of a sheet 64 or individuation of the solar cell module (1, 2). In a case where the insulating sheet 20 is not provided, a surface of a tool which surface makes contact with the lower surface of the lead frame (10, 12) may be Teflon-coated. This can prevent leakage of the sheet 64.
(Outline of Solar Cell Module 3)
The following describes an outline of a solar cell module 3 in accordance with a fourth embodiment of the present invention with reference to
The present embodiment is different from the first embodiment in that the solar cells 30 are connected both in series and in parallel with each other. In the first embodiment, ten solar cells 30 are connected in series with each other.
This makes it possible that sets of the plurality of solar cells 30 that are connected in parallel with each other can be connected in series with each other, thereby realizing various configurations in which the solar cells 30 are connected with each other in different manners.
A reference sign 318 shown in
(Outline of Curved Solar Cell Modules 1, 2 and 3)
The following describes an embodiment in which any one of the solar cell modules 1, 2 and 3 of the present invention is used in a curved state with reference to
In the present embodiment, the solar cell module 1 is curved so that the transparent resin 60 is outward. However, it is also possible to curve the solar cell module 1 so that the transparent resin 60 is inward. Further, in the present embodiment, the solar cell module 1 is bended at four portions. However, a certain portion to be bended may be selected as appropriate.
In the present embodiment, it is possible to curve the solar cell modules 1, 2 and 3 properly. This allows the flexibility of the solar cell module to increase. For example, any one of the solar cell modules 1, 2 and 3 can be disposed on a curved portion at the time of disposing the any one of the solar cell modules 1, 2 and 3 on a portable electronics device.
(Outline of Mobile Phone 100)
The following describes an embodiment of a portable electronics device including the solar cell module 1, 2 or 3 of the present invention with reference to
(a) of
As shown in (a) of
The present embodiment discloses the flip phone 100, but the phone is not necessarily the flip phone 100. Further, the mobile phone 100 includes two solar cell modules 1, but it goes without saying that the phone can include one, or three or more solar cell modules 1.
The present embodiment can be applied to other portable electronics devices, such as a GPS (Global Positioning System) receiver, a desktop electronic dictionary, a digital still camera and a video camera. The present embodiment can be also applied to a remote controller of a television and the like.
As described above, in order to attain the object, a solar cell module of the present invention includes a plurality of solar cells, comprises: a plurality of pad sections on each of which a corresponding one of the plurality of solar cells is provided such that the each of the plurality of pad sections is electrically connected to a first polar surface of the corresponding one of the plurality of solar cells; at least one inner lead section that is electrically connected to a second polar surface of at least one of the plurality of solar cells, the second polar surface having a polarity different from the first polar surface; a cathode section and an anode section, from which an electric current generated by each of the plurality of solar cells is fed; a lead frame made from a metal, in which lead frame the plurality of pad sections, the at least one inner lead section, the cathode section and the anode section are provided as a part of the lead frame itself; an insulating layer provided on a side of the lead frame which is opposite to another side of the lead frame on which the plurality of solar cells are provided; and a sealing layer for sealing at least the plurality of solar cells, the anode section and the cathode section, and it is preferable that the plurality of solar cells are connected with each other in such a manner that (i) all of the plurality of solar cells are connected with each other in series or in parallel, (ii) sets of solar cells, among the plurality of solar cells, are connected in parallel with each other and the sets of solar cells are connected in series with each other, or (iii) sets of solar cells, among the plurality of solar cells, are connected in series with each other and the sets of solar cells are connected in parallel with each other.
The configuration makes it possible to realize a solar cell module having various configurations in which the solar cells are connected with each other in different manners.
It is preferable to arrange the solar cell module of the present invention such that the anode section and the cathode section are exposed from the insulating layer.
The configuration makes it possible to feed an electric current from a lower surface of the lead frame of the solar cell module.
It is preferable to arrange the solar cell module of the present invention such that the cathode section and the anode section are provided so as to project from a side surface of the solar cell module.
In the above configuration, the cathode and anode sections of the lead frame project from the side surface of the solar cell module. This makes it possible to fold the projecting electrodes toward any directions. On this account, in disposing the solar cell module of the present invention in a device, flexibility in how to connect the solar cell module to the device increases. That is, the solar cell module of the present invention may be connected to the device by soldering, or alternatively by inserting the projecting electrodes into connectors.
It is preferable to arrange the solar cell module of the present invention such that the each of the plurality of pad sections is smaller in size than the corresponding one of the plurality of solar cells that is provided on the each of the plurality of pad sections.
In the above configuration, each of the pad sections provided in the lead frame is entirely covered with a corresponding solar cell. With the configuration, it is possible that a color of the lead frame is not viewed from an upper surface of the solar cell module ultimately, thereby improving an appearance of the solar cell module.
The solar cell module of the present invention is arranged such that a side of the each of the plurality of pad sections to which side the corresponding one of the plurality of solar cells is fixed is partially fixed by an insulating tape.
In the above configuration, the insulating tape is fixed to the pad sections provided on the lead frame. This prevents the pad sections from sagging by their own weight, and the insulating tape functions as a reinforcing member for stable transportation in a manufacturing process.
It is preferable to arrange the solar cell module of the present invention such that the each of the plurality of pad sections is connected to the corresponding one of the plurality of solar cells that is provided on the each of the plurality of pad sections, by a conductive material having a thermosetting property.
The configuration makes it possible to easily dispose each of the solar cells on a corresponding pad section.
It is preferable to arrange the solar cell module of the present invention such that the conductive material is a paste made by combining silver and a chemical product.
The configuration makes it possible to strongly and surely connect each of the solar cells to a corresponding pad section.
It is preferable to arrange the solar cell module of the present invention such that each of the plurality of solar cells is connected, by a metal wire, to a corresponding inner lead section.
The configuration makes it possible to surely connect each of the solar cells to the corresponding inner lead section.
It is preferable to arrange the solar cell module of the present invention such that the metal wire is a gold wire.
The configuration makes it possible to reduce electric resistance between each of the solar cells and the corresponding inner lead section.
It is preferable to arrange the solar cell module of the present invention such that a surface of the at least one inner lead section is coated with at least any one of gold, silver and tin.
The configuration makes it possible to stabilize connection of each of the solar cells and a corresponding inner lead section.
It is preferable to arrange the solar cell module of the present invention such that the sealing layer is made from any one of epoxy resin, ethylene vinyl acetate, and a laminated body of ethylene vinyl acetate and polyethylene terephthalate.
The solar cell module of the present invention is arranged such that the insulating layer is attached to a lower surface of the lead frame by an insulating adhesive.
It is preferable to arrange the solar cell module of the present invention such that the insulating layer is made from sheet-like polyimide or polyethylene terephthalate.
It is preferable to arrange the solar cell module of the present invention such that the each of the plurality of solar cells includes: an N+ layer, a P− layer and a P+ layer, which are laminated in this order; a power collector-cum-cathode section formed by sintering silver on at least a part of an upper surface of the N+ layer; and an anode section formed by sintering aluminum on the P+ layer.
It is preferable to arrange the solar cell module of the present invention such that the solar cell module is bended at at least one portion between two solar cells adjacent to each other among the plurality of solar cells.
The embodiments and concrete examples of implementation discussed in the foregoing detailed explanation serve solely to illustrate the technical details of the present invention, which should not be narrowly interpreted within the limits of such embodiments and concrete examples, but rather may be applied in many variations within the spirit of the present invention, provided such variations do not exceed the scope of the patent claims set forth below.
A solar cell module of the present invention can be applied to portable electronics devices such as a mobile phone, a GPS (Global Positioning System) receiver, a desktop electronic dictionary, a digital still camera and a video camera. Further, the solar cell module of the present invention can be also applied to a remote controller of a television and the like.
Number | Date | Country | Kind |
---|---|---|---|
2009-125733 | May 2009 | JP | national |