The present application is based on, and claims priority from the prior Japanese Patent Application No. 2021-129501, filed on Aug. 6, 2021, the entire contents of which are incorporated herein by reference.
The disclosure relates to a bus bar.
JP 2001-286028 A proposes a bus bar in which a wiring pathway is formed of a single member made from a conductive material. The single member is formed in a shape along the wiring pathway by performing press working on a single flat plate shaped base material. Alternatively, the single member is formed in a shape along the wiring pathway by performing a forming process on a single linear base material.
In a bus bar, plate processing is performed as surface treatment in order to improve the electrical connection reliability of connection portions for electrical input-output. However, in a case where a wiring pathway is formed of a single member like the bus bar described in JP 2001-286028 A, it is necessary to perform plate processing on the entirety of the bus bar, thereby increasing the used amount of a plating material and thus increasing the cost. Although plate processing may be performed in a state where the portion other than the connection portions of the bus bar is masked in order to decrease the used amount of a plating material, it is still necessary to perform masking work, thereby increasing the cost.
The disclosure is directed to a lower cost bus bar.
A bus bar in accordance with some embodiments includes members made from a conductive material and consecutively arranged to form a plate shape defining a wiring pathway. The members adjacent to each other are connected to each other by laser joining. The members include a first connection member arranged at one end of the wiring pathway and having a first connection portion for electrical input-output, and a conductive member connected to the first connection member in a state where connection surfaces of the first connection member and the conductive member located in a same plane are in contact with each other. In the members, only the first connection member is plated.
According to the aforementioned configuration, it is possible to provide a lower cost bus bar.
Various embodiments will be described hereinafter with reference to the accompanying drawings.
A detailed description will be hereinbelow provided for a bus bar 1 according to an embodiment by referring to the drawings. Noted that the proportions of the dimensions of the drawings are exaggerated for illustration purposes and therefore the proportions may be different from actual ones.
As illustrated in
The connection member 11 of the bus bar 1 illustrated in
The first connection member 15 is made from copper which has excellent electrical connection to one of the battery stacks 3 and is suitable for fastening of the fastening member, for example. The first connection member 15 may be made from copper alloy composed mainly of copper. The first connection member 15 may be made from 6000 series aluminum alloy composed mainly of aluminum which has excellent electrical connection to one of the battery stacks 3 and is suitable for fastening of the fastening member, for example. In this way, the material for the connection member 11 may be any materials as long as it has excellent conductivity and excellent stiffness.
The first connection member 15 is formed in a quadrangular plate shape by press working or a forming process. The first connection member 15 is readily processable due to its simple quadrangular shape, thereby reducing the manufacturing cost. The conductive members 13 are consecutively arranged in the first connection member 15.
The conductive member 13 of the bus bar 1 illustrated in
The first conductive member 19 and the second conductive member 21 are respectively formed in a quadrangular plate shape by press working or a forming process. The first conductive member 19 and the second conductive member 21 are readily processable due to their simple quadrangular shape, thereby reducing the manufacturing cost. In the embodiment, the first conductive member 19 and the second conductive member 21 have the same plate thickness, the same plate width, and the same plate length. Thus, the first conductive member 19 and the second conductive member 21 can be formed by the same processing method, thereby reducing the manufacturing cost even more. The first conductive member 19 and the second conductive member 21 may be made from different materials and have different plate thicknesses, different plate widths, and different plate lengths.
In the embodiment, the conductive members 13 and the first connection member 15 have the same plate thickness, the same plate width, and the same plate length. Thus, the conductive members 13 and the first connection member 15 can be formed by the same processing method, thereby reducing the manufacturing cost even more. The conductive members 13 and the first connection member 15 may have different plate thicknesses, different plate widths, and different plate lengths. For example, the plate width of the respective conductive members 13 may be larger than the plate width of the first connection member 15 in order to improve heat dissipation of the conductive members 13 with the increased surface area.
The conductive members 13 may be formed to have the bent portions 5 in the wiring pathway 7. When the conductive members 13 are provided with the bent portions 5, the conductive members 13 may be made from 1000 series aluminum alloy composed mainly of aluminum which is softer than and superior in formability to the first connection member 15, for example. The plate thickness of the respective conductive members 13 may be less than the plate thickness of the first connection member 15 in order to reduce the stiffness of the conductive members 13 with increased formability. In this way, the increased formability of the conductive members 13 allows processing for forming the bent portions 5 in the conductive members 13 to be easily carried out, thereby reducing the manufacturing cost.
The members 9 including the connection member 11 and the conductive members 13 described above are arranged along the wiring pathway 7 and the portions in contact with each other are connected by laser joining. An example of the connection of the members 9 in the bus bar 1 illustrated in
Next, a connection surface 29 which is one end surface of the second conductive member 21 in the width direction thereof is arranged to be in contact with a connection surface 27 which is one end surface of the first conductive member 19 in the length direction thereof. Then, the portions where the connection surface 27 of the first conductive member 19 and the connection surface 29 of the second conductive member 21 are in contact with each other are connected to each other by laser joining. The connection of the first conductive member 19 and the second conductive member 21 forms a bent portion 5 in the wiring pathway 7.
In this way, the wiring pathway 7 having the bent portions 5 can be formed by consecutively connecting the members 9 to each other by laser joining. Thus, there is no need to form a single member in a shape along the wiring pathway 7 by press working or a forming process and it is possible to easily correspond with wiring pathways 7 having various shapes.
In the bus bar 1 illustrated in
As with the first connection member 15, the second connection member 31 is made from copper which has excellent electrical connection to the other of the battery stacks 3 and is suitable for fastening of the fastening member, for example. The second connection member 31 may be made from copper alloy composed mainly of copper. The second connection member 31 may be made from 6000 series aluminum alloy composed mainly of aluminum which has excellent electrical connection to the other of the battery stacks 3 and is suitable for fastening of the fastening member, for example.
The second connection member 31 is formed in a quadrangular plate shape by press working or a forming process. The second connection member 31 is readily processable due to its simple quadrangular shape, thereby reducing the manufacturing cost. In the embodiment, the second connection member 31 has the same plate thickness, the same plate width, and the same plate length as the first connection member 15 and the first conductive member 19. Thus, the second connection member 31 can be formed by the same processing method as the first connection member 15 and the first conductive member 19, thereby reducing the manufacturing cost even more. The second connection member 31 may be made from a different material and have a different plate thickness, a different plate width, and a different plate length from the first connection member 15 and the first conductive member 19.
An example of the connection of the members 9 in the bus bar 1 illustrated in
Next, a connection surface 33 which is one end surface of the second connection member 31 in the width direction thereof is arranged to be in contact with a connection surface 27 which is one end surface of the first conductive member 19 in the length direction thereof. Then, the portions where the connection surface 27 of the first conductive member 19 and the connection surface 33 of the second connection member 31 are in contact with each other are connected to each other by laser joining. The connection of the first conductive member 19 and the second connection member 31 forms the bent portion 5 in the wiring pathway 7.
In this way, the wiring pathway 7 having the bent portions 5 can be formed by consecutively connecting the members 9 to each other by laser joining. Thus, there is no need to form a single member in a shape along the wiring pathway 7 by press working or a forming process and it is possible to easily correspond with wiring pathways 7 having various shapes.
In the bus bar 1 illustrated in
In the bus bar 1 illustrated in
Since the bus bar 1 is a member which electrically connects between the battery stacks 3, it is preferable to perform plate processing as surface treatment in order to improve the electrical connection reliability between the bus bar 1 and the battery stacks 3. However, in a case where the bus bar 1 is formed of a single member, it is necessary to perform plate processing on the entirety of the bus bar 1, thereby increasing the used amount of a plating material and thus increasing the cost. Although plate processing may be performed in a state where the portion other than the connection portion(s) 17 of the bus bar 1 is masked in order to decrease the used amount of a plating material, it is still necessary to perform masking work, thereby increasing the cost. Thus, only the connection member(s) 11 is plated in the bus bar 1 according to the embodiment.
In the bus bar 1 illustrated in
In the bus bar 1 illustrated in
In this way, the electrical connection reliability between the connection member(s) 11 and the battery stack(s) 3 can be improved by performing plate processing on the connection member(s) 11. Performing plate processing on the connection member(s) 11 can be also applied to a case such as the bus bar 1 illustrated in
For example, in the bus bar 1 illustrated in
In the bus bar 1 illustrated in
The bus bar 1 described above includes the members 9 which are made from a conductive material and consecutively arranged to form a plate shape defining the wiring pathway 7. The members 9 adjacent to each other are connected to each other by laser joining. The members 9 include the connection member 11 located at one end of the wiring pathway 7 and having the connection portion 17 for electrical input-output, and the conductive member 13 connected to the connection member 11 in a state where the connection surfaces 23, 25 located in the same plane are in contact with each other. In the members 9, only the connection member 11 is plated.
Thus, unlike a case where the wiring pathway 7 is formed of a single member, it is possible to achieve a state where plate processing has been performed on the connection member 11 including the connection portion 17 without requiring masking work, thereby decreasing the cost.
Additionally, it is possible to decrease the used amount of a plating material and thus decrease the cost. The connection member 11 and the conductive member 13 are connected to each other in a state where the connection surfaces 23, 25 located in the same plane are in contact with each other. Thus, the connection portions are easy to see, improving workability. Additionally, since direct welding can be performed along the connection border of the connection surfaces 23, 25, the welding quality can be improved. Accordingly, it is possible to provide the bus bar 1 of a lower cost.
The members 9 include the connection member 11 located at the other end of the wiring pathway 7 and having the connection portion 17 for electrical input-output. The connection member 11 is connected to the conductive member 13 in a state where the connection surfaces 27, 33 located in the same plane are in contact with each other. In the members 9, only the connection members 11 are plated.
Thus, it is possible to achieve a state where plate processing has been performed on the connection members 11 including the connection portions 17 without requiring masking work, thereby decreasing the cost. Additionally, it is possible to decrease the used amount of a plating material and thus decrease the cost.
The wiring pathway 7 electrically connects between the different battery stacks 3. Thus, the bus bar 1 plated at low cost can be applied to wiring pathways 7 having various shapes designed to be arranged between the different battery stacks 3.
The bus bar 1 according to the embodiment electrically connects the different battery stacks 3 to each other.
However, the present invention is not limited to this. For example, the bus bar 1 may be arranged between any electric components, for example, between a power source and a device and between a device and a device.
In the bus bar 1 according to the embodiment, the wiring pathway 7 includes the bent portion(s) 5. However, the present invention is not limited to this. The wiring pathway 7 may be linear as long as only the connection member(s) 11 in the members 9 is plated.
In the bus bar 1 according to the embodiment, the second connection member 31 is connected to the first conductive member 19. However, the present invention is not limited to this. The second connection member 31 may be connected to the second conductive member 21. Two or more conductive members 13 may be arranged between the first connection member 15 and the second connection member 31.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2021-129501 | Aug 2021 | JP | national |