This application claims priority to Japanese patent application No. 2021-048528, filed on Mar. 23, 2021, the entire contents of which are incorporated herein by reference.
The art disclosed herein relates to a battery pack.
Japanese Patent Application Publication No. 2017-518193 describes a battery pack configured to be detachably attached to an electric device or a charger having device-side terminals. The battery pack includes a battery cell, a circuit board electrically connected to the battery cell, and battery-side terminals electrically connected to the circuit board and configured to be electrically connect with the device-side terminals by contacting the device-side terminals. The battery-side terminals include a positive power terminal and a negative power terminal for discharging from the battery cell and charging the battery cell, and at least one signal terminal electrically connected to the circuit board for signal communication with the circuit board.
In the battery pack as described above, short-circuiting and conduction defects need to be suppressed in the battery-side terminal. The disclosure herein provides art capable of suppressing short-circuiting and conduction defects in a battery-side terminal of a battery pack.
A battery pack disclosed in the herein may be configured to be attached to and detached from an electric device or a charger including device-side terminals. The battery pack may comprise: a battery cell; a circuit board electrically connected to the battery cell; and battery-side terminals electrically connected to the circuit board and configured to electrically connect to the device-side terminals by contacting the device-side terminals. The battery-side terminals may comprise: a positive power terminal and a negative power terminal for discharging from the battery cell and charging the battery cell; and at least one signal terminal electrically connected to the circuit board for signal communication with the circuit board. The positive power terminal may be plated with a first metal on its surface. One of the at least one signal terminal may be plated with a second metal on its surface. The first metal may be a pure metal other than Ag or an alloy not containing Ag. The second metal may be a pure metal that is a noble metal or a noble metal alloy.
When the battery pack is used in a high-moisture environment, metal on the surface of the positive power terminal may be ionized, move on the control circuit board toward the negative power terminal, and deposit as metal on the surface of the negative power terminal. Such a phenomenon is called ion migration. When the metal deposited on the negative power terminal grows on the control circuit board, short-circuiting may occur in the control circuit board. The ion migration tends to occur the most with Ag, and with PC and Cu the second most. Further, the ion migration tends to occur when a large voltage is applied, while it tends not to occur when a small voltage is applied. As such, the ion migration tends to occur in the positive and negative power terminals and tends not to occur in the signal terminal(s). Due to this, as aforementioned, by plating the surface of the positive power terminal with a pure metal other than Ag or with an alloy not containing Ag, Ag ionization on the surface of the positive power terminal can be suppressed, and the short-circuiting caused by the ion migration can be suppressed. The pure metal other than Ag or the alloy not containing Ag as aforementioned may be a pure metal other than Ag, Pb or an alloy not containing Ag, Pb, or may be a pure metal other than Ag, Pb, Cu or an alloy not containing Ag, Pb, Cu.
In the state in which the battery pack is attached to the electric device or the charger, the battery-side terminals are maintained in contact with the device-side terminals of the electric device or the charger. In this state, when micro-vibration is repeatedly applied to the battery-side terminals, partial wear progresses on the surfaces of the battery-side terminals, by which metal debris worn off of the surfaces of the battery-side terminals oxidizes and accumulates on the surfaces of the battery-side terminals. Such a phenomenon is called fretting corrosion. As the oxidized debris accumulates on the surfaces of the battery-side terminals, conduction defects of the battery-side terminals could occur. In general, noble metals tend not to oxidize, thus they are resistant against such conduction defects caused by the fretting corrosion. To the contrary, since base metals are prone to oxidization, they are susceptible to such conduction defects caused by the fretting corrosion. Further, the conduction defects caused by the fretting corrosion tend not to occur when a large voltage is applied whereas the conduction defects tend to occur when a small voltage is applied, thus the conduction defects tend to occur in the positive and negative power terminals and tend not to occur in the signal terminal(s). Due to this, by plating the surface of the at least one signal terminal with a pure metal that is a noble metal or a noble metal alloy as aforementioned, the conduction defects caused by the fretting corrosion can be suppressed.
Representative, non-limiting examples of the present disclosure will now be described in further detail with reference to the attached drawings. This detailed description is merely intended to teach a person of skill in the art further details for practicing aspects of the present teachings and is not intended to limit the scope of the present disclosure. Furthermore, each of the additional features and teachings disclosed below may be utilized separately or in conjunction with other features and teachings to provide improved battery packs as well as methods for using and manufacturing the same.
Moreover, combinations of features and steps disclosed in the following detailed description may not be necessary to practice the present disclosure in the broadest sense, and are instead taught merely to particularly describe representative examples of the present disclosure.
Furthermore, various features of the above-described and below-described representative examples, as well as the various independent and dependent claims, may be combined in ways that are not specifically and explicitly enumerated in order to provide additional useful embodiments of the present teachings.
All features disclosed in the description and/or the claims are intended to be disclosed separately and independently from each other for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter, independent of the compositions of the features in the embodiments and/or the claims. In addition, all value ranges or indications of groups of entities are intended to disclose every possible intermediate value or intermediate entity for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter.
In one or more embodiments, a battery pack may be configured to be attached to and detached from an electric device or a charger including device-side terminals. The battery pack may comprise: a battery cell; a circuit board electrically connected to the battery cell; and battery-side terminals electrically connected to the circuit board, and configured to electrically connect to the device-side terminals by contacting the device-side terminals. The battery-side terminals may comprise: a positive power terminal and a negative power terminal for discharging from the battery cell and charging the battery cell; and at least one signal terminal electrically connected to the circuit board for signal communication with the circuit board. The positive power terminal may be plated with a first metal on its surface. One of the at least one signal terminal may be plated with a second metal on its surface. The first metal may be a pure metal other than Ag or an alloy not containing Ag. The second metal may be a pure metal that is a noble metal or a noble metal alloy.
According to the above configuration, short-circuiting caused by ion migration and conduction defects caused by fretting corrosion can be suppressed in the battery-side terminals of the battery pack.
In one or more embodiments, the negative power terminal may be plated with a third metal on its surface. The third metal may be a pure metal other than Ag or an alloy not containing Ag.
According to the above configuration, the short-circuiting caused by the ion migration can be suppressed in the battery-side terminals of the battery pack.
In one or more embodiments, the third metal may be the same metal as the first metal.
According to the above configuration, since plating processes to be performed on the positive and negative power terminals can be integrated, manufacture of the battery pack can be facilitated.
In one or more embodiments, all of the at least one signal terminal may be plated with the second metal on the surface.
According to the above configuration, since plating processes to be performed on all of the at least one signal terminal can be integrated, the manufacture of the battery pack can further be facilitated.
In one or more embodiments, the first metal may be Sn.
According to the above configuration, among the battery-side terminals, sliding performance of terminal(s) plated with the first metal to slide on the device-side terminal(s) can be improved.
In one or more embodiments, the second metal may be Ag.
According to the above configuration, an electric resistance of terminal(s) plated with the second metal among the battery-side terminals can be reduced.
A battery pack 2 shown in
The battery pack 2 includes a main body 4, a right support 6, a left support 8, and a handle 10. The main body 4 has a substantially box shape. The main body 4 includes a front surface 4a, a rear surface 4b, a right surface 4c, a left surface 4d, an upper surface 4e, and a lower surface 4f. A dimension of the main body 4 in an up-down direction is larger than a dimension of the main body 4 in a front-rear direction. A dimension of the main body 4 in a left-right direction is larger than the dimension of the main body 4 in the up-down direction. The dimension of the main body 4 in the up-down direction may for example be in a range of 150.0 mm to 250.0 mm, and may more specifically be 171.5 mm. The dimension of the main body 4 in the front-rear direction may for example be in a range of 70.0 mm to 120.0 mm, and may more specifically be 90.0 mm. The dimension of the main body 4 in the left-right direction may for example be in a range of 170.0 mm to 210.0 mm, and may more specifically be 190.0 mm. The dimensions of the main body 4 as above are mere examples, and the dimensions of the main body 4 may each be smaller or larger. The right support 6 protrudes upward from a position near the right end of the upper surface 4e of the main body 4. The left support 8 protrudes upward from a position near the left end of the upper surface 4e of the main body 4. The handle 10 extends in the left-right direction and connects the vicinity of the upper end of the left surface of the right support 6 and the vicinity of the upper end of the right surface of the left support 8. A user can carry the battery pack 2 by holding the handle 10. The battery pack 2 may not include the right support 6, the left support 8, or the handle 10. Weight of the battery pack 2 may for example be in a range of 1.0 kg to 4.0 kg, and may more specifically be 2.2 kg. A rated voltage of the battery pack 2 may for example be in a range of 36 V to 108 V, and may more specifically be 57.6 V. A rated capacity of the battery pack 2 may for example be in a range of 3.0 Ah to 12.0 Ah, and may more specifically be 4.0 Ah. The weight, rated voltage, and rated capacity of the battery pack 2 as described above are mere examples, and the weight, rated voltage, and rated capacity of the battery pack 2 may each be smaller or larger.
The battery pack 2 includes a casing 12 and a battery cell unit 14 (see
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A first guide groove 26 and a second guide groove 28 extending upward from the lower end of the right surface 4c are defined in the right surface 4c of the main body 4. As shown in
A plurality of air supply openings 36 is defined in the right surface 4c of the main body 4. As shown in
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A rib 46 is arranged for each of the plurality of exhaust openings 42 in the rear surface 4b of the main body 4. The ribs 46 each include a bottom plate 46a that protrudes frontward from a lower edge of its corresponding exhaust opening 42 and then bends frontward and upward, and side plates 46b that protrude frontward from left and right edges of its corresponding exhaust opening 42 and then are connected with left and right ends of the bottom plate 46a. By arranging the ribs 46 for the exhaust openings 42, the inside of the main body 4 can be suppressed from being visually recognizable through the exhaust openings 42 to the user holding the handle 10. Further, by providing the ribs 46 for the exhaust openings 42, entry of water and foreign objects from outside to inside the main body 4 through the exhaust openings 42 can be suppressed.
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Each of the plurality of battery cells 48 may for example be a lithium ion battery cell. Each of the plurality of battery cells 48 has a substantially cylindrical shape, and is arranged such that its longitudinal direction is along the front-rear direction. The shape of each of the plurality of battery cells 48 may for example be of type 18650 with a diameter of 18 mm and a dimension in the longitudinal direction of 65 mm. The plurality of battery cells 48 is arranged in four rows that are stacked along the up-down direction. The plurality of battery cells 48 is arranged in eight columns that are arranged along the left-right direction. The plurality of battery cells 48 is thus arranged in a grid pattern, such as in a square grid pattern. In the up-down direction, positions of the battery cells 48 in the same row are substantially the same, and the battery cells 48 in the same row are arranged with intervals in between them along the left-right direction. In the left-right direction, positions of the battery cells 48 in the same column are substantially the same, and the battery cells 48 in the same column are arranged with intervals in between them along the up-down direction. As shown in
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A plurality of air supply openings 68 is defined in the upper surface 50e of the cell holder 50. In the present embodiment, two air supply openings 68 are defined in the upper surface 50e of the cell holder 50, where one of the air supply openings 68 is arranged facing a space between the battery cells 48 in the third column from right and the battery cells 48 in the fourth column from right inside the cell holder 50, and the other of the air supply openings 68 is arranged facing a space between the battery cells 48 in the third column from left and the battery cells 48 in the fourth column from left inside the cell holder 50.
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Each of the plurality of air supply openings 64, 66, 68, 70 is defined to traverse over the front cell holder 60 and the rear cell holder 62. Each of the plurality of air supply openings 64, 66, 68, 70 has an elongate hole-shape having its longitudinal direction along the front-rear direction. A front end of each of the plurality of air supply openings 64, 66, 68, 70 is arranged for example at a position rearward from the front ends of the plurality of battery cells 48 by ¼ the length of the plurality of battery cells 48 in the front-rear direction. A rear end of each of the plurality of air supply openings 64, 66, 68, 70 is arranged for example at a position frontward from the rear ends of the plurality of battery cells 48 by ¼ the length of the plurality of battery cells 48 in the front-rear direction.
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The positive power terminal 78a and the negative power terminal 78b use a Cu alloy as their base material, Cu plating is applied thereto as their basecoat plating, and Sn plating is applied to the top of the basecoat plating. Plating using a pure metal that is a base metal, such as Ni, may be applied instead of the Sn plating, and as another alternative, plating using a pure metal that is a noble metal other than Ag, such as Au, may be applied. As yet another alternative, plating using an alloy not containing Ag may be applied.
When the battery pack 2 is used in a high-moisture environment, metal on a surface of the positive power terminal 78a may be ionized, move on the control circuit board 52 toward the negative power terminal 78b, and deposit as metal on a surface of the negative power terminal 78b. Such a phenomenon is called ion migration. When the metal deposited on the negative power terminal 78b grows on the control circuit board 52, short-circuiting may occur in the control circuit board 52. Ag is most prone to the ion migration. Further, since the ion migration tends to occur when a large voltage is applied while the ion migration tends not to occur when a small voltage is applied, it tends to occur in the power terminals 78 and tends not occur in the signal terminals 80. Due to this, as aforementioned, by applying plating using a pure metal other than Ag or plating using an alloy not containing Ag on the positive power terminal 78a and the negative power terminal 78b, the short-circuiting caused by the ion migration can be suppressed. Especially by applying plating using a pure metal other than Ag or plating using an alloy not containing Ag on the surface of the positive power terminal 78a, Ag ionization on the surface of the positive power terminal 78a can be suppressed, and the short-circuiting caused by the ion migration can be suppressed. The pure metal other than Ag or the alloy not containing Ag as aforementioned may be a pure metal other than Ag, Pb or an alloy not containing Ag, Pb, or may be a pure metal other than Ag, Pb, Cu or an alloy not containing Ag, Pb, Cu.
The charge/discharge control terminal 80a, the signal-receiving terminal 80b, the overdischarge output terminal 80c, the signal-sending terminal 80d, the connection detecting terminal 80e, and the operation input terminal 80f use Cu alloy as their base material, Cu plating is applied thereto as their basecoat plating, and Ag plating is applied to the top of the basecoat plating. Plating using a pure metal that is a noble metal, such as Au, or noble metal alloy plating may be applied instead of the Ag plating.
In the state in which the battery pack 2 is attached to the electric device or the charger, the battery-side terminals 54 are maintained in contact with device-side terminals of the electric device or the charger. In this state, when micro-vibration is repeatedly applied to the battery-side terminals 54, partial wear progresses on surfaces of the battery-side terminals 54, by which metal debris worn off of the surfaces of the battery-side terminals 54 oxidizes and accumulates on the surfaces of the battery-side terminals 54. Such a phenomenon is called fretting corrosion. As the oxidized debris accumulates on the surfaces of the battery-side terminals 54, conduction defects of the battery-side terminals 54 could occur. In general, noble metals tend not to oxidize, thus they are resistant against such conduction defects caused by the fretting corrosion. To the contrary, since base metals are prone to oxidization, they are susceptible to such conduction defects caused by the fretting corrosion. Further, the conduction defects caused by the fretting corrosion tends not to occur when a large voltage is applied whereas they tend to occur when a small voltage is applied, thus the conduction defects tend not to occur in the power terminals 78 and tend to occur in the signal terminals 80. Therefore, by plating the charge/discharge control terminal 80a, the signal-receiving terminal 80b, the overdischarge output terminal 80c, the signal-sending terminal 80d, the connection detecting terminal 80e, and the operation input terminal 80f using a pure metal that is a noble metal or a noble metal alloy as aforementioned, the conduction defects caused by the fretting corrosion can be suppressed.
A plurality of through holes 82 is defined in the control circuit board 52. In the present embodiment, four through holes 82 are defined in the control circuit board 52. One of the through holes 82 extends in the front-rear direction between the positive power terminal 78a and the charge/discharge control terminal 80a and also between the positive power terminal 78a and the signal-receiving terminal 80b. Another one of the through holes 82 extends in the front-rear direction between the charge/discharge control terminal 80a and the overdischarge output terminal 80c and also between the signal-receiving terminal 80b and the signal-sending terminal 80d. Yet another one of the through holes 82 extends in the front-rear direction between the overdischarge output terminal 80c and the connection detecting terminal 80e and also between the signal-sending terminal 80d and the operation input terminal 80f. Last one of the through holes 82 extends in the front-rear direction between the connection detecting terminal 80e and the negative power terminal 78b and also between the operation input terminal 80f and the negative power terminal 78b. By having the plurality of through holes 82 defined in the control circuit board 52, even when a conductive substance such as water adheres to the surface of the control circuit board 52, short-circuiting between the power terminals 78, between the signal terminals 80, and between the power terminals 78 and the signal terminals 80 can be suppressed.
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When the battery pack 2 is attached to the charger, the plurality of battery cells 48 is cooled by a fan device (not shown) of the charger while the plurality of battery cells 48 is charged to suppress the plurality of battery cells 48 from reaching excessively high temperatures. In the battery pack 2 of the present embodiment, air is suctioned from inside to outside the casing 12 through the exhaust openings 42 in the rear surface 4b of the main body 4 as shown in
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Majority of the air that entered from the air supply openings 36 flows into the cell holder 50 through the plurality of air supply openings 64 in the right surface 50c of the cell holder 50. Remainder of the air that entered from the air supply openings 36 flows in a space between the casing 12 and the cell holder 50, and flows into the cell holder 50 through the plurality of air supply openings 68 in the upper surface 50e of the cell holder 50 and the plurality of air supply openings 70 in the lower surface 50f of the cell holder 50.
Majority of the air that entered from the air supply openings 38 flows into the cell holder 50 through the plurality of air supply openings 66 of the left surface 50d of the cell holder 50. Remainder of the air that entered from the air supply openings 38 flows in the space between the casing 12 and the cell holder 50, and flows into the cell holder 50 through the plurality of air supply openings 68 in the upper surface 50e of the cell holder 50 and the plurality of air supply openings 70 in the lower surface 50f of the cell holder 50.
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The air that entered inside the cell holder 50 from the plurality of air supply openings 64 flows from right to left in spaces between the battery cells 48 that are adjacent in the up-down direction. The air that entered inside the cell holder 50 from the plurality of air supply openings 66 flows from left to right in spaces between the battery cells 48 that are adjacent in the up-down direction. The air that entered inside the cell holder 50 from the plurality of air supply openings 68 flows downward from above in spaces between the battery cells 48 that are adjacent in the left-right direction. The air that entered inside the cell holder 50 from the plurality of air supply openings 70 flows upward from below in spaces between the battery cells 48 that are adjacent in the left-right direction.
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As described above, in one or more embodiments, the battery pack 2 is configured to be attached to and detached from the electric device or the charger including the device-side terminals. The battery pack 2 comprises: the battery cells 48; the control circuit board 52 (an example of the circuit board) electrically connected to the battery cells 48; and the battery-side terminals 54 electrically connected to the control circuit board 52, and configured to electrically connect to the device-side terminals by contacting the device-side terminals. The battery-side terminals 54 comprise: the positive power terminal 78a and the negative power terminal 78b for discharging from the battery cells 48 and charging the battery cells 48; and at least one signal terminal 80 electrically connected to the control circuit board 52 for signal communication with the control circuit board 52. The positive power terminal 78a is plated with a first metal on its surface. One of the at least one signal terminal 80 is plated with a second metal on its surface. The first metal is a pure metal other than Ag or an alloy not containing Ag. The second metal is a pure metal that is a noble metal or a noble metal alloy.
According to the above configuration, short-circuiting caused by ion migration and conduction defects caused by fretting corrosion can be suppressed in the battery-side terminals 54 of the battery pack 2.
In one or more embodiments, the negative power terminal 78b is plated with a third metal on its surface. The third metal is a pure metal other than Ag or an alloy not containing Ag.
According to the above configuration, the short-circuiting caused by the ion migration can be suppressed in the battery-side terminals 54 of the battery pack 2.
In one or more embodiments, the third metal is the same metal as the first metal.
According to the above configuration, since plating processes to be performed on the positive power terminal 78a and the negative power terminal 78b can be integrated, manufacture of the battery pack 2 can be facilitated.
In one or more embodiments, all of the at least one signal terminal 80 is plated with the second metal on the surface.
According to the above configuration, since plating processes to be performed on all of the at least one signal terminal 80 can be integrated, the manufacture of the battery pack 2 can further be facilitated.
In one or more embodiments, the first metal is Sn.
According to the above configuration, among the battery-side terminals 54, sliding performance of terminal(s) plated with the first metal (for example, the positive power terminal 78a, the negative power terminal 78b) to slide on the device-side terminal(s) can be improved.
In one or more embodiments, the second metal is Ag.
According to the above configuration, an electric resistance of terminal(s) plated with the second metal (for example the signal terminals 80) among the battery-side terminals 54 can be reduced.
Number | Date | Country | Kind |
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2021-048528 | Mar 2021 | JP | national |