DEVICE FOR STAPLING A BATTERY CELL ELECTRODE CABLE

DE602020067969T2Active Publication Date: 2026-03-04LG ENERGY SOLUTION LTD
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Patent Information

Application Number
DE602020067969
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-01-08
Filing Date
2020-01-07
Publication Date
2026-03-04
Estimated Expiration
2040-01-07

AI Technical Summary

Technical Problem

Conventional electrode lead tack welding processes for battery cells require separate jigs for guiding and close contact, increasing manufacturing costs and time due to the need for multiple tools.

Method used

An integrated electrode lead tack welding jig that simultaneously performs positioning, close contact, and tack welding of electrode leads without bending, using a single device that includes a jig body and a close contact guide unit with guide members and knob bolts for laser welding.

Benefits of technology

Reduces manufacturing costs and time by eliminating the need for separate jigs, enhancing process efficiency through simultaneous multi-functionality in a single tool.

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Description

TECHNICAL FIELD

[0001] The present disclosure relates to an electrode lead tack welding jig for a battery cell.

[0002] The present application claims priority to Korean Patent Application No. 10-2019-0002469 filed on January 8, 2019 in the Republic of Korea.BACKGROUND ART

[0003] Secondary batteries which are highly applicable to various products and exhibit superior electrical properties such as high energy density, etc. are commonly used not only in portable devices but also in electric vehicles (EVs) or hybrid electric vehicles (HEVs) driven by electrical power sources. The secondary battery is drawing attentions as a new energy source for enhancing environment friendliness and energy efficiency in that the use of fossil fuels can be reduced greatly and no byproduct is generated during energy consumption.

[0004] Secondary batteries widely used at present include lithium ion batteries, lithium polymer batteries, nickel cadmium batteries, nickel hydrogen batteries, nickel zinc batteries and the like. An operating voltage of the unit secondary battery cell, namely a unit battery cell, is about 2.5V to 4.5V. Therefore, if a higher output voltage is required, a plurality of battery cells may be connected in series to configure a battery pack. In addition, depending on the charge / discharge capacity required for the battery pack, a plurality of battery cells may be connected in parallel to configure a battery pack. Thus, the number of battery cells included in the battery pack may be variously set according to the required output voltage or the demanded charge / discharge capacity.

[0005] Meanwhile, when a plurality of battery cells are connected in series or in parallel to configure a battery pack, it is common to configure a battery module having at least one battery cell first, and then configure a battery pack by using at least one battery module and adding other components.

[0006] In the conventional battery module, when configuring an assembly of a plurality of battery cells, electrode leads of at least two battery cells are tack-welded in advance, then the tack-welded electrode leads are cut into a required length, and then the entire battery cells are stacked.

[0007] Here, in the conventional process of tack-welding electrode leads of at least two battery cells, first, the electrode leads of the at least two battery cells are disposed at a predetermined point for tack welding by using an electrode lead guide jig. After that, the electrode leads of the at least two battery cells are brought into close contact with each other using a separate electrode lead close contact jig, and then the electrode leads in close contact are tack-welded using an ultrasonic welding machine or a laser welding machine.

[0008] However, in the conventional electrode lead tack welding process, the electrode lead guide jig and the electrode lead close contact jig are required separately, thereby increasing manufacturing costs since the jigs must be prepared separately. Moreover, since individual jigs are used separately, the overall manufacture time is also increased, thereby giving a disadvantage in terms of process efficiency.

[0009] Further prior art is described in CN 207 656 105 U, KR 2016 0017574 A, KR 2018 0112616 A, DE 10 2014 110915 A1 and JP 2016 030280 A.DISCLOSURETechnical Problem

[0010] It is an object of the present disclosure to provide an electrode lead tack welding jig for a battery cell, which may improve the process efficiency by reducing manufacture cost and time.Technical Solution

[0011] According to the present disclosure, this object is accomplished by an electrode lead tack welding jig for a predetermined number of stacked battery cells to form a non-bending lead concept battery module, comprising the features of patent claim 1.

[0012] Dependent claims are directed on features of preferred embodiments of the present disclosure.Advantageous Effects

[0013] According to various embodiments of the present disclosure, it is possible to provide an electrode lead tack welding jig for a battery cell, which may improve the process efficiency by reducing manufacture cost and time.DESCRIPTION OF DRAWINGS

[0014] The accompanying drawings illustrate a preferred embodiment of the present disclosure and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present disclosure, and thus, the present disclosure is not construed as being limited to the drawing. FIG. 1 is a diagram for illustrating an electrode lead tack welding jig for a battery cell according to an embodiment of the present disclosure. FIGS. 2 and 3 are diagrams for illustrating a rotating operation of the electrode lead tack welding jig of FIG. 1. FIGS. 4 and 5 are diagrams for illustrating main parts of the electrode lead tack welding jig of FIG. 1. FIG. 6 is a diagram for illustrating another embodiment of a knob bolt of the electrode lead tack welding jig of FIG. 4. FIGS. 7 to 11 are diagrams for illustrating a tack welding process for electrode leads of battery cells, performed by the electrode lead tack welding jig of FIG. 1. BEST MODE

[0015] The present disclosure will become more apparent by describing in detail the embodiments of the present disclosure with reference to the accompanying drawings. It should be understood that the embodiments disclosed herein are illustrative only for better understanding of the present disclosure, and that the present disclosure may be modified in various ways. In addition, for ease understanding of the present disclosure, the accompanying drawings are not drawn to real scale, but the dimensions of some components may be exaggerated.

[0016] FIG. 1 is a diagram for illustrating an electrode lead tack welding jig for a battery cell according to an embodiment of the present disclosure, FIGS. 2 and 3 are diagrams for illustrating a rotating operation of the electrode lead tack welding jig of FIG. 1, FIGS. 4 and 5 are diagrams for illustrating main parts of the electrode lead tack welding jig of FIG. 1, and FIG. 6 is a diagram for illustrating another embodiment of a knob bolt of the electrode lead tack welding jig of FIG. 4.

[0017] Referring to FIGS. 1 to 6, an electrode lead tack welding jig 10 performs tack welding to electrode leads 55 of battery cells 50 to each other. The battery cells 50 are stacked in a predetermined number or more to form a battery module or a battery pack.

[0018] During a manufacturing process of the battery pack of the battery module, the electrode leads 55 of the battery cells 50 are welded for electrical connection of the battery cells 50. In this welding process, the electrode leads 55 of the battery cells 50 are tack-welded. The electrode lead tack welding jig 10 is applied in the welding process for the tack welding.

[0019] In particular, the electrode lead tack welding jig 10 is mainly applied to a so-called non-bending lead concept module that welds the electrode leads 55 of the battery cells 50 without bending.

[0020] The non-bending lead concept module, for example, performs tack welding to electrode leads 55 of three battery cells 50 to each other, and the electrode lead tack welding jig 10 brings three battery cells 50 into close contact with each other and then perform tack welding to the electrode leads 55 of the three battery cells 50. At this time, the tack welding is performed through laser tack welding using laser.

[0021] Hereinafter, the electrode lead tack welding jig 10 according to this embodiment will be described in more detail.

[0022] The electrode lead tack welding jig 10 includes a jig body 100 and a close contact guide unit 200.

[0023] The jig body 100 serves to support at least two battery cells 50. Hereinafter, in this embodiment, the jig body 100 will be described as supporting three battery cells 50.

[0024] The jig body 100 includes a first support member 110 and a second support member 130.

[0025] The first support member 110 supports a lower side of the at least two battery cells 50. In this embodiment, the first support member 110 supports the lower side of three battery cells 50.

[0026] The second support member 130 is pivotally coupled to the first support member 110 by a hinge and supports an upper side of the at least two battery cells 50. In this embodiment, the second support member 130 supports the upper side of the three battery cells 50.

[0027] The close contact guide unit 200 is provided at both ends of the jig body 100, and guides the electrode leads 55 to make close contact with each other when the electrode leads 55 of the at least two battery cells 50 are tack-welded by laser.

[0028] The close contact guide unit 200 includes a first guide member 210, a second guide member 230 and a knob bolt 250.

[0029] The first guide member 210 is provided at both ends of the first support member 110. The first guide member 210 includes a tack welding guide slit 215 and a knob bolt hole 217.

[0030] The tack welding guide slit 215 partially exposes the electrode leads 55 of the at least two battery cells 50 out of the close contact guide unit 200 for tack-welding the electrode leads 55 of the at least two battery cells 50 by laser.

[0031] The knob bolt hole 217 allows a knob bolt 250, explained later, to be fastened therethrough. The knob bolt hole 217 guides the first guide member 210 and the second guide member 230, explained later, to make close contact with each other according to the degree of fastening with the knob bolt 250, explained later.

[0032] The second guide member 230 is provided at both ends of the second support member 130, and is disposed to face the first guide member 210 in a state where the electrode leads 55 of the at least two battery cells 50 are interposed therebetween.

[0033] The second guide member 230 includes a vertical plate 231, a horizontal plate 233 and a tack welding guide slit 235.

[0034] The vertical plate 231 is mounted to both ends of the second support member 130.

[0035] The horizontal plate 233 is bent from a bottom end of the vertical plate 231, and is disposed to face the first guide member 210 in a state where the electrode leads 55 of the at least two battery cells 50 are interposed therebetween.

[0036] The electrode leads 55 of the at least two battery cells 50 are disposed between a bottom surface of the horizontal plate 233 and a top surface of the first guide member 210. For more stable arrangement of the electrode leads 55 of the at least two battery cells 50, a bottom width of the horizontal plate 233 is formed to correspond to a top width of the first guide member 210.

[0037] The tack welding guide slit 235 is provided to the horizontal plate 233, and the electrode leads 55 of the at least two battery cells 50 are partially exposed out of the close contact guide unit 200 for tack-welding the electrode leads 55 of the at least two battery cells 50 by laser.

[0038] The tack welding guide slit 235 is formed to have a predetermined length along a longitudinal direction of the horizontal plate 233, and is provided corresponding to the tack welding guide slit 215 of the first guide member 210.

[0039] The knob bolt 250 can bring the first guide member 210 and the second guide member 230 into closer contact with each other according to a manipulation of a manufacturer or the like. At least one knob bolt 250, or a plurality of knob bolts 250, may be provided.

[0040] In this embodiment, the knob bolt 250 is provided in a pair.

[0041] The pair of knob bolts 250 are disposed to face each other in a state where the electrode leads 55 of the at least two battery cells 50 are interposed therebetween, and are screwed according to the manipulation of the manufacturer or the like so that the first guide member 210 and the second guide member 230 make closer contact with each other.

[0042] The manipulation for screw-fastening the pair of knob bolts 250 is performed at the upper side of the second guide member 230. Meanwhile, as shown in FIG. 6, the knob bolt 255 may also be mounted such that the screw-fastening manipulation is performed at the lower side of the first guide member 230. In this case, the second guide member 230 has a knob bolt hole 237 through which an end of the knob bolt 255 is fastened.

[0043] Hereinafter, the tack welding process of the electrode lead tack welding jig 10 for the battery cells 50 according to this embodiment will be described in more detail.

[0044] Specifically, the tack welding process of the electrode lead tack welding jig 10 for the battery cells 50, explained later, will be described based on the tack welding process for the electrode leads 55 of three battery cells 50.

[0045] FIGS. 7 to 11 are diagrams for illustrating a tack welding process for electrode leads of battery cells, performed by the electrode lead tack welding jig of FIG. 1.

[0046] Referring to FIGS. 7 to 11, three battery cells 50 are provided and mounted to the jig body 100. Specifically, the three battery cells 50 are placed on the first support member 110.

[0047] After that, the manufacturer or the like pivots the second support member 130 of the jig body 100 to more stably fix the upper side of the three battery cells 50.

[0048] According to this pivoting, the electrode leads 55 of the three battery cells 50 come into close contact with each other while being positioned by the close contact guide unit 200. That is, according to the pivoting of the second support member 130, the close contact guide unit 200 automatically positions the electrode leads 55 of the three battery cells 50 onto the tack welding position.

[0049] Meanwhile, the manufacturer or the like brings the electrode leads 55 of the three battery cells 50 into closer contact with each other so that the tack welding process for the electrode leads 55 of the three battery cells 50 may be further performed more efficiently.

[0050] Specifically, the manufacturer or the like manipulates the knob bolt 250 so that the first guide member 210 and the second guide member 230, specifically the top end of the first guide member 210 and the bottom end of the horizontal plate 233 of the second guide member 230, move closer to each other to bring the electrode leads 55 into closer contact with each other.

[0051] After that, the manufacturer or the like performs tack welding to the electrode leads 55 of the three battery cells 50 exposed through the tack welding guide slit 215 of the first guide member 210 and the tack welding guide slit 235 of the second guide member 230 through laser welding W.

[0052] As described above, in this embodiment, during the tack welding process for the electrode leads 55 of the battery cells 50, it is possible to simultaneously perform positioning, close contacting and tack welding to the electrode leads 55 using one electrode lead tack welding jig 10, and thus a plurality of jigs such as electrode lead guide jig and a close contact jig may not be required separately.

[0053] Thus, in this embodiment, by using the electrode lead tack welding jig 10 capable of simultaneously performing positioning, close contacting and tack welding to the electrode leads 55 of the battery cells 50, it is possible to significantly reduce the manufacturing cost and time.

[0054] According to the above embodiments, it is possible to provide the electrode lead tack welding jig 10 for the battery cell 50, which increases manufacturing efficiency by reducing manufacturing cost and time.

[0055] While the embodiments of the present disclosure have been shown and described, it should be understood that the present disclosure is not limited to the specific embodiments described, and that various changes and modifications can be made within the scope of the present disclosure, defined by the appended claims, by those skilled in the art, and these modifications should not be understood individually from the technical ideas and views of the present disclosure.

Claims

1. An electrode lead tack welding jig (10) for a predetermined number of stacked battery cells (50) to form a non-bending lead concept battery module, comprising: a jig body (100) configured to support at least two stacked battery cells (50); and a close contact guide unit (200) provided to both ends of the jig body (100) to guide electrode leads (55) of the at least two battery cells (50) to come into close contact when tack welding is performed to the electrode leads (55) by laser, wherein the jig body (100) includes: a first support member (110) configured to support a lower side of the at least two battery cells (50); and a second support member (130) pivotally coupled to the first support member (110) by a hinge and configured to support an upper side of the at least two battery cells (50), and characterized in that the close contact guide unit (200) includes: a first guide member (210) provided to both ends of the first support member (110) seen in the longitudinal direction of the first support member (110); and a second guide member (230) arranged to face the first guide member (210) in a state where the electrode leads (55) of the at least two battery cells (50) are interposed therebetween, the second guide member (230) being provided to both ends of the second support member (130) seen in the longitudinal direction of the second support member (130), wherein the close contact guide unit (200) includes at least one knob bolt (250, 255) configured to bring the first guide member (210) and the second guide member (230) into closer contact with each other to bring the electrode leads (55) of the at least two battery cells (50) into close contact with each other, according to a manipulation of a manufacturer or the like, wherein the first guide member (210) and the second guide member (230) comprise a tack welding guide slit (215, 235), and wherein the first guide member (210) or the second guide member (230) comprises knob bolt holes (217, 237), wherein the knob bolt holes (217, 237) allow the at least one knob bolt (250, 255) to be fastened therethrough by screw-fastening.

2. The electrode lead tack welding jig (10) for a battery cell (50) according to claim 1, wherein the second guide member (230) includes: a vertical plate (231) mounted to both ends of the second support member (230); and a horizontal plate (233) bent from a bottom end of the vertical plate (231) and disposed to face the first guide member (210) in a state where the electrode leads (55) of the at least two battery cells (50) are interposed therebetween.

3. The electrode lead tack welding jig (10) for a battery cell (50) according to claim 2, wherein the horizontal plate (233) has the tack welding guide slit (235) formed to partially expose the electrode leads (55) of the at least two battery cells (50) for tack-welding the electrode leads (55) of the at least two battery cells (50) by laser.

4. The electrode lead tack welding jig (10) for a battery cell (50) according to claim 3, wherein the tack welding guide slit (235) is formed by a predetermined length along a longitudinal direction of the horizontal plate (233).

5. The electrode lead tack welding jig (10) for a battery cell (50) according to claim 2, wherein a bottom width of the horizontal plate (233) corresponds to a top width of the first guide member (210).

6. The electrode lead tack welding jig (10) for a battery cell (50) according to claim 1, wherein the knob bolt (250) is provided in a pair, and the pair of knob bolts (250) are disposed to face each other in a state where the electrode leads (55) of the at least two battery cells (50) are interposed therebetween.