Isolative shield with positional control features for welded flexible cell tabs in an HV battery cell stack
10971786 · 2021-04-06
Assignee
Inventors
- Nicholas Compton (Freeland, MI, US)
- Igor M. Kan (Waterford, MI, US)
- Sami A. Syed (Windsor, CA)
- Jason Mazza (Royal Oak, MI, US)
- Steven D. Lorentz (Royal Oak, MI, US)
Cpc classification
B23K2101/36
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A cell stack includes adjacent first and second battery cells respectively having a positive cell tab, a negative cell tab, and an outer surface. The outer surfaces are flush. The positive cell tab of the first battery cell protrudes from the outer surface of the first battery cell, and the negative cell tab of the second battery cell protrudes from the outer surface of the second battery cell. An isolative shield is positioned adjacent to the outer surfaces, and defines through-slots receiving therein a respective one of the cell tabs. A method includes providing the cell stack, inserting the cell tabs into the pair of through-slots of the isolative shield, positioning a primary surface of the isolative shield adjacent to the outer surfaces of the adjacent battery cells after inserting the cell tabs, and affixing the primary surface of the isolative shield to the cell stack.
Claims
1. A cell stack comprising: a first battery cell and a second battery cell arranged adjacent to each other to form adjacent battery cells, each of the adjacent battery cells respectively having a positive cell tab, a negative cell tab, and an outer surface, wherein the outer surface of the first battery cell is flush with the outer surface of the second battery cell, the positive cell tab of the first battery cell protrudes orthogonally from the outer surface of the first battery cell, and the negative cell tab of the second battery cell protrudes orthogonally from the outer surface of the second battery cell; and an isolative shield having a corrugated body arranged in a perpendicular direction with respect to the positive and negative cell tabs, the corrugated body being spaced apart from distal edges of the positive cell tab and the negative cell tab, and positioned adjacent to the outer surfaces of the adjacent first and second battery cells, the corrugated body of the isolative shield having transverse ribs each defining a respective through-slot along an elongated apex of the transverse ribs, the respective through-slot receiving therein a respective one of the positive and negative cell tabs; wherein the through-slot has a corresponding width configured to form an interference fit with a respective one of the positive and negative cell tabs along the elongated apex, and wherein the isolative shield is configured to align and structurally support the positive and negative cell tabs prior to a welding process, and form a physical barrier to ingress of weld spatter into the first and second battery cells during the welding process.
2. The cell stack of claim 1, further comprising a conductive interconnect member that wraps around the distal edges, and is conductively welded to the positive and negative cell tabs of the adjacent battery cells.
3. The cell stack of claim 1, further comprising an interconnect board (ICB), wherein the isolative shield is positioned between the ICB and the outer surfaces of the adjacent battery cells, and wherein the positive and negative cell tabs are electrically connected to the ICB.
4. The cell stack of claim 3, wherein a primary surface of the ICB is contoured to mesh with a primary surface of the isolative shield.
5. The cell stack of claim 1, wherein the isolative shield is constructed of thermoformed, injection molded, or compression molded plastic.
6. The cell stack of claim 5, wherein the isolative shield has a thickness of less than 1 mm.
7. The cell stack of claim 1, wherein the isolative shield includes a pair of flat end flanges having an undersurface that rests on the outer surfaces of the adjacent first and second battery cells.
8. A method of constructing a cell stack, the method comprising: providing a cell stack having a first battery cell located adjacent to a second battery cell to form adjacent battery cells, each of the adjacent battery cells having a respective positive cell tab, a negative cell tab, and an outer surface, with the outer surface of the first battery cell being flush with the outer surface of the second battery cell, wherein the positive cell tab of the first battery cell protrudes from the outer surface of the first battery cell and the negative cell tab of the second battery cell protrudes from the outer surface of the second battery cell; providing an isolative shield having a corrugated body with transverse ribs each defining a respective through-slot along an elongated apex of the transverse ribs, each through-slot being configured to receive therein a respective one of the positive and negative cell tabs, the corrugated body being spaced apart from distal edges of the positive cell tab and the negative cell tab, wherein the through-slot has a slot width configured to form an interference fit with a respective one of the positive and negative cell tabs along the elongated apex; inserting the positive and negative cell tabs into the respective through-slots of an isolative shield such that the interference fit is provided along the elongated apex, thereby aligning and structurally supporting the positive and negative cell tabs prior to a welding process, and forming a physical barrier to ingress of weld spatter into the first battery cell and the second battery cells during a welding process; positioning a primary surface of the isolative shield adjacent to the outer surfaces of the adjacent first and second battery cells after inserting the positive and negative cell tabs; and affixing the primary surface of the isolative shield to the cell stack.
9. The method of claim 8, wherein the primary surface is located on a first side of the isolative shield, the method further comprising wrapping a conductive interconnect member around the distal edges, and then joining, via the welding process, the conductive interconnect member to the positive and negative cell tabs on a second side of the isolative shield that is opposite the first side.
10. The method of claim 9, wherein joining the conductive interconnect member includes welding the conductive interconnect member to the positive and negative cell tabs via a laser welding process.
11. The method of claim 8, further comprising connecting an interconnect board (ICB) to the adjacent battery cells such that the isolative shield is disposed between the ICB and the outer surfaces of the first battery cell and the second battery cell.
12. The method of claim 11, wherein connecting the ICB to the adjacent battery cells includes placing a contoured surface of the ICB in meshed engagement with a corrugated surface of the corrugated body of the isolative shield.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(7) The present disclosure is susceptible to modifications and alternative forms, with representative embodiments shown by way of example in the drawings and described in detail below. Inventive aspects of this disclosure are not limited to the particular forms disclosed. Rather, the present disclosure is intended to cover modifications, equivalents, combinations, and alternatives falling within the scope of the disclosure as defined by the appended claims.
DETAILED DESCRIPTION
(8) Referring to the drawings, wherein like reference numerals are used to identify like or identical components in the various views,
(9) Each cell stack 12 includes a plurality of battery cells 16, i.e., two or more battery cells 16. The battery cells 16 of a given cell stack 12, which are separated from battery cells 16 of an adjacent cell stack 12 by spacers 19, may be embodied as polymer-coated foil pouch-type battery cells of the type described above. As such, each battery cell 16 includes internal positive and negative electrode foils (not shown) that terminate in a charge-specific cell tab 17, with the individual cell tabs 17 of the battery cells 16 used in a given cell stack 12 aligned in a column as shown. The cell tabs 17 protrude orthogonally from diametrically-opposed, mutually flush outer surfaces 18 and 180 of the battery cells 16, and thus of the corresponding cell stacks 12.
(10) With respect to the above-noted alignment of the cell tabs 17, the cell tabs 17 on a given outer surface 18 or 180 are arranged with alternating positive and negative polarities. The alternating polarity is best shown in
(11) Although not visible from the perspective of
(12) For each cell stack 12 used in the battery section 10 of
(13) A description is provided hereafter for the isolative shield 20 that is intended to also apply to the identically-configured isolative shield 120. Referring to
(14) The end flanges 21 are coextensive with the width (W.sub.P) and may optionally define one or more holes 23. Fasteners (not shown) may be passed through the holes 23 to locate and/or securely fasten the isolative shield 20 to the outer surface 18 shown in
(15) The isolative shield 20 may be generally corrugated in its construction, and therefore may include a plurality of ridges or transverse ribs 24, i.e., extending along the width (W.sub.P) in an orthogonal direction with respect to the length (L) of the isolative shield 20. The transverse ribs 24 are parallel to each other and separated by a contoured surface 26, with the transverse ribs 24 defining a corresponding elongated through-slot 25 along an elongated apex 124 of the transverse ribs 24. The through-slots 25 may be coextensive with each of the transverse ribs 24 as shown. The countered surfaces 26, e.g., generally semi-circular or oval-shaped troughs as shown, may be configured to conform to a profile of the ICB 22 as best shown in
(16) The through-slots 25 have a corresponding slot width (W.sub.S) that is slightly smaller than a width of the cell tabs 17 of
(17) Referring to
(18) Those of ordinary skill in the art will appreciate that a method of constructing the cell stack 12 of
(19) The method may include welding or otherwise joining the conductive interconnect member 50 to the positive and negative cell tabs 17+ and 17− on a side of the isolative shield 20 that is opposite the surface 30, e.g., using a laser welding process. The method may also include connecting the ICB 22 to the battery cells 16 such that the isolative shield 20 is disposed between the ICB 22 and the outer surfaces 18 of the battery cells 16. Connecting the ICB 22 to the adjacent battery cells 16 may include placing a contoured surface of the ICB 22 in meshed engagement with a corrugated surface of the isolate shield 20 as noted above.
(20) The preceding assembly steps may be completed before installing the ICB 22. Such a manufacturing sequence has the benefit of isolation and positioning of the cell tabs 17, which in turn helps to ensure that adjacent cell tabs 17 do not touch each other prior to initiating the welding process. The cell tabs 17 are also surrounded by the material of the isolative shield 20 and therefore properly aligned and structurally retained or supported. Alternatively, the isolative shield 20 may be connected to the ICB 22 before installing the ICB 22. Such an approach may facilitate manufacturing, particularly if the isolative shield 20 could be co-molded with or integrally formed with the ICB 22.
(21) As shown in
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(23) In a possible embodiment, the interconnect member 50 may be embodied as an elongated member constructed of parallel U-shaped wall portions 50A and 50B, with the U-shaped wall portions 50A and 50B joined together or integrally formed to thereby construct the interconnect member 50. The U-shaped wall portions 50A may be constructed from the same materials as the positive electrodes 17+. Likewise, the U-shaped wall portions 50B may be constructed as the same material as the negative electrodes 17−.
(24) As shown in
(25) The isolative shield 20 described above with reference to
(26) While some of the best modes and other embodiments have been described in detail, various alternative designs and embodiments exist for practicing the present teachings defined in the appended claims. Those skilled in the art will recognize that modifications may be made to the disclosed embodiments without departing from the scope of the present disclosure. Moreover, the present concepts expressly include combinations and sub-combinations of the described elements and features. The detailed description and the drawings are supportive and descriptive of the present teachings, with the scope of the present teachings defined solely by the claims.