Battery cell equipped with a cover capable of breaking under the effects of overpressure.
A battery cell cover with a depth-varying groove directs and controls the rupture to minimize debris projection and explosion risk, addressing the issues of uniform rupture and rapid pressure drop in existing cells.
Patent Information
- Application Number
- FR2024005502
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-05-28
- Publication Date
- 2025-12-05
AI Technical Summary
Existing battery cells face issues with uniform rupture of safety devices due to overpressure, leading to unpredictable debris projection and increased risk of explosion, as well as rapid pressure drop causing further damage.
A battery cell cover with a groove of varying depth along its length, where the rupture starts at the deepest point and progressively propagates, controlling the rupture to minimize debris projection and pressure drop.
The solution effectively directs and controls the rupture within the groove, reducing the risk of explosion and debris projection, enhancing safety by protecting surrounding cells and maintaining pressure reduction.
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Title of the invention: Battery cell equipped with a cover capable of rupturing under the effects of overpressure. Technical field of the invention
[0001] The invention relates to the field of rechargeable metal-ion electric batteries for electric motor vehicles. In particular, the invention relates to a metal-ion battery cell. More precisely, the invention relates to an electric cell comprising a cover having at least one groove of variable depth. Technical background
[0002] An electric battery cell comprises a stack of electrodes of opposite polarity separated from each other by a porous separator film.
[0003] The battery cell contains a liquid electrolyte.
[0004] The so-called prismatic or cylindrical cells typically comprise a rigid housing in which the stack of electrodes is arranged and which contains, among other things, the electrolyte.
[0005] A known problem related to the operation of a battery cell is the generation of gas inside the casing. This can occur under normal operating conditions or in the event of thermal runaway of the cell. In the latter case, the pressure inside the casing can reach levels likely to cause an explosion. An explosion can have dramatic consequences, which must be avoided.
[0006] There are numerous safety devices. These safety devices prevent the pressure inside the cell housing from exceeding a predetermined value, which could damage the cell.
[0007] These safety devices are for single use only. Once the safety device is damaged, the pressure inside the housing drops and the cell is no longer operational.
[0008] In general, the cells include a safety device arranged beneath a cell cover. The safety device includes, for example, a groove formed in said safety device. The groove has a substantially constant depth.
[0009] In the event of overpressure inside the cell, these safety devices rupture at the groove. The rupture occurs substantially simultaneously at every point of the groove. This is referred to as uniform rupture.
[0010] A uniform rupture can lead to debris being projected and dispersed unpredictably, thus increasing the risk of damaging other cells of the module.
[0011] Another disadvantage of a uniform rupture lies in the fact that said uniform rupture causes a rapid drop in pressure increasing the risk of cell explosion.
[0012] The present invention therefore aims to solve the aforementioned problems. Summary of the invention
[0013] To this end, an electrical cell for an electrically propelled vehicle is proposed firstly, said cell comprising: - a housing defining an internal volume containing an electrolyte and at least one stack of electrodes comprising a plurality of electrodes separated from each other by a porous separating film, - a lid of predetermined thickness closing the housing, cell in which the lid has a wall having an upper face and a lower face opposite the upper face, said wall having a groove having a depth which varies as one moves along said groove, the depth being measured along a longitudinal axis of the cell.
[0014] A groove whose depth varies along its length allows the rupture of the cover to be directed within the groove. The rupture begins where the groove is deepest and propagates down the groove as the depth decreases. By directing the rupture so that it occurs progressively along the groove, it becomes possible to prevent the projection of debris from the cover or other components initially located inside the housing around the damaged cell, and to progressively reduce the pressure inside the cell, thus significantly reducing the risk of cell explosion. Furthermore, it is possible to control the propagation speed of the rupture. In particular, this allows the propagation speed to be slowed as one moves along the groove, preventing damage to the cover and thus avoiding the projection of debris.
[0015] Various additional features may be provided alone or in combination: - the groove has a constant maximum depth, said maximum depth being substantially between 70% and 90% of the thickness of the lid; - the maximum depth is approximately equal to 80% of the thickness of the lid; - the groove has a constant minimum depth measured along the longitudinal axis, said minimum depth being approximately between 5% and 20% of the thickness of the lid; - the minimum depth is approximately equal to 10% of the thickness of the lid; - the lid has an outer periphery and the groove has lateral edges located on the upper face, said lateral edges being located at a lateral distance from the periphery measured in a plane of the upper face, said lateral distance being greater than or equal to 5 millimeters; - the groove includes at least one maximum portion of maximum depth, said maximum portion having a predetermined length; - the groove includes at least a minimum portion of minimum depth, said minimum portion having a predetermined length; - the lid has substantially a disc shape, cell in which the groove has an outer lateral edge located on the side of the periphery of the lid and an inner lateral edge substantially concentric with the outer lateral edge, said annular edges being arranged on the upper face and at a distance from each other of a predetermined spacing distance; - the maximum portion is defined by a first angular sector between 10 degrees and 60 degrees, said first angular sector being measured approximately from a center of the lid; - the first angular sector alpha is approximately equal to 30 degrees; - the minimum portion is defined by a second angular sector between 10 degrees and 60 degrees, said angular sector being measured approximately from a center of the lid; - the second angular sector of the minimum portion is approximately equal to 30 degrees; - the minimum portion and the maximum portion are separated by separation portions whose depth varies depending on whether one moves along said separation portions; - the depth of the separation portions increases by 1% of the thickness of the lid for every 2 degrees of angle; - the separation portions are defined by a second angular sector between 120 degrees and 170 degrees; - the lateral distance is between 5 millimeters and 20 millimeters; - the gap distance of the groove is approximately between 0.5 millimeters and 2 millimeters; - the lower face of the cover is located on the side of the internal volume of the housing of said cell; - the minimum portion and the maximum portion are substantially symmetrical with respect to a center of the lid located in a plane of the upper face of said lid; - the groove has a U-shaped cross-section with a flat bottom; - the lid is made from a single piece. Brief description of the figures
[0016] Other features and advantages of the invention will become apparent upon reading the detailed description that follows, for an understanding of which reference should be made to the accompanying drawings in which:
[0017] [Fig-1] [Fig.1] is a perspective view of a cell according to the invention.
[0018] [Fig.2] [Fig.2] is a cross-sectional view of [Fig.1] along the section plane II-II.
[0019] [Fig.3] [Fig.3] is a top view of [Fig.1]. Detailed description of the invention
[0020] Figure [Fig. 1] shows a battery cell 1 for an electric propulsion vehicle.
[0021] Advantageously, the cell 1 comprises a cylindrical housing 2. By "cylindrical" it is understood that the housing 2 has rigid walls and a shape substantially resembling that of a cylinder. The housing 2 includes an opening leading to an internal volume 3, through which an electrode stack is inserted. The electrode stack comprises a series of electrodes separated from each other by a porous separating film. The cell 1 includes an electrolyte arranged within the housing 2.
[0022] The housing 2 is closed by a cover 4. The cover 4 has a wall on which is arranged a groove 5, said wall comprising a lower face 6 and an upper face 7 opposite to the lower face 6.
[0023] The cover 4 has a thickness 9 measured along a longitudinal X axis of the cell 1. The longitudinal X axis is perpendicular to the lower face 6 and the upper face 7 and the housing 2 extends longitudinally along this longitudinal X axis.
[0024] As illustrated in [Fig.2], the depth of the groove 5 varies as one moves along said groove 5. The depth of the groove 5 is measured along the longitudinal X axis.
[0025] A groove 5, the depth of which varies along its length, allows the rupture of the cover 4 to be directed into the groove 5. The rupture begins where the depth of the groove 5 is greatest and propagates along the groove 5 as the depth decreases. By directing the rupture so that it occurs progressively along said groove 5, it becomes possible to prevent the projection of debris from the cover 4 or elements initially located inside the housing 2 around the damaged cell 1 and to progressively reduce the pressure inside the cell 1, thus significantly reducing the risk of explosion of said cell. Furthermore, it is then possible to control the rate of propagation of the rupture. In particular, this makes it possible to slow down the rate of propagation depending on whether one moves along the groove 5 so that the cover 4 is not damaged in order to avoid the projection of debris.
[0026] Advantageously, the groove 5 has a maximum depth 8 measured along the longitudinal axis, substantially between 70% and 90% of the thickness 9 of the cover 4.
[0027] These conditions make it possible to obtain a maximum depth 8 sufficiently large to allow a break at the point of the maximum depth 8 of the groove 5, while ensuring that the groove 5 does not give way in normal operation of the cell.
[0028] Advantageously, the maximum depth 8 of the groove 5 is substantially equal to 80% of the thickness 9 of the cover 4.
[0029] This makes it possible to obtain a maximum depth 8 which is large enough to allow a localized rupture in case of overpressure while ensuring that the groove 5 does not give way in normal operation of the cell.
[0030] Advantageously, the groove 5 has a minimum depth 10 measured along the longitudinal X axis, said minimum depth 10 is substantially between 5% and 20% of the thickness 9 of the cover 4.
[0031] Thanks to a minimum depth 10 within this range, it becomes possible to locate the rupture in the event of overpressure. This notably allows for better protection of the surrounding cells in the event of a rupture of a given cell 1. Furthermore, a minimum depth 10 within the aforementioned range prevents uncontrolled destruction of the cover 4. It appears that in the absence of a minimum depth 10, the rupture propagates beyond the groove 5. There is then a risk of debris being projected around the damaged cell 1. This debris could be fragments of the cover 4 or elements located inside the housing 2.
[0032] Advantageously, the minimum depth 10 of the groove 5 is substantially equal to 10% of the thickness 9 of the cover 4.
[0033] This notably allows for better protection of the surrounding cells in the event of a break in a given cell 1. Furthermore, it prevents uncontrolled destruction of the cover 4. It appears that, in the absence of a minimum depth 10, the break propagates beyond the groove 5. There is then a risk of debris being projected around the damaged cell 1. This debris could be fragments of the cover 4 or elements located inside the housing 2.
[0034] With reference to Figures 2 and 3, the cover 4 advantageously comprises an outer periphery 11. The outer periphery 11 is located in a plane defined by the upper face 7 of the cover 4 of the cell 1. The lateral edges of the groove 5 are located in the plane of the upper face 7 of the cover 4.
[0035] The lateral edges of the groove 5 are arranged at a predetermined lateral distance 12 from the outer periphery 11. The lateral distance 12 is measured in the plane of the upper face 7, along a straight line extending from the outer periphery 11 towards the lateral edges along the shortest path.
[0036] The lateral distance 12 is greater than or equal to 5 millimeters.
[0037] The presence of such a lateral distance 12 between the periphery of the cover 4 and the lateral edges of the groove 5 prevents damage that overpressure could cause to the housing 2 of cell 1. The integrity of the housing 2 of cell 1 could be compromised, which could lead to electrolyte leaks or debris projections. Such a situation could damage the other cells of the module or even cause a fire.
[0038] As can be seen in [Fig. 3], the groove 5 advantageously comprises at least one maximum portion 13, which has a maximum depth 8 and a predetermined length. In other words, there exists at least one portion of the groove 5 of a given length where the depth is substantially constant and at its maximum.
[0039] This ensures that the rupture occurs first in the maximum portion 13. In the event of overpressure in housing 2, the rupture will occur first in the maximum portion 13. This is particularly advantageous for preventing damage to the other cells in the module. Indeed, the first rupture is the one most likely to project debris outside cell 1 due to the pressure drop between the inside of housing 2 and the outside. By precisely locating this area of first rupture, the surrounding cells can be better protected.
[0040] As can be seen in [Fig. 3], the groove 5 advantageously comprises at least one minimal portion 14, which has a minimum depth 10 and a predetermined length. In other words, there exists at least one portion of the groove 5 of a given length where the depth is substantially constant and minimal.
[0041] Such a minimal portion 14 prevents part of the lid 4 from detaching and being projected. Thus, during overpressure in the cell, the minimal portion 14 acts as a hinge.
[0042] Advantageously, the cover 4 is substantially disc-shaped. The groove 5 has an outer lateral edge 15 located on the periphery side 11 of the cover 4 and an inner lateral edge 16 substantially concentric with the outer lateral edge 15. The lateral edges 15, 16 are annular. The lateral edges 15, 16 are arranged on the upper face 7 of the cover 4. The outer lateral edge 15 and the inner lateral edge 16 are located at a predetermined distance 17 from each other.
[0043] The groove 5 has a circular and annular shape. This maximizes the length of the groove 5 to better dissipate the energy generated by a potential rupture. This reduces the risk of debris being projected.
[0044] Advantageously, the maximum portion 13 extends along a first angular sector a. The first angular sector a is between 10° and 60°, measured from a center C of the lid 4. The center C is located in the plane of the upper face 7.
[0045] Such an amplitude makes it possible to define a portion of maximum depth 8 sufficient to control the location of the rupture of the lid 4.
[0046] Advantageously, the first angular sector a is substantially equal to 30 degrees.
[0047] This advantageously allows sufficient opening at the time of rupture so that the pressure drop is rapid in order to avoid damage to the cell while ensuring the location of the rupture.
[0048] Advantageously, the minimal portion 14 has a second angular sector [3] between 10° and 60°.
[0049] Such an amplitude makes it possible to control the location of the hinge and to define a minimum portion size 14 sufficient to retain at least a portion of the lid 4 broken under the effect of a suppression in the housing 2.
[0050] Advantageously, the second angular sector [3 of the minimal portion 14 is substantially equal to 30 degrees
[0051] This advantageously allows the creation of a hinge capable of resisting overpressures without altering the performance of the device.
[0052] Advantageously, the minimum portion 14 and the maximum portion 13 are separated from each other by two separating portions 20. The depth of the separating portions 20 varies along said separating portions 20. As can be seen in [Fig. 3], the separating portions 20 are arranged on either side of the minimum portion 14 and the maximum portion 13.
[0053] These separation portions 20 ensure the continuity of the groove 5, guiding the break of the groove from the maximum portion 13 to the minimum portion 14 so as to protect the rest of the cover 4.
[0054] The depth of the separation portions 20 increases by 1% of the thickness 9 every two degrees of angle.
[0055] The separation portions 20 have a depth that increases progressively and constantly so as not to create a break in slope in the groove 5. In case of overpressure in the housing 2, the rupture is soft and progressive, this makes it possible to control said rupture and in particular the speed of propagation of said rupture and thus to avoid a projection of debris.
[0056] Advantageously, the separation portions 20 extend from the minimum portion 14 to the maximum portion 13. Thus, the separation portions 20 extend angularly along a third angular sector including between 120° and 170°.
[0057] The separating portions 20 ensure the continuity of the groove 5 from the minimum portion 14 to the maximum portion 13. This optimizes the length of the groove 5. Thus, in the event of overpressure, the rupture occurs over a sufficient length to dissipate the energy caused by said rupture and therefore prevent the projection of debris.
[0058] Advantageously, the lateral distance 12 is between 5 millimeters and 20 millimeters.
[0059] Such a lateral distance helps to protect the cover against the risk of uncontrolled breakage.
[0060] Advantageously, the spacing distance is between 0.5 millimeters and 2 millimeters.
[0061] This interval makes it possible to locate the break without weakening the lid.
[0062] Advantageously, the lower face 6 of the lid 4 is in contact with the volume 3 inside the cell.
[0063] Advantageously, the groove 5 has in section substantially a "U" shape with a flat bottom.
[0064] This ensures a clean and precise cut without the risk of unnecessarily damaging the cover 4. It also prevents crushing the cover 4 during the formation of the groove 5 and avoids cracking. This cut shape is suitable for creating guide lines such as a groove 5.
[0065] Advantageously, the lid is made in one piece. In other words, the cell comprises only a lid for closing it. No other parts are necessary.
[0066] This simplifies the architecture and reduces production costs. Furthermore, the lid is thus more robust over time, unlike lids made from several parts which are particularly tedious to assemble and prove to be fragile.
[0067] Advantageously, the minimum portion 13 and the maximum portion 14 are substantially symmetrical with respect to the center C. Thus, the portions 13, 14 face each other on the [Fig.3].
[0068] This allows the length of the groove 5 to be optimized so as to better dissipate energy during an overpressure causing a rupture. This reduces the risk of debris being projected.
Claims
Demands
1. Electric cell (1) for an electric propulsion vehicle, said cell (1) comprising: - a housing (2) defining an internal volume (3) containing an electrolyte and at least one stack of electrodes comprising a plurality of electrodes separated from each other by a porous separator film, - a cover (4) of a predetermined thickness (9) closing the housing (2), cell (1) in which the cover (4) has a wall having an upper face (7) and a lower face (6) opposite the upper face (7), said wall comprising a groove (5) having a depth which varies as one moves along said groove (5), the depth being measured along a longitudinal axis (X) of the cell (1).
2. Cell (1) according to claim 1 in which the groove (5) has a constant maximum depth (8), said maximum depth (8) being substantially between 70% and 90% of the thickness (9) of the cover (4).
3. Cell (1) according to claim 2 in which the maximum depth (8) is substantially equal to 80% of the thickness (9) of the lid (4).
4. Cell (1) according to any one of the preceding claims in which, the groove (5) has a constant minimum depth (10) measured along the longitudinal axis (X), said minimum depth (10) being substantially between 5% and 20% of the thickness (9) of the cover (4).
5. Cell (1) according to claim 4 in which the minimum depth (10) is substantially equal to 10% of the thickness (9) of the lid (4).
6. Cell (1) according to any one of the preceding claims in which, the cover (4) has an outer periphery (11) and the groove (5) has lateral edges located on the upper face (7), said lateral edges being located at a lateral distance (12) from the periphery measured in a plane of the upper face (7), said lateral distance (12) being greater than or equal to 5 millimeters.
7. Cell (1) according to any one of claims 2 or 3 and according to any one of claims 4 to 6 further dependent on claim 2, wherein the groove (5) comprises at least one maximum portion (13) of maximum depth (8), said maximum portion (13) having a predetermined length.
8. Cell (1) according to any one of claims 4 or 5 and according to any one of claims 6 or 7 further dependent on claim 4, wherein the groove (5) comprises at least a minimum portion (14) of minimum depth (10), said minimum portion (14) having a predetermined length.
9. Cell (1) according to any one of the preceding claims in which, the cover (4) has substantially a disc shape, cell (1) in which, the groove (5) has an outer lateral edge (15) located on the periphery side of the cover (4) and an inner lateral edge (16) substantially concentric with the outer lateral edge (15), said annular edges being arranged on the upper face (7) and at a distance from each other of a predetermined distance (17).
10. Cell (1) according to claim 9 in which, the maximum portion (13) is defined by a first angular sector (a) between 10 degrees and 60 degrees, said first angular sector (a) being measured substantially from a center (C) of the lid (4).
11. Cell (1) according to claim 10 in which the first angular sector (18) alpha is substantially equal to 30 degrees.
12. Cell (1) according to any one of claims 9 to 11 wherein, the minimum portion (14) is defined by a second angular sector (|3) between 10 degrees and 60 degrees, said angular sector (|3) being measured substantially from a center (C) of the cover (4).
13. Cell (1) according to claim 12 in which the second angular sector (|3) of the minimum portion (14) is substantially equal to 30 degrees.
14. Cell (1) according to any one of claims 12 or 13 in which the minimum portion (14) and the maximum portion (13) are separated by separation portions (20) whose depth varies as one moves along said separation portions (20).
15. Cell (1) according to claim 14 in which, the depth of the separation portions 20 increases by 1% of the thickness (9) of the lid (4) every 2 degrees of angle.
16. Cell (1) according to claim 14 or 15 wherein the portions of (20) separation are defined by a second angular sector (y) between 120 degrees and 170 degrees.
17. Cell (1) according to claim 6 and according to any one of claims 7 to 16 further dependent on claim 6 in which, the lateral distance (12) is between 5 millimeters and 20 millimeters.
18. Cell (1) according to claim 17 in which the gap distance (17) of the groove (5) is substantially between 0.5 millimeter and 2 millimeters.
19. Cell (1) according to any one of the preceding claims wherein the lower face (6) of the cover (4) is located on the side of the inner volume (3) of the housing (2) of said cell.
20. Cell (1) according to claim 8 and according to any one of claims 9 to 19 further dependent on claim 8 wherein the minimum portion (13) and the maximum portion (14) are substantially symmetrical with respect to a center (C) of the cover (4) located in a plane of the upper face (7) of said cover (4).
21. Cell (1) according to any one of the preceding claims in which the groove (5) has in section a U-shape with a flat bottom.
22. Cell (1) according to any one of the preceding claims wherein the lid is made in one piece.
Citation Information
Patent Citations
Lithium ion secondary battery
EP2696387B1
Electrochemical cell, method for producing an electrochemical cell, electrochemical system, and method for producing an electrochemical system
US20230092363A1
Electrochemical cell pressure relief devices
US4722874A