BATTERY MODULE THERMAL ISOLATION
20230033505 · 2023-02-02
Inventors
Cpc classification
H01M50/249
ELECTRICITY
H01M50/24
ELECTRICITY
H01M50/289
ELECTRICITY
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
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
H01M2220/20
ELECTRICITY
H01M50/204
ELECTRICITY
International classification
H01M50/249
ELECTRICITY
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
H01M50/204
ELECTRICITY
H01M50/289
ELECTRICITY
Abstract
Systems and methods are presented herein for isolating individual battery modules of a battery container in response to a thermal runaway event using intumescent material. A pair of opposing side walls are connected by crossmembers which at least partially define bays and/or enclosures for battery modules. A gap resides between two of the bays and/or enclosures and intumescent material is applied proximate to the gap. The intumescent material is configured to expand when exposed to heat. When a thermal runaway event is caused by the operation of a battery module within an enclosure defined by the crossmembers, the intumescent material expands to at least partially seal each bay and/or enclosure to isolate the individual battery module causing the thermal runaway event and prevent the spread of the heat to battery modules in other bays and/or enclosures.
Claims
1. A battery container, comprising: a crossmember separates a first module bay on a first side of the crossmember and a second module bay on a second side of the crossmember, wherein the first module bay and the second module bay are each configured to hold one or more battery modules; and intumescent material configured to expand between the first module bay and the second module bay.
2. The battery container of claim 1, further comprising a gap between the first and second module bays, and wherein the intumescent material comprises a foam that expands to seal the gap between the first module bay and the second module bay.
3. The battery container of claim 1, wherein the intumescent material comprises a strip, and wherein the strip comprises an adhesive surface.
4. The battery container of claim 1, further comprising a plurality of crossmembers, wherein the plurality of crossmembers partially define the first and second module bays.
5. The battery container of claim 4, wherein portions of the intumescent material is positioned proximate to a plurality of gaps between a plurality of module bays, wherein each of the plurality of module bays is configured to hold the one or more battery modules.
6. The battery container of claim 1, further comprising: a base member positioned below the crossmember; and a cover positioned above the crossmember.
7. The battery container of claim 6, further comprising a gap between the crossmember and the base member.
8. The battery container of claim 7, wherein the crossmember comprises an opening forming the gap at a bottom portion of the crossmember adjacent to the base member.
9. The battery container of claim 8, wherein the intumescent material is positioned proximate to the opening in the crossmember through which the set of tubes extends.
10. The battery container of claim 6, wherein the gap comprises a first gap, wherein the intumescent material comprises first intumescent material, wherein the first module bay comprises a first battery module and a second battery module spaced apart from each other, wherein a second gap resides between the first battery module and the cover, wherein second intumescent material is positioned proximate to the second gap, and wherein the second intumescent material is configured to expand when heated to at least partially isolate the first battery module from the second battery module within the first module bay.
11. The battery container of claim 1, wherein each of the two opposing side walls comprises: a first opening on an inner surface of the first module bay; a second opening on an inner surface of the second module bay; and an internal channel coupled to the first and second openings, wherein the internal channel provides egress of heat and pressure from each of the first and second openings to a venting structure.
12. The battery container of claim 1, wherein each of the two opposing side walls comprises: a first venting structure on an inner surface corresponding to the first module bay, wherein the first venting structure enables the egress of heat and pressure from within the first module bay to the environment surrounding the battery container; and a second venting structure on an inner surface corresponding to the second module bay, wherein the second venting structure enables the egress of heat and pressure from within the second module bay to the environment surrounding the battery container.
13. The battery container of claim 1, further comprising an insulation layer positioned between a battery module and the cover.
14. A vehicle system, comprising: a battery pack comprising: two walls; a crossmember extending between the two walls, wherein: the crossmember partially defines a first enclosure and a second enclosure; the first enclosure and the second enclosure are each configured to hold one or more of battery modules; and a gap resides between the first and second enclosures; and intumescent material positioned proximate to the gap and wherein the intumescent material is configured to expand when heated to at least partially seal the gap.
15. The vehicle system of claim 14, wherein the battery pack further comprises a plurality of crossmembers, wherein the plurality of crossmembers partially define a plurality of enclosures.
16. The vehicle system of claim 15, wherein portions of the intumescent material are positioned proximate to a plurality of gaps between the plurality of enclosures, wherein each of the plurality of enclosures is configured to hold one or more of battery modules.
17. The vehicle system of claim 14, wherein each of the two opposing side walls comprises: a first opening on the inner surface corresponding to the first enclosure; a second opening on the inner surface corresponding to the second enclosure; and an internal channel coupled to the first and second openings, which enables egress of heat and pressure from each of the first and second openings to a venting structure.
18. The vehicle system of claim 14, wherein each of the two opposing side walls comprises: a first venting structure on the inner surface corresponding to the first enclosure, wherein the first venting structure enables the egress of heat and pressure from within the first enclosure to the environment surrounding the battery pack; and a second venting structure on the inner surface corresponding to the second enclosure, wherein the second venting structure enables the egress of heat and pressure from within the second enclosure to the environment surrounding the battery pack.
19. The vehicle system of claim 14, further comprising an insulation layer positioned between a battery module and a cover, wherein the cover is positioned above the two opposing side walls and the crossmember.
20. A method for assembling a battery container, the method comprising: providing a battery container structure comprising two walls and a crossmember extending between the two walls, wherein: the crossmember partially defines a first module bay and a second module bay; the first module bay and the second module bay are each configured to hold a plurality of battery modules; and a gap resides between the first and second module bays; applying intumescent material proximate to the gap, wherein the intumescent material is configured to expand when heated to at least partially seal the gap.
Description
BRIEF DESCRIPTIONS OF THE DRAWINGS
[0015] The present disclosure, in accordance with one or more various embodiments, is described in detail with reference to the following figures. The drawings are provided for purposes of illustration only and merely depict typical or example embodiments. These drawings are provided to facilitate an understanding of the concepts disclosed herein and should not be considered limiting of the breadth, scope, or applicability of these concepts. It should be noted that for clarity and ease of illustration these drawings are not necessarily made to scale.
[0016] The above and other objects and advantages of the disclosure may be apparent upon consideration of the following detailed description, taken in conjunction with the accompanying drawings, in which:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] The present disclosure, in accordance with one or more various embodiments, is described in detail with reference to the following figures. The drawings are provided for purposes of illustration only and merely depict typical or example embodiments. These drawings are provided to facilitate an understanding of the concepts disclosed herein and shall not be considered limiting of the breadth, scope, or applicability of these concepts. It should be noted that for clarity and ease of illustration these drawings are not necessarily made to scale.
[0027]
[0028] Battery container 100 is enclosed by opposing side walls 102. Opposing side walls 102 house the internal components of battery container 100 and have a pair of inner surfaces. Between opposing side walls 102 are battery modules 104a-i. Each of battery modules 104a-i comprise a subset of a plurality of battery cells configured to provide power to a vehicle having a set of vehicle systems. Battery container 100 is divided into a plurality of module bays and/or enclosures by crossmembers 106a-f. For example, a first module bay and/or enclosure may be formed by crossmember 106a and crossmember 106b. Bay 110 illustrates an example of a first module bay and/or enclosure as defined by opposing side walls 102 and cross members 106b and 106c. Within the first module bay and/or enclosure, first battery module 104a is positioned. In another example, a second module bay and/or enclosure may be formed by crossmember 106b and crossmember 106c. Within the second module bay and/or enclosure, second battery module 104b and third battery module 104c are positioned. In some embodiments, a plurality of battery modules may be positioned between each pair of crossmembers. Battery container 100 includes intumescent material portions 108a-d. Intumescent material portions 108a-d (represented by dashed lines) are positioned along the length of each of crossmembers 106b-e. In some embodiments, the crossmembers at the opposing ends of battery container 100 are not lined with portions of intumescent material (e.g., crossmember 106a and 106f may not have portions of intumescent material applied along the length of the crossmember). Not shown in
[0029]
[0030] Battery container 200 is enclosed by opposing side walls 202. Opposing side walls 202 house the internal components of battery container 200 and have a pair of inner surfaces. Between opposing side walls 202 are battery modules 204a-i. Each of battery modules 204a-i comprise a subset of a plurality of battery cells configured to provide power to a vehicle having a set of vehicle systems. Battery container 200 may be divided into a plurality of module bays and/or enclosures by crossmembers 206a-f. For example, a first module bay and/or enclosure may be formed by crossmember 206a and crossmember 206b. Bay 212 illustrates an example of a first module bay and/or enclosure as defined by opposing side walls 202 and cross members 206b and 206c. Within the first module bay and/or enclosure, first battery module 204a may be positioned. In another example, a second module bay and/or enclosure may be formed by crossmember 206b and crossmember 206c. Within the second module bay and/or enclosure, second battery module 204b and third battery module 204c are positioned. In some embodiments, a plurality of battery modules is positioned between each pair of crossmembers. Battery container 200 includes intumescent material portions 208a-d. Intumescent material portions 208a-d (represented by dashed lines) are positioned along the length of each of crossmembers 206b-e. In some embodiments, the crossmembers at the opposing ends of battery container 200 are not lined with portions of intumescent material (e.g., crossmember 206a and 206f may not have portions of intumescent material applied along the length of the crossmember).
[0031] Battery container 200 includes a second set of portions of intumescent material that separate each of battery modules 204b, 204d, 204f, and 204h from battery modules 204c, 204e, 204g, and 204i, respectively. Secondary intumescent material portions 210a-d are applied to the inner faces of battery modules 204b-i (e.g., above and/or below the inner faces) and are positioned to prevent the propagation of heat across an individual module bay and/or enclosure as partially defined by each of crossmembers 206b-e. In some embodiments, the secondary intumescent material portions 210a-d are applied to only a single inner battery module face per module bay and/or enclosure (e.g., to the inner face of battery module 204b or 204c). In some embodiments, either of intumescent material portions 208a-d and 210a-d are at least one of an intumescent foam or an intumescent strip. For example, some portions of the walls include uneven tabs and surfaces for where they are connected to either a cover or base member that also partially define the plurality of module bays and/or enclosures. In some embodiments, the more irregular surfaces may be lined with foam which will expand according to the shape of the surroundings and may fill in the irregularities created by the shape of the connecting surfaces between the walls and the cover or base member. In another example, there may be clearly defined level portions where the walls and either the cover or base member connect (e.g., between holes arranged to receive fasteners or pins to secure a wall to either the cover or base member). A strategically sized strip may be placed on the level surface and provide a complete seal based on the shape of the level surface between features.
[0032]
[0033] Battery container 300A is enclosed by opposing side walls 302. Opposing side walls 302 house the internal components of battery container 300A and have a pair of inner surfaces. Between opposing side walls 302 are battery modules 304a-i. Each of battery modules 304a-i comprise a subset of a plurality of battery cells configured to provide power to a vehicle body with a set of vehicle systems. Battery container 300A is divided into a plurality of module bays and/or enclosures by crossmembers 306a-f. For example, a first module bay and/or enclosure may be formed by crossmember 306a and crossmember 306b. Bay 316 illustrates an example of a first module bay and/or enclosure as defined by opposing side walls 302 and cross members 306b and 306c. Within the first module bay and/or enclosure, first battery module 304a is positioned. In another example, a second module bay and/or enclosure may be formed by crossmember 306b and crossmember 306c. Within the second module bay and/or enclosure, second battery module 304b and third battery module 304c are positioned. In some embodiments, a plurality of battery modules is positioned between each pair of crossmembers. Battery container 300A includes intumescent material portions 308a-d. Intumescent material portions 308a-d (represented by dashed lines) are positioned along the length of each of crossmembers 306b-e. In some embodiments, the crossmembers at the opposing ends of battery container 300A are not lined with portions of intumescent material (e.g., crossmember 306a and 306f may not have portions of intumescent material applied along the length of the crossmember).
[0034] Battery container 300A is divided into module bay and/or enclosures by crossmembers 306a-f. Embedded in opposing side walls 302 are venting openings 310a-f. Each of venting openings 310a-f corresponding to an individual module bay and/or enclosure with a pair of battery modules (e.g., battery modules 304b and 304c). A channel is positioned within opposing side walls 302 and venting openings 310a-f enable the egress of heat and pressure generated by battery modules 304b-g out of the respective module bays and/or enclosures and towards exhaust structures 312a and 312b. Exhaust structures 312a and 312b are positioned towards the rear of battery container 300A and are positioned to vent heat propelled through the channels in opposing side walls 302 to the environment surrounding battery container 300A.
[0035]
[0036] Battery container 300B is enclosed by opposing side walls 302. Opposing side walls 302 house the internal components of battery container 300B and have a pair of inner surfaces. Between opposing side walls 302 are battery modules 304a-i. Each of battery modules 304a-i comprise a subset of a plurality of battery cells configured to provide power to a drive unit in a vehicle body with a set of vehicle systems. Battery container 300B is divided into a plurality of module bays and/or enclosures by crossmembers 306a-f. For example, a first enclosure may be formed by crossmember 306a and crossmember 306b. Bay 316 illustrates an example of a first module bay and/or enclosure as defined by opposing side walls 302 and cross members 306b and 306c. Within the first enclosure, first battery module 304a is positioned. In another example, a second enclosure may be formed by crossmember 306b and crossmember 306c. Within the second enclosure, second battery module 304b and third battery module 304c are positioned. In some embodiments, a plurality of battery modules is positioned between each pair of crossmembers. Battery container 300B includes intumescent material portions 308a-d. Intumescent material portions 308a-d (represented by dashed lines) are positioned along the length of each of crossmembers 306b-e. In some embodiments, the crossmembers at the opposing ends of battery container 300B are not lined with portions of intumescent material (e.g., crossmember 306a and 306f may not have portions of intumescent material applied along the length of the crossmember).
[0037] Battery container 300B is divided into enclosures by crossmembers 306a-f. Embedded in opposing side walls 302 are venting structures 314a-g. Each of venting structures 310b-g corresponds to an individual module bay and/or enclosure with a pair of battery modules (e.g., battery modules 304b and 304c). Each of venting structures 310a-g are embedded in opposing side walls 302 such that at least one of each corresponds to the individual module bays and/or enclosures as partially defined by crossmembers 306a-f. In some embodiments, venting structures 310a-g are structured to mechanically fail when exposed to thermal runaway conditions to create an opening corresponding to a module bay and/or an enclosure where an individual battery module may experience thermal runaway conditions to enable the egress of heat and pressure generated by at least one of battery modules 304a-g out of one of venting structures 314a-g. In some embodiments, venting structures 314a-g are also paired with exhaust structures 312a and 312b which are positioned towards the rear of battery container 300A and are positioned to vent heat propelled towards the back end of battery container 300B out to the environment surrounding battery container 300B.
[0038]
[0039] Venting structure 400 may be embedded in wall 402. Wall 402 may represent a wall of a plurality of walls represented by any of opposing side walls 102, 202, or 302 of
[0040] Radial sealing ring 406 may be situated in a groove to create a seal against the sidewalls created by the opening to situate venting structure 400. Radial seal ring 406 may be comprised of any material that is known to seal against the ingress of fluids to a battery pack such as battery containers 100, 200, 300A, and 300B of
[0041]
[0042] Battery container 500A is enclosed by opposing side walls 502. Opposing side walls 502 house the internal components of battery container 500A and have a pair of inner surfaces. Between opposing side walls 502 are spaces for battery modules. Battery container 500A is divided into a plurality of module bays and/or enclosures by crossmembers 504. For example, a first module bay and/or enclosure may be formed by first and second adjacent crossmembers 504. Bay 516 illustrates an example of a first module bay and/or enclosure as defined by opposing side walls 502 and a first pair of cross members 504. Within the first module bay and/or enclosure, a first battery module and second battery module may be positioned. Battery container 500A includes intumescent material portions 506. Intumescent material portions 506 are positioned along the length of each of crossmembers 504. In some embodiments, the crossmembers at the opposing ends of battery container 500A are not lined with portions of intumescent material (e.g., the end most crossmembers may not have portions of intumescent material applied along the length of the crossmember).
[0043] Bottom member 508 further defines each of the module bays and/or enclosures that are at least partially defined by opposing side walls 502 and crossmembers 504. For example, a pair of battery modules may be positioned on top of bottom member 508 for each respective module bay and/or enclosure as partially defined by crossmembers 504 and each of crossmember 504 may be secured to bottom member 508. At the bottom of each of crossmembers 504, there may be gap 510. Gap 510 may provide a channel to position a set of coolant lines or may be used to direct drainage of liquid that accrues throughout battery container 500A. Crossmember 500B is an example of one of crossmembers 504 which includes gap 510 and tubes 512. Positioned proximal to gap 510 is intumescent material portion 514. In some embodiments, intumescent material portion 514 is arranged to prevent the propagation of heat between module bays and/or enclosures by creating a complete seal in gap 510 when exposed to a thermal runaway condition. Venting feature 516 depicts one of either venting openings 310a-f of battery container 300A of
[0044]
[0045] Battery container 600 includes battery module 602 which is positioned above bottom member 604 and is enclosed by crossmembers 606. Crossmembers 606 connect with bottom member 604 to form a module bay and/or an enclosure in which battery module 602 is positioned. Enclosure 614 illustrates an example of a first module bay and/or enclosure as defined in part by cross members 602, bottom member 604, and cover 608. Cover 608 is positioned above crossmembers 606 and battery module 602 to create a closed structure which defines a module bays and/or enclosure of battery container 600. Between the top-most portion of battery module 602 and cover 608 is insulation layer 610. In some embodiments, insulation layer 610 may be a ceramic material structure to prevent the propagation of heat from battery module 602 to cover 608. Positioned on top of cross members 606 and below cover 608 are intumescent material portions 612 that expand when exposed to heat corresponding to a thermal runaway condition (e.g., when battery module 602 overheats).
[0046] A thermal runaway event can manifest within the battery container and/or battery pack as a direct result of the heat generated from battery cells within the battery modules. Between the operation of the vehicle and the current draw from battery cells to power the systems of the vehicle (e.g., 20-30 W continuous power output for 5-15 minutes), the conditions within the battery pack can change such that heat may build up at a significantly faster rate (e.g., build up at such a rate such that the exterior of the battery cell reaches temperatures exceeding 180° C.). For example, the battery cells in battery module 304c of
[0047]
[0048] At 702, a battery container structure comprising two opposing side walls and a crossmember extending between the two opposing side walls is provided. The battery container structure may be any one of or any combination of battery container 100, 200, 300A, 300B, 500A, or 600 of
[0049]
[0050] Vehicle system 800 includes vehicle 802, which corresponds to a motorized vehicle with various suspension and powertrain configurations. Vehicle 802 includes vehicle body 804, which corresponds to a vehicle chassis and other subcomponents configured to interface with a vehicle powertrain. Included in or attached to vehicle body 804 is at least one of battery container 806. Battery container 806 is divided into module bays and/or enclosures 808a and 808b. Battery container 806 may be any one of or any combination of battery containers 100, 200, 300A, 300B, 500A, or 600 of
[0051] Within battery module bay and/or enclosure 808a are battery modules 810a and 810b. Battery modules 810a and 810b include subsets of battery cells 812a and 812b, respectively. In some embodiments, separating each of battery modules 810a and 810b may be intumescent material portion 814b. In some embodiments, each of the separated portions of battery pack bay and/or enclosure 808a may include at least one of venting opening 816a and 816b, venting structure 818a and 818b, or insulation layer 820a and 820b. Each of these features corresponds to venting openings 310a-g of
[0052] Within battery module bay and/or enclosure 808b are battery modules 810c and 810d. Battery modules 810c and 810d include subsets of battery cells 812c and 812d, respectively. In some embodiments, separating each of battery modules 810c and 810d may be intumescent material portion 814c. In some embodiments, each of the separated portions of battery pack bay and/or enclosure 808b may include at least one of venting opening 816c and 816d, venting structure 818c and 818d, or insulation layer 820c and 820d. Each of these features corresponds to venting openings 310a-g of
[0053] The systems and processes discussed above are intended to be illustrative and not limiting. One skilled in the art would appreciate that the actions of the processes discussed herein may be omitted, modified, combined, and/or rearranged, and any additional actions may be performed without departing from the scope of the invention. More generally, the above disclosure is meant to be exemplary and not limiting. Only the claims that follow are meant to set bounds as to what the present disclosure includes. Furthermore, it should be noted that the features and limitations described in any one embodiment may be applied to any other embodiment herein, and flowcharts or examples relating to one embodiment may be combined with any other embodiment in a suitable manner, done in different orders, or done in parallel. In addition, the systems and methods described herein may be performed in real time. It should also be noted that the systems and/or methods described above may be applied to, or used in accordance with, other systems and/or methods.