Energy storage system having structure capable of dissipating heat to adjacent battery modules
11581593 ยท 2023-02-14
Assignee
Inventors
Cpc classification
H01M10/653
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
H01M10/6552
ELECTRICITY
H01M10/617
ELECTRICITY
H01M50/204
ELECTRICITY
H01M10/6551
ELECTRICITY
International classification
H01M10/653
ELECTRICITY
H01M10/6552
ELECTRICITY
Abstract
An energy storage system includes a pair of rack frames spaced apart from each other and arranged side by side; a plurality of L brackets fastened to the rack frames; a plurality of battery modules respectively placed on a pair of L brackets facing each other to form a plurality of layers along a longitudinal direction of the rack frame; a first heat transfer member interposed between the battery module and the L bracket; and a second heat transfer member interposed between the rack frame and the L bracket.
Claims
1. An energy storage system, comprising: a pair of rack frames spaced apart from each other and arranged side by side; a plurality of L brackets fastened to the rack frames; a plurality of battery modules, each of the plurality of battery modules respectively placed on a pair of the plurality of L brackets facing each other to form a plurality of layers along a longitudinal direction of the rack frame; a first heat transfer member interposed between each of the plurality of battery modules and each of the plurality of L brackets; and a second heat transfer member interposed between the rack frame and each of the plurality of L brackets.
2. The energy storage system according to claim 1, wherein the first heat transfer member is a heat pipe or a heat transfer sheet.
3. The energy storage system according to claim 2, wherein the first heat transfer member is a graphite sheet.
4. The energy storage system according to claim 1, wherein the second heat transfer member is a thermal interface material (TIM).
5. The energy storage system according to claim 1, wherein a lower surface and a side surface of the battery module are in close contact with the L bracket.
6. The energy storage system according to claim 5, wherein an entirety of the side surface of the battery module is in close contact with the L bracket.
7. The energy storage system according to claim 1, wherein the rack frame has an accommodation groove configured to accommodate the second heat transfer member and the L bracket.
8. The energy storage system according to claim 7, wherein a surface of a portion of the L bracket inserted into the accommodation groove and a surface of the rack frame are in a same plane.
9. The energy storage system according to claim 8, wherein the first heat transfer member is interposed both between the L bracket and the battery module and between the rack frame and the battery module.
10. The energy storage system according to claim 1, wherein battery modules disposed in adjacent layers are spaced apart from each other directly and indirectly.
11. The energy storage system according to claim 1, wherein among a pair of battery modules adjacent to each other, a first battery module located at a lower portion is in close contact with the L bracket that supports a second battery module located at an upper portion.
12. The energy storage system according to claim 11, wherein a heat blocking member is interposed between the pair of battery modules.
Description
DESCRIPTION OF DRAWINGS
(1) 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.
(2)
(3)
(4)
(5)
(6)
BEST MODE
(7) Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Prior to the description, it should be understood that the terms used in the specification and the appended claims should not be construed as limited to general and dictionary meanings, but interpreted based on the meanings and concepts corresponding to technical aspects of the present disclosure on the basis of the principle that the inventor is allowed to define terms appropriately for the best explanation. Therefore, the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the disclosure, so it should be understood that other equivalents and modifications could be made thereto without departing from the scope of the disclosure.
(8) Referring to
(9) Although not shown in the figures, the battery module 10 may be implemented to include a plurality of battery cells and a module case accommodating the plurality of battery cells. As a battery cell of the battery module 10, for example, a pouch-type battery cell may be applied. However, the type of the battery cell applied to the present disclosure is not limited thereto, and various types of battery cells such as rectangular cells and cylindrical cells may be applied without limitation as long as they correspond to a secondary battery that may be charged and discharged.
(10) In addition, the plurality of battery cells included in the battery module 10 may be electrically connected to each other in series, in parallel, or in a mixed way. The battery module 10 may be provided in a substantially rectangular parallelepiped shape so as to be easily stacked in the battery rack 20 and maximize energy density during stacking. That is, the module case of the battery module 10 may have a substantially rectangular parallelepiped shape and may be made of, for example, a metal material such as aluminum for easy heat transfer, as will be described later.
(11) The battery rack 20 accommodates a plurality of battery modules 10 in a space formed therein, and may be implemented to include a pair of rack frames 21 and an L bracket 22.
(12) The pair of rack frames 21 are spaced apart from each other with a greater interval than the width of the battery module 10 and placed side by side. As explained later, the rack frame 21 should be able to transfer heat of the battery module 10, which is a starting point of heat and/or ignition, well along a longitudinal direction of the rack frame 21 in order to prevent thermal runaway from rapidly expanding from some battery module 10 to adjacent battery modules.
(13) In consideration of the function of the rack frame 21, the rack frame 21 may be made of a metal material, for example aluminum or steel, which has excellent conductivity and a certain level of rigidity.
(14) The L bracket 22 is a bracket having an approximately L shape. The L bracket is fastened by bolting or the like on the facing surfaces of the pair of rack frames 21, and a plurality of L brackets 22 are provided to be spaced apart by a predetermined distance along the longitudinal direction of the rack frame 21. In this case, the distance between the pair of L brackets 22 adjacent to each other in a vertical direction is determined in consideration of the height of the battery module 10 (a vertical length based on
(15) Specifically, the distance between the pair of L brackets 22 adjacent to each other in the vertical direction is determined such that the battery modules 10 adjacent to each other do not contact each other and also the battery module 10 located at a lower portion among the pair of battery modules 10 does not contact the L bracket 22 that supports the battery module 10 located at an upper portion. That is, the battery modules 10 disposed in adjacent layers are spaced apart from each other directly and indirectly. This is to prevent heat from being easily transferred between the battery modules 10 adjacent to each other when heat and/or ignition occurs in some battery modules 10.
(16) Since the L bracket 22 is included in a path through which heat generated in some battery modules 10 is dissipated, like the rack frame 21, the L bracket 22 may be made of a material identical or similar to the rack frame 21 for efficient heat transfer.
(17) The pair of L brackets 22, which are respectively fastened to the pair of rack frames 21 and positioned at the same height, support one battery module 10. Accordingly, the battery modules 10 are placed on the L brackets 22 forming different layers to form a plurality of battery module layers along the longitudinal direction of the rack frame 21.
(18) Even though
(19) Referring to
(20) The second heat transfer member 40 is interposed between the rack frame 21 and the L bracket 22 to absorb heat generated at the battery module 10 and transferred from the first heat transfer member 30 and the L bracket 22 and transfer the heat to the rack frame 21 well. Considering the function of the second heat transfer member 40, a thermal interface material (TIM) may be applied as the second heat transfer member 40. In addition, as the TIM, various materials having excellent thermal conductivity may be applied, and, for example, a thermal grease may be applied.
(21) The first heat transfer member 30 and the second heat transfer member 40 not only have high thermal conductivity but also maximize a contact area between metal objects, namely a contact area between the surface of the battery module 10 and the L bracket 22 and a contact area between the L bracket 22 and the rack frame 21.
(22) Referring to
(23) Meanwhile, as shown in
(24) Referring to
(25) If the L bracket 22, the first heat transfer member 30 and the second heat transfer member 40 have an extended length to cover the entire side surface of the battery module 10, the battery module 10 may be stably supported, and also the heat transfer efficiency may be maximized according to the increase of the contact area.
(26) Referring to
(27) In addition, the first heat transfer member 30 has an extended length to cover both the surface of the rack frame 21 and the surface of the L bracket 22 forming the same plane. That is, the first heat transfer member 30 is interposed both between the L bracket 22 and the side surface of the battery module 10 and between the rack frame 21 and the side surface of the battery module 10.
(28) If a portion of the L bracket 22 and a portion of the second heat transfer member 40 are accommodated in the accommodation groove formed at the rack frame 21, heat generated from the battery module 10 may be transferred to the rack frame 21 more efficiently.
(29) As described above, the energy storage system according to an embodiment of the present disclosure has a structure forming a plurality of layers in which, when heating and/or ignition occurs in some of the battery modules 10 disposed in the battery rack 20, heat is not directly transferred to adjacent battery modules 10 but the heat absorbed through the rack frame 21 is evenly distributed to the battery modules 10 arranged in several layers. That is, the energy storage system according to an embodiment of the present disclosure has a structure in which heat may be rapidly dissipated along the arrow direction shown in
(30) Next, referring to
(31) The energy storage system according to another embodiment of the present disclosure has a difference in distance between adjacent battery modules 10 compared to the energy storage system according to an embodiment of the present disclosure described above, and a heat blocking member 50 is additionally applied. The other components are substantially the same.
(32) Thus, in describing the energy storage system according to an embodiment of the present disclosure, only a feature that is different from the former embodiment will be intensively described, and a feature identical to the former embodiment will not be described in detail.
(33) Referring to
(34) In this case, since the battery modules 10 adjacent to each over in a vertical direction becomes very close to each other, heat may be directly transferred rapid between the battery modules 10. Thus, in order to prevent the rapid heat transfer, a heat blocking member 50 is applied between the battery modules 10 adjacent to each over in a vertical direction. The heat blocking member 50 may employ a conventional heat blocking member made of a vulcanized fiber sheet.
(35) Meanwhile, even though
(36) That is, even in the energy storage system according to another embodiment of the present disclosure, the structure in which the side surface of the battery module 10 is in close contact with the first heat transfer member 30, and/or the structure in which the entire side surface of the battery module 10 is covered by the first heat transfer member 30, and/or the structure in which the second heat transfer member 40 and the L bracket 22 are accommodated in the accommodation groove formed at the rack frame 21 may be applied, as in the former embodiment.
(37) The present disclosure has been described in detail. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the disclosure, are given by way of illustration only, since various changes and modifications within the scope of the disclosure will become apparent to those skilled in the art from this detailed description.