LOW-PROFILE BATTERY MODULE COOLING
20230079031 · 2023-03-16
Inventors
Cpc classification
H01M50/509
ELECTRICITY
H01M50/258
ELECTRICITY
H01M50/249
ELECTRICITY
H01M10/6568
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
H01M50/213
ELECTRICITY
H01M2220/20
ELECTRICITY
H01M10/6566
ELECTRICITY
International classification
H01M10/6568
ELECTRICITY
H01M50/213
ELECTRICITY
H01M50/258
ELECTRICITY
Abstract
Disclosed herein are battery modules including at least one battery assembly in turn contains a plurality of cells with two poles at opposing ends and arranged laterally in one row next to each other so that a pole of a cell is next to a pole of a neighbouring cell, a plurality of interconnectors connecting a pole of a cell to pole of a neighbouring cell, a cell holder arranged on at least one side of the plurality of laterally arranged cells so as to position the cells at a mutual distance and to obstruct at least partially a fluid flow in a direction between the two poles at opposing ends of each cell, the battery module further including a housing arranged to accommodate the battery assembly and forming two continuous spaces around each row of poles allowing for fluid flow.
Claims
1. A battery module, comprising at least one battery assembly comprising: a plurality of cells with two poles at opposing ends and arranged laterally in one row next to each other so that a pole of a cell is next to a pole of a neighbouring cell; a plurality of interconnectors connecting a pole of a cell to pole of a neighbouring cell; and a cell holder arranged on at least one side of the plurality of laterally arranged cells so as to position the cells at a mutual distance and to obstruct at least partially a fluid flow in a direction between the two poles at opposing ends of each cell, and wherein the battery module further comprises a housing arranged to accommodate the battery assembly and forming two continuous spaces around each row of poles allowing for fluid flow.
2. The battery module according to claims 1, wherein a continuous space around each row of poles forms a flow path for a cooling fluid along a row of poles that are arranged mutually next to each other.
3. The battery module according to claim 1, wherein a continuous space covers a part of a cell extending from a pole toward the opposing pole.
4. The battery module according to claim 1, wherein the housing comprises for each continuous space an inlet opening and an outlet opening at opposing ends of said housing.
5. The battery module according to claim 1, further comprising a flow guiding portion arranged in said spaces arranged for limiting a variation in a cross section along said fluid flow.
6. The battery module according to claim 5, wherein said flow guiding portion comprises a flow guiding element extending from an inner wall of said housing into the space between two neighbouring cells.
7. The battery module according to claim 6, wherein said flow guiding portion comprises one of said flow guiding elements for each pair of neighbouring cells.
8. The battery module according to claim 7, wherein said flow guiding portion comprises flow guiding elements for each pair of neighbouring cells on both sides.
9. The battery module according to claim 1, comprising a further battery assembly arranged so that the main axes of its cells lie substantially in the same plane as the main axes of the cells of said battery assembly, and wherein the housing forms continuous spaces around each row of poles allowing for fluid flow.
10. The battery module according to claim 9, wherein the housing forms a first continuous space around one row of poles of the cells of the battery assembly, a second continuous space around one row of poles of the cells of the further battery assembly, and a central continuous space around the rows of the respective other poles of the cells of the battery assemblies.
11. The battery module according to claim 10, comprising an inlet to said first continuous space, an inlet to said second continuous space, and an outlet of said central continuous space on one side of the housing, and an outlet of said first continuous space, an outlet of said second continuous space, and an inlet to said central continuous space on an opposing side of the housing.
12. The battery module according to claim 9, wherein both battery assemblies are low-voltage battery assemblies being connected in series so as to form a high-voltage battery module.
13. The battery module according to claim 1, wherein an electric module terminal is arranged in the vicinity of an opening in fluid communication with a continuous space, preferably not farther away than 15 mm.
14. The battery module according to claim 1, wherein said housing comprises a base housing and a sealed lid.
15. The high voltage battery module according claim 1, wherein the cell holder is from one piece and comprises a plurality of recesses, each one configured to accommodate at least in part a respective cell.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Embodiments of the present invention, which are presented for better understanding the inventive concepts but which are not to be seen as limiting the invention, will now be described with reference to the figures in which: [0010]
DETAILED DESCRIPTION
[0015]
[0016] A plurality of interconnectors 120 are arranged to connect a pole of a cell to pole of a neighbouring cell, for example as shown poles 112-2 and 112-3. A cell holder 130-1 is arranged on at least one side of the plurality of laterally arranged cells so as to position the cells at a mutual distance and to obstruct at least partially a fluid flow in a direction B between the two poles at opposing ends of each cell. Said direction B may be perpendicular to direction A. In further embodiments there may be arranged a plurality of voltage sensing connectors and/or temperature sensors on or in said cell holder so as to not obstruct fluid flow. For example, the mentioned connectors and/or sensors may forma flush surface with the cell holder or may be moulded in the cell holder.
[0017] A further cell holder 130-2 may be arranged from the other side. The battery module's housing 10 is arranged to accommodate the battery assembly 100 and forming two continuous spaces around each row of poles allowing for fluid flow, which is explained in greater detail in the following. The further cell holder may be arranged on an opposing side of the cell holder and substantially closing fluid flow in a direction B between the two poles at opposing ends of each cell. For this purpose the tow cell holders may comprise matching/fitting portions at an area where they meet so as to seal fluid flow and/or ensure a matching positioning.
[0018]
[0019] As shown, the battery module thus comprises continuous spaces 21, 22 around each row of poles forms a flow path for a cooling fluid along a row of poles that are arranged mutually next to each other. The housing 10 or generally the battery module 1 can comprise for each continuous space 21, 22 an inlet opening 211, 221 and an outlet opening 212, 222 at respectively opposing ends of the housing 10.
[0020]
[0021] In a further embodiment, there are provided openings to each continuous space that maybe specifically designed or designated as inlets and, respectively, outlets. For example, an inlet may have a first fluid connector that is different and effectively not compatible with a fluid connector of an outlet. Thus, hoses or tubes for guiding a cooling fluid may be connected only in a specific fashion so that a particular flow direction of a cooling liquid can be ensured. In addition to this or alternatively thereto, there may be provided one-way valves that allow only for the appropriate fluid flow direction corresponding on the arrangement upstream or downstream an inlet or outlet. Such valves may comprise a correspondingly orienteered valve leaf or diaphragm.
[0022] As shown in
[0023] Alternatively, the central continuous space 23 may be arranged with an effective flow cross-section that essentially equals the sum of the effective flow cross section of the first continuous space and the effective flow cross section of the second continuous space. In this way, roughly the same amount of cooling liquid can be conveyed—at approximately similar pressures—through the central continuous space 23 as through the first and second continuous space together.
[0024] The specific directions of flow and/or the specific configurations regarding the respective effective flow cross sections may provide the advantage that most or all of the individual cells are cooled to a similar extent. This, in turn, can ensure that the temperature variation amongst all or most cells is brought to a minimum. For example, it can be advantageous if the temperature variation is less than 5 K.
[0025] In a further embodiment both battery assemblies 100, 200 are low-voltage battery assemblies for that its respectively constituting cells are connected in series to provide a relatively low voltage equalling for example the nominal voltage of a single cell multiplied by the number n of cells in the battery assembly. The battery assemblies 100, 200 can be in turn connected in series so as to form a high-voltage battery module with a relatively high voltage equalling essentially the sum of the voltage of the battery assemblies. For this purpose, a bar connector 122 may be provided to establish the (series) connection of the battery assemblies.
[0026] Further, the battery module 2—or any other battery module according to the embodiments of the present invention—may comprise one or more electric module terminals 123-1, 123-2. These electric module terminals 123-1, 123-2 can be arranged in the vicinity of an opening in fluid communication with a continuous space, preferably not farther away than 15 mm. For example, a first electric module terminal 123-1 is arranged in the vicinity of outlet 212, and a first electric module terminal 123-2 is arranged in the vicinity of outlet 222. In this configuration, relatively warm cooling liquid is used to cool the terminals. If an enhanced cooling of the terminals is desired, the flow direction may be modified so that the terminals are arranged in the vicinity of corresponding inlets.
[0027] Specifically, in one embodiment of the present invention, a battery module comprises at least one battery assembly which in turn comprises a plurality of cells with two poles at opposing ends and arranged laterally in one row next to each other so that a pole of a cell is next to a pole of a neighbouring cell, a plurality of interconnectors connecting a pole of a cell to pole of a neighbouring cell, and a cell holder arranged on at least one side of the plurality of laterally arranged cells so as to position the cells at a mutual distance and to obstruct at least partially a fluid flow in a direction between the two poles at opposing ends of each cell. The battery module according to this embodiment further comprises a housing and an electric module terminal. The housing that is arranged to accommodate the battery assembly and forming two continuous spaces around each row of poles allowing for fluid flow. The electric module terminal is provided for establishing electric connection to the module and may carry substantial current, especially in the context of electric vehicles. The electric module terminal in this embodiment is arranged in the vicinity of an opening in fluid communication with a continuous space as mentioned above. Further there may be provided means for guiding a fluid flowing through said opening toward or even around an internal part of the electric module terminal that is located inside the module housing.
[0028] Generally, the battery module may comprise a housing that in turn comprises a base housing and a sealed lid. In this way, the battery assemblies can be inserted into the housing and the lid can be closed and sealed. At least one cell holder can also form one part with the housing. For example, a first cell holder forms part of the base housing and/or a second cell holder forms part of the lid. Generally, a cell holder can be from one piece and may comprises a plurality of recesses, each one configured to accommodate at least in part a respective cell.
[0029]
[0030] Specifically, there is shown in
[0031] A flow guiding portion 41 is shown in the form of a protrusion and therefore constitutes a flow guiding element extending from an inner wall of said housing, e.g. wall 10t, 10b, into the space between two neighbouring cells 110.
[0032] Preferably, the flow guiding portion comprises one of said flow guiding elements 41 for each pair of neighbouring cells. In the shown example, there is also the generally optional configuration of the flow guiding portion comprising flow guiding elements for each pair of neighbouring cells on both sides, i.e. on both a lower side toward the bottom part 10b of the housing as well as an upper side toward the top part 10t of the housing. Preferably, the flow guiding elements are arranged so that their cross section is symmetric on these both sides with a symmetry axis along direction A at a centre of each cell.
[0033]
[0034] Specifically, the flow guiding portion comprises elements 41′ of
[0035]
[0036] In
[0037] Although detailed embodiments have been described, these only serve to provide a better understanding of the invention defined by the independent claims and are not to be seen as limiting.