IP Library Granted Patent US 12,374,735
Granted Patent B2
US 12,374,735 · App. 17/639,146 · Granted Jul 29, 2025

Temperature control apparatus

Inventors: Kilian Menzl (Linz, AT); Peter Dobusch (Grünbach, AT); Gerhard Waldschütz (Freistadt, AT)
Assignee: John Deere Electric Powertrain LLC
H01M10/617H01M10/651H01M10/6557H01M10/6566H01M10/6568H01M50/213H01M50/289H01M10/643
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Quick Facts
Patent No.
US 12,374,735
App. No.
17/639,146
Granted
Jul 29, 2025
Kind
B2
Abstract

A temperature-control apparatus has individual battery cells combined to form a module and arranged within a flow duct through which a temperature-control fluid flows in a main flow direction. Temperature regulation of a temperature-control apparatus is improved with a constant packing density of the battery cells despite small amounts of temperature-control fluid, with a flow guiding surface provided for each battery cell of a group. The flow guiding surface is spaced apart from a lateral section of the battery cell and has in each case an inlet section and an outlet section that are both substantially parallel to the lateral section. A diffuser section is arranged between the inlet section and the outlet section, the diffuser section-being set back with respect to the inlet section and the outlet section and with respect to the lateral section.

Claims (31)

1. A temperature-control apparatus comprising:

individual battery cells that are combined to form a module and that are arranged within a flow duct through which a temperature-control fluid flows in a main flow direction;

wherein a flow guiding surface is provided for each battery cell of a group of said battery cells;

said flow guiding surfaces each being spaced laterally apart from a lateral section of the associated battery cell; and

each of the flow guiding surfaces having a respective inlet section and a respective outlet section, wherein the inlet section and the outlet section are both spaced laterally from the associated lateral section and each face substantially normally toward a respective surface portion of the associated lateral section, and

a respective diffuser section that is arranged between the inlet section and the outlet section, said diffuser section being set back away from the associated lateral section with respect to the inlet section and the outlet section.

2. The temperature-control apparatus according to claim 1 , wherein a distance between the lateral section and the diffuser section is 5 to 30% greater than a distance between the lateral section and the inlet section or the outlet section.

3. The temperature-control apparatus according to claim 1 , wherein the flow guiding surfaces of adjacent battery cells form a flow divider.

4. The temperature-control apparatus according to claim 3 , wherein a group of flow dividers forms a further flow guiding surface that extends substantially parallel to an inner wall of the flow duct.

5. The temperature-control apparatus according to claim 1 , wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections.

6. The temperature-control apparatus according to claim 5 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

7. A temperature-control apparatus comprising:

individual battery cells that are combined to form a module and that are arranged within a flow duct through which a temperature-control fluid flows in a main flow direction;

wherein a flow guiding surface is provided for each battery cell of a group of said battery cells, said flow guiding surfaces each being spaced apart from a lateral section of the associated battery cell and each having an inlet section and an outlet section that are both substantially parallel to the lateral section, and

wherein a diffuser section is arranged between the inlet section and the outlet section, said diffuser section being set back with respect to the inlet section and the outlet section and with respect to the lateral section;

wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections; and

wherein the fluid connections have an oval cross-section that is flattened in the main flow direction.

8. The temperature-control apparatus according to claim 2 , wherein the flow guiding surfaces of adjacent battery cells form a flow divider.

9. The temperature-control apparatus according to claim 8 , wherein a group of flow dividers forms a further flow guiding surface that extends substantially parallel to an inner wall of the flow duct.

10. The temperature-control apparatus according to claim 2 , wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections.

11. The temperature-control apparatus according to claim 3 , wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections.

12. The temperature-control apparatus according to claim 4 , wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections.

13. The temperature-control apparatus according to claim 8 , wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections.

14. The temperature-control apparatus according to claim 9 , wherein the flow duct has at least two fluid connections on each of two edge sections opposite one another in the main flow direction, wherein at least one of said battery cells is arranged between the at least two fluid connections of one of the edge sections.

15. The temperature-control apparatus according to claim 10 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

16. The temperature-control apparatus according to claim 11 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

17. The temperature-control apparatus according to claim 12 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

18. The temperature-control apparatus according to claim 13 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

19. The temperature-control apparatus according to claim 14 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

20. The temperature-control apparatus according to claim 7 , wherein between one of the fluid connections and two of the battery cells adjacent to the fluid connection a flow guiding element is provided that has a flow guiding surface convexly shaped towards the fluid connection.

21. The temperature-control apparatus according to claim 1 , wherein three of the battery cells are grouped together in a circular pack of three, and three of the flow guiding surfaces that are associated therewith together form a flow divider between the three of the battery cells, said flow divider being formed by no more than three of the flow guiding surfaces.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2023
From: KREISEL ELECTRIC GMBH & CO. KG.
To: JOHN DEERE ELECTRIC POWERTRAIN LLC
Reel/Frame 063367/0229 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE NAME PREVIOUSLY RECORDED AT REEL: 062104 FRAME: 0676. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT . Recorded Dec 19, 2022
From: DOBUSCH, PETER; WALDSCHÜTZ, GERHARD
To: KREISEL ELECTRIC GMBH & CO. KG.
Reel/Frame 062153/0544 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S ADDRESS PREVIOUSLY RECORDED AT REEL: 061843 FRAME: 0208. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Dec 9, 2022
From: MENZL, KILIAN
To: KREISEL ELECTRIC GMBH & CO. KG.
Reel/Frame 062104/0233 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S ADDRESS PREVIOUSLY RECORDED AT REEL: 061843 FRAME: 0040. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Dec 9, 2022
From: DOBUSCH, PETER; WALDSCHÜTZ, GERHARD
To: HP3 REAL GMBH
Reel/Frame 062104/0676 →
Priority Claims (1)
AT A50744/2019 · Aug 28, 2019 · national
Continuity (1)
Related Publication 20220320621A1 · Oct 6, 2022
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