IP Library Granted Patent US 11,908,989
Granted Patent B2
US 11,908,989 · App. 16/396,122 · Granted Feb 20, 2024

Method and device for producing a prismatic battery cell container

Inventor: Bruno Burkert (Bonn, DE)
Assignee: SCHULER PRESSEN GMBH
H01M10/04B21C1/26B21C23/186H01M50/103H01M50/133B21C1/00B21C23/00
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Quick Facts
Patent No.
US 11,908,989
App. No.
16/396,122
Granted
Feb 20, 2024
Kind
B2
Abstract

The invention refers to a method and an apparatus ( 20 ) for manufacturing of a prismatic unilaterally open battery cell container ( 21 ). First an extruded container ( 41 ) is formed from a slug ( 38 ) by extrusion. The slug ( 38 ) consists of a uniform material. The extruded container ( 41 ) is then formed by a first ironing in a first ironing station ( 25 ) and by a second ironing in a second ironing station ( 28 ). During ironing the container is moved by a respective ironing ram ( 26, 29 ) only partly through an associated die tool ( 27, 30 ) and is reversed when reaching a reversal point (U). After the second ironing a remaining edge ( 82 ) of the obtained intermediate container ( 77 ) is separated, thereby the battery cell container ( 21 ) is obtained.

Claims (42)

1. Method for manufacturing a unilaterally open prismatic battery cell container ( 21 ) comprising the following steps:

providing a slug ( 38 ) having a length that is at least four to five times longer than the width of the slug ( 38 ), the slug ( 38 ) having a larger cross-section area in two length end regions adjacent to short sides than in a center region between the two length end regions,

manufacturing a unilaterally open extruded container ( 41 ) by extrusion of the slug ( 38 ),

first ironing of the extruded container ( 41 ) into an ironed container ( 65 ) in a first ironing station ( 25 ), wherein the extruded container ( 41 ) is partly moved through a first die tool ( 27 ) in working direction (A) and out of the first die tool ( 27 ) opposite the working direction (A) in a retracting direction (R) by a first ironing ram ( 26 ),

second ironing of the ironed container ( 65 ) into an intermediate container ( 77 ) in a second ironing station ( 28 ), wherein the ironed container ( 65 ) is partly moved through a second die tool ( 30 ) in working direction (A) and out of the second die tool ( 30 ) opposite the working direction (A) in a retracting direction (R) by a second ironing ram ( 29 ),

separating an upper edge ( 82 ) of the intermediate container ( 77 ) for forming the battery cell container ( 21 ).

2. Method according to claim 1 ,

characterized in that the extruded container ( 41 ) comprises a polygonal bottom ( 42 ), the dimension thereof in a direction (L) is at least about a factor 4 to 7 larger than in another direction (B), wherein the two directions (L, B) are orientated rectangular to each other.

3. Method according to claim 2 ,

characterized in that the bottom ( 42 ) of the extruded container ( 41 ) comprises four corner regions ( 45 ), two length sides and two width sides.

4. Method according to claim 3 ,

characterized in that the extruded container ( 41 ) comprises adjacent to each length side of the bottom ( 42 ) one length side wall ( 44 ) that oppose each other and that camber away from each other.

5. Method according to claim 4 ,

characterized in that the distance between the length side walls ( 44 ) in the middle between the corner regions ( 45 ) is at least 5% to 10% greater than the distance in the corner regions ( 45 ).

6. Method according to claim 3 ,

characterized in that the extruded container ( 41 ) comprises adjacent to each length side of the bottom ( 42 ) a length side wall ( 44 ) and adjacent to each width side a width side wall ( 43 ) and that the upper edge of a length side wall ( 44 ) and/or a width side wall ( 43 ) has a curved extension, such that the height (z) of the respective side wall ( 43 , 44 ) increases starting from the corner region toward a middle section.

7. Method according to claim 6 ,

characterized in that a maximum height (zmax) of the side wall ( 43 , 44 ) is 5% to 20% or 7% to 17% larger than a minimum height (zmin).

8. Method according to claim 6 ,

characterized in that a thickness (sb) of the bottom ( 42 ) of the extruded container ( 41 ) is smaller than a wall thickness (sw) of the side walls ( 43 , 44 ) of the extruded container ( 41 ).

9. Method according to claim 7 ,

characterized in that a target value for a wall thickness (sw) of the side walls ( 43 , 44 ) of the extruded container ( 41 ) is between 0.5 mm and 1.5 mm or between 0.7 mm and 1.1 mm.

10. Method according to claim 9 ,

characterized in that the wall thickness (sw) of the side walls ( 43 , 44 ) of the extruded container ( 41 ) deviates at most by 0.3 mm or at most by 0.1 mm from a pre-determined target value.

11. Method according to claim 1 ,

characterized in that lubricant is supplied on the extruded container ( 41 ) before the first ironing.

12. Method according to claim 1 ,

characterized in that during the first ironing and/or during the second ironing a rest step ( 62 ) with a pre-defined height distance (z) from a bottom ( 66 , 78 ) is formed in side walls of the ironed container ( 65 ) and/or the intermediate container ( 77 ).

13. Method according to claim 12 ,

characterized in that the first ironing ram ( 26 ) and/or the second ironing ram ( 29 ) comprise a protrusion ( 60 ) for forming a rest step ( 62 ) that is arranged with the height distance (z) away from an end face ( 50 ) of the respective ironing ram ( 26 , 29 ).

14. Method according to claim 8 ,

characterized in that the wall thickness (sw) of the side walls of the extruded container ( 41 ) is reduced between 5% and 30% during the first ironing.

15. Method according to claim 14 ,

characterized in that the wall thickness (sw) of the side walls of the extruded container ( 41 ) is reduced between 10% and 20% during the first ironing.

16. Method according to claim 1 ,

characterized in that a wall thickness (sw) of the side walls ( 67 , 68 ) of the ironed container ( 65 ) is reduced by less than 1% during the second ironing.

17. Device ( 20 ) for manufacturing a unilaterally open prismatic battery cell container ( 21 ), comprising:

an extrusion press station ( 22 ) comprising a press ram ( 23 ) and a unilaterally open press mold ( 24 ),

a first ironing station ( 25 ), comprising a first ironing ram ( 26 ) moveable in a working direction (A) and opposite the working direction (A) in a retracting direction (R) and a first die tool ( 27 ),

a second ironing station ( 28 ), comprising a second ironing ram ( 29 ) moveable in working direction (A) and in retracting direction (R) and a second die tool ( 30 ),

and a separating station ( 31 ), comprising a separating device ( 32 ) for separating an edge ( 82 ) from an intermediate container ( 77 ),

wherein the device ( 20 ) is configured to perform the method according to claim 1 .

Assignments (2)
CHANGE OF NAME Recorded Jul 31, 2025
From: SCHULER PRESSEN GMBH
To: ANDRITZ SCHULER PRESSEN GMBH
Reel/Frame 071889/0038 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2019
From: BURKERT, BRUNO
To: SCHULER PRESSEN GMBH
Reel/Frame 049009/0593 →
Priority Claims (1)
DE 10 2016 121 089.7 · Nov 4, 2016 · national
Continuity (2)
Continuation In Part PCTEP2017077723 · Oct 30, 2017
Related Publication 20190252647A1 · Aug 15, 2019