Battery comprising a module and a heat-exchange plate
The battery design addresses the challenge of fixing heat exchange plates and modules by using a centered, deformity-resistant attachment method with a protrusion and clamping device, ensuring precise positioning and thermal conductivity.
Patent Information
- Application Number
- PCT/FR2025/050178
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-03
- Filing Date
- 2025-03-03
- Publication Date
- 2025-10-09
AI Technical Summary
Existing battery technologies face challenges in efficiently fixing heat exchange plates and modules to the casing, leading to increased complexity and uncontrolled clearances, which affect positioning and thermal conduction efficiency.
A battery design that integrates a heat exchange plate with a hollow part and a solid part, fixed using a protrusion and clamping device, allowing centered placement and secure attachment without deformation, and includes a thermally conductive means to manage geometric dispersions.
Ensures precise positioning and secure attachment of the heat exchange plate and module, maintaining thermal conductivity and reducing deformation risks, thereby enhancing assembly efficiency and thermal contact.
Smart Images

Figure FR2025050178_09102025_PF_FP_ABST
Abstract
Description
[0001] DESCRIPTION
[0002] TITLE: BATTERY COMPRISING A MODULE AND A HEAT EXCHANGE PLATE
[0003]
[0001] The present invention claims priority from French application No. 2403429 filed on 03.04.2024, the content of which (text, drawings and claims) is incorporated herein by reference.
[0004]
[0002] The present invention relates to a battery, and more particularly to a battery of an electrically powered vehicle powering an electric motor.
[0005]
[0003] Throughout the text of this document, the term “battery” will be understood to mean an assembly comprising battery modules containing electrochemical energy storage cells. These modules comprise a strapping holding the stacked cells in compression against each other, and each have an outer casing comprising interfaces for fixing this module in a casing, this casing possibly including at least part of the strapping. This battery possibly comprises electrical or electronic means for managing the electrical energy of these modules. These modules are grouped in the casing or tray and form a battery block, called a battery, this battery block often being designated by the English expression “battery pack”, this casing generally containing a mounting interface, and connection terminals.
[0006]
[0004] Furthermore, the term electrochemical energy storage cell will be understood throughout the text of this document to mean cells generating current by chemical reaction, for example of the lithium-ion (or Li-ion) type, of the Ni-Mh, or Ni-Cd or even lead type.
[0007]
[0005] In this field, it is known to cool or heat the battery modules by a plate traversed by a heat transfer fluid. This plate is in contact by thermal conduction with the modules through a heat exchange surface. This plate must also be positioned and fixed in the casing.
[0008]
[0006] In general, the module fixing interface and the cooling plate fixings are independent, which increases the number of fixings and the complexity of assembling the battery. To solve this problem, common fixings have already been considered, but these create new problems, in particular problems of positioning the modules and / or the plates relative to the casing, or of the plate relative to the module, and consequently uncontrolled clearances, in particular between the plate and the module.
[0009]
[0007] The aim of the invention is to remedy this problem. To this end, the invention relates to an electrical energy storage battery comprising:
[0010] - a casing having an internal face for supporting a module,
[0011] - the electrical energy storage module, comprising a heat exchange surface, and a sleeve for fixing the module to the internal face,
[0012] - a heat exchange plate by conduction with the heat exchange surface, inserted between this heat exchange surface and the internal support face, this plate comprising in its thickness a hollow part intended to receive a heat transfer fluid, and a solid part crossed by a hole over its entire thickness,
[0013] - a means for fixing the module to the internal face, comprising on the one hand a protrusion of the internal support face and extending through the hole and partly into the bore of the sleeve, this protrusion comprising a first thread, and on the other hand a clamping device comprising a clamping head extended by a threaded body cooperating by screwing with the first thread, this sleeve comprising a first end bearing on the solid part, and a second, opposite end, receiving the support of the clamping head, the threaded body penetrating the sleeve by the second end.
[0014]
[0008] Thus the protrusion makes it possible to center the heat exchange plate relative to the casing by passing through the hole, but also makes it possible to center the module relative to the casing by penetrating the fixing sleeve. In addition, the clamping head of the clamping device makes it possible to press the fixing sleeve against the casing, the heat exchange plate being sandwiched between the internal face and the first end of the fixing sleeve. This clamping device therefore clamps the fixing sleeve and the solid part of the heat exchange plate: thus whatever the clamping force, the heat exchange plate is not deformed.
[0015]
[0009] According to one embodiment of the invention, the protrusion is a second sleeve whose bore comprises the first thread. This second sleeve is for example a smooth nut with a flange, this flange bearing and / or welded on a face of the casing opposite the internal support face. The smooth part of the nut is configured so as to center the exchange plate and the module relative to the casing.
[0016]
[0010] According to one embodiment of the invention, the clamping device is a screw. Thus the clamping head is the screw head, and the threaded body of this screw is screwed into the thread of the smooth nut with collar.
[0017]
[0011] According to one embodiment of the invention, the protrusion is an added element fixed to the casing. For example, the added element is welded to the casing.
[0018]
[0012] According to one embodiment of the invention, the internal face rests on the cooling plate only on the solid part. This arrangement ensures that not only will the plate not be deformed during screwing, but also ensures that the hollow part is not in contact with the casing: this hollow part, the most fragile, will not be impacted by a shock causing a deformation of the casing because a space will remain between this hollow part and the casing and allowing the shock to be absorbed without deforming the plate.
[0019]
[0013] According to one embodiment of the invention, the internal face is a double bottom of the casing, or alternatively a boss of the casing.
[0020]
[0014] This double bottom is not necessarily over the entire surface of the bottom of the casing. This double bottom is for example located around the protrusion, in particular this double bottom is a stiffening crosspiece of the internal support face, in particular a casing bottom crosspiece.
[0021]
[0015] According to one embodiment of the invention, this battery comprises a thermally conductive means for filling a preserved space between the heat exchange surface and the heat exchange plate. This filling means is known to those skilled in the art, and is for example in the form of a flexible mat or most often in the form of a thermally conductive paste, paste which is crushed when assembling the battery when the module is positioned and then clamped in the casing. This paste, like the mat, makes it possible to absorb geometric dispersions and therefore to ensure thermal contact between the plate and the module whatever these dispersions.
[0022]
[0016] According to one embodiment of the invention, the preserved space is achieved by a misalignment of the first end with respect to the heat exchange surface. This misalignment guarantees that the hollow part of the plate, and the heat exchange surface of the module, do not touch each other so as to have a homogeneous distribution of the thermal paste.
[0017] According to one embodiment of the invention, the module comprises:
[0023] - a first and second module end,
[0024] - two sides joined together and connecting the two ends together, the heat exchange surface being an external face on one side, the fixing sleeve being integral with an external face on the other side.
[0025]
[0018] This arrangement makes it possible to have a fixing sleeve on one side of the module, and in particular on each side of the module, i.e. on two opposite sides. The positioning of the fixing sleeves can therefore be chosen at any location depending on the length of the module, i.e. between its two ends.
[0026]
[0019] This sleeve has for example an axis orthogonal to the exchange surface. This sleeve is for example coaxial with the protrusion. This sleeve is for example integral with the module by assembly, hooping, or made from the material on the side of the module.
[0027]
[0020] Other features and advantages will appear on reading the following description of a particular, non-limiting embodiment of the invention, given with reference to the sole figure 1 in which:
[0028]
[0021] [Fig 1]: represents a schematic sectional view of an electrical energy storage battery according to an embodiment of the invention.
[0029]
[0022] Figure 1 discloses an electrical energy storage battery comprising, according to the invention:
[0030] - a casing 1 having an internal face Fi for supporting a module 2,
[0031] - the electrical energy storage module 2, comprising a heat exchange surface S, and a fixing sleeve 3 of the module 2 to the internal face Fi,
[0032] - a heat exchange plate 4 by conduction with the heat exchange surface S, inserted between this heat exchange surface S and the internal support face Fi, this plate 4 comprising in its thickness a hollow part Pc intended to receive a heat transfer fluid, and a solid part PP crossed by a hole T over its entire thickness,
[0033] - a means 5, 6 for fixing the module 2 to the internal face Fi, comprising on the one hand a protrusion 5 of the internal support face Fi extending through the hole T and partly into the bore A of the sleeve 3, this protrusion 5 comprising a first thread, and on the other hand a clamping device 6 comprising a clamping head 7 extended by a threaded body 8 cooperating by screwing with the first thread, this sleeve 3 comprising a first end E1 bearing on the solid part PP, and a second end E2, opposite, receiving the support of the clamping head 7, the threaded body 8 penetrating the sleeve 3 via the second end E2.
[0034]
[0023] In a manner not illustrated, this casing is closed by a cover so as to form a hermetic internal space containing the modules. This cover is for example formed by a part of the floor of a motor vehicle but not necessarily. For example this battery, that is to say a battery according to the preceding definition, can be assembled outside the vehicle (casing, module, cover) then fixed, once assembled, to the motor vehicle and in particular under the floor of this motor vehicle. This vehicle is for example electrically powered, the battery powering an electric motor. For example this vehicle is a so-called hybrid vehicle, or with fully electric propulsion. An application is also possible outside the automotive field, for example for construction site stations such as generator sets, or electrical energy storage plants.
[0035]
[0024] This battery possibly includes electrical or electronic means for managing the electrical energy of these modules, for example and in a non-exhaustive manner: a charger, a current converter, a battery pack control computer, an inverter, charge and discharge control cards for each module and / or each cell, a junction box including contactors for electrical isolation of the battery pack or for cutting off and energizing external circuits connected to the battery pack. All these electrical or electronic means can be integrated at the level of each cell, and / or each module.
[0036]
[0025] The internal support face Fi of the module 2 is in this example the bottom of the casing 1, this casing 1 forming a container closed by a cover not shown. Figure 1 illustrates a partial view of this bottom in section.
[0037]
[0026] It will be noted that in Figure 1, for simplicity, only the sections of module 2, fixing sleeve 3, and protrusion 5 are hatched, according to the practice of industrial drawings. In particular the hatching of module 2 is purely for the purpose of readability of the figure, it is clearly implicit that this module 2 is not a block of solid material but as previously described contains, among other things, the cells.
[0027] The heat exchange surface S is here a bottom of the module 2, opposite the bottom of the casing 1 and therefore the internal face Fi, but this arrangement is not obligatory: the internal face Fi may for example not be the bottom of the casing 1, but another part of the casing 1 such as the cover or any face of the casing 1 opposite the heat exchange surface S, thus the heat exchange surface S is not necessarily the bottom of the module 2 but may be a top or side C1 of the module 2, which is why the bottom, like the top of the module 2 is also called “side” (S) in this example.
[0038]
[0028] The illustrated heat exchange plate 4 is a plate well known to those skilled in the art, and which is produced by assembling two sheets one on top of the other, a first of the two sheets having a stamped depression covered by the second sheet and thus forming a hollow part Pc. This assembly is carried out for example by electric welding and / or by gluing for good sealing. These sheets can be metallic or made of plastic. This hollow part Pc forms for example a channel running through the heat exchange plate 4 along a surface corresponding to the heat exchange surface S. The heat transfer fluid is circulated in this channel by a circulation pump, integrated or not in the hermetic internal space of the battery. The solid part PP is formed by the junction between the first and the second sheet.
[0039]
[0029] Other technologies for cooling plates 4 are known and applicable to this invention, for example plates 4 resulting from a foundry or machining process with more or less complex assemblies, or by large plastic deformation of a single sheet by blowing. The channel can be a narrow channel winding through the plate 4, or a blade-shaped channel passing through the cooling plate 4 in only one direction; this is of no importance for the invention presented. The hole T passes through the heat exchange plate 4 over its entire thickness, in the full PP part, that is to say passes through the first and second sheets in the area where they are in contact with each other.
[0040]
[0030] The clamping device 6, thanks to its clamping head 7, will clamp the sleeve 3 against the solid part PP of the heat exchange plate 4, and the heat exchange plate 4 against the internal face Fi. The clamping head 7 illustrated is only one example among others, and is in Figure 1 a screw head with a wide head, that is to say wider than the bore of the sleeve 3 and therefore covering the second end E2. The sleeve 3 and the solid part PP take up the entire clamping force of the clamping device 6, so there is no deformation of the heat exchange plate 4.
[0041]
[0031] The protrusion 5 is a second sleeve 5 whose bore comprises the first thread. This second sleeve 5 is for example a socket, just like the sleeve 3.
[0042]
[0032] The clamping device 6 is illustrated as a large-headed screw, but alternatively could be a smooth, shouldered nut.
[0043]
[0033] Figure 1 shows a significant clearance between the sleeve 3 and the second sleeve 5. This clearance will be, for example, sliding if precise relative positioning is required between the module 2, the plate 4, and the internal face Fi. This clearance will be larger if there are several sleeves 3 for the same module 2 so as to absorb manufacturing dispersions. This clearance may be further increased, for example 3 to 6 mm at the radius, for reasons of hyperstaticity. Similarly, a person skilled in the art will know how to adapt the shape of the sleeve 3 and the second sleeve 5 according to the degrees of freedom to be immobilized.
[0044]
[0034] the protrusion 5, and therefore the second sleeve 5, is an element added and fixed to the casing 1, like a shouldered bushing or a stamped bridge, but as a variant this protrusion 5 can be a deep boss on the internal face Fi comprising a threaded nut at its bottom to receive the clamping device 6.
[0045]
[0035] For example, the added element 5 is welded to the casing 1 on its shoulder, or screwed, or glued.
[0046]
[0036] As a variant, the added element 5 is a stud, in particular a stud welded to the internal face Fi.
[0047]
[0037] The internal face Fi rests on the cooling plate 4 only on the solid part PP.
[0048]
[0038] The internal face Fi is a double bottom 9 of the casing 1, as illustrated in FIG. 1, and alternatively a boss of the casing 1. In FIG. 1, the double bottom is in fact a sheet metal crosspiece in the shape of an inverted U, the ends of the U of which are welded to the bottom of the casing 1. This U then forms with the bottom of the casing 1 a hollow body that is out of line with the bottom of the casing, this U being located under the solid parts PP. The second sleeve 5 will for example be assembled on this crosspiece before welding this crosspiece to the bottom of the casing.
[0049]
[0039] This battery comprises a thermally conductive means 10 for filling a preserved space E between the heat exchange surface S and the heat exchange plate 4. This has been clearly explained in the general description.
[0050]
[0040] This preserved space E is achieved by a misalignment of the first end E1 with respect to the heat exchange surface S.
[0051]
[0041] This module 2 includes:
[0052] - a first and second module end,
[0053] - a stack of electrochemical cells compressed between the two ends of the module,
[0054] - two adjoining sides S, C1 between them and connecting the two ends between them, the heat exchange surface S being an external face of one side S, the fixing sleeve 3 being integral with an external face of the other side C1.
[0055]
[0042] This first and second end are part, for example, of a strapping holding the stacked cells in compression against each other, and the sides S, C1 can be part of the strapping but also be independent of it, i.e. not participating in maintaining the compression of the cells. In all cases, these sides, for example four in number to form with the two ends a rectangular parallelepiped, form an outer envelope of the module 2 comprising fixing interfaces (subject of the invention) of this module 2 in the casing 1, this envelope can therefore include part of the strapping. Thus, the side C1 carrying the fixing sleeve 3 is for example made of metallic material, in particular aluminum, a tab made of this material or added extending orthogonally to the side C1 and this tab comprising the fixing sleeve 3. For example, this tab and the fixing sleeve 3 form only one piece.For example, this side C1, the tab, and the fixing sleeve 3 form a single piece. For example, this jaw 3 is shrunk or force-fitted into the tab. Of course, this tab is not essential; the fixing sleeve 3 can, for example, be attached to the side C1.
[0056]
[0043] This same side 1 may further comprise several fixing sleeves 3, aligned and extending along the length of the side 1. The battery pack containing several modules, a first module 2 adjacent to a second module 2 may for example have the fixing sleeves 3 staggered relative to each other.
[0057]
[0044] The axis of the fixing sleeve 3 is for example parallel to the side C1 and orthogonal to the cooling plate 4 and to the internal face Fi, the protrusion 5 being concentric to the fixing sleeve 3.
[0045] The electrochemical cells are for example parallelepipedal, or prismatic and whose chemistry is enclosed in a rigid envelope.
[0058]
[0046] Alternatively, the cells are in the form of pockets.
[0059]
[0047] These cells are alternatively cylindrical, but in this case the person skilled in the art knows that they do not need to be compressed together because the cylinder, rigid, and by its shape, prevents the cells from swelling. The strapping then no longer has the function of compressing the cells but of positioning them. However, there will be an envelope containing all of these cells, forming a module, this envelope also being parallelepiped and having two ends and four sides, these sides being equivalent to the sides
[0060] S, C1 of the present description and the fixing sleeve 3 being integral with an outer face of the other side C1.
[0061]
[0048] For example, these cells are of the lithium-ion (or Li-ion) type.
Claims
CLAIMS 1. Electrical energy storage battery comprising: - a casing (1) having an internal face (Fi) for supporting a module (2), - the electrical energy storage module (2), comprising a heat exchange surface (S), and a fixing sleeve (3) of the module (2) to the internal face (Fi), - a heat exchange plate (4) by conduction with the heat exchange surface (S), inserted between this heat exchange surface (S) and the internal support face (Fi), this plate (4) comprising in its thickness a hollow part (Pc) intended to receive a heat transfer fluid, and a solid part (PP) crossed by a hole (T) over its entire thickness, - a means (5, 6) for fixing the module (2) to the internal face (Fi), comprising on the one hand a protrusion (5) of the internal support face (Fi) extending through the hole (T) and partly into the bore (A) of the sleeve (3), this protrusion (5) comprising a first thread, and on the other hand a clamping device (6) comprising a clamping head (7) extended by a threaded body (8) cooperating by screwing with the first thread, this sleeve (3) comprising a first end (E1) bearing on the solid part (PP), and a second end (E2), opposite, receiving the support of the clamping head (7), the threaded body (8) penetrating the sleeve (3) via the second end (E2).
2. Battery according to claim 1, the protrusion (5) being a second sleeve (5) whose bore comprises the first thread.
3. Battery according to one of the preceding claims, the clamping device (6) being a screw.
4. Battery according to one of the preceding claims, the protrusion (5) being an added element and fixed to the casing (1).
5. Battery according to claim 4, the added element (5) being welded to the casing (1).
6. Battery according to one of the preceding claims, the internal face (Fi) resting on the cooling plate (4) only on the solid part (PP).
7. Battery according to claim 6, the internal face (Fi) being a double bottom (9) of the casing (1), or a boss of the casing (1).
8. Battery according to one of the preceding claims, comprising thermally conductive means (10) for filling a preserved space (E) between the heat exchange surface (S) and the heat exchange plate (4).
9. Battery according to claim 8, the preserved space (E) being achieved by a misalignment of the first end (E1) relative to the heat exchange surface (S).
10. Battery according to one of the preceding claims, the module (2) comprising: - a first and second module end, - two adjoining sides (S, C1) between them and connecting the two ends between them, the heat exchange surface (S) being an external face on one side (S), the fixing sleeve (3) being integral with an external face on the other side (C1).
Citation Information
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