VENTILATION DEVICE WITH METALLIC PERMEABLE MEDIA FOR BATTERY CASING(S), AND ASSEMBLY METHOD
The integration of a metal filter medium with flexible gas-permeable fibers in battery ventilation devices addresses the issue of fire spread during thermal runaway by blocking solid particles and ensuring safe gas escape, providing effective fire protection and maintaining ventilation integrity.
Patent Information
- Application Number
- FR2024003047
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-26
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-03-26
AI Technical Summary
Existing battery ventilation devices fail to prevent the spread of fire during thermal runaway due to rapid melting of plastic components, leading to blockage of gas escape paths and potential flame propagation.
A ventilation device with a metal filter medium composed of flexible gas-permeable metal fibers or wires, capable of withstanding high temperatures and blocking solid particles, is integrated into the battery housing to provide a barrier effect, ensuring effective fire protection and safe gas escape.
The metal filter medium effectively prevents the spread of flames by blocking solid particles and allowing purified gas flow, maintaining the integrity of the ventilation path even under extreme temperatures, thus preventing fire propagation.
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Abstract
Description
Title of the invention: VENTILATION DEVICE WITH METALLIC PERMEABLE MEDIA FOR BATTERY CASING(S), AND ASSEMBLY METHOD Technical field
[0001] The present disclosure relates to the field of battery systems, in particular ventilation equipment enabling pressure compensation for a battery. The invention relates more particularly to a device, mounted on the housing of a battery / power supply, which enables pressure compensation by providing protection in the form of a metal filter medium and a method of assembling such a device. Technological background
[0002] Document US 11245156 discloses a pressure compensation device, which includes a perforated base, a cover and a porous membrane placed under the base to allow the gases enclosed in a battery module, for example a battery module fitted to a vehicle, to pass through. In the event of instability (internal pressure too high), the membrane provided under the cover rises to such a level that a point provided on the base of the compensation device pierces the membrane, which allows the gas to escape with a more significant flow rate. Numerous openings are provided in the cover for the escape of air at a significant flow rate. A protective screen, in the form of a rigid grid, is placed under the membrane and fixed by anchoring screws of the device.
[0003] Such a device, using a clip-on fitting, does not allow the cover to be ejected in the event of rupture / piercing of the membrane. In this case, the plastic cover and the plastic base heat up very quickly. It has been found that temperatures can reach high values, well in excess of 500°C, for example around 900 or 1000°C. At this heat level, even plastics approved for battery case ventilation devices melt quickly, which can cause detachments or disintegration of the parts which will block all or part of the openings formed by the rigid grid (very rapid and significant blockage of this underlying grid). In practice, with incandescent particles, fine molten metal particles and / or combustible materials which exit the case through the grid, flames can form and the fire is likely to spread in the vehicle.
[0004] There is therefore a need for ventilation devices of simple design, preventing the spread of fire in the event of thermal runaway, and which can be used effectively for pressure compensation of batteries. Summary
[0005] The present disclosure improves the situation.
[0006] For this purpose, a ventilation device is proposed for a battery housing, in particular for a housing comprising one or more batteries, the device comprising: - a body, for example forming a connector; - a channel, provided in the body to guide a gas flow escaping from the housing through the opening (typically along a longitudinal axis of the channel); - a closing part, secured to the body, preferably made in the form of a cover which is perforated and can cover the channel on a side opposite the opening;and - a metal fire protection filter medium carried by or covering the body in an arrangement underlying the body opposite the closure portion, the metal filter medium including a (typically flexible) fabric or layer of gas-permeable metal wires or fibers and closing the channel from below, whereby the metal filter medium forms a barrier (with a solid particle barrier effect) to allow only a purified fluid flow without solid particles to pass through the channel, in particular in the event of the escape, from the housing, of a gas flow whose temperature is very high, for example exceeding 500°C (with possibly the media having a structure comprising steel or essentially made of steel, for example a steel resistant to at least temperatures of 600°C). ;
[0007] Thanks to these provisions, effective fire protection can be advantageously achieved by obtaining a barrier effect against incandescent particles which are likely - in the event of a failure to cover the channel - to be propelled directly from the inside of the housing to the outside. Furthermore, unlike grid structures (with openings of the order of 1 or 2 mm in width, stopping only 25 to 35% of particles), we ensure that all solid particles are stopped.
[0008] The metal filter medium may have a high permeability to the gas flow (relative gas permeability), for example by including a superposition of very fine metal fibers or filaments, for example of submillimeter size for the diameter (or characteristic parameter equivalent to the diameter). The metal media(s) may have fibers with a diameter close to a millimeter, in particular to withstand high temperatures (up to 1 mm wire diameter).
[0009] The metal filter medium constitutes a layer (homogeneous or possibly decomposing into sub-layers) which is flexible or capable of having a corrugated profile. More generally, the metal filter medium is composed, at least 95% by mass, of metal wires and / or fibers, the metal preferably being steel. Interstices between the wires or fibers may form pores of submillimeter size, for example possibly exceeding 100 microns, or possibly exceeding 1 mm in certain cases. The fabric or layer, which forms pores within the flexible metal filter medium, has one or more folded or curved parts to cover the opening of the housing, the flexible fabric or layer preferably being able to have a corrugated profile. Support parts / members, in particular on the side opposite the body, may be provided to maintain the corrugated profile.
[0010] According to a particular feature, the body has a central axis forming the longitudinal axis of the channel and is axially interposed between a structural frame and the closure portion. The structural frame may define a support, distinct from the body, for holding the metallic filter medium pinched or sandwiched between the structural frame and the body. In embodiment options, the structural frame includes a grid whose openings have, for example, a smaller dimension at least equal to 2 or 3 mm, for example with openings reaching or exceeding 10 mm (or even 30 mm, at least for the largest dimension). The grid overlaps with respect to the metallic filter medium (for axial overlap).
[0011] The body is typically provided with a side wall and connects to the opening of the housing. Axial passages may be common / aligned in the assembly formed by the body, the filtering part with the metal filter media and the grid part which may extend under the metal filter media (housing side). When a gas-permeable membrane is provided in the device, this may be carried (directly or indirectly) by the body by closing the channel, the membrane being able to constitute a filtration part capable of retaining dust.
[0012] The body may be based on a rigid material, possibly plastic, which is devoid of a radial or closing portion, with the possible exception of thin partitions. More generally, the body is provided with a side wall surrounding the gas circulation zone and is configured to connect, removably or permanently, to the housing at / on the opening of the housing. The body may optionally be designed as an annular projection of a housing component, or form an attached connection element.
[0013] The metallic filter medium may have one or more of the following characteristics: - the media has pores of the media whose size, for example a characteristic size, is less than or equal to 0.5 or 1 mm, preferably with pores of submillimeter average diameter. - the filter medium comprises or consists of a metallic structure forming pores distributed in three dimensions. - the flexible fabric or layer comprises at least one layer of a fibrous, non-woven metallic material. - the filter medium comprises or is a non-woven fabric (for example based on a metallic material which is preferably homogeneous). - the filter medium comprises or is a felt, for example a sintered metal fiber felt. - the filter medium comprises or consists of a metallic structure having a porosity greater than 70%, for example greater than 80 or 85%. - metal fiber felt, for example stainless steel, may have a thickness greater than or equal to 0.6 mm, possibly at least equal to 3 or 4 mm. - a thermally insulating material, permeable to gases, may be superimposed on the flexible fabric or layer of the metal filter media, for example by being located between this fabric or layer and a face of the body where the entrance to the channel is located (gas discharge channel).
[0014] The filter media may also be made of woven stainless steel, for example having a thickness greater than or equal to 0.6 mm, possibly exceeding 2 or 3 mm. The filter media may be attached to a grid belonging to a part which forms a frame surrounding four sides. Typically, more than 85 or 90% of one face of the filter media is available (for the impact of solid particles in particular and the improvement of the permeability of the filter structure formed upstream of the inlet of the channel), whether or not a grid is present in a position underlying the metal filter media.
[0015] The channel may be subdivided into different conduits delimited at the same opening of the housing, possibly with two or more membranes to distribute the fixing edges of these membranes. A structure with two parallel channels each covered by a membrane (one sealing membrane per channel) may be used, under the same cover / hood. In all these cases, the device may provide a filtration member including the filtering medium, facing / covering from the inside each conduit of the channel.
[0016] According to a feature, the device may include a gas-permeable membrane, carried by the body closing the channel opposite the metal filter medium. This membrane constitutes a filtration part. The membrane, if present, may be secured to the connection support formed by the body, typically from above corresponding to a side opposite the metal filter medium. The membrane can be kept spaced from the metal filter media and / or the protective plate or grid by partitions provided in the channel. The membrane is flexible and partly fragile so as to no longer block the channel in a perforated or burst state of the membrane obtained in the event of overpressure in the channel beyond an overpressure threshold.
[0017] A plastic part may form the hood (and thus the closure portion). The body may be partially inserted into an interior volume of the hood delimited by the skirt, or alternatively surround a skirt of the hood. In embodiments, the closure portion is part of a cover capable of being ejected or moved further from the channel to clear a passage allowing the massive escape of a gas flow in the event of thermal runaway.
[0018] The body allows elastic fitting of the cover, so that the body can axially retain the cover, for example by reliefs or lugs formed on an external face of the body (annular body), by at least one internal relief (for example when the body does not carry a membrane) and / or by tabs forming gripping edges or grooves for the engagement of reliefs belonging to / carried by the skirt of the cover, in a configuration for protecting each membrane.
[0019] In embodiments of the device, the cover is molded in a single piece of plastic material, preferably without an elastically deformable / flexible part in the closure part.
[0020] In embodiments, the metal filter media which may define a lower face of the ventilation device, may be maintained upstream of the channel to form the impact zone for fuel particles and more generally for the largest solid particles (particles which may be incandescent) ejected from inside the housing and likely to cause parts of a vehicle to burn (even with a hood / cover remaining present, if they were to rapidly degrade this hood and pass through it to then generate flames). The metal filter media forms a stable part which makes it possible to greatly disrupt / delay, or even stop the dramatic sequence of thermal runaway followed by the spreading fire, which is observed in cases with ejection or melting of the hood without any further fire protection.
[0021] The body may form a connection support for the cover and may incorporate a rigid protective perforated metal plate, or metal grid plate (for example made of stainless steel), this grid having openings of a size typically exceeding 5 or 6 mm (for example in width or diameter).
[0022] Typically, the connection support corresponds to a first pre-assembled part, including the body, the possible membrane, the metallic filtering medium and optionally the perforated plate or (metallic) grid underlying the body, while the cover corresponds to a second pre-assembled part. The second part mounts on the first part and remains attached to this first part, the fixing being permanent or resulting from a snap-fastening resistant to pressure variations in the channel, under the membrane.
[0023] The membrane may burst under the effect of pressure build-up in the channel, which is not the case for the housing and the connection support (with the body) mounted on the housing, knowing that the gas flow may escape massively (at very high flow rate for example) from the housing via the channel. The cover may remain in place while providing a large overall passage section, the passageways being able to include axial passage orifices offset from the channel and overlapping (facing) an annular peripheral fixing zone or region. An annular peripheral fixing region may optionally be formed in the connection support extending around a central axis of the body. This fixing region extends around the channel and is for example radially interposed between an annular seal providing sealing against the housing and a channel-delimiting wall which may be formed internally in the body.
[0024] In embodiment options, the body has a base wall or mounting flange and includes an annular channel-delimiting wall, which is a wall extending longitudinally from a lower face of the base or mounting flange to an upper edge where a membrane can be placed (and typically fixed). The body and / or a rigid metal protection plate may constitute a connection part which carries an annular sealing element, preferably housed in an internal groove of the base wall or flange. The internal groove may open axially opposite the closure portion (closure portion provided in the cover), in order to achieve an annular seal with the housing.
[0025] The body, for example provided with separating partitions, may optionally be made in one piece. The body has an upper / distal face of the seal, which may be a contact seal with the housing. In embodiments, the upper face has a region of annular surface, substantially planar, on which a membrane is fixed or against which an edge of this membrane is pinched. The annular side wall of the body, serving to form the circumference of the channel, may extend longitudinally around a central axis between the flange which allows anchoring on the housing, typically having a lower surface substantially planar and perpendicular to the central axis, and an annular edge axially distal to the opening of the housing. The annular edge may be formed in an axial projection which projects from an outer annular shoulder of the flange.The flange is made up, for example, of a rigid plastic part constituting the body, which can be interposed axially between a metal plate or grid, arranged along it. the lower surface of the flange, and the possible membrane which is placed on the annular edge. It is understood that the metallic filter medium can be attached to the plate or grid which supports this medium and / or includes a part which surrounds the periphery of this medium.
[0026] In embodiments allowing the metallic filter medium to be arranged parallel to a membrane, one or more of the following features are provided: - the ventilation device comprises, opposite the channel, a piercing member, carried by one of the sealing part and the body, to perforate or burst the membrane in the event of overpressure in the channel beyond an overpressure threshold. - the piercing member extends in an axial direction defined by a rod of the piercing member, such that a longitudinal axis of the rod passes inside a perimeter delimited by an external edge of the metallic medium. - the piercing organ may be part of a group of piercing organs carried by the hood part. - one or more piercing organs can be included in the plastic part constituting the hood. - the piercing organ can be carried by a radial portion of the body arranged opposite the canal. - screws or anchoring devices, made of metallic material, ensure the maintenance of the metallic filter medium and possibly of the protective plate attached (or secured) to the filter medium, by pressing the metallic medium against the housing, for example in an area surrounded by the seal of the ventilation device. With these provisions, it is possible to achieve a compact arrangement, at the level of a housing opening, with a membrane protected from dirt by a cover for management of the usual ventilation mode, while having safety in an emergency mode with massive gas exhaust, ensuring that the membrane is pierced and avoiding melting of plastic parts of which the cover is made, which prevents or delays the creation of flames.
[0027] The device, equipped with at least one membrane, allows both pressure compensation of a battery case and emergency ventilation, typically by protecting the porous membrane from gases for its compensation operation. A pre-assembled design, without mobility of the locked cover, allows the device to be able to effectively close the opening of the case (and preserve the integrity of each membrane), in an environment subject to vibrations. This is the case in particular when the battery case is mounted in a motorized vehicle, for example an automobile or other rolling machine. In embodiment options, the membrane (at least one membrane) is designed to ensure oil, water and dust tightness. It can be made of hydrophobic material and / or form a water barrier.
[0028] According to one aspect, a method is proposed for assembling a ventilation device which has a fire-break effect while minimizing the risks of creating a blockage in the area through which a gas flow must escape urgently (risk of fallout of molten plastic material constituting the closure portion for example).
[0029] To this end, a method is proposed for assembling a ventilation device for a battery case, using a metal filter medium capable of being mounted under a body intended to equip the battery case, the body delimiting a channel forming an outlet through an opening of said case, the method comprising the steps essentially consisting of: - provide the metal filter media; as well as a support frame or sidewall element intended to surround the metal filter media; - securing the metal filter medium to the body, by fixing the filter medium in an arrangement underlying the body opposite an outlet of the channel allowing the evacuation of gas from the housing; in which the connection of the filter medium makes it possible to filter a gas flow entering the channel, by a flexible fabric or layer of gas-permeable metal wires or fibers which constitutes or which is part of the metal filter medium, whereby the flexible fabric or layer constitutes, in said device, a firewall protection between the housing and the channel of the body with a barrier effect to solid particles to allow only a purified fluid flow without solid particles to pass into the channel.
[0030] It is permitted to integrate the metal filtering medium as close as possible to the outlet of the opening of the housing, with for example a face of this medium which defines an external face of the device, capable of being placed opposite the interior of the housing. Where appropriate, this face of the medium overlaps with a support grid belonging to the support frame.
[0031] In this method, a membrane may be attached to the body, this membrane being gas permeable to allow selective filtration of a gas stream flowing in the channel to leave the battery housing. The process uses, for example, the body, made from a single piece of plastic, to: - form a first support face for fixing the membrane; and - form a second support face to connect, directly or indirectly, the metal filter media to the rest of the ventilation device. It is understood that the first support face and the second support face may be opposite each other in the ventilation device.
[0032] A hood with a closure portion may be provided in the device, opposite the metal filter media. For emergency ventilation, passageways are provided in the hood and / or are present to allow the closure portion to be bypassed. Typically, these passageways may be distributed in the hood portion.
[0033] In embodiments of the assembly method, one or more of the following arrangements may be adopted: - the metal filter media is supplied in the form of a flexible sheet, cloth or layer, the underside / facing the housing (housing opening) of which is made of stainless steel or similar metal. - the metallic filter media includes a thermal protection portion or zone facing an inlet of the channel, being wider than the inlet or with at least one of a shape match and a match in perimeter / border dimensions, between the outline / border of the outlet and the outline of the thermal protection zone.
[0034] The membrane may be fixed by a welding step carried out hot, for example by using vibrational energy, optionally so as to melt one or more annular reliefs formed on the body. An annular portion with such reliefs may thus be melted during the welding step. If necessary, the welding may be carried out ultrasonically, for example with a raised bead on the plastic part and a flat sonotrode, or on a flat plastic surface and a raised bead on the sonotrode. The membrane can be fixed in an annular weld zone and deformable in the sealing portion (permeable to gas) surrounded by this weld zone.
[0035] According to a particular feature, the cover has a skirt or a tubular portion capable of internally housing (therefore surrounding) a projection or insertion portion which belongs to the body. The body may for example have a hollow, annular projection or one with an annular side wall. A mounting / connection support may be formed by the body, which is for example made in one piece and optionally provided to axially cover a protective metal grid. A fixing of the body to the housing is enabled by fastening members (bolts, screws or other parts adapted to allow a rigid connection), for example by arranging all or part of the fastening members in a region surrounded by a gasket in contact with the housing. When holes are provided in the cover part, at least one / more of the fastening members are arranged directly above a corresponding hole in the cover part. The fastening members are metallic and retain a protection plate or a frame, which typically surrounds the filter media. Optionally, the device forms a pre-assembled ventilation unit that does not yet cover the opening of the battery housing. This results in a device forming a pre-assembled functional component, which can be mounted by screwing, quarter-turning, or other simple assembly operation on the region of the housing forming the opening (wide opening compared to the narrow openings closed by the valves) of the housing. A simple fixing of this type can make it possible to obtain sealing thanks to a seal added to the base / base of the device, while the cover or similar protective part remains in its non-sealed closing configuration, fully fitted onto the body constituting a connection support. The device can therefore be transported, packaged and delivered in a robust manner, with a cover, and makes it possible to limit the number of steps for installing the device on the battery housing.The hood / cover may be notched or provided with axial openings for the installation of attachment members for connection to the housing while the hood is already secured to the body. Brief description of the drawings
[0036] Other characteristics, details and advantages will appear on reading the detailed description below, and on analyzing the attached drawings, in which: [Fig.l] is an exploded perspective view of a ventilation unit capable of being mounted directly on a wall of a battery box, in order to close an opening in this wall. [Fig.2] illustrates, in perspective, half of a ventilation device having a similar assembly to that of the unit of [Fig.l] using a membrane and a metallic filter medium to seal, on either side, a degassing channel. [Fig. 3] is a bottom view of a ventilation device, showing the position, underlying the gas discharge channel and surrounded by a gasket, of the metallic filter media which provides a fire-break effect. [Fig.4] is a longitudinal sectional view of a ventilation device, according to an option with a body screwed onto the housing by screws engaging a structural element with a filtering part including a metallic media. [Fig.5] shows an example of mounting the ventilation unit on an external face of a wall of the battery box. [Fig.6] shows, in section, a detail of a variant using a corrugated metal media mounted between two support parts. Description of the embodiments
[0037] Several examples of non-limiting embodiments are set out below in detail. In the various figures, identical references indicate identical or similar elements.
[0038] With reference to Figures 1, 2, 4 and 5, there is shown a ventilation / pressure compensation unit that can be delivered as a pre-assembled unit, ready to close an opening O of a battery housing by being mounted typically on the side of an external face of a shell or plate of the housing P. In the following, this (possibly pre-assembled) unit is called a ventilation device 1. In preferred options, the device 1 has a mounting part (forming a hood / cover support) including or consisting of a body 2 allowing connection to the housing, being provided with fixing means PF2, for example formed as an annular flange or as insertion / retaining tabs for holding in position on the battery housing. The fixing means PF2 can be provided in a base of the body 2, which covers the housing P or which is optionally insertable (in part) inside the battery housing.The element or body 2 may consist essentially of a rigid connector, made of plastic material, optionally provided with a J-joint mounted or added to this connector. The body 2 may optionally have a flattened configuration, with a thickness (corresponding to a height) which is for example at least four or five times less than an external width or diameter. The body 2 may be provided in a single piece of plastic material, unreinforced or reinforced (for example by glass fibers, carbon fibers or the like) or similar molded material.
[0039] The body 2, of hollow structure and open at two opposite axial ends, may have a flexible and porous / gas-permeable membrane 5, which allows a pressure compensation effect. The membrane 5 extends transversely relative to a longitudinal axis, typically a central axis X of the body 2. The membrane 5 can swell outwards in the event of slight suppression and can even be pierced if the overpressure presents a risk, by exceeding an overpressure threshold. In embodiments, as in the case of [Fig. 2] for example, the membrane 5 is not exposed / visible from the outside, thanks to a cover 3 of the device 1 which is mounted on the body, by clips or by any suitable fixing method allowing the cover 3 to be rigidly fixed.
[0040] Figures 2 and 4 show a hood assembly 3 for which a single flat fire-resistant filtering part, including the metal filtering medium 8 (formed for example from a block) is arranged opposite the interior of the channel C2 for an effect of complete / full separation of the solid particles, even in heat conditions with a gas flow exceeding 500 or 600°C, which is compatible with: - ventilation in normal mode, in both directions DI (incoming) and outgoing (D2) following the direction of the central axis X, with the media 8 underlying the body 2, - and emergency ventilation in the direction D2, after release of the evacuation end of the body 2 due to the degradation / bursting of the membrane 5, which proves effective without degradation of the fire barrier effect (impact of the particles combustibles on a protection zone corresponding to an interior face F8 turned / oriented opposite the channel C2, therefore without impact on the body 2 which is formed from plastic).
[0041] The cover 3 has a closure portion 9, which may be visible from the outside, formed in a polymer part resulting from a molding (based on a thermoplastic material) or suitable plastic material. The closure portion 9, not perforated, may be smaller than the passage section formed by the channel C2.
[0042] As clearly visible in particular in Figures 1, 2 and 4, the body 2 may have a side wall 20, a lower end forming an open base, so that the body 2 delimits a channel C2 which opens out through an upper end of the body 2 which is an evacuation end, which can be closed by a membrane 5. Here the terms "lower" and "upper" do not prejudge the final mounted arrangement of the ventilation device but facilitate the explanation made with reference to some of the figures. The channel C2 extends longitudinally between the base end and the evacuation end, typically around a central axis X of the body 2 which is an axis which can pass through / pass through the opening O in the mounted state of the ventilation device 1, as illustrated for example in [Fig.5]. The side wall 20 may be an exterior side wall of the body 2 which optionally includes a conduit or conduit element 200, as seen in [Fig. 2].
[0043] A lower groove G2 ([Fig. 1 ]) provided in the body 2 makes it possible to house the seal J or sealing element, for example in the form of a ring, radially spaced from the conduit element delimiting the path or channel C2 for the circulation of gas. More generally, the side wall 20 can carry a seal J by moving it away from the conduit / channel element C2. The seal J can thus be spaced / moved away from an evacuation zone for very hot gases in situations of overheating or thermal runaway.
[0044] The channel C2 is offset and spaced internally relative to the fixing region RF for the attachment of the cover 3 and for the sealed fixing to the housing P. When a membrane 5 is provided, it is part of a pre-assembled assembly. This assembly may consist of the perforated plate 4, the filtering part including / constituted by the metallic filter medium 8, and the connection support SC and the membrane 5. An annular portion 5c of the membrane 5 may be fixed in a sealed manner to one end of the conduit element formed by the body 2. Of course, the fixing of the membrane 5, at an annular portion 5c, may also be carried out on another surface of the body or by pinching carried out in the pre-assembled assembly, in alternative embodiments. An intermediate support may also be added to constitute a membrane support.
[0045] In Figures 1, 2 and 4, it can be seen that the body 2 may have an annular radial portion which includes or forms the bottom of the groove G2 oriented towards the housing P in allowing the annular J seal to be received. The J seal may possibly have (before axial compression obtained by anchoring / fixing) a height typically greater than the depth of the groove G2 or at least be sized to protrude / overhang axially outside this groove G2. More generally, the J seal may project downwards (here towards the housing) thus presenting a surface which extends outside the groove G2 and capable of bearing axially against the battery housing. The annular faces delimiting the groove G may each have projecting ribs or reliefs for retaining the annular J seal. These reliefs or ribs, distributed in a spaced manner along the circumferential direction, protrude radially towards the inside of the groove G2.
[0046] The body 2 may have a projection 25 or 2d, projecting axially from the annular radial portion which makes it possible to form the RF fixing region. As shown in particular in [Fig.2] and 4, this projection 25, 2d (tubular, rectangular or cylindrical) may axially extend the base of the body 2 so that the pipe element extends from the base to an edge formed by the projection 25, 2d. Thus, an internal face of the pipe element 200 may be formed with an axial extension greater than the axial extension of the base where the annular RF fixing region extends. More generally, the device 1 typically forms at least one channel C2, preferably delimited by a circumference of the conduit element 200 which can protrude on an evacuation side relative to the rest of the body 2. The channel C2 can be used both for an air supply and for an air evacuation, when the evacuation end of the body 2 is closed by a permeable membrane 5.. In certain variants, for example using at least one non-return valve, it may be provided that channel C2 is used only for air evacuation.
[0047] The channel C2 of the body can be in different forms with, in certain cases, the possibility of forming different evacuation paths downstream of the opening O. In the illustrated cases, the channel C2 is delimited by the conduit element 200 and / or a part of the body 2, in order to guide a gas flow FG escaping from the housing P through the opening O (the flow leaving through the opening passing entirely through the channel C2). In the non-limiting case of Figures 1 and 2, a channel C2 is shown subdivided into sub-channels SC2 due to the presence of separating spacers or partitions 22 which can crisscross the channel and make it possible to distribute the gas flow / flow FG.The configuration with spacers or crosspieces / partitions, distributed at several levels or elongated along the direction of the central axis X, can limit the propagation and the extent of flames which could form with the sudden evacuation of combustible particles near the opening O of the housing (where oxygen is present in abundance), in the event of overpressure with thermal runaway in the housing P. Example of the production of a flexible material made of metal fibers
[0048] The filter medium 8, 108 can advantageously combine thermal resistance and significant porosity, for example greater than 80 or 85%. The metal wires or fibers are for example woven (with a very fine mesh), possibly having several superimposed layers of parallel metal fibers. Alternatively, the wires or fibers are gathered in a layer of non-woven fabric. In certain variants, sintered fiber can be used. By way of non-limiting example, the filter medium 8, 108 contains or is made of very fine metal filaments (1.5 to 80 qm) laid uniformly to form a three-dimensional non-woven structure sintered at the contact points. The filter medium 8, 108 can be part of a pre-assembled filter component or element.
[0049] In some options, a multi-layer construction may be provided with each layer composed of fibers of potentially different diameters to achieve optimal performance, for example, pressure drop, filtration efficiency, particle load capacity and media strength. In this case, the multi-layer material may have a graded design, so that the solid particle retention capacity is much higher and, therefore, the service life is longer. More broadly, whatever the structure chosen to form the porosity or interstices in the layer of metallic fibers or filaments (a porosity greater than 70%, for example reaching or exceeding 80%, is preferred), the arrangement of these fibers or filaments is chosen to allow the passage of gas at high flow rates, while intercepting solid particles.
[0050] The media 8, 108 may optionally be obtained from several layers of fibers / filaments deposited on top of each other, or from a strip or fabric of metal fibers which is subjected to folding. Mechanical treatment may be carried out to adjust the density. For example, in one application, the strip or fabric is turned and / or folded to obtain a clearance / gap of the order of 10% between the adjacent layers. Sewing, the use of a needle loom or any device suitable for the mechanical strength of the flexible layer ML may be used.
[0051] Whatever the manufacturing process adopted, the metal fabric or layer ML can constitute a flexible part, formed into a homogeneous piece permeable to gases which is: - retained between the body 2 and the housing P, typically using an openwork plate 4 forming a support frame 4, - or alternatively integrated into a heterogeneous component which includes a frame or peripheral fixing parts and the metal fabric or layer ML constituting all or part of the metal filter medium 8, 108. Where appropriate, the metal filter medium 8, 108 may be produced in the form of a flexible fabric or layer of felt directly bonded to a support, possibly extending further outwards, relative to the opening O, than this support. In practice, the bonding can be carried out at the periphery of a gas passage region. The bonding can possibly be complementary to axial retention by lugs or fixing members 4r. [Fig. 3] shows the case, in no way limiting, of fixing members 4r which extend radially inwards, from the edge of a frame of a frame or support plate 4, making it possible to hold the metal filter medium 8. The plate 4 also has radial, external lugs, for connection to the body 2 (for example for fixing via the screws V). In this case, the impact face F8 (for solid particles leaving the housing) of the metal filter medium is available / not covered from below, with the exception of thin or short support portions (see members / lugs 4r in the case of [Fig. 3]). Typically, more than 85 or 90% of the F8 face is available, whether or not a G4 grid is present in a position underlying the media 8, 108.
[0052] In the non-limiting case of [Fig.l], fixing and holding of the metal filter medium 8 is allowed by a shape cooperation between the grid part G4 of an openwork plate 4 and the perimeter of the medium 8, for example delimited by two parallel long sides 8a, one end 8b possibly rectilinear and another end 8c possibly rectilinear. A rectangular format of the medium 8 can be provided.
[0053] More generally, it is understood that the metal filter medium 8, 108 can form a closure wall not crossed by fixing parts. A frame and / or the fixing parts serve to prevent / prevent mobility of the medium 8, 108. In the example of [Fig.l] it is provided that the plate 4 is very openwork in a central part covered by the metal filter medium 8, while having a margin part which includes fixing members. Here, the plate 4 has for example fixing tabs 4p or other mounting parts which can be aligned with the fixing means PF2 formed in the body 2.When screws V or similar anchoring members are provided to pass through this plate 4 and an annular RF fixing flange or region of the body 2, it is optionally possible to use, in mounting holes / conduits which may constitute the fixing means PF2, split rings or metal members which constitute compression limiters 12, in order to form a contact interface with the plastic surfaces constituted for example by the housing (wall P) and the body 2.
[0054] The protective grid or plate 4 is for example formed from a single piece, with a flat / planar shape (therefore thinner than the body 2). The combination of this plate 4 and the metal filtering medium 8 makes it possible to produce a firewall (limiting and even flame-inhibiting effect, by preventing the propagation of particles fuels and flames through the opening O). Tabs or fixing members 4f (visible in [Fig. 1]) are for example formed in the peripheral edge of the protective plate 4, in order to keep it attached against the base end of the body 2, by cooperating with complementary fixing members provided in the fixing region RF, for example in the form of clips projecting axially from a bottom face of the body opposite the housing P in the mounted state. More broadly, it is understood that the protective plate 4 can be a part which is fixed to the body 2, by directly covering the channel C2 on the side opposite the cover 3.
[0055] The peripheral edge of the protective plate 4 is surmounted by the fixing region RF provided in an annular flange of the body 2, which extends around the conduit element 200. The edge of the grid portion G4 may follow the edge of the inlet of the channel C2, axially covering this edge (thus covering the entire perimeter of the inlet of the channel C2). The edge of the plate 4 may be a continuous edge, of rectangular or directory shape for example. The case with a grid or protective plate 4, for example made of metallic material, interposed between the housing P and the body 2 (provided in plastic or similar molded material), is only one option to allow the metallic filter medium 8 to be guided and held.
[0056] The assembled ventilation device 1 is provided with its seal J, in order to close the opening O while ensuring that the gas exchanges are carried out with filtration by the metal filter medium 8, 108 and then possibly by a suitable number of membranes. In the non-limiting example of figures 1-2 and 5, it is understood that the seal J can rest on an annular seat zone provided on the housing, around the opening O, typically without penetrating internally into the housing. This seal J can be an annular seal, for example made of elastomeric material, coming axially into contact with the housing P, on an external face of the latter. Fixing the hood to the body
[0057] The fixing of the cover 3 on the body 2 (which includes the fixing means FMI, FMI') can be carried out by plastic deformation of the complementary fixing means FM2, FM2' or FM provided in the cover 3 typically made from a single piece of plastic material. Axially projecting tabs FM2, FM can form at least part of the complementary fixing means / members. More broadly, an elastic interlocking can be provided with the use of axial stops, possibly allowing an anti-removal effect of the cover.
[0058] In the non-limiting case of [Fig. 1], the complementary fixing means FM2, FM2' or FM, by an elastic return effect in their initial shape, prevent the removal of the cover 3, so that the latter remains fixed to the body 2, whatever the temperature rise in the channel C2. This means that, if the filter medium 8, 108 were not present, the cover 3 would not detach but would risk being broken. and melted near its sealing part 9 with the risk of then sealing the evacuation paths, before the fixing zone (further from the channel C2) is in turn degraded / broken if the thermal runaway continues. The configuration provided here, with multiple passageways 03, 03' and the shield corresponding to the media, makes it possible to promote massive gaseous escape without pressure loss, and with exhausts via the cover 3 (or around the cover 3) which facilitate cooling and minimize the risk of deformation / alteration due to heat. This effectively prevents a state of overpressure from persisting with the associated overheating. In options, the cover 3 can be ejected or shifted from the body 2.
[0059] The cover 3 may be fixed relative to the body 2, in the absence of an axial spring or any part allowing a degree of freedom in translation or rotation. In the options illustrated, an anti-rotation effect is also provided by the action of the clip lugs FMI, FMI', typically engaged through windows or recesses in the cover 3. More generally, the cover 3 which forms the closing part 9 may be directly engaged on reliefs of the body 2, which in practice makes it possible to prevent accidental removal of the cover 3, for example in the event of a jolt when the housing P is on board a motor vehicle. More broadly, it is understood that the formation of a fire barrier, by the metallic filtering medium 8, along one end of the body which is not in contact with the cover 3 and which is axially opposite the cover 3, allows great flexibility in the design and assembly of such a cover / lid. Example of a drilling function integrated into the cover
[0060] With reference to Figures 1 and 2, one or more piercing members 6, 6' are provided on the cover 3, oriented towards one or more zones of the membrane 5 which are each distant from the annular fixing portion 5c. In the non-limiting case of [Fig.l], the cover 3 includes, opposite the channel C2, at least one first central piercing member 6. In addition, the closure part 9 can integrate one or at least two piercing members 6' offset along the direction of elongation of the cover 3, the latter being able to have a generally rectangular or non-circular format. Each piercing member 6, 6' is rigid and provided with a point or end adapted to tear / pierce the facing membrane 5, which swells in a protrusion above the discharge end of the body 2.
[0061] Whether the piercing member 6, 6' is produced in the form of a relief projecting from the cover part 9 or designed as any pointed or cutting structure carried by the cover 3, it is understood that this piercing member 6, 6' makes it possible to perforate or burst the membrane 5 in the event of overpressure in the channel C2, typically beyond an overpressure threshold for which thermal runaway is very probable or proven. One or more piercing members may extend parallel to each other, each being included in the same plastic part constituting a rigid component of the cover 3.
[0062] In the cover 3, passageways 03, 03' may be distributed in areas of the cover 3, around the piercing member 6, 6', to facilitate the escape of gas while retaining the initial configuration (and typically the initial integrity) of the device 1. The body 2 can provide unidirectional guidance of the gas flow or flow FG exiting through the opening O, with the partitions 22, where appropriate, which contribute to a linear guidance effect. A flow diversion can be provided by the cover 3, and passages 03' can open laterally to the outside through the periphery of the cover 3. Option(s) with corrugated metal media
[0063] The metal filter medium 108, as in the case of [Fig.6] for example, may include a flexible corrugated layer ML while being installed along the opening O, under the body 2 to form the barrier effect to solid particles upstream of the channel C2 following the gas discharge direction. The two opposite faces F8, F8' of the fabric or flexible layer ML, may be parallel following the same corrugated profile. A corrugated wall P8, continuous to avoid interruptions in the layer ML, is thus formed allowing a fire barrier effect. The design in flexible wires or fibers may make it possible to obtain such a conformation with a corrugated profile. Support or reinforcement may be provided locally, for example with contacts C4 or connections at the folds, in order to make this conformation stable, possibly rigid at least locally.The perimeter of the metallic filter media 108 may be defined at an edge, possibly rectangular, which is received or held in a rigid frame.
[0064] When a corrugated profile is provided for the metallic media 108, the flexible layer ML may be connected to one or two support parts 4a, 4b, typically rigid, which are for example made integral with the body 2, being able to be fixed to an external frame serving to define an edge B4 in a manner equivalent to the case with a flat grid or perforated support plate 4. At least the support 4a located opposite may be metallic, possibly similar to a perforated plate 4 (possibly being fixed as in the case of [Fig. 4]), but with parallel bars b, b' of two kinds arranged alternately to make the contacts C4 or connections from below the layer ML, at the fold lines (the bars b being supported on the rectilinear bottom zones LP1 in the face F8). The faces F8, F8', provided with lines LP1, LP1' or rectilinear background zones in the corrugated profile, are for example supported in a predefined conformation (here with said corrugated profile) by the support part(s) 4a, 4b each including a plurality of support members secured to the flexible layer ML along the lines LP1 and / or LP1' which correspond to rectilinear bottom zones. The outgoing edges or lines LP2 may also be in contact with bars b' of a corresponding support part 4a, 4b.
[0065] In the support structure, spaced and parallel bars b, b' may be provided, preferably rigid, forming at least the support members in the support part 4a, 4b. These structural elements make it possible to maintain and structure the corrugated profile conformation of the fabric or layer ML. The bars b, b' may be selectively connected to the respective faces F8, F8', each by a bar lateral face, preferably along a folding line made from a material constituting the layer or fabric. In other words, the support can be externalized with respect to the ML layer. For example, as seen in [Fig.6], the faces F8, F8' are each associated with a bar structure forming a respective support part 4a, 4b, so that it is provided in each bar structure: - a first type of bars, for which each bar b is attached and linked to a bottom line LP1, LP1' of the corresponding outer face (F8 or F8'); and - a second type of bars, for which each bar b' is attached and linked to a line LP2 projecting from the corresponding external face (F8 or F8').
[0066] With reference to [Fig.6], the support members may consist of bars b, b' which preferably have the same length to define an identical length of attachment on the flexible layer ML to which they are attached. As in certain cases without corrugations, the metal fibers or wires of the flexible layer ML may be distributed in three dimensions between the two faces F8 and F8', for example by forming a non-woven fabric. Alternatively, a fabric or woven layer may be prepared with one or two support parts allowing the maintenance of a corrugated conformation, to obtain the corrugated wall P8. Assembly examples
[0067] The body 2 can directly support all the other elements of the device 1, namely the seal J, the protective plate 4 (or similar perforated / grid part G4) which can be elastically fitted or rigidly fixed under the body 2 against its base, the metal filter medium 8 and the cover 3 which has the closure portion 9. The optional membrane 5 can be welded or added with a sealed annular contact, the perforated protective part, typically in the form of a cover 3, surrounding the opening O of the wall of the battery housing P.
[0068] The screws V or attachment members allow the body 2 to be mounted in or around the opening O, against the housing P, delimiting the channel C2, formed vertically above the opening O or more generally following the longitudinal direction of the body 2. (along the central axis). In the assembled state, the cover 3 is kept spaced from the wall P by the base of the body 2. The metal filter media 8, 108 may be provided in a filter component or element that includes a metal support frame for forming a typically gas-inhibiting periphery around the metal filter media 8, 108. The support frame may form a sidewall surrounding the metal filter media 8, 108, with no gas-permeable gap between the frame and an outer edge or periphery of the media 8, 108.
[0069] Whether or not it is mounted on such a frame, plate 4 or similar support element, the metal filter medium 8, 108 is made integral with the body 2, by fixing this metal filter medium 8, 108 in an arrangement underlying the body 2 opposite the outlet of the channel allowing the evacuation of gas coming from the housing, and therefore opposite the cover 3.
[0070] As clearly visible in Figs. 1 and 6A, a shoulder may be provided in the body 2, at the level of the RF fixing region to allow clips to be made both on the base (FMI' fixing means) and on the periphery of the base of the body 2 (with the FMI fixing means each projecting laterally on one side of the body 2). This allows the cover 3 to be fixed in a zone radially offset towards the outside, relative to the metal filter medium and possibly relative to a welding zone of the membrane 5.
[0071] The ventilation device 1 can form a compact arrangement, responsive to an emergency situation in the housing P by limiting the pressure drop, which can advantageously avoid harmful damage, prevent the spread of fire, while ensuring that the plastic components of the device are protected from incandescent particles and flames. Thus, a return to equilibrium with cooling can be obtained without external damage to the housing and this before plastic flows to block the channel C2 or a grid G4 interposed between the housing and the channel.
[0072] In the embodiment variant illustrated in [Fig. 4], it can be seen that the anchoring by the screws V, also metallic, makes it possible to ensure a flat arrangement of the filtering component including the metallic filtering medium 8. In this type of case, it is also possible to produce a flat component whose frame can form the plate 4, through which the screws V are fixed, while the metallic filtering medium 8 forms a high permeability firewall which is secured (for example by sintering) to the frame of the plate 4.
[0073] The present disclosure is not limited to the embodiments described above, solely by way of example, but it encompasses all the variants that a person skilled in the art may envisage within the framework of the protection sought.
[0074] For example, when a membrane 5 is provided, there are different ways of releasing the channel C2 to allow the circulation of a higher gas flow rate. The membrane 5 can thus, in variants, have a retractable structure or have at least one fragile region facilitating its rupture, for example without recourse to a perforation tip provided that the level of deformation required for such rupture is reached only in the event of exceeding an overpressure threshold (on the channel side / inside the battery case).
[0075] Furthermore, the ventilation unit or device 1 may provide for the presence of a membrane support 6, this support being able to be formed separately from the body 2. This design can simplify the production of the device 1, since the membrane 5 is not welded directly onto the body 2, but onto another component part of the membrane support (separately designed). The welding process on the membrane support can be less expensive and faster, without complexity of the welding tool for example. This can possibly make it possible to produce a more compact body 2.
[0076] Finally, the expression battery case must be understood in a general sense, the case being able to contain one or more groups of accumulators capable of providing energy in electrical form or energy usable in any form for conversion into electrical energy.
[0077] The wall of the housing P including the opening O can have any orientation. Although the non-limiting example of [Fig. 5] corresponds to an orientation of this plate / wall in a generally horizontal plane to have a cover 3 or protective part axially surmounting (from above) the body 2 allowing the connection of the cover 3, so that the axis X is here vertical, other arrangements are permitted, in particular with a ventilation unit mounted laterally on the battery housing.
Claims
Claims
1. Ventilation device (1) for a battery housing, in particular for a housing comprising one or more batteries, the device (1) comprising: - a body (2) provided with a side wall and connected to an opening (0) of the housing; - a channel (C2), provided in the body (2) for guiding a gas flow (FG) escaping from the housing through the opening (0) along a longitudinal axis (X) of the channel (C2); - a closure part (9), secured to the body (2), preferably produced in the form of a cover (3) which is perforated by covering the channel (C2) on a side opposite the opening (0); characterized in that the ventilation device (1) comprises a metal filter medium (8; 108) for fire protection carried by or covering the body (2) in an arrangement underlying the body (2) opposite the closure part (9), the metal filter medium (8;108) including a flexible fabric or layer (ML) of gas-permeable metal wires or fibers and closing the channel (C2) from below, whereby the metal filter medium (8; 108) forms a barrier to solid particles to allow only a purified fluid flow without solid particles to pass into the channel (C2).;
2. Device according to claim 1, in which the metallic filter medium (8; 108) is composed of at least 95% by mass of metal wires and / or fibers, the metal preferably being steel.
3. Device according to claim 1 or 2, in which the body (2) has a central axis forming the longitudinal axis of the channel (C2) and is axially interposed between a structural frame (4) and the closure part (9), the structural frame (4) defining a support, distinct from the body (2), for maintaining the metallic filter medium (8; 108) pinched or sandwiched between the structural frame (4) and the body (2).
4. Device according to claim 3, in which the structural frame (4) includes a grid (G4; 4a, 4b) whose openings have a smaller dimension at least equal to 2 or 3 mm, the grid (G4; 4a, 4b) being overlapped with respect to the metallic filter medium (8; 108).
5. Device according to any one of the preceding claims, further comprising a gas-permeable membrane (5), carried by the body (2) closing the channel (C2) opposite the filter medium. metallic (8; 108), the membrane (5) constituting a filtration part, the membrane (5) being flexible and partly fragile so as to no longer block the channel (C2) in a perforated or burst state of the membrane (5) obtained in the event of overpressure in the channel (C2) beyond an overpressure threshold.
6. Device according to claim 5, comprising opposite the channel (C2) a piercing member (6, 6'), carried by one of the sealing part (9) and the body (2), to perforate or burst the membrane (5) in the event of overpressure in the channel (C2) beyond an overpressure threshold.
7. Device according to any one of the preceding claims, in which the closure part (9) is part of a cover (3) capable of being ejected or moved further from the channel (C2) to free a passage allowing the massive escape of a gas flow (FG) in the event of thermal runaway.
8. A device according to any preceding claim, wherein the flexible fabric or layer (ML) comprises at least one layer of a non-woven, fibrous metallic material.
9. A device according to any preceding claim, wherein the flexible fabric or layer (ML) has one or more folded or curved portions to cover the opening (0), the flexible fabric or layer (ML) preferably having a corrugated profile.
10. Method for assembling a ventilation device (1) for a battery case, using a metal filter medium (8; 108) suitable for mounting under a body (2) intended to equip the battery case, the body (2) delimiting a channel (C2) forming an outlet through an opening (0) of said case, the method comprising the following steps: - providing the metal filter medium (8; 108) and a support frame (4; 104) or side wall element intended to surround the metal filter medium; - securing the metal filter medium (8; 108) to the body (2), by fixing the metal filter medium (8; 108) in an arrangement underlying the body (2) opposite an outlet of the channel (C2) allowing the evacuation of gases coming from the case; in which the connection of the filtering medium (8; 108) makes it possible to filter a flow of gas entering the channel (C2), by a flexible fabric or layer (ML) of metal wires or fibers permeable to gas which constitutes or which is part of the metallic filter medium (8; 108), thanks to which the flexible fabric or layer (ML) constitutes, in said device (1), a firewall protection between the housing and the channel (C2) of the body (2) with a barrier effect to solid particles to allow only a purified fluid flow without solid particles to pass through in the channel (C2).
11. An assembly method according to claim 10, wherein a membrane (5) is fixed to the body (2), the membrane (5) being gas-permeable to allow selective filtration of a gas flow circulating in the channel (C2) to leave the battery housing, the method using the body (2), made of a single plastic part, to: - form a first support face for fixing the membrane (5); and - form a second support face for connecting, directly or indirectly, the metal filter media (8; 108) to the rest of the ventilation device (1); knowing that the first support face and the second support face are opposite each other.
Citation Information
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