Vents and containers containing vents
The vent assembly forms a seam around the vent to equalize pressure without apertures, ensuring airtight and burst-resistant containment, addressing the issue of flexible enclosure integrity and leak-proofing.
Patent Information
- Application Number
- JP2024516892
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-09-16
- Filing Date
- 2022-09-16
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2042-09-16
AI Technical Summary
Existing vent assemblies in flexible enclosures, such as battery pouches, are prone to tearing or rupture due to the creation of apertures, compromising the structural integrity and leak-proof nature of the container.
A vent assembly that forms a seam around the vent, allowing pressure equalization without requiring apertures in the container walls, using a vent material with a gas conduit and connecting surfaces to secure the vent within the seam, ensuring airtight and burst-resistant containment.
Maintains the structural integrity of the container while allowing gas exchange, preventing leaks and pressure buildup, with a vent design that enhances gas diffusion efficiency and minimizes vent size for a given flow rate.
Smart Images

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Abstract
Description
[Technical Field]
[0001] Field FIELD OF THE DISCLOSURE The present disclosure relates to vents and containers including vents, and in particular to vents and flexible containers including vents. [Background technology]
[0002] background Vents and vent assemblies may be used to relieve pressure fluctuations and control humidity within the enclosure. Such vents and vent devices must also prevent the ingress of dirt and other contaminants, and must also prevent the ingress of water.
[0003] Enclosures used to hold liquids require a vent or vent assembly to prevent leakage of the liquid held within the enclosure, while also ensuring that gases generated within the enclosure can escape through the vent to prevent a buildup of pressure within the enclosure.
[0004] An exemplary sealed container used to hold a liquid includes a battery pouch that holds a battery electrolyte. Typical battery pouches are made from a flexible material and include one or more vents in the battery pouch wall. Thus, gases generated by the battery electrolyte during use can escape from the battery pouch without causing the battery pouch to rupture or otherwise leak, or without causing a sufficient buildup of pressure within the battery pouch to ensure that capacity is not lost due to pressure buildup.
[0005] However, the use of vents in the enclosure wall requires the creation of apertures in the enclosure wall, which can become weak points when the enclosure is stressed. This potential problem is exacerbated when the enclosure wall is flexible, where the creation of apertures can tear or rupture the enclosure wall material.
[0006] Therefore, a need remains for an improved vent assembly for use with electronic device housings.
[0007] Accordingly, at least some embodiments are directed to providing an improved vent assembly that solves at least one of these problems. Summary of the Invention
[0008] Abstract According to a first aspect, there is provided a sealed container comprising at least one container wall, a seam connecting two edges of the at least one container wall, and a vent, wherein at least a portion of the seam is formed around the vent.
[0009] In a sealed container having a seam formed around the vent, the interior of the sealed container can be vented to the exterior of the sealed container such that pressure between the interior of the sealed container and the exterior of the sealed container is substantially equalized without the need for an aperture in at least one container wall.
[0010] Providing an aperture in at least one container wall can provide a weak point in the at least one container wall. Thus, the sealed container according to the first aspect does not require the formation of an aperture in the at least one container wall, thus maintaining the structural integrity of the sealed container. Providing a vented sealed container that does not require the formation of an aperture in the at least one container wall is particularly important in embodiments where the sealed container is used to hold a liquid to ensure that the sealed container is leak-proof.
[0011] The sealed container can include a single, continuous container wall. The single, continuous container wall can include a first portion including a first edge of the single, continuous container wall and a second portion including a second edge of the single, continuous container wall. The seam can include the first portion and the second portion of the single, continuous container wall, thereby sealing the sealed container.
[0012] The sealed container can include multiple container walls. The multiple container walls can include a first container wall and a second container wall, and the seam can include an edge of the first container wall and an edge of the second container wall, thereby sealing the sealed container.
[0013] The sealed container can include a single seam. The sealed container can include multiple seams. For example, the sealed container can include two walls, three walls, four or more walls.
[0014] In embodiments including multiple container walls, the multiple container walls can include at least two container walls that connect without a seam along at least one edge, with a single seam extending around the remaining edge between the at least two container walls.
[0015] The container walls can be bonded together along at least one edge to form a seam. The container walls can be welded together along at least one edge to form a seam. The container walls can be heat welded together, impulse welded together, or welded together using another welding method. The method of bonding or welding the container walls along at least one edge can depend on the type of material forming the container walls.
[0016] The seam can be substantially airtight, such that substantially the only way gas can pass from the interior of the enclosure to the exterior of the enclosure is via the vent.
[0017] As used herein, the term "airtight" refers to an enclosure or seam that does not allow gas to pass through the enclosure's walls or seams, or that does not allow gas to pass substantially through the enclosure's walls or seams. For example, an airtight enclosure that is substantially airtight may allow less than 0.1 bar / hour, less than 0.07 bar / hour, less than 0.05 bar / hour, less than 0.02 bar / hour, or less than 0.01 bar / hour to escape from the interior of the enclosure to the exterior of the enclosure. The enclosure may allow between 0.1 bar / hour and 0.005 bar / hour. The enclosure may allow between 0.1 bar / hour and 0.01 bar / hour.
[0018] The sealed container can be substantially burst-resistant. For example, the sealed container can have a burst-resistance of greater than 0.1 MPa, greater than 0.2 MPa, greater than 0.3 MPa, greater than 0.4 MPa, greater than 0.5 MPa, greater than 0.6 MPa, greater than 0.7 MPa, 0.8 MPa, greater than 0.9 MPa, or greater than 1.0 MPa. The sealed container can have a burst-resistance of about 0.1 MPa to about 1.5 MPa. The sealed container can have a burst-resistance of about 0.1 MPa to about 1.0 MPa.
[0019] At least one container wall among the plurality of container walls can be a flexible container wall. The flexible container wall can include a polymer material. The flexible container wall can include polypropylene (PP), polyamide (PA), or polybutylene terephthalate (PBT), polyethylene (PE), or polyethylene terephthalate (PET). At least one container wall among the plurality of container walls can include a metal material. At least one container wall can include aluminum. At least one container wall can include, for example, aluminum foil.
[0020] At least one container wall may comprise a laminate material. The laminate material may comprise at least one polymer layer. The laminate material may comprise at least one metal layer. The laminate material may comprise at least one polymer layer and at least one metal layer. The laminate material may comprise a first polymer layer, a metal layer, and a second polymer layer. The metal layer may be located between the first polymer layer and the second polymer layer.
[0021] The sealed container can be a pouch.
[0022] The sealed container can be a battery pouch. The sealed container can be configured to hold a battery fluid that allows ions to migrate from the first electrode to the second electrode through the battery fluid. Thus, the sealed container can hold at least two electrodes and at least two electrical contacts configured to connect the at least two electrodes to an external electrical circuit. At least one container wall can be configured to be substantially impermeable to the fluid held within the sealed container. For example, the battery pouch can be a lithium (Li)-ion pouch cell.
[0023] At least one container wall of the plurality of container walls can be a rigid container wall. The rigid container wall can include a rigid polymer material. The rigid container wall can include a thermoplastic material. The rigid container wall can include a reinforced thermoplastic material. For example, the rigid container wall can include a thermoplastic material such as polypropylene (PP), polyethylene (PE), polybutylene terephthalate (PBT), or polyethylene terephthalate (PET) reinforced with fibers such as glass fibers or the like. The rigid container can include a rigid metal material. The rigid container wall can include, for example, aluminum, steel, stainless steel, copper, brass, bronze, tin, or lead.
[0024] The vent may include a vent material, at least one opening, and at least one connecting surface that secures the vent within the seam, wherein the at least one opening and the vent material form a gas conduit such that, during use, gas passes from the interior of the enclosed container to the exterior of the enclosed container through the gas conduit.
[0025] The vent material may comprise a polymeric material, which may be selected from the group consisting of polyethylene (PE), polyethylene terephthalate (PET), or a fluoropolymer such as polytetrafluoroethylene (PTFE) or fluorinated ethylene propylene (FEP).
[0026] The vent material may comprise an expanded (expanded, swollen, stretched, or foamed) polymer material, which may be selected from the group consisting of expanded PE (ePE), expanded PET (ePET), or expanded fluoropolymers such as expanded PTFE (ePTFE) or expanded FEP (eFEP).
[0027] The vent material may comprise a dense polymer material, which may be selected from the group consisting of dense PE, dense PET, or dense fluoropolymers such as dense PTFE or dense FEP.
[0028] The vent material can include a densified expanded polymer material, which can be selected from the group consisting of densified ePE, densified ePET, or densified expanded fluoropolymers such as densified ePTFE or densified eFEP.
[0029] As used herein, the term "densified expanded polymeric material" refers to an expanded polymeric material that has been densified after the material has been expanded.
[0030] A dense or densified material is typically a material that has reduced porosity when compared to an undensified or non-densified material.
[0031] The vent material can be a porous material. The vent material can be sufficiently porous to allow gas flow therethrough and to allow gas generated within the enclosure to escape through the vent material and out of the enclosure. Thus, the vent material can allow gas or air flow across the vent material.
[0032] The vent material can be configured to allow diffusion of gas through the vent material. The vent material can include pores that allow gas to diffuse through the vent material. The pores can be sized to allow gas to diffuse through the vent material but small enough to prevent gas from flowing through the vent material. The vent material can be structured so that gas must take an indirect path through the vent material.
[0033] The vent can include a first connecting surface. The first connecting surface can connect the vent to the seam. The vent can include a second connecting surface. The second connecting surface can connect the vent to the seam. The second connecting surface can be on an opposite side of the vent from the first connecting surface.
[0034] The vent may be impermeable to liquids, and thus may allow the passage of gas through the gas conduit but not liquid.
[0035] The vent material can form a pocket. An opening of the at least one opening can be an opening of the pocket. The pocket can be formed in the vent material. The gas conduit can extend from the opening through the pocket and through the vent material.
[0036] As used herein, the term "pocket" refers to a gap or opening between the surfaces of the vent material. The gap or opening typically extends from at least one opening through the width of the seam to the interior of the enclosure.
[0037] The pocket may extend from the seam into the enclosure.
[0038] The vent material can include a membrane. The vent material can include a film. The vent material can be folded upon itself to form a pocket. Thus, the vent material can form a first side of the pocket, a second side of the pocket, and a third side of the pocket. The first side of the pocket can be opposite the second side of the pocket. The third side of the pocket can correspond to the portion of the vent material that forms the fold where the vent material is folded upon itself. The first side of the pocket and the second side of the pocket can be connected to each other with the pocket extending therebetween. The first side of the pocket and the second side of the pocket can be glued together. The first side of the pocket and the second side of the pocket can be welded together.
[0039] The vent material can be supported on a flexible substrate, which can connect the vent material to the seam. In embodiments where the vent material comprises a densified polymer or a densified expanded polymer, the flexible substrate can more easily and reliably connect the vent material to the seam.
[0040] The flexible substrate may include a more open structure than the vent material. The flexible substrate may be configured to ensure unimpeded passage of gas from the interior of the enclosed container to the exterior of the enclosed container.
[0041] The vent can include a laminate. The laminate can include multiple layers. At least one of the multiple layers can be a layer of vent material. At least one of the multiple layers can be a layer of flexible substrate. At least one of the multiple layers can be an intermediate layer. The intermediate layer can be between the layer of vent material and the layer of flexible substrate. The intermediate layer can make it easier to connect the layer of vent material to the layer of flexible substrate. For example, the intermediate layer can adhere the vent material to the layer of flexible substrate.
[0042] A laminate can include at least three layers. A laminate can include at least four layers. A laminate can include at least five layers. A laminate can include at least six layers. A laminate can include at least seven layers. A laminate can include between two and seven layers. A laminate can include between three and five layers. For example, a laminate can include three, four, or five layers.
[0043] In some embodiments, the laminate can include a layer of vent material, a first layer of flexible substrate, and a second layer of flexible substrate. The layer of vent material can be disposed between the first layer of flexible substrate and the second layer of flexible substrate.
[0044] In some embodiments, the laminate can include a layer of vent material, a first layer of flexible substrate, a second layer of flexible substrate, a first intermediate layer, and a second intermediate layer. The layer of vent material can be disposed between the first intermediate layer and the second intermediate layer. The first layer of flexible substrate can be disposed on the first intermediate layer opposite the side connected to the vent layer. The second layer of flexible substrate can be disposed on the second intermediate layer opposite the side connected to the layer of vent material.
[0045] The first layer of flexible substrate and / or the second layer of flexible substrate can comprise a material that is more porous than the layer of vent material. In some embodiments, the first layer of flexible substrate and / or the second layer of flexible substrate can comprise a more porous form of the vent material than the layer of vent material. In some embodiments, the first layer of flexible substrate and / or the second layer of flexible substrate can comprise a different material than the layer of vent material.
[0046] The or each intermediate layer can include a fluoropolymer. In embodiments in which the layer of vent material includes a fluoropolymer, the or each intermediate layer can include a fluoropolymer that is different from the fluoropolymer of the layer of vent material. The or each intermediate layer can include FEP, a terpolymer of tetrafluoroethylene, hexafluoropropylene, and vinylidene fluoride (THV), or a perfluoroalkoxyalkane (PFA). For example, the or each intermediate layer can include FEP.
[0047] In embodiments in which the vent material forms a pocket, the pocket can be formed by folding the laminate onto itself to form the pocket. Thus, in embodiments including a first layer of flexible substrate and a second layer of flexible substrate, the first layer of flexible substrate can form the exterior of the pocket, and the second layer of flexible substrate can form the interior of the pocket. The first layer of flexible substrate can connect the vent formed by the pocket to the seam. Thus, the first layer of flexible substrate can be configured to form a secure, sealed connection between the vent and the seam.
[0048] In embodiments including an intermediate layer, the intermediate layer may be configured to allow the layer of vent material to be more securely connected to the layer of flexible substrate.
[0049] The layer of flexible substrate may extend beyond the layer of vent material.
[0050] The opening of the pocket can be open to the outside of the sealed container, or the opening of the pocket can be open to the inside of the sealed container.
[0051] During use, gases generated within the enclosure can pass through the vent material into the pocket and then escape through an opening in the pocket to the exterior of the enclosure.
[0052] The length of the pocket can be configured to control the diffusion rate or gas flow rate through the vent from the interior of the sealed container to the exterior of the sealed container. The length of the pocket extending into the interior of the sealed container can be configured to control the diffusion rate or gas flow rate through the vent from the interior of the sealed container to the exterior of the sealed container. Thus, a higher diffusion rate or higher gas flow rate through the vent can be provided by a longer pocket, thereby providing a larger surface area of the vent material exposed to the interior of the sealed container. A lower diffusion rate or lower gas flow rate through the vent can be provided by a shorter pocket, thereby providing a lower surface area of the vent material exposed to the interior of the sealed container.
[0053] The width of the pocket can be configured to control the diffusion rate or gas flow rate through the vent from the interior of the sealed container to the exterior of the sealed container. The width of the pocket extending along the seam of the sealed container can be configured to control the diffusion rate or gas flow rate through the vent from the interior of the sealed container to the exterior of the sealed container. Thus, a higher diffusion rate or higher gas flow rate through the vent can be provided by a wider pocket, thereby providing a larger surface area of the vent material exposed to the interior of the sealed container. A lower diffusion rate or lower gas flow rate through the vent can be provided by a narrower pocket, thereby providing a lower surface area of the vent material exposed to the interior of the sealed container.
[0054] The vent material can include at least two connecting surfaces, including a first connecting surface on a first side of the vent material and a second connecting surface on a second side of the vent material, the first side being opposite the second side of the vent material. The at least two connecting surfaces can be configured to connect the vent material to at least one container wall. Thus, the at least two connecting surfaces can secure the vent to the seam. The at least two connecting surfaces can seal the vent within the seam, ensuring that the only path for gas to pass from the interior of the sealed container to the exterior of the sealed container is through the vent.
[0055] The first connecting surface may include an asymmetric connection between the vent material and the first surface of the seam.
[0056] The second connecting surface may include an asymmetric connection between the vent material and the second surface of the seam.
[0057] As used herein, the term "asymmetric connection" refers to a connection provided on a surface having at least one discontinuity in the connecting surface such that the connection is asymmetric in at least one plane. For example, the connection can be asymmetric in a plane that divides the front of the vent material (i.e., the portion of the vent material adjacent the exterior of the enclosed container) and the rear of the vent material (i.e., the portion of the vent material adjacent the interior of the enclosed container).
[0058] The asymmetric connection between the vent material and the second surface of the seam can partially overlap the asymmetric connection between the vent material and the first surface of the seam.
[0059] The first side of the vent material can include an unconnected portion. Thus, there can be a portion of the first side of the vent material that is not connected to at least one container wall. A first channel can be formed between the first side of the vent material and the at least one container wall. The first channel can correspond to the unconnected portion of the first side of the vent material. The first channel can be bounded on at least one side by a first connecting surface. The first channel can be bounded on at least two sides by a first connecting surface. The first channel can be bounded on at least three sides by a first connecting surface.
[0060] The second side of the vent material can include an unconnected portion. Thus, there can be a portion of the second side of the vent material that is not connected to at least one container wall. A second channel can be formed between the second side of the vent material and the at least one container wall. The second channel can correspond to the unconnected portion of the second side of the vent material. The second channel can be bounded on at least one side by a second connecting surface. The second channel can be bounded on at least two sides by a second connecting surface. The second channel can be bounded on at least three sides by a second connecting surface.
[0061] In embodiments in which a first channel is formed between a first side of the vent material and at least one vessel wall and a second channel is formed between a second side of the vent material and at least one vessel wall, the first channel can extend from an opening adjacent an exterior of the sealed vessel toward an interior of the sealed vessel, and the second channel can extend from an opening adjacent an interior of the sealed vessel toward an exterior of the sealed vessel.
[0062] The first connecting surface can be disposed adjacent an interior of the enclosure, and the unconnected portion of the first side of the vent material can be disposed adjacent an exterior of the enclosure.
[0063] The first connecting surface can be adjacent to an exterior of the enclosure, and the non-connecting surface of the first side of the vent material can be adjacent to an interior of the enclosure.
[0064] The second connecting surface can be disposed adjacent an interior of the enclosure, and the unconnected portion of the second side of the vent material can be disposed adjacent an exterior of the enclosure.
[0065] The second connecting surface can be adjacent to an exterior of the enclosure, and the non-connecting surface of the second side of the vent material can be adjacent to an interior of the enclosure.
[0066] The first connecting surface may include two sides extending along opposing edges and substantially extending from an edge of a first side of the vent material adjacent the exterior of the sealed container (the "first outer edge") to an edge of the vent material adjacent the interior of the sealed container (the "first inner edge"). The first connecting surface may include an intersection extending between the two sides. The intersection may seal and separate the interior of the sealed container from the exterior of the sealed container. The intersection may be located adjacent to the first inner edge. The intersection may be located adjacent to the first outer edge. Thus, the first connecting surface may form, for example, a "U-shape." The intersection may be located midway between the first outer edge and the first inner edge. The intersection may be located closer to the first inner edge than the first outer edge. The intersection may be closer to the first outer edge than the first inner edge. The intersection may be located 90%, 80%, 70%, or 60% of the way from the first outer edge to the first inner edge, or any value therebetween. The intersection can be located 60% to 100% from the first outer edge to the first inner edge, and 100% from the first outer edge corresponds to being located at the first inner edge.
[0067] The second connecting surface may include two sides extending along opposing edges and extending substantially from an edge of the second side of the vent material adjacent the exterior of the sealed container (the "second outer edge") to an edge of the second side of the vent material adjacent the interior of the sealed container (the "second inner edge"). The second connecting surface may include an intersection extending between the two sides. The intersection may seal and separate the interior of the sealed container from the exterior of the sealed container. The intersection may be located adjacent to the second inner edge. The intersection may be located adjacent to the second outer edge. Thus, the second connecting surface may form, for example, a "U-shape." The intersection may be located midway between the second outer edge and the second inner edge. The intersection may be located closer to the second inner edge than the second outer edge. The intersection may be closer to the second outer edge than the second inner edge. The intersection may be located 90%, 80%, 70%, or 60% of the way from the second inner edge to the second outer edge, or any value therebetween. The intersection can be located 60% to 100% from the second inner edge to the second outer edge, and 100% from the second inner edge corresponds to being located at the second outer edge.
[0068] In some embodiments, the intersection of the first connecting surface can be oriented in an opposite direction from the intersection of the second connecting surface. For example, the intersection of the first connecting surface can be adjacent to or at the first outer edge, and the intersection of the second connecting surface can be adjacent to or at the second inner edge. By providing the first and second channels formed by the first and second connecting surfaces, a greater surface area of the vent material is provided for gas to diffuse or flow into while maintaining a sealed seam between the vent material and at least one container wall.
[0069] It has been found that increasing the surface area of the vent material available for gas diffusion within the vent in the seam of the enclosure improves the efficiency of the vent and allows the size of the vent to be minimized for a given required minimum gas diffusion rate.
[0070] Furthermore, it has been found that providing an available surface area of the vent material on the first side of the vent material and on the second side of the vent material increases the available paths through the vent material that gas can take to pass from the interior of the enclosed vessel to the exterior of the enclosed vessel.
[0071] The first connecting surface can include an adhesive and can bond the vent material to the at least one vessel wall. The first connecting surface can include a welding surface that welds the vent material to the at least one vessel wall. The first connecting surface can be a modified portion of a surface on a first side of the vent material that has been modified to change the properties of the first connecting surface. The first connecting surface can have a greater surface roughness than an unmodified surface of the vent material. The first connecting surface can be more porous than the unmodified surface of the vent material. The first connecting surface can be configured to be more easily glued, welded, or otherwise connected to the at least one vessel wall.
[0072] The second connecting surface can include an adhesive and can bond the vent material to the at least one vessel wall. The second connecting surface can include a welding surface that welds the vent material to the at least one vessel wall. The second connecting surface can be a modified portion of the surface of the second side of the vent material that has been modified to change the properties of the second connecting surface. The second connecting surface can have a greater surface roughness than the unmodified surface of the vent material. The second connecting surface can be more porous than the unmodified surface of the vent material. The second connecting surface can be configured to be more easily glued, welded, or otherwise connected to the at least one vessel wall.
[0073] The first connecting surface may be a mirror image of the second connecting surface.
[0074] In some embodiments, the vent can include a vent body. The vent body can include at least one opening. The vent body can include at least one opening for the vent. The vent body can include at least one connecting surface for connecting the vent to at least one container wall at a seam. The vent body can contain a vent material. Thus, a gas conduit can extend through the vent body.
[0075] The vent body can provide additional mechanical strength to the vent. The vent body can define a gas conduit. The vent body can include at least one internal opening adjacent to the interior of the enclosed vessel and at least one external opening adjacent to the exterior of the enclosed vessel. Thus, gas can be required to pass through the at least one internal opening, through the vent material, and through the at least one external opening.
[0076] The vent body can include a vent aperture. The vent aperture can correspond to one of the at least one opening in the vent body. The vent aperture can extend beyond the seam. The portion of the vent body including the vent aperture can extend beyond the seam. The portion of the vent body including the vent aperture can extend beyond the seam into the interior of the enclosed container. The portion of the vent body including the vent aperture can extend beyond the seam to the exterior of the enclosed container. The vent aperture can have a major planar surface. The vent aperture can be rectangular, oblong, or square in shape. The vent aperture can be curved. The vent aperture can be circular or elliptical. The shape of the vent aperture can define the major planar surface of the vent aperture. The vent material can extend across the vent aperture. The vent material can span the vent aperture. For example, the vent material can be a vent membrane that extends across the vent aperture. The vent material can include a laminate material, as described above.
[0077] The vent body can include a major plane. A portion of the vent body can include a major plane. The major plane of the vent body or a portion of the vent body can be coincident with or parallel to the major plane of the seam. The major plane of the vent aperture can be disposed within the major plane of the vent body or in a plane parallel to the major plane of the vent body. The major plane of the vent aperture can be disposed substantially perpendicular to the major plane of the vent body. The major plane of the vent aperture can be disposed at an angle with the major plane of the vent body and perpendicular to the major plane of the vent body.
[0078] The vent body can include a connecting portion connecting the vent aperture to a portion of the vent body including the major planar surface. The gas conduit can extend from the at least one opening through the portion of the vent body including the major planar surface and the connecting portion to the vent aperture.
[0079] The at least one internal opening can be offset from the at least one external opening. The at least one internal opening can be offset from the at least one external opening in at least one dimension. The at least one internal opening can be offset from the at least one external opening in at least two dimensions. The at least one internal opening can be vertically offset from the at least one external opening. The at least one internal opening can be horizontally offset from the at least one external opening. The at least one internal opening can be vertically and horizontally offset from the at least one external opening. As used herein, the term "vertically" refers to a direction perpendicular to the major plane of the vent body. The term "horizontally" refers to a direction within the major plane of the vent body or within a plane parallel to the major plane of the vent body. Thus, gas passing through the vent may need to change direction of flow at least one time from the at least one internal opening to the at least one external opening. A gas conduit from the at least one internal opening to the at least one external opening can require at least one change of direction of flow. Thus, the vent can impede the linear flow of gas through the vent material, thereby forcing the gas to pass through a higher volume of the vent material.
[0080] The vent body may include a central portion, a first tapered portion, and a second tapered portion. The central portion may be located between the first tapered portion and the second tapered portion. The first tapered portion may be configured to gradually decrease the thickness of the vent body with increasing distance from the central portion. The second tapered portion may be configured to gradually decrease the thickness of the vent body with increasing distance from the central portion. Thus, the vent body may be configured to more easily form a secure seal within a seam between the vent body and two portions of the at least one wall. The vent body may be more securely retained within a seam of the sealed container, promoting a tighter seal between the at least one container wall and the vent within the seam, and between both portions of the at least one container wall on either side of the vent within the seam.
[0081] The first tapered portion and / or the second tapered portion can be tapered on one side. The first tapered portion and / or the second tapered portion can be tapered on two sides. The first tapered portion and / or the second tapered portion can be tapered on two opposite sides.
[0082] The vent material can be disposed between at least one internal opening and at least one external opening. The vent body can include a central cavity. The central cavity can be disposed between the at least one internal opening and the at least one external opening. The central cavity can connect the at least one internal opening to the at least one external opening. The vent material can span the central cavity. Thus, gas flowing or diffusing from the at least one internal opening to the at least one external opening can be forced through the vent material in the central cavity.
[0083] The vent may not extend beyond the seam to the interior of the sealed container. The vent may not extend beyond the seam to the exterior of the sealed container. In some embodiments, the vent may be held entirely within the seam, such that it does not extend into the interior of the sealed container, nor does it extend to the exterior of the sealed container.
[0084] In a second aspect, there is provided a vent comprising a vent material, at least one opening and at least one connecting surface, wherein the vent is configured to be mounted within a seam of a sealed container having an interior and an exterior, such that the at least one opening is adjacent to the exterior of the sealed container, and the at least one connecting surface is configured to connect the vent within the seam, and wherein the at least one opening and the vent material form a gas conduit, such that when the vent is installed within the seam of the sealed container, in use, gas passes from the interior of the sealed container to the exterior of the sealed container through the gas conduit.
[0085] The vent material may comprise a polymeric material, which may be selected from the group consisting of polyethylene (PE), polyethylene terephthalate (PET), or a fluoropolymer such as polytetrafluoroethylene (PTFE) or fluorinated ethylene propylene (FEP).
[0086] The vent material may comprise an expanded polymer material, which may be selected from the group consisting of expanded PE (ePE), expanded PET (ePET), or expanded fluoropolymers such as expanded PTFE (ePTFE) or expanded FEP (eFEP).
[0087] The vent material may comprise a dense polymer material, which may be selected from the group consisting of dense PE, dense PET, or dense fluoropolymers such as dense PTFE or dense FEP.
[0088] The vent material may comprise a densified expanded polymer material, which may be selected from the group consisting of densified ePE, densified ePET, or densified expanded fluoropolymers such as densified ePTFE or densified eFEP.
[0089] The vent material can be a porous material. The vent material can be sufficiently porous to allow gas flow through the vent material such that gas can pass through the vent material of the vent. Thus, the vent material can allow gas or air flow across the vent material.
[0090] The vent material can be configured to allow diffusion of gas through the vent material. The vent material can include pores that allow gas to diffuse through the vent material. The pores can be sized to allow gas to diffuse through the vent material but small enough to prevent gas from flowing through the vent material. The vent material can be structured so that gas must take an indirect path through the vent material.
[0091] The vent may include a first connecting surface. The first connecting surface may connect the vent to a seam of the enclosed container when the vent is installed in the seam. The vent may include a second connecting surface. The second connecting surface may connect the vent to a seam of the enclosed container when the vent is installed in the seam. The second connecting surface may be on an opposite side of the vent from the first connecting surface.
[0092] The vent may be impermeable to liquids, and thus may allow the passage of gas through the gas conduit but not liquid.
[0093] The vent material can have a pocket formed therein. An opening of the at least one opening can be an opening of the pocket. The pocket can be formed in the vent material. A gas conduit can extend from the opening through the pocket and through the vent material.
[0094] As used herein, the term "pocket" refers to a gap or opening between the surfaces of the vent material. When a vent is installed in a seam of a sealed container, the gap or opening typically extends from at least one opening through the width of the seam to the interior of the sealed container.
[0095] When the vent is located in a seam of the enclosure, the pocket can extend from the seam into the enclosure.
[0096] The vent material can include a membrane. The vent material can include a film. The vent material can be folded upon itself to form a pocket. Thus, the vent material can form a first side of the pocket, a second side of the pocket, and a third side of the pocket. The first side of the pocket can be opposite the second side of the pocket. The third side of the pocket can correspond to the portion of the vent material that forms the fold where the vent material is folded upon itself. The first side of the pocket and the second side of the pocket can be connected to each other with the pocket extending therebetween. The first side of the pocket and the second side of the pocket can be glued together. The first side of the pocket and the second side of the pocket can be welded.
[0097] The vent material may be supported on a flexible substrate that can connect the vent material to the seam when the vent is installed in the seam of the sealed container. In embodiments where the vent material comprises a densified polymer or a densified expanded polymer, the flexible substrate can more easily and reliably connect the vent material to the seam when the vent is installed in the seam of the sealed container.
[0098] The flexible substrate may include a more open structure than the vent material. The flexible substrate may be configured to ensure that when the vent is placed in a seam of the enclosure, the passage of gas from the interior of the enclosure to the exterior of the enclosure is unimpeded.
[0099] The vent can include a laminate. The laminate can include multiple layers. At least one of the multiple layers can be a layer of vent material. At least one of the multiple layers can be a layer of flexible substrate. At least one of the multiple layers can be an intermediate layer. The intermediate layer can be between the layer of vent material and the layer of flexible substrate. The intermediate layer allows the layer of vent material to be more easily connected to the layer of flexible substrate. For example, the intermediate layer can adhere the vent material to the layer of flexible substrate.
[0100] A laminate can include at least three layers. A laminate can include at least four layers. A laminate can include at least five layers. A laminate can include at least six layers. A laminate can include at least seven layers. A laminate can include between two and seven layers. A laminate can include between three and five layers. For example, a laminate can include three, four, or five layers.
[0101] In some embodiments, the laminate can include a layer of vent material, a first layer of flexible substrate, and a second layer of flexible substrate. The layer of vent material can be disposed between the first layer of flexible substrate and the second layer of flexible substrate.
[0102] In some embodiments, the laminate can include a layer of vent material, a first layer of flexible substrate, a second layer of flexible substrate, a first intermediate layer, and a second intermediate layer. The layer of vent material can be disposed between the first intermediate layer and the second intermediate layer. The first layer of flexible substrate can be disposed on the first intermediate layer opposite the side connected to the vent layer. The second layer of flexible substrate can be disposed on the second intermediate layer opposite the side connected to the layer of vent material.
[0103] The first layer of flexible substrate and / or the second layer of flexible substrate can comprise a material that is more porous than the layer of vent material. In some embodiments, the first layer of flexible substrate and / or the second layer of flexible substrate can comprise a more porous form of vent material than the layer of vent material. In some embodiments, the first layer of flexible substrate and / or the second layer of flexible substrate can comprise a different material than the layer of vent material.
[0104] The or each intermediate layer can include a fluoropolymer. In embodiments in which the layer of vent material includes a fluoropolymer, the or each intermediate layer can include a fluoropolymer that is different from the fluoropolymer of the layer of vent material. The or each intermediate layer can include FEP, a terpolymer of tetrafluoroethylene, hexafluoropropylene, and vinylidene fluoride (THV), or a perfluoroalkoxyalkane (PFA). For example, the or each intermediate layer can include FEP.
[0105] In embodiments in which the vent material forms a pocket, the pocket can be formed by folding the laminate over itself to form the pocket. Thus, in embodiments including a first layer of flexible substrate and a second layer of flexible substrate, the first layer of flexible substrate can form the exterior of the pocket, and the second layer of flexible substrate can form the interior of the pocket. The first layer of flexible substrate can connect the vent formed by the pocket to a seam. Thus, the first layer of flexible substrate can be configured to form a secure, sealed connection between the vent and the seam when the vent is installed within the seam of a sealed container.
[0106] In embodiments including an intermediate layer, the intermediate layer may be configured to allow the layer of vent material to be more securely connected to the layer of flexible substrate.
[0107] The layer of flexible substrate may extend beyond the layer of vent material.
[0108] When the vent is located within a seam of the sealed container, the opening of the pocket can open to the exterior of the sealed container.When the vent is located within a seam of the sealed container, the opening of the pocket can open to the interior of the sealed container.
[0109] During use, when the vent is installed in the seam of the enclosure, gases generated within the enclosure can pass through the vent material into the pocket and then through the opening in the pocket to the exterior of the enclosure.
[0110] The length of the pocket can be configured to control the rate of diffusion or gas flow from the interior of the sealed container to the exterior of the sealed container through the vent when the vent is installed in a seam of the sealed container. The length of the pocket extending into the interior of the sealed container can be configured to control the rate of diffusion or gas flow from the interior of the sealed container to the exterior of the sealed container through the vent. Thus, a higher diffusion rate or higher gas flow rate through the vent can be provided by a longer pocket, thereby providing a larger surface area of the vent material exposed to the interior of the sealed container. A lower diffusion rate or lower gas flow rate through the vent can be provided by a shorter pocket, thereby providing a lower surface area of the vent material exposed to the interior of the sealed container.
[0111] The width of the pocket can be configured to control the rate of diffusion or gas flow from the interior of the sealed container to the exterior of the sealed container through the vent when the vent is installed within the seam of the sealed container. The width of the pocket extending along the seam of the sealed container can be configured to control the rate of diffusion or gas flow from the interior of the sealed container to the exterior of the sealed container through the vent. Thus, a higher diffusion rate or higher gas flow rate through the vent can be provided by a wider pocket, thereby providing a larger surface area of the vent material exposed to the interior of the sealed container. A lower diffusion rate or lower gas flow rate through the vent can be provided by a narrower pocket, thereby providing a lower surface area of the vent material exposed to the interior of the sealed container.
[0112] The vent material can include at least two connecting surfaces, including a first connecting surface on a first side of the vent material and a second connecting surface on a second side of the vent material, where the first side is opposite the second side of the vent material. The at least two connecting surfaces can be configured to connect the vent material to at least one container wall when the vent is installed in a seam of the sealed container. Thus, the at least two connecting surfaces can secure the vent to the seam. The at least two connecting surfaces can seal the vent within the seam when the vent is installed in the seam of the sealed container to ensure a single path for gas to pass from the interior of the sealed container to the exterior of the sealed container through the vent.
[0113] The first connection surface can include an asymmetric connection between the vent material and the first surface of the seam when the vent is installed in the seam of the enclosure.
[0114] The second connecting surface can include an asymmetric connection between the vent material and the second surface of the seam when the vent is installed in the seam of the enclosure.
[0115] As used herein, the term "asymmetric connection" refers to a connection provided on a surface having at least one discontinuity in the connecting surface such that the connection is asymmetric in at least one plane. For example, the connection can be asymmetric in a plane that separates the front of the vent material (i.e., the portion of the vent material that is adjacent the exterior of the enclosure when the vent is installed in the seam of the enclosure) from the rear of the vent material (i.e., the portion of the vent material that is adjacent the interior of the enclosure when the vent is installed in the seam of the enclosure).
[0116] When the vent is installed in a seam of a closed container, the asymmetric connection between the vent material and the second surface of the seam can partially overlap with the asymmetric connection between the vent material and the first surface of the seam.
[0117] The first side of the vent material can include an unconnected portion. Thus, when the vent is installed in a seam of a sealed container, a portion of the first side of the vent material can be unconnected to at least one container wall. A first channel can be formed between the first side of the vent material and the at least one container wall. The first channel can correspond to the unconnected portion of the first side of the vent material. The first channel can be bounded on at least one side by a first connecting surface. The first channel can be bounded on at least two sides by a first connecting surface. The first channel can be bounded on at least three sides by a first connecting surface.
[0118] The second side of the vent material may include an unconnected portion. Thus, when the vent is installed in a seam of a sealed container, a portion of the second side of the vent material may not be connected to at least one container wall. A second channel may be formed between the second side of the vent material and the at least one container wall. The second channel may correspond to the unconnected portion of the second side of the vent material. The second channel may be bounded on at least one side by a second connecting surface. The second channel may be bounded on at least two sides by a second connecting surface. The second channel may be bounded on at least three sides by a second connecting surface.
[0119] In embodiments in which a first channel is formed between a first side of the vent material and at least one container wall and a second channel is formed between a second side of the vent material and at least one container wall when the vent is installed in a seam of the sealed container, the first channel can extend from an opening adjacent the exterior of the sealed container toward the interior of the sealed container, and the second channel can extend from an opening adjacent the interior of the sealed container toward the exterior of the sealed container.
[0120] The first connecting surface can be adjacent to an interior of the enclosure when the vent is installed in a seam of the enclosure, and the unconnected portion of the first side of the vent material can be adjacent to an exterior of the enclosure.
[0121] The first connecting surface can be adjacent to an exterior of the sealed can when the vent is installed in a seam of the sealed can, and the non-connecting surface of the first side of the vent material can be adjacent to an interior of the sealed can.
[0122] The second connecting surface can be adjacent to the interior of the enclosure when the vent is installed in the seam of the enclosure, and the unconnected portion of the second side of the vent material can be adjacent to the exterior of the enclosure.
[0123] The second connecting surface can be adjacent to an exterior of the enclosure when the vent is installed in a seam of the enclosure, and the non-connecting surface of the second side of the vent material can be adjacent to an interior of the enclosure.
[0124] The first connecting surface may include two edges that extend along opposing edges when the vent is installed in the seam of the sealed container, extending substantially from an edge of a first side of the vent material adjacent the exterior of the sealed container (the first outer edge) to an edge of the vent material adjacent the interior of the sealed container (the "first inner edge"). The first connecting surface may include an intersection portion extending between the two sides. The intersection portion may seal and separate the interior of the sealed container from the exterior of the sealed container. The intersection portion may be located adjacent to the first inner edge. The intersection portion may be located adjacent to the first outer edge. Thus, the first connecting surface may form, for example, a "U-shape." The intersection portion may be located midway between the first outer edge and the first inner edge. The intersection portion may be located closer to the first inner edge than the first outer edge. The intersection portion may be located closer to the first outer edge than the first inner edge. The intersection can be located 90%, 80%, 70%, or 60%, or any value between, from the first outer edge to the first inner edge. The intersection can be located 60% to 100% from the first outer edge to the first inner edge, with 100% from the first outer edge corresponding to being located at the first inner edge.
[0125] The second connecting surface may include two sides that extend along opposing edges when the vent is installed in the seam of the sealed container, extending substantially from an edge of the second side of the vent material adjacent the exterior of the sealed container (the "second outer edge") to an edge of the second side of the vent material adjacent the interior of the sealed container (the "second inner edge"). The second connecting surface may include an intersection portion extending between the two sides. The intersection portion may seal and separate the interior of the sealed container from the exterior of the sealed container. The intersection portion may be located adjacent to the second inner edge. The intersection portion may be located adjacent to the second outer edge. Thus, the second connecting surface may form, for example, a "U-shape." The intersection portion may be located midway between the second outer edge and the second inner edge. The intersection portion may be located closer to the second inner edge than the second outer edge. The intersection portion may be located closer to the second outer edge than the second inner edge. The intersection can be located 90%, 80%, 70%, or 60%, or any value between these, from the second inner edge to the second outer edge. The intersection can be located 60% to 100% from the second inner edge to the second outer edge, with 100% from the second inner edge corresponding to being located at the second outer edge.
[0126] In some embodiments, the intersection of the first connecting surface can be oriented in an opposite direction to the intersection of the second connecting surface, e.g., the intersection of the first connecting surface can be adjacent to or at the first outer edge, and the intersection of the second connecting surface can be adjacent to or at the second inner edge.
[0127] The provision of the first and second channels formed by the first and second connecting surfaces provides a greater surface area of the vent material available for gas to diffuse or flow into the vent material while maintaining a seal within the seam between the vent material and the at least one container wall.
[0128] It has been found that increasing the surface area of the vent material available for gas diffusion within the vent in the seam of the enclosure improves the efficiency of the vent and allows the size of the vent to be minimized for a given required minimum gas diffusion rate.
[0129] Furthermore, it has been found that providing an available surface area of the vent material on the first side of the vent material and on the second side of the vent material increases the available paths through the vent material that gas can take to pass from the interior of the enclosed vessel to the exterior of the enclosed vessel.
[0130] The first connecting surface can include an adhesive, which can bond the vent material to at least one container wall when the vent is installed in the seam of the sealed container. The first connecting surface can include a welding surface where the vent material is welded to at least one container wall when the vent is installed in the seam of the sealed container. The first connecting surface can be a modified portion of a surface on a first side of the vent material that has been modified to change the properties of the first connecting surface. The first connecting surface can have a greater surface roughness than an unmodified surface of the vent material. The first connecting surface can be more porous than the unmodified surface of the vent material. The first connecting surface can be configured to be more easily glued, welded, or otherwise connected to at least one container wall when the vent is installed in the seam of the sealed container.
[0131] The second connecting surface can include an adhesive that bonds the vent material to at least one container wall when the vent is installed in the seam of the sealed container. The second connecting surface can include a welding surface where the vent material is welded to at least one container wall when the vent is installed in the seam of the sealed container. The second connecting surface can be a modified portion of the surface of the second side of the vent material that has been modified to change the properties of the second connecting surface. The second connecting surface can have a greater surface roughness than the unmodified surface of the vent material. The second connecting surface can be more porous than the unmodified surface of the vent material. The second connecting surface can be configured to be more easily glued, welded, or otherwise connected to at least one container wall.
[0132] The first connecting surface can be a mirror image of the second connecting surface.
[0133] In some embodiments, the vent can include a vent body. The vent body can include at least one opening for the vent. The vent body can include at least one connecting surface for connecting the vent to at least one container wall within a seam when the vent is installed within the seam of the sealed container. The vent body can contain a vent material. Thus, a gas conduit can extend through the vent body.
[0134] The vent body can provide additional mechanical strength to the vent. The vent body can define a gas conduit. When the vent is installed in a seam of the enclosure, the vent body can include at least one interior opening adjacent to the interior of the enclosure and at least one exterior opening adjacent to the exterior of the enclosure. Thus, gas can be required to pass through the at least one interior opening, the vent material, and at least one exterior opening.
[0135] The vent body can include a vent aperture. The vent aperture can correspond to one of the at least one opening in the vent body. When the vent is installed in a seam of a sealed container, the vent aperture can extend beyond the seam. A portion of the vent body including the vent aperture can extend beyond the seam. A portion of the vent body including the vent aperture can extend beyond the seam into the interior of the sealed container. A portion of the vent body including the vent aperture can extend beyond the seam to the exterior of the sealed container. The vent aperture can have a major plane. The vent aperture can be rectangular, oblong, or square in shape. The vent aperture can be curved. The vent aperture can be circular or elliptical. The shape of the vent aperture can define the major plane of the vent aperture. The vent material can extend across the vent aperture. The vent material can span the vent aperture. For example, the vent material can be a vent membrane that extends across the vent aperture. The vent material can include a laminate material, as described above.
[0136] The vent body can include a major plane. A portion of the vent body can include a major plane. The major plane of the vent body or a portion of the vent body can be coincident with or parallel to the major plane of the seam. The major plane of the vent aperture can be disposed within the major plane of the vent body or in a plane parallel to the major plane of the vent body. The major plane of the vent can be disposed substantially perpendicular to the major plane of the vent body. The major plane of the vent aperture can be disposed at an angle with the major plane of the vent body and perpendicular to the major plane of the vent body.
[0137] The vent body can include a connecting portion connecting the vent aperture to a portion of the vent body including the major planar surface. The gas conduit can extend from the at least one opening through the portion of the vent body including the major planar surface and the connecting portion to the vent aperture.
[0138] The at least one internal opening may be offset from the at least one external opening. The at least one internal opening may be offset from the at least one external opening in at least one dimension. The at least one internal opening may be offset from the at least one external opening in at least two dimensions. The at least one internal opening may be vertically offset from the at least one external opening. The at least one internal opening may be horizontally offset from the at least one external opening. The at least one internal opening may be vertically and horizontally offset from the at least one external opening. As used herein, the term "vertical" refers to a direction perpendicular to the major plane of the vent body. The term "horizontal" refers to a direction within the major plane of the vent body or within a plane parallel to the major plane of the vent body. Thus, when the vent is installed in a seam of an enclosed container, gas passing through the vent may need to change direction of flow at least once, from the at least one internal opening to the at least one external opening. The gas conduit from the at least one interior opening to the at least one exterior opening may require at least one change in flow direction, and therefore the vent may impede the linear flow of gas through the vent material, thereby requiring the gas to pass through a greater volume of the vent material.
[0139] The vent body may include a central portion, a first tapered portion, and a second tapered portion. The central portion may be located between the first tapered portion and the second tapered portion. The first tapered portion may be configured to gradually decrease the thickness of the vent body with increasing distance from the central portion. The second tapered portion may be configured to gradually decrease the thickness of the vent body with increasing distance from the central portion. Thus, the vent body may be configured to more easily form a secure seal within a seam between the vent body and two portions of the at least one wall. When the vent is installed within a seam of the sealed container, the vent body may be more securely retained within the seam of the sealed container, promoting a tighter seal between the at least one container wall and the vent within the seal and between both portions of the at least one container wall on either side of the vent within the seam.
[0140] The first tapered portion and / or the second tapered portion can be tapered on one side. The first tapered portion and / or the second tapered portion can be tapered on two sides. The first tapered portion and / or the second tapered portion can be tapered on two opposite sides.
[0141] The vent material can be disposed between the at least one internal opening and the at least one external opening. The vent body can include a central cavity. The central cavity can be disposed between the at least one internal opening and the at least one external opening. The central cavity can connect the at least one internal opening to the at least one external opening. The vent material can span the central cavity. Thus, gas flowing or diffusing from the at least one internal opening to the at least one external opening can be forced through the vent material in the central cavity.
[0142] In some embodiments, the vent may be held completely within the seam such that when the vent is placed within the seam of the enclosure, the vent does not extend into the interior of the enclosure nor does it extend outside of the enclosure.
[0143] The features described in relation to the vent in the first embodiment are features of the vent in the second embodiment. [Brief explanation of the drawings]
[0144] BRIEF DESCRIPTION OF THE DRAWINGS Embodiments of the present invention will now be described, by way of non-limiting example, with reference to the accompanying drawings, in which:
[0145] [Figure 1] FIG. 1 is a perspective view of a sealed container including a vent, according to a general embodiment.
[0146] [Figure 2] FIG. 2 shows A) a perspective cross-sectional view and B) a cross-sectional view of a sealed container including a vent according to one embodiment.
[0147] [Figure 3] FIG. 3 is a cross-sectional view of a five-layer laminate used to form a vent, according to one embodiment.
[0148] [Figure 4] FIG. 4 is a top view of a laminate used to form a vent, according to one embodiment.
[0149] [Figure 5] FIG. 5 is a perspective view of a sealed container including a vent, according to one embodiment.
[0150] [Figure 6] FIG. 6 is a plot of pressure versus time for an exemplary vent, according to an embodiment.
[0151] [Figure 7] FIG. 7 is a chart of carbon dioxide permeability of a vent, according to an embodiment.
[0152] [Figure 8]FIG. 8 is a top view of a portion of an enclosed container including a vent, according to one embodiment.
[0153] [Figure 9] FIG. 9 is a perspective view of a vent material according to one embodiment.
[0154] [Figure 10] FIG. 10 is a cross-sectional view of a portion of a sealed container including a vent, according to one embodiment.
[0155] [Figure 11] FIG. 11 is a perspective view of a vent according to one embodiment.
[0156] [Figure 12] FIG. 12 is a perspective view of a vent according to one embodiment.
[0157] [Figure 13] FIG. 13 is a perspective view of a vent according to one embodiment.
[0158] [Figure 14] FIG. 14 is a front view of a vent according to one embodiment.
[0159] [Figure 15] FIG. 15 is a perspective view of a sealed container including a vent, according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0160] Detailed Description While the making and use of various embodiments of the invention are described in detail below, it should be understood that the invention provides many applicable inventive concepts that can be embodied in a wide variety of specific contexts. The specific embodiments described herein are merely illustrative of specific ways to make and use the invention and do not limit the scope of the invention.
[0161] To facilitate understanding of the present invention, several terms are defined below. Terms defined herein have meanings commonly understood by one of ordinary skill in the art relevant to the present invention. Terms such as "a," "an," and "the" are not intended to refer to only a single item, but include a general class for which a specific example is used for illustration. While terms herein are used to describe particular embodiments of the present invention, their use does not limit the present invention, except as outlined in the claims. [Example]
[0162] Example 1 1, in a general example, a sealed container 1 is provided that includes a flexible wall 2 and a seam 4 that seals the sealed container 1 so that fluid cannot pass from the interior of the sealed container 1 to the exterior of the sealed container 1. A vent 6 is provided in the seam 4. The vent 6 includes a vent aperture 8 in which a vent material 10 spans the vent aperture 8. A gas conduit is formed through the vent aperture such that gas can pass from the interior of the sealed container to the exterior of the sealed container through the vent aperture.
[0163] The vent 6 forms a sealed connection with the wall of the enclosure 1 within the seam 4, ensuring that the only path from the interior of the enclosure 1 and the exterior of the enclosure 1 is through the vent 6.
[0164] Example 2 2A and 2B, pouch 20 (which functions as a sealed container) includes a flexible wall 22 and a seam 24 that seals pouch 20 so that fluid cannot pass from an interior 26 of pouch 20 to an exterior 28 of pouch 20. A vent 30 is located within seam 24. Vent 30 includes an opening 32 and is formed from a laminate material 34 that is folded upon itself to form a pocket 36 (see, e.g., FIG. 2B). Opening 32 faces the exterior 28 of pouch 20, and a folded end 38 of vent 30 extends into interior 26 of pouch 20. Vent 30 does not extend beyond seam 24 to the exterior 28 of pouch 20, and does not extend from seam 24 to the exterior 28 of pouch 20.
[0165] During use, gas can pass from the interior 26 of the pouch 20 through the laminate material 34 into the pocket of the vent 30 and out the opening 32 to the exterior 28 of the pouch 20 .
[0166] The vent 30 is formed by preparing a five-layer laminate material 34 (see FIG. 3 ) including outer layers 40 of ePTFE membrane ("40F Prism" membrane) and a central dense film 42 of dense PTFE membrane ("DM18C"), with fluorinated ethylene propylene (FEP) intermediate layers 44 between the dense film 42 and each outer layer 40. Polypropylene (PP) films 46 extend on both sides of the laminate material 34 to form the vent composite (see FIG. 4 ). The vent composite is then folded upon itself, such that the laminate material 34 is folded upon itself and the PP film 46 is folded upon itself. Next, a piece of poly(4,4'-oxydiphenylene-pyromellitimide) film (Kapton®) (which functions as a protective element) is placed within the folded composite between the folded laminate material and spaced from the edges of the laminate material. The vent composite is then heat welded at a temperature of 250° C. and a force of 100 N, resulting in the sides of the laminate material being welded to themselves in the areas not protected by Kapton®. A pocket 36 is thus formed by the laminate material 34 bounded by the welded sides 48 and the folds. The Kapton® pieces are then removed.
[0167] The vent 30 thus formed is placed between the walls of the pouch 20 which are sealed to form the seam 24, which is then formed around the perimeter of the vent 30. The PP film on either side of the folded laminate material 34 provides a secure connection between the walls of the pouch 20.
[0168] It will be appreciated that the rate of diffusion of gas through the vent 30 may be configured by adjusting the width and / or length of the pocket 36 of the vent 30 .
[0169] A further example of a sealed container 50 including a vent 30 within a seam 52 is shown in FIG.
[0170] Pressure Test: The ability of an enclosure containing a vent in the seam according to Example 2 to provide a substantially airtight enclosure was tested as described below.
[0171] A pressure of approximately 1 bar (He gas) was imposed on the sealed container. The starting pressure at 60°C was measured, and the pressure was measured over a 2-hour period while maintaining the temperature and pressure. Three samples from Example 2 were tested and compared to an unvented pouch. The pressure over time within the pouch for each sample is shown in Figure 6. A pressure drop of less than 0.05 bar over the period was considered a pass. Failure was observed in one sample, which was found to be due to a poorly sealed seam, rather than failure of the vent itself.
[0172] CO2 permeability test: The CO2 permeability of the vents of Example 2 was measured to determine the amount of CO2 that could diffuse through the vent. The results for the two samples are shown in Figure 7. Therefore, both samples were determined to have good CO2 permeability.
[0173] Example 3 8-10, a sealed container 100 includes a vent 102, a flexible wall 104, and a seam 106. The vent 102 is sealed within the seam 106. The vent 102 includes a densified expanded polytetrafluoroethylene (ePTFE) substrate 108 (which serves as the vent material) and has a first U-shaped connecting surface 110 (which serves as the first connecting surface) on a first side 112 and a second U-shaped connecting surface 114 (which serves as the second connecting surface) on a second side 116 opposite the first side 112. In FIG. 8, for purposes of illustration, the first and second U-shaped connecting surfaces 110, 114 are shown offset from one another. The first U-shaped connecting surface connects the ePTFE substrate 108 to the first portion 120 of the flexible wall 104, and the second U-shaped connecting surface connects the ePTFE substrate 108 to the second portion 122 of the flexible wall 104. The first U-shaped connecting surface 110 is oriented such that a first opening 118 is formed between the first portion 120 of the flexible wall 104 and the ePTFE substrate 108. The first opening 118 is defined on three sides by the first U-shaped connecting surface 110 and opens to the exterior of the sealed container 100. The second U-shaped connecting surface 114 is oriented such that a second opening 124 is formed between the second portion 122 of the flexible wall 104 and the ePTFE substrate 108. The second opening 124 is defined on three sides by the second U-shaped connecting surface 114 and opens to the interior of the sealed container 100.
[0174] The first U-shaped connecting surface 110 is formed by applying adhesive to the first side 112, so that the first portion 120 of the flexible wall 104 is more firmly connected to the first U-shaped connecting surface 110 and less firmly connected to the remainder of the first side 112 that does not have adhesive.
[0175] The second U-shaped connecting surface 114 is formed by applying adhesive to the second side 116, so that the second portion 122 of the flexible wall 104 is more firmly connected to the second U-shaped connecting surface 114 and less firmly connected to the remainder of the second side 116 that does not have adhesive.
[0176] During use, gas can enter the ePTFE substrate 108 on two sides thereof: the side of the ePTFE substrate 108 adjacent the interior of the sealed container 100, and the portion of the first side 112 that is not part of the first U-shaped connecting surface 110. The gas can then pass through the ePTFE substrate 108 and exit the ePTFE substrate 108 to the exterior of the sealed container 100 via two additional sides thereof: the side of the ePTFE substrate 108 adjacent the exterior of the sealed container 100, and the portion of the second side 116 that is not part of the second U-shaped connecting surface 114. Thus, the use of the first U-shaped connecting surface 110 and the second U-shaped connecting surface 114 provides more potential paths for gas to travel through the ePTFE substrate 108 than the alternative in which the first and second sides of the ePTFE substrate 108 are fully connected to the flexible wall 104 of the sealed container 100. Therefore, the rate of diffusion through the ePTFE substrate 108 is increased in this example compared to the alternative, allowing the vent in this example to be smaller than the alternative while still achieving comparable performance.
[0177] Example 4 11 , vent 200 includes a vent body 202 and a vent aperture cover 204. Vent body 202 includes three openings 206 (which function as at least one opening) and a vent aperture 208. Vent aperture 208 includes a vent membrane 210 (which functions as the vent material) and extends in the plane of vent body 202, such that gas entering and exiting vent aperture 208 travels at approximately 90 degrees relative to gas entering and exiting the three openings 206 (see, e.g., the direction of the arrows in FIG. 11 ). Vent aperture cover 204 includes two cover apertures 212, is connected to the vent body by hinges 214, and is configured to cover the vent apertures in a closed configuration and to open by rotating about hinges 214 to an open configuration (shown in FIG. 11 ), where vent membrane 210 is fully exposed and allows for replacement of vent membrane 210 as needed. Gas conduits extend through the vent 200 from the cover aperture 212 through the vent membrane 210 , through the vent body 202 to the three openings 206 .
[0178] The vent body 202 includes angled surfaces 216, 218 that allow the vent 202 to be more easily sealed within the seam of a sealed container, such as a battery pouch (not shown).
[0179] Vent 200 is located within a seam of the battery pouch (not shown) such that the vent aperture extends from the seam of the battery pouch to the exterior of the battery pouch. Thus, gases within the battery pouch that may be generated during use can pass through opening 206, pass through vent membrane 210, and exit through cover aperture 212 to the exterior of the battery pouch.
[0180] Example 5 12, vent 300 includes a vent body 302. Vent body 302 includes a vent aperture 304 and an opening 306. Vent body 302 further includes sealing surfaces 308, 310 configured to contact the vent body 302 with the surface of a seam of a sealed container (not shown). Sealing surfaces 308, 310 include an angled portion 312 that allows the vent to more easily seal within the seam of the sealed container. Vent aperture 304 extends approximately perpendicular to the plane of sealing surfaces 308, 310. An ePTFE membrane 314 (which functions as the vent material) occludes vent aperture 304. A straight-line path through vent 300 is formed by vent aperture 304 and opening 306 so that when the vent is sealed within the seam of the sealed container, gases generated within the sealed container can pass directly through the vent via opening 306 and vent aperture 304 through ePTFE membrane 314.
[0181] Vent 300 is positioned within a sealed container (not shown) such that vent aperture 304 extends from a seam of the sealed container to the exterior of the sealed container. Thus, gases within the sealed container that may be generated during use can pass through opening 306, pass through ePTFE membrane 314, and exit through opening 306 to the exterior of the sealed container.
[0182] Example 6 13-14, vent 350 includes a vent body 352. Vent body 352 includes a vent aperture 354 and six openings 356. Vent body 352 further includes sealing surfaces 358, 360 configured to contact the vent body 352 against the surface of a seam of a sealed container (not shown). Sealing surfaces 358, 360 include an angled portion 362 that includes two angled surfaces 364a, 364b that allow the vent to more easily seal within the seam of the sealed container. Vent aperture 354 extends approximately perpendicular to the plane of sealing surfaces 358, 360. An ePTFE membrane 366 (which functions as the vent material) occludes vent aperture 354. A straight-line path through vent 350 is formed by vent aperture 354 and opening 356 so that when the vent is sealed within the seam of the sealed can, gases generated within the sealed can pass directly through the vent via opening 356 and vent aperture 354 through ePTFE membrane 366.
[0183] Vent 350 is positioned within a sealed canister (not shown) such that vent aperture 354 extends from a seam of the sealed canister to the exterior of the sealed canister. Thus, gases within the sealed canister that may be generated during use can pass through opening 356, pass through ePTFE membrane 364, and exit opening 356 to the exterior of the sealed canister.
[0184] Example 7 15 , the battery pouch 400 includes a flexible wall 402 and a seam 404. The vent 406 is sealed within the seam 404 and includes a body 406 that includes two exterior openings 408 adjacent an exterior 410 of the battery pouch 400 and two interior openings 412 adjacent an interior 414 of the battery pouch 400. The body 406 includes an interior cavity 416 that is in fluid communication with the openings 408, 412 such that a gas conduit extends from the interior 414 of the battery pouch 400 to the exterior 410 of the battery pouch 400 through the two interior openings 412 adjacent the interior 414 of the battery pouch 400, to the interior cavity 416, and to the two exterior openings 408 adjacent the exterior 410 of the battery pouch 400. The interior cavity 416 includes a laminate material 418 that spans the interior cavity 416 such that gas passing through the body 406 passes through the laminate material 418. The laminate material 418 includes a layer of dense ePTFE (acting as a layer of vent material), a layer of FEP (acting as an intermediate layer), and a layer of ePTFE (acting as a first intermediate layer).
[0185] The body 406 includes seam contact surfaces 420 on two opposing sides of the body 406. The seam contact surfaces 420 contact the portions of the flexible wall 422 that are sealed together to form the seam 404, such that the vent 406 is sealed within the seam 404. The seam contact surfaces 420 include a first tapered portion 424 at a first end 426 of the body 406 and a second tapered portion 428 at a second end 430 of the body 406, the second end 430 being at an end of the body 406 opposite the first end 426.
[0186] The two outer openings 408 are offset from the two inner openings 412 such that the laminate material 418 is located between the two outer openings 408 and the two inner openings 412 .
[0187] Body 406 is sized such that vent 406 is contained entirely within seam 404 , does not extend into interior 414 of battery pouch 400 , and does not extend into exterior 410 of battery pouch 400 .
[0188] The above example features are merely illustrative of the concepts of the present invention, and the above vents may be used in any sealed container, whether it is a sealed container with flexible walls, such as a battery pouch, or a sealed container with rigid walls where the vent is embedded in the rigid wall within a seam.
[0189] Furthermore, it will be appreciated that the particular number of openings in the vent as described in the above examples can be varied to optimize the diffusion rate of gas through the vent as required for a given application.
[0190] While the foregoing describes preferred embodiments of the present invention, it will be readily apparent that many various changes and modifications in the shape, design, construction and arrangement of parts may be made to other embodiments without departing from the invention, it being understood that all such changes and modifications are considered embodiments that are part of the invention as defined in the appended claims. (Aspect) (Aspect 1) 1. A sealed container comprising at least one container wall, a seam connecting two edges of the at least one container wall, and a vent, wherein at least a portion of the seam is formed around the vent. (Aspect 2) 2. The sealed container of embodiment 1, wherein the at least one container wall is a flexible container wall. (Aspect 3) 3. The sealed container of embodiment 2, wherein the sealed container is a pouch. (Aspect 4) 4. The sealed container of embodiment 3, wherein the sealed container is a battery pouch. (Aspect 5) 5. The sealed container of any one of aspects 1 to 4, wherein the vent comprises a vent material, at least one opening, and at least one connecting surface connecting the vent within the seam, the opening and the vent material forming a gas conduit such that, during use, gas passes from an interior of the sealed container through the gas conduit to an exterior of the sealed container. (Aspect 6) 6. The container of claim 5, wherein the vent material comprises a dense polymer material. (Aspect 7) 7. The sealed container of claim 5 or 6, wherein the vent material forms a pocket and an opening of the at least one opening is an opening in the pocket, such that the gas conduit extends from the opening through the pocket and through the vent material. (Aspect 8) 8. The sealed container of claim 7, wherein the pocket extends from the seam into the sealed container. (Aspect 9) 6. The sealed container of claim 5, wherein the vent material comprises at least two connecting surfaces, the at least two connecting surfaces comprising a first connecting surface on a first side of the vent material and a second connecting surface on a second side of the vent material, the first side being opposite the second side of the vent material. (Aspect 10) 10. The sealed container of claim 9, wherein the first connection surface comprises an asymmetric connection between the vent material and the first surface of the seam, and the second connection surface comprises an asymmetric connection between the vent material and the second surface of the seam. (Aspect 11) 11. The sealed container of claim 10, wherein the asymmetric connection between the vent material and the second surface of the seam partially overlaps the asymmetric connection between the vent material and the first surface of the seam. (Aspect 12) 12. The sealed container of claim 11, wherein a first channel is formed between the vent material and a first surface of the seam and is defined by the first connecting surface, and a second channel is formed between the vent material and a second surface of the sealed container and is defined by the second connecting surface. (Aspect 13) 13. The sealed container of claim 11 or 12, wherein the first connecting surface forms a U-shape on a first side of the vent material and the second connecting surface forms a U-shape on a second side of the vent material, the orientation of the U-shape on the first side being opposite to the orientation of the U-shape on the second side. (Aspect 14) 6. The enclosed container of claim 5, wherein the vent comprises a vent body, the vent body comprising at least one opening. (Aspect 15) 15. The sealed container of claim 14, wherein the vent body includes a vent aperture, and the vent material is a vent membrane extending across the vent aperture. (Aspect 16) The sealed container of claim 14 or 15, wherein the seam includes a major plane and the vent aperture is disposed within the major plane of the seam, or the seam includes a major plane and the vent aperture is disposed substantially perpendicular to the major plane of the vent body. (Aspect 17) a vent including a vent material, at least one opening, and at least one connecting surface, the vent configured to be mounted within a seam of a sealed container having an interior and an exterior such that the at least one opening is adjacent to the exterior of the sealed container and the at least one connecting surface is configured to connect the vent within the seam, the at least one opening and the vent material forming a gas conduit such that, in use, when the vent is installed within the seam of the sealed container, gas passes from the interior of the sealed container through the gas conduit to the exterior of the sealed container; Vent.
Claims
1. A sealed container comprising at least one container wall, a seam connecting two edges of the at least one container wall, and a vent, wherein at least a portion of the seam is formed around the vent; the vent includes a vent material, an opening, and two connecting surfaces connecting the vent within the seam, the openings and the vent material forming a gas conduit such that, during use, gas passes from the interior of the enclosed container through the gas conduit to the exterior of the enclosed container; the vent material includes two connecting surfaces, the two connecting surfaces including a first connecting surface on a first side of the vent material and a second connecting surface on a second side of the vent material, the first side being opposite the second side of the vent material; the first connecting surface forms a U-shape on a first side of the vent material, and the second connecting surface forms a U-shape on a second side of the vent material, the orientation of the U-shape on the first side being opposite the orientation of the U-shape on the second side; The two connecting surfaces respectively connect a first U-shaped connecting surface and a second U-shaped connecting surface of the vent material to the container wall within the seam.
2. The sealed container of claim 1 , wherein the at least one container wall is a flexible container wall.
3. The sealed container according to claim 2, wherein the sealed container is a pouch.
4. 4. The sealed container of claim 3, wherein the sealed container is a battery pouch.
5. The enclosure of claim 1 , wherein the vent material comprises a dense polymeric material.
6. 2. The sealed container of claim 1, wherein a first channel is formed between the vent material and a first surface of the seam and is defined by the first connecting surface, and a second channel is formed between the vent material and a second surface of the sealed container and is defined by the second connecting surface.
Citation Information
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