Bagging equipment and packaging material webstock

The bagging apparatus transforms packaging material from a high-density, unexpanded state to a low-density, expanded state, addressing the inefficiencies of bulky conventional packaging by reducing transportation volume and enhancing storage capacity.

JP7731918B2Active Publication Date: 2025-09-01PREGIS INNOVATIVE PACKAGING INC
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Patent Information

Application Number
JP2022579125
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-29
Filing Date
2021-07-01
Publication Date
2025-09-01
Estimated Expiration
2041-07-01

AI Technical Summary

Technical Problem

Conventional protective packaging materials are manufactured in bulky, low-density configurations, leading to increased transportation volume and reduced storage capacity, necessitating a system for producing packaging material in a low volume, high density configuration that can be subsequently expanded.

Method used

A bagging apparatus with a bag handler, expansion device, and sealing mechanism to transform packaging material from a high-density, unexpanded state to a low-density, expanded state, providing padding and protection for shipped objects.

Benefits of technology

Reduces transportation volume and increases storage capacity by allowing packaging material to be shipped in a compact form and expanded on-site for use, optimizing space utilization and cost efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

A bagging apparatus is provided. The bagging apparatus can include a bag handler configured to handle packaging material, the packaging material configured to define a bag having first and second walls enclosing an interior cavity configured to contain an object therein for shipping, the first wall having an inflatable configuration and including an expansion material expandable to an expanded configuration to provide padding to the first wall to protect the object contained within the interior cavity. The bagging apparatus can further include an expansion device configured to apply an expansion condition to the packaging material, the expansion condition configured to expand the expandable material from the inflatable configuration to the expanded configuration.
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Description

[Technical Field]

[0001] The present disclosure relates generally to packaging for shipping items. More specifically, the present disclosure relates to packaging materials configured to be manufactured and packaged in a high-density configuration for subsequent expansion to a lower-density configuration.

[0002] This application is related to U.S. Provisional Patent Application No. 63 / 046828, filed July 1, 2020, entitled "Series Inflatable Wall Bags," U.S. Provisional Patent Application No. 62 / 706110, filed July 31, 2020, entitled "Series Inflatable Wall Bags," U.S. Provisional Patent Application No. 63 / 069571, filed August 24, 2020, entitled "Series Inflatable Wall Bags," and U.S. Provisional Patent Application No. 63 / 069571, filed October 26, 2020, entitled "Post-Expanding Packaging Material." Priority is claimed to U.S. Provisional Patent Application No. 63 / 105420, filed October 29, 2020, entitled "Packaging Material That Does Not Expand Later," U.S. Provisional Patent Application No. 63 / 107333, filed October 29, 2020, entitled "Packaging Material That Expands Later," and U.S. Provisional Patent Application No. 63 / 105420, filed October 26, 2020, entitled "Packaging Material Web Having Strip-Shaped Seal," and U.S. Provisional Patent Application No. 63 / 107312, filed October 29, 2020, entitled "Packaging Material Web Having Strip-Shaped Seal," each of which is incorporated herein by reference in its entirety. [Background technology]

[0003] Conventional low-density protective packaging materials are manufactured in standard high-loft, low-density configurations. These high-loft, low-density configurations may include, for example, pre-formed expanded fluid chambers (e.g., bubble wrap), pre-expanded foam, padded inserts, etc. These high-loft, low-density configurations provide support for the package during shipping. However, they must be shipped to a packaging and shipping location before they are available for packaging.

[0004] Conventional protective packaging materials are already manufactured in a bulky, low-density configuration and must be shipped as such, which increases the overall volume of the packaging material even before it is used in packaging, increases the cost of transporting the packaging material to packaging and shipping locations, and reduces the amount of product that can be stored at these locations until needed for use.

[0005] For at least these reasons, there is a need for a system and method for producing packaging material in a low volume, high density configuration that can be subsequently expanded. Summary of the Invention [Means for solving the problem]

[0006] According to various embodiments of the present disclosure, a bagging apparatus is provided. The bagging apparatus can include a bag handler configured to handle packaging material, the packaging material configured to define a bag having first and second walls surrounding an interior cavity configured to receive an object therein for shipping, the first wall having an inflatable configuration and including an expansion material expandable to an expanded configuration to provide padding to the first wall to protect the object received within the interior cavity. The bagging apparatus can further include an expansion device configured to apply an expansion condition to the packaging material, the expansion condition configured to expand the expandable material from the inflatable configuration to the expanded configuration.

[0007] According to various embodiments, the bag handler includes a sealer configured to seal the opening between the first and second walls to an interior cavity to retain an object therein. According to various embodiments, the sealer is a heat sealer configured to form a heat seal between the first and second walls.

[0008] According to various embodiments, the bagging device can further include a bag opener configured to engage the opening and open the opening to allow the object to be received into the interior cavity through the opening. According to various embodiments, the bag opener includes a fan configured to apply air pressure directed at the opening. According to various embodiments, the bag opener includes a plurality of fingers that protrude into the opening and maintain the opening in an open configuration. According to various embodiments, the bag opener includes one or more suction devices configured to apply suction to at least one of the walls configured to pull open the opening.

[0009] According to various embodiments, the bagging apparatus further includes a bag transfer device configured to transfer bags to the inflation device and bag handler. According to some embodiments, the inflation device is positioned along the bagging apparatus so as to be configured to expand the inflation material before the sealer seals the opening. According to some embodiments, the inflation device is positioned along the bagging apparatus so as to be configured to expand the inflation material while the sealer is sealing the opening. According to some embodiments, the inflation device is positioned along the bagging apparatus so as to be configured to expand the inflation material after the sealer seals the opening.

[0010] According to various embodiments, the packaging material is configured to define a series of separable bags and further includes a separator configured to separate adjacent bags in the series of bags. According to various embodiments, the separator includes a cutter configured to cut the packaging material. According to various embodiments, the expansion device is configured to raise the temperature of the expandable material to an expansion temperature, the expansion temperature being sufficient to cause the expandable material to reduce its density and expand to an expanded configuration. According to various embodiments, the expansion device is configured to heat air and direct the heated air toward the packaging material to raise the expandable material to the expansion temperature.

[0011] According to various embodiments, the bagging device can include a bag holder configured to fold the packaging material onto itself to provide the first and second walls.

[0012] According to various embodiments, a packaging webstock is provided. The packaging webstock can include a web including a plurality of packaging containers arranged in a longitudinal series along the web, each of the packaging containers including overlapping first and second walls sealed to one another at a plurality of inter-wall seals, including a plurality of transverse seals extending laterally across the web, thereby defining an interior cavity between the walls in each packaging unit configured to contain an object therein, the walls being unsealed on longitudinal sides of the interior cavity and each facing an adjacent packaging container and providing an opening to the interior cavity configured to receive an object therein. The packaging webstock can further include an expansion member disposed in at least one of the walls in an unexpanded configuration, the expansion member being expandable to an expanded configuration such that an expansion material within the wall provides a cushion for an object contained in the interior cavity. [Brief explanation of the drawings]

[0013] The foregoing and other features of the present disclosure will become more fully apparent from the following description and appended claims, taken in conjunction with the accompanying drawings, in which: The present disclosure will be described with additional specificity and detail through the use of the accompanying drawings, with the understanding that these drawings illustrate only some examples in accordance with the present disclosure and are therefore not to be construed as limiting its scope, wherein: [Figure 1] FIG. 2 is a top perspective view of one embodiment of layers used to form a wall. [Figure 2] 2 is a top view of a wall web formed using, for example, the layers of FIG. 1; [Figure 3] 3 is a longitudinal cross-section of a web, such as the web of FIG. 2, folded and bonded to form a web of connected packages according to one embodiment. [Figure 4A] FIG. 10 is a top cutaway view of another embodiment of a web. [Figure 4B] 4B is a bottom perspective view of the web of FIG. 4A folded and bonded to form a web of interlocked packages. [Figure 4C] FIG. 4C is a longitudinal cross-section of the web of FIG. 4B. [Figure 5] 2 is a top view of a packaging wall, such as the wall of FIG. 1, used to form a packaging container according to one embodiment. [Figure 6] 6 is a longitudinal cross-sectional view of a packaging container formed from the wall of FIG. 5. [Figure 7] 7 is a perspective view of a completed rolled supply web of separable packaging containers, such as those configured as shown in FIG. 6. FIG. [Figure 8] 7 is a perspective view of a completed supply web of separable packages, constructed for example as shown in FIG. 6, in a fanfold configuration. [Figure 9A] FIG. 4 is a side view of a system for converting stock material into a supply chain of separable packaging containers, constructed, for example, as shown in FIG. 3 . [Figure 9B] FIG. 4 is a top view of a system for converting stock material into a supply chain of separable packaging containers, constructed, for example, as shown in FIG. 3 . [Figure 10] 1 is a cross-sectional side view showing areas of weakness in a web of a separable package constructed, for example, as shown in the previous figures. [Figure 11] FIG. 9B is a longitudinal cross-sectional view taken along section AA of FIG. 9A. [Figure 12A] FIG. 2 is a schematic top view of an inflatable web having inflatable sub-chambers according to one embodiment. [Figure 12B] 12B is a cross-sectional view of various embodiments of an inflatable web having the configuration of FIG. 12A. [Figure 12C] 12B is a cross-sectional view of various embodiments of an inflatable web having the configuration of FIG. 12A. [Figure 12D] 12D is a cross-sectional view of the inflatable web embodiment of FIG. 12C. [Figure 13A] 1 is a perspective view of an inflating and bagging device according to one embodiment. [Figure 13B] 1 is a cross-sectional view of an inflating and bagging device according to one embodiment. [Figure 14A]1 is a cross-sectional side view of an inflation and bagging apparatus according to one embodiment. [Figure 14B] 1 is a cross-sectional side view of an inflation and bagging apparatus according to one embodiment. [Figure 14C] 1 is a cross-sectional side view of an inflation and bagging apparatus according to one embodiment. [Figure 15] 1 is a perspective view of an inflation and bagging device according to one embodiment. [Figure 16A] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16B] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16C] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16D] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16E] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16F] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16G] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16H] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 16I] 1 is a perspective view of a bag opening and sealing assembly of an inflation and bagging apparatus according to various examples of the present disclosure. [Figure 17A] 1 is a front perspective view of an inflation and bagging apparatus according to one embodiment. FIG. [Figure 17B] 1 is a front perspective view of an inflation and bagging apparatus according to one embodiment. FIG. [Figure 18] 1 is a perspective cutaway view of an inflation device of an inflation and bagging apparatus for use with an expandable web of packaging material, according to one embodiment. [Figure 19] 1 is a flowchart of a method for producing one or more packaging elements, according to various embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0014] In the following detailed description, reference is made to the accompanying drawings, which form a part hereof. In the drawings, like symbols typically identify like elements unless context dictates otherwise. The illustrative examples set forth in the detailed description, drawings, and claims are not intended to be limiting. Other examples may be utilized, and other changes may be made without departing from the concept or scope of the subject matter presented herein. It will be readily understood that the aspects of the present disclosure, as generally described and illustrated herein, can be arranged, substituted, combined, separated, and designed in a wide variety of different configurations, all of which are implicitly contemplated herein.

[0015] Some aspects of the present disclosure are directed to packaging elements formed from packaging materials. Some packaging elements formed from packaging materials include pads and sheets, which include a single wall. Some packaging elements formed from packaging materials include a packaging unit configured to cushion one or more objects during shipping. The packaging unit can include, for example, a pad and a packaging container. The packaging container includes multiple walls enclosing an internal cavity for storing one or more products. Some packaging containers include bags and envelopes, such as mailers, which may be fabricated and then filled with items to be shipped at a later time.

[0016] Some embodiments of the present disclosure include an expansion wall. Some expansion walls include expandable walls that are in an unexpanded configuration and can be expanded at a later time. Some expansion walls include expanded walls that are already in an expanded configuration. The expansion wall may include one or more expansion members configured to expand the expansion wall. The expansion member may include an expansion chamber. Some expansion chambers include an expansion chamber configured to receive a fluid, such as air or other suitable gaseous or non-gaseous fluid. Some expansion chambers include an expanded fluid chamber. The expanded fluid chamber may include, for example, a preformed chamber (e.g., a vacuum-formed foam). The expansion member may include one or more expansion materials. Some expansion materials include expandable materials configured to expand upon application of one or more expansion conditions, such as, for example, heat, a chemical reaction, or other suitable means. Some expansion materials include expansion materials that are already expanded from an applied dimension.

[0017] The various seals described herein include at least one sealing material. In a preferred embodiment, the web of packaging material includes a plurality of sealing materials. The sealing material includes an adhesive element. The adhesive element includes an adhesive or a fastener to provide an adhesive or fastening surface, respectively. Combinations of adhesive and fastening surfaces can be used. The adhesive element can be applied directly to the exposed surface of the material by any suitable known method, or it can be applied onto a tape, such as a double-sided tape, or it can be applied by any other suitable method. In some embodiments, the sealing material includes polyethylene. In some embodiments, the sealing material includes a heat-sealable material. In some embodiments, the sealing material includes a material that functions as a cold glue. It should be noted that other suitable sealing materials can be used in combination with or in place of the exemplary sealing materials described herein.

[0018] As used herein, an adhesive cohesive element is prepared with a material that adheres to other types of surfaces, preferably those typically found near protective packaging materials, such as plastic, paper, or metal. The adhesive adheres to two surfaces to form a connection between them, without relying on the opposing surfaces being made of the same or complementary material. Examples of suitable adhesives include liquid adhesives and pressure-sensitive adhesives. Pressure-sensitive adhesives can be selected to adhere and form a bond after the application of a small amount of initial external pressure. Examples include water-based acrylic pressure-sensitive adhesives similar to those applied to packaging tape, which hold two surfaces together through surface contact alone, often with a small amount of initial external pressure. Examples include dry adhesives, which generally do not require activation by water, solvents, or heat and adhere strongly to many dissimilar surfaces. Pressure-sensitive adhesives can be selected to be positively and / or permanently tacky at room temperature. The application and use of pressure-sensitive adhesives can be automated. When used in assemblies, using pressure-sensitive adhesives that do not require setup or long curing times can save time compared to using typical liquid adhesives. Bonding preferably occurs immediately using a pressure-sensitive adhesive, allowing the manufacturing process to continue uninterrupted, thereby saving significant time and effort. Examples of water-based acrylic pressure-sensitive adhesives include those known as RHOPLEX N-1031 emulsion, RHOPLEX N-580 emulsion, and RHOPLEX N-619 emulsion. Other emulsion polymer or acrylic polymer blend adhesives are also known, and other suitable types of adhesives and / or contact adhesives can be used.

[0019] The adhesive material of the adhesive element adheres one surface to an opposing surface by contacting the adhesive with an identical or complementary adhesive substance to form a bond between the two surfaces. The adhesives that adhere to each other may not adhere sufficiently to other materials (e.g., other surfaces of the protective packaging material not bearing the adhesive element, the surface of the container, or the surface of the product being shipped), or in some cases, may adhere very weakly compared to the bond formed by adhering to each other. The adhesive may be a pressure-sensitive adhesive that requires pressure to activate the bond. Examples of suitable adhesive materials from which the adhesive element can be prepared include natural and synthetic latex-based adhesives. In some embodiments, the adhesive material is applied as a liquid to the appropriate portion of the protective packaging material, and in other embodiments, it is applied in other known forms. Some types of adhesives, such as those formulated with latex, are mixed with water without additional adhesive, adhere to the respective non-adherent portions of the protective packaging material, and upon drying, remain adhered to the exposed surface of the protective packaging material to which they were applied. In some embodiments, the adhesive material can be mixed with an adhesive and is often applied to the protective packaging material as a liquid. The adhesive can be selected so that after the adhesive-adhesive mixture is applied to the protective packaging material (e.g., onto a film layer), the adhesive evaporates and the adhesive remains bonded to the non-stick protective packaging material (e.g., onto a film or paper layer). One method of liquid application is spraying, although brushing or other suitable methods can be used. Other suitable methods of applying the adhesive to the non-stick material surface can alternatively be used.

[0020] Referring to Figure 1, a supply web 10 of packaging material is shown in a low volume, high density configuration. The web 10 material includes one or more layers of polymeric, cellulosic (e.g., paper), or other suitable material. In Figure 1, the web 10 forms an expanded wall and includes multiple layers 12, 14. The wall is provided as a multi-layer structure. In other embodiments, one or more walls are multi-layer and / or single-layer structures.

[0021] The web 10 includes a first layer 12 and a second layer 14. The first layer 12 includes one or more seals 16, 18 formed or applied thereto, which may include a sealing material. The one or more seals 16, 18 include one or more longitudinal seals 16 adhered along one or more longitudinal edges 26 of the first layer 12. The one or more seals 16, 18 may additionally or alternatively include one or more transverse seals 18. The one or more transverse seals 18 extend to one or more of the longitudinal edges 26 of the first layer 12. In other embodiments, the transverse seals 18 extend across a portion of the first layer 12.

[0022] Layers 12, 14 can include paper (e.g., cardboard, kraft paper, fiberboard, pulp-based paper, recycled paper, newspaper, and coated paper, such as paper coated with wax, plastic, water-resistant material, and / or stain-resistant material), plastic, cellulose, foil, polymeric or synthetic material, biodegradable material, and / or other suitable material of appropriate thickness, weight, and dimensions. Layers 12, 14 can include recyclable material (e.g., recyclable paper). Layers 12, 14 can include one or more substrates. In some embodiments, the one or more substrates include a paper substrate. The paper substrate can include a material layer applied thereon. The material layer can include one or more of a waterproof layer, an airtight layer, an adhesive layer, a fastening layer, a heat-sealable layer, another suitable material layer, and / or combinations thereof.

[0023] The web 10 includes an inflatable element. The inflatable element includes an inflatable material 20. The inflatable material 20 can be disposed between the first layer 12 and the second layer 14. The inflatable material 20 is applied to one of the layers 12, 14. The inflatable material 20 is applied to the first layer 12. In other embodiments, the inflatable material 20 is applied to the second layer 14 and / or both the first layer 12 and the second layer 14. The inflatable material 20 can be applied in a regular shape (e.g., circle, oval, square, rectangle, triangle, etc.) or an irregular shape. The inflatable material can be applied to the web as a continuous layer or in a pattern. The pattern can be configured to allow the inflatable material to expand and form a continuous layer when the layers are pressed together. In some embodiments, the web 10 includes one or more vent holes or vent openings configured to allow gas (e.g., water vapor) generated by the application or expansion of the inflatable material 20 to pass through.

[0024] An expansion device can be provided to expand the expansion material. The expansion device is activated by an expansion initiator. In some embodiments, the expansion material includes multiple materials separated by a barrier, which expand the expansion material to an expanded configuration when mixed or contacted with each other. In some embodiments, the expansion material includes a matrix that can be expanded by the expansion device. Prior to expansion of the expansion material, when the expansion material is still in an expandable state (i.e., when the expansion material is an expandable material), the matrix can be fluid, such as a gel or liquid. This allows for easy application onto a layer. In other embodiments, the expandable material can be provided as a solid and / or can go through a gel or fluid phase. The expansion initiator can be thermal, mechanical, and / or chemical, and / or can include other suitable initiation properties for activating the expansion device. For example, the expansion initiator can be one or more of heat, pressure, a chemical reaction, and / or other suitable expansion initiator. The expansion device can include a reactive component, a chemical catalyst, a blowing agent, a heating agent (capable of applying heat to the expansion material and / or increasing the temperature of the expansion material), and / or other suitable expansion device. In some embodiments, the expansion device is held separate from the matrix by a barrier and for this purpose may be held within another structure such as, for example, a microsphere shell. Once expanded, the expansion material 20 provides a cushion configured to provide protection to one or more articles / products / etc. placed against the first layer 12 or second layer 14.

[0025] In some embodiments, the matrix can include one or more polymers, including emulsion-based polymers, such as one or more of vinyl acetate ethylene, polyvinyl acetate, polyvinyl alcohol, vinyl acetate copolymer, polyvinyl alcohol copolymer, dextrin-stabilized polyvinyl acetate, vinyl acetate copolymer, ethylene copolymer, vinyl acrylic, styrene acrylic, acrylic, styrene butyl rubber, polyurethane, polyolefin, biodegradable materials (e.g., cellulose and starch), and / or other suitable swelling materials.

[0026] In some embodiments, the matrix can include a polyolefin adhesive or a polyolefin dispersion. The polyolefin dispersion can include polyethylene and / or polypropylene, a thermoplastic polymer, a polymeric stabilizer including at least one polar polymer, water, and / or other suitable polyolefin dispersions. Suitable polyolefin dispersions can include, for example, HYPOD™ from Dow Chemical or other suitable polyolefin dispersions.

[0027] In some embodiments, the matrix is ​​a water-based adhesive. The water-based adhesive may include a water-based polymer.

[0028] In some embodiments, the matrix is ​​based on starch, either in its natural or synthetic form. In some embodiments, the starch is in the form of a ground microstarch powder. The ground starch particles have a diameter of between about 12 microns and about 20 microns. In some embodiments, the starch-based matrix includes one or more of water or other solvents, surfactants, polar binders, or other fillers. In some embodiments, for example, the matrix includes up to 50% water. In some embodiments, for example, the matrix includes 30-40% starch.

[0029] Some embodiments include a barrier separating the expansion device from the matrix. One suitable barrier is a microsphere shell containing a blowing agent, chemical catalyst, or chemically reactive component as the expansion device. Other types of barriers may alternatively be used.

[0030] In some embodiments, the expansion device includes a plurality of microspheres that are expandable and / or rupturable, for example, upon application of sufficient heat. The microspheres can include an outer shell and an inner core. Suitable outer shells can include, for example, one or more of a thermoplastic polymer, such as polyacrylonitrile or PVC, as well as glass, rubber, starch, cellulose, ceramic, or other suitable materials. In some embodiments, the plurality of thermally expandable microspheres includes a solid, liquid, or gas core comprised of one or more of a hydrocarbon, water, or other suitable chemical that can be activated to expand or rupture the microsphere shell. In some embodiments, the microspheres can include a biodegradable material, such as cellulose.

[0031] Devices such as microspheres can be mixed with the matrix before application onto the web, or can be provided on the matrix after the matrix has been applied to the web, for example, by mixing or pressing the microspheres into the matrix as the layers are pressed together.

[0032] In some embodiments, the microspheres have an expansion temperature (Texp) at which the microspheres begin to expand and a maximum temperature (Tmax) at which they rupture when heated above Tmax. While the Texp of microspheres is not particularly limited, it is generally between about 60°C and about 250°C. The Tmax of microspheres is generally between about 80°C and about 300°C. In some embodiments, the Tmax is greater than 300°C. Microspheres are selected based on their maximum expansion temperature, depending on whether or not the microspheres are required to rupture. Tmax depends on several properties, including the physical properties of the microspheres, the physical properties of the matrix, and the physical properties of the layer on which the matrix and microspheres are deposited. Heat can be generated via any suitable means, such as radio frequency radiation. In some embodiments, radio frequency radiation is applied to the expansion material 20 at a frequency of about 10-45 MHz, or as appropriate for the microsphere composition and matrix material. In other embodiments, other frequencies may be used. The heating parameters selected will depend on the expanding material or materials 20 used. Suitable microspheres are known in the art.

[0033] In some embodiments, the expansion device includes a blowing agent, such as a gas or mixture of gases. Examples of suitable gases include air, carbon dioxide, nitrogen, argon, helium, methane, ethane, propane, isobutane, n-butane, neopentane, and the like. In some embodiments, the gas or mixture of gases is added to the expansion material by mechanical means. An example of mechanical means is frothing or bubbling the expansion material, which forces a gas, such as air, into the expansion material, increasing its volume. In other embodiments, the gas or mixture of gases can be encapsulated in microspheres. When activated, the microspheres expand and may burst. The expansion of the microspheres causes the expansion of the expansion material. The rupture of the microspheres releases their contents, resulting in the foaming and expansion of the expansion material. In some embodiments, the web 10 includes one or more vent holes or vent openings configured to operatively allow gas (e.g., water vapor) generated by the application or expansion of the expansion material 20.

[0034] In some embodiments, the expansion device includes one or more reactive components that initiate a chemical reaction to expand the matrix. The chemical reaction can include mixing two reactive components that react to generate foam. In some embodiments, a catalyst is used to increase the rate of the chemical reaction. In some embodiments, the two reactive components are separated by a barrier before mixing and expansion. The barrier separating the reactive components can be a microsphere shell, where the core of the microsphere contains one or more reactive components, and rupture of the microsphere releases its contents into one or more other reactive components, initiating the foam-generating reaction. Other barriers, such as a wall, capsule, or other barrier-forming container, can also be used. An example of a reactive component that initiates expansion is mixing a liquid isocyanate with a multi-component liquid mixture called a polyurethane resin. When these components combine, carbon dioxide and water vapor are released, producing polyurethane foam. Other reactive components that form foam when mixed can also be used.

[0035] In some embodiments, the expansion material 20 solidifies upon expansion, while in other embodiments, the expansion material 20 forms a gel or has another physical phase depending on the structure of the article. The expanded expansion material 20 is configured to form areas of protective padding and / or insulation. The solidification method of the expansion material is selected based on its physical properties and may be achieved by heat curing, drying (e.g., air drying), hardening, or other suitable processes, such as known methods for converting materials from a fluid to a solid. For example, thermosetting plastics can be irreversibly solidified by curing, while the solidification of thermoplastics may be reversible.

[0036] In some embodiments, the intumescent material 20 is applied in a pattern. The pattern, distribution, and / or concentration of the intumescent material 20 are selected to achieve desired padding and / or insulating properties. In this embodiment, the intumescent material 20 is applied in a dot pattern. The dots can be dots, squares, circles, large and / or small shapes, or polygons. Other suitable patterns, such as lines, arcs, circles, ellipses, squares, rectangles, polygons, or combinations thereof, can alternatively be employed. The intumescent material 20 is applied over a portion of the surface of one or more of the layers 12, 14 of the web 10. Alternatively, the intumescent material 20 can be applied over the entire surface of one or more of the layers 12, 14. In this embodiment, the intumescent material is applied in a relatively uniform thickness. Other thicknesses, such as variable thicknesses, can alternatively be employed. In some embodiments, the intumescent material 20 can be omitted from the lines of the web 10 to form natural hinge lines or areas that are more easily bent than other areas where the intumescent material 20 expands. In some embodiments, pressure is applied to the expansion material 20 during or after expansion to create hinge lines or areas that bend more easily than other areas.

[0037] The second layer 14 includes one or more seals 22, 24 comprising a sealing material. The one or more seals 22, 24 may be configured to complement the seals 16, 18 of the first layer 12 and include one or more longitudinal seals 22 adhered along one or more longitudinal edges 28 of the second layer 14. The one or more seals 22, 24 of the second layer 14 include one or more transverse seals 24. The one or more transverse seals 24 extend to one or more of the longitudinal edges 28 of the second layer 14. In other embodiments, the one or more transverse seals 24 extend across a portion of the second layer 14.

[0038] According to some embodiments, the web 10 includes, in addition to or instead of the expansion material 20, one or more expandable chambers, such as those illustratively depicted in Figures 12A-12D.

[0039] The first layer 12 is joined to the second layer 14. After the first layer 12 and the second layer 14 are joined, one or more exterior seal materials are applied to the outside of the web 10 to form one or more exterior seals 30, 32, 36 (as shown in FIG. 2). One or more longitudinal seals 30 are applied to the outer longitudinal edges 34 of the web 10, and one or more transverse seals 32 are applied between the one or more longitudinal seals 30. The web 10 is then fed in a direction 42 (as shown in FIG. 5) through a folding device that folds the web 10. In this embodiment, the web 10 is folded along the folded edge 40. In other embodiments, the web alternatively has multiple folded edges 40.

[0040] The web 10 may include one or more exterior longitudinal seals 30 and one or more transverse seals 32, 36. The transverse seal 32 forms a bottom seal of one or more packages 44. In this embodiment, the transverse seal 36 is configured to seal the opening of the package 44 after a product is inserted into the interior cavity of the package 44. According to this embodiment, the transverse seals 32, 36 are of different seal types. In this embodiment, one or more of the transverse seals 32, 36 are of a different seal type than one or more longitudinal seals 30. In other embodiments, one or more of the transverse seals 32, 36 are alternately of the same seal type as one or more longitudinal seals 30. According to some embodiments, one or more longitudinal seals 30 can form a seal at a different temperature than the temperature required to form a seal using one or more transverse seals 32, 36. This allows a seal activated at one temperature to be activated at a different activation time than one or more seals activated at other temperatures. In some embodiments, each of the seals 30, 32, and 36 may be a heat activated seal.

[0041] The web 10 may include one or more web layers having surfaces including first and second regions, such that when corresponding first regions (e.g., corresponding to the regions where seals 30 and 32 are disposed in FIG. 2 ) are overlapped with each other and corresponding second regions (e.g., corresponding to the region where seal 36 is disposed in FIG. 2 ) are overlapped with each other, the overlapping first and second regions cooperatively enclose a cavity defined between the at least one web layer. The web 10 may include a first sealing material disposed in the first regions and configured to seal the corresponding first regions of the at least one web layer together upon application of a first condition to the first sealing material. The web 10 may include a second sealing material disposed in the second regions and configured to seal the corresponding second regions of the at least one web layer together upon application of a second condition to the second sealing material. The second sealing material is configured such that the first condition applied to the second sealing material is insufficient to cause the second sealing material to seal. In some embodiments, the first and second sealing materials are different materials. The corresponding first regions are sealed to one another by a first sealing material, and the second sealing material is unsealed to form an opening to the internal cavity 46, the opening being configured to receive an object within the internal cavity. In some embodiments, the second sealing material is configured to close the opening. In some embodiments, the corresponding first regions are sealed to one another, and the corresponding second regions abut one another. In some embodiments, the at least one web layer includes a longer web layer and a shorter web layer, wherein the second region of the longer web layer is disposed on the longer web layer in a direction facing the internal cavity, and the second region of the shorter web layer is disposed on the shorter web layer in a direction facing outward from the internal cavity.

[0042] In some embodiments, one or more longitudinal seals 30 and one or more transverse seals 32, 36 include a sealing material configured to establish a seal without the application of heat. For example, one or more longitudinal seals 30 and one or more transverse seals 32, 36 include a pressure-activated adhesive, a cold glue (e.g., a collagen-based glue, a polyvinyl acetate-based glue, or other suitable glue), and / or other suitable sealing material. This prevents the expansion material 20 from activating and expanding during activation of either one or more longitudinal seals 30 and / or one or more transverse seals 32, 36.

[0043] In this embodiment, one or more transverse seals 32, 36 are provided at spaced locations along the length of web 10 and extend substantially completely across web 10 between longitudinal edges 34 of web 10. In other embodiments, one or more of the transverse seals 32, 36 alternately extend over a portion of the transverse length of web 10. The transverse seals 32, 36 are separated by gaps 38 spaced a distance 35 apart. According to some embodiments, gaps 38 are configured to act as vents to allow the escape of one or more gases generated through the inflation process of the inflatable element.

[0044] As shown in FIG. 3 , a cross-section of a folded web 10 according to various embodiments of the present disclosure is illustratively depicted. The web 10 is folded over at a folded edge 40 to form a pouch structure having an internal cavity 46. One side of the folded web 10 is folded over and the other side is sealed via a longitudinal seal 30 to form a seam. The longitudinal seal 30 may include one or more pressure-activated seals, such as a heat-activated seal (e.g., a heat-activated adhesive or other suitable heat-activated seal), one or more strip seals, or one or more pressure-activated seals, such as a pressure-activated adhesive or other suitable type of pressure-activated seal. The sealing material may be applied around the periphery. In some embodiments, the sealing material has a substantially uniform width. In some embodiments, the sealing material is applied with varying widths. The web 10 may have one folded edge 40 or may have multiple folded edges 40.

[0045] Once folded and flat, the longitudinal seals 30 align. In some embodiments, the seals 30 align at the longitudinal edges 34 of the web 10, as shown in FIG. 3. In other embodiments, the seals 30 align at locations between multiple folded edges 40, as shown in FIG. 4, to form seams 48 at the unfolded web longitudinal edges 34. The web 10 includes one or more areas of weakness 50 extending transversely (e.g., generally perpendicularly) to the longitudinal edges 34. The seam 48 may include a longitudinal edge 34 overlapping another longitudinal edge 34, with a sealing material applied to an upper region of one longitudinal edge and / or a lower region of the other longitudinal edge, thereby forming the seal 48. In some embodiments, the seal 48 may be a fin seal or other suitable seal configuration.

[0046] In this embodiment, one or more transverse seals 32 are provided at spaced locations along the length of web 10 and extend substantially completely transversely through web 10 between longitudinal edges 34 of web 10. In other embodiments, one or more transverse seals 32 extend over a portion of the transverse length of web 10.

[0047] As shown in Figures 4A-4C, the packaging material web includes overlapping first and second layers 12, 14, including a hinge region 55 arranged to fold the overlapping layers together at a hinge line 57 extending through the hinge region 55, and separating the overlapping layers on opposite sides of the hinge line into first and second wall portions 61, 63, which fold along the hinge line 57 into a folded configuration to define an interior cavity 46 therebetween and are configured to receive and contain an object. In some embodiments, the packaging material web includes an expandable material configured to cushion an object when in an expanded configuration. The expandable material is disposed between the first and second layers in a main padding region 67, and the hinge region between the layers has less expandable material than the main padding region 67, such that the hinge region is thinner than the main padding region in the folded configuration. The web further includes a sealing material arranged to affix the walls in the folded configuration such that the first and second walls define a packaging unit. In some embodiments, the web further includes a longitudinal sealing material. In some embodiments, one or both of the longitudinal edges are sealed.

[0048] In some embodiments, the hinge region 55 is substantially free of expandable material, providing a gap 59 between the portions of the main padding region 67 on the first and second walls 61, 63. In some embodiments, the hinge region 55 comprises an amount of expandable material that is less than 30% of the amount of expandable material in the main padding region 67. In some embodiments, the hinge region 55 comprises an amount of expandable material that is less than 25% of the amount of expandable material in the main padding region 67. In some embodiments, the hinge region 55 comprises an amount of expandable material that is less than 10% of the amount of expandable material in the main padding region 67. In some embodiments, the hinge region 55 is free of expandable material. In some embodiments, the hinge region 55 is a longitudinal band having a width. However, the hinge region 55 may have one or more other suitable shapes.

[0049] In some embodiments, the overlapping first and second layers include a third wall portion 65, and the hinge region includes a first hinge region disposed between the first and second wall portions and a second hinge region disposed between the second and third wall portions, such that the first and third walls, respectively folded about hinges at the first and second hinge regions, overlap the second wall portion to form a first wall of the package, and the first and third walls, respectively, form a second wall of the package that overlaps the first wall and defines an interior cavity therebetween. A sealing material is positioned to seal the first wall to the third wall. In some embodiments, the first and third walls have longitudinal edges such that in the folded configuration, the longitudinal edges are positioned over the second wall portion and are sealed to each other by the sealing material. In some embodiments, the second wall has a lateral width between the hinge lines, and the first and third walls cumulatively have a cumulative lateral width that is at least as wide as the lateral width of the second wall.

[0050] As shown in Figures 4A-4C, in some embodiments, the hinge region extends longitudinally, the overlapping layers include longitudinally extending edges, and the sealing material is positioned to seal the edges to one another in the folded position.

[0051] In some embodiments, the first and second wall portions each form a single wall, hi some embodiments, the first and second wall portions each include a longitudinal edge, and the sealing material is disposed along the longitudinal edges of the first and second wall portions to affix the walls.

[0052] 5-6, multiple longitudinal seals 30 are configured to seal multiple webs 10 together. According to this embodiment, a package 44 is formed by sealing multiple webs 10 together, rather than by folding a single web 10 over itself.

[0053] Once the web 10 of packaging material is formed, it is collected in an unexpanded, high-density feed configuration to form a webstock of packaging material. According to some embodiments, the unexpanded, high-density feed configuration can be wound into a feed roll configuration 52, as exemplarily depicted in FIG. 7. The roll configuration 52 can be a cored or coreless roll configuration. Another suitable high-density feed configuration is obtained by folding the web 10 into a fanfold stack configuration having opposing folds 56, such as a fanfold (e.g., accordion) configuration 54 (as exemplarily depicted in FIG. 8), and / or other suitable configurations. Another suitable high-density feed configuration is a series of two or more stacked packaging units. As shown in FIG. 8, before collection, the web 10 is folded into a series of preformed packaging containers 44. The web 100 can be in a high-density feed configuration 58 (as shown in FIG. 7), in which the expandable walls formed by the web 100 are compressed in an unexpanded configuration. According to another embodiment, the web 10 can be configured in a high density packaging container configuration 60 (as shown in FIG. 8) in which one or more expandable walls are configured into a series of preformed packaging containers 44 and compressed into an unexpanded high density configuration.

[0054] 9A-9B, a system 70 for converting stock material into a supply chain of packaging containers is shown. A web 10 includes a first layer 12 and a second layer 14. The first layer 12 is fed in a direction 72, and the second layer 14 is fed in a direction 74, with the first layer 12 being bonded to the second layer 14. An intumescent material 20 is applied to the first layer 12 using an intumescent material applicator 64, and one or more sealing materials 66 are applied to the first layer 12 using a sealing material applicator 68. After the intumescent material 20 and the sealing material 66 are applied, the first layer 12 and the second layer 14 are bonded. Bonding can include applying pressure using a pressure applicator 76 configured to apply pressure to the first layer 12 and the second layer 14.

[0055] After the first layer 12 and second layer 14 are joined, one or more exterior seal materials are applied to the exterior of the web 10 to form one or more exterior seals 30, 32 (shown in further detail in FIG. 2). One or more longitudinal seals 30 are applied to the outer longitudinal edges 34 of the web 10 using a longitudinal seal applicator 78, and one or more transverse seals 32, 36 are applied between the one or more longitudinal seals 30 using a transverse seal applicator 80. The web 10 is then fed in the direction 42 through a folding device 82, which folds the web 10.

[0056] The folding device 82 includes a folding mechanism 84 (e.g., a folding bar 84). A tensioning mechanism 86 (e.g., a wheel 87) applies tension to the web 10, causing the folding bar 84 to fold the web 10 along the shape of the folding bar 84. The folding mechanism 84 may be a V-shaped folding bar or other suitable folding shape. For example, in some alternative embodiments, the folding mechanism 84 includes multiple bends.

[0057] The web 10 is folded along the folding edges 40. The folding device 82 includes a flattening mechanism 88 configured to flatten the web 10 once folded by the folding mechanism 84. The flattening mechanism 88 is a flattening bar configured to apply pressure to and flatten the web 10. The web 10 is then sealed along one or more longitudinal seals 30 using a sealing device. The flattening mechanism function 88 can function as the sealing device. In other embodiments, the system 70 can alternatively incorporate a separate sealing device. The sealing device is configured to apply heat, pressure, and / or other suitable means to activate one or more longitudinal seals 30.

[0058] The system 70 includes a cutting device 90. The cutting device 90 is configured to form one or more areas of weakness 50 and openings 62 in the web 10. The one or more areas of weakness 50 are configured to assist in separating the web 10 into one or more separate packaging elements (e.g., one or more packaging containers). The openings 62 are configured to allow access to the interior cavity 46 of each of the one or more packaging containers 44. The openings 62 may be slits. In other embodiments, the openings 62 are configured to be torn rather than completely cut open by the cutting device 90. Note that the one or more areas of weakness 50 and / or openings 62 can be formed before or after the web 10 is collected. The cutting device 90 includes an upper compression roller 92 and a lower compression roller 94. The upper compression roller 92 includes a series of teeth 96 configured to pierce the web 10, forming the areas of weakness 50 transverse to the longitudinal edge of the folded web 10. The lower compression roller 94 can include a rigid surface, an elastomer, or other suitable material. In some embodiments, the cutting device includes one or more blades, heat cutters, and / or other suitable means for cutting one or more portions of web 10 .

[0059] The web 10 includes one or more areas of weakness 50 extending transversely (e.g., generally perpendicularly) to the longitudinal direction at one or more longitudinal edges. In other embodiments, the areas of weakness 50 are alternatively located elsewhere along the transverse direction of the web 10. The areas of weakness 50 may be provided by perforations, scoring, or other suitable techniques to weaken the material at desired locations, facilitating separation of the individual envelope sections. An area of ​​weakness 50 may be provided between each pair of adjacent package formations 44, thereby separating the individual package formations 44. The areas of weakness 50 may be provided within the periphery of the transverse seals 32, 36. The areas of weakness 50 may penetrate both layers 12, 14, or alternatively, may penetrate a single layer. The web 10 may include one or more slits configured to aid in separation of adjacent package formations 44.

[0060] To prevent the expansion material 20 from leaking out of the package former 44 (particularly when a chemical reaction is used to expand the expansion material), the transverse seals 18 in the first layer 12 and the transverse seals 24 in the second layer 14 may be positioned to surround the areas before and after the area of ​​weakness 50. The web 10 may include one or more slits in the longitudinal edges of the web 10 to aid in separation.

[0061] The system 70 includes an accumulation device 98 configured to accumulate the web 10 into an unexpanded, dense configuration, such as, for example, a roll configuration 52, a fanfold stack configuration 54, and / or other suitable configuration. The accumulation device 98 is configured to bend, roll, and / or otherwise change the shape of the web 10 into the accumulated, unexpanded, dense configuration.

[0062] It should be noted that the intumescent material 20 and / or the sealing material 66 can be applied to the first layer 12 and / or the second layer 14. It should also be noted that the web 10 can include any suitable intumescent wall configuration and material as described herein, such as the intumescent intumescent material in the web 120 shown and described herein.

[0063] As shown in FIG. 10 , the web 10 includes a first bag wall 100 and a second bag wall 102. The walls include a wall cavity 47 in which the expansion material 20 is housed. The first bag wall 100 can include a cut 104 configured to allow access to the interior cavity 46 of a package formation 44, while the second bag wall 102 includes an area of ​​weakness 50 configured to allow separation of an upper portion 106 of one package formation 44 from a lower portion 108 of a subsequent package formation 44. The opening 46 is sealed along a seal 36. In some embodiments, the seal 36 includes a sealing material that is different from the sealing material of the seal 32. In some embodiments, when the seal 32 is formed, the seal 36 remains unformed until after an object is placed within the interior cavity.

[0064] As shown in FIG. 11 , the cutting mechanism 90 can be configured to cut the first bag wall 100 while the teeth 96 of the cutting mechanism 90 pierce the second bag wall 102. Between the teeth 96 are recesses 110 configured to allow for the formation of the perforations 50. The cutting mechanism 90 forms an opening 62 configured to provide access to the interior cavity 46 of the bag. In some embodiments, the cutting mechanism 90 is configured to form the opening 62 over the region of weakness 50. In some embodiments, the cutting mechanism 90 is configured to form the opening 62 adjacent the region of weakness 50. In some embodiments, the cutting mechanism 90 is configured to form the opening 62 offset from the region of weakness 50 by a distance 35, forming a gap 38 between the opening 62 and the region of weakness 50 (as shown in FIG. 2 ).

[0065] 12A-12D, the web 10 may be a multi-layer inflatable web 120 of an inflatable protective packaging film. As shown in FIGS. 12A-12D, some embodiments of the present disclosure are particularly directed to methods, systems, products, devices, and / or apparatus generally related to flexible structures forming inflatable chambers. A flexible structure, such as a multi-layer inflatable web 120 of an inflatable protective packaging film, is provided. The inflatable web 120 includes a first web film layer, or layer, 122. The inflatable web 120 also includes a first longitudinal edge 124 and a second longitudinal edge 126. The inflatable web 120 includes a second web film layer, or layer, 128 having a first longitudinal edge 130 and a second longitudinal edge 132. The longitudinal edges 124, 126, 130, 132 extend in a longitudinal direction 134 of the web 120. The longitudinal direction of the web 120 can be the direction in which the web 120 enters the converter. The longitudinal direction 134 can be the direction in which the web 120 is fed into the converter or the direction in which the finished structure is wound onto a storage roll after processing. The longitudinal direction 134 can be the upstream longitudinal direction or the downstream longitudinal direction. The upstream longitudinal direction 136 is the longitudinal direction opposite the direction of movement of the web 120 through the converter. The downstream longitudinal direction is substantially the same direction as the direction of movement of the web 120 through the converter. Generally, the longitudinal direction 134 corresponds to the longest dimension of the web film layers 122, 128. The second layer 128 can be aligned to overlap and generally coaxial with the first layer 122 (as shown in FIG. 12A ), i.e., at least the respective first longitudinal edges 124, 130 are aligned with one another and / or the second longitudinal edges 126, 132 are aligned with one another.

[0066] In some embodiments, the layers or plies 122, 128 can partially overlap the expandable region in the overlapping area. The layers 122, 128 can be joined to define a first longitudinal edge 140 and a second longitudinal edge 142 of the film 120. This can be done using separate sheets or by folding a single sheet. A longitudinal seal 144 can be formed at the first longitudinal edge 140, and a longitudinal seal 146 can be formed at the second longitudinal edge 142. For example, the first longitudinal edges 124, 130 can be joined together to form the first longitudinal edge 140 of the film 120, and the second longitudinal edges 126, 132 can be joined together to form the second longitudinal edge 142 of the film 120. The joining of the respective edges forms an airtight seal at the first and second longitudinal edges 140, 142 of the film 120.

[0067] In some embodiments, film layer 136 can be sealed to layer 122, thereby sandwiching layer 122 between layers 128 and 136, as shown in FIG. 12C . This provides additional rigidity to the structure. Film layer 136 includes a first longitudinal edge 148 and a second longitudinal edge 150. First longitudinal edges 124, 130, and 148 can be bonded together to form first longitudinal edge 140 of film 120, and second longitudinal edges 126, 132, and 150 can be bonded together to form second longitudinal edge 142 of film 120. The bonding of each edge forms an airtight seal at first and second longitudinal edges 140, 142 of film 120. In some embodiments, first longitudinal edge 140 is not necessarily closed but remains open to form expansion region 152, which allows for fluid to be injected from the side. However, in other embodiments, the first longitudinal edge 140 is closed to form a closed expansion region 152, such as a channel into which a nozzle is inserted.

[0068] The web 120 can be formed from any one of a variety of web materials known to those skilled in the art. Such web materials can include ethylene vinyl acetate (EVA), metallocene, polyethylene resins such as low-density polyethylene (LDPE), linear low-density polyethylene (LLDPE), and high-density polyethylene (HDPE), paper, metal, and mixtures thereof. Other materials and constructions can be used. The disclosed web 120 can be rolled into a hollow tube, fan-folded into a box, or folded into another desired shape for storage and shipping.

[0069] The various layers (e.g., 122, 128, and / or 136) can be connected via various seals throughout their extent. The seals can simply connect the film layers, or the seals can further define or enable features. For example, layers 122, 128 can be connected to one another by seal 154. Additionally or alternatively, according to various embodiments, one or more fluid-retaining cavities 156 are defined within the boundaries formed by seal 154. Seal 154 can seal layers 122, 128 to one another while leaving one or more regions, such as fluid-retaining cavities 156, unsealed. In some embodiments, the unsealed portions can also include channels 158 and / or expansion regions 152. Seal 154 can extend from first longitudinal edge 140 to second longitudinal edge 142 and define various fluid-retaining cavities 156 between the film layers. In some embodiments, as shown in FIG. 12A , the seals 154 have a generally transverse orientation. The web 120 includes a series of transverse seals 154 arranged transversely along the longitudinal extent of the web 120. The transverse direction is a direction extending at an angle relative to the longitudinal direction of the web 120. In some embodiments, the transverse direction is substantially perpendicular to the longitudinal direction. However, in other embodiments, the transverse direction may have an angle greater than 0 degrees and less than 90 degrees relative to the longitudinal direction that is non-perpendicular to the longitudinal direction. In some embodiments, the seal 154 may be continuous with the seal 160 connecting the edges 142. In some embodiments, the seal 154 may be continuous with the seal 162 that defines the expansion region 152. The second end 162 of the seal 154 may be spaced from the first longitudinal edge 140 by a transverse dimension D. The distance between the first end 160 and the second end 162 defines the transverse width of the transverse seal 154.

[0070] Each transverse seal 154 embodied in FIG. 12A is substantially straight and extends substantially perpendicular to the second longitudinal edge 142 (e.g., across the film 120). However, it will be understood that the transverse seals 154 can have other configurations. While the transverse seals 154 are intended to be sealed along their entire area, it is also intended that the transverse seals be sealed around their periphery with the intermediate portion unsealed to form a pocket therein. The transverse seals 154 are also intended to be sealed with the longitudinal seal 144 proximate the second end 162. In other embodiments, a pair of substantially linear seals may be disposed on either side of the separation area.

[0071] The sealed longitudinal ends 140, 142 (which in some embodiments may be the same continuous seal) as well as the transverse seal 154 may be formed by any one of a variety of techniques known to those skilled in the art, including, but not limited to, adhesive bonding, friction welding, fusing, heat sealing, laser sealing, and ultrasonic welding.

[0072] The expandable web 120 can include a fluid-retaining cavity 156. The fluid-retaining cavity 156 is expandable and contractible in various embodiments (e.g., FIGS. 12A-12D). In other embodiments, the fluid-retaining cavity 156 can fill with fluid upon expansion without a mechanism for deflating the cavity aside from collapsing the cavity. In some embodiments, the fluid-retaining cavity can be an expandable / contractable cavity 166 having an inflation port 168. In some embodiments, the fluid-retaining cavity 156 can be a large cavity that extends across and / or around multiple contours, such as an expandable cavity. In some embodiments, the fluid-retaining cavity can be a completely isolated cavity that fills with fluid upon formation without an inflation mechanism. These various cavities can be used separately to form an expandable web, or can be used in any suitable combination to form a web. Some of these various embodiments are discussed in more detail below. According to various embodiments, the various cavities contain a fluid to maintain the respective web film layers defining the cavities spaced apart from one another at the locations of the cavities and provide cushioning. Suitable fluids may be gases such as air, carbon dioxide, nitrogen, or other suitable gases. The fluid may also be a liquid or a gel.

[0073] The web 120 can include expansion regions 152 (e.g., closed or open passages suitable for receiving an injected fluid). In one example, the expansion regions 152 are longitudinal expansion channels, as shown by way of example in FIGS. 12A-D. The longitudinal expansion regions 152 are disposed between the second ends 162 of the transverse seals 154 and the first longitudinal edge 140 of the film 120. The longitudinal expansion regions 152 can extend longitudinally along the longitudinal edge 140, and expansion openings 174 can be disposed on at least one end of the longitudinal expansion regions 152. The longitudinal expansion regions 152 have a transverse width. In a preferred embodiment, the transverse width is substantially the same distance as the transverse dimension between the first longitudinal edge 140 and the second end 162. However, it will be understood that other suitable transverse width sizes can be used in other configurations.

[0074] In some embodiments, the fluid-retaining cavity is an inflatable / deflatable cavity 166 having inflation ports 168. For example, FIG. 12B shows a cross section of the expandable web of FIG. 12A where two layers are laminated together and include multiple sub-chambers. According to various embodiments, cavity 166 is formed by an unsealed location between two layers of material (e.g., 128 and 122). According to various embodiments, in forming cavity 166, at least one film layer (e.g., 122) includes an extension portion 176. In some embodiments, the expandable cavity includes individual fluid-retaining cavities configured to be separate and spaced apart from and sealed apart from other cavities.

[0075] According to various embodiments, the extension portion 176 can define a bounded three-dimensional shape suitable for containing a fluid. The extension portion 176 may also be collapsible for packing in a more dense configuration than its expanded form. This bounded volume can be defined in part by a complex surface protruding from at least one of the layers (e.g., 122). For example, when laid flat, the layer defines a generally planar configuration. It is understood that the layers 122, 128 are flexible and thus may define a complex surface across their extent when bent, folded, or otherwise deformed, but when laid flat, generally conform to a planar surface across their extent, thereby defining a generally planar surface. Even when defining a planar surface, the extension portion 176 protrudes from the generally planar surface as individual complex surfaces, forming a plurality of individual cushion structures in the layer. The complex surfaces forming the individual, distinct cushion structures exist even in the absence of internal air pressure. For example, as shown in FIGS. 12B and 12C , extension portion 176 protrudes from layer 122 away from layer 128. In embodiments in which layer 122 includes one or more extension portions 176, the layer defines a shaped layer 122. In embodiments in which layer 128 includes one or more extension portions, then layer 128 would additionally or alternatively define a shaped layer. In embodiments in which layer 128 does not include one or more extension portions, then layer 128 defines a base layer 128. As described below, in various embodiments, layer 128 may be a base layer, while in other embodiments, layer 128 may be a shaped layer. For clarity with respect to the examples shown in the various figures, layer 128 may be provided and referred to as a base layer, and layer 122 may be referred to as a shaped layer. However, these are provided by way of example only, and one skilled in the art will understand that both layers may be shaped layers, or alternatively, one layer may be a shaped layer.

[0076] According to various embodiments, the structure of the extension portion 176 can be defined by three-dimensional plastic deformation at the surface of the material layer (e.g., 122), thereby forming a complex surface. As used herein, plastic deformation refers to permanent strain that occurs when a material is subjected to tensile, compressive, bending, or torsional stresses beyond its yield strength, causing the material to stretch, compress, buckle, bend, or twist, thereby leaving the material with a permanent structural deformation. When a layer is initially fabricated, it can have a generally uniform cross-section. The extension portion 176 is a discrete plastic deformation of the material that forms a discrete complex surface. In various examples, the plastic deformation is not uniform across an extension portion 176, thus forming a complex curve. In certain examples, portions of the formed layer (e.g., 122) are plastically stretched from discrete locations that define the generally broad and complex surface of the film. In such an embodiment, at a structural level, the layer material would exhibit a polymer that is plastically deformed, plastically stretched, thinned, and / or permanently physically altered (meaning the structure will not spontaneously return to its previous shape or size) at the location of each of the extension portions 176. A base layer (e.g., 128) closes off the generally open, concave side of the extension portions 176 forming cavities or sub-chambers 178. Multiple connected sub-chambers 178 can define a chamber 156, as shown in Figures 12B and 12C.

[0077] In an alternative embodiment, multiple plastic layers are arranged to lie flat on top of one another. A sealing pattern may be applied to the unstretched portions of the layers to define the fluid chamber. In some embodiments, the plastic layer is an unstretched plastic layer. Multiple unstretched flat plastic film layers are stacked on top of one another and a sealing pattern is applied to define the expansion chamber. In this embodiment, the portion of the layer surrounding the fluid chamber is unstretched. In some embodiments, the entire film layer is unstretched. Suitable configurations of expandable web materials known in the art can be used, such as those shown in U.S. Patent Publication No. 2019 / 0291907.

[0078] In various embodiments, the extension portion 176 has a perimeter 180 that defines an opening that is closed by the base layer (e.g., 128). The opening has an area that is smaller than the surface area of ​​the surface that forms the extension portion 176 that protrudes from the base layer (e.g., 128). In embodiments in which the extension portion 176 is formed by plastic stretching, it is the material that previously covered the open area that is plastically stretched to form the extension portion 176.

[0079] According to various other embodiments, the structure of extension portion 176 can be formed from other suitable structures that define a complex surface protruding from a layer. For example, extension portion 176 can be shaped in place to avoid plastic deformation in the material of the layer. In another example, extension portion 176 can include a second cap structure that is heat-sealed or adhered to the surface of the layer. While not necessarily enumerated herein, other suitable structures that define a complex surface protruding from a layer, as would be understood by one of ordinary skill in the art, are also contemplated herein.

[0080] According to various embodiments, the extension portion 176 may protrude from one layer, defining a single direction of chamber protrusion, or may protrude from both layers, defining protrusions from both surfaces of the web 120. In one example, the extension portion 176 does not protrude from the base layer (e.g., 128), but rather from one molded layer (e.g., 122). In such an example, the base layer (e.g., 128) forms part of a finite cavity, defined by its natural shape in response to fluid pressure, while the extension portion of the molded layer (e.g., 122) assumes a shape applied to the extension portion 176. Thus, the base layer (e.g., 128) will not necessarily protrude at the location of the cavity in the absence of internal fluid pressure. Even in the presence of internal fluid pressure, the base layer (e.g., 128) will protrude minimally or significantly less than the protrusion of the chamber 156 in the same region of the web 120. In another example, extension portions are defined in both layers, but in non-opposing locations. In other words, where an extension portion is located on one layer, an extension portion is not located in a directly opposite position on the other layer. In another example, various extension portions 176 are independently defined by both layers at the same or similar locations such that chambers protrude in both directions where the layers overlap. While shown as circular by way of example, it should be understood that extension portions 176 can include a variety of suitable shapes and dimensions. For example, extension portions 176 can be rectangular, triangular, oval, elliptical, etc.

[0081] In some embodiments, the protective packaging material includes a preformed inflated enclosure (see, e.g., bubble wrap). In some embodiments, the extension portion 176 is closed in a manner that allows the cavities 166 to be inflatable and / or deflate after the web 120 is manufactured. For example, each of the cavities 166 can include an inflation port 168. The channel 158 can be connected to the inflation port 168 or a similar suitable structure to add or remove fluid from the cavities 166 after their formation. In some embodiments, the various cavities 166 are deflateable and expandable even after the web 120 is manufactured. This contrasts with traditional protective packaging, such as bubble wrap, in which fluid is trapped in bubbles during manufacturing and there is no way to deflate the bubbles in the material after manufacturing without breaking the bubbles, which then cannot be refilled. According to various aspects of the present disclosure, the cavities 166 can be inflated after the web is manufactured and after the cavities 166 of the web have deflated. This can be done by injecting air into inflation ports 168 of cavities 166. In some embodiments, the various cavities are sealable once finally inflated to maintain the inflated configuration.

[0082] According to various embodiments, the plurality of cavities 166 are expandable and contractible and together form the chamber 156. For example, a sub-chamber 178 can have an inflation port 168 interconnected to another sub-chamber 178 via a channel 158. A group of interconnected sub-chambers 178 together form the chamber 156 having a common inflation channel 158 suitable for distributing fluid to each of the sub-chambers 178 via their respective ports 168. As shown by way of example in FIG. 12A , the common inflation channel 158 can be a channel extending in series (i.e., daisy-chained) between a row of chambers 156. In another embodiment, the common inflation channel can be a manifold extending parallel to each of the chambers 156 (e.g., in some embodiments, isolated chambers are fed in parallel from adjacent chambers). According to various embodiments, the channel 158 can extend from the inflation region 152. In some embodiments, the web 120 includes a plurality of chamber channels 158, with each chamber channel 158 directed to a separate chamber 156. For example, as shown in Figure 12A, multiple channels 158 extend from the expansion region 152. In this example, each channel extends across the material from the longitudinal expansion region 152. Additionally, different groups of chambers are provided along the longitudinal length of the web 120.

[0083] The chamber 156 is sufficiently compartmentalized to retain fluid after being sealed. In some embodiments, the chamber 156 may be expandable after being formed. In some embodiments, the chamber 156 may be contractable after being formed. In some embodiments, the chamber may allow fluid to pass between sub-chambers even after a final seal is applied to the chamber, thereby preventing additional fluid from being added to the chamber. In some embodiments, the chamber 156 is also contractible after being formed and before being sealed.

[0084] 12B, the web 120 can include a horizontal row of chambers 156 formed from a plurality of subchambers 178, each connected to an expansion region 152. In this manner, fluid injected into the expansion region 152 can pass through the channels 158 and enter the expansion ports 168 of each of the subchambers 178, filling the subchambers 178 and the chamber 156.

[0085] According to various embodiments, web 120 can have a relatively small number of large chambers per section (i.e., between the areas of weakness discussed herein). For example, each section can have one large chamber. As another example, each section can have 2-5 chambers. As another example, each section can have 5-20 chambers. In other embodiments, web 120 can have a relatively large number of extensions, which may or may not form chambers. The multiple extensions are referred to as caps. The caps may be plastically deformed extensions as described above. For example, more than 20 plastically deformed extensions per section may be referred to as caps.

[0086] In some embodiments, the cavities 166 may be individually inflatable. For example, each cavity 166 may include an individual inflation port into the exterior of the web 120. Such inflation ports may include one-way valves, sealable ports, mechanically closed ports, or the like.

[0087] According to various embodiments, when the web 120 is inflated and prepared for use as protective packaging, one or more of the inflation ports 168, channels 158, or expansion regions 152 can be sealed, causing at least partial isolation of the chambers 156 and / or subchambers 166. Once the final seal is applied, embodiments lacking valves are no longer sealable or collapsible. Up until this point, fluids forced into one or more of the expansion regions 152, inflation ports 168, channels 158, subchambers 166, or chambers 156 can be forced back out and re-forced. This allows the material to expand and then collapse to a more compressed state for ease of handling and shipping. After being handled and when prepared as protective packaging, the web 120 can be inflated and a final seal applied.

[0088] According to various embodiments, the expansion channels 158 may be enlarged protrusions in the molded layer 122. These enlarged molded channels can be formed similarly to the expansion portions 176 described above. For example, these channels can have a structure that includes plastic deformation in the molded layer 122. In other embodiments, the channels 158 may be formed by an unsealed region between the molded film 122 and the base layer 128. Fluid can then pass between the unsealed layers 122 and 128. A seal can then join the sides of the channel, directing fluid from one cavity to the next. In various embodiments, the channels are significantly smaller than the chambers 156 and / or the expansion portions 176.

[0089] In some embodiments, the fluid-retaining cavity may be an isolated cavity that is filled with fluid upon formation. The isolated cavity does not have an inflation port and therefore can only release fluid upon rupture. Similar to the expandable cavity 166 described above, the isolated cavity is formed from an expansion portion 176 similar to that described above. However, one difference is that the isolated cavity is filled upon formation because it does not have an inflation port or connected channel and therefore is not expandable or contractible unless ruptured. In this embodiment, layers 122 and 128 are sealed to each other all around the cavity without the presence of an inflation port or channel.

[0090] In some embodiments, the isolated cavities can include intra-chamber channels. Such cavities are filled as they are formed. They do not have external inflation ports, but can include channels extending between sub-chambers, allowing fluid contained therein to be pushed back and forth within the connected sub-chambers.

[0091] However, these isolated cavities can be surrounded by an expandable cavity. The isolated cavities can be defined by a seal 154, which can form a perimeter around the isolated cavities while they are not sealed. For example, as described above, layers 122 and 128 can be sealed to each other to define isolated or expandable cavities 178. A tertiary layer 136 can also be provided. The tertiary layer 136 is tertiary because it can be attached to the base layer 128 and the shaped layer 122. In various examples, the tertiary layer 136 and the base layer 128 sandwich the shaped layer 122 therebetween. In such an embodiment, the tertiary layer 136 is sealed to the shaped layer 122. In one example, the seal is located on the outer surface of the extension portion 176. In a more specific example, the seal is located on the outermost protrusion on the outer surface of the extension portion 176. Tertiary layer 136 is also sealed to shaped layer 122 via transverse seals that intersect the layer at periodic locations along its length. Similar seals can be applied to other examples of webs shown herein (e.g., FIG. 12A). Transverse seals can be located where there are transverse areas of weakness. Also, as noted above, tertiary layer 136 can have longitudinal seals along edges 144 and 146, with a final seal along the expansion region. Each of these outer seals (e.g., 144 and 146) surrounds the perimeter of expansion portion 176. Seal 192 holds tertiary layer 136 to the outer surface of expansion portion 176. In the embodiments described below, the volume between layers 122 and 136 and within the seals is a secondary cavity. Here, the cavity is shown to contain a fluid. In some examples, the fluid may be open to the atmosphere (see, e.g., FIG. 12D) or may be sealed. For example, the fluid here may be trapped when layer 136 is sealed to layer 122. In some embodiments, this volume is passively expandable (e.g., FIG. 12D). In some embodiments, this volume is actively expandable.Thus, the secondary cavity may form a chamber that is expandable and / or independently sealable from the cavity defined by expansion portion 176 .

[0092] In various embodiments, the web 120 includes one or more separation regions or weakened regions 164. The separation regions 164 facilitate separation of two adjacent web portions, such as separate groups of chambers 156. The regions can be separated, such as by tearing the web 120 by hand or with the aid of a tool or machine. The separation regions 164 can facilitate either or both partial or total separation of adjacent expandable chambers 156. As shown in the schematic diagram of FIG. 12A, the separation regions 164 are disposed between the chambers 156. In this manner, the chambers 156 can be easily separated from one another. In the embodiment of FIG. 12A, thin transverse seals 154 are disposed on either side of the separation regions 164, adjacent the seals 154. While shown adjacent the seals 154, it will be understood that the separation regions 164 can extend through the seals 154 or, as included in certain embodiments, through unattached layers 122, 128, 136, such as through the various expandable cavities and the layers defining them. In various embodiments, lines of weakness can be used to separate the regions.

[0093] As an example, FIG. 12A shows a schematic diagram of an inflatable web 120 with inflatable sub-chambers 178 forming multiple lateral chambers 156 recurring longitudinally along the length of the inflatable web 120. Each of the sub-chambers 178 within each chamber 156 is connected by a channel 158. The channel 158 is also connected to an expansion region 152 for inflation or deflation of the chamber 156. FIG. 12B is a schematic diagram of a cross section of an inflatable web 120 according to one particular embodiment of FIG. 12A. In some instances, the web shown in FIG. 12A can be made with only layers 122 and 128, as shown in FIG. 12B, or the web shown in FIG. 12A can be made with more layers, such as layers 122, 128, and 136. It will be understood that these are merely examples and that any suitable number of layers can be used in forming the web 120. As shown in the cross-section of FIG. 12B taken along section line 1-1 shown in FIG. 12A, an inflatable portion 176 is formed in layer 122 and sealed to base layer 128 forming subchamber 178. The connected subchambers form chamber 156. FIG. 12C is a schematic illustration of a cross-section of an expandable web 120 according to another specific embodiment of FIG. 12A. Here, web 120 includes layers 122, 128, and 136. Again, these are merely examples, and it will be understood that any suitable number of layers can be used to form web 120. As shown in the cross-section of FIG. 12C taken along section line 1-1 shown in FIG. 12A, an inflatable portion 176 is formed in layer 122 and sealed to base layer 128 forming subchamber 178. The connected subchambers form chamber 156. A tertiary layer 136 can be sealed to shaped layer 122 at the peak of inflatable region 176. The cavity defined therebetween is an expandable secondary cavity. One expansion region 152 is formed between layers 122 and 128. Fluid can be injected through expansion region 152 into chamber 156.

[0094] By way of example, in another embodiment, the tertiary layer 136 includes openings near its edges 148, 144. The openings allow air to pass through the layer 136 and reach the volume between the layer 136 and the molded layer 122. Thus, when the chamber 156 expands, the volume can be filled with fluid (e.g., atmospheric air). This limits the adhesion of the layer 136 to the layer 122 via the vacuum therebetween.

[0095] 12D shows another example of a passively expanded cavity. In this embodiment, the expandable web 120 includes an expandable sub-chamber and a tertiary layer 136 having a hole 196. The hole 196 penetrates the tertiary layer 136 but not the other layers. The hole 196 allows air to pass through the layer 136 and into the volume between the layer 136 and the molded layer 122. Thus, when the chamber 156 expands, the volume can be filled with a fluid (e.g., atmospheric air). This limits the layer 136 from adhering to the ply 122 via the vacuum therebetween.

[0096] For example, the web 120 can alternatively include chambers 156 positioned at an angle relative to the expansion region 152. This angled orientation can improve chamber collapse after the chambers are initially formed. In some embodiments, the chambers 156 terminate before traversing the web 120. By having chambers with early terminations, gaps are formed so that areas of weakness can be applied to form the separation regions 164. In some embodiments, the expandable web 120 can alternatively have a staggered arrangement of expandable sub-chambers 178, where each sub-chamber 178 is connected to the next adjacent sub-chamber 178 via a channel 158. Each different channel departs from the sub-chamber 178 at an opposing angle. This creates a staggered pattern of sub-chambers 178, creating a zigzag chamber design. In this manner, more sub-chambers 178 can be packaged in a single web. In some embodiments, the chambers 156 have a linear transverse orientation with the channels 158 connected to the central expansion region. One set of channels exits the expansion region in one direction and another set of channels exits the expansion region in the opposite direction, allowing the chamber 156 to extend in both directions from the expansion region.

[0097] In some alternative embodiments, the expandable web 120 includes an isolated cavity. The cavity is surrounded by a secondary cavity. An expansion region directs fluid into the secondary cavity. A final seal along the expansion region confines the fluid in the secondary cavity. In some embodiments, the web 120 includes one or more segment seals that seal the secondary cavity from the line of weakness 164. Thus, a segment of the web 120 can be torn at the line of weakness 164 without rupturing the secondary cavity.

[0098] It should be understood that the tertiary layer 136 can be used to form a secondary cavity, but can also, or alternatively, be used to reinforce the web 120 and make it more rigid. The additional layer adds rigidity by forming a structure similar to an I-beam. While the volume of the web 120 may be expanded subchambers or similar cavities, their distribution across the entire surface does not necessarily add rigidity. However, having film layers on both the top and bottom of these cavity structures creates a type of I-beam that increases rigidity. This can be achieved by increasing the bending moment of inertia. As variously shown herein, the cavity between the tertiary layer 136 and the molded layer 122 can be expanded after the molding of the molded layer has occurred. The cavity may be expanded before, after, or simultaneously with the chamber defined by the molded layer 122 being expanded.

[0099] Once the web 10 is collected, it is fed through a protective wrapper such as that shown in Figures 13-14 and 17A-17B.

[0100] One or more steps of forming a series of bags may be performed using a protective packaging machine, such as bagger / bagging apparatus 200 shown in Figures 13-14 or bagger / bagging apparatus 300 shown in Figures 17A-17B.

[0101] 13-14, a bagging machine 200 is supplied with a pre-folded and / or sealed web 10 to include pre-formed bag structures of the web 10. In other embodiments, such as those shown in FIGS. 17A-17B, a bagging machine 300 is configured to receive an unfolded or unsealed web 10 and form the web 10 into one or more package formers 44.

[0102] If web 10 includes an intumescent material, the bagging machine may expand the intumescent material before setting the seal. If web 10 includes an intumescent material 20, the bagging machine may expand the intumescent material before, during, or after setting the seal through the application of heat or other suitable means.

[0103] According to the embodiment shown in Figures 13A-13B, the bagging machine 200 may be configured to receive the web 10 of preformed package formations 44 and open the opening 62 of each bag structure 44 to access the interior cavity 46 of each bag structure 44.

[0104] In the embodiment of FIG. 13A, the bagging machine 200 includes a plurality of fingers 202 and / or retractable protrusions 204 configured to pull open the bag opening 62, thereby allowing one or more products / objects / etc. to be inserted into the interior cavity 46.

[0105] The web 10 is fed to the bagging machine 200 in an unexpanded, dense configuration. The web 10 at the feed side of the bagging machine 200 may be in a fanfold feed configuration 54 and / or other suitable configuration, such as, for example, a roll configuration 52. The bagging machine 200 includes a bag handler that includes one or more mechanisms and / or devices for moving the web from the feed downstream through the bagging machine 200. The bag handler may include a bag transfer device configured to move the web 10 along the bagging machine 200.

[0106] The bagging machine 200 includes an expansion device 206. If the web 10 includes an expansion material 20, the expansion device 206 can include a heating element, a heating coil, a hot air applicator, a radio frequency radiation generator, an ultraviolet light applicator, a chemical reaction applicator, a pressure mechanism, or other suitable device for expanding the expansion material. Alternatively or additionally, if the web 10 includes one or more expandable chambers, the expansion device 206 can include an expansion device configured to inject a fluid to expand and fill the fluid chamber (e.g., as shown in FIG. 16). The fluid can be air or another suitable fluid. In some embodiments, the expandable chamber requires application of a longitudinal seal (see, e.g., FIG. 16). In some embodiments, the expandable element of the web 10 includes a one-way valve for retaining the fluid within the chamber. In some embodiments, such as those shown in FIGS. 13A-13B, the expansion mechanism 206 is positioned and configured to expand the expandable element prior to inserting the product into the interior cavity 46. In other embodiments, the expansion mechanism 206 is positioned and configured to expand the expandable element following insertion of a product into the interior cavity 1105. In yet other embodiments, as shown in Figures 14A-C, the expansion mechanism 206 is positioned and configured to expand the expandable element during insertion of a product into the interior cavity 46.

[0107] As shown in Figure 13A, the expansion device 206 is positioned upstream of the bagging mechanism 208 to transport the web 10 to the bagging mechanism 208. The bagging mechanism 208 is configured to seal and separate the bag structures from subsequent bag structures (acting as a separator) to form individual bags.

[0108] In other embodiments, the inflation device 206 is located at or downstream of the bagging mechanism 208 to inflate the walls of the web 10 at other times during the bag-making process. In some embodiments, such as shown in Figures 13B and 14, a printing assembly 210 may be used to print one or more images and / or one or more data / information onto the web 10.

[0109] As shown in Figure 13B, the inflation mechanism 206 is configured to inflate the inflation element prior to opening the bag opening 62 for the insertion of one or more products. In other embodiments, as shown in Figure 14, the inflation mechanism 206 is configured to inflate the inflation element simultaneously with or after opening the bag opening 62 for the insertion of one or more products.

[0110] The web 10 includes one or more areas of weakness 50 and one or more openings 62 that are applied prior to the sealing process. In other embodiments, the one or more areas of weakness 50 and / or the one or more openings 62 are applied during or after the sealing process. The areas of weakness 50 are configured to be broken to separate one package from a subsequent package. The openings 62 are configured and arranged to allow access to the interior cavity 46 of the package former 44 and can be opened by mechanical fingers 202 and / or suction cups 212. Pressurized air can be used to assist in opening the openings 62 in the package formers 44.

[0111] The fingers 202 are configured to pinch a portion of the package opening 62, thereby providing additional security for opening the package at the opening 62 and holding the package in place. The bagging machine 200 can include an air blower 214 configured to apply air pressure to the opening 62 to assist in opening the package. The opening 62 can include a pouch seal. The pouch seal can include an adhesive to close and seal the opening 62 once the product is inserted. Other configurations for sealing the opening 62, such as a heat seal, can additionally or alternatively be applied. Once the opening 62 is closed and sealed, the weakened area 50 can be broken, for example, by running the next package back, cutting, melting, or other suitable means.

[0112] Each package 44 in the web 10 can be separated by applying a pulling force to each package 44, tearing at a weakened area 50 located between each bag in the series of bags, or using one or more cutting blades configured to create a tear along a seam connecting two packages 44 in the series of bags. In some embodiments, each bag in the series of bags is separated using focused heat configured to melt a portion of a seam connecting two packages 44 in the series of bags.

[0113] As shown in FIG. 16A, the operating sequence can begin by advancing the web 10 until the opening 62 is positioned over the sealing area 216, with the openings facing vertically and longitudinally along the length of the packaging unit. The amount of advancement of the web 10 to properly position the opening 62 can be programmed into the controller sequence based on the length of the bag (i.e., the system can advance the web 10 the same amount each time), or alternatively, computer vision (e.g., an optical sensor) can be used at the entrance 218 to pause the advancement of the web 10 when the presence of the weakened area 50 is properly positioned at the bag entrance 218. The bagging machine 200 can include a control panel 220 (as shown in FIG. 13A) configured to control one or more of the functions of the bagging machine 200. As shown in FIG. 16B, the sequence continues with the initial opening of the packaging container 44. The bagging machine 200 may utilize a vacuum assist device (e.g., suction cup 212) (and / or an air knife or other suitable device) to slightly enlarge the opening 62 to allow the fingers (e.g., rear finger 204 and front movable finger 202) to enter the opening 62. During this and the previous steps, the rear film control element (e.g., finger 204) may be in a non-engaging position relative to the web 10 (e.g., positioned outside the perimeter of the web 10 in this example). As shown in FIG. 16C, after the initial opening 62 is provided, the front film control element is deployed (e.g., finger 202 rotates down into the opening 62 to grip the front side of the package 44). At this time, the rear film control element (finger 204) is also deployed, and the rear finger 204 is moved toward the centerline of the entrance 218, as indicated by arrow 222, as shown in FIG. 16D. In some embodiments, the rear fingers 204 may be translated inward to a position where the rear fingers 204 are substantially aligned with the front fingers (or retractable protrusions) 202, at which point they may be extended laterally into the opening 62. In other embodiments, the fingers 204 may be advanced to a different lateral position (e.g., a position where they are closer to each other than the front fingers 202) before being extended into the package 44.In the case of extendable fingers 204, for example, air pressure can be used to deploy the extendable portions within packaging 44 (eg, via the release of pressurized air against extendable portions 224 of fingers 204).

[0114] As shown in FIG. 16E, extension of fingers 204 (along direction 226) into opening 62 may occur simultaneously with (or immediately before) the outward spreading of fingers 204 and while front finger 202 is advanced (along opening direction 240) away from bag entrance 218, thereby placing opening 62 in tensioned engagement between rear and front fingers 204, 202, as shown in FIG. 16F. Front finger 202 may be mounted to a movable structure 203 (as shown in FIGS. 13A-13B and 14) configured to permit movement of front finger 202. In some embodiments, suction cup 212 is attached to movable structure 203.

[0115] 16F, by this point, some of the rear perforations near the longitudinal edges of the web 10 may tear or rip. However, at least a portion (e.g., up to 50%, typically greater than 50%) of the rear perforations remain intact, keeping the packaging container 44 attached to the web 10 until product loading is complete. At this point, the packaging container 44 is ready for product to be loaded into the internal cavity 46, which may be performed by a human operator or a robotic operator controlled by the bagging machine 200. In the case of a human operator, the control system 220 may display user instructions (e.g., for loading the packaging container 44) and / or wait for operator input, which may be provided by the user placing their hand on a hand station or contact associated with the safety string 228 to indicate that the product has been provided within the packaging container 44 and that the operator's hands are no longer present in the bagging area 230. In the case of a robotic operator, a signal indicating the completion of the product loading sequence may be generated in the background and sent to a controller to automatically initiate the bag closing and sealing stage of the process.

[0116] As shown in FIG. 16G, during bag closure, the pressure plate 232 is advanced in a bag closure direction 234 while the front fingers 202 remain in a closed position gripping the front side of the opening 62. The bagging machine 200 may further include a pad 236 (e.g., a foam pad) configured to apply pressure to the bag to remove air from the package 44 (as shown in FIG. 16A). Simultaneously, the rear fingers 204 translate outward (in direction 222) to widen the bag opening 62, thus flattening the top of the package 44 and preparing it for the sealing operation. During the sealing operation, the pressure plate 232 presses against the seal area 216, causing bumpers on the pressure plate 232 to elastically deform, thereby applying the appropriate amount of pressure against the front and back sides of the bag to effectively seal the operation.

[0117] As shown in FIG. 16H , once the pressure plate 232 engages the seal area 216 and / or the sealing operation is complete, the front fingers 202 are disengaged from the opening 62 (e.g., pivoted to an open position), while the rear fingers 204 remain engaged with the outer edge of the opening 62. This maintains the opening 62 flat upon completion of the sealing operation. In some embodiments, the pressure plate 232 includes a sealing mechanism 233, such as, for example, a heating element (as shown in FIGS. 12B and 13 ). Once the sealing operation is complete, the rear weakened area 50 is torn, for example, by reversing the web 10 (along direction 238), as shown in FIG. 14I , thereby separating the filled and sealed packages 44 and releasing the sealed packages 44 toward the bag outlet.

[0118] As shown in Figures 17A-17B, the bagging machine 300 is configured to convert and seal the web 10 into one or more finished packages 302. The web 10 is fed to the bagging machine 300 in an unexpanded, high-density configuration via a bag handler. The web 10 may be in a roll configuration 52. The bag handler may include a bag transfer device configured to move the web 10 along the bagging machine 300. In other embodiments, the web 10 may be in one or more other unexpanded, high-density configurations, such as, for example, a fanfold configuration.

[0119] As the web 10 is fed into the bagging machine 300, it passes through an expansion device 206 configured to expand the expandable elements of the web 10. According to some embodiments, the web 10 includes one or more hinge lines 55, which include sections 304 of the web 10 that are unexpanded or contain little or no expansion material, forming natural hinges to facilitate folding of the web 10. In some embodiments, leaving lines of the web 10 free of the expansion material 20 can form natural hinge lines or areas that bend more easily than other areas where the expansion material 20 expands. In some embodiments, pressure is applied to the expansion material 20 during or after expansion to form hinge lines or areas 55 in the sections 304 that bend more easily than other areas.

[0120] The expanded web 10 proceeds to be fed through a folder / bag holder 306 configured to fold the web 10 so that the longitudinal edges of the web 10 contact one another. The folder 306 may include one or more folding bars 308 configured to fold the web 10 into a C-fold shape. The folder 306 may fold the web 10 along the hinge regions 55 or at one or more other sections. The folder 306 may further include crossbars 310 configured to align the folded web 10 so that it forms an internal cavity 312. Once folded, a series of retention mechanisms (e.g., fingers 314) hold the web 10 open, allowing one or more products to be placed into the internal cavity 312. In FIG. 17B, the web is positioned vertically, while the products are positioned horizontally in the internal cavity 312, with the opening transverse to the longitudinal direction of the web. In other embodiments, the web may lie horizontally or at another suitable angle (eg, with the opening to the interior cavity 312 facing upward).

[0121] Once the product is placed in the internal cavity 312, the web 10 is fed to a sealing mechanism 316 configured to seal the longitudinal and transverse seals of the web 10. The sealing mechanism 316 can be configured to apply heat, pressure, and / or other suitable means to set the seal. In some embodiments, the sealing mechanism 316 is configured to pull the web through the bagging machine 300 for sealing. Once sealed, the web 10 is converted into a formed, sealed bag 302. According to some embodiments, the bagging machine 300 includes a separation mechanism 318 configured to separate the bags 44 from the web 10. In some embodiments, the separation mechanism 318 is configured to pull the completed bag 320, tearing it from subsequent bags along the weakened region 50. In some embodiments, the separation mechanism 318 is configured to separate the bags 320 via a blade or heat-mediated cut. In some embodiments, the separation mechanism 318 may incorporate other suitable separation means. According to some embodiments, the separating mechanism 318 is configured to hold the bag 302 in place so that the sealing mechanism 316 can seal a subsequent bag.

[0122] As shown in FIG. 15 , some embodiments of a packaging material expansion device 206, such as the expansion and bagging device described above, are used with an expandable web that includes one or more expandable chambers / cavities 156 that must be sealed after expansion, such as the web 120 shown in FIG. 12A or another suitable inflatable web. The expansion device 206 includes an expansion nozzle 170 that delivers fluid to the expansion chambers 156 of the web 120, such as through an expansion channel 152. In this embodiment, the nozzle 170 has a longitudinally elongated portion 138 that is configured to be received within the circumferentially closed expansion channel 152 and introduce the expansion channel 152 thereon and into the sealing mechanism 188.

[0123] The fluid may be supplied to the passage 172 from a suitable source, such as, for example, an air compressor, a fan, or a compressed air supply. In other embodiments, other suitable fluids can be used. In this embodiment, the fluid exits the nozzle 170 through radial openings 184, which in this embodiment are oriented generally laterally, and enters the expansion channel 152 and expansion chamber 156. For embodiments using a circumferentially closed expansion channel, a slitting device, such as a blade 186, is provided adjacent the nozzle 170 to cut open the expansion channel 152, thereby allowing the web 120 to exit the nozzle 170 as it travels downstream from the nozzle 170. In embodiments using a circumferentially open expansion region, a slitting device is typically not required.

[0124] Once filled, the sealing mechanism 188 is configured to close and seal the fluid chamber / cavity 156, forming a longitudinal seal 190 that seals the fluid connecting channel 158 between the inflation channel 152 and the inflatable chamber 156, typically crossing longitudinally over the transverse seal 171 that defines the inflation chamber 156. The sealing mechanism 188 in this embodiment includes an upper roller 194 and a lower roller 198 configured to apply sufficient pressure and heat to the web 10 to longitudinally heat seal the web 10 to one another as the web passes through in direction 42. In embodiments where a different type of sealing is used, an appropriate alternative sealing mechanism may be selected. Other known inflation and sealing devices may be used in the inflation and bagging apparatus, such as the mechanism disclosed in U.S. Patent Publication No. 2019 / 0291907.

[0125] 18, the opening to the packaging container 402 is expanded using an expander 408, allowing the product 400 to be inserted into the packaging container 402. Once the product 400 is inserted into the packaging container 402, the packaging container 402 is sealed and leaves the bagging mechanism 404, and is transported for shipping via a transport mechanism 406. The bagging mechanism 404 may be any bagging mechanism described herein, such as, for example, bagging mechanism 200.

[0126] According to method 500 of FIG. 19, a web of packaging material is produced at 505. The web can include one or more layers. The web can include one or more of a first layer, a second layer, and an inflatable element coupled to the first layer and / or the second layer. One or more of the layers can include paper (e.g., cardboard, kraft paper, fiberboard, pulp-based paper, recycled paper, newsprint, and coated paper, such as paper coated with wax, plastic, a water-resistant material, and / or a stain-resistant material), plastic, cellulose, foil, poly or synthetic material, biodegradable material, and / or other suitable material of suitable thickness, weight, and dimensions. The layer can include a recyclable material (e.g., recyclable paper). An inflatable element can be disposed between the first layer and the second layer. When applied, the inflatable element is in an uninflated configuration. Referring to the flowchart, method 500 is described using the preferred apparatus and systems described herein. Suitable devices and systems include, for example, but are not limited to, system 70 of Figures 9A-9B, bagger 200 of Figures 13A-13B and 14, and bagger 300 of Figures 17A-17B.

[0127] The expandable element can include one or more inflatable chambers that can include one or more cavities configured to be filled with a fluid, such as air or other suitable fluid.

[0128] The expandable element can include one or more expansion materials in an unexpanded configuration, including emulsion-based polymers including starch, vinyl acetate ethylene, polyvinyl acetate, polyvinyl alcohol, one or more polyvinyl acetate copolymers, one or more polyvinyl alcohol copolymers, dextrin-stabilized polyvinyl acetate, one or more polyvinyl acetate copolymers, one or more vinyl acetate copolymers, one or more ethylene copolymers, vinyl acrylic, styrene acrylic, acrylic, styrene butyl rubber, polyurethane, biodegradable materials (e.g., cellulose), and / or other suitable expansion materials.

[0129] In some embodiments, the intumescent material can include a polyolefin adhesive or a polyolefin dispersion. The polyolefin dispersion can include polyethylene and / or polypropylene and / or other suitable polyolefin dispersions. Suitable polyolefin dispersions can include, for example, HYPOD™ from Dow Chemical or other suitable polyolefin dispersions. The intumescent material can be applied to the web as a continuous layer or in a pattern. The pattern can be configured so that the intumescent material spreads and forms a continuous layer when the layers are pressed together.

[0130] In some embodiments, the expansion material can include an adhesive and heat-expandable microspheres that combine with the adhesive to create a heat-expandable adhesive. The microspheres can be mixed with the adhesive before application to the web or layered on top of the adhesive after application to the web, allowing the microspheres to be pressed into the adhesive when the layers are pressed together. For example, the expansion material can include an adhesive applied to a first layer with microspheres loosely applied to the adhesive. Microspheres that do not stick to the adhesive can then be collected and discarded or reused, and microspheres that stick to the adhesive are pressed into the adhesive when a second layer is applied over the first layer, sandwiching the adhesive and microspheres between the first and second layers.

[0131] Producing the web can include forming one or more areas of weakness along the web. One or more of the areas of weakness can be disposed along the first layer and / or the second layer and configured to separate one packaging element from another. One or more of the areas of weakness can include one or more cuts, slits, perforations, scores, combinations of one or more of the foregoing, and / or other suitable configurations for an area of ​​weakness on one or more longitudinal edges of the web.

[0132] At 510, the web is converted into a series of pouch structures before being collected. Converting can include applying one or more seals to an outer surface of the web and folding and sealing the web to form the pouch structures. The pouch structures include an interior cavity configured to receive one or more goods, products, etc. Converting can include forming an opening configured to allow access to the interior cavity. According to some embodiments, an inflatable element is positioned relative to the opening. According to other embodiments, the inflatable element is spaced from the opening. According to some embodiments, the web is not formed into a pouch structure before being collected.

[0133] Once the web is formed, it is collected in an unexpanded, dense configuration at 515. The unexpanded, dense configuration may be a rolled configuration, a fanfold configuration, and / or other suitable dense configuration. Note that in some embodiments, one or more regions of weakness may be formed subsequent to collecting the web in the unexpanded, dense configuration.

[0134] Following collection into an unexpanded dense configuration, the web is fed to a bagging mechanism at 520 .

[0135] At 525, the one or more expandable walls are expanded by expanding the expandable element. The expansion is performed using one or more expansion devices of the bagging mechanism. The expansion is performed subsequent to the web being consolidated into an unexpanded dense configuration. According to some embodiments, the expansion device is positioned along the bagging apparatus such that it is configured to expand the expansion material before the sealer seals the opening. According to some embodiments, the expansion device is positioned along the bagging apparatus such that it is configured to expand the expansion material while the sealer seals the opening. According to some embodiments, the expansion device is positioned along the bagging apparatus such that it is configured to expand the expansion material after the sealer seals the opening.

[0136] The expandable element can include one or more expandable chambers, and expanding the one or more expandable walls includes filling one or more cavities with a suitable fluid. According to some embodiments, the one or more cavities are refillable.

[0137] The expandable element can include one or more expansion materials, and expanding the one or more expandable walls can include applying a catalyst that converts the one or more expansion materials from a high-density configuration to a low-density configuration. The catalyst can be heat, a chemical catalyst, a physical catalyst, and / or other suitable catalyst.

[0138] If the web has been pre-formed into a series of bag structures, the bagging mechanism accesses the interior cavities of each of the bag structures and positions the web so that one or more products can be loaded into the interior cavities at 530. Positioning the web can include opening the bag structures at the openings using one or more techniques described herein and / or other suitable means. The web can include a strip of sealable material positioned along the opening. The strip of sealable material is configured to seal the opening following loading of the one or more products into the interior cavities. At 540, the openings are sealed using the strip of sealable material. The strip of sealable material can be any suitable sealable material described herein, such as, for example, a heat-sealable material, a pressure-sealable material, an adhesive material, a bonding material, and / or other suitable sealable material.

[0139] If the web is not already formed into a series of pouch structures, the bagging mechanism is configured to convert the web into one or more pouch structures at 540 using techniques described herein and / or other suitable means. Converting can include folding the web so that its longitudinal edges meet, and forming one or more seals to seal the longitudinal edges to one another at 545. Converting may further include forming one or more seals transverse to the one or more longitudinal seals.

[0140] At 550, following or simultaneously with sealing the opening or sealing the longitudinal edges together, the bagging mechanism separates one bag from subsequent bag structures in the web, and at 555 the package is conveyed for shipping.

[0141] The methods and apparatus described herein may provide packaging elements having one or more pressure-sealed seals. The use of pressure-sealed seals may be used to form envelopes.

[0142] Examples of components that may be utilized within an inflation and sealing apparatus, including, but not limited to, nozzles, blowers, sealing assemblies, and drive mechanisms, as well as various components or associated systems thereof, may be constructed, arranged, and operated as disclosed, for example, in U.S. Patent Nos. 8,061,110 and 8,128,770, U.S. Patent Publication No. 2014 / 0261752, and U.S. Patent Publication No. 2011 / 0172072, which are incorporated herein by reference. Each embodiment discussed herein may be incorporated and used with various sealing devices and / or other inflation and sealing devices of the incorporated documents. For example, suitable mechanisms discussed herein and / or in the incorporated documents may be used to inflate and seal webs 10 and 120. An example bagger, such as bagger 200 of FIGS. 12A-12B and 13, may further function in accordance with U.S. Patent Publication No. 2020 / 0115082, filed October 11, 2019, and incorporated herein by reference. For example, examples of suitable systems and methods for providing expandable materials such as those shown in Figures 1, 3-4, 6-7, 9A-9B, and 10 are disclosed in U.S. Provisional Patent Application No. 62 / 706,111, entitled "Method of Making an Expandable Web," filed July 31, 2020, the contents of which are incorporated herein by reference in their entirety. Examples of expandable materials and expansion material compositions can be found in U.S. Patent Publication No. 2019 / 0062028, filed September 11, 2018.

[0143] The present disclosure is not limited in terms of the specific examples described herein, which are intended as illustrations of various aspects. As will be apparent to those skilled in the art, many modifications and examples can be made without departing from the spirit and scope thereof. Functionally equivalent methods and apparatuses within the scope of the present disclosure, in addition to those enumerated herein, will be apparent to those skilled in the art from the foregoing description. Such modifications and examples are intended to fall within the scope of the appended claims. The present disclosure is to be limited only by the language of the appended claims, along with the full scope of equivalents to which such claims are entitled. It is also to be understood that the terminology used herein is for the purpose of describing particular examples only, and is not intended to be limiting.

[0144] With respect to the use of virtually any plural and / or singular term, those of skill in the art can convert from plural to singular and / or from singular to plural as appropriate to the context and / or application. Various singular / plural permutations may be expressly provided herein for clarity.

[0145] While various aspects and examples have been disclosed herein, other aspects and examples will be apparent to those skilled in the art. The various aspects and examples disclosed herein are illustrative and not intended to be limiting, with the true scope and spirit being indicated by the following claims.

Claims

1. a bag handler configured to handle a web of packaging material; bag opener, separator, and an inflation device configured to apply an inflation condition to the packaging material associated with each bag prior to separating adjacent bags in the series; the web of packaging material is configured to define the series of bags configured to be separable from the web, each bag having first and second walls enclosing an internal cavity configured to contain an object therein for shipping, the first wall comprising an inflatable material having an inflatable configuration and inflatable to an inflated configuration to provide padding against the first wall to protect the object contained within the internal cavity, and the bag handler includes a sealer configured to seal an opening between the first and second walls to the internal cavity to retain the object therein; the bag opener engages with one or both of the first wall and the second wall to form an opening between the first wall and the second wall, thereby allowing the object to be placed in the internal cavity through the opening; the separator is configured to separate adjacent bags in the series of bags after the opening is sealed; The expansion conditions are adjusted to expand the expandable material from the expandable configuration to the expanded configuration.

2. 10. The bagging apparatus of claim 1, wherein the sealer is a heat sealer configured to form a heat seal between the first wall and the second wall.

3. The bagging apparatus of claim 1 , further comprising a bag transfer device configured to transfer the bags to the inflation device and the bag handler.

4. The bagging apparatus of claim 3 , wherein the expansion device is positioned along the bagging apparatus so as to be configured to expand the expansion material before the sealer seals the opening.

5. The bagging apparatus of claim 3 , wherein the expansion device is positioned along the bagging apparatus so as to be configured to expand the expansion material while the sealer seals the opening.

6. The bagging apparatus of claim 3 , wherein the expansion device is positioned along the bagging apparatus so as to be configured to expand the expansion material after the sealer seals the opening.

7. The bagging device of claim 1 , wherein the bag opener includes an air blower configured to apply air pressure directed at the opening.

8. 10. The bagging device of claim 1, wherein the bag opener includes a plurality of fingers that project into the opening to maintain the opening in an open configuration.

9. 10. The bagging machine of claim 1, wherein the bag opener includes one or more suction devices configured to apply suction to at least one of the first wall and the second wall configured to pull open the opening.

10. A bagging apparatus as described in claim 1, wherein the expansion material is expandable to the expansion configuration for insulating the first wall and insulating the object contained in the internal cavity.

11. A bagging apparatus as described in claim 1, wherein the expansion device is configured to apply the expansion conditions to packaging material bonded to each bag before sealing the opening.

12. A bagging apparatus as described in claim 1, wherein the expansion device is configured to apply the expansion conditions to packaging material bonded to each bag before forming the opening.

13. A bagging apparatus as described in claim 1, wherein the expansion device is configured to raise the expansion material to an expansion temperature by irradiating the packaging material with radio waves, and the expansion temperature is sufficient to expand the expansion material to the expanded configuration.

14. a bag handler configured to handle a web of packaging material; separator, Bag folders, and an inflation device configured to apply an inflation condition to the packaging material associated with each bag prior to separating adjacent bags in the series; the web of packaging material is configured to define a series of bags configured to be separable from the web, each bag having first and second walls enclosing an internal cavity configured to contain an object therein for shipping, the first wall comprising an inflatable material having an inflatable configuration and inflatable to an inflated configuration to provide padding against the first wall to protect the object contained within the internal cavity, and the bag handler has a sealer configured to seal an opening between the first and second walls of the internal cavity to retain the object therein; the separator is configured to separate adjacent bags in the series of bags after the opening is sealed; the bag folder is configured to form the first wall and the second wall by folding the packaging material; the expansion conditions are configured to expand the expandable material from the expandable configuration to the expanded configuration, and the expansion conditions are adjusted such that the expandable material reduces in density as it expands to the expanded configuration.

15. The bagging apparatus of claim 14, wherein the separator includes a cutter configured to cut the packaging material.

16. The bagging apparatus of claim 14, wherein the expansion device is configured to heat air and direct the heated air toward the packaging material to raise the expansion material to an expansion temperature, the expansion temperature being sufficient to expand the expansion material to the expanded configuration.

17. The bagging apparatus of claim 14, wherein the sealer is a thermal sealer configured to form a heat seal between the first wall and the second wall.

18. A bagging apparatus as described in claim 14, wherein the expansion device is positioned along the bagging apparatus so as to be configured to expand the expansion material before the sealer seals the opening to the internal cavity.

19. A bagging apparatus as described in claim 14, wherein the expansion device is positioned along the bagging apparatus so as to be configured to expand the expansion material while the sealer seals the opening to the internal cavity.

20. A bagging apparatus as described in claim 14, wherein the expansion device is positioned along the bagging apparatus so as to be configured to expand the expansion material after the sealer seals the opening to the internal cavity.

21. A bagging apparatus as described in claim 14, wherein the expansion material is expandable to the expansion configuration for insulating the first wall and insulating the object contained in the internal cavity.

22. A bagging apparatus as described in Claim 14, wherein the expansion device is configured to apply the expansion conditions to packaging material bonded to each bag before sealing the opening.

23. A bagging apparatus as described in Claim 14, wherein the expansion device is configured to apply the expansion conditions to packaging material bonded to each bag before forming the opening.

24. A bagging apparatus as described in claim 1, wherein the expansion device is configured to raise the expansion material to an expansion temperature by irradiating the packaging material with radio waves, and the expansion temperature is sufficient to expand the expansion material to the expanded configuration.

Citation Information

Patent Citations

  • JP1977095774U

  • Packer

    JP1982037515A

  • Cushioning body

    JP1983103767U

  • Tablet placing device for automatic tablet packing machine

    JP1993132006A

  • On-demand inflatable packaging

    JP2018127283A