The present invention relates to environmentally-friendly, customizable consumer goods products. The invention disclosed herein relates to assembly features and of soft-good products as well as products incorporating soft-good materials with rigid structural materials to generate a product minimizing costly processes, chemicals, materials and/or shipping cost and the associated adverse environmental effects involved with production of consumer goods products using attachment features and interfaces. Embodiments of the attachment features and interfaces feature notches and mechanisms to affix discrete components to others through processes of interlocking with notches.
The ballooning demand for consumer products pervades the social structure of our society, driving economies and social identities. As our society has grown, the consumer goods industry has evidenced commensurate growth. Products associated with the consumer goods industry generally comprise flexible material, may further comprise rigid materials, and typically use traditional manufacturing processes.
Such traditional manufacturing processes have generally proven effective in the generation of large quantities of consumer goods products. However, a number of major problems remain associated with such processes. Specifically, inefficiencies associated with traditional manufacturing processes have led to destructive environmental effects. Moreover, a variety of unnecessary costs remain associated with the production, distribution and sale of consumer goods products. As a result, with the growth of the consumer goods market, the costs associated with the ballooning market, including inefficiencies, waste streams and adverse effects on the environment, have commensurately grown.
This increase in such inefficiencies, waste streams and adverse effects on the environment may manifest in many forms. For instance, such ill desired effects may show in the form of excess pre- and post-process work involved with the manufacture of a given product. The manufacture of consumer goods items involving the use of non-rigid and flexible materials, sometimes incorporated with the use of rigid materials, leads to such products as purses, handbags and totes.
Wastes and inefficiencies often accompany processes that combine non-rigid, flexible materials with rigid materials. Such flexible materials may include textiles, leather and other organic and synthetic materials enabling use in soft-good products. It will be appreciated that as used herein, the term “soft-goods” refers to a type of product involving the use of flexible materials. It will be further appreciated that soft-goods materials, such as leather, exhibit a different of surface finish. As such, in association with soft-goods materials, there generally exists a preferred surface that remains generally visible after assembly and a non-preferred surface which remains generally hidden after assembly.
The processes associated with the manufacture of goods typically generate waste-streams associated with material waste, such as scrap materials, as well as material treatments used in traditional manufacturing methods. For instance, the manufacture of a leather handbag may require a number of work-intensive processes that generate material waste. These processes include skiving, cutting, sewing, gluing, painting and dying of material. Each of these processes, along with many others, generates material and/or chemical waste products. Furthermore, adhesive and dying processes often make use of chemicals that resultantly may introduce inorganic, non-biodegradable and potentially hazardous compounds, creating a less environmentally friendly waste stream at the end of the usable life of such a product.
Many inefficiencies associated with a given industry derive from standards or commonly used methods of manufacture adopted prior to growing concern associated with waste or rising labor costs. Today, these factors play a large part in the social and environmental impact associated with a targeted consumer. However, such factors also play a large part in the manufacturing and/or distribution cost of goods sold versus the price a consumer pays, thereby dictating the profit margin available to the selling entity.
Some items in the prior art use traditional processes of manufacture including skiving, gluing, sewing and flattening of the material. It will be appreciated that skiving is a process in which the material in use, such as leather, is thinned in areas to enable the assembly of the edges or seams. Each process of manufacture requires a great deal of time and work. Consumer goods known in the prior art generally utilize these traditional manufacturing processes. Resultantly, such products exhibit high costs associated with production, thereby limiting the selling entity's profit potential and furthermore driving a higher price to the consumer without added value.
Often, items in the prior art use chemically intensive substances in processes associated with their manufacture, particularly when soft goods are involved. The problem with such chemically intensive processes is that glues, dyes and other chemical treatments involve toxic chemicals that are potentially damaging to the environment, users and/or the personnel involved in the process.
Consumer goods generally require significant expenditures associated with the shipping and distribution of such products to the location of sale to an end user. As the cost of shipping lightweight items such as soft goods derives from the overall dimensions, a smaller volumetric profile requires less shipping cost for a given product. Given the variation of sizes associated with consumer goods products, some soft-goods present a very large shipping size as opposed to their actual weight. As a result, such products require an increased cost of shipping as a result of their large dimensions and the cost associated with the distribution or shipping to the end user, leading to an increased price to the end user. Some items in the prior art are so large that the shipping cost becomes a barrier to salability by driving price to a level not in accordance with the value. Furthermore, the cost of shipping increases with the size of the goods shipped also as a result of the increased amount of packaging materials such as cardboard, filler material and the like. This cost-related problem affects both the end-user as well as selling entities when the user cannot justify the price, as the selling entity cannot generate profits without the sale of goods. Further, the increased volume of packaging materials needed lead to an increased level of waste and adverse environmental effects.
Yet another problem with items in the prior art is the limitation on form and aesthetic qualities post manufacture. Consumer goods products generally provide a finished product produced by a series of manufacturing processes. The sub-processes related to such form and aesthetic qualities typically require execution prior to the permanent assembly and attachment of all parts integrated into a consumer goods product. Thus, the modification of such qualities cannot be modified post-manufacture. As a result, this problem limits the personalization, modification and add-on of additional features by the end user.
The present invention relates to environmentally-friendly, customizable consumer goods products. The invention disclosed herein relates to assembly features involved with the manufacture of soft-good products as well as products incorporating soft-good materials with rigid structural materials to generate a product minimizing costly processes, chemicals, materials and/or shipping cost and the associated adverse environmental effects involved with production of consumer goods products using attachment features and interfaces. Embodiments of the attachment features and interfaces feature notches and mechanisms to affix discrete components to others through processes of interlocking with notches.
Embodiments of the invention comprise at least one section of flexible material with attachment features designed to accept a mating portion of the same or separate section of material of flexible, semi-flexible or rigid properties to create a predetermined form.
Certain embodiments of the invention 101 in the exemplary form of a handbag. Embodiments provide assembly features allowing the production and sale of soft-good products while minimizing manufacturing cost, distribution cost and use of costly/toxic chemicals.
The inventive concept described herein provides a solution to problems associated with the utilization of commonly accepted manufacturing methods in the production of consumer goods. Namely, such problems include but are not limited to the negative environmental and economic impact associated with the final form of consumer products as typically manufactured. Such negative environmental and economic impacts include but are not limited to inefficient assembly processes, the generation of excess waste material, waste streams and inefficient logistical processes associated therewith.
Embodiments of the invention include the steps and apparatuses associated with use of fastening features within flexible and rigid bodies. These sections are assembled by inserting a distal end of one section through the appropriate assembly feature. The sections affix and restrain by location specific attachment strategies including notch, frictional retention, locking feature and tapered features further described herein. The inventive concept also includes a method of assembly using said fastening features to produce a final product using flexible materials without the use of permanent and process-intensive treatments and manufacturing processes, which otherwise would increase the cost and environmental impact of a manufactured consumer product. In certain embodiments embodiment of the invention 101 as shown in
In yet another embodiment of the invention, at least one section of a flexible material exhibits at least one aperture through which a distal end of a flexible material section is inserted for frictional retention or engagement of a locking feature and may be pulled to a desired tension or orientation.
It will be appreciated to one skilled in the art that the term “section,” as used herein refers to a singular piece of material comprised of flexible, semi-rigid or rigid material.
It will be further appreciated by one skilled in the art that “frictional retention,” as used herein, refers to a frictional interface, including but not limited to, the interface between a portion of a flexible section and fastening feature, typically in the form of an aperture, designed to provide increased friction at the interface of the portion of material inserted within said aperture. A plurality of apertures in serial or parallel, through which a distal end of the flexible section is inserted provides an increased level of friction. The level of friction can be increased through the increase of number of apertures. Such frictional interfaces typically occur between two portions of one flexible section, a plurality of flexible sections, or combination of flexible and non-flexible sections.
Further still, it will be appreciated by one skilled in the art that the term “locking feature,” includes the interface between at least two portions of material, which may comprise at least two separate areas of the same flexible material, two separate flexible material sections or a combination of flexible and inflexible materials comprised of rigid and/or semi-rigid materials. Such an interface generally comprises of at least one aperture and at least one distal end exhibiting a physical feature designed to constrain the connection. Said locking feature typically is presented in a form with at least a minor dimension and a major dimension. Said minor dimension, as referred to herein, is typically less than or equal to the length of the associated aperture. The major dimension is typically of equal or greater size than said associated aperture and provides added resistance and constraint to the locking feature. The locking feature may take many forms including, but not limited to, step, notch, and locking features.
Furthermore, it will be appreciated by one skilled in the art that the term “tapered feature”, as used herein, refers to the interface between at least two portions of material, which may comprise two separate areas of the same flexible material, two regions of separate flexible material sections or a combination of flexible and materials comprising rigid and/or semi-rigid materials. Such interface typically comprises of at least one aperture and one distal end with a minor dimension generally smaller than the length of said aperture and a major dimension. Furthermore, such an assembly feature exhibits a taper between the minor dimension and major dimension. Said major dimension may be less than, equal or greater than the length of an aperture dependent upon the purpose of such a connection. A major dimension greater than the dimension of the associated aperture provides an increase of retention with an increased engagement dimension of said tapered feature. However, in the scenario where a major dimension is less than the dimension of the associated aperture provides ease of assembly. The present inventor has recognized that the major dimension and the minor dimension may be utilized in a variety of contexts dependent upon the purpose of the apparatus related thereto.
The number of apertures utilized by an assembly feature may be increased or decreased in varying embodiments to provide the desired amount of frictional retention. With an increase in the number of apertures, a distal end may pass through a plurality of apertures, typically weaving the distal end through the plurality of apertures. Increased frictional retention allows for increased levels of constraint at attachment points.
In certain embodiments, a consumer goods apparatus comprises a plurality of flexible sections exhibiting assembly features comprising at least one frictional retention feature or at least one feature retention construct to constrain the embodiment to a final form. In such an embodiment of the invention, a plurality of sections of flexible material is assembled using assembly features comprising frictional retention features. In such embodiments, the frictional retention features utilize a varying number of apertures in accordance with the holding strength required by each attachment dependent upon the purpose of the consumer goods apparatus.
As shown in
Certain assembly features require an added level of constraint to maintain coherence of the assembly and/or a particular orientation of the assembly. Some embodiments of the invention comprise at least one locking feature and may be used in conjunction with Frictional Features.
In an embodiment of the invention, a locking feature is utilized to assemble two portions of material. Said locking feature is of the step type restricting the passage of one portion of material through an aperture. In certain embodiments, the strap 306 sections incorporate two such locking features. At the first distal end, proximate to the first shoulder section 303 and second shoulder section 304, the locking feature 307 utilized is of a step feature type. In an embodiment, the length of the aperture exhibited by first shoulder section 303 and second shoulder section 304 is 21 mm and is designed to accept the 19 mm width of the strap 306. However, the major dimension of the strap 306 at said step locking feature 307 is 25.3 mm and cannot pass through the aperture of first shoulder section and second shoulder section, thereby constraining it.
In yet another embodiment of the invention, a locking feature is utilized to assemble two portions of rigid and/or flexible material. Said locking feature is of the notch type, generally constraining a portion of material within an aperture at a desired location. In the preferred embodiment, the second distal end of the strap 306, comprises flexible material, exhibits a notch type feature intended to add constraint to the assembly of the first main body section 301, second main body section 302 and the strap 306. The strap 306 section provides constraint after passage through apertures 308 incorporated into first main body section 301 and second main body section 302. The second distal end of said strap 306 exhibits a tapered feature 314, an aperture 308 and a notch type locking feature 313. Said tapered feature exhibits a minor dimension of 10 mm and major dimension of 15.7 mm in the certain embodiments. Said notch 313, as demonstrated by the preferred embodiment, exhibits a first major dimension, a second major dimension and a minor dimension. Said first major dimension of 14.9 mm (0.58 inches), is slightly larger than the length of the corresponding aperture 308, exhibited on the strap section 306, of 13.9 mm (0.55 inches) through which the second distal end is passed, and the second major dimension 15.7 mm (0.61 inches) in the preferred embodiment. The minor dimension corresponding with said notch type locking feature 313 is 13.0 mm (0.51), which is less than the length of said corresponding aperture 308. As demonstrated by
The toggle-type locking feature may be used in the connection of a plurality of portions, generally a plurality of flexible material portions or at least one flexible material portion and at least one inflexible material portion. Such a locking feature utilizes at least one toggle and at least one corresponding aperture. In the case of assembly of a flexible section to a rigid section, the toggle typically comprises of rigid material and is designed with three discrete dimensions; a major dimension, a minor dimension and an intermediate dimension. It will be appreciated that, as used herein, an intermediate dimension comprises material having a dimension greater than the minor dimension and less than the major dimension. Furthermore, design considerations of said toggle, such as a chamfer, enable the corresponding aperture's major dimension to be no larger than the intermediate dimension of said toggle while still enabling assembly.
In certain embodiments of the invention as demonstrated in
Flexible materials, particularly inelastic flexible materials, comprise such materials as leather and some high-density polyethylenes. In certain embodiments of the invention, such inelastic flexible materials, such as material section 402 depicted in
Flexible materials, particularly elastic flexible materials, comprise such materials as felt and rubber. Such elastic flexible materials do not require an aperture length to be at least that of an intermediate dimension of an associated toggle, nor do they require the use of elongating features. The effective length of an associated aperture may be increased by stretching the material to effectively increase said aperture to a length at least equal to that of the intermediate dimension of the associated toggle without permanent or plastic deformation.
It will be appreciated by one skilled in the art that a material exhibiting elastic properties is able to stretch or deform under a load and substantially return to its original form when said tensile load no longer acts upon it.
It will be further appreciated by one skilled in the art that a material exhibiting inelastic properties may stretch or deform under a load, however such stretching or deformation is of the plastic sort and the material will damage or will not substantially return to its original form when the load no longer acts upon it.
In certain embodiments of the invention as depicted by
It will be appreciated that the term “halved joint,” as used herein, refers to a joint between two members that are joined by removing material from each member at the point of intersection allowing them to overlap a predetermined amount.
Said halved joint enable the assembly of rigid sections 502 to 501 in an orthogonal orientation. Said flexible material exhibits a plurality of portions to assemble to each toggle feature 504. In this embodiment, a portion of rigid material comprises a toggle 504 that exhibits a major dimension 505 of 41.6 mm (1.64 inches), an intermediate dimension 507 of 39.2 mm (1.54 inches) and a minor dimension 506 of 31.7 mm (1.25 inches) of width 7.2 mm (0.28 inches). The width of said toggle 504 in this particular embodiment enables the assembly of a plurality of portions of flexible 401 and 402 to said toggle 504 using a plurality of associated apertures 403 and 407. Said associated apertures may differ in dimension, however in this specific embodiment are of identical dimension. The associated apertures 407 comprise a substantially rectangular shape with an elongating feature 408 at one end of said aperture. The width of said rectangular shape matches the thickness of said rigid material, 6 mm. The length of said rectangular shape of said aperture is 34.8 mm (1.37 inches). A distal end of each rectangular aperture 407 exhibits an elongating feature 408 comprised of a slit terminating in a cut-out of substantially radial shape. Said elongating feature comprises a slit of length 5.8 mm (0.23 inches) and 0.75 mm width (0.03 inches), which terminates at a substantially radial shape of radius 1.5 mm concentric to the termination of said slit, exhibiting a 6.5 mm (0.26 inches) total length. Thus, the effective assembly major dimension of said aperture is 41.3 mm (1.62 inches) in the embodiment of the invention described in this paragraph.
Interior angles of cuts, particularly those of 90 degrees or less, are prone to unwanted tearing when manipulated or have load applied. It will be appreciated by one skilled in the art, in the use of flexible materials, a stress-relief feature as shown in
In certain embodiments, a locking feature and frictional retention feature provide added constraint in the assembly of a plurality of portions of flexible material. In such embodiments, the toggle of said portion exhibits a major dimension and a minor dimension. The corresponding aperture exhibits a length and a width. The width of said corresponding aperture allows the passage of the material thickness while providing increased frictional retention. Furthermore, the length of said corresponding aperture is larger than the minor dimension of said toggle. The major dimension of said toggle is larger than the length of said corresponding aperture. In this embodiment the major dimension and minor dimension share a perpendicular transverse axis passing through their midpoints. Due to properties inherent to the flexible material, such as thickness, length or Young's Modulus, used in the construction of said toggle particularly ability to manipulate the material without damage, one distal end of said toggle can be passed through said corresponding aperture and subsequently manipulating the opposite distal end of said toggle by folding and/or bending actions to pass the remaining portion of said toggle through said corresponding aperture, thusly constraining the toggle to said corresponding aperture. In the certain embodiments, the flexible material thickness of 2.4 mm (0.94 inches) thickness and said toggle 312 demonstrates a major dimension of 20.3 mm (0.8 inches) and a minor dimension of 10.0 mm (0.39 inches). Furthermore, said corresponding apertures 310 exhibit a width of 1.8 mm (0.07 inches) and a length of 11.8 mm (0.46 inches). Due to the flexible nature of the material used, leather in certain embodiments seen in element 101, the distal ends of said toggle 312 can be manipulated to pass through said corresponding aperture 310 for a constrained connection.
In certain embodiments of the invention comprising a plurality of rigid sections are assembled on coordination with at least one section of flexible material enabled by the use of toggles, halved joints and/or aperture features resulting in an assembled form. Such assembled form comprises a carrying apparatus typically used for the transportation of liquid containers.
In certain embodiments, as seen in
In certain embodiments the side rigid sections 603 further comprise apertures 703 sized according to a predetermined object allowing a user to place the object, typically of a round tapered form, such as a beverage cup 704 within an aperture 703. In such an embodiment, when placed within the aperture 703, the beverage cup 704 is constrained within aperture 704. This allows a user to constrain a plurality of objects, such as beverage containers within the apparatus and carry the objects using the carrying apparatus.
In certain embodiments, as demonstrated by
In yet another embodiment of the invention, a tapered feature is used in conjunction with a frictional retention assembly feature to connect two sections of flexible material. Said first section comprises a frictional retention feature further comprising two apertures. Said second section of flexible material comprises of a frictional retention feature corresponding with said apertures, which exhibits at least one minor dimension less than the length of said apertures and at least one major dimension greater than the length of said apertures. Between said minor dimension and said major dimension, said portions of said section of flexible material exhibits a tapered feature.
Said second section of flexible material, in use, is passed through both apertures of the said first section of flexible material generally with a weaving configuration. It will be appreciated that the term “weaving,” as used herein, refers to the path a material takes through a series of apertures, generally in an alternating sequence, passing through to the opposite side of the material being woven through. Some manipulation may be required to pass one of the distal ends of said second section of flexible material through said apertures to engage the tapered feature with said frictional retention feature. In the preferred embodiment, said tapered feature is exhibited at a medial portion creating a waist in the width of first main body section 301 and said apertures 309 are of an elongated form exhibited on a medial portion of second main body section 302. It will be appreciated by one skilled in the art that as used herein, the term “waist” refers to minor dimension created the narrowing of surrounding material from both sides. Both first main body section 301 and second main body section 302 are comprised of a substantially consistent thickness of leather of at least 2.4 mm. Said apertures 309 exhibit a length of 153.5 mm (6.04 inches) and a width of 2 mm (0.08 inches) and are substantially parallel offset 21.4 mm (0.84 inches) from each other. first main body section 301 exhibits two minor dimensions and two major dimensions comprising said waist. Said minor dimensions are equal in size and substantially parallel approximately 21.4 mm (0.84 inches) apart to match the spacing between said apertures 309. Furthermore, said major dimensions are equal in size. As shown in
In yet another embodiment of the invention, at least one aperture is used in conjunction with a combination of a tapered feature and a locking feature to provide variable levels of retention. This retention occurs between a plurality of portions of material and typically involves at least one portion of flexible material. In this embodiment, a portion of flexible material comprised of a distal end of a section of flexible material exhibits a tapered feature and further comprises a step-type locking feature. A separate portion of material exhibits a corresponding aperture sized accordingly. Said step-type Locking feature generally exhibits a major dimension approximately equal to length of said aperture and said tapered feature exhibits a major dimension less than the length of said aperture.
In certain embodiments of the invention, the combination of a tapered feature and a locking feature exhibited by a distal end of first main body section is designed for insertion and retention within an aperture formed by the attachment of the clasp section to the first main body section. In certain embodiments, said clasp section assembles to first main body section creating an aperture through with said distal end is designed to pass through. Said aperture in said preferred embodiment exhibits a length of 18.2 mm (0.72 inches). Said distal end of first main body section exhibits a major dimension of 17.8 mm (0.7 inches) and a minor dimension of 14.2 mm (0.56 inches) with a taper between. Furthermore, said distal end exhibits a taper extending from said major dimension to the terminus of said distal end comprised of a point. Said taper and step-type locking feature allows the user to insert said distal end into said aperture, providing enhanced retention while still allowing for disassembly without the need for material manipulation.
Certain embodiments comprise seven predesigned sections of leather of thickness of 2.4 mm (0.098 inches) assembled to comprise a predetermined form, though it will be appreciated that other embodiments of the invention can comprise a varying number of
sections of leather of various thicknesses. Such sections consist of a first main body section 301, second main body section 302, clasp 305, two strap sections 306, first shoulder section 303 and second shoulder section 304. Such sections are assembled by inserting a distal end of one section through the appropriate assembly feature. Such sections are restrained by location specific attachment strategies including notch, frictional retention, locking feature and tapered features.
A variety of steps would be taken by an assembler of a consumer goods apparatus comprising an embodiment of the invention as shown in
In the foregoing specification, specific embodiments have been described. However, one of ordinary skill in the art appreciates that various modifications and changes can be made without departing from the scope of the invention as set forth in the claims below. Accordingly, the specification and figures are to be regarded in an illustrative rather than a restrictive sense, and all such modifications are intended to be included within the scope of present teachings. The descriptive labels associated with the numerical references in the figures are intended to merely illustrate embodiments of the invention, and are in no way intended to limit the invention to the scope of the descriptive labels.
The benefits, advantages, solutions to problems, and any element(s) that may cause any benefit, advantage, or solution to occur or become more pronounced are not to be construed as a critical, required, or essential features or elements of any or all the claims. The invention is defined solely by the appended claims including any amendments made during the pendency of this application and all equivalents of those claims as issued.
This application claims the benefit of U.S. Provisional Application 62/082917, filed Nov. 21, 2014, the entire contents of which are incorporated by reference for all purposes.
Number | Date | Country | |
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20170251776 A1 | Sep 2017 | US |
Number | Date | Country | |
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62082917 | Nov 2014 | US |