VEHICLE CONTAINER
A shipping container for small vehicles such as snowmobiles and all-terrain vehicles is described herein which features a base, a cage structure, and a cover. However, unlike current industry standard containers for vehicles of this type which use wood or metal for the cage structure, the design described herein reduces weight and required assembly labor by using prefabricated sections comprised entirely of laminated paperboard or fiberboard.
This application claims priority to provisional patent application “Vehicle Container” (Appl. Ser. No. 62/126,648) filed Mar. 1, 2015, the contents of which are hereby incorporated by reference herein.
BACKGROUND OF THE INVENTIONThis invention relates to a container for shipping snowmobiles and all-terrain vehicles (“ATVs”). These vehicles are typically shipped individually in single containers. The container consists of a base, a cage structure, and a cover. The container for shipping these machines has to be able to withstand not only the weight of the machines themselves (typically 600-900 lbs), but multiples of this weight, as up to four containers are often stacked on top of one another during shipping or storage. Because of this, the primary materials currently used to construct shipping containers for these vehicles are metal and wood.
Wood is typically used in containers for domestic, intrastate shipments of snow machines. However, most countries mandate that wood used in packaging/crating material must be heavily treated in order to prevent contamination from pests residing in the wood. The cost of treating wood usually makes its use as a structural material economically impracticable. As a result, wood is generally only used in domestic vehicle shipments due to these stringent international treatment requirements.
Structural metal is heavy, subject to corrosion and preservation issues, and also creates a waste disposal problem in certain countries. Metal container material generally becomes scrap waste after it is used. It is not easily reusable, because it is too heavy—and therefore expensive—to ship back to its origin for reuse or recycling. In addition, the vehicles shipped in metal crates often require washing and detailing before they can be placed on a showroom floor at their final destination, due to aforementioned corrosion issues (e.g. rust or other oxidation flaking from the metal cage structure onto the machines).
Containers for shipping vehicles are usually manufactured in “knocked down” form and shipped to the vehicle manufacturer, where the crate is assembled around the vehicle. Using metal and wood as structural material often lead to abrasion and other issues during final assembly at the vehicle manufacturer. Also, both wood and metal are heavy which increases the overall cost of shipping the vehicle inside the container. Finally, wood and metal both carry a high cost of materials that is very volatile due to its direct correlation with the cost of building supplies. Thus, structural material made of either metal and wood both have significant disadvantages.
BRIEF SUMMARY OF THE INVENTIONThe container described herein solves the problem of excess weight, corrosion, and disposal by featuring a pre-assembled cage structure, comprised of V-shaped cross sections of laminated paperboard or fiberboard, that is mounted on a wooden base to allow quick construction of the final container on a vehicle assembly line, further having a cover comprised of a special layered fabric material that is heat-shrinkable, and printable. The outer layer of the cover material is water-resistant, while the inner layer of the material is moisture wicking; i.e. the overall material tends to allow moisture from the inner layer to escape, but moisture from the outside cannot penetrate to the inner layers.
Sections of laminated paperboard or fiberboard with V-shaped cross sections have been used to provide protection for the edges of corrugated cartons or pallets during shipping. However, it was discovered that the V-shaped sections of laminated paperboard or fiberboard had sufficient structural integrity to be used as a substitute for wood or metal in vehicle shipping containers. Although the original versions of the fiberboard/paperboard lost their structural integrity when exposed to large amounts of moisture, a new water-resistant version described herein is used.
Use of the paperboard/fiberboard material dramatically reduces the weight of the overall crate, while the use of the heat-shrinkable cover material not only protects the vehicle and cage structure from the elements, but contributes significantly to the overall aesthetics of the system. The cover material used is readily printable, so the vehicle manufacturer's logo, trademarks, and other designs can appear on the outside of the container, giving the container an aesthetically attractive, “wrapped box” appearance.
The current design is viewed as revolutionary in the industry for this particular application for a variety of reasons. First, it was commonly believed that the paperboard material that is used in the current design did not possess sufficient structural strength to support the weight of several vehicle containers when stacked for shipping or storage. Thus, the customer for whom the design was originally intended was skeptical when told that the container structure was essentially made of cardboard, given that all industry standard designs used either wood or metal. Second, it wasn't commonly believed that the laminated paperboard material could retain its structural integrity when exposed to moisture, i.e. rain and snow. However, the cover material used with the design protects this structure from the elements. Moreover, a moisture-resistant version of the laminated paperboard is incorporated with the latest embodiments to confer an added measure of protection from moisture. Preliminary reaction by customers for these containers has been extremely positive, with one remarking that the current design “will change the industry”.
The container design disclosed herein features significant weight advantages over current vehicle transport container designs. A typical metal-frame vehicle container weighs 200 lbs, while a wood-frame container weighs 150 lbs. The embodiments disclosed herein weigh approximately 141 lbs, a reduction of about 30% in weight over metal and about 6% over wood crates. Shipping costs are therefore reduced considerably by the new design.
Referring now to
The base, 1, end assemblies 2, and top assembly 3 are pre-assembled and then shipped to a vehicle manufacturer in “knocked-down”, i.e. flat form. The pre-assembled crates can then be quickly and safely finished by the vehicle manufacturer. The vehicle is first secured to the base 1, usually at the end of the vehicle manufacturing line, and the end assemblies 2, and top assembly 3 then assembled around it, as described below.
In preliminary runs, it was found that the number of manufacturer personnel required to assemble the container was reduced from seven persons to five persons. Thus, the container disclosed herein also reduces the manufacturer's labor costs as well as shipping costs.
The cage structure is comprised of two end assemblies 2 and a top assembly 3, as shown in
Referring now to
Top assembly 3 is then placed on the opposite side of the end assemblies 3 not attached to the base, as shown in
The use of laminated paperboard segments having V-shaped cross sections as shown in
The final step in assembly is to install the cover assembly 4 shown in
The cover material itself is a multi-layer laminate structure comprised of at least one film layer and at least one fabric layer, bound together with and adhesive layer as shown in
The invention is described in preferred embodiments with reference to the Figures. Reference throughout this specification to “one embodiment”, “an embodiment”, or similar language means that particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, appearances of the phrases “in one embodiment”, “in an embodiment”, “in certain embodiments”, and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment. It is noted that, as used in this description, the singular forms “a”, “an”, and “the” include plural referents unless the context clearly dictates otherwise.
The described features, structures, or characteristics of the invention may be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are recited to provide a thorough understanding of embodiments of the invention. One skilled in the relevant art will recognize, however, that the invention may be practiced without one or more of the specific details, or with other methods, components, materials, and so forth. In other instances, well-known structures, materials, or operations are not shown or described in detail to avoid obscuring aspects of the invention.
Although the present invention has been described in detail with reference to certain embodiments, one skilled in the art will appreciate that the present invention can be practiced by other than the described embodiments, which have been presented for purposes of illustration and not of limitation. Therefore, the scope of the appended claims should not be limited to the description of the embodiments contained herein.
Claims
1. A container, comprising:
- a base; and
- a cage structure comprising a plurality of laminated paperboard V-sections.
2. The container of claim 1, wherein said plurality of laminated paperboard V-sections form end assemblies and a top assembly.
3. The container of claim 2, wherein said end assemblies have a first configuration and a second configuration.
4. The container of claim 3, wherein said first configuration of said end assembly is substantially flat.
5. The container of claim 1, further comprising a cover.
6. The container of claim 5, wherein said cover covers at least said cage structure.
7. The container of claim 5, wherein said cover is comprised of heat-shrinkable layered fabric having high water vapor permeability in a controlled direction.
8. A method of producing a container, comprising the steps of:
- constructing a base structure;
- constructing end assemblies in a first configuration from laminated paperboard V-sections, wherein said end assemblies are convertible to a second configuration; and
- constructing a substantially flat top assembly from laminated paperboard V-sections.
9. The method of claim 8, further comprising the step of shipping said base structure, said end assemblies, said top assembly, and a cover to a purchaser.
10. The method of claim 9, wherein said cover is comprised of layered fabric that is heat-shrinkable and having high water vapor permeability in a controlled direction.
11. The method of claim 8, wherein said first configuration is substantially flat.
12. The method of claim 11, wherein the conversion from said first configuration to said second configuration is accomplished by folding.
13. The method of claim 9, further comprising the step of:
- instructing said purchaser on final assembly steps of said container wherein said final assembly comprises the steps of: placing a vehicle on said base structure, folding said end assemblies, attaching said end assemblies to opposing sides of said base, attaching said top assembly to the tops of said end assemblies, covering at least said end assemblies and said top assembly with said cover.
Type: Application
Filed: Feb 29, 2016
Publication Date: Sep 1, 2016
Inventors: Todd Hainer (Neenah, WI), Charles T Knapp (Fargo, ND), Nicholas Magdziak (Minneapolis, MN), Michael Mathisen (Minneapolis, MN), Corey Nugent (Appleton, WI)
Application Number: 15/056,429