BIODEGRADABLE PLIABLE IMAGE-LADEN POLY-PLASTIC FOAM
20200147940 ยท 2020-05-14
Inventors
Cpc classification
B29K2075/00
PERFORMING OPERATIONS; TRANSPORTING
B32B1/00
PERFORMING OPERATIONS; TRANSPORTING
B32B27/304
PERFORMING OPERATIONS; TRANSPORTING
B32B2255/10
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/4023
PERFORMING OPERATIONS; TRANSPORTING
B29C45/16
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B27/06
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention provides an image-laden material and method that overcomes the disadvantages described above while enabling the adherence of a uniform high definition print to a biodegradable pliable polyurethane foam. More specifically, an image-laden material with a desired imprinted image and which is made of an image-laden capable polyethylene film, adhesive, and a polyvinyl chloride (PVC) protection layer is provided to a PE mold to form a shape similarly to the desired shape of the thermoplastic material. The shaped image-laden material is then transferred to a second PU mold for forming the desired image-laden shape of a biodegradable polyurethane foam material where polyurethane foam is premixed with a biodegradable agent to initiate a foaming process and added to the mold. During the foaming process the polyurethane foam material increases in mass while forming an outer adhesive surface that forms a strong cohesion with the polyethylene film of the image-laden material.
Claims
1. An image-laden poly-plastic sheet for a biodegradable pliable substrate, consisting of: a polyethylene film, for holding an image; an adhesion layer, applied to the polyethylene film; a polyvinyl chloride layer, to holding a shape; a biodegradable pliable substrate; and whereby the polyethylene film, adhesion layer, and polyvinyl chloride layer, are combined using heat and pressure to form an image-laden poly-plastic formed sheet.
2. An image-laden poly-plastic sheet for a biodegradable pliable substrate of claim 1, wherein the heat and pressure to form an image image-laden poly-plastic formed sheet is created by a mold.
3. An image-laden poly-plastic sheet for a biodegradable pliable substrate of claim 1, wherein the heat applied to form an image-laden poly-plastic formed sheet is between 250 F. to 280 F.
4. An image-laden poly-plastic sheet for a biodegradable pliable substrate of claim 1, wherein the heat applied to form an image-laden poly-plastic formed sheet is 265 F.
5. An image -laden biodegradable pliable substrate, consisting of: an image-laden poly-plastic formed sheet; a polyurethane mix; and wherein the image-laden poly-plastic formed sheet and the polyurethane mix are combined in a mold to form an image-laden biodegradable pliable substrate.
6. An image-laden poly-plastic sheet for a biodegradable pliable substrate of claim 5, wherein the heat and pressure to form an image image-laden poly-plastic formed sheet is created by a mold.
7. An image-laden poly-plastic sheet for a biodegradable pliable substrate of claim 5, wherein the pressure to form an image image-laden poly-plastic formed sheet is created by a vacuum.
8. A method of forming an image-laden poly-plastic sheet for a biodegradable pliable substrate, the method comprising: (A) providing an image-laden poly-plastic sheet for a pliable substrate, the image-laden poly-plastic sheet comprising: (i) a polyethene film, for holding an image; (ii) an adhesion layer, applied to the polyethene film; (iii)a polyvinyl chloride layer, to holding a shape; (B) forming the image-laden poly-plastic sheet into a shape, using a PE mold; (C) transferring the formed image-laden poly-plastic sheet into a PU mold; (D) adding biodegradable polyurethane mix to the PU mold; and (E) extracting a pliable image laden biodegradable poly-plastic foam from the PU mold.
9. A method of forming an image-laden biodegradable poly-plastic sheet for a pliable substrate, the method comprising: (A) providing an image-laden poly-plastic sheet for a pliable substrate, (B) forming the image-laden poly-plastic sheet into a shape, using a PE mold; (C) transferring the formed image-laden poly-plastic sheet into a PU mold; (D) adding biodegradable polyurethane mix to the PU mold; and extracting a pliable image laden poly-plastic foam from the PU mold.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005] In the accompanying drawings that form a part of the specification and that are to be read in conjunction therewith, and in which like reference numerals are used to indicate like parts in the various views:
[0006] Various additional objectives, advantages, and features of the invention will be appreciated from a review of the following detailed description of the illustrative embodiments taken in conjunction with the accompanying drawings.
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DETAILED DESCRIPTION OF THE DRAWINGS
[0013] The following detailed description is merely exemplary in nature and is not intended to limit the invention or the application and uses of the invention. Furthermore, there is no intention to be bound by any expressed or implied theory presented in the preceding technical field, background, summary or the following detailed description.
[0014] A portion of the invention may be described herein in terms of steps. It should be appreciated that such steps may be realized by alternative order.
[0015] The overall purpose of the image laden material is to enable the adherence of a uniform high definition print to a pliable polyurethane foam. More specifically, an image is applied to a polyethylene film via an imaging process, similar to the image process known in the art as the gravure printing method whereby a color image using ink at a resolution of 200 lines per inch is transferred to the polyethylene film leaving an image-laden polyethylene film. 102 of
[0016] As represented in
[0017] The polyurethane mix increases in mass to form a polyurethane foam 420 with an outer adhesive surface. The outer adhesion surface contacts the formed image-laden poly-plastic sheet 415 and forms a strong cohesive bond with the formed image-laden poly plastic sheet 415. Additionally, the expanding polyurethane foam 420 forms the shape of the PU Mold 425 by expanding until the volume of the PU cavity 435 is filled. The expanded polyurethane foam 420 is then removed from the PU mold 420, forming a pliable image laden poly-plastic foam 522 as represented in
[0018] The poly-plastic foam 522, that includes the biodegradable agent such as BioSphere 302 Additive offered by Biosphere Plastics LLP at the website located at www.biosphereplastic.com/biodegradable-plastic-additive, increases the hydrophilic content within the poly-plastic foam thereby enabling an expedited biodegradation. The increased hydrophilic content enables the hydrolysis, the beginning of the anaerobic digestion which is the chemical breakdown of a compound due to reaction with water. Hydrolysis process yields the second phase, the acidogenesis phase, of the anaerobic digestion process which is the process where simple monomers are converted into volatile fatty acids. The fatty acids yield the third phase of the process, which is the acetogenesis phase where the fatty acids are converted into acetic acid, carbon dioxide, and hydrogen. Finally, the acetates of the acetogenesis phase are converted into methane and carbon dioxide, while hydrogen is consumed in the final methanogenesis phase of the anaerobic digestion process. Adding the biodegradable agent to the polyurethane mix at a ratio of one percent (1%) by volume yields a full breakdown of the pliable image-laden poly-plastic foam in two years.
[0019] The steps of producing a pliable image-laden poly-plastic foam is further described in