A vessel is configured to hold a product in an interior region formed in the vessel. In illustrative embodiments, the vessel includes a floor and a sidewall coupled to the floor to extend away from the floor. Together the floor and sidewall cooperate to define the interior region. A vessel in accord
A vessel is configured to hold a product in an interior region formed in the vessel. In illustrative embodiments, the vessel includes a floor and a sidewall coupled to the floor to extend away from the floor. Together the floor and sidewall cooperate to define the interior region. A vessel in accordance with the present disclosure is configured to hold a product in an interior region. In illustrative embodiments, the vessel is an insulated container such as a drink cup. In illustrative embodiments, the vessel is a container such as a shampoo bottle.
대표청구항▼
1. A vessel comprising a floor anda seamless side wall coupled to the floor and arranged to extend upwardly from ground underlying the floor and to cooperate with the floor to define an interior product-storage region therebetween,wherein the floor and the seamless side wall cooperate to form a mono
1. A vessel comprising a floor anda seamless side wall coupled to the floor and arranged to extend upwardly from ground underlying the floor and to cooperate with the floor to define an interior product-storage region therebetween,wherein the floor and the seamless side wall cooperate to form a monolithic element comprising an inner polymeric layer forming a boundary of the interior product-storage region, an outer polymeric layer arranged to lie in spaced-apart relation to the inner polymeric layer to define a core chamber therebetween, and a middle cellular non-aromatic polymeric material located in the core chamber to lie between the outer polymeric layer and the inner polymeric layer so as to contact the inner polymeric layer and the outer polymeric layer, andwherein the inner polymeric layer, the outer polymeric layer, and the middle cellular non-aromatic polymeric material cooperate to provide means for maximizing a compressive strength of the vessel as tested by top-load testing and a shear strength of the vessel as tested by side-wall rigidity testing while minimizing a weight of the vessel. 2. The vessel of claim 1, wherein the middle cellular non-aromatic polymeric material comprises high-density polyethylene. 3. The vessel of claim 2, wherein the density of the middle cellular non-aromatic polymeric material is in a range of about 0.1 g/cm3 to about 0.185 g/cm3. 4. The vessel of claim 1, wherein the vessel has an average density in a density range of about 0.51 g/cm3 to about 0.91 g/cm3. 5. The vessel of claim 4, wherein the compression strength of the vessel is greater than a compression strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 6. The vessel of claim 5, wherein the compression strength of the vessel is about 5% to about 30% greater than the compression strength of the control vessel. 7. The vessel of claim 4, wherein the shear strength of the vessel is greater than a shear strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 8. The vessel of claim 7, wherein the compression strength of the vessel is about 3% to about 30% greater the compression strength of the control vessel. 9. The vessel of claim 4, wherein the average density is about 0.91 g/cm3. 10. The vessel of claim 9, wherein the compression strength of the vessel is about 9% greater than a compression strength of a control vessel having a mass about the same as a mass of the vessel a shape about the same as a shape of the vessel. 11. The vessel of claim 10, wherein the shear strength of the vessel is about 4% greater than a shear strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 12. The vessel of claim 4, wherein the density range is about 0.6 g/cm3 to about 0.8 g/cm3. 13. The vessel of claim 12, wherein the average density is about 0.61 g/cm3. 14. The vessel of claim 13, wherein the compression strength of the vessel is about 15% greater than a compression strength of a control vessel having a mass about the same as a mass of the vessel a shape about the same as a shape of the vessel. 15. The vessel of claim 14, wherein the shear strength of the vessel is about 15% greater than a shear strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 16. The vessel of claim 12, wherein the average density is about 0.71 g/cm3. 17. The vessel of claim 16, wherein the compression strength of the vessel is about 26% greater than a compression strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 18. The vessel of claim 17, wherein the shear strength of the vessel is about 24% greater than a shear strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 19. The vessel of claim 18, wherein the vessel has a mass of about 56 grams. 20. The vessel of claim 16, wherein the shear strength of the vessel is about 24% greater than a shear strength of a control vessel having a mass about the same as a mass of the vessel and a shape about the same as a shape of the vessel. 21. A vessel comprising a floor anda seamless side wall coupled to the floor and arranged to extend upwardly from ground underlying the floor and to cooperate with the floor to define an interior product-storage region therebetween,wherein the floor and the seamless side wall cooperate to form a monolithic element comprising an inner polymeric layer forming a boundary of the interior product-storage region, an outer polymeric layer arranged to lie in spaced-apart relation to the inner polymeric layer to define a core chamber therebetween, and a middle cellular polymeric material located in the core chamber to lie between the outer polymeric layer and the inner polymeric layer so as to contact the inner polymeric layer and the outer polymeric layer, andwherein the inner polymeric layer, the outer polymeric layer, and the middle cellular non-aromatic polymeric material cooperate to maximize resistance to a collapse force while minimizing a weight of the vessel. 22. The vessel of claim 21, wherein the middle cellular polymeric material comprises high density polyethylene. 23. The vessel of claim 21, wherein the middle cellular polymeric material is one of linear low density polyethylene, low density polyethylene, an ethylene copolymer, copolymer polypropylene, polypropylene, polystyrene, nylon, polycarbonate, polyester, copolyester, poly phenylene sulfide, poly phenylene oxide, a random copolymer, a block copolymer, an impact copolymer, homopolymer polypropylene, polylactic acid, polyethylene terephthalate, crystallizable polyethylene terephthalate, styrene acrilynitrile, poly methyl methacrylate, polyvinyl chloride, acrylonitrile butadiene styrene, polyacrylonitrile, polyamide, and combinations thereof. 24. The vessel of claim 21, wherein the density of the middle cellular polymeric material is in a range of about 0.1 g/cm3 to about 0.185 g/cm3. 25. The vessel of claim 24, wherein the collapse force required to collapse the vessel is greater than a collapse force required to collapse a non-cellular vessel having a shape about the same as a shape of the vessel. 26. The vessel of claim 25, wherein a mass of the vessel is about equal to a mass of the non-cellular vessel. 27. The vessel of claim 26, wherein the collapse force required to collapse the vessel is about 55% to about 65% greater than the collapse force required to collapse the non-cellular vessel. 28. The vessel of claim 27, wherein the collapse force required to collapse the vessel is about 58% greater than the collapse force required to collapse the non-cellular vessel. 29. The vessel of claim 28, wherein the mass is about 35 grams. 30. The vessel of claim 27, wherein the collapse force required to collapse the vessel is about 61% greater than the collapse force required to collapse the non-cellular vessel. 31. The vessel of claim 30, wherein the mass is about 40 grams. 32. The vessel of claim 25, wherein a mass of the vessel is less than a mass of the non-cellular vessel. 33. The vessel of claim 32, wherein the collapse force required to collapse the vessel is about 1% to about 25% greater than a collapse force required to collapse the non-cellular vessel. 34. The vessel of claim 33, wherein a mass of the vessel is about 32 grams and a mass of the non-cellular vessel is about 35 grams. 35. The vessel of claim 34, wherein the collapse force required to collapse the vessel is about 23% greater than the collapse force required to collapse the non-cellular vessel. 36. The vessel of claim 21, wherein a mass of the vessel is about 35 grams and a mass of the non-cellular vessel is about 40 grams. 37. The vessel of claim 36, wherein the collapse force required to collapse the vessel is about 14% greater than the collapse force required to collapse the non-cellular vessel. 38. The vessel of claim 21, wherein a mass of the vessel is about 40 grams and a mass of the non-cellular vessel is about 44 grams. 39. The vessel of claim 38, wherein the collapse force required to collapse the vessel is about 2% greater than the collapse force required to collapse the non-cellular vessel. 40. The vessel of claim 21, wherein a mass of the vessel is about 5% to about 15% smaller than a mass of the non-cellular vessel is about 35 grams. 41. The vessel of claim 40, wherein the collapse force required to collapse the vessel is about 1% to about 25% greater than a collapse force required to collapse the non-cellular vessel.
Nishikawa Shigeo,JPX ; Sugihara Eiichi,JPX ; Takedachi Masahiro,JPX ; Yorita Kaoru,JPX ; Inoue Haruo,JPX ; Shimada Yoko,JPX ; Eriguchi Michio,JPX, Addition method of supercritical carbon dioxide, and production process of expanded thermoplastic resin product by making use of the addition method.
Karjala, Teresa P.; Yalvac, Selim; Diehl, Charles F.; Cheung, Yunwa W.; Rickey, Cynthia L., Adhesive and marking compositions made from interpolymers of ethylene/α-olefins.
Karjala, Teresa P.; Yalvac, Selim; Diehl, Charles F.; Cheung, Yunwa W.; Rickey, Cynthia L., Adhesive and marking compositions made from interpolymers of ethylene/α-olefins.
Miller William P. (Meriden CT) Twigg Robert W. (Rockford IL), Apparatus and method for fabricating a flexible cylinder from multi-ply flexible web material having metal and plastic p.
Kudert, Frederick G.; Latreille, Maurice G.; McHenry, Robert J.; Nahill, George F.; Pfutzenreuter, III, Henry; Tennant, William A.; Tung, Thomas T.; Vella, Jr., John, Apparatus for injection molding and injection blow molding multi-layer articles.
Weaver, Laura B.; Batra, Ashish; Ansems, Patricia; Strandburg, Gary M.; Kalinkowski, Matthew J., Articles comprising nonpolar polyolefin and polyurethane, and methods for their preparation and use.
Finkelstein Harvey (Washington Township NJ) Flores Victor (Goldens Bridge NY) Singer Murray (St. Clark NJ), Cap liner for hot filled container and method.
Finkelstein Harvey (Washington Township NJ) Flores Victor (Goldens Bridge NY) Singer Murray (Clark NJ) Verdel Anatoly (Fairlawn NJ), Cap liner for hot filled container and method of making.
Markovich, Ronald P.; Elley-Bristow, Dale M.; Prieto, Miguel A.; Barry, Russell P.; Martinez, Felipe; Falla, Daniel J.; Damen, Julien H. J. M., Cap liners, closures and gaskets from multi-block polymers.
Markovich, Ronald P.; Elley Bristow, Dale M.; Prieto, Miguel A.; Barry, Russell P.; Martinez, Felipe; Falla, Daniel J.; Damen, Julien H. J. M., Cap liners, closures, and gaskets from multi-block polymers.
Sandstrom Erland R. ; Shanton Kenneth John ; Hartjes Timothy Paul, Carton having buckle-controlled brim curl and method and blank for forming the same.
Arriola, Daniel J.; Devore, David D.; Carnahan, Edmund M.; Hustad, Phillip D.; Kuhlman, Roger L.; Wenzel, Timothy T., Catalyst composition comprising shuttling agent for ethylene copolymer formation.
Arriola, Daniel J.; Carnahan, Edmund M.; Cheung, Yunwa Wilson; Devore, David D.; Graf, David D.; Hustad, Phillip D.; Kuhlman, Roger L.; Shan, Colin Li Pi; Poon, Benjamin C.; Roof, Gordon R.; Stevens, James C.; Stirn, Pamela J.; Wenzel, Timothy T., Catalyst composition comprising shuttling agent for ethylene multi-block copolymer formation.
Arriola, Daniel J.; Carnahan, Edmund M.; Cheung, Yunwa Wilson; Devore, David D.; Graf, David D.; Hustad, Phillip D.; Kuhlman, Roger L.; Shan, Colin Li Pi; Poon, Benjamin C.; Roof, Gordon R.; Stevens, James C.; Stirn, Pamela J.; Wenzel, Timothy T., Catalyst composition comprising shuttling agent for ethylene multi-block copolymer formation.
Chang,Andy C.; Weeks,Ronald J.; Peng,Hong; Doufas,Antonios K.; Cheung,Yunwa W., Compositions of ethylene/α-olefin multi-block interpolymer for elastic films and laminates.
Chang, Andy C.; Hoenig, Stephen M.; Cheung, Yunwa W.; Moldovan, Daniel G.; Liang, Wenbin; Diehl, Charles F., Compositions of ethylene/alpha-olefin multi-block interpolymer for elastic films and laminates.
Chang, Andy C.; Weeks, Ronald J.; Peng, Hong; Doufas, Antonios K.; Cheung, Yunwa W., Compositions of ethylene/alpha-olefin multi-block interpolymer for elastic films and laminates.
Chang, Andy C.; Weeks, Ronald J.; Peng, Hong; Doufas, Antonios K.; Cheung, Yunwa Wilson, Compositions of ethylene/alpha-olefin multi-block interpolymer for elastic films and laminates.
Chang, Andy C.; Hoenig, Stephen M.; Cheung, Yunwa W.; Moldovan, Daniel G.; Liang, Wenbin; Diehl, Charles F., Compositions of ethylene/α-olefin multi-block interpolymer for elastic films and laminates.
Chang, Andy C.; Hoenig, Stephen M.; Cheung, Yunwa W.; Moldovan, Daniel G.; Liang, Wenbin; Diehl, Charles F., Compositions of ethylene/α-olefin multi-block interpolymer for elastic films and laminates.
Hartjes, Timothy P.; Breining, Michael A.; Van Handel, Gerald J.; Brown, David C.; Malakhow, Walter, Container employing an inner liner for thermal insulation.
Hartjes,Timothy P.; Breining,Michael A.; Van Handel,Gerald J.; Brown,David C.; Malakhow,Walter, Container employing inner liner and vents for thermal insulation and methods of making same.
Breining Michael A. ; Malakhow Walter ; Curcio Anthony N., Container with indicia covering brim, blank for making such a container, and methods for making the container and blank.
Li Pi Shan, Colin; Hazlitt, Lonnie G.; Cheung, Yunwa W.; Poon, Benjamin C.; Hustad, Phillip D.; Kuhlman, Roger L.; Carnahan, Edmund M.; Qui, Xiahua; Taha, Angela N., Ethylene/α-olefins block interpolymers.
Poon, Benjamin C.; Cheung, Yunwa W.; Lai, Shih-Yaw; Sen, Ashish; Chen, Hongyu; Chiu, Yuen-Yuen D.; Patel, Rajen M.; Chang, Andy C.; Doufas, Antonios K.; Peng, Hong, Fibers made from copolymers of ethylene/α-olefins.
Poon, Benjamin C.; Cheung, Yunwa W.; Lai, Shih-Yaw; Sen, Ashish; Chen, Hongyu; Chiu, Yuen-Yuen D.; Patel, Rajen M.; Chang, Andy C.; Doufas, Antonios K.; Peng, Hong, Fibers made from copolymers of ethylene/α-olefins.
Poon, Benjamin C.; Cheung, Yunwa W.; Lai, Shih-Yaw; Sen, Ashish; Chen, Hongyu; Chiu, Yuen-Yuen D.; Patel, Rajen M.; Chang, Andy C.; Doufas, Antonios K.; Peng, Hong, Fibers made from copolymers of ethylene/α-olefins.
Liang, Wenbin; Cheung, Yunwa W.; Diehl, Charles F.; Kummer, Kyle G., Filled polymer compositions made from interpolymers of ethylene/α-olefins and uses thereof.
Sasaki, Takayuki; Ito, Takashi; Toyota, Yoshinori; Kumagai, Naohiro, Flexible polyurethane foam, process for its production, and seat for automobile using the flexible polyurethane foam.
DeNicola ; Jr. Anthony J. (Newark DE) Smith Jeanine A. (West Chester PA) Felloni Massimo (Ferrara ITX), Foamed articles comprising high melt strength propylene polymer material.
Wu, Jesse; Han, James H.; Jacoby, Phil; Novak, Mark C.; Metaxas, Constantine; Choi-Feng, Chin; Mills, Ray O., Foamed polypropylene sheet having improved appearance and a foamable polypropylene composition therefor.
Brandner, Brian W.; Franjo, Vladimir; Kersey, Keith D.; Knueppel, Harald; Latouf, Ted J.; Osborne, James R., Fuel system component and method of manufacture.
Fredricks Richard E. ; Breining Michael A. ; Pucci William R. ; McCarthy Donald C. ; Brown David C. ; Segan Richard A. ; Malakhow Walter, Heat insulating paper cups.
Fredricks, Richard E.; Breining, Michael A.; Pucci, William R.; McCarthy, Donald C.; Brown, David C.; Segan, Richard A.; Malakhow, Walter, Heat insulating paper cups.
Walton, Kim L.; Marchand, Gary R.; Dhodapkar, Shrikant; Kapur, Mridula; Wu, Shaofu, Impact modification of thermoplastics with ethylene/α-olefin interpolymers.
Kiss, Gabor; Galuska, Alan Anthony; Reynolds, Jr., Robert Patrick; Chu, John W.; Chapman, Bryan R.; Brant, Patrick; Datta, Sudhin, In-line process for producing plasticized polymers and plasticized polymer blends.
Ylitalo, Caroline M.; Boyd, Scott A.; Carls, Joseph C.; Carlson, Eugene H.; Haas, Christopher K.; Jonza, James M.; Pellerite, Mark J.; Watkins, Robert F., Ink receptive article.
Hughes, Morgan M.; Cheung, Yunwa W.; Gupta, Pankaj; Gathers, John J., Interpolymers of ethylene/α-olefins blends and profiles and gaskets made therefrom.
Andersen Per Just ; Hodson Simon K., Laminated articles of manufacture fashioned from sheets having a highly inorganically filled organic polymer matrix.
Kogure, Naochika; Gokuraku, Hiroyuki; Takahashi, Seiji; Imanari, Daisuke; Kitahama, Takashi, MULTI-LAYER EXPANSION-MOLDED ARTICLE OF POLYPROPYLENE RESIN, PRODUCTION PROCESS THEREOF, AND CONTAINER, SHOCK-ABSORBING MATERIAL FOR AUTOMOBILE AND AUTOMOTIVE MEMBER FORMED OF THE MULTI-LAYER EXPANSI.
Cress Allan K. (Baltimore MD) Busse Charles E. (Jarrettsville MD), Method and apparatus for manufacturing foam plastic containers by use of a tubular forming mandrel.
Burnham Theodore A. ; Cha Sung W. ; Walat Robert H. ; Kim Roland Y. ; Anderson Jere R. ; Stevenson James F. ; Suh Nam P. ; Pallaver Matthew, Method and apparatus for microcellular polymer extrusion.
Burnham, Theodore A.; Cha, Sung W.; Walat, Robert H.; Kim, Roland Y.; Anderson, Jere R.; Stevenson, James F.; Suh, Nam P.; Pallaver, Matthew, Method and apparatus for microcellular polymer extrusion.
Blizard Kent ; Tupil Srinath ; Malavich William, Method and apparatus for microcellular polypropylene extrusion, and polypropylene articles produced thereby.
Busse Charles E. (Jarrettsville MD), Method and apparatus for sealing the sidewall and bottom seam portions of two-piece containers during manufacture thereo.
Gallagher Michael J. (Hampton NH) Nobbs Douglas (Dover NH), Method for manufacturing an automobile trim component by blow molding and injection molding.
Iioka Akira (Inzaimachi JPX), Method for producing a heat-insulating paper container from a paper coated or laminated with a thermoplastic synthetic r.
Park Chul B.,CAX ; Suh Nam P. ; Baldwin Daniel F., Method for providing continuous processing of microcellular and supermicrocellular foamed materials.
Park Chul B.,CAX ; Suh Nam P. ; Baldwin Daniel F., Method for providing continuous processing of microcellular and supermicrocellular foamed materials.
Hartjes, Timothy P.; Breining, Michael A.; Van Handel, Gerald J.; Brown, David C.; Malakhow, Walter, Method of making a container employing inner liner and vents for thermal insulation.
Anderson, Jere R.; Straff, Richard S.; Okamoto, Kelvin T.; Blizard, Kent; Pierick, David E., Microcelluar extrusion/blow molding process and article made thereby.
Cha Sung W. (Cambridge MA) Suh Nam P. (Sudbury MA) Baldwin Daniel F. (Medford MA) Park Chul B. (Cambridge MA), Microcellular thermoplastic foamed with supercritical fluid.
Karen A. Sheppard ; Jay Kin Keung ; Francis Tran The-Dzuy ; Joseph E. Brew ; Benoit Ambroise BE, Multi-layer oriented heat sealable film structure of improved machinability.
Maxwell Earl G. (9108 Halls Ferry Road St. Louis MO 63136), Nestable non-corrosive container for pressurized beverages and processes for manufacture and handling thereof.
Sjoberg Michael Borje,SEX ; Rydberg Jan Rolf,SEX ; Lundequist Nils Yngve,SEX ; Hoving Lars Goran,SEX ; Josefsson Hans Martin Tony,SEX ; Agren Stig Lennart,SEX ; Olsson Bjorn Axel Roland,SEX ; Jarvenk, Oriented polymeric products.
Shang Shaye-Wen ; Ling Michael Tung-Kiung ; Woo Lecon, Plastic compositions for medical containers and methods for providing such containers and for storing red blood cells.
Miyagawa, Toshio; Hirose, Fuminobu; Senda, Kenichi, Polyhydroxyalkanoate-based resin foamed particle, molded article comprising the same and process for producing the same.
Hoenig, Stephen M.; Cheung, Yunwa W.; Moldovan, Daniel G.; Liang, Wenbin; Cheung, Chuiwah A.; Lewis, Ray A.; Newton, John, Polymer blends from interpolymers of ethylene/α-olefins and flexible molded articles made therefrom.
Cheung, Yunwa Wilson; Dobreski, David V.; Turner, Richard; Wheeler, Mark; Handa, Y. Paul, Polymer blends of biodegradable or bio-based and synthetic polymers and foams thereof.
Leser, Chris K.; Driskill, Philip A.; Wallace, Charles T.; Euler, John B.; Paladino, Jason J.; Maravich, Milan C.; Davis, Daniel O.; Mann, Jeffrey A.; Bowlds, Randy A.; Contrada, Svetlana I., Polymeric material for an insulated container.
Ansems, Patricia; Batra, Ashish; Weaver, Laura Bauerle; Effler, Lawrence J.; Silvis, H. Craig; Lakrout, Hamed; Mergenhagen, Laura K., Polyolefin compositions and articles prepared therefrom, and methods for making the same.
Lin, Chon Yie; Chapman, Bryan Robert; Cheng, Chia Yung; Ferry, William Michael; Kelly, Michael Brian; Lundmark, Bruce Robert; Li, Wen, Polypropylene based fibers and nonwovens.
Hayashi Motoshige (Nara JPX) Doi Tsuneo (Nara JPX) Matsuoka Kiyotaka (Nara JPX), Polypropylene resin foamed sheet for thermoforming and process for producing the same.
Imanari,Daisuke; Akiyama,Teruyuki; Kogure,Naochika; Naito,Masato, Polypropylene resin hollow molded foam article and a process for the production thereof.
Greene William J. (Webster NY) Matoushek Robert J. (Rochester NY) Gorman Harry A. (Rochester NY) Weigand John G. (Churchville NY), Process for decurling a strip of photosensitive material.
Leser, Chris K.; Wallace, Charles T.; Driskill, Philip A.; Euler, John B.; Paladino, Jason J.; Maravich, Milan C.; Davis, Daniel O.; Mann, Jeffrey A.; Bowlds, Randy A.; Contrada, Svetlana I., Process for forming an insulated container having artwork.
Leser, Chris K; Wallace, Charles T; Driskill, Philip A; Euler, John B; Paladino, Jason J; Maravich, Milan C; Davis, Daniel O; Mann, Jeffrey A; Bowlds, Randy A; Contrada, Svetlana I, Process for forming an insulated container having artwork.
Leser, Chris K; Wallace, Charles T; Driskill, Philip A; Euler, John B; Paladino, Jason J; Maravich, Milan C; Davis, Daniel O; Mann, Jeffrey A; Bowlds, Randy A; Contrada, Svetlana I, Process for forming an insulated container having artwork.
Shimba Hiroshi (Yokohama JPX) Suzuki Fumio (Yokohama JPX) Yuto Masao (Yokohama JPX), Process for the production of highly expanded polyolefin insulated wires and cables.
Shan, Colin Li Pi; Hazlitt, Lonnie G.; Cheung, Yunwa Wilson; Poon, Benjamin C.; Hustad, Phillip D.; Kuhlman, Roger L.; Carnahan, Edmund M.; Qiu, XiaoHua; Taha, Angela N., Propylene/α-olefins block interpolymers.
Schmidt Steven L. (Merrimack NH) Collette Wayne N. (Merrimack NH) Krishnakumar Suppayan M. (Nashua NH), Squeezable multi-layer dispensing container with one-way valve.
Watanabe, Hiromi; Kuwahara, Isao, Stock material for container body of insulating paper container, insulating paper container and process for making them.
Watanabe, Hiromi; Kuwahara, Isao, Stock material for container body of insulating paper container, insulating paper container and process for making them.
Carvell, Lee A.; Wanderlich, Mark; Banovic, Susan L.; Jalutkewicz, James; Rees, Charles E.; Smith, Michael A., System and method for creating high gloss plastic items via the use of styrenic copolymers as a coextruded layer.
Carr John (Phoenixville PA) Kucherovsky Joseph (Philadelphia PA) Peppiatt Harry R. (Doylestown PA), Thermoformable laminate material with registered print and method of making the same.
Sukekuni Ito JP; Keiichi Honjo JP; Masami Imada JP; Manabu Kudoh JP, Thermoplastic skin sheet for interior parts of automobiles and method for producing such skin sheet.
Perez Mario Alberto ; Waid Robert Dennis ; Gozum John Ekrem ; Elsbernd Cheryl Lee Senger ; Gehlsen Mark David, Thermoplastic/thermoset hybrid foams and methods for making same.
Callahan William S. (86 S. Silver La. McKees Rocks PA 15136) Shields Karl B. (282 Alamo Dr. Pittsburgh PA 15241), Waterproof thermal resistant packaging wrap.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.