Novel structures by microlayer coextrusion-talc-filled PP, PC/SAN, and HDPE/LLDPE
Numerous examples in the literature illustrate how the coextrusion of film with three or more polymeric layers is economically used to achieve a desirable mix of end‐use characteristics. More recently, layer‐multiplying devices permit two polymers of widely dissimilar solid‐state properties to be co...
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Published in: | Polymer engineering and science Vol. 37; no. 2; pp. 355 - 362 |
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Abstract | Numerous examples in the literature illustrate how the coextrusion of film with three or more polymeric layers is economically used to achieve a desirable mix of end‐use characteristics. More recently, layer‐multiplying devices permit two polymers of widely dissimilar solid‐state properties to be combined into unique microlayer and nanolayer structures with hundreds or thousands of alternating layers. If the layers are thin enough, the key properties of the constituents can combine synergistically. The microlayer structure is also an effective research tool. Because the microlayer and nanolayer structures contain large specific interfacial areas, they are ideal for fundamental studies of phenomena such as interdiffusion and adhesion. Three examples of microlayered materials with up to 1024 layers illustrate the versatility of this coextrusion process: talc‐filled PP, PC/SAN, and HDPE/LLDPE. |
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AbstractList | Numerous examples in the literature illustrate how the coextrusion of film with three or more polymeric layers is economically used to achieve a desirable mix of end‐use characteristics. More recently, layer‐multiplying devices permit two polymers of widely dissimilar solid‐state properties to be combined into unique microlayer and nanolayer structures with hundreds or thousands of alternating layers. If the layers are thin enough, the key properties of the constituents can combine synergistically. The microlayer structure is also an effective research tool. Because the microlayer and nanolayer structures contain large specific interfacial areas, they are ideal for fundamental studies of phenomena such as interdiffusion and adhesion. Three examples of microlayered materials with up to 1024 layers illustrate the versatility of this coextrusion process: talc‐filled PP, PC/SAN, and HDPE/LLDPE. Numerous examples in the literature illustrate how the coextrusion of film with three or more polymeric layers is economically used to achieve a desirable mix of end-use characteristics. More recently, layer-multiplying devices permit two polymers of widely dissimilar solid-state properties to be combined into unique micro-layer and nanolayer structures with hundreds or thousands of alternating layers. If the layers are thin enough, the key properties of the constituents can combine synergistically. The microlayer structure is also an effective research tool. Because the microlayer and nanolayer structures contain large specific interfacial areas, they are ideal for fundamental studies of phenomena such as interdiffusion and adhesion. Three examples of microlayered materials with up to 1024 layers illustrate the versatility of this coextrusion process: talc-filled PP, PC/SAN, and HDPE/LLDPE. |
Audience | Academic |
Author | Nazarenko, Sergei Mueller, Chad D. Ebeling, Thomas Baer, Eric Schuman, Thomas L. Hiltner, Anne |
Author_xml | – sequence: 1 givenname: Chad D. surname: Mueller fullname: Mueller, Chad D. organization: Department of Macromolecular Science and Center for Applied Polymer Research (CAPRI), Case Western Reserve University, Cleveland, Ohio 44106-7202 – sequence: 2 givenname: Sergei surname: Nazarenko fullname: Nazarenko, Sergei organization: Department of Macromolecular Science and Center for Applied Polymer Research (CAPRI), Case Western Reserve University, Cleveland, Ohio 44106-7202 – sequence: 3 givenname: Thomas surname: Ebeling fullname: Ebeling, Thomas organization: Department of Macromolecular Science and Center for Applied Polymer Research (CAPRI), Case Western Reserve University, Cleveland, Ohio 44106-7202 – sequence: 4 givenname: Thomas L. surname: Schuman fullname: Schuman, Thomas L. organization: Department of Macromolecular Science and Center for Applied Polymer Research (CAPRI), Case Western Reserve University, Cleveland, Ohio 44106-7202 – sequence: 5 givenname: Anne surname: Hiltner fullname: Hiltner, Anne organization: Department of Macromolecular Science and Center for Applied Polymer Research (CAPRI), Case Western Reserve University, Cleveland, Ohio 44106-7202 – sequence: 6 givenname: Eric surname: Baer fullname: Baer, Eric organization: Department of Macromolecular Science and Center for Applied Polymer Research (CAPRI), Case Western Reserve University, Cleveland, Ohio 44106-7202 |
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Keywords | Acrylonitrile copolymer Low density ethylene polymer Multilayer Coextrusion molding Propylene polymer High density ethylene polymer Interdiffusion Polycarbonate Operating conditions Styrene copolymer |
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Snippet | Numerous examples in the literature illustrate how the coextrusion of film with three or more polymeric layers is economically used to achieve a desirable mix... |
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SubjectTerms | Acrylonitrile Analysis Applied sciences Exact sciences and technology Extrusion Extrusion moulding Machinery and processing Moulding Plastics Polycarbonates Polyethylene Polymer industry, paints, wood Polypropylene Styrene Technology of polymers |
Title | Novel structures by microlayer coextrusion-talc-filled PP, PC/SAN, and HDPE/LLDPE |
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