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class="bread-crumbs-second">Polymer Composite</span></div> <div class="page-name-block underline-begin"> <h1 class="page-name-block-text">Papers by Keyword: Polymer Composite</h1> </div> <div class="papers-author-content"> <div class="block-search-pagination"> <div class="pagination-container"><ul class="pagination"><li class="PagedList-skipToFirst"><a href="/paper-keyword/polymer-composite/1"><<</a></li><li class="PagedList-skipToPrevious"><a href="/paper-keyword/polymer-composite/10" rel="prev"><</a></li><li class="PagedList-ellipses"><a class="PagedList-skipToPrevious" href="/paper-keyword/polymer-composite/7" rel="prev">…</a></li><li><a href="/paper-keyword/polymer-composite/8">8</a></li><li><a href="/paper-keyword/polymer-composite/9">9</a></li><li><a href="/paper-keyword/polymer-composite/10">10</a></li><li class="active"><span>11</span></li><li><a href="/paper-keyword/polymer-composite/12">12</a></li><li class="PagedList-skipToNext"><a href="/paper-keyword/polymer-composite/12" rel="next">></a></li></ul></div> </div> <div class="block-volume-title normal-text-gray"> <p> Paper Title<span>Page</span> </p> </div> <div class="item-block"> <div class="item-link"> <a href="/MSF.654-656.2103">Compression Behavior and Texture Development of Polymer Matrix Composites Based on NiMnGa Ferromagnetic Shape Memory Alloy Particles</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Motoki Okuno, Tomonari Inamura, Hiroyasu Kanetaka, Hideki Hosoda </div> </div> <div id="abstractTextBlock81197" class="volume-info volume-info-text volume-info-description"> Abstract: Deformation behavior and texture development of NiMnGa ferromagnetic shape memory alloy (FSMA) particles embedded polymer composites were investigated by compression tests and X-ray diffraction pole-figure analysis (XRD-PF). Both the NiMnGa/silicone and NiMnGa/epoxy composites exhibited a characteristic three-stage deformation which is often seen in shape memory alloys due to martensite variant reorientation. XRD-PF revealed that (004) texture was developed in the compressed NiMnGa/silicone due to the retention of martensite variant reorientation. On the other hand, significant texture change was not recognized in the compressed NiMnGa/epoxy. Rearranged martensite variants was kept after unloading in silicone matrix having low Young's modulus, but reverse reorientation occurred in epoxy matrix with high Young's modulus. The rearrangement behavior of martensite variants is strongly affected by elastic properties of matrix. </div> <div> <a data-readmore="{ block: '#abstractTextBlock81197', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 2103 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/AMR.97-101.1697">Interfacial Treatment of Multi-Layer Woven Silk Reinforced Epoxy Composites</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Zulkifli R., Che Husna Azhari </div> </div> <div id="abstractTextBlock76223" class="volume-info volume-info-text volume-info-description"> Abstract: The aim of the project is to study the interlaminar fracture toughness, GIC of woven silk reinforced epoxy composite. Silk fibre has been treated with silane coupling agent and the silk/epoxy composites has been fabricated with different number of silk fibre layers. The processing technique used to prepare the sample is a vacuum bag cured in an autoclave. In this study, test specimens were fabricated by using silk fibre of between 8 to 14 layers. The first set of composites panel consisted of plain silk fibre while the second sets consisted of silk fibre which has been treated with 3-aminopropyl triethoxysilane. Mode I test based on double cantilever beam specimens (DCB) method have been used over all the specimens. The results of the GIC were plotted and compared. GIC of the composites in set 2 were found to be higher than the value in set 1. During the test, crack propagation is stable and no fibre bridging occurred between both sides of fracture surfaces. All the failure that occurred were at the fibre-matrix interface as seen using SEM. The GIC of woven silk/epoxy composites can be enhanced by surface treatment using coupling agent. Surface treatment and number of woven silk fibre layers has affected the interlaminar fracture properties of the composite panel. </div> <div> <a data-readmore="{ block: '#abstractTextBlock76223', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 1697 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/MSF.643.1">Processing Methodology to Embedding NiTi Shape Memory Fibers into a Polymer-Based Composite Plate</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Boniek Evangelista Leite, Rafael Feliciano De Macedo, Wanderley Ferreira Amorim Júnior, Carlos José de Araújo </div> </div> <div id="abstractTextBlock75105" class="volume-info volume-info-text volume-info-description"> Abstract: The objective of this work was the development of a processing methodology for embedding NiTi fibers into a polymer-based composite plate. A carbon fiber reinforced polymer (CFRP) prepreg and NiTi thin wires were used. A uniaxial hot press was prepared to be used in the composite processing. Two prototypes were fabricated to provide fiber alignment and fixation fixture. A CFRP composite plate without fiber and another with NiTi fibers were processed. Micrometers and a universal materials testing machine were used to measure the plate thickness and Young's modulus. It was possible to develop a processing methodology for embedding NiTi fibers into a polymer-based composite plate. The CFRP plate without fiber presented almost no variation in plate thickness and Young's modulus measurement thus enabling the CFRP manufacture by the hot uniaxial press. The fiber fixation fixture developed was able to produce CFRP-NiTi fiber hybrid composites with different number of fibers embedded, the spacing distance between fibers was at least 1 mm and the fiber alignment was achieved. </div> <div> <a data-readmore="{ block: '#abstractTextBlock75105', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 1 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/KEM.425.31">Modeling of Fiber Jamming Phenomena during Processing of Fiber Reinforced Composite Parts</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Alejandro Londoño-Hurtado, Tim A. Osswald </div> </div> <div id="abstractTextBlock72573" class="volume-info volume-info-text volume-info-description"> Abstract: A current research effort at the Polymer Engineering Center (PEC) consists on providing the tools required to understand and predict defects that arise during the molding of fiber reinforced composites. This review starts with a comprehensive research summary in the field of computer simulation of composites molding and then presents our current work regarding computer simulations of flexible fiber suspensions </div> <div> <a data-readmore="{ block: '#abstractTextBlock72573', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 31 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/AMR.47-50.282">Self-Healing of Cracks in Epoxy Composites</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Tao Yin, Min Zhi Rong, Ming Qiu Zhang </div> </div> <div id="abstractTextBlock62761" class="volume-info volume-info-text volume-info-description"> Abstract: To provide epoxy based composites with self-healing ability, two-component healing system consisting of urea-formaldehyde walled microcapsules containing epoxy (30~70µm in diameter) and CuBr2(2-MeIm)4 (the complex of CuBr2 and 2-methylimidazole) latent hardener was synthesized. When cracks were initiated or propagated in the composites, the neighbor micro-encapsulated epoxy would be damaged and released. As the latent hardener is soluble in epoxy, it can be well dispersed in epoxy composites during composites manufacturing, and hence activate the released epoxy wherever it is. As a result, repair of the cracked sites is completed through curing of the released epoxy. The present work indicated that the plain weave glass fabric laminates using the above self-healing epoxy as the matrix have been provided with self-healing capability. </div> <div> <a data-readmore="{ block: '#abstractTextBlock62761', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 282 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/SSP.121-123.1407">Functionalization of Carbon Nanotube Surface via UV/O<sub>3</sub> Treatment</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Jang Kyo Kim, Man Lung Sham </div> </div> <div id="abstractTextBlock48651" class="volume-info volume-info-text volume-info-description"> Abstract: The carbon nanotube (CNT) surface is successfully modified using the UV/Ozone treatment and a triethylenetetramine (TETA) solution for use as the reinforcement for polymer matrix nanocomposites. These treatments along with ultrasonication are aimed to disperse the CNTs uniformly in the resin matrix, as well as to provide the CNT surface with chemical functionalities for adhesion with resin. Fourier transform infra-red (FTIR) spectroscopy and X-ray photoelectron spectroscopy (XPS) are performed to evaluate the changes in chemical structure and surface functional groups arising from the chemical treatment. The practical implications of the surface functional groups for improving the interfacial adhesion are discussed. </div> <div> <a data-readmore="{ block: '#abstractTextBlock48651', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 1407 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/MSF.537-538.199">Investigation of the Debonding Process in Wood Fiber Reinforced Polymer Composites by Acoustic Emission </a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Z. Kocsis, Tibor Czigány </div> </div> <div id="abstractTextBlock48178" class="volume-info volume-info-text volume-info-description"> Abstract: Wood fiber reinforced polypropylene composites of different fiber contents without any treatment were prepared, and tensile tests were carried out on injection molded specimens. With increasing fiber content a decrease of the tensile strength was experienced. The weak adhesion at the fiber-matrix interface and the typical composite failures can be seen on SEM pictures. During the tests acoustic emission was monitored to get more information about the damage mechanism. From the AE counts distribution it can be concluded that the maximum number of AE counts decreases simultaneously with the tensile strength in case of the different composites. </div> <div> <a data-readmore="{ block: '#abstractTextBlock48178', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 199 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/MSF.532-533.648">Damage Analysis of Particulate Polymer Composites Based Structure by Using Micro-Meso-Macro Finite Element Approach</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Chak Yin Tang, Chi Pong Tsui, Da Zhu Chen, P. S. Uskoković, Jian Ping Fan, Xiao Lin Xie, Eric Wai Ming Lee </div> </div> <div id="abstractTextBlock46724" class="volume-info volume-info-text volume-info-description"> Abstract: A micro-meso-macro finite element approach has been developed for simulating the macro-scale damage coupled deformation in a particulate polymer composite (PPC) based structure under tension. A damage model for the PPC structure was developed to define the debonding damage behavior of the structure. The computational results determined in our previous studies by using finite element meso-cell modeling technique were used as the input parameters of the damage model and definition of the constitutive behavior of PPC. A user-defined subroutine VUMAT describing the damage-coupled constitutive behaviour of PPC for defining the material properties of the finite elements for the structure was then built and incorporated into the ABAQUS finite element code. A case example has been given to demonstrate the proposed approach. The macroscale damage process in the simulated component was found to be reasonable. </div> <div> <a data-readmore="{ block: '#abstractTextBlock46724', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 648 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/MSF.475-479.1033">Studies on Tetrapod-Shaped ZnO Whisker Modified Polymer Composites</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Zuo Wan Zhou, Shuchun Hu, Long Sheng Chu </div> </div> <div id="abstractTextBlock26432" class="volume-info volume-info-text volume-info-description"> Abstract: Tetra-needle like ZnO whisker modified NR-SBR-BR and PPS composites were prepared. The outcome of the investigation indicated that T-ZnO had an instinct effect on reinforcing polymer material isotropically. Further analysis showed that experiment results of T-ZnO/PPS composite gave much higher strength than that of the theoretical calculation from classical rule of mixing, and the explanations were put forward. The experimental tests on wear behavior of the composites of T-ZnO/NR-SBR-BR were carried out and got the conclusion that T-ZnO had a good effect of improving the wear resistance. The worn surfaces of the composites of T-ZnO/NR-SBR-BR appeared an instinct character of fractal, and the values of both the fractal dimension and the abrasion loss decreased synchronously as the increasing of T-ZnO loading in the composites. </div> <div> <a data-readmore="{ block: '#abstractTextBlock26432', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 1033 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/KEM.261-263.1197">Thermal-Fatigue Oxidation of Carbon-Fiber Reinforced Polyimide Composite</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Huang Kuang Kung, Hung Shyong Chen, Bo Wun Huang </div> </div> <div id="abstractTextBlock21521" class="volume-info volume-info-text volume-info-description"> Abstract: Extensive studies of thermal oxidation have mostly focused on the isothermal oxidation of high-temperature polyimide-matrix composites; very few have addresses thermal fatigue or nonisothermal oxidation and the associated weight loss kinetics in the literature. According to thermal activation theory and experimental results concerning isothermal oxidation, a method for predicting anisotropic thermal-fatigue oxidation is developed for the composites. </div> <div> <a data-readmore="{ block: '#abstractTextBlock21521', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 1197 </div> </div> <div class="block-bottom-pagination"> <div class="pager-info"> Showing 101 to 110 of 115 Paper Titles </div> <div class="pagination-container"><ul class="pagination"><li class="PagedList-skipToFirst"><a href="/paper-keyword/polymer-composite/1"><<</a></li><li class="PagedList-skipToPrevious"><a href="/paper-keyword/polymer-composite/10" rel="prev"><</a></li><li class="PagedList-ellipses"><a class="PagedList-skipToPrevious" href="/paper-keyword/polymer-composite/7" rel="prev">…</a></li><li><a href="/paper-keyword/polymer-composite/8">8</a></li><li><a href="/paper-keyword/polymer-composite/9">9</a></li><li><a href="/paper-keyword/polymer-composite/10">10</a></li><li class="active"><span>11</span></li><li><a href="/paper-keyword/polymer-composite/12">12</a></li><li class="PagedList-skipToNext"><a href="/paper-keyword/polymer-composite/12" rel="next">></a></li></ul></div> </div> </div> </div> </div> </div> </div> <div class="social-icon-popup"> <a href="https://www.facebook.com/Scientific.Net.Ltd/" target="_blank" rel="noopener" title="Scientific.Net"><i class="inline-icon facebook-popup-icon social-icon"></i></a> <a href="https://twitter.com/Scientific_Net/" target="_blank" rel="noopener" title="Scientific.Net"><i class="inline-icon twitter-popup-icon social-icon"></i></a> <a href="https://www.linkedin.com/company/scientificnet/" target="_blank" rel="noopener" title="Scientific.Net"><i class="inline-icon linkedin-popup-icon social-icon"></i></a> </div> </div> <div class="sc-footer"> <div class="footer-fluid"> <div class="container"> <div class="row"> <div class="footer-menu col-md-12 col-sm-12 col-xs-12"> <ul class="list-inline menu-font"> <li><a href="/ForLibraries">For Libraries</a></li> <li><a href="/ForPublication/Paper">For Publication</a></li> <li><a href="/insights" target="_blank">Insights</a></li> <li><a href="/DocuCenter">Downloads</a></li> <li><a href="/Home/AboutUs">About Us</a></li> <li><a href="/PolicyAndEthics/PublishingPolicies">Policy & Ethics</a></li> <li><a href="/Home/Contacts">Contact Us</a></li> <li><a href="/Home/Imprint">Imprint</a></li> <li><a href="/Home/PrivacyPolicy">Privacy Policy</a></li> <li><a href="/Home/Sitemap">Sitemap</a></li> <li><a href="/Conferences">All Conferences</a></li> <li><a href="/special-issues">All Special Issues</a></li> <li><a href="/news/all">All News</a></li> <li><a href="/read-and-publish-agreements">Read & Publish Agreements</a></li> </ul> </div> </div> </div> </div> <div class="line-footer"></div> <div class="footer-fluid"> <div class="container"> <div class="row"> <div class="col-xs-12"> <a href="https://www.facebook.com/Scientific.Net.Ltd/" target="_blank" rel="noopener" title="Scientific.Net"><i class="inline-icon facebook-footer-icon social-icon"></i></a> <a href="https://twitter.com/Scientific_Net/" target="_blank" rel="noopener" title="Scientific.Net"><i class="inline-icon twitter-footer-icon social-icon"></i></a> <a href="https://www.linkedin.com/company/scientificnet/" target="_blank" rel="noopener" title="Scientific.Net"><i class="inline-icon linkedin-footer-icon social-icon"></i></a> </div> </div> </div> </div> <div class="line-footer"></div> <div class="footer-fluid"> <div class="container"> <div class="row"> <div class="col-xs-12 footer-copyright"> <p> © 2024 Trans Tech Publications Ltd. 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