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Polymer Composite | p. 5 | Scientific.Net
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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/4" rel="prev"><</a></li><li class="PagedList-ellipses"><a class="PagedList-skipToPrevious" href="/paper-keyword/polymer-composite/2" rel="prev">…</a></li><li><a href="/paper-keyword/polymer-composite/3">3</a></li><li><a href="/paper-keyword/polymer-composite/4">4</a></li><li class="active"><span>5</span></li><li><a href="/paper-keyword/polymer-composite/6">6</a></li><li><a href="/paper-keyword/polymer-composite/7">7</a></li><li class="PagedList-ellipses"><a class="PagedList-skipToNext" href="/paper-keyword/polymer-composite/8" rel="next">…</a></li><li class="PagedList-skipToNext"><a href="/paper-keyword/polymer-composite/6" rel="next">></a></li><li class="PagedList-skipToLast"><a href="/paper-keyword/polymer-composite/12">>></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="/AMR.1110.7">Effect of Jute Fiber’s Thermal Degradation on the Fiber Strength and its Polymer Composites</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Takayasu Fujiura, Ryosuke Nakamura, Tatsuya Tanaka, Yoshihiko Arao </div> </div> <div id="abstractTextBlock438551" class="volume-info volume-info-text volume-info-description"> Abstract: In this study, we investigated the effect of jute fiber’s thermal degradation on fiber strength and its polymer composite. First, we conducted a tensile strength test of a single jute fiber. Next, polyethylene and jute fibers were mixed by twin-screw extruder to make pellets. After making pellets, we used injection molding machine to make the test pieces. Tensile tests were conducted using injection molded sample. As a result, in the experiment of the single fibers, tensile strength of jute fiber monotonically decreased with increasing drying temperature. In case of composite, the tensile strength of molded sample increased with increasing control temperature in twin screw extrude in a range between 150°C ~ 220°C. When the temperature of twin-screw extruder was controlled above 300°C, pellets were burned black by thermal degradation and couldn’t fabricate the test piece. </div> <div> <a data-readmore="{ block: '#abstractTextBlock438551', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 7 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/AMM.761.426">Fabrication of Activated Carbon Filled Epoxidized Natural Rubber Composite Using Solvent Casting Method</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Mohd Asyadi Azam, Aisyah Hassan, Noraiham Mohamad, Elyas Talib, Nor Syafira Abdul Manaf, Nor Najihah, Raja Noor Amalina Raja Seman, Mohd Shahril Amin Bistamam </div> </div> <div id="abstractTextBlock456549" class="volume-info volume-info-text volume-info-description"> Abstract: Despite the rapid increase in the utilization of reinforced nanomaterials composites, micromaterials may also have the potential to be utilized as filler in polymer composites. In this study, the activated carbon (AC) filled epoxidized natural rubber (ENR) composite was fabricated using the solvent casting method. AC was used as the filler at different filler addition in range from 0 to 7 parts per hundred rubbers (phr). The intention was to investigate the effect of AC filled ENR on mechanical properties and interaction between AC and ENR matrix. Overall, the result shows high improvement in mechanical properties. At 7 phr, the tensile strength was 7.0 MPa compared to 2.6 MPa for 0 phr, which indicates the increase by almost 2 times. The elongation also increases for all phr, which indicates the good filler effect. </div> <div> <a data-readmore="{ block: '#abstractTextBlock456549', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 426 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/DF.3.89">Moisture Diffusion in Unsaturated Polyester Composites Reinforced with Macambira Natural Fiber: A Finite-Volume Approach</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: V.C. de Almeida Cruz, João M.P.Q. Delgado, Antonio Gilson Barbosa de Lima, M.M. Silva Nóbrega, L.H. de Carvalho, W.S. Cavalcanti </div> </div> <div id="abstractTextBlock456641" class="volume-info volume-info-text volume-info-description"> Abstract: This paper presents a theoretical and experimental study about water absorption in unsaturated polyester polymer composites reinforced with vegetable fibers, with particular reference to macambira fiber. A mathematical modeling based on the liquid diffusion theory has been proposed and numerical procedures using the finite volume technique are presented and discussed. Results of the water absorption kinetic and moisture content distribution for the polymer composites are shown and analyzed. The knowledge of moisture distribution inside the composite is essential for determination of areas that may show delamination problems (moisture induced degradation) due to the weakness of the fiber-matrix interface and consequently reduction in the mechanical properties of the composites. </div> <div> <a data-readmore="{ block: '#abstractTextBlock456641', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 89 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/AMM.711.57">Researches on Friction Performance of Water-Lubricated Polymer Composite Journal Bearings Based on Experiments</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Geng Yuan Gao, Zhong Wei Yin, Dan Jiang, Xiu Li Zhang </div> </div> <div id="abstractTextBlock444320" class="volume-info volume-info-text volume-info-description"> Abstract: A composite which is PTFE as a matrix with PEEK and carbon fiber as fillers is developed to fabricate the bush of water-lubricated journal bearings. The bush is fabricated with a new structure that a relatively large straight groove is opened in its upper part. A water-lubricated journal bearing made up of the bush and a steel sleeve is studied using purposed-built test rig. It is shown that the test bearing operates under hydrodynamic lubrication for almost all of the given conditions. The composite developed in the work is a promising material for water-lubricated journal bearings, and the new structure can be well used in water-lubricated journal bearings. </div> <div> <a data-readmore="{ block: '#abstractTextBlock444320', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 57 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/AMM.591.103">Mechanical Properties of Chopped Randomly Oriented Epoxy - Luffa Fiber Reinforced Polymer Composite</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: R. Panneerdhass, R. Baskaran, K. Rajkumar, A. Gnanavelbabu </div> </div> <div id="abstractTextBlock404103" class="volume-info volume-info-text volume-info-description"> Abstract: This paper presents the study of the tensile, compressive, flexural, impact energy and water absorption characteristics of the luffa fiber reinforced expoxy polymer composites. Luffa fiber reinforced epoxy resin matrix composites have been developed by hand lay-up technique with varying process parameters such as fiber condition (treated and untreated), chopped randomly oriented and different volume fraction (30%, 40% and 50%). Tensile strength varies from 9 MPa to 20 MPa, compressive strength varies from 75 MPa to 105 MPa, flexural strength varies from 15 MPa to 140 MPa and impact energy varies from 0.25 Joules to 1.45 Joules, as a function of fiber volume fraction. The optimum mechanical properties were obtained at 40% of fiber volume fraction of treated fiber composites. Fracture surface of the composite shows that pull out and de-bonding of fiber is occurred. </div> <div> <a data-readmore="{ block: '#abstractTextBlock404103', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 103 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/AMR.875-877.288">Development of Epoxy Composite Filled with Micro Tungsten Disulphide Particles and its Mechanical Properties</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: J.S. Sidhu, G.S. Lathkar, S.B. Sharma </div> </div> <div id="abstractTextBlock280292" class="volume-info volume-info-text volume-info-description"> Abstract: The aim of this research article is to discuss the mechanical performance of WS2-Epoxy composite with varying % vol.of WS2. Studies were carried out with epoxy (ARL136+ AH-126) composite system consisting of Tungsten disulphide (WS2) as filler. The samples tested consist of bisphenol-A based epoxy liquid resin and Lapox AH-126 hardener with varying tungsten disulphide (WS<sub>2</sub>). Appropriately cured samples gave excellent mechanical properties. Results showed that the tensile strength of the composites increased with increase in filler content for the range of filler contents (2.5-4 % vol.) and decreased with increase in the filler contents 5% vol. onwards. The result indicated that at 3% of filler concentration the tensile strength obtained is good with moderate density and hardness. </div> <div> <a data-readmore="{ block: '#abstractTextBlock280292', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 288 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/JNanoR.26.169">Nonlinear Multi-Scale Finite Element Method to Predict Tensile Behavior of Carbon Nanotube-Reinforced Polymer Composites</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Ehsan Mohammadpour, Mokhtar Awang </div> </div> <div id="abstractTextBlock357240" class="volume-info volume-info-text volume-info-description"> Abstract: The ability of carbon nanotubes (CNTs) to consider as the strongest and stiffest elements in nanoscale composites remains a powerful motivation for the research in this area. This paper describes a finite element (FE) approach for prediction of the mechanical behavior of polypropylene (PP) matrix reinforced with single walled carbon nanotubes (SWCNTs). A representative volume element is proposed for modeling the tensile behavior of aligned CNTs/PP composites. The CNT is modeled with solid elements. Modified Morse potential is used for simulating the mechanical properties of an isolated carbon nanotube. The matrix is modeled as a continuum medium by utilizing an appropriate nonlinear material model. A cohesive zone model is assumed between the nanotube and the matrix with perfect bonding until the interfacial shear stress exceeds the bonding strength. Using the representative volume element, a unidirectional CNT/PP composite was modeled and the results were compared with corresponding rule-of-mixtures predictions. The effect of interfacial shear strength on the tensile behavior of the nanocomposite was also studied. The influence of the SWCNT within the polymer is clearly illustrated and discussed. The results showed that polymer's Young's modulus and tensile strength increase significantly in the presence of carbon nanotubes. </div> <div> <a data-readmore="{ block: '#abstractTextBlock357240', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 169 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/KEM.594-595.775">Tensile and Morphology Properties of Polylactic Acid/Treated <i>Typha latifolia</i> Composites</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Muthmirah Binti Ibrahim, Jalilah Abd Jalil, Syarifah Nuraqmar Syed Mahamud, Daud Yusrina Mat, Salmah Husseinsyah, Muhammad Rafi’ Yahya </div> </div> <div id="abstractTextBlock348444" class="volume-info volume-info-text volume-info-description"> Abstract: This paper is focused to investigate the effect of treated natural fiber (typha latifolia) content on tensile and morphology properties of polylactic acid (PLA)/treated typha latifolia (T-TyLa) composites. The composite was compounded using heated two roll mill and the composite samples were prepared through compression molding. Tensile test and scanning electron microscopy (SEM) analysis were carried out to study the properties of PLA/T-TyLa composites. The results showed that the tensile strength of PLA/T-TyLa composites was decreased for about 43% with initial addition of T-TyLa content. The tensile modulus of the composites was increased (23%-91%) with increasing of fiber content. However, increased in fiber content reduced the elongation at break for about 53%-67% of PLA/T-TyLa composites. The optimum increment was obtained at 30 wt% of fiber content. SEM results showed that fiber dispersion was better for PLA/T-TyLa composites at lower fiber content. </div> <div> <a data-readmore="{ block: '#abstractTextBlock348444', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 775 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/KEM.594-595.760">Utilization of Treated Red Meranti Wood Dust as Polymer Foam Composite for Acoustic Study</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Shafizah Sa'adon, Anika Zafiah M. Rus </div> </div> <div id="abstractTextBlock348423" class="volume-info volume-info-text volume-info-description"> Abstract: A Red Meranti Wood Dust (RMD) act as a filler for polymer foam composite has been investigated and proved to have ability to absorb sound. In this study, treatment of wood dust with and without acid hydrolysis named as WDB and WDA respectively was use as filler. This study was developed to compare the ability of sound absorption based on treated filler and particle size of wood dust. By choosing the size of 355 μm, three different percentage has been selected which is 10%, 15% and 20% for both conditions. These samples has been tested by using Impedance Tube test according to ASTM E-1050 for sound absorption coefficient, α measurement and Scanning Electron Microscopy (SEM) for determine the porosity for each samples. 10% loaded of WDB as filler gives highest sound absorption coefficient of 0.999 at 4015.63 Hz. Meanwhile for 20% loaded of WDA gives 0.997 at 3228.13 Hz. When comparing the sound absorption coefficient for both sounds absorbing materials, WDB-polymer foam composite RMD showed higher value of sound absorption coefficient, α at higher frequency as compared to WDA-polymer foam composite. </div> <div> <a data-readmore="{ block: '#abstractTextBlock348423', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 760 </div> </div> <div class="item-block"> <div class="item-link"> <a href="/KEM.592-593.655">Relation between Microstructure and Tribological Properties of High Density Polyethylene Hybrid Composites Filled with Untreated Glass Spheres, Talc and Calcium Carbonate</a> </div> <div class="item-link volume-authors"> <div class="semibold-middle-text"> Authors: Münir Taşdemir </div> </div> <div id="abstractTextBlock329304" class="volume-info volume-info-text volume-info-description"> Abstract: In the present work, high density polyethylene based composites filled with glass spheres, talc and calcite particles were prepared. Fillers contents in the HDPE were 5, 10, 15, and 20 wt%. The mechanical, morphological and tribological properties of the polymer composites were investigated. Substantial improvements in the some mechanical properties were obtained by the addition of filler. For example, the results showed that the elasticity modulus of composites improved with increasing the filler content. The addition of fillers to the HDPE changed significantly the friction coefficient and wear rate of the composites. HDPE filled with a high level content of fillers showed higher wear rate than pure HDPE under dry sliding. The structure and properties of the composites are characterized using a scanning electron microscopy (SEM). </div> <div> <a data-readmore="{ block: '#abstractTextBlock329304', lines: 2, expandText: '...more', collapseText: '...less' }"></a> </div> <div class="page-number semibold-large-text"> 655 </div> </div> <div class="block-bottom-pagination"> <div class="pager-info"> Showing 41 to 50 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/4" rel="prev"><</a></li><li class="PagedList-ellipses"><a class="PagedList-skipToPrevious" href="/paper-keyword/polymer-composite/2" rel="prev">…</a></li><li><a href="/paper-keyword/polymer-composite/3">3</a></li><li><a href="/paper-keyword/polymer-composite/4">4</a></li><li class="active"><span>5</span></li><li><a href="/paper-keyword/polymer-composite/6">6</a></li><li><a href="/paper-keyword/polymer-composite/7">7</a></li><li class="PagedList-ellipses"><a class="PagedList-skipToNext" href="/paper-keyword/polymer-composite/8" rel="next">…</a></li><li class="PagedList-skipToNext"><a href="/paper-keyword/polymer-composite/6" rel="next">></a></li><li class="PagedList-skipToLast"><a href="/paper-keyword/polymer-composite/12">>></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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