Startseite Effect of Hot Water and Water-carrying Agent on the Properties of Silane-water Crosslinked Linear Low Density Polyethylene
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Effect of Hot Water and Water-carrying Agent on the Properties of Silane-water Crosslinked Linear Low Density Polyethylene

  • T. Chen , J. Wang , P. Shi , Q. Li und C. Wu
Veröffentlicht/Copyright: 22. August 2013
Veröffentlichen auch Sie bei De Gruyter Brill

Abstract

The influence of hot water and the water-carrying agent aluminum potassium sulfate dodecahydrate (alum) on the mechanical and thermal properties of the silane-water crosslinked linear low density polyethylene (LLDPE) was investigated. LLDPE was melt-grafted with various content of vinyl trimethoxysilane (VTMS) using dicumyl peroxide (DCP) as initiator. The results show that the contribution of hot water to gel content is poor, about 2 to 16%, compared with that of the silane grafted LLDPE. Is feasible to achieve silane-water crosslinking reaction with alum for self-crosslinked LLDPE; furthermore, the self-crosslinked LLDPE has lower crosslink density (ν). It was found that alum could not only conduct silane-water crosslinking reaction effectively, but also improve the mechanical properties, especially the elongation behavior. The heat of fusion (ΔHm), the melting temperature (Tm), and the degree of crystallinity (Xc) of the hot water crosslinked LLDPE decreased with the advancement of VTMS. The Avrami exponent n of self-crosslinked sample was larger than that of hot water crosslinked sample. This means that the alum could contribute to the growth of crystallization.


Chifei Wu, Shanghai Key Laboratory Polymeric Materials, Key Laboratory of Ultrafine Materials of Ministry of Education, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, PRC E-mail:

References

Anbarasan, R., Babot, O., Maillard, B., “Crosslinking of High-density Polyethylene in the Presence of Organic Peroxides”, J. Appl. Polym. Sci., 93, 7581 (2004) 10.1002/app.20390Suche in Google Scholar

Avrami, M., “Kinetics of Phase Change: II. Transformation-time Relations for Random Distribution of Nuclei”, J. Chem. Phys., 8(2), 212217 (1940) 10.1063/1.1750631Suche in Google Scholar

Celina, M., George, G. A., “Characterisation and Degradation Studies of Peroxide and Silane Crosslinked Polyethylene”, J. Appl. Polym. Sci., 48, 297312 (1995)Suche in Google Scholar

Dadbin, S., Frounchi, M., Saeid, M. H., Gangi, F., “Molecular Structure and Physical Properties of E-Beam Crosslinked Low Density Polyethylene for Wire and Cable Insulations”, J. Appl. Polym. Sci., 86, 19591969 (2002) 10.1002/app.11111Suche in Google Scholar

Gheysari, D. J., Behjat, A., Haji-Saeid, M., “The Effect of High-energy Electron Beam on Mechanical and Thermal Properties of LDPE and HDPE”, Eur. Polym. J., 37, 295302 (2001) 10.1016/S0014-3057(00)00122-1Suche in Google Scholar

Hlangothi, S. P., Krupa, I., Djokovic, D., Luyt, A. S., “Thermal and Mechanical Properties of Cross-linked and Uncrosslinked Linear Low Density Polyethylene Wax Blends”, Polym. Degrad. Stabil., 79, 5359 (2003) 10.1016/S0141-3910(02)00238-0Suche in Google Scholar

Jeziorny, A., “Parameters Characterizing The Kinetics od the Non-isothermal Crystallization of Poly (ethylene terephthalate) Determined by DSC”, Polymer, 19, 11421144 (1978) 10.1016/0032-3861(78)90060-5Suche in Google Scholar

Khonakdar, H. A., Jafari, S. H., Wagenknecht, U., Jehnichen, D.Effect of Electron-irradiation on Cross-link Density and Crystalline Structure of Low and High Density Polyethylene”, Radiat. Phys. Chem., 75, 7886 (2006) 10.1016/j.radphyschem.2005.05.014Suche in Google Scholar

Khonakdar, H. A., Morshedian, J., Wagenknecht, U., Jafari, S.H., “An Investigation of Chemical Crosslinking Effect on Properties of High Density Polyethylene”, Polymer, 44, 43014309 (2003) 10.1016/S0032-3861(03)00363-XSuche in Google Scholar

Kuan, H. C., Kuan, J. F., Ma, C.-C. M., Huang, J. M., “Thermal and Mechanical Properties of Silane-grafted Water Crosslinked Polyethylene”, J. Appl. Polym. Sci., 96, 23832391 (2005) 10.1002/app.21694Suche in Google Scholar

Scott, H. G., U.S. Patent3646155 (1972)Suche in Google Scholar

Shieh, Y. T., Liu, C., “Silane Grafting of LDPE, HDPE, and LLDPE”, J. Appl. Polym. Sci., 74, 34043411 (1999) 10.1002/(SICI)1097-4628(19991227)74-14<3404::AID-APP14>3.0.CO;2-SSuche in Google Scholar

Sirisinha, K., Chimdist, S., “Silane-crosslinked Ethylene Octene Copolymer Blends”, J. Appl. Polym. Sci., 109, 25222528. (2008) 10.1002/app.28236Suche in Google Scholar

Sirisinha, K., Kamphunthong, W., “Structure Development and Viscoelastic Properties in Silane-crosslinked Ethylene Octene Copolymer”, J. Appl. Polym. Sci., 109, 23472353 (2008) 10.1002/app.28302Suche in Google Scholar

Sirisinha, K., Kamphunthong, W., “Rheological Analysis as a Means for Determining the Silane Crosslink Network Structure and Content in Crosslinked Polymer Composites”, Polym. Test., 28, 636641 (2009) 10.1016/j.polymertesting.2009.05.006Suche in Google Scholar

Sirisinha, K., Kawko, K., “Properties and Characterisation of Filled Poly(propylene) Composites Crosslinked through Siloxane Linkage”, Macromol Mater. Eng., 290, 128135 (2005) 10.1002/mame.200400254Suche in Google Scholar

Received: 2012-6-27
Accepted: 2012-11-20
Published Online: 2013-08-22
Published in Print: 2013-05-01

© 2013, Carl Hanser Verlag, München

Artikel in diesem Heft

  1. Contents
  2. Contents
  3. Review Paper
  4. Recent Research Progress on Polymer Grafted Carbon Black and Its Novel Applications
  5. Regular Contributed Articles
  6. Fabrication of Electrospun Chitosan and Chitosan/Poly(ethylene oxide) Nanofiber Webs and Assessment of Their Antimicrobial Activity
  7. Effect of Nano-Particles on Flow and Recovery of Polymer Nano-Composites in the Melt State
  8. Differential Molding System for Micro Injection Molding of Thermoplastics
  9. The Effect of Shear Strain Amplitude and Loading Cycle on the Horizontal Characteristics of Fiber Reinforced Nanocomposite Elastomeric Seismic Isolators
  10. The Effect of Feeding Method and Compatibilizer on Nanoclay Partitioning and Microfibrillar Morphology Development in PP/PBT/Organoclay Blend Nanocomposite Fibers
  11. Effect of Hot Water and Water-carrying Agent on the Properties of Silane-water Crosslinked Linear Low Density Polyethylene
  12. Preparation and Characterization of Melamine Modified Urea-Formaldehyde Foam
  13. The Role of Organoclay on In-situ Microfibril Formation of Epoxy in Poly(butylene terephtalate) Nanocomposites
  14. Evaluation of Thermo-Mechanical and Wear Behavior of Short Carbon Fibre Vinyl-Ester Filled Homogenous and Their Functionally Graded Composites
  15. Factors Influencing the Warpage in In-Mold Decoration Injection Molded Composites
  16. Preparation and Characterization of CaCO3/High Density Polyethylene Composites with Various Shapes and Size of CaCO3
  17. Development of a Non-uniform Heating System for Micro Hot Embossing
  18. Processing of Thermally Stable Polymer Nanocomposites Reinforced Silicate Nanoparticles Based on N-trimellitylimido-L-phenyl alanine
  19. PPS-News
  20. PPS-News
  21. Seikei Kakou Abstracts
  22. Seikei Kakou Abstracts
Heruntergeladen am 11.10.2025 von https://www.degruyterbrill.com/document/doi/10.3139/217.2672/html?lang=de
Button zum nach oben scrollen