Development of hard materials by radiation curing technology

被引:13
|
作者
Salleh, NG
Gläsel, HJ
Mehnert, R
机构
[1] Malaysian Inst Nucl Technol Res, Bangi 43000, Kajang, Malaysia
[2] Inst Oberflachenmodifizierung eV, D-04318 Leipzig, Germany
关键词
radiation curing technology; nanocomposites;
D O I
10.1016/S0969-806X(01)00542-4
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
For studying nanoglobular modification effects in radiation cured polymeric composites, we prepared polymerization active silico-organic nanoparticles. With their polymerization active ligands, these nanoparticles form crosslinks by modifying the viscoelastic properties in radiation cured polymeric nanocomposites. In this process, there was a polymerization activity imparted to the particle surfaces of nanopowders, thus applying the physico-chemical modification scheme of a heterogeneous copolymerization to novel scratch and abrasion resistant coatings. By varying the nanoparticle-monomer formulation and the curing method, additional property can be achieved. In this works, we also investigated the influence of various factors such as addition of photoinitiators and other additives into the formulations. The coating materials were applied to the substrate by using different type of coaters. These materials were cured by ultraviolet light and electron beam irradiation. Properties of coatings were characterized using Universal scratch tester and Taber abrasion tester. (C) 2002 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:475 / 479
页数:5
相关论文
共 50 条
  • [21] HIGH-PRESSURE TECHNOLOGY FOR HARD MATERIALS
    SAWAOKA, A
    AMERICAN CERAMIC SOCIETY BULLETIN, 1982, 61 (09): : 948 - 948
  • [22] New developments of the technology for hard (tool) materials
    Matsubara, Hideaki
    Funtai Oyobi Fummatsu Yakin/Journal of the Japan Society of Powder and Powder Metallurgy, 2021, 68 (02):
  • [23] Radiation hard ceramic RPC development
    Akindinov, A.
    Dreyer, J.
    Fan, X.
    Kaempfer, B.
    Kiselev, S.
    Kotte, R.
    Garcia, A. Laso
    Malkevich, D.
    Naumann, L.
    Nedosekin, A.
    Plotnikov, V.
    Stach, D.
    Sultanov, R.
    Voloshin, K.
    INTERNATIONAL CONFERENCE ON PARTICLE PHYSICS AND ASTROPHYSICS, 2017, 798
  • [24] RAPID DEVELOPMENT IN HARD CASTING TECHNOLOGY
    ERICSSON, C
    JKA-JERNKONTORETS ANNALER, 1982, 166 (03): : 49 - 49
  • [25] Photolatent tertiary amines - A new technology platform for radiation curing
    Dietliker, Kurt
    Jung, Tunja
    Studer, Katia
    Benkhoff, Johannes
    CHIMIA, 2007, 61 (10) : 655 - 660
  • [26] Development of Radiation-hard Bandgap Reference and Temperature Sensor in CMOS 130 nm Technology
    Kuczynska, Marika
    Gozdur, Sabina
    Bugiel, Szymon
    Firlej, Miroslaw
    Fiutowski, Tomasz
    Idzik, Marek
    Michelis, Stefano
    Moron, Jakub
    Przyborowski, Dominik
    Swientek, Krzysztof
    2015 22ND INTERNATIONAL CONFERENCE MIXED DESIGN OF INTEGRATED CIRCUITS & SYSTEMS (MIXDES), 2015, : 324 - 329
  • [27] Joining of synthetic materials: Adhesive curing through vibration technology
    Menacher, Markus
    Drummer, Dietmar
    Adhaesion Kleben und Dichten, 2011, (12): : 42 - 46
  • [28] Development of crystalline polymer hard elatic materials (3). Mechanisms of hard elastic materials
    Xu, Youyi
    Xu, Changhui
    Xie, Boming
    Wang, Hongjun
    Gongneng Cailiao/Journal of Functional Materials, 1996, 27 (01): : 28 - 31
  • [29] Tracing the technology development and trends of hard carbon anode materials- A market and patent analysis
    Liu, Huiting
    Baumann, Manuel
    Dou, Xinwei
    Klemens, Julian
    Schneider, Luca
    Wurba, Ann-Kathrin
    Haeringer, Marcel
    Scharfer, Phillip
    Ehrenberg, Helmut
    Schabel, Wilhelm
    Fleischer, Juergen
    von der Assen, Niklas
    Weil, Marcel
    JOURNAL OF ENERGY STORAGE, 2022, 56
  • [30] Radiation Hard Sensor Materials for the CMS Tracker Upgrade
    Bergholz, Matthias
    2011 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (NSS/MIC), 2011, : 118 - 121