Metal-Filled Epoxy Composites: Mechanical Properties and Electrical/Thermal Conductivity

被引:26
|
作者
Misiura, A., I [1 ]
Mamunya, Ye P. [2 ]
Kulish, M. P. [1 ]
机构
[1] Taras Shevchenko Natl Univ Kyiv, Phys Fac, Kiev, Ukraine
[2] Natl Acad Sci Ukraine, Inst Macromol Chem, Kiev, Ukraine
来源
关键词
Electrical conductivity; epoxy-metal composites; immobilized polymer layer; mechanical properties; mechanical loss; polymer composites; thermal conductivity; EFFECTIVE THERMAL-CONDUCTIVITY; PERCOLATION-THRESHOLD; POLYMERS; POLYSTYRENE; NANOWIRES; SHAPE;
D O I
10.1080/00222348.2019.1695820
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The mechanical properties and the electrical and thermal conductivity of composites based on an epoxy polymer (EP) filled with dispersed copper (Cu) and nickel (Ni) were studied. It was shown that the electrical conductivity of the composites demonstrated percolation behavior with the values of the percolation threshold being 9.9 and 4.0 vol.% for the EP-Cu and EP-Ni composites, respectively. Using the Lichtenecker model, the thermal conductivity of the dispersed metal phase in the composites, lambda(f), was estimated as being 35 W/mK for Cu powder and 13 W/mK for Ni powder. It was shown that introduction of the filler in EP led to a decrease in the intensity of the mechanical loss tangent (tan delta) peak that was caused by the existence of an immobilized polymer layer around the filler particles which did not contribute to mechanical losses. Using several models the thickness of this layer, Delta R, was estimated. The concept of an "excluded volume" of the polymer, V-ex, i.e. the volume of the immobilized polymer layer, which does not depend on the particle size and is determined solely by the value of the interaction parameter, B, was proposed.
引用
下载
收藏
页码:121 / 136
页数:16
相关论文
共 50 条
  • [11] THERMAL-CONDUCTIVITY OF FILLED EPOXY COMPOSITES
    USTJUSHANIN, EE
    CRYOGENICS, 1991, 31 (04) : 241 - 243
  • [12] REVIEW ON METAL-FILLED PLASTICS .1. ELECTRICAL-CONDUCTIVITY
    BHATTACHARYA, SK
    CHAKLADER, ACD
    POLYMER-PLASTICS TECHNOLOGY AND ENGINEERING, 1982, 19 (01) : 21 - 51
  • [13] MECHANICAL, THERMAL, AND ELECTRICAL-PROPERTIES OF METAL FIBER-FILLED POLYMER COMPOSITES
    BIGG, DM
    POLYMER ENGINEERING AND SCIENCE, 1979, 19 (16): : 1188 - 1192
  • [14] Structure-dependent conductivity and microhardness of metal-filled PVC composites
    Mamunya, YP
    Privalko, EG
    Lebedev, EV
    Privalko, VP
    Calleja, FJB
    Pissis, P
    MACROMOLECULAR SYMPOSIA, 2001, 169 : 297 - 306
  • [15] Mechanical properties and thermal conductivity of graphene nanoplatelet/epoxy composites
    Wang, Fuzhong
    Drzal, Lawrence T.
    Qin, Yan
    Huang, Zhixiong
    JOURNAL OF MATERIALS SCIENCE, 2015, 50 (03) : 1082 - 1093
  • [16] Mechanical properties and thermal conductivity of graphene nanoplatelet/epoxy composites
    Fuzhong Wang
    Lawrence T. Drzal
    Yan Qin
    Zhixiong Huang
    Journal of Materials Science, 2015, 50 : 1082 - 1093
  • [17] Electrical Conductivity of Fabric Based Filled Epoxy Composites
    Circiumaru, Adrian
    Andrei, Gabriel
    Birsan, Iulian-Gabriel
    Semenescu, Augustin
    MATERIALE PLASTICE, 2009, 46 (02) : 211 - 214
  • [18] Thermal, Electrical and Physical Properties of Recycled Copper Filled Epoxy Composites
    Pargi, M. N. F.
    Teh, P. L.
    Salmah, H.
    Yeoh, C. K.
    ADVANCED X-RAY CHARACTERIZATION TECHNIQUES, 2013, 620 : 208 - 212
  • [19] EXPERIMENTAL METAL-FILLED RESIN COMPOSITES
    BOWEN, RL
    CHANDLER, HH
    JOURNAL OF DENTAL RESEARCH, 1973, 52 : 66 - +
  • [20] Structure and percolation properties of metal-filled film polymer composites
    Vysotskii, VV
    Roldugin, VI
    COLLOID JOURNAL, 1996, 58 (03) : 296 - 302