Modeling and Design of Composite Materials for Thermal Management

被引:0
|
作者
Beckert, Michael [1 ]
Nadler, Jason H. [1 ]
DuPre, Chris [1 ]
机构
[1] Georgia Tech Res Inst, Adv Concepts Lab, 925 Dalney St, Atlanta, GA 30318 USA
关键词
homogenization; unit cell; composite; expansion; stress; diamond; epoxy; CONDUCTIVITY;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Composites are attractive as they can be directly tailored for a given thermal management application. While bulk thermal conductivity and coefficient of thermal expansion (CTE) can be measured, the structural and mechanical phenomena that dominate this behavior for a given system are less efficiently described experimentally. In this work, microstructural finite element analysis tools are developed to describe and guide the design of composite material systems. To predict bulk thermal properties of the composite, asymptotic homogenization modeling has been implemented to predict interfacial stress, thermal conductivity, and coefficient of thermal expansion (CTE). Example analyses are presented for a heat-cure epoxy matrix and diamond inclusion material system. The effects of composition, constituent geometry, processing and thermal resistance on bulk properties and local interfaces are described. Additionally, modeled thermal conductivities are compared to measured values obtained using the guarded hot plate method. Model predictions compared favorably to experimental results which supports the use of such models in materials design. Though targeted performance may be based on composite formulation, reliability is dominated by the interfacial integrity among the constituents and the package.
引用
收藏
页码:967 / 970
页数:4
相关论文
共 50 条
  • [31] Flexible composite phase change materials with enhanced thermal conductivity and mechanical performance for thermal management
    Li, Shuang-Zhu
    Zhou, Yi-Cun
    Wang, Lu-Ning
    Wang, Shuai-Peng
    Bai, Lu
    Feng, Chang-Ping
    Bao, Rui-Ying
    Yang, Jie
    Yang, Ming-Bo
    Yang, Wei
    JOURNAL OF MATERIALS CHEMISTRY A, 2023, 11 (35) : 18832 - 18842
  • [32] Design and Manufacturing of Polymer Composite Materials Using Quality Management Methods
    Berladir, K.
    Mitalova, Z.
    Pavlenko, I
    Trojanowska, J.
    Ivanov, V
    Rudenko, P.
    JOURNAL OF ENGINEERING SCIENCES-UKRAINE, 2023, 10 (02): : B16 - B29
  • [33] THERMAL CONDUCTIVITIES OF COMPOSITE MATERIALS
    BEHRENS, E
    JOURNAL OF COMPOSITE MATERIALS, 1968, 2 (01) : 2 - &
  • [34] Modeling and Simulation of Composite Materials
    Behera, Rakesh K.
    Pinisetty, Dinesh
    Luong, Dung D.
    JOM, 2019, 71 (11) : 3949 - 3950
  • [35] MODELING THERMOELASTOPLASTICITY OF COMPOSITE MATERIALS
    Ahmed, Abdalla M.
    Shabana, Yasser M.
    COMPUTATIONAL PLASTICITY XIII: FUNDAMENTALS AND APPLICATIONS, 2015, : 407 - 417
  • [36] Multiscale modeling of composite materials
    N. Chawla
    JOM, 2008, 60 : 38 - 38
  • [37] Multiscale modeling of composite materials
    Chawla, N.
    JOM, 2008, 60 (04) : 38 - 38
  • [38] Modeling and Simulation of Composite Materials
    Rakesh K. Behera
    Dinesh Pinisetty
    Dung D. Luong
    JOM, 2019, 71 : 3949 - 3950
  • [39] THERMAL EXPANSION OF COMPOSITE MATERIALS
    TUMMALA, RR
    FRIEDBER.AL
    JOURNAL OF APPLIED PHYSICS, 1970, 41 (13) : 5104 - &
  • [40] Experimentation and modeling of composite materials
    Daniel, IM
    EXPERIMENTAL MECHANICS, 1999, 39 (01) : 1 - 19