Self-heating of a polymeric particulate composite under mechanical excitations

被引:12
|
作者
Shou, Zhenyu [1 ]
Chen, Fangliang [1 ]
Yin, Huiming [1 ]
机构
[1] Columbia Univ, Dept Civil Engn & Engn Mech, 610 Seeley W Mudd,500 West 120th St, New York, NY 10027 USA
关键词
Particulate composite; Vibration; Self-heating; Time-temperature superposition principle; Master curve; Timoshenko beam theory; DYNAMIC PROPERTIES; VISCOELASTIC CHARACTERIZATION; THERMAL-CONDUCTIVITY; INCLUSIONS; BEHAVIOR; STRESS; SIZE;
D O I
10.1016/j.mechmat.2017.11.003
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A theoretical thermo-viscoelastic model is developed to predict the mechanical and thermal response of a particulate composite beam subject to externally applied excitations. The effective viscoelastic material behavior of a polymeric particulate composite is obtained from the micromechanics-based modeling with the properties of the individual material phases and corresponding volume fractions. The thermo-mechanical response of a particulate composite beam consisting of a viscoelastic polymeric matrix and elastic aluminum particles is modeled under near-resonant excitations through a first-order shear deformable beam theory. To validate the model, particulate composite beams with a 30% volume fraction of the aluminum particles embedded in polydimethylsiloxane matrix were fabricated, and the self-heating behavior of the composite at near-resonant excitation was then investigated. The overall temperature rise at different locations of the composite predicted by the present model agrees well with the experimental measurement. This work provides a very useful platform for the design and development of new energetic materials under a certain loading environment. The present model can also be applied to more general particulate composite materials with different geometries consisting of different particle fillers and polymer matrices.
引用
收藏
页码:116 / 125
页数:10
相关论文
共 50 条
  • [21] FATIGUE OF POLYMERIC COMPOSITES DURING STATIONARY AND NON-STATIONARY SELF-HEATING
    Katunin, Andrzej
    COMPOSITES THEORY AND PRACTICE, 2018, 18 (01): : 19 - 24
  • [22] Minimizing self-heating based fatigue degradation in polymeric composites by air cooling
    Katunin, Andrzej
    Wachla, Dominik
    25TH INTERNATIONAL CONFERENCE ON FRACTURE AND STRUCTURAL INTEGRITY, 2019, 18 : 20 - 27
  • [23] Analysis of defect detectability in polymeric composites using self-heating based vibrothermography
    Katunin, Andrzej
    Wachla, Dominik
    COMPOSITE STRUCTURES, 2018, 201 : 760 - 765
  • [24] STATIONARY SELF-HEATING OF THE CIRCULAR AND ANNULAR COMPOSITE PLATES HINGED ON THE BOUNDARY UNDER AXISYMMETRIC CYCLIC LOADING
    Katunin, Andrzej
    ADVANCED COMPOSITES LETTERS, 2011, 20 (05) : 121 - 125
  • [25] STABILITY OF INTENSIVE OPTICAL-EMISSION UNDER SELF-HEATING
    GOCHELASHVILI, KS
    PROKHOROV, AM
    STARODUMOV, AN
    IZVESTIYA AKADEMII NAUK SSSR SERIYA FIZICHESKAYA, 1988, 52 (02): : 403 - 406
  • [26] The optimal bias current of microbolometer under self-heating effect
    Chen, Chao
    Zhang, Long
    Jiang, Ya Dong
    Wang, Tao
    2014 6TH INTERNATIONAL CONFERENCE ON COMPUTATIONAL INTELLIGENCE AND COMMUNICATION NETWORKS, 2014, : 116 - 121
  • [27] Prediction of GFRP Self-Heating Kinetics Under Cyclic Bending
    Ignatova, A. V.
    Bezmelnitsyn, A. V.
    Olivenko, N. A.
    Kudryavtsev, O. A.
    Sapozhnikov, S. B.
    Shavshina, A. D.
    MECHANICS OF COMPOSITE MATERIALS, 2023, 58 (6) : 787 - 802
  • [28] Prediction of GFRP Self-Heating Kinetics Under Cyclic Bending
    A. V. Ignatova
    A. V. Bezmelnitsyn
    N. A. Olivenko
    O. A. Kudryavtsev
    S. B. Sapozhnikov
    A. D. Shavshina
    Mechanics of Composite Materials, 2023, 58 : 787 - 802
  • [29] Viscoelastic Characterization and Self-Heating Behavior of a Flexible Matrix Composite Driveshaft
    Shan, Y.
    Bakis, C. E.
    JOURNAL OF COMPOSITE MATERIALS, 2009, 43 (12) : 1335 - 1360
  • [30] Viscoelastic characterization and self-heating behavior of laminated fiber composite driveshafts
    Henry, Todd C.
    Bakis, Charles E.
    Smith, Edward C.
    MATERIALS & DESIGN, 2015, 66 : 346 - 355