Geometrically nonlinear dynamic analysis of organic solar cell resting on Winkler-Pasternak elastic foundation under thermal environment

被引:31
作者
Li, Qingya [1 ]
Wang, Qihan [1 ]
Wu, Di [1 ]
Chen, Xiaojun [1 ]
Yu, Yuguo [1 ]
Gao, Wei [1 ]
机构
[1] Univ New South Wales, Sch Civil & Environm Engn, CIES, Sydney, NSW 2052, Australia
基金
澳大利亚研究理事会;
关键词
Organic solar cell; Nonlinear vibration; Nonlinear dynamic response; Elastic foundation; Thermal environment; Damping effect; POLYMER NANOCOMPOSITES; VIBRATION; REINFORCEMENT; INSIGHTS; SENSORS; IMPACT; PLATES;
D O I
10.1016/j.compositesb.2018.11.022
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The nonlinear dynamic responses of a nanocomposite organic solar cell (NCOSC) are developed through the classical plate theory. The investigated NCOSC consists of five layers which are including Al, P3HT: PCBM, PEDOT: PSS, IOT and glass. A uniformly distributed external excitation is exerted on the simply supported NCOSC. The impacts of the Winkler-Pastemak elastic foundation, thermal environment and damping on the nonlinear dynamic responses of the NCOSC are investigated. The equations of motion and geometric compatibility of the NCOSC with the consideration of the von Karman nonlinearity are derived. The governing equation of the dynamic system is formulated by employing the Galerkin and the fourth-order Runge-Kutta methods. Several numerical experiments are thoroughly presented to report the effects of damping ratio, temperature variations, and elastic foundation parameters on the frequency amplitude curves and nonlinear dynamic response of the NCOSC. The numerical studies indicate that the existence of the Winkler-Pasternak elastic foundation effectively reduces the dynamic response of the NCOSC. In addition, the damping and thermal variation depress the vibration of the NCOSC but with relatively less efficiency compared with the Winkler- Pasternak elastic foundation.
引用
收藏
页码:121 / 129
页数:9
相关论文
共 38 条
  • [1] Scaling of micro- and nanodevices actuated by Casimir forces -: art. no. 263106
    Bárcenas, J
    Reyes, L
    Esquivel-Sirvent, R
    [J]. APPLIED PHYSICS LETTERS, 2005, 87 (26) : 1 - 3
  • [2] Low band gap polymers for organic photovoltaics
    Bundgaard, Eva
    Krebs, Frederik C.
    [J]. SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2007, 91 (11) : 954 - 985
  • [3] Cong PH, 2018, ACTA MECH, P1
  • [4] Filler Size Effects on Reinforcement in Elastomer-Based Nanocomposites: Experimental and Simulational Insights into Physical Mechanisms
    Davris, Theodoros
    Mermet-Guyennet, Marius R. B.
    Bonn, Daniel
    Lyulin, Alexey V.
    [J]. MACROMOLECULES, 2016, 49 (18) : 7077 - 7087
  • [5] Garcés JM, 2000, ADV MATER, V12, P1835, DOI 10.1002/1521-4095(200012)12:23<1835::AID-ADMA1835>3.0.CO
  • [6] 2-T
  • [7] Morphology of polymer/fullerene bulk heterojunction solar cells
    Hoppe, H
    Sariciftci, NS
    [J]. JOURNAL OF MATERIALS CHEMISTRY, 2006, 16 (01) : 45 - 61
  • [8] Thermal conductivity of polymers and polymer nanocomposites
    Huang, Congliang
    Qian, Xin
    Yang, Ronggui
    [J]. MATERIALS SCIENCE & ENGINEERING R-REPORTS, 2018, 132 : 1 - 22
  • [9] Graphene/polymer nanocomposites: The active role of the matrix in stiffening mechanics
    Hussein, Abdelrahman
    Kim, Byungki
    [J]. COMPOSITE STRUCTURES, 2018, 202 : 170 - 181
  • [10] High efficiency small molecule-based donor materials for organic solar cells
    Ilmi, Rashid
    Haque, Ashanul
    Khan, M. S.
    [J]. ORGANIC ELECTRONICS, 2018, 58 : 53 - 62