Assessment Of The Effect Of Negative Poisson'S Ratio On The Thermal Postbuckling Of Temperature Dependent Fg-Grmmc Laminated Cylindrical Shells

COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING(2021)

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摘要
Auxetic materials have recently emerged as new types of advanced materials with unique material properties that conventional materials do not possess. In this paper, we examine the effect of in-plane negative Poisson's ratio (NPR) on the thermal postbuckling behavior of graphene-reinforced metal matrix composite (GRMMC) laminated cylindrical shells. The shell consists of GRMMC layers arranged in a piece-wise functionally graded (FG) pattern and is subjected to a uniform thermal load surrounded by an elastic medium. Based on the molecular dynamics simulation results, it is noted that the temperature-dependent material properties of GRMMCs can be expressed as a nonlinear function of temperature. The thermal postbuckling problem of shells is modeled under the framework of the Reddy's third order shear deformation theory and solved by using a singular perturbation technique in conjunction with a two-step perturbation approach. Numerical investigations are carried out for the postbuckling of (10/-10/10/-10/10)(S) and (10/-10/10)(S) shells with in-plane NPR. It is found that the FG-X pattern can enhance the buckling temperature and the thermal postbuckling strength of the shells. The anomaly is that the thermal buckling load and postbuckling strength of UD (10/-10/10)(S) shell are slightly higher than those of UD (10/-10/10/-10/10)(S) GRMMC laminated cylindrical shell. (C) 2020 Elsevier B.V. All rights reserved.
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关键词
Auxetic materials, Temperature-dependent, Functionally graded, Elastic foundation
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