scholarly journals Effect of steam conversion on the cellular structure, Young’s modulus and negative Poisson’s ratio of closed-cell foam

2020 ◽  
Vol 30 (1) ◽  
pp. 015031
Author(s):  
Olly Duncan ◽  
Tom Allen ◽  
Alana Birch ◽  
Leon Foster ◽  
John Hart ◽  
...  
2020 ◽  
Vol 37 (5) ◽  
pp. 1805-1822
Author(s):  
Jiao Jia ◽  
Jianxing Hu ◽  
Yongbin Wang ◽  
Shiqing Wu ◽  
Kai Long

Purpose Negative Poisson’s ratio (NPR) material has huge potential applications in various industrial fields. However, lower Young’s modulus due to the porous form limits its further applications. Based on the topology optimization technique, this paper aims to optimize the structure consisting two isotropic porous materials with positive Poisson’s ratio (PPR) and NPR and void. Design/methodology/approach Under prescribed dual-volume fraction constraints, the structural compliance is taken as the objective. Young’s modulus and Poisson’s ratio are, respectively, interpolated and expressed with Lamé’s parameters for easier programming. Accordingly, the sensitivities can be derived through the chain rule. Several two- and three-dimensional illustrative examples are presented to demonstrate the capability and effectiveness of the proposed approach. The influences of Poisson’s ratios, volume fractions and Young’s moduli on the optimized results are investigated. Findings For NPR materials having unique load responses, the resulting topologies of PPR and NPR materials have distinct material distributions in comparison of the results from two PPR materials. Furthermore, it is observed that higher structural stiffness can be achieved from the hybrid of PPR and NPR materials than that obtained from the structures made of individual constituent materials. Originality/value A topology optimization methodology is proposed to design structures composed of PPR and NPR materials.


2011 ◽  
Vol 228-229 ◽  
pp. 169-173 ◽  
Author(s):  
Wen Jun Dong ◽  
Qin Sun

This paper investigates an unconventional honeycomb cellular structure featuring a negative Poisson’s ratio with the ability to undergo large overall displacements with limited straining of its solid material in the spanwise direction. Numerical analyses are performed to exploit such properties in the design of a morphing airfoil. The commercial simulation software ANSYS is used to carry on these processes. The cellular structure is designed to satisfy the requirements of configuration changing occurred while wing morphing. Finally, detailed numerical models of the structures are presented as a possible approach to evaluate the stress distribution of the structure. According to simulation results, the airfoil designed in this paper has the property of negative Poisson’s ratio, which is useful to the morphing wing aircraft design.


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