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Comparative Study of Optimization Techniques in Sizing Mesostructures for Use in NonPneumatic Tires

机译:非充气轮胎定型细观结构优化技术的比较研究

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This paper presents a comparative study on the size optimization of four mesostructures to meet the design requirements for a nonpneumatic tire's (NPT) shear beam with 10% shear flexure (SF) at 10MPa effective shear modulus. The need for such comparison is motivated from the previous research wherein a systematic design method is proposed to design a mesostructure with high SF by studying the strain energy distribution pattern in honeycomb, auxetic, and sinusoidal auxetic mesostructure. Based upon the distribution pattern, a new type of mesostructure termed S-type is invented. Although it exhibited higher SF than the other mesostructures for a comparable set of geometry, it is not possible to validate the design method without exploring the complete design space of both existing and newly invented mesostructures. In order to address this limitation, these four mesostructures are optimized using the following optimization algorithms: (ⅰ) particle swarm; (ⅱ) genetic algorithm (GA); and (ⅲ) FAST-SIMPLEX (using response surface method). The results show the S-type mesostructure can be configured to meet the design requirements, thereby validating the design method presented in previous research. Additionally, it is also observed that auxetic mesostructure is only 5% less than the required design target, which presents an opportunity in future, to develop an alternate design method to maximize SF other than the one that is being validated in this paper.
机译:本文对四种介孔结构的尺寸优化进行了比较研究,以满足在10MPa有效剪切模量下具有10%剪切挠曲(SF)的非充气轮胎(NPT)剪切梁的设计要求。这种比较的需要是从先前的研究中激发出来的,在先前的研究中,提出了一种系统的设计方法,通过研究蜂窝状,膨胀型和正弦形膨胀型介观结构中的应变能分布模式来设计具有高SF的介孔结构。基于分布模式,发明了一种新型的介孔结构,称为S型。尽管对于一组可比较的几何体,它显示出比其他介观结构更高的SF,但如果不探索现有和新发明的介观结构的完整设计空间,就无法验证设计方法。为了解决此限制,使用以下优化算法对这四个介观结构进行了优化:(ⅰ)粒子群; (ⅱ)遗传算法(GA); (ⅲ)FAST-SIMPLEX(使用响应面法)。结果表明,S型介观结构可以满足设计要求,从而验证了先前研究中提出的设计方法。此外,还观察到,膨胀型介观结构仅比所需的设计目标小5%,这为将来提供了开发替代设计方法以最大化SF的机会,而本文所验证的方法除外。

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