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Static stiffness characteristics of a new non-pneumatic tire with different hinge structure and distribution

机译:具有不同铰链结构和分布的新型非充气轮胎的静态刚度特性

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摘要

To eliminate the potential risk factors of the conventional inflatable tire, a creative non-pneumatic tire named "ME-wheel" was developed. Based on the analysis of the bearing characteristics, four types of ME-wheel with varying hinge structures and distributions were designed. The static stiffness characteristics of these four ME-wheels were investigated by numerical simulations and experiments. The hyperelasticity and incompressibility of the rubber material were described by the Mooney-Rivlin model, and the multilayer rubber-cord composites were modeled by the rebar layer. The nonlinear finite element model of the ME-wheel, which included nonlinear property of the material, contact condition, and anisotropy of rubber-cord composites, was validated by the load characteristic test. Stiffness characteristic tests of these four types of ME-wheel and a pneumatic tire, including vertical, longitudinal, lateral, and torsional stiffness, were carried out using a low speed flatbed test bench. A sufficient comparison and analysis were made between the experimental data and simulation data. The research results provided some theoretical and technical verification on the performance and structural optimization of the ME-wheel.
机译:为了消除传统充气轮胎的潜在风险因素,开发了一种名为“Me-Wheel”的创造性非充气轮胎。基于对轴承特性的分析,设计了四种具有不同铰链结构和分布的ME-叶轮。通过数值模拟和实验研究了这四个ME轮的静态刚度特征。 Mooney-Rivlin模型描述了橡胶材料的高弹性和不可压制性,并且通过钢筋层模拟多层橡胶帘线复合材料。由载荷特性试验验证了Me-uheel的非线性有限元模型,包括材料,接触条件和橡胶帘线复合材料各向异性的非线性性能。使用低速平板测试台进行这四种Me-Theel和气动轮胎的刚度特性测试,包括垂直,纵向,横向和扭转刚度。在实验数据和模拟数据之间进行了足够的比较和分析。研究结果提供了对Me-Wheel的性能和结构优化的一些理论和技术验证。

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