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Design optimization of tank track pad meta-material using the Unit Cell Synthesis Method.

机译:使用单元格合成方法优化坦克履带板超材料。

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摘要

The elastomeric backer pad on the M1 Abrams tank track experiences highly cyclic and dynamic loads during normal operating conditions. As a result, extensive heat is generated within the pad due to its viscoelastic hysteretic nature which leads to its early failure. Research has been carried out in the past at Clemson University to design a meta-material that will mimic the deformation behavior of the elastomeric backer pad but will be made out of a linearly elastic constitutive material to eliminate hysteresis. A meta-material in this context is an artificial material in the form of a periodic structure that exhibits effective properties that differ from its constitutive material. Previous attempts to design a feasible meta-material as an effective replacement to the existing elastomeric backer pad have been unsuccessful. The work carried out in this research therefore, is focused on developing a meta-material that satisfies all the application specific requirements. The meta-material is designed based on the steps prescribed by the Unit Cell Synthesis Method which was developed in previous research. Using this method, a unit cell based periodic meta-material can be designed that exhibits nonlinear deformation behavior by implementing various combinations of different elemental geometries that show geometric nonlinearity under deformation. The idea is to attain a targeted nonlinear deformation response of the meta-material structure by tuning the geometric nonlinearities of one or multiple entities in order to replace the material nonlinearity of the target material. A modification is proposed to the original method to make it more efficient by introducing a multi-objective optimization step that considers all the relevant feasibility criteria concerning the meta-material design. Two unit cell based meta-material concepts are evaluated and a best meta-material design is chosen based on the results obtained from the multi-objective optimization problem. The optimized meta-material is then subjected to dynamic tank wheel roll-over conditions to compare its deformation response with that of the original pad. Finally, conclusions are drawn and scope for future work is discussed.
机译:在正常工作条件下,M1艾布拉姆斯油罐履带上的弹性体衬板承受着很大的周期性和动态载荷。结果,由于其粘弹性滞后特性,在垫内产生大量的热量,这导致其早期失效。过去,克莱姆森大学已经进行了一项研究,以设计一种超材料,该材料将模仿弹性背衬垫的变形行为,但将由线性弹性本构材料制成,以消除滞后现象。在本文中,超常材料是呈周期性结构形式的人造材料,其表现出不同于其构成材料的有效特性。先前尝试设计可行的超常材料作为对现有弹性背衬垫的有效替代者是不成功的。因此,本研究中进行的工作集中于开发满足所有特定应用要求的超常材料。超材料是根据先前研究中开发的单位细胞合成方法规定的步骤设计的。使用这种方法,可以设计基于单位单元的周期性超材料,方法是通过实现在变形下表现出几何非线性的不同元素几何形状的各种组合,来表现出非线性变形行为。这个想法是通过调整一个或多个实体的几何非线性来获得超材料结构的目标非线性变形响应,以代替目标材料的材料非线性。提出了一种对原始方法的修改,以通过引入多目标优化步骤来提高效率,该步骤考虑了有关超材料设计的所有相关可行性标准。评估了两个基于单元格的超材料概念,并根据从多目标优化问题中获得的结果选择了最佳的超材料设计。然后,经过优化的超常材料会经受动态罐轮翻转的条件,以将其变形响应与原始垫的变形响应进行比较。最后,得出结论并讨论了今后的工作范围。

著录项

  • 作者

    Kulkarni, Neehar Milind.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Mechanical engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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