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The Development of a New Shock Absorbing Uniaxial Graded Auxetic Damper (UGAD)

机译:新型减震单轴缓动阻尼器(UGAD)的开发

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摘要

Auxetic structures are efficient cellular materials that can absorb blast/impact energy through plastic deformation, thus protecting the structure. They are developing sacrificial solutions with light weight, high specific strength, high specific toughness and excellent energy dissipating properties, due to its negative Poison’s ratio nature. The use of auxetic and non-auxetic panels in blast resistant structures had been relatively perceived by researchers. Nonetheless, implementation of those energy dissipaters, explicitly as a uni-axial passive damper is restrained to limited studies, which highlight the potential need for further explorations. The aim of this paper is the design of a new uniaxial graded auxetic damper (UGAD) that can be used as a blast/impact/shock absorber in different scales for different structural applications. First, the geometry, material, numerical model and loading are introduced. Then, a detailed parametric study is conducted to achieve the most efficient graded auxetic system. Moreover, the designed auxetic damper is numerically tested and its static and dynamic constitutive relations are derived and validated analytically. The selection of optimum parameters was based on the ratio of the reaction force to the applied load (RFd/P) and plastic dissipation energy (PDE). The final designed UGAD contains three auxetic cores that have the same geometry, material grade (6063-T4), size and number of layers equal to eight. The cell-wall thickness >t of the three auxetic cores is 1.4 mm, 1.8 mm and 2.2 mm, respectively; composing a graded auxetic system. The performance of the three auxetic cores together have led to a wide plateau region (80% of total crushing strain) and variant strength range (1–10 MPa), which in return, can justify the superior performance of the UGAD under different blast levels. Finally, the 3D printed prototype of the UGAD is presented and the possible applications are covered.
机译:辅助结构是有效的多孔材料,可以通过塑性变形吸收爆炸/冲击能量,从而保护结构。他们正在开发一种牺牲解决方案,该解决方案具有负毒性比的性质,因此具有重量轻,比强度高,比韧性高以及出色的耗能特性。研究人员相对感觉到在防爆结构中使用了平流和非平流板。尽管如此,那些耗能器的实现,明确地作为单轴无源阻尼器,仍然受到有限的研究限制,这突出表明了进一步探索的潜在需求。本文的目的是设计一种新型的单轴渐变型减震器(UGAD),该减震器可在不同规模上用作不同结构应用的冲击/冲击/冲击吸收器。首先,介绍了几何形状,材料,数值模型和载荷。然后,进行了详细的参数研究,以实现最有效的渐变式声学系统。此外,对设计的膨胀阻尼器进行了数值测试,并推导了其静态和动态本构关系并进行了分析验证。最佳参数的选择是基于反作用力与施加载荷的比值(RFd / P)和塑性耗散能(PDE)。最终设计的UGAD包含三个几何形状,材料等级(6063-T4),大小和层数等于8的膨胀环。三个膨胀芯的孔壁厚度> t 分别为1.4 mm,1.8 mm和2.2 mm;组成一个分级的发胀系统。三个膨胀核心的性能共同导致了一个宽平台区(占总破碎应变的80%)和不同的强度范围(1-10 MPa),这反过来可以证明UGAD在不同爆炸水平下的优越性能。最后,展示了UGAD的3D打印原型,并介绍了可能的应用。

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