In-plane compression behavior of FDM-manufactured hierarchical and hybrid hierarchical hexagonal honeycombs for infrastructural safety applications

A. Mishra, Arvind Kumar
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引用次数: 4

Abstract

The infrastructure safety and response to the natural or man-caused calamities has always been a top consideration for any modern project. Impact energy absorption is one such area where advanced measures are being adopted to prevent any damage to the infrastructure from any impact caused by vehicles or other elements. Honeycomb structures have been primarily used in such high impact energy absorption applications. With the advent of modern additive manufacturing practices, drastic modifications to the simple honeycombs generally used are possible, thus expanding the reach and capability of these structures. In this article, in-plane uniaxial compression performance of hybrid and hierarchical hexagonal honeycombs has been studied in the context of strain energy absorption for in-plane impact such as the case of vehicle collision to the pillars of flyover or bridges. The polylactic acid (PLA) filament has been used to manufacture the honeycombs through fused deposition modeling (FDM) additive manufacturing technique. Simple hexagonal honeycombs have been studied first at low deformation speed to understand the deformation mechanics under uniaxial compression and its dependence on the unit cell dimensions and cell wall thickness. The effect of transition to the hybrid and hierarchical hexagonal honeycombs on the compression deformation has been highlighted next. While the hierarchical structures show better energy absorption capabilities and plateau stress, the hybrid hexagonal honeycombs show their high loadresistance. Dependence of the mechanical performance of such structures on the unit cell dimensions, orientation and wall thickness has also been examined through detailed experimental analysis.
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用于基础设施安全的fdm制造的分层和混合分层六边形蜂窝的面内压缩特性
基础设施的安全性和对自然或人为灾害的响应一直是任何现代项目的首要考虑因素。冲击能量吸收就是这样一个正在采取先进措施的领域,以防止车辆或其他因素造成的任何影响对基础设施造成损害。蜂窝结构主要用于这种高冲击能量吸收应用。随着现代增材制造实践的出现,对通常使用的简单蜂窝进行剧烈修改是可能的,从而扩大了这些结构的范围和能力。本文研究了混合层叠式六边形蜂窝的面内单轴压缩性能,研究了车辆撞击立交桥或桥梁柱等面内冲击时的应变能吸收问题。采用熔融沉积建模(FDM)增材制造技术,将聚乳酸(PLA)长丝用于蜂窝材料的制造。本文首先对简单六边形蜂窝进行了低变形速度的研究,以了解其在单轴压缩下的变形力学及其与单元胞尺寸和胞壁厚度的关系。然后重点讨论了过渡到混合和分层六边形蜂窝对压缩变形的影响。混合六边形蜂窝具有较高的抗载性能,而分层结构具有较好的吸能能力和高原应力。通过详细的实验分析,研究了这种结构的力学性能与单元胞的尺寸、取向和壁厚的关系。
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