首页> 外文会议>TMS annual meeting exhibition;Symposium on characterization of minerals, metals, and materials >COMPARATIVE STUDIES OF CRUSHING BEHAVIOR OF VARIOUS FIBER REINFORCED SKIN POLYURETHANE FOAM CORED COMPOSITE SANDWICH STRUCTURES
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COMPARATIVE STUDIES OF CRUSHING BEHAVIOR OF VARIOUS FIBER REINFORCED SKIN POLYURETHANE FOAM CORED COMPOSITE SANDWICH STRUCTURES

机译:各种纤维增强皮肤聚氨酯泡沫泡沫复合夹芯结构的破碎性能比较研究

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The conventional fiber reinforced plastic does not participate in the plastic deformation or enter the large plastic deformation state during collision. On the other hand, sandwich structure allows more plastic deformation, which improves the energy absorption efficiency. The objective of this study is focused on the investigation of the crushing of sandwich structure made from sisal / coir / bamboo/ glass fabrics as reinforcement and with polyester resin to form the composites skin and with polyurethane foam as the core. Experiments were conducted, showing that the underlying crushing mechanism of sandwich structures is very different from that of solid-section thin-walled structures. When a sandwich is subjected to crushing, the core deforms in the shear mode and the face bends independently. The damage is through the width zone of crushed foam core accompanied by a residual crushing in the foam. It is shown that such damage causes a significant reduction of compressive strength. Results show that glass/polyester and bamboo/polyester skin based sandwich structures have superior compressive strength. Coir /polyester based sandwich structure come next to glass/polyester sandwich structures in mis aspect which is then followed by Sisal /polyester based sandwich structures.
机译:常规的纤维增强塑料在碰撞过程中不参与塑性变形或进入大的塑性变形状态。另一方面,夹层结构允许更大的塑性变形,从而提高了能量吸收效率。这项研究的目的是研究以剑麻/椰壳纤维/竹纤维/玻璃纤维为增强材料,以聚酯树脂制成复合表皮,以聚氨酯泡沫为芯的夹心结构的破碎研究。实验表明,夹层结构的潜在破碎机理与实心截面薄壁结构的破碎机理大不相同。当三明治受到压碎时,芯部会在剪切模式下变形,并且面会独立弯曲。损坏是通过压碎的泡沫芯的宽度区域,并伴随着泡沫中残留的压碎。结果表明,这种破坏导致抗压强度的显着降低。结果表明,基于玻璃/聚酯和竹/聚酯皮肤的三明治结构具有优异的抗压强度。在某些方面,基于椰壳纤维/聚酯的夹心结构紧随玻璃/聚酯纤维夹心结构,然后是基于剑麻/聚酯纤维的夹心结构。

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