首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Innovative concepts for the usage of veneer-based hybrid materials in vehicle structures
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Innovative concepts for the usage of veneer-based hybrid materials in vehicle structures

机译:车辆结构中基于单板式混合材料的创新概念

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摘要

A promising approach for the development of sustainable and resource-saving alternatives to conventional material solutions in vehicle structures is the use of renewable raw materials. One group of materials that has particular potential for this application is wood. The specific material properties of wood in the longitudinal fiber direction are comparable to typical construction materials such as steel or aluminum. Due to its comparatively low density, there is a very high lightweight construction potential especially for bending load cases. Structural components of the vehicle body are exposed to very high mechanical loads in the case of crash impact. Depending on the component under consideration, energy has to be absorbed and the structural integrity of the body has to be ensured in order to protect the occupants. The use of natural materials such as wood poses particular challenges for such applications. The material characteristics of wood are dispersed, and depend on environmental factors such as humidity. The aim of the following considerations was to develop a material system to ensure the functional reliability of the component. The test boundary conditions for validation also play a key role in this context. The potential of wood–steel hybrid design based on laminated veneer lumber and steel was investigated for use in a component subjected to crash loads such as the door impact beam. The chosen solution involves a separation of functions. A laminated veneer lumber-based beam was hybridized with a steel strip on the tension side. The steel strip was designed to compensate the comparatively low elongation at fracture of the wood and to ensure the integrity of the beam. The wooden component was designed for high energy absorption due to delamination and controlled failure during the impact, while maintaining the surface moment of inertia, i.e. the bending stiffness of the entire component. This approach was chosen to ensure the functional safety of the component, avoid sudden component failure and utilize the high potential of both materials. The tests carried out provided initial functional proof of the chosen solution. The hybridization achieved significantly higher deformations without sudden failure of the beam. In addition, bending capabilities were increased significantly compared to a beam without hybridization. In comparison with a state-of-the-art steel beam, the hybrid beam was not able to achieve the maximum deformation and the target weight of the hybrid beam. Further optimization of the hybrid beam is therefore necessary.
机译:在车辆结构中开发可持续和资源节约替代品的有希望的方法是使用可再生原料。该应用的特定潜力的一组材料是木材。木材在纵向纤维方向上的具体材料特性与钢或铝等典型结构材料相当。由于其相对低密度,具有非常高的轻质结构潜力,特别是对于弯曲载荷盒。在碰撞冲击的情况下,车身的结构部件暴露于非常高的机械负载。根据所考虑的部件,必须吸收能量,并且必须确保身体的结构完整性以保护乘员。使用木材等天然材料对这种应用构成了特别的挑战。木材的材料特性分散,并取决于湿度等环境因素。以下考虑的目的是开发一种材料系统,以确保组件的功能可靠性。验证的测试边界条件也在此上下文中发挥关键作用。研究了基于层压贴层和钢的木材钢混合动力设计的潜力,用于对经受碰撞载荷的部件,例如门冲击梁。所选解决方案涉及分离功能。层压贴面木材的梁与张力侧的钢带杂交。设计钢带以补偿木材骨折处的相对低的伸长率,并确保梁的完整性。由于在撞击期间,木质部件设计用于高能量吸收,并且在撞击期间受到控制的影响,同时保持惯性的表面力矩,即整个组分的弯曲刚度。选择这种方法以确保部件的功能安全,避免突然的部件故障并利用两种材料的高潜力。进行的测试提供了所选溶液的初始功能证明。杂交在没有突然失效的情况下实现显着更高的变形。此外,与无杂交的光束相比,弯曲能力显着增加。与最先进的钢梁相比,混合梁不能达到混合梁的最大变形和目标重量。因此需要进一步优化混合梁。

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