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A THREE-DIMENSIONAL NESTED REINFORCING MESH IN ELASTOMERS FOR CRASHWORTHY APPLICATIONS

机译:弹性应用中弹性体的三维嵌套补强网

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The advent of additive manufacturing allows for the design of complex 3D geometries that would otherwise be difficult to manufacture using traditional processes. Stereolithographic printing of geometrically reinforced structures gives promise for tunable energy-absorbing composite materials for impact applications. These materials may be suitable for applications in personal sport protection equipment such as knee-pads or helmets. The flexible nature of additive manufacturing can be easily scaled and modified to serve a variety of impact loading applications. In the present study, a three-dimensional nested array of ridged polymeric mesh with tiered high-temperature UV-cured polymer were embedded in a polyurethane matrix to form a new class of functional composite materials designed for multi-use low velocity impact events, and a single-use high velocity or high force impact event. The reinforcements were designed to absorb impact energy by the sequential bending, bucking, and failure of the layers of nested reinforcing members. The energy absorption capacity is further enhanced by the connective elastomer matrix which serves to retain the fractured mesh structure after initial breakage. The peak load is maintained at a relatively modest level while maximizing absorbed energy. Quasi-static loading tests were conducted to measure the peak load, total energy absorbing capability of the material. The energy absorption capability is measured using force-displacement plots and multiple interactions of material combination of reinforcement ring arrays. Tests with and without elastomer matrix, were conducted to understand peak load minimization and energy absorption character of the material.
机译:增材制造的出现允许设计复杂的3D几何形状,否则将很难使用传统工艺进行制造。几何增强结构的立体光刻印刷有望为冲击应用提供可调吸收能量的复合材料。这些材料可能适用于个人运动防护设备,例如护膝或头盔。增材制造的灵活性可以轻松扩展和修改,以适应各种冲击载荷应用。在本研究中,将具有多层高温UV固化聚合物的脊状聚合物网三维嵌套阵列嵌入聚氨酯基体中,以形成专为多用途低速冲击事件设计的新型功能复合材料,并且一次性使用高速或强力冲击事件。增强件设计为通过嵌套的增强件层的依次弯曲,弯曲和破坏来吸收冲击能量。通过连接弹性体基体进一步增强了能量吸收能力,该连接体弹性体用于在初始断裂后保持断裂的网状结构。峰值负载保持在相对适中的水平,同时使吸收的能量最大化。进行了准静态载荷测试,以测量材料的峰值载荷,总能量吸收能力。使用力-位移图和增强环阵列的材料组合的多次相互作用来测量能量吸收能力。进行了有或没有弹性体基体的测试,以了解材料的峰值载荷最小化和能量吸收特性。

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