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Full-Scale Testing and Numerical Modeling of Adhesively Bonded Hot Stamped Ultra-High Strength Steel Hat Sections

机译:粘粘密烫印超高强度钢帽部分的全尺寸测试和数值模型

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The implementation of structural adhesives to join multi-material lightweight vehicle structures requires advanced computer aided engineering (CAE) and therefore thorough material characterization and model validation at the component level. Hot stamped, 1.2 and 1.8 mm thick ultra-high strength steel hat section channels were joined to form closed tubular structures using a two-part toughened epoxy adhesive applied to the flanges, with a bondline thickness of 0.007" (0.178 mm). The joined tubes were tested under quasi-static loading in two configurations: three-point bending to load the adhesive in shear (Mode II) and axial crush resulting primarily in Mode I loading. Finite element models of the tests were developed using previously measured material properties for the adhesive implemented using cohesive zone elements. The three-point bending response included a linear loading regime followed by localized plastic deformation of the tube and finally abrupt failure of the adhesive joint between the hat sections at an average load of 34.0 kN for the 1.2 mm tubes and 78.8 kN for the 1.8 mm tubes. The axial crush response included an initial average peak force of 260 kN followed by a local folding or global deformation mode, leading to progressive separation of the adhesive joint and an average energy absorption of 8.45 kJ. Finite element models based on published adhesive and metal properties demonstrated good correlation with experimental results in predicted peak force and overall loading response.
机译:连接多重材料轻质车辆结构的结构粘合剂的实施需要先进的计算机辅助工程(CAE),因此在组件级别进行全面的材料表征和模型验证。热冲压,1.2和1.8毫米厚的超高强度钢帽子段通道接合,使用施加到凸缘的两部分加强的环氧粘合剂形成闭合管状结构,粘结线厚度为0.007“(0.178mm)。加入在两种配置的准静态载荷下测试管:三点弯曲以在剪切(模式II)中加载粘合剂,并轴压主要在MODIO I I装载中。使用先前测量的材料特性开发了测试的有限元模型。使用粘性区域元素实现的粘合剂。三点弯曲响应包括线性装载方案,然后是管的局部塑性变形,最后在34.0kN的平均负荷为1.2 mm的平均负荷之间突然发生粘合接头的突然发生故障管和78.8 kn为1.8 mm管。轴压响应包括260k的初始平均峰值力,然后是局部折叠或全局变形模式,l阐述粘合剂接头的逐步分离和8.45kJ的平均能量吸收。基于已发表的粘合剂和金属性能的有限元模型证明了与预测峰值力和整体装载响应的实验结果良好的相关性。

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