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Evaluating the effect of shock absorber layers in the dynamic behavior of PWB with viscoelastic insert

机译:评估减震器层对带粘弹性插件的PWB动力学行为的影响

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摘要

Portable electronic devices are prone to shock impact and vibration loads in real use environment, e.g., when a portable device is dropped into the floor, resulting in stresses in electrical interconnects that may lead to catastrophic failures. During an impact event, the printed wiring board (PWB) may undergo excessive flexing and high stress levels arise in solder joints due to the relative motion between the PWB substrate and the components mounted on it. Minimizing the resonant vibrations of the PWB would lead to lower stress levels in solder joints, and in turn, reduction in failure risks. PWBs, which are multilayer composite structures, usually have a glass-fiber reinforced resin substrate. In this study, it is proposed a modification of the substrate in order to reduce the amplitude of ressonant vibrations, consisting in the insertion of viscoelastic damping layers into the laminate. The effect of thin damping layers in the dynamic behaviour of PWBs is investigated through numeric simulations. A finite element (FE) model of a conventional PWB substrate is built and validated through experimental testing. The validated FE model is modified adding damping layers with viscoelastic material properties previously determined, and the responses of different laminate layups determined from virtual tests are compared with the response of the actual rigid PWB.
机译:在实际使用环境中,例如当便携式设备掉入地板中时,便携式电子设备易于受到冲击和振动负荷,从而导致电气互连中的应力,这可能导致灾难性故障。在撞击事件中,由于PWB基板与安装在其上的组件之间的相对运动,印刷线路板(PWB)可能会发生过度弯曲,并且在焊点中会产生高应力水平。最小化PWB的共振振动将导致降低焊接点的应力水平,进而降低故障风险。作为多层复合结构的PWB通常具有玻璃纤维增​​强的树脂基底。在这项研究中,建议对基板进行修改,以减少共振的振幅,包括将粘弹性阻尼层插入层压板中。通过数值模拟研究了薄阻尼层对PWB动力学行为的影响。建立了常规PWB基板的有限元(FE)模型,并通过实验测试对其进行了验证。对经过验证的有限元模型进行修改,添加具有先前确定的粘弹性材料特性的阻尼层,并将根据虚拟测试确定的不同层压板叠层的响应与实际刚性PWB的响应进行比较。

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