This study has developed a novel analyzing method to clarify mechanical and dynamic characteristics of bolted joints based on multi-material structures, including magnesium alloy. For this research, specimen of magnesium alloy bolted with other metal materials and finite element method (FEM) were used to see natural frequency, vibration modes, clamping force, and interfacial stiffness of the jointed parts. A series of hammering tests and numerical simulations were performed to obtain the relationship between the natural frequency and the clamping force, and the effect of the magnesium alloy was investigated. The numerical simulations were executed by the FEM based on a mechanical model to simulate the mechanics of the real contact area between bolted joints interfaces. The results reveal that the Young’s modulus of the magnesium alloy affects the interfacial stiffness of the jointed parts, and the natural frequency of the magnesium alloy bolted joints asymptotically increases to the constant value under lower clamping force than the other joints. The rigidity of the constituent materials has more influence on the deformation shape with many nodes and antinodes. The interfacial element between the washer and clamped member material is not necessary since the influence factor is very minimum compared to the influence between the clamped materials interfacial elements.
Britton et al. (Thu,) studied this question.