Failure Analysis of Friction Weld in Rear Axle Casing

G. K. Sivakumar, Ramya G Nair
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Abstract

In this study, Housing and Spindle failed at Friction weld (FRW) interface and sample submitted was from a Passenger vehicle after covering 18410 Kms was considered to address the repeated weld failures reported in Rear Axle Casing. The Metallurgical examinations revealed, chemical composition and hardness found satisfactory whereas Microstructure reveals presence of MnS (Manganese Sulphide) Inclusions at the friction weld interface resulting in insufficient friction weld fusion.SEM and Metallographic examinations confirmed the Orientation of MnS (Manganese sulphide) along the surface of the Spindle that was subjected to Friction welding (FRW) resulting in insufficient weld fusion. Microstructure observation of Spindle shows inclusions of Type A - Thick 2 against the allowable limits in Raw Material Type A - Thick 1. Also, the elongated MnS inclusions at the Friction weld (FRW) Interface act as initiation sites, "Stress raiser "that is more vulnerable to failure due to comparatively less tensile and impact strength than base metal similar to the effect of flake graphite’s in cast iron. Due to the anisotropy and orientation of the sulfide inclusions there is reduction in transverse ductility in reduced area and not much significant effect in longitudinal direction. Inclusion control by calcium treatment or Electro slag re-melting in spindle raw material will significantly improve the ductility and toughness of friction weldments. This paper aims to study the effect of Sulfide inclusions on weldability, mechanical properties of weld Interface and role as fracture initiation site.
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后桥壳摩擦焊失效分析
在这项研究中,壳体和主轴在摩擦焊缝(FRW)界面失效,并提交了一辆乘用车在行驶了18410公里后的样品,以解决后桥套管的重复焊接失效问题。金相检查显示,化学成分和硬度令人满意,但微观结构显示摩擦焊缝界面存在MnS(硫化锰)夹杂物,导致摩擦焊缝融合不足。扫描电镜和金相检查证实了MnS(硫化锰)沿着主轴表面进行摩擦焊接(FRW),导致焊接融合不足。主轴的显微组织观察显示,A -厚2型夹杂物与A -厚1型原料的允许极限相违背。此外,摩擦焊缝(FRW)界面处伸长的MnS夹杂物作为起始点,“应力产生器”,由于相对于母材的拉伸和冲击强度较低,更容易失效,类似于铸铁中片状石墨的作用。由于硫化物包裹体的各向异性和取向,在还原区横向延展性降低,而在纵向上影响不明显。通过钙处理或电渣重熔控制主轴原料中的夹杂物,可以显著提高摩擦焊件的延展性和韧性。本文旨在研究硫化物夹杂物对焊接性能、焊缝界面力学性能及起裂部位的影响。
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