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Experimental study on the fatigue failure mechanism of QP-16 type ball-eye under asymmetric load
Affiliation:1. College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing 210098, China;2. State Grid Shenyang Electric Power Supply Company, Shenyang 110811, China;3. North China Electric Power Research Institute Co.Ltd., Bingjing 100045, China;4. Anhui Science and Technology University, Bengbu 233100, China;1. Institute of Iron and Steel Technology, Technische Universität Bergakademie Freiberg, Germany;2. Institute of Metal Forming Science and Nanotechnology, University of Miskolc, Hungary;3. Institute of Materials Engineering, Technische Universität Bergakademie Freiberg, Germany;4. Graduate Institute of Ferrous Technology, Pohang University of Science and Technology, Pohang, Gyeongbuk 790-784, South Korea;1. Department of Civil, Construction, and Environmental Engineering, Iowa State University, Ames, IA 50011, United States;2. Institute for Transportation (InTrans), Iowa State University, Ames, IA 50011, United States
Abstract:The ball eye (BE) is a key connecting component between the insulator and transmission tower, whose fatigue characteristics concern the safety of transmission lines. To understand the fatigue mechanism and characteristics of it, the fatigue test was conducted based on the following data: r = 0.25, S = 500 MPa,then plotting of Ssingle bondN and Δεaxis  N, to analyze the fatigue failure of the test specimen from the macro and micro point of views. The research results show that: the life of BE significantly reduces with the increase of the stress amplitude, but the relative reduction in life is not the same; softening and strain amplitude of the specimen change differently before and after the stress amplitude of 300 MPa; when S  300 MPa, the fracture is more smooth, the fatigue crack propagation is slow; when S > 300 MPa, the rate of fatigue crack growth is faster, and the fatigue crack growth zones are not obvious. The cracks are easily detectable appear at the joint of the BE and insulator cap, and the cracks along the fracture cross section are constantly expanding, showing multiple fatigue sources and fatigue steps. The number of fatigue steps increases as the magnitude of the tensile stress increases. When S = 500 MPa, the yield strength decreases during the lifetime, the decrease rate of the tensile strength and microstructure strength in each stage are different. Axial lengthening and section shrinkage ratio decrease with the development of fatigue, fatigue evolution process is accompanied by phenomenon of crystalline slip, deformation, dislocation, at the same time, dissipation and decomposition of pearlite occur, and carbide precipitates from the matrix, growing and moving to the grain boundaries, the specific phenomenon of grain growth appears.
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