Numerical Investigation of 1 × 7 Steel Wire Strand under Fretting Fatigue Condition
Abstract
:1. Introduction
2. Materials and Methods
2.1. Geometry of Wire Rope
2.2. Material Properties and Structural Mesh
2.3. Interaction Properties and Boundary Conditions
3. Results
3.1. Stress Distribution under Different Amplitude of Cyclic Loading
3.2. Relative Displacement of Central and Outer Wires
3.3. Stresses at Contact Points
4. Discussion
5. Conclusions
- It was concluded from the numerical investigation of wire rope strands, that at low levels (below 50 Percent MBL) of stress, yielding does not occur at any point in the strand. The maximum value of the von Mises stress is 1554 MPa which is 91 Percent of the yield strength. Elastic behavior of the material shows that the HCF study of the wire rope strands is valid at these values of stresses.
- The shape of the von Mises stresses and the contact stress evolution during loading of one cycle are in phase with the applied loading at the localized contact regions.
- Relative displacement between the contacting wires is more in frictionless conditions. For friction, case relative displacement has been observed at lower loads of 80kN, however, changing the friction coefficient from 0.1 to 0.2 did not alter the results.
- It has been evident from the present study that fluctuation in stresses are more for 80 kN and 145 kN as compared to 120 kN for mutually contacted nodes. This fluctuation in stress changes is due to the sliding behavior of neighboring wires.
- At larger axial loads, the normal contact stress values are more for the frictionless case as compared to friction.
- The existence of the slippage at the boundaries of contacting spots in the presence of friction confirms the fretting phenomena backed by previous experimental studies stating that the cracks tend to nucleate at a spot or at the outer edge of contact spots.
Author Contributions
Funding
Conflicts of Interest
References
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Ahmad, S.; Badshah, S.; Ul Haq, I.; Abdullah Malik, S.; Amjad, M.; Nasir Tamin, M. Numerical Investigation of 1 × 7 Steel Wire Strand under Fretting Fatigue Condition. Materials 2019, 12, 3463. https://doi.org/10.3390/ma12213463
Ahmad S, Badshah S, Ul Haq I, Abdullah Malik S, Amjad M, Nasir Tamin M. Numerical Investigation of 1 × 7 Steel Wire Strand under Fretting Fatigue Condition. Materials. 2019; 12(21):3463. https://doi.org/10.3390/ma12213463
Chicago/Turabian StyleAhmad, Sajjad, Saeed Badshah, Ihsan Ul Haq, Suheel Abdullah Malik, Muhammad Amjad, and Mohd Nasir Tamin. 2019. "Numerical Investigation of 1 × 7 Steel Wire Strand under Fretting Fatigue Condition" Materials 12, no. 21: 3463. https://doi.org/10.3390/ma12213463