NDE Characterization of Surface Defects on Piston Rods in Shock Absorbers Using Rayleigh Waves
Abstract
:1. Introduction
2. Principle of Ultrasonic Waves and FEM Simulation
2.1. Measurement of Rayleigh Waves
2.2. Simulation of Ultrasonic Wave Propagation
3. Experiment System and Measurement
3.1. Measurement System
3.2. Measurement of Ultrasonic Testing
4. Discussion and Results
4.1. Optimization Measurement Technique of Rayleigh Angles
4.2. Evaluation of Beam Profiles on the Defect Types
5. Conclusions
- (1)
- To evaluate ultrasonic beam behavior in defects on piston rods, the Rayleigh angle was determined using the optimal peak-to-peak amplitude based on the pulse-echo technique after machining the defects on the surfaces of the piston rods.
- (2)
- Regardless of the types of micro-defects on the surfaces, the peak-to-peak amplitude of the transmitted ultrasonic waves decreased as the size of the defect increased. The received ultrasonic signals decreased linearly as the distance increased between the transmitting and receiving transducers. Accordingly, the optimal inspection condition could be suggested to be in the range of 5–10 mm, where ultrasonic signals with a high resolution were received.
- (3)
- When the surface defect occurred in the direction of the propagation of the Rayleigh waves, the amplitude of the Rayleigh waves was high. In contrast, the lowest number of ultrasonic waves was transmitted when the crack was perpendicular to the propagation of the Rayleigh waves. Although the defect detection resolution is proportional to the wavelength (λ) (usually λ/2) in ultrasonic inspection, a resolution of λ/3 was found despite the loss of Rayleigh waves on the curved surface as a result of using piston rod samples in this study.
- (4)
- Additional studies are required in the future to analyze the effects of different defect types and heat treatment characteristics using defects with more diverse depths in order to improve the reliability of piston rods in automobiles.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Im, K.-H.; Yeom, Y.-T.; Lee, H.-H.; Kim, S.-K.; Cho, Y.-T.; Woo, Y.-D.; Zhang, P.; Zhang, G.-L.; Kwon, S.-D. NDE Characterization of Surface Defects on Piston Rods in Shock Absorbers Using Rayleigh Waves. Appl. Sci. 2022, 12, 5986. https://doi.org/10.3390/app12125986
Im K-H, Yeom Y-T, Lee H-H, Kim S-K, Cho Y-T, Woo Y-D, Zhang P, Zhang G-L, Kwon S-D. NDE Characterization of Surface Defects on Piston Rods in Shock Absorbers Using Rayleigh Waves. Applied Sciences. 2022; 12(12):5986. https://doi.org/10.3390/app12125986
Chicago/Turabian StyleIm, Kwang-Hee, Yun-Taek Yeom, Hyung-Ho Lee, Sun-Kyu Kim, Young-Tae Cho, Yong-Deuck Woo, Peng Zhang, Gui-Lin Zhang, and Sung-Duk Kwon. 2022. "NDE Characterization of Surface Defects on Piston Rods in Shock Absorbers Using Rayleigh Waves" Applied Sciences 12, no. 12: 5986. https://doi.org/10.3390/app12125986
APA StyleIm, K.-H., Yeom, Y.-T., Lee, H.-H., Kim, S.-K., Cho, Y.-T., Woo, Y.-D., Zhang, P., Zhang, G.-L., & Kwon, S.-D. (2022). NDE Characterization of Surface Defects on Piston Rods in Shock Absorbers Using Rayleigh Waves. Applied Sciences, 12(12), 5986. https://doi.org/10.3390/app12125986