Development of Track Support Stiffness Measurement and Evaluation System for Slab Tracks
Abstract
:1. Introduction
2. Overview of the Track Support Stiffness Evaluation System
2.1. Operation Program for Measurement System
2.2. Performance Requirements of Track Support Stiffness Measurement System
2.3. Development of Track Support Stiffness Measurement System
Field Measurement
3. Results and Discussion
4. Conclusions
- (1)
- The field test results proved the adequacy of static and dynamic spring stiffness evaluation results, and the adequacy of the test equipment (load control capacity, dynamic vibration capacity, and loading rate), which are the performance requirements of the development system, and are also related to the relevant test standards and evaluation method. Among the main performance requirements set in this study, the adequacy of the TSS tester (load control capability, dynamic vibration capability, and loading rate) is the realization of the excitation frequency of the static and dynamic excitation loads with the control accuracy of the static and dynamic test loads.
- (2)
- The evaluation system in this study reflects the field conditions and can be directly tested on operational tracks to analyze and compare the results at various test points. In addition, the error range of the field test results was analyzed to be less than 3% in both the static and dynamic test results, indicating a reliable level in terms of measurement accuracy. Furthermore, the error of the dynamic test result of the track support stiffness measured by the design standard value and test equipment was less than 5%. Therefore, it was concluded that the track support stiffness measurement system and its evaluation program of this study can be used to predict the spring stiffness of resilience pad in the real field and should be of practical use in track maintenance.
- (3)
- In continuation of this research, the authors intend to perform further experiments under different field conditions.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Measured Results Using TSS Tester | Conventional Field Test Using Actual Vehicle | Design Value (Korean Standard) | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Test Cycle | Static | Dynamic | ||||||||||
A | * | B | A | * | B | A | * | C | D | * | C | |
1st | 15.43 | 34.87 | (−)2.09 | 17.10 | 38.41 | (−)0.23 | 17.72 | 39.72 | (−)3.50 | 17.5 (±2.5) | 40.24 | (−)4.79 |
2nd | 16.17 | 36.45 | (+)2.60 | 16.98 | 38.16 | (−)0.93 | (−)4.18 | (−)5.47 | ||||
3rd | 15.68 | 35.42 | (−)0.51 | 17.35 | 38.94 | (+)1.23 | (−)2.09 | (−)3.36 | ||||
Ave. | 15.76 | 35.58 | 0.00 | 17.14 | 38.50 | (+)0.07 | (−)3.27 | (−)4.56 |
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Choi, J.-Y.; Kim, S.-H.; Kim, M.-H.; Chung, J.-S. Development of Track Support Stiffness Measurement and Evaluation System for Slab Tracks. Appl. Sci. 2020, 10, 4344. https://doi.org/10.3390/app10124344
Choi J-Y, Kim S-H, Kim M-H, Chung J-S. Development of Track Support Stiffness Measurement and Evaluation System for Slab Tracks. Applied Sciences. 2020; 10(12):4344. https://doi.org/10.3390/app10124344
Chicago/Turabian StyleChoi, Jung-Youl, Sun-Hee Kim, Man-Hwa Kim, and Jee-Seung Chung. 2020. "Development of Track Support Stiffness Measurement and Evaluation System for Slab Tracks" Applied Sciences 10, no. 12: 4344. https://doi.org/10.3390/app10124344
APA StyleChoi, J.-Y., Kim, S.-H., Kim, M.-H., & Chung, J.-S. (2020). Development of Track Support Stiffness Measurement and Evaluation System for Slab Tracks. Applied Sciences, 10(12), 4344. https://doi.org/10.3390/app10124344