Development of a New Test-Rig for Wheel–Rail Contact Experiments under Large Slip Conditions
Abstract
:1. Introduction
1.1. Rolling Contact Theories
1.2. Adhesion Recovery in Large Slip Conditions
1.3. Experimental Investigations
1.4. Scope of This Paper
2. Overall Design
2.1. Category Selection
2.2. Scale and Power
- The ratio of the longitudinal semi-axis length a to the transversal semi-axis length b of the elliptical contact patch is the same in both test-rig and reality;
- The maximum contact pressure q of contact patch is the same in both test-rig and reality.
2.3. Wheel–Rail Contact and Circling Diameter
3. Detailed Description
3.1. Structure of the Test-Rig
3.2. Dynamics Analysis
3.3. Simulation of Precise Slip Control
4. Experimental Research
4.1. Validation Experiments
4.2. Experiments of Different Speeds
4.3. Experiments of Different Loads
4.4. Experiments of Different Surface Contaminants
5. Conclusions
- A wide range of existing test devices for wheel–rail contact experiments were classified and comparatively reviewed. Three categories of test-rig were distinguished and functionally evaluated: (1) wheel-on-roller, (2) wheel-on-rail, (3) wheel-on-ring. With the requirements for quantitative control of fluid layer thickness and precise control of the slip between wheel and rail, the wheel-on-ring test-rig was finally selected;
- The scale of the test-rig determines the wheel diameter as well as the required power of the test-rig. The circling diameter of the test-rig affects the similarity of longitudinal creepage and creep force on the contact patch to that of the actual vehicle. Considering the power limit in the laboratory and wheel–rail contact similarity, a scale factor of 1/4 and a circling diameter of 2 m were adopted for the new test-rig;
- The downscale test-rig consists of wheel assemblies, ring track, gearbox, motors and sprinkler system in the main structure. The creepage was the specific value of two torque meters while the adhesion coefficient was calculated from the torque meter and the load sensor. By selecting an appropriate gear ratio of the gearbox, the two motors of the test-rig were decoupled. Precise slip control was realized in MATLAB/Simulink simulation under PID control;
- Validations of the test-rig were conducted and showed little impact on creepage due to a sudden change in adhesion, meanwhile the error between measured and target creepage was not greater than 0.005. Adhesion experiments under large slip conditions with different speeds, axle loads and surface contaminants were performed. Positive correlation with running speed and negative correlation with axle load of adhesion recovery were observed. Oil and leaf contaminants caused no adhesion recovery under large slip conditions;
- The experimental results of wheel–rail adhesion indicate the accuracy of the test-rig. The phenomenon of adhesion recovery reproduced on the test-rig suggests that changes in wheel–rail interface conditions during large creepage contribute to restoring adhesion, including the effects of water evaporation caused by temperature rise and the removal of the surface layer. In accordance with other experimental observations, the test-rig is capable of performing further adhesion experiments under various surface conditions.
6. Patents
- Chao Chen; Chun Tian; et al. A Circular wheel-rail adhesion simulation test-rig and its application. CN202111032398.3, 03 December 2021;
- Chao Chen; Chun Tian; et al. A dual speed reducer generating slip with speed coupling. CN202111100869.X, 17 December 2021.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Categories | Wheel-On-Roller | Wheel-On-Rail | Wheel-On-Ring |
---|---|---|---|
single wheel | |||
U Pardubice Tram Wheel Test-Rig [19] | VAS Full Scaled Test-Rig [22] | TU Delft V-Track [23,24] | |
wheel set | not found | ||
CARS Roller Rig [14] | UIUC Track Loading System [25] | ||
bogie/vehicle | |||
SWJTU Full Scale Roller Rig [26] | TONGJI Bogie Loading Bench [27] | U Tokyo Scaled Model Vehicle [28] |
Scale | 1:1 | 1:2 | 1:4 |
---|---|---|---|
Rw1 (mm) | 420 | 210 | 105 |
Rw2 (mm) | 300 | 150 | 75 |
Nmax * (kN) | 85 | 21.3 | 5.3 |
P (kW) | 756 | 189 | 47 |
PI Controller Parameters | Motor V | Motor W | |
---|---|---|---|
speed PI controller | kp | 8000 | 30 |
ki | 20 | 600 | |
current PI controller | kp | 0.3 | 0.7 |
ki | 51.6 | 226.7 |
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Chen, C.; Tian, C.; Zhou, J.; Zhai, G.; Yu, H. Development of a New Test-Rig for Wheel–Rail Contact Experiments under Large Slip Conditions. Appl. Sci. 2023, 13, 5320. https://doi.org/10.3390/app13095320
Chen C, Tian C, Zhou J, Zhai G, Yu H. Development of a New Test-Rig for Wheel–Rail Contact Experiments under Large Slip Conditions. Applied Sciences. 2023; 13(9):5320. https://doi.org/10.3390/app13095320
Chicago/Turabian StyleChen, Chao, Chun Tian, Jiajun Zhou, Gengwei Zhai, and Hao Yu. 2023. "Development of a New Test-Rig for Wheel–Rail Contact Experiments under Large Slip Conditions" Applied Sciences 13, no. 9: 5320. https://doi.org/10.3390/app13095320
APA StyleChen, C., Tian, C., Zhou, J., Zhai, G., & Yu, H. (2023). Development of a New Test-Rig for Wheel–Rail Contact Experiments under Large Slip Conditions. Applied Sciences, 13(9), 5320. https://doi.org/10.3390/app13095320