Fig. 1. Train formulaiton of (a) single power unit train and (b) multiple power train
Fig. 2. Locomotive pneumatic brake system
Fig. 3. Dynamo test bench
Fig. 4. UIC 541-4 test schematic diagram
Fig. 5. Instantaneous friction coefficient relation
Fig. 6. Friction coefficient with 30 kN, initial velocity 165 km/h
Fig. 7. Dynamo test results (mean friction coefficient)
Fig. 8. Multivariate regression analysis results
Fig. 9. Typical brake cylinder pressure rising
Fig. 9. Brake pressure with full service braking
Fig. 10. Brake pressure with emergency braking
Fig. 11. Running resistance measurement setup
Fig. 12. Running resistance speed history result
Fig. 13. Running resistance force with curve fitting results
Fig. 14. Comparison of running resistance test results with other countries' standards
Fig. 15. Stopping distance calculation procedure
Fig. 16. Comparison of simulation and experimental results in full service braking
Fig. 17. Comparison of simulation and experimental results in emergency braking
Fig. 18. Error analysis in braking
Table 1. Disel-electro locomotive specification
Table 2. Tread brake system
Table 3. Dynamo test program
Table 4. Analysis of variance results
Table 5. Characteristics of service and emergency braking
Table 6. Locomotive running resistances
References
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- UIC 541-4, "Brakes-Brake with composition brake blocks- General conditions for composite brake block and their application", 2018.
- I Kiss1, V G Cioata1, S A Ratiu1, M Rackov and M Pencic, "Statistical experiments using the multiple regression research for prediction of proper hardness in areas of phosphorus cast-iron brake shoes manufacturing", Materials Science and Engineering, 294, 2018. DOI: https://doi.org/10.1088/1757-899X/294/1/012078
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