Submitted:
07 March 2025
Posted:
07 March 2025
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Overview
2.2. Rail Fracture Status
2.2.1. CWR Welding and Fracture Status
2.2.2. Effect of Tunnel Temperature Variations on Urban Rail CWR
3. Analysis of CWR Fracture Parameters Near Ventilation Shafts Using Machine Learning
3.1. Overview
3.2. Analysis of Parameter Influence Factors
3.2.1. Classification of Training Datasets
3.2.2. Machine Learning Analysis Using All Parameters
3.2.3. Machine Learning Analysis using Proposed Parameters
4. Numerical Analysis
4.1. Overview
4.2. Analysis Results
4.3. Axial Force Analysis of CWR Fractures Using FEA
4.3.1. Numerical Analysis Modeling
4.3.2. CWR Axial Force Analysis Results
5. Analysis and Discussion
5.1. Correlation Analysis Between CWR Fractures and Parameter Analysis
5.2. Analysis of Temperature Variation Influence Range Near Ventilation Shafts
5.3. Analysis of Axial Force During CWR Fractures Caused by Temperature Variations
6. Conclusion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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- Bong, J.K. A study on analyze the cause of Seoul urban railway continuous welded rail broken. Master Thesis, Dong-yang University, Yeongju-si, 2018 August.
- Lee, K.B. A study on the estimation of natural ventilation by train-induced wind in a subway tunnel. Master Thesis, University of Seoul, Seoul, 2010 August.
- Song, J.H. A study on train-induced wind control and its influence on the ventilation in subway tunnel and station environments. Ph.D. dissertation, University of Incheon, Incheon, 2012 February.
- Zheng, S.; Liu, Y.; Zhang, N.; Li, X.; Gao, L. Experimental studies on shape and size effects on particle breakage of railway ballast. Transportation Geotechnics 2022, 37, 100883. [CrossRef]
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- Park, S.Y. Evaluation of fracture of continuous welded rails according to temperature changes around urban railway ventilations. Ph.D. dissertation, , Dong-yang University, Yeongju-si, 2025 February.






















| Category | Cumulative tonnage (ton) | Annual tonnage (ton) |
||
|---|---|---|---|---|
| Average | Maximum | Minimum | ||
| Line 1 | 353,564,757 | 1,166,542,899 | 46,534,472 | 37,985,936 |
| Line 2 | 429,770,051 | 1,409,051,143 | 43,191,733 | 35,412,833 |
| Line 3 | 308,694,055 | 1,009,647,703 | 24,793,729 | 25,783,785 |
| Line 4 | 371,380,412 | 1,116,506,539 | 25,250,378 | 30,590,571 |
| Line 5 | 543,161,448 | 714,882,321 | 15,016,651 | 17,210,184 |
| Line 6 | 398,654,404 | 424,788,449 | 117,362,310 | 16,346,463 |
| Line 7 | 538,070,364 | 624,131,400 | 202,664,753 | 21,690,988 |
| Line 8 | 336,416,626 | 369,261,145 | 291,078,661 | 11,304,729 |
| Average | 409,964,015 | 854,351,450 | 95,736,586 | 24,540,686 |
| Category | Depot gas pressure welding | On-site gas pressure welding | Thermite welding |
|---|---|---|---|
| Quantity (locations) | 1,114 | 306 | 222 |
| Application rate | 67.9% | 18.6% | 13.5% |
| Category | Maximum | Minimum |
|---|---|---|
| Magok–Balsan | 27.0 | 2 |
| Mapo–Gongdeok | 29.6 | -2 |
| Haengdang–Wangsimni | 27.3 | 0 |
| Mapo-gu Office–Mangwon | 27.1 | 3 |
| Itaewon–Hangangjin | 33.6 | 5 |
| Sangwolgok–Dolgoji | 30.1 | -8 |
| Banpo–Express Bus Terminal | 30.2 | -6 |
| Cheonwang–Onsu | 30.0 | -4 |
| Gulpocheon–Bupyeong-gu Office | 26.8 | -5 |
| Mongchontoseong–Jamsil | 27.8 | 0 |
| Dandaeogeori–Shinheung | 28.3 | 1.1 |
| Category | Parameters |
| Independent variables | Minimum temperature, maximum temperature Temperature variation over time (△t) Curve radius Season Inclination Rail upper/lower, inner/outer Distance between fracture location and ventilation shaft Effect of ventilation shafts on rail fractures based on field investigation results |
| Dependent variable | Rail fracture occurrence |
| No. | Ambient temperature (△t) |
Curve radius (m) |
Inclination (‰) |
Welding type |
Rail fracture occurrence |
Ventilation shaft position | Ventilation shaft function |
Distance between fracture location and ventilation shaft center (m) | ||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Upper/Middle/Lower | Connection type | Ventilation shaft entrance area | Longitudinal (x) | Transverse (y) | Depth (z) | |||||||
| 1 | 9 | 299 | 7 | Gas | Rail fracture |
Lower | Ceiling | 24 | Exhaust | 160 | 1.794 | 23.73 |
| 2 | 8 | 296 | 3 | Gas | Rail fracture |
Upper | Ceiling | 27 | Exhaust | −41 | 0.75 | 19,450 |
| 3 | 8.6 | 249 | 10 | Gas | Rail fracture |
Upper | Wall | 22.4 | Intake | 240 | 1.85 | 29.32 |
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| 50 | 8.1 | 250 | 32 | Ther mite |
Rail fracture |
Lower | Ceiling | 59.60 | U-type | −46 | 7.3 | 10.5 |
| 51 | 8.6 | 300 | −32 | Ther mite |
Rail fracture |
Upper | Ceiling | 72.73 | Natural | −45 | 4.4 | 16.94 |
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| 83 | 7.1 | 265 | −10 | Ther mite |
Rail fracture |
Lower | Ceiling | 22.40 | Intake | 282 | 2.34 | 29.32 |
| 84 | 9.3 | Straight | −1.4 | HAZ | Rail fracture |
Upper | Ceiling | 44.10 | Intake | −114 | 1.277 | 20.22 |
| Output Input |
Minimum temperature |
Maximum temperature |
Δt | Season | Curve radius |
Inclination | Welding type |
Distance (x) |
|---|---|---|---|---|---|---|---|---|
| Minimum temperature |
- | 1.97 | 1.36 | inf | inf | inf | inf | inf |
| Maximum temperature |
1.97 | - | 1.25 | inf | inf | inf | inf | inf |
| Δt | 1.36 | 1.25 | - | 2.54 | 1.28 | 1.40 | 2.14 | 1.19 |
| Season | inf | inf | 2.54 | - | 2.38 | 1.54 | 1.20 | 2.12 |
| Curve radius |
inf | inf | 1.28 | 2.38 | - | 1.45 | 1.48 | 1.54 |
| Inclination | inf | inf | 1.40 | 1.54 | 1.45 | - | 1.40 | 1.67 |
| Welding type |
inf | inf | 2.14 | 1.20 | 1.48 | 1.40 | - | 2.47 |
| Distance(x) | inf | inf | 1.19 | 2.12 | 1.54 | 1.67 | 2.47 | - |
| Category | Airflow (m/s) | Temperature setting (Δt) |
|---|---|---|
| Case A | 0.5 m/s | 35 ℃ |
| Case B | 1.0 m/s | |
| Case C | 2.0 m/s | |
| Case D | 4.0 m/s |
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