A Study on the Train-Induced Vibration Responses of Heavy Haul Railway Subgrade in Seasonally Frozen Regions Using Field Experiments
Abstract
:1. Introduction
2. Monitoring Sites and Site Arrangements
2.1. Monitoring Sites
2.2. Site Arrangements
3. Results
3.1. Ground Temperature
3.2. Characteristics of Vibration Response of Subgrade Induced by Different Heavy Haul Trains
- Time-domain analysis: Curves that change with time are frequently obtained during the observation of natural or social phenomena, and they are known as time-domain signals. The common time-domain analysis methods include statistical analysis, correlation analysis, and historical trend analysis, with main indexes of maximum, average, and effective values. This study focused on conducting filtration of the acceleration signals collected during the monitoring of the system to obtain the acceleration time–history curve. Thereafter, statistical analysis and correlation analysis were used for the analysis of maximum, average, and effective acceleration.
- Frequency-domain analysis: Complex signals primarily comprise multiple sinusoidal waves with different frequencies. The composition of the amplitude and phase of the sinusoidal wave is called the spectrum of the signal. The commonly used frequency-domain analysis method is the power spectrum analysis, which includes the self-power spectrum analysis and the cross-power spectrum analysis. These analyses can clearly show the acceleration characteristics of the subgrade. This study also focused on carrying out the Fast Fourier Transform (FFT) of time-domain data of acceleration to obtain the spectrum, i.e., to conduct FFT of acceleration time–history curve to obtain the acceleration spectrum curve.
3.3. Vibration Responses of Subgrade before and after Freezing
3.3.1. Time-Domain Analysis and Acceleration Eigenvalue
3.3.2. Frequency-Domain Analysis of Acceleration
3.3.3. Attenuation Law of Vibration Response Acceleration of the Subgrade
3.3.4. Response Features of Dynamic Speed and Dynamic Displacement before and after Freezing
- (1)
- Dynamic speed before and after freezing.
- (2)
- Dynamic displacement before and after freezing.
4. Discussions
5. Conclusions
- The train speed is a major factor affecting the maximum and average vibration acceleration, where the maximum vibration acceleration is commonly generated when the locomotive pass, and the vibration acceleration of coaches are usually smaller than that of the locomotive.
- During the non-frozen period, when both full- and no-load heavy haul trains pass by, they possibly exert a certain impact on the surrounding environment of the dual lines. Moreover, the maximum and average acceleration measured when full-load heavy haul trains passed by C1 are much larger than those measured when no-load heavy haul trains passed by C2. Moreover, the maximum vertical acceleration induced by C80 is 1.534 m/s2, which is lower than the limit value.
- The maximum and average vertical acceleration, dynamic speed, and dynamic displacement are significantly increased after freezing. The frozen subgrade soil has an amplification effect on the vibration responses of the subgrade. The non-frozen period vertical acceleration, dynamic speed, and dynamic displacement are found to attenuate relatively fast, whereas the attenuation of the vertical acceleration, dynamic speed, and dynamic displacement during the frozen period is relatively slow. This implies that the frozen subgrade soil has an amplification effect on the vibration response and exerts a significant impact on the attenuation rate of the vibration response. Furthermore, the main frequency of the natural vibration is significantly higher than that before freezing.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Monitoring Index | Sensor Type | Measurement Range | Accuracy |
---|---|---|---|
round temperature | PT100 temperature sensor | −40 °C~+60 °C | ±0.03 °C within −20 °C~+20 °C |
acceleration | MSA1000-02 variable capacitance acceleration sensor | ±2 g | 0.001 g |
Train Type | Formation | Carrying Capacity/t | Self-Weight/t | Axle Load/t | Car Length/m |
---|---|---|---|---|---|
C64 | ordinary | 61 | ≤23 | 21 | 134.30 |
C70 | 10,000 ton | 70 | ≤23.8 | 23 | 139.76 |
C80 | 20,000 ton | 80 | ≤20 | 25 | 120.00 |
Characteristic Length (m) | Frequencies (Hz) | ||
---|---|---|---|
v | 55 km/h | ||
Lc | 12 | fc | 1.27 |
Lwb | 1.83 | fwb | 8.35 |
Lsb | 8.2 | fsb | 1.86 |
Load | Train Type | Speed/ (km·h−1) | C1 (the Full-Load Side) | C2 (the No-Load Side) | ||||
---|---|---|---|---|---|---|---|---|
Full-load | C64 | 56 | 0.993 | 0.094 | 1.794 | 0.182 | 0.018 | 0.318 |
C70 | 55 | 1.050 | 0.087 | 1.198 | 0.187 | 0.020 | 0.267 | |
C80 | 52 | 1.534 | 0.103 | 2.536 | 0.210 | 0.020 | 0.219 | |
No-load | C64 | 50 | 0.102 | 0.034 | 0.321 | 0.870 | 0.070 | 0.824 |
C70 | 58 | 0.133 | 0.026 | 0.302 | 1.290 | 0.078 | 0.951 | |
C80 | 60 | 0.101 | 0.019 | 0.269 | 1.180 | 0.080 | 0.656 |
Train Type | Speed/ (km·h−1) | During the Non-Frozen Period | Speed/ (km·h−1) | During the Freezing Period | ||||
---|---|---|---|---|---|---|---|---|
Ordinary C64 | 49.00 | 470 | 47 | 0.289 | 48.24 | 554 | 76 | 0.423 |
10,000 ton C70 | 50.76 | 539 | 63 | 0.300 | 51.93 | 581 | 75 | 0.356 |
20,000 ton C80 | 46.12 | 558 | 66 | 0.192 | 44.78 | 745 | 70 | 0.219 |
Train Type | Speed (km·h−1) | Main Frequency of Natural Vibration during the Non-Frozen Period (Hz) | Main Frequency of Natural Vibration during the Freezing Period (Hz) |
---|---|---|---|
Ordinary C64 | 48 | 23.6 | 117.4 |
10,000 ton C70 | 51 | 28.1 | 122.3 |
20,000 ton C80 | 45 | 26.2 | 122.3 |
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Zhang, Y.-Z.; Dong, Y.-Q.; Cao, X.-X.; Li, P. A Study on the Train-Induced Vibration Responses of Heavy Haul Railway Subgrade in Seasonally Frozen Regions Using Field Experiments. Sustainability 2022, 14, 15954. https://doi.org/10.3390/su142315954
Zhang Y-Z, Dong Y-Q, Cao X-X, Li P. A Study on the Train-Induced Vibration Responses of Heavy Haul Railway Subgrade in Seasonally Frozen Regions Using Field Experiments. Sustainability. 2022; 14(23):15954. https://doi.org/10.3390/su142315954
Chicago/Turabian StyleZhang, Yu-Zhi, Ya-Qian Dong, Xiu-Xiu Cao, and Pei Li. 2022. "A Study on the Train-Induced Vibration Responses of Heavy Haul Railway Subgrade in Seasonally Frozen Regions Using Field Experiments" Sustainability 14, no. 23: 15954. https://doi.org/10.3390/su142315954
APA StyleZhang, Y. -Z., Dong, Y. -Q., Cao, X. -X., & Li, P. (2022). A Study on the Train-Induced Vibration Responses of Heavy Haul Railway Subgrade in Seasonally Frozen Regions Using Field Experiments. Sustainability, 14(23), 15954. https://doi.org/10.3390/su142315954