Train-Induced Vibration Predictions Based on Data-Driven Cascaded State-Space Model
Abstract
:1. Introduction
2. Prediction Method Based on State-Space Model
2.1. Modeling Procedure
2.2. Sub-Structural System Identification
3. Train-Induced Vibration Measurements
3.1. Measurement Program
3.1.1. Location
3.1.2. Setup
3.2. Vertical Vibration Levels on Different Floors in the First Stage Over-Track Building
3.2.1. Room Column
3.2.2. Staircase Column
3.3. Ground Vibration Levels at Different Distances from the Track
3.4. Different Vibration Transmissions from Ground to First Platfrom
4. Train-Induced Vibration Simulations and Predictions
4.1. Model Versatility for Typical Floors
4.2. Cascaded State-Space Model Validation
4.3. Vibration Predictions for the Future Second Stage Over-Track Building
5. Modal Parameters Identification
6. Discussion
6.1. Vibration Transmission within the First Stage Over-Track Building
6.2. Comparison between Measurements and FTA Guidelines
6.3. Selection of State-Space Model System Order
6.4. Significance of the Cascaded State-Space Model
7. Conclusions
- (1)
- The data-driven cascaded state-space model predicts train-induced structural vibration responses with reasonable accuracy. It provides a practical method to assess train-induced vibration impacts prior to construction when designing similar buildings at metro depots in the future.
- (2)
- The system order of the estimated state-space model is related to the structural system complexity. In general, the more complex the system, the greater the system order.
- (3)
- Considering over-track buildings’ different supporting methods, it is advisable to use the measured vibration levels from the second platform as the inputs to the cascaded state-space model, which avoids the added complexity of modeling the transfer behavior of the platform and expands the applicability of the model.
- (4)
- Vibration levels within the first stage over-track building were amplified by 2–4 dB/floor from the first platform and barely reduced from one floor to the floor above. The FTA guidelines overestimate the vibration transmission loss within buildings.
- (5)
- The FTA propagation curve for rapid transit and light rail vehicles effectively estimates vibration levels near the track. However, it underestimates the vibration transmission loss when the distance to the track’s centerline increases.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Level | Length (m) | Cross Area (m2) | Young’s Modulus (GPa) | Density (kg/m3) | Floor Thickness (m) |
---|---|---|---|---|---|
Ground–Mezzanine | 4.45 | 0.64 | 36.0 | 2440 | -- |
Mezzanine–1st platform | 4.4 | 35.5 | 2430 | 0.12 | |
1st platform–2nd platform | 5.5 | 34.5 | 2420 | 0.15 | |
2nd platform–2nd floor | 5.95 | 33.5 | 2410 | 0.25 | |
2nd floor–3rd floor | 3.6 | 32.5 | 2400 | 0.12 | |
Upper floors | 3.6 | 31.5 | 2390 | 0.12 |
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Tao, Z.; Hu, Z.; Wu, G.; Huang, C.; Zou, C.; Ying, Z. Train-Induced Vibration Predictions Based on Data-Driven Cascaded State-Space Model. Buildings 2022, 12, 114. https://doi.org/10.3390/buildings12020114
Tao Z, Hu Z, Wu G, Huang C, Zou C, Ying Z. Train-Induced Vibration Predictions Based on Data-Driven Cascaded State-Space Model. Buildings. 2022; 12(2):114. https://doi.org/10.3390/buildings12020114
Chicago/Turabian StyleTao, Ziyu, Zihao Hu, Ganming Wu, Conghui Huang, Chao Zou, and Zhiyun Ying. 2022. "Train-Induced Vibration Predictions Based on Data-Driven Cascaded State-Space Model" Buildings 12, no. 2: 114. https://doi.org/10.3390/buildings12020114
APA StyleTao, Z., Hu, Z., Wu, G., Huang, C., Zou, C., & Ying, Z. (2022). Train-Induced Vibration Predictions Based on Data-Driven Cascaded State-Space Model. Buildings, 12(2), 114. https://doi.org/10.3390/buildings12020114