The Limit of the Lateral Fundamental Frequency and Comfort Analysis of a Straddle-Type Monorail Tour Transit System
Abstract
:1. Introduction
2. Test Overview
2.1. Project Introduction
2.2. Test Content
2.3. Layout of Measuring Points
3. Dynamic Characteristics and Comfort Analysis
3.1. Dynamic Characteristics Analysis
3.2. Vehicle Operation Performance Analysis
3.3. Human-Induced Vibration Analysis
4. Analysis of Different Parameters
4.1. Pedestrian Load Model
4.2. Influence of the Number of People on the Structural Response
4.3. Influence of Walking Frequency on Structural Response
4.4. Methods of Increasing Structural Stiffness
5. Study on the Limit of the Fundamental Lateral Frequency
5.1. Analysis of Human-Induced Vibration
5.2. Discussion on the Limit of the Fundamental Frequency
6. Conclusions
- (i)
- When the running stability and riding comfort of the MTTS are good, the comfort of human-induced vibration may also be poor. The lateral stiffness of the track is weak, and the fundamental lateral frequency is close to the activity frequency of tourists, which easily causes resonance. Thus, the designer should focus on controlling the structure’s lateral stiffness;
- (ii)
- When pedestrians walk on the evacuation platform, the comprehensive response of the structure increases with the increase in walking frequency. The increase in the number of pedestrians or total weight increases the structural response, and the growth speed decreases with the increase in number or weight;
- (iii)
- The structural stiffness of the MTTS has a different sensitivity to different parameters and is most sensitive to the change in column diameter, followed by column wall thickness;
- (iv)
- According to the test and finite element analysis, for the 15 m, 18 m, and 25 m span of MTTS, this paper suggests that the lower limit of the fundamental lateral frequency for the span length of 15 m is 5.0 Hz, for 18 m it is 3.5 Hz, and for 25 m it is 2.8 Hz.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Mode | Test | ANSYS | ||
---|---|---|---|---|
Lateral | Vertical | Lateral | Vertical | |
1 | 1.82 | 4.26 | 1.85 | 4.13 |
2 | 2.65 | 5.55 | 2.72 | 5.15 |
3 | 3.54 | 9.77 | 3.67 | 9.53 |
4 | 4.11 | 10.23 | 4.38 | 10.32 |
Test | Conditions | f/Hz | Participants | Excitation Source |
---|---|---|---|---|
Number of people test | 1 | 2 | A | Walk |
2 | 2 | A, B | Walk in line | |
3 | 2 | A, B, C | Walk in line | |
4 | 2 | Ten people (70 kg/person) | Walk in line | |
Walk frequency test | 5 | 1 | A | Walk |
1 | 2 | |||
6 | 3 | |||
7 | 1 | A, B | Walk in line | |
2 | 2 | |||
8 | 3 | |||
9 | 1 | A, B, C | Walk in line | |
3 | 2 | |||
10 | 3 | |||
11 | 1 | Ten people (70 kg/person) | Walk in line | |
4 | 2 | |||
12 | 3 |
Current Codes | Evaluation Standard of Human-Induced Vibration Comfort | |
---|---|---|
Vertical | Lateral | |
CJJ69-95 (China) | fvertical ≥ 3 Hz | - |
BS5400 (Englind) | amax ≤ 0.5 fv10.5 m/s2 | - |
EN03(2007) (Germany) | amax ≤ 1.0 m/s2 | amax < 1.0 m/s2 |
Bro2004 (Sweden) | arms ≤ 0.5 m/s2 | - |
Span/m | Excitation Source | Lateral Acceleration: amax (m/s2) | Fundamental Lateral Frequency (Hz) | The Limit of Fundamental Frequency | ||
---|---|---|---|---|---|---|
Based on Acceleration | Standard Value (PC Structure) | Recommended Value | ||||
15 | Full span crowd walking at 2 Hz | 1.21 | 1.87 | 5.0 | 4.7 | 5.0 |
0.29 | 4.93 | |||||
18 | 1.19 | 1.85 | 2.8 | 3.5 | 3.5 | |
0.29 | 2.79 | |||||
25 | 0.97 | 1.51 | 2.5 | 2.8 | 2.8 | |
0.28 | 2.42 |
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Guo, F.; Ji, Y.; Liao, Q.; Liu, B.; Li, C.; Wei, S.; Xiang, P. The Limit of the Lateral Fundamental Frequency and Comfort Analysis of a Straddle-Type Monorail Tour Transit System. Appl. Sci. 2022, 12, 10434. https://doi.org/10.3390/app122010434
Guo F, Ji Y, Liao Q, Liu B, Li C, Wei S, Xiang P. The Limit of the Lateral Fundamental Frequency and Comfort Analysis of a Straddle-Type Monorail Tour Transit System. Applied Sciences. 2022; 12(20):10434. https://doi.org/10.3390/app122010434
Chicago/Turabian StyleGuo, Fengqi, Yanqiang Ji, Qiaoyun Liao, Bo Liu, Chenjia Li, Shiqi Wei, and Ping Xiang. 2022. "The Limit of the Lateral Fundamental Frequency and Comfort Analysis of a Straddle-Type Monorail Tour Transit System" Applied Sciences 12, no. 20: 10434. https://doi.org/10.3390/app122010434
APA StyleGuo, F., Ji, Y., Liao, Q., Liu, B., Li, C., Wei, S., & Xiang, P. (2022). The Limit of the Lateral Fundamental Frequency and Comfort Analysis of a Straddle-Type Monorail Tour Transit System. Applied Sciences, 12(20), 10434. https://doi.org/10.3390/app122010434