Abstract

To comprehensively investigate the characteristics of aerodynamic pressures on a tunnel caused by the whole tunnel passage of a high-speed train at different speeds, we conduct a series of three-dimensional numerical simulations. Based on the field test results obtained by other researchers, the input parameters of our numerical simulation are determined. The process of a high-speed train travelling through a railway tunnel is divided into three stages according to the spatial relationship between the train and tunnel. Stage I: before train nose enters the entrance; Stage II: while the train body runs inside the tunnel; Stage III: after the train tail leaves the exit. The influences of high-speed train speed on the tunnel aerodynamic pressures of these three stages are systematically investigated. The results show that the maximum peak pressure value decreases with increasing distance from the entrance and increases with increasing train speed in Stage I. There is an approximately linear relationship between the three types of maximum peak pressure (positive peak, negative peak, and peak-to-peak pressures) and the power of the train speed in Stage II. These three types of maximum peak pressure values of the points near tunnel portals increase with increasing train speed in Stage III. Moreover, these three types of maximum peak pressure in the tunnel’s middle section at different train speeds are more complex than those near the tunnel portals, and there is one or more turning points due to the superimposed effects of different pressure waves.

Highlights

  • After a high-speed train travels through a railway tunnel, the aerodynamic pressure waves are generated and exert loads on the tunnel lining

  • The aerodynamic pressures associated with a high-speed railway (HSR) tunnel have been investigated by field test, moving model rig, theoretical analysis, and numerical simulation

  • The results showed that tunnel aerodynamic pressures were generated before the train nose entering the entrance. a series of field tests on the Beijing-Shanghai HSR line were conducted [19]

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Summary

Introduction

After a high-speed train travels through a railway tunnel, the aerodynamic pressure waves are generated and exert loads on the tunnel lining. The aerodynamic pressures associated with a high-speed railway (HSR) tunnel have been investigated by field test, moving model rig, theoretical analysis, and numerical simulation. Considerable researchers have studied the characteristics of tunnel aerodynamic pressures, they mostly focused on the behaviours during the high-speed train running inside a railway tunnel. The results showed that tunnel aerodynamic pressures did not stop immediately after train tail leaving the exit but presented a periodic change These phenomena and their influencing factors have not been substantially studied. The behaviours of the whole tunnel passage of the high-speed train are assessed, i.e., considering the train running inside the tunnel, and the other two series before the train nose entering the entrance and after the train tail leaving the exit.

Numerical Simulation Method
Tunnel and Train Models
Layout of Monitoring Points
Aerodynamic Pressures in Stage I
Calculated value 1-V 10-V 19-V
Aerodynamic Presssuurreess iinn SSttaaggee IIIIII
Conclusions
Full Text
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