Zhichao ZHANG, Jian DU, Juntao DU, et al. Research on Pressure Load Characteristics of 600 km/h Single Maglev Train Passing Through Tunnel. [J]. Electric Drive for Locomotives (6):15-19(2020)
DOI:
Zhichao ZHANG, Jian DU, Juntao DU, et al. Research on Pressure Load Characteristics of 600 km/h Single Maglev Train Passing Through Tunnel. [J]. Electric Drive for Locomotives (6):15-19(2020) DOI: 10.13890/j.issn.1000-128x.2020.06.004.
Research on Pressure Load Characteristics of 600 km/h Single Maglev Train Passing Through Tunnel
In an instant, when the train enters the tunnel from the open line, the air flow space around the train suddenly becomes smaller, and the air in front of the train is compressed and the air pressure increases sharply, forming an initial compression wave, which propagates to the tunnel exit at the local sound speed. When the rear of the train entered the tunnel, as the space occupied by the rear of the train was released, the air pressure suddenly dropped, forming an expansion wave. Compression waves and expansion waves propagated to the tunnel port and were reflected as waves with opposite properties. The two superimpose on each other, resulting in severe pressure fluctuations in the tunnel. The one-dimensional unsteady compressible non-homentropic flow model and generalized Riemann variable characteristic line method were used to numerically simulate the pressure wave of the maglev train passing through tunnel at a speed of 600 km/h. Through the analysis of the formation mechanism of pressure changes in the tunnel, the changing characteristics of the aerodynamic load in the tunnel was revealed, as well as the changing law between the amplitude of the surface pressure of the car body and the length of the tunnel, train speed, and blocking ratio. The research results could provide data reference for the design of aerodynamic loads in the tunnel and car body when the high-speed maglev train passes through the tunnel.
关键词
高速磁浮列车隧道压力波压力载荷一维流动模型特征线法
Keywords
high-speed maglev traintunnelpressure wavepressure loadone-dimensional flow modelcharacteristic line method
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