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Numerical investigation of piled raft foundation in mitigating embankment vibrations induced by high-speed trains

机译:桩筏基础减缓高速列车路堤振动的数值研究

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A three-dimensional dynamic finite element model of track-ballast-embankment and piled raft foundation system is established. Dynamic response of a railway embankment to a high-speed train is simulated for two cases: soft ground improved by piled raft foundation, and untreated soft ground. The obtained results are compared both in time domain and frequency domain to evaluate the effectiveness of the ground improvement in mitigating the embankment vibrations induced by high-speed trains. The results show that ground improving methods can significantly reduce the embankment vibrations at all considered train speeds (36− 432 km/h). The ground response to a moving load is dictated largely by the relationship between load speed and characteristic value of wave velocities of the ground medium. At low speeds, the ground response from a moving load is essentially quasi-static. That is, the displacements fields are essential the static fields under the load simply moving with it. For the soft ground, the displacement on the ballast surface is large at all observed train speeds. For the model case where the ground is improved by piled raft foundation, the peak displacement is reduced at all considered train speeds compared with the case without ground improvement. Based on the effect of energy-dissipating of ballast-embankment-ground system with damping, the train-induced vibration waves moving in ballast and embankment are trapped and dissipated, and thus the vibration amplitudes of dynamic displacement outside the embankment are significantly reduced. But for the vibration amplitude of dynamic velocity, the vibration waves in embankment are absorbed or reflected back, and the velocity amplitudes at the ballast and embankment surface are enhanced. For the change of the vibration character of embankment and ballast, the bearing capacity and dynamic character are improved. Therefore, both of the static and dynamic displacements are reduced by ground improvement; the dynamic velocity of ballast and embankment increases with the increase of train speed and its vibration noise is another issue of concern that should be carefully evaluated because it is associated with the running safety and comfort of high-speed trains.
机译:建立了道track-路堤-桩筏基础系统的三维动态有限元模型。模拟了两种情况下铁路路堤对高速列车的动力响应:通过桩筏基础改善的软土地基和未处理的软土地基。将获得的结果在时域和频域进行比较,以评估地面改善措施在减轻高速列车引起的路堤振动方面的有效性。结果表明,在所有考虑的列车速度(36-432 km / h)下,地面改良方法可以显着降低路堤振动。地面对移动负载的响应主要取决于负载速度与地面介质波速特征值之间的关系。在低速下,来自移动负载的地面响应本质上是准静态的。也就是说,位移场对于载荷作用下的静场必不可少。对于软土,在所有观察到的列车速度下,道ast表面的位移都很大。对于通过桩筏基础改善地面的模型情况,与没有改善地面的情况相比,在所有考虑的列车速度下峰值位移都减小了。基于压载对路堤-地面-地面系统的阻尼作用,列车引起的振动波在压载和路堤中的运动被捕获和消散,从而大大减小了路堤外动力位移的振动幅度。但是对于动态速度的振幅,路堤中的振动波被吸收或反射回去,从而增加了压载物和路堤表面的速度振幅。为了改变路堤和压载物的振动特性,提高了承载能力和动力特性。因此,通过改善地面,既可以减少静态位移,也可以减少动态位移。道ast和路堤的动态速度随着列车速度的增加而增加,其振动噪声是另一个值得关注的问题,因为它与高速列车的运行安全性和舒适性有关。

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