Li Dong, Qian Dongdong, Cao Shusen, Chen Chao, Yin Jili, You Zhoujian, Wang Hongkai, Zhang Lunzheng, Shi Xiangdong, Wang Futong
School of Civil Engineering and Architecture, Heilongjiang University, Harbin, 150080, China.
CRRC Intelligent Transportation Engineering Technology Co., Ltd, Beijing, 100071, China.
Sci Rep. 2024 Aug 17;14(1):19093. doi: 10.1038/s41598-024-70098-y.
To investigate the vibration isolation effect of composite vibration isolation walls on surface vibrations in suburban railway deep tunnels under various influencing factors, an integrated numerical model of the train was initially developed. This model solved the wheel-rail interaction force and was applied to a three-dimensional volume coupling model of the track soil. Subsequently, the model's reliability was validated through comparison with measured data. Afterward, the vibration isolation effects of various types of EPS material vibration isolation walls were examined, with a focus on exploring the impact of thickness, material proportion, and relative positioning of the materials within the vibration isolation wall composed of EPS material and concrete. Research indicates that with an increase in the burial depth of a single material vibration isolation wall, its effective vibration isolation frequency range gradually widens. When the burial depth of the vibration isolation wall exceeds the tunnel burial depth, the vibration isolation effect is optimal. Composite vibration isolation walls, with thicknesses smaller than single-material vibration isolation walls, exhibit superior vibration isolation effects compared to their single-material counterparts. The effective vibration isolation frequency band of composite vibration isolation walls differs from that of single-material vibration isolation walls. Using the optimal-size vibration isolation wall of a single material as a composite vibration isolation wall enhances the vibration isolation effect of peak acceleration in the frequency domain by 16.58% and peak velocity by 16.95%. Moreover, frequency domain peak displacement experiences a 30.73% improvement in the vibration isolation effect.
为研究复合隔振墙在多种影响因素下对城郊铁路深埋隧道地表振动的隔振效果,首先建立了列车的整体数值模型。该模型求解了轮轨相互作用力,并应用于轨道-土体三维体耦合模型。随后,通过与实测数据对比验证了模型的可靠性。之后,研究了各类EPS材料隔振墙的隔振效果,重点探讨了由EPS材料与混凝土组成的隔振墙中材料厚度、材料比例及材料相对位置的影响。研究表明,单一材料隔振墙的埋深增加时,其有效隔振频率范围逐渐变宽。当隔振墙埋深超过隧道埋深时,隔振效果最佳。厚度小于单一材料隔振墙的复合隔振墙,其隔振效果优于单一材料隔振墙。复合隔振墙的有效隔振频带与单一材料隔振墙不同。将单一材料的最优尺寸隔振墙用作复合隔振墙,在频域中可使峰值加速度的隔振效果提高16.58%,峰值速度提高16.95%。此外,频域峰值位移的隔振效果提高了30.73%。