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With China's high-speed rail network undergoing rapid expansion, turnouts constitute critical elements whose safety and stability are essential to railway operation. At present, the efficiency of wheel-rail force safety monitoring conducted in the small hours reserved for the construction and maintenance of operating lines without marking train operation lines is relatively low. To enhance the efficiency of turnout safety monitoring, in this study, a three-dimensional BIM model of the No. 42 turnout was established and a corresponding wheel-rail force monitoring scheme was devised. Collision detection for monitoring equipment placement and construction process simulation was conducted using Navisworks, such that the rationality of cable routing and the precision of construction sequence alignment were improved. A train wheel-rail force analysis program was developed in MATLAB R2022b to perform signal filtering, and static calibration was applied to calculate key safety evaluation indices-namely, the coefficient of derailment and the rate of wheel load reduction-which were subsequently analyzed. The safety of the No. 42 turnout and the effectiveness of the proposed monitoring scheme were validated, theoretical support was provided for train operational safety and turnout maintenance, and technical guidance was offered for whole-life-cycle management and green, sustainable development of railway infrastructure.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12300579 | PMC |
http://dx.doi.org/10.3390/s25144294 | DOI Listing |
Sensors (Basel)
July 2025
College of Urban Rail Transportation, Shanghai University of Engineering Science, Shanghai 201600, China.
With China's high-speed rail network undergoing rapid expansion, turnouts constitute critical elements whose safety and stability are essential to railway operation. At present, the efficiency of wheel-rail force safety monitoring conducted in the small hours reserved for the construction and maintenance of operating lines without marking train operation lines is relatively low. To enhance the efficiency of turnout safety monitoring, in this study, a three-dimensional BIM model of the No.
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July 2025
China Railway Materials Group Operation and Maintenance Technology Co., Ltd, Chengdu, China.
This study analyzed different contact theories and models for simulating rail wear in the turnout areas. The typical cross-sections of the high-speed turnout switch and frog areas are selected. Normal and tangential contact models of wheel-rail are compared.
View Article and Find Full Text PDFMaterials (Basel)
April 2025
College of Urban Rail Transportation, Shanghai University of Engineering Science, Shanghai 201600, China.
This study develops a quantitative framework to assess performance degradation and damage evolution in CRTS I ballastless track slabs. Based on the impact-echo method, the internal void distribution characteristics of the new and old track slabs were obtained. The track slabs were sampled separately by drilling cores to verify the distribution of voids, and uniaxial compression tests were conducted simultaneously to quantify the attenuation of bearing capacity.
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April 2025
Department of Basic, Hebei University of Water Resources and Electric Engineering, Cangzhou, Hebei, China.
This article introduces a groundbreaking approach for accurately gauging high-frequency wheel-rail forces, taking into account the impact of wheelset vibration modes on measurement outcomes. The method relies on lateral and vertical acceleration data from the left and right axle box positions, combined with a finite element model, to determine the system's frequency response function. Subsequently, it inverts the lateral and vertical wheel rail forces of both wheels.
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April 2025
State Key Laboratory of Rail Transit Vehicle System, Southwest Jiaotong University, Chengdu, 610031, China.
With respect to high-speed trains, a significant proportion of interior noise is caused by high-frequency vibrations, which are generated at the wheel-rail contact and transmitted through the secondary suspension system in the bogie, to the carbody. Among suspension components, the effect of the traction rod is always underestimated. To research this structure-borne sound transmission, a structure-borne sound model of the traction rod was established, and introduced into a 3D train/track coupled dynamic model.
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