Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains

In railway freight transport, the vertical deflection of the load-carrying beam on well-hole car accounts for most clearance intrusions at the bottom when running on curves. This paper proposed a deflection calculation and detection method via in-transit strain measurement at multiple beam locations...

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Main Authors: Wei Zhou, Lin Chen, Tiantian Wang, Zunjun Gao, Jie He, Xifeng Liang
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8765710/
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spelling doaj-c35fe174ec6c4c2987b199c30baa6e492021-04-05T17:05:57ZengIEEEIEEE Access2169-35362019-01-01710469210470910.1109/ACCESS.2019.29296498765710Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight TrainsWei Zhou0Lin Chen1Tiantian Wang2https://orcid.org/0000-0003-0137-7881Zunjun Gao3Jie He4Xifeng Liang5Key Laboratory of Traffic Safety on Track, Ministry of Education, Central South University, Changsha, ChinaKey Laboratory of Traffic Safety on Track, Ministry of Education, Central South University, Changsha, ChinaKey Laboratory of Traffic Safety on Track, Ministry of Education, Central South University, Changsha, ChinaChina Special Article Logistics Company Ltd., Beijing, ChinaChina State Railway Group Company, Ltd., Beijing, ChinaKey Laboratory of Traffic Safety on Track, Ministry of Education, Central South University, Changsha, ChinaIn railway freight transport, the vertical deflection of the load-carrying beam on well-hole car accounts for most clearance intrusions at the bottom when running on curves. This paper proposed a deflection calculation and detection method via in-transit strain measurement at multiple beam locations. First, the theoretical mechanical model between the deflection curve and support strains is built, by defining the variable function of bending moment and second moment of area. Quadratic integration constants are calculated employing the symmetric boundary conditions in angle and deflection. Then, the proposed analytical model is validated by the numerical simulation and on-site experiment. Beam deflections by proposed method deviate from simulation within 4.96%, while that deviation rises to 8.11% in loading experiment due to loading difference. In application, in-transit strain data are collected at the two support bottoms. Dynamic and synthetic deflection of load-carrying beams on different line curves is analyzed by theoretical analysis. The maximum deflection reaches 26.1 mm in dynamic and 65.5 mm in synthetic when the freight train runs on a 405-m radius line curve at the speed of 17.2 km/h. In safety evaluation, maximum rigid transformer displacement is calculated by identified load and measured suspension stiffness coefficient. Considering beam deflection and suspension displacement, the maximum vertical movement of the transformer is 110.4 mm, which does not exceed the allowable distance, 250 mm. Research outcomes demonstrate the effectiveness and reliability of the proposed method, which enables the real-time deflection detection and safety evaluation in freight train transport, as well as estimation of the maximum deflection in forthcoming transport.https://ieeexplore.ieee.org/document/8765710/Deflection calculationwell-hole freight trainstrain measurementnon-uniform beamsafety evaluation
collection DOAJ
language English
format Article
sources DOAJ
author Wei Zhou
Lin Chen
Tiantian Wang
Zunjun Gao
Jie He
Xifeng Liang
spellingShingle Wei Zhou
Lin Chen
Tiantian Wang
Zunjun Gao
Jie He
Xifeng Liang
Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains
IEEE Access
Deflection calculation
well-hole freight train
strain measurement
non-uniform beam
safety evaluation
author_facet Wei Zhou
Lin Chen
Tiantian Wang
Zunjun Gao
Jie He
Xifeng Liang
author_sort Wei Zhou
title Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains
title_short Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains
title_full Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains
title_fullStr Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains
title_full_unstemmed Deflection Calculation and Dynamic Detection of Non-Uniform Beam via Multi-Point Strain Measurement for Freight Trains
title_sort deflection calculation and dynamic detection of non-uniform beam via multi-point strain measurement for freight trains
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description In railway freight transport, the vertical deflection of the load-carrying beam on well-hole car accounts for most clearance intrusions at the bottom when running on curves. This paper proposed a deflection calculation and detection method via in-transit strain measurement at multiple beam locations. First, the theoretical mechanical model between the deflection curve and support strains is built, by defining the variable function of bending moment and second moment of area. Quadratic integration constants are calculated employing the symmetric boundary conditions in angle and deflection. Then, the proposed analytical model is validated by the numerical simulation and on-site experiment. Beam deflections by proposed method deviate from simulation within 4.96%, while that deviation rises to 8.11% in loading experiment due to loading difference. In application, in-transit strain data are collected at the two support bottoms. Dynamic and synthetic deflection of load-carrying beams on different line curves is analyzed by theoretical analysis. The maximum deflection reaches 26.1 mm in dynamic and 65.5 mm in synthetic when the freight train runs on a 405-m radius line curve at the speed of 17.2 km/h. In safety evaluation, maximum rigid transformer displacement is calculated by identified load and measured suspension stiffness coefficient. Considering beam deflection and suspension displacement, the maximum vertical movement of the transformer is 110.4 mm, which does not exceed the allowable distance, 250 mm. Research outcomes demonstrate the effectiveness and reliability of the proposed method, which enables the real-time deflection detection and safety evaluation in freight train transport, as well as estimation of the maximum deflection in forthcoming transport.
topic Deflection calculation
well-hole freight train
strain measurement
non-uniform beam
safety evaluation
url https://ieeexplore.ieee.org/document/8765710/
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AT linchen deflectioncalculationanddynamicdetectionofnonuniformbeamviamultipointstrainmeasurementforfreighttrains
AT tiantianwang deflectioncalculationanddynamicdetectionofnonuniformbeamviamultipointstrainmeasurementforfreighttrains
AT zunjungao deflectioncalculationanddynamicdetectionofnonuniformbeamviamultipointstrainmeasurementforfreighttrains
AT jiehe deflectioncalculationanddynamicdetectionofnonuniformbeamviamultipointstrainmeasurementforfreighttrains
AT xifengliang deflectioncalculationanddynamicdetectionofnonuniformbeamviamultipointstrainmeasurementforfreighttrains
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