Analytical study on the dynamic displacement response of a curved track subjected to moving loads
A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was pro- posed. The track structure was modeled as a planar curved Timoshenko beam periodically supported by the double-layer spring-damping elements. The general dynamic displacement response induce...
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Published in: | Journal of Zhejiang University. A. Science Vol. 14; no. 12; pp. 867 - 879 |
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Abstract | A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was pro- posed. The track structure was modeled as a planar curved Timoshenko beam periodically supported by the double-layer spring-damping elements. The general dynamic displacement response induced by the moving loads along the curve on the elastic semi-infinite space was firstly obtained in the frequency domain, according to the Duhamel integral and the dynamic reciprocity theorem. In the case of the periodic curved track structure subjected to moving loads, the dynamic displacement equation was simplified into a form of summation within the basic track cell instead of the integral. The transfer function for the curved track was expressed in the form of a transfer matrix. Single and series moving loads were involved in the calculation program. For the verification of the analytical model, the mid-span vertical deflection of a simply support curved beam subjected to moving load was recalculated and compared with the same case in the reference. The research results indicate that: under the same moving loads, the displacement response of the curved track decreases slightly with the increasing track radius, and the displacement response of the curved track with the radius greater than or equal to 600 m is almost equivalent to the displacement response of the straight track; the frequency spectrum of the curved track is more abundant than that of the straight track, which may result in more wheel-rail resonance and rail corrugation in the curved lines. |
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AbstractList | A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was pro- posed. The track structure was modeled as a planar curved Timoshenko beam periodically supported by the double-layer spring-damping elements. The general dynamic displacement response induced by the moving loads along the curve on the elastic semi-infinite space was firstly obtained in the frequency domain, according to the Duhamel integral and the dynamic reciprocity theorem. In the case of the periodic curved track structure subjected to moving loads, the dynamic displacement equation was simplified into a form of summation within the basic track cell instead of the integral. The transfer function for the curved track was expressed in the form of a transfer matrix. Single and series moving loads were involved in the calculation program. For the verification of the analytical model, the mid-span vertical deflection of a simply support curved beam subjected to moving load was recalculated and compared with the same case in the reference. The research results indicate that: under the same moving loads, the displacement response of the curved track decreases slightly with the increasing track radius, and the displacement response of the curved track with the radius greater than or equal to 600 m is almost equivalent to the displacement response of the straight track; the frequency spectrum of the curved track is more abundant than that of the straight track, which may result in more wheel-rail resonance and rail corrugation in the curved lines. A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was proposed. The track structure was modeled as a planar curved Timoshenko beam periodically supported by the double-layer spring-damping elements. The general dynamic displacement response induced by the moving loads along the curve on the elastic semi-infinite space was firstly obtained in the frequency domain, according to the Duhamel integral and the dynamic reciprocity theorem. In the case of the periodic curved track structure subjected to moving loads, the dynamic displacement equation was simplified into a form of summation within the basic track cell instead of the integral. The transfer function for the curved track was expressed in the form of a transfer matrix. Single and series moving loads were involved in the calculation program. For the verification of the analytical model, the mid-span vertical deflection of a simply support curved beam subjected to moving load was recalculated and compared with the same case in the reference. The research results indicate that: under the same moving loads, the displacement response of the curved track decreases slightly with the increasing track radius, and the displacement response of the curved track with the radius greater than or equal to 600 m is almost equivalent to the displacement response of the straight track; the frequency spectrum of the curved track is more abundant than that of the straight track, which may result in more wheel-rail resonance and rail corrugation in the curved lines. |
Author | Ke-fei LI Wei-ning LIU Valeri MARKINE Zhi-wei HAN |
AuthorAffiliation | tSehool of Civil Engineering, Beijing Jiaotong University Beijing 100044, China) Beijing MTR Construction Administration Corporation, Beijing 100037, China Railway Engineering Group, Faculty of Civil Engineering and Geosciences, Delft University of Technology, the Netherlands |
Author_xml | – sequence: 1 givenname: Ke-fei surname: Li fullname: Li, Ke-fei email: kefeilee@sina.com organization: School of Civil Engineering, Beijing Jiaotong University, Beijing MTR Construction Administration Corporation – sequence: 2 givenname: Wei-ning surname: Liu fullname: Liu, Wei-ning organization: School of Civil Engineering, Beijing Jiaotong University – sequence: 3 givenname: Valeri surname: Markine fullname: Markine, Valeri organization: Railway Engineering Group, Faculty of Civil Engineering and Geosciences, Delft University of Technology – sequence: 4 givenname: Zhi-wei surname: Han fullname: Han, Zhi-wei organization: Beijing MTR Construction Administration Corporation |
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CitedBy_id | crossref_primary_10_1016_j_ymssp_2021_108393 crossref_primary_10_1177_0954409718754470 crossref_primary_10_1080_00423114_2022_2057864 crossref_primary_10_1016_j_jsv_2020_115397 crossref_primary_10_1177_1077546320930910 crossref_primary_10_1007_s40515_023_00300_7 crossref_primary_10_1016_j_apm_2022_10_047 |
Cites_doi | 10.1016/0022-460X(80)90397-1 10.1016/S0022-460X(86)80043-8 10.1016/0020-7683(88)90033-9 10.1016/0022-460X(89)90538-5 10.1006/jsvi.2000.3355 10.1121/1.1388002 10.1631/jzus.A0900304 10.1016/0022-460X(71)90662-6 10.1115/1.3641794 10.1016/0022-460X(82)90290-5 10.1016/S0022-460X(75)80213-6 10.1006/jsvi.1995.0531 10.1080/14786440208564480 10.1061/JSDEAG.0002068 |
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Keywords | U211.3 Curved track Moving loads Transfer function Analytical solution Dynamic displacement |
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Notes | Curved track, Moving loads, Dynamic displacement, Analytical solution, Transfer function A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was pro- posed. The track structure was modeled as a planar curved Timoshenko beam periodically supported by the double-layer spring-damping elements. The general dynamic displacement response induced by the moving loads along the curve on the elastic semi-infinite space was firstly obtained in the frequency domain, according to the Duhamel integral and the dynamic reciprocity theorem. In the case of the periodic curved track structure subjected to moving loads, the dynamic displacement equation was simplified into a form of summation within the basic track cell instead of the integral. The transfer function for the curved track was expressed in the form of a transfer matrix. Single and series moving loads were involved in the calculation program. For the verification of the analytical model, the mid-span vertical deflection of a simply support curved beam subjected to moving load was recalculated and compared with the same case in the reference. The research results indicate that: under the same moving loads, the displacement response of the curved track decreases slightly with the increasing track radius, and the displacement response of the curved track with the radius greater than or equal to 600 m is almost equivalent to the displacement response of the straight track; the frequency spectrum of the curved track is more abundant than that of the straight track, which may result in more wheel-rail resonance and rail corrugation in the curved lines. 33-1236/O4 ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 23 |
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PublicationTitle | Journal of Zhejiang University. A. Science |
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References | Ding, Gupta, Liu, Lombaert, Degrande (CR5) 2010; 11 Love (CR9) 1927 Degrande, Lombaert (CR3) 2001; 110 Yong, Lin (CR20) 1989; 129 Zhang (CR22) 2004 Bickford, Strom (CR1) 1975; 39 Zhai (CR21) 2002 Genin, Ting, Vafa (CR6) 1982; 81 Liu, Zhang (CR8) 2004; 21 Tan, Shore (CR15) 1968; 94 Stokes (CR12) 1849 Volterra, Morell (CR17) 1961; 28 Sun, Li, Zhang (CR14) 2009; 41 Bickford, Maganty (CR2) 1986; 108 Timošenko (CR16) 1953 Den Hartog (CR4) 1928; 5 Kawakami, Sakiyama, Matsuda, Morita (CR7) 1995; 187 Montalvão e Silva, Urgueira (CR10) 1988; 24 Yang, Wu, Yau (CR19) 2001; 242 Wang, Nettleton, Keita (CR18) 1980; 68 Sun, Li (CR13) 2009; 29 Rao (CR11) 1971; 16 AEH Love (3543_CR9) 1927 J Genin (3543_CR6) 1982; 81 CP Tan (3543_CR15) 1968; 94 Y Yong (3543_CR20) 1989; 129 WM Zhai (3543_CR21) 2002 JP Hartog Den (3543_CR4) 1928; 5 DY Ding (3543_CR5) 2010; 11 SGG Stokes (3543_CR12) 1849 JP Sun (3543_CR14) 2009; 41 SS Rao (3543_CR11) 1971; 16 TM Wang (3543_CR18) 1980; 68 WB Bickford (3543_CR2) 1986; 108 WN Liu (3543_CR8) 2004; 21 E Volterra (3543_CR17) 1961; 28 YQ Zhang (3543_CR22) 2004 G Degrande (3543_CR3) 2001; 110 YB Yang (3543_CR19) 2001; 242 WB Bickford (3543_CR1) 1975; 39 JM Montalvão e Silva (3543_CR10) 1988; 24 M Kawakami (3543_CR7) 1995; 187 JP Sun (3543_CR13) 2009; 29 SP Timošenko (3543_CR16) 1953 |
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The lowest natural frequency of circular arcs publication-title: Philosophical Magazine Series 7 contributor: fullname: Den Hartog – volume: 187 start-page: 381 issue: 3 year: 1995 end-page: 401 ident: CR7 article-title: In-plane and out-of-plane free vibrations of curved beams with variable sections publication-title: Journal of Sound and Vibration doi: 10.1006/jsvi.1995.0531 contributor: fullname: Morita – year: 1927 ident: CR9 publication-title: A Treatise on the Mathematical Theory of Elasticity contributor: fullname: Love – volume: 187 start-page: 381 issue: 3 year: 1995 ident: 3543_CR7 publication-title: Journal of Sound and Vibration doi: 10.1006/jsvi.1995.0531 contributor: fullname: M Kawakami – volume: 5 start-page: 400 issue: 28 year: 1928 ident: 3543_CR4 publication-title: Philosophical Magazine Series 7 doi: 10.1080/14786440208564480 contributor: fullname: JP Hartog Den – volume: 68 start-page: 427 issue: 3 year: 1980 ident: 3543_CR18 publication-title: Journal of Sound and Vibration doi: 10.1016/0022-460X(80)90397-1 contributor: fullname: TM Wang – volume: 29 start-page: 139 issue: 4 year: 2009 ident: 3543_CR13 publication-title: Journal of Earthquake Engineering and Engineering Vibration contributor: fullname: JP Sun – volume-title: Vehicle-track Coupling Dynamics (Second Edition) year: 2002 ident: 3543_CR21 contributor: fullname: WM Zhai – volume: 21 start-page: 100 issue: 5 year: 2004 ident: 3543_CR8 publication-title: Engineering Mechanics contributor: fullname: WN Liu – volume: 24 start-page: 271 issue: 3 year: 1988 ident: 3543_CR10 publication-title: International Journal of Solids and Structures doi: 10.1016/0020-7683(88)90033-9 contributor: fullname: JM Montalvão e Silva – volume: 129 start-page: 99 issue: 1 year: 1989 ident: 3543_CR20 publication-title: Journal of Sound and Vibration doi: 10.1016/0022-460X(89)90538-5 contributor: fullname: Y Yong – volume: 110 start-page: 1379 issue: 3 year: 2001 ident: 3543_CR3 publication-title: Journal of the Acoustical Society of America doi: 10.1121/1.1388002 contributor: fullname: G Degrande – volume: 16 start-page: 551 issue: 4 year: 1971 ident: 3543_CR11 publication-title: Journal of Sound and Vibration doi: 10.1016/0022-460X(71)90662-6 contributor: fullname: SS Rao – volume: 28 start-page: 624 issue: 4 year: 1961 ident: 3543_CR17 publication-title: Journal of Applied Mechanics doi: 10.1115/1.3641794 contributor: fullname: E Volterra – volume-title: A Treatise on the Mathematical Theory of Elasticity year: 1927 ident: 3543_CR9 contributor: fullname: AEH Love – start-page: 707 volume-title: Transactions of the Cambridge Philosophical Society year: 1849 ident: 3543_CR12 contributor: fullname: SGG Stokes – volume: 11 start-page: 280 issue: 4 year: 2010 ident: 3543_CR5 publication-title: Journal of Zhejiang University-SCIENCE A (Applied Physics and Engineering) doi: 10.1631/jzus.A0900304 contributor: fullname: DY Ding – volume: 39 start-page: 135 issue: 2 year: 1975 ident: 3543_CR1 publication-title: Journal of Sound and Vibration doi: 10.1016/S0022-460X(75)80213-6 contributor: fullname: WB Bickford – volume: 242 start-page: 519 issue: 3 year: 2001 ident: 3543_CR19 publication-title: Journal of Sound and Vibration doi: 10.1006/jsvi.2000.3355 contributor: fullname: YB Yang – volume: 81 start-page: 469 issue: 4 year: 1982 ident: 3543_CR6 publication-title: Journal of Sound and Vibration doi: 10.1016/0022-460X(82)90290-5 contributor: fullname: J Genin – volume: 41 start-page: 811 issue: 6 year: 2009 ident: 3543_CR14 publication-title: Journal of Xi’an University of Architecture & Technology (Natural Science Edition) contributor: fullname: JP Sun – volume: 94 start-page: 2135 issue: 9 year: 1968 ident: 3543_CR15 publication-title: Journal of the Structural Division doi: 10.1061/JSDEAG.0002068 contributor: fullname: CP Tan – volume-title: History of the Strength of Materials year: 1953 ident: 3543_CR16 contributor: fullname: SP Timošenko – volume-title: Analysis on the Metro-induced Vibration Response and the Effect of the Track Structure Parameters year: 2004 ident: 3543_CR22 contributor: fullname: YQ Zhang – volume: 108 start-page: 503 issue: 3 year: 1986 ident: 3543_CR2 publication-title: Journal of Sound and Vibration doi: 10.1016/S0022-460X(86)80043-8 contributor: fullname: WB Bickford |
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Snippet | A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was pro- posed. The track structure was modeled as a... A closed-form out-of-plane dynamic displacement response of a curved track subjected to moving loads was proposed. The track structure was modeled as a planar... |
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SubjectTerms | Civil Engineering Classical and Continuum Physics Curved Displacement Dynamics Engineering Industrial Chemistry/Chemical Engineering Integrals Loads (forces) Mathematical analysis Mathematical models Mechanical Engineering Moving loads Timoshenko梁 位移响应 动荷载作用 平面位移 弯曲线 曲线轨道 移动荷载 轨道结构 |
Title | Analytical study on the dynamic displacement response of a curved track subjected to moving loads |
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