RISS 학술연구정보서비스

검색
다국어 입력

http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.

변환된 중국어를 복사하여 사용하시면 됩니다.

예시)
  • 中文 을 입력하시려면 zhongwen을 입력하시고 space를누르시면됩니다.
  • 北京 을 입력하시려면 beijing을 입력하시고 space를 누르시면 됩니다.
닫기
    인기검색어 순위 펼치기

    RISS 인기검색어

      KCI등재 SCIE SCOPUS

      Low-Frequency Vibration Control of Metro Slab Track Based on Locally Resonant Theory

      한글로보기

      https://www.riss.kr/link?id=A108474799

      • 0

        상세조회
      • 0

        다운로드
      서지정보 열기
      • 내보내기
      • 내책장담기
      • 공유하기
      • 오류접수

      부가정보

      다국어 초록 (Multilingual Abstract)

      Vibration control has always been one of the research hotspots in the field of urban metro system. Due to the unsatisfactory application effect of traditional vibration damping technology in practice, a novel method, based on the locally resonant theo...

      Vibration control has always been one of the research hotspots in the field of urban metro system. Due to the unsatisfactory application effect of traditional vibration damping technology in practice, a novel method, based on the locally resonant theory, was introduced into metro vibration damping system to improve the low-frequency vibration reduction effect. Meanwhile, the new metro vibration reduction slab track was designed. Furthermore, the coupled model of the metro vehicle-slab track was established and verified, and the reduction effect of the new metro slab track on low-frequency vibration under the action of metro vehicles was analyzed. Results show that: 1) The new vibration reduction slab track is really in control of the low-frequency vibration (50 − 100 Hz), and the attenuation effect can reach 10 dB; 2) The new slab track has multiple low-frequency vibration band gaps, which can achieve multi-frequency vibration reduction; 3) The new slab track can reduce the vibration acceleration of the track, which can improve the comfort level of the vehicle. Therefore, the local resonance theory enriches the existing metro vibration reduction design theory and provides a method for the design of the metro vibration control.

      더보기

      참고문헌 (Reference) 논문관계도

      1 Wang P, "Wave propagation control in periodic track structure through local resonance mechanism" 25 (25): 3062-3074, 2018

      2 Kuo CM, "Vibration characteristics of floating slab track" 317 (317): 1017-1034, 2008

      3 Zhai WM, "Vehicle-track coupled dynamics" Science Press 2015

      4 Kushwaha MS, "Theory of acoustic band structure of periodic elastic composites" 49 (49): 2313-2322, 1994

      5 Zhang LW, "Theoretical study and parameter design of damping shock absorbers on track slabs of composite track bed systems" 39 (39): 234-239, 2019

      6 Liu HP, "Theoretical modelling and effectiveness study of rail vibration absorber for noise control" 323 (323): 594-608, 2009

      7 Connollya DP, "The growth of railway ground vibration problems-A review" 568 : 1276-1282, 2015

      8 Hussein MFM, "The effect of end bearings on the dynamic behaviour of floating-slab tracks with discrete slab units floating-slab tracks with discrete slab units" 5 (5): 38-46, 2017

      9 Lombaert G, "The control of ground-borne vibrations from railway traffic by means of continuous floating slabs" 297 (297): 946-961, 2006

      10 Liu PH, "Test and analysis on vibration of differenttrack structures in tunnel" 33 (33): 31-36, 2014

      1 Wang P, "Wave propagation control in periodic track structure through local resonance mechanism" 25 (25): 3062-3074, 2018

      2 Kuo CM, "Vibration characteristics of floating slab track" 317 (317): 1017-1034, 2008

      3 Zhai WM, "Vehicle-track coupled dynamics" Science Press 2015

      4 Kushwaha MS, "Theory of acoustic band structure of periodic elastic composites" 49 (49): 2313-2322, 1994

      5 Zhang LW, "Theoretical study and parameter design of damping shock absorbers on track slabs of composite track bed systems" 39 (39): 234-239, 2019

      6 Liu HP, "Theoretical modelling and effectiveness study of rail vibration absorber for noise control" 323 (323): 594-608, 2009

      7 Connollya DP, "The growth of railway ground vibration problems-A review" 568 : 1276-1282, 2015

      8 Hussein MFM, "The effect of end bearings on the dynamic behaviour of floating-slab tracks with discrete slab units floating-slab tracks with discrete slab units" 5 (5): 38-46, 2017

      9 Lombaert G, "The control of ground-borne vibrations from railway traffic by means of continuous floating slabs" 297 (297): 946-961, 2006

      10 Liu PH, "Test and analysis on vibration of differenttrack structures in tunnel" 33 (33): 31-36, 2014

      11 Pu XB, "Surface-wave attenuation by periodic pile barriers in layered soils" 180 : 177-187, 2018

      12 Wen YP, "Study on vibration suppression of track system via double rail vibration absorber" 2020 : 1-12, 2020

      13 Sánchez-Pérez JV, "Sound attenuation by a two-dimensional array of rigid cylinders" 80 : 5325-5328, 1998

      14 Meseguer F, "Sound attenuation by a two-dimensional array of rigid cylinders" 80 (80): 5325-5328, 1998

      15 Auersch L, "Realistic axle-load spectra from ground vibrations measured near railway lines" 3 (3): 180-200, 2015

      16 Kouroussis G, "Railway-induced ground vibrations-A review of vehicle effects" 2 (2): 69-110, 2014

      17 Wolf S, "Potential low frequency ground vibration (<6.3 Hz) impacts from underground LRT operations" 267 (267): 651-661, 2003

      18 n XS, "Phononic crystals" National Defend Industry Press 206-214, 2009

      19 Wen YP, "Performances of dynamic absorbers for urban rail vehicle body considering effects of vehicle-track coupling" 35 (35): 53-62, 2016

      20 Dumitriu M, "On the rolling noise reduction by using the rail damper" 10 (10): 87-95, 2017

      21 Wu TX, "On the railway track dynamics with rail vibration absorber for noise reduction" 309 (309): 739-755, 2008

      22 Claeys CC, "On the potential of tuned resonators to obtain low-frequency vibrational stop bands in periodic panels" 332 (332): 1418-1436, 2013

      23 Paixão A, "Numerical simulations to improve the use of under sleeper pads at transition zones to railway bridges" 164 : 169-182, 2018

      24 Xiang J, "New model for vibration analysis of low vibration track" 2008 : 1-, 2008

      25 Zhu SY, "Low-frequency vibration control of floating slab tracks using dynamic vibration absorbers" 53 (53): 1296-1314, 2015

      26 Xiao Y, "Longitudinal wave band gaps in metamaterial-based elastic rods containing multi-degree of freedom resonators" 14 : 033042-, 2012

      27 Liu ZY, "Locally resonant sonic materials" 289 (289): 1734-1736, 2000

      28 Sharma B, "Local resonance and Bragg bandgaps in sandwich beams containing periodically inserted resonators" 364 : 133-146, 2016

      29 Xu K, "Investigating the influence of rail grinding on stability, vibration, and ride comfort of high-speed EMUs using multi-body dynamics modelling" 57 (57): 1621-1642, 2019

      30 Wang JW, "Influences of stiffness and damping deviations of dynamic vibration absorber on low-frequency vibration control of floating slab track" 62 (62): 5-10, 2018

      31 Chen YH, "Influence of dynamic vibration absorber for rail on vehicle-track vibrations" 61 (61): 37-41, 2017

      32 Mead DJ, "Free wave propagation in periodically supported, infinite beams" 11 (11): 181-197, 1970

      33 Mazilu T, "Experimental study on the performance of a rail damper" 400 : 062018-, 2018

      34 Squicciarini G, "Experimental procedures for testing the performance of rail dampers" 359 : 21-39, 2015

      35 Zeng ZP, "Experimental investigation on the vibration reduction characteristics of an optimized heavy haul railway low-vibration track" 1539564-, 2019

      36 Liu ZY, "Elastic wave scattering by periodic structures of spherical objects : Theory and experiment" 62 (62): 2446-2457, 2000

      37 Sigalas MM, "Elastic and acoustic wave band structure" 1992 (1992): 377-382, 1992

      38 Sung D, "Effect of additional anti-vibration sleeper track considering sleeper spacing and track support stiffness on reducing low-frequency vibrations" 263 : 120140-, 2020

      39 Zong ZX, "Design method for multiple dynamic absorbers to reduce the vibration of an urban rail vehicle body" 39 (39): 154-162, 2020

      40 Vasseur JO, "Complete acoustic band-gaps in periodic fiber-reinforced composite-materials-the carbon-epoxy composite and some metallic systems" 6 (6): 8759-8770, 1999

      41 Gao M, "Comparative analysis of vibration measurement between Qingdao metro line 3 on rock foundation and Shanghai metro line 10 on soft foundation" 42 (42): 468-474, 2020

      42 Qian DH, "Bandgap properties in locally resonant phononic crystal double panel structures with periodically attached spring-mass resonators" 380 (380): 3319-3325, 2016

      43 Sigalas MM, "Band-structure of elastic-waves in 2-dimentional systems" 86 (86): 141-143, 1993

      44 Kushwaha MS, "Band-gap engineering in periodic elastic composites" 64 (64): 1085-1087, 1994

      45 Sigalas MM, "Attenuation of multiple-scattered sound" 36 (36): 241-246, 1996

      46 Zhang LQ, "Application of dynamic vibration absorbers in low-frequency vibration control of floating slab tracks" 33 (33): 212-129, 2016

      47 Qu XY, "Analysis of the vibration mitigation characteristics of the ballasted ladder track with elastic elements" 11 : 6780-, 2019

      48 Pai PF, "Acoustic metamaterial beams based on multi-frequency vibration absorbers" 79 : 195-205, 2014

      49 Kushwaha MS, "Acoustic band structure of periodic elastic composites" (71) : 2022-2025, 1993

      50 Wang G, "Accurate evaluation of lowest band gaps in ternary locally resonant phononic crystals" 15 (15): 1843-1848, 2006

      51 Mead DJ, "A new method of analyzing wave propagation in periodic structures : Applications to periodic Timoshenko beams and stiffened plates" 104 (104): 9-27, 1986

      더보기

      분석정보

      View

      상세정보조회

      0

      Usage

      원문다운로드

      0

      대출신청

      0

      복사신청

      0

      EDDS신청

      0

      동일 주제 내 활용도 TOP

      더보기

      주제

      연도별 연구동향

      연도별 활용동향

      연관논문

      연구자 네트워크맵

      공동연구자 (7)

      유사연구자 (20) 활용도상위20명

      이 자료와 함께 이용한 RISS 자료

      나만을 위한 추천자료

      해외이동버튼