• Title/Summary/Keyword: Running Track

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A Running Safety Analysis of Railway Vehicle passing through Curve According to Rail Inclination Change (곡선부 통과열차의 레일 경좌 변화에 따른 주행안전성 해석)

  • Son, Myoung-Sun;Eom, Beom-Gyu;Kang, Bu-Byoung;Lee, Hi-Sung
    • Proceedings of the KSR Conference
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    • 2011.10a
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    • pp.1922-1928
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    • 2011
  • The rail inclination produces a wider bearing area between the wheel and the rail by moving the wheel rail contact area away from the gauge towards the centre of the railhead, thus improving the wear pattern of the railhead and wheel treads. It is essential to keep the rail inclination within the allowable range to ensure optimum track geometry. Neglecting the rail inclination geometrical parameters in a track quality evaluation can cause safety of railway vehicle and serviceability problems. In this paper, we examined the effect of the rail inclination in general geometry state of the railway track using VI-Rail and analyzed running safety when the railway vehicle passing through curves depending on change of the rail inclination and running speed.

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Running safety evaluation of tilting vehicle when speed-up in curved track of conventional line (기존선 곡선선로에서 한국형 틸팅열차의 속도향상시 주행안전성 평가)

  • Ham, Young-Sam;Lee, Dong-Hyong;Kwon, Seok-Jin;Seo, Jung-Won;Jun, Hyun-Kyu
    • Proceedings of the KSR Conference
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    • 2010.06a
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    • pp.25-29
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    • 2010
  • Safety of railroad is result of reliability which is received from test & evaluation of system. Railroad system is consisted of various sub system such as vehicle, supply of electric power, signal, communication, rail track construction, operation. To secure safety of railroad, evaluation about parts, assembly, sub system, whole system etc.. that compose railroad is essential. In this paper, I wish to describe for results that analyze korean tilting vehicle's derailment coefficient developed by national research achievement. Confirmed that is possible even if speed up, curved line department running speed that estimate korean tilting vehicle's running safety in curved line track of Jungang Line about 20 km/h than present operating speed.

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Mapping vertical bridge deformations to track geometry for high-speed railway

  • Gou, Hongye;Ran, Zhiwen;Yang, Longcheng;Bao, Yi;Pu, Qianhui
    • Steel and Composite Structures
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    • v.32 no.4
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    • pp.467-478
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    • 2019
  • Running safety and ride comfort of high speed railway largely depend on the track geometry that is dependent on the bridge deformation. This study presents a theoretical study on mapping the bridge vertical deformations to the change of track geometry. Analytical formulae are derived through the theoretical analysis to quantify the track geometry change, and validated against the finite element analysis and experimental data. Based on the theoretical formulae, parametric studies are conducted to evaluate the effects of key parameters on the track geometry of a high speed railway. The results show that the derived formulae provide reasonable prediction of the track geometry change under various bridge vertical deformations. The rail deflection increases with the magnitude of bridge pier settlement and vertical girder fault. Increasing the stiffness of the fasteners or mortar layer tends to cause a steep rail deformation curve, which is undesired for the running safety and ride comfort of high-speed railway.

A Study on New Measurement of Derailment Coefficient for Rolling Stocks (철도차량의 새로운 탈선계수 측정방법에 관한 연구)

  • Hong, Yong-Ki;You, Won-Hee;Lee, Hi-Sung
    • Proceedings of the KSR Conference
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    • 2007.11a
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    • pp.306-312
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    • 2007
  • The running safety of rolling stock is assessed by derailment coefficient. It requires lots of preparatory time, expenditure and high measurement technique to measure derailment coefficient. If derailment coefficient could be measured when track or vehicle is maintained, safety will be improved. The measurement and assessment of running safety is necessary for safety especially for the vehicles newly developed and started service. Therefore measurement of derailment coefficient is most important thing to secure running safety. In this paper, we examined new assessment method which could estimate derailment coefficient by measuring vibration acceleration and displacement of vehicle operating at actual track irrespective of time and place. The new method could be used effectively as a mean confirming running safety.

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Development of HSR slab track (고속철도 슬래브궤도개발)

  • 강윤석;노혁천;양신추;이진욱
    • Proceedings of the KSR Conference
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    • 2000.11a
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    • pp.303-310
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    • 2000
  • In this study the basic direction of conceptual design of new HSR(High Speed Railway) slab track was determined in the viewpoint of running safety, economic efficiency and maintenance costs. Based on the research results, a detailed conceptual design of HRS slab track is suggested. For the systematic development of slab track, a comparative study is carried out, comparing merits and demerits of each slab type, and used in the design process of slab track. To compensate the demerits of high cost in slab track construction, a program for determination of efficient slab section is coded and applied.

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Study on the Resonance in Trackbed of High-Speed Railway Considering Ground Condition (지반조건에 따른 고속철도 토공노반의 공진에 관한 연구)

  • Lee, Il-Wha;Hwang, Seon-Keun;Choi, Chan-Young
    • Proceedings of the Korean Geotechical Society Conference
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    • 2006.03a
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    • pp.1320-1325
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    • 2006
  • When the train running on the high-speed track, there is a speed band which track distortion is unusually increased according to the condition of track and roadbed. This speed is called critical velocity and physical parameter values are increased greatly. These phenomenon happened as high-speed train were developed, studied regularly through TGV 100 running test in France. As research result until now, the main reason is soft roadbed's bearing capacity. Wave propagation and track support capacity is varied by the ground characteristics. This paper achieved theoretical examination about resonance band(speed and frequency) that occurred in roadbed on the base rock in point of geotechnical engineering. The examination of resonance divides with ground response analysis, critical band analysis by the shear wave velocity of roadbed and train critical speed through the ground stratum.

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Theoretical Study for the Resonance Speed and Frequency in Roadbed on the Base Rock (암반상 토노반 구간에서의 공진 속도 및 주파수에 대한 이론적 연구)

  • Lee Il-Wha;Hwang Seon-Keun;Lee Su-Hyung;Choi Chan-Young
    • Proceedings of the KSR Conference
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    • 2005.11a
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    • pp.443-447
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    • 2005
  • When the high-speed train running on the track, there is a speed band which track distortion is unusually increased according to the condition of track and roadbed. This speed is called critical velocity and physical parameter value increased greatly. These phenomenon happened as high-speed train were developed, studied regularly through TGV 100 running test in France. As research result until now, the main reason is soft roadbed's capacity. Wave propagation and track support capacity is varied by the site characteristics. This paper achieved theoretical examination about resonance band(speed and frequency) that occurred in roadbed on the base rock in point of geotechnical engineering. The examination of resonance divides with ground response analysis, critical band analysis by the shear wave velocity of roadbed, train critical speed through the ground stratum.

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A Parametric Studies to the Wheel Climb Derailment on the Curved track (곡선부 주행 중 타오름 탈선의 매개변수 연구)

  • Mok, Jin-Yong;Lee, Seung-Il;Lee, Hi-Sung;Hwang, Jeong-Taek
    • Proceedings of the KSR Conference
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    • 2006.11b
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    • pp.72-79
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    • 2006
  • Derailment is likely to have a direct connection with human life and must be eliminated. A traveling safety evaluation method based mainly on derailment coefficient has already established. But this method is very difficult because Derailment is caused by multiple factors. To evaluate the derailment factor of running train that runs on the curved track, we make use of mechanism that wheel loads and lateral forces were affected by track and rolling stock parameter. In this paper, deal with a search on the parameter and derailment factor. According to results of computer simulation value of Q/P, running safety is connected with operation velocity, curve radius, cant, track irregularity, suspension stiffness and static wheel load ratio, etc.

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A Study for Roll characteristic of Railway Vehicle (철도차량의 Roll 특성에 관한 연구)

  • Yang, Hee-Joo;Lee, Kang-Wun;Park, Kil-Bae;Seong, Jae-Ho
    • Proceedings of the KSR Conference
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    • 2006.11b
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    • pp.1184-1189
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    • 2006
  • Railway vehicle have three translational motions-longitudinal, vertical and lateral, and three rotational motions-rolling, pitching and yawing caused by track irregularity, wheel and rail characteristic, dynamic behaviors etc. The rolling motion in vehicle mainly happens in cases of the vehicles stationary and running on canted track. When the vehicle positioned in stationary on canted track, vehicle is inclined toward inside of installed cant due to gravity component. When the vehicle has running on a track with cant deficiency, vehicle is inclined toward outside of installed cant due to centrifugal force. The roll coefficient(s) is defined as the ratio between the angle of inclination of the vehicle($\eta$) and the angle of the rail level($\alpha$). This paper has noted the test method, test result and analysis result to calculate the roll coefficient according to UIC505-5, international standard

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A Quantitative analysis about Wheel Load Variations (실 주행열차의 윤중변동에 대한 정량적 분석)

  • Kim Hyun-Min;Oh Ji-Tack
    • Proceedings of the KSR Conference
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    • 2004.10a
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    • pp.728-732
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    • 2004
  • The purpose of this study is to examine wheel load variations on the bridge. It had been reported that wheel load variations involved un-sprung mass, sprung mass and train running speed, but there are no examples that measured in the running speed actuality track. In this experiment, Attach measurement sensor to equal distance on the track and measured wheel loads by using a dynamic shear strain technique.

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