• 제목/요약/키워드: collision speed

검색결과 505건 처리시간 0.025초

선수부 설계시 구조거동과 충돌격벽에 미치는 영향 (Collision Response of Bow Structure and Its Affected Collision Bulkhead in Bow Design)

  • 신영식;박명규
    • 한국항만학회지
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    • 제14권2호
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    • pp.219-231
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    • 2000
  • In this paper a complicated structural behavior in collision and its effects of energy translation to the collision bulkhead was examined through a methodology of the numerical simulation to obtain a ideal bow construction and a location of collision bulkhead against head on collision. In the present the bow structure is normally designed in consideration of its specific structural arrangements and internal and external loads in these area such as hydrostatic and dynamic pressure, wave impact and bottom slamming in accordance with the Classification rules, and the specific location of collision bulkhead by SOLAS requirement. By these studies the behavior of the bow collapse due to collision was synthetically evaluated for the different size of tankers and its operational speed limits, and by the results of these simulation it provides the optimal design concept for the bow construction to prevent the subsequent plastic deformation onto or near to the collision bulkhead boundary and to determine the rational location of collision bulkhead.

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A Study on the Threshold of Avoidance Sector in the New Evaluation of Collision Risk

  • Jeong Tae-Gweon
    • 한국항해항만학회지
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    • 제28권9호
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    • pp.799-802
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    • 2004
  • Evaluation of the quantitative risk of collision plays a key role in developing the expert system of navigation and collision avoidance. This study analysed thoroughly how to determine the threshold of avoidance sector as described in the new evaluation of collision risk, and suggested the collision risk obtained by the alteration of course and/or speed in order to pass clear qf each danger zone as the threshold of avoidance sector.

CRASHWORTHY DESIGN AND EVALUATION ON THE FRONT-END STRUCTURE OF KOREAN HIGH SPEED TRAIN

  • Koo, J.S.;Youn, Y.H.
    • International Journal of Automotive Technology
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    • 제5권3호
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    • pp.173-180
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    • 2004
  • An intensive study was conducted for the crash worthy structural design of the recently developed Korean High Speed Train (KHST). Two main design concepts were set up to protect both crews and passengers from serious injury in heavy collision accidents, and to reduce damage to the train itself in light collision accidents. A collision against a movable 15-ton rigid obstacle at 110 kph was selected from train accident investigations as the accident scenario for the heavy collisions. A train-to-train collision at the relative velocity of 16 kph was used for the light collision. The crashworthiness behaviors of KHST were numerically evaluated using FEM. Analysis results using 1-D collision dynamics model of the full rake consist and 3-D shell element model of the front end structure showed good crashworthy responses in a viewpoint of structural design. Occupant analyses and sled tests demonstrated that KHST performed well enough to protect occupants under the considered accident scenarios. Finally our numerical approaches were evaluated by a real scale collision test.

선수 충돌시 구조 붕괴 거동에 대한 수치해석(제1보) (Numerical Simulation of Structural Response in Bow Collision (1st Report))

  • 박명규
    • 한국해양공학회지
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    • 제14권2호
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    • pp.28-35
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    • 2000
  • In this paper a complicated structural behavior in collision and its effect of energy transmission to the collision bulkhead was examined through a methodology of the numerical simulation to obtain a ideal bow construction and a location of collision bulkhead against heat on collision. At present the bow structure is normally designed in consideration of its specific structural arrangement and internal and external loads in these areas such as hydrostatic and dynamic pressure wave impact and bottom slamming in accordance with the Classification rules and the specific location of collision bulkhead by SOLAS requirement. By these studies the behavior of the bow collapse due to collision was synthetically evaluated for the different size of tankers and its operational speed limits and by the results of these simulation it provides the optimal design concept for the bow construction to prevent the subsequent plastic deformation onto or near to the collision bulkhead boundary and to determine the rational location of collision bulkhead.

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교통사고 충돌해석의 속도변화 인자 및 신뢰성에 관한 연구 (Analysis about Speed Variations Factors and Reliability of Traffic Accident Collision Interpretation)

  • 임창식;최양원;정호교
    • 대한토목학회논문집
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    • 제31권4D호
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    • pp.539-546
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    • 2011
  • 자동차의 충돌해석은 다양한 형태로 구성되며, 충돌 중 차량에 작용되는 속도변화는 차량 간의 충돌정도나 차량 내에 탑승한 승객의 안전도를 평가하는 매우 중요한 요소로 활용된다. 이로 인해 충돌해석 시뮬레이션 프로그램을 활용한 속도변화의 결과치를 해석하는 방법들이 필요하게 된다. 그러나 다양한 충돌해석 시뮬레이션이 보급됨으로 인해 각 프로그램에 대한 신뢰성 평가가 요구되고 있다. 본 연구에서는 전혀 다른 물리적 접근방식을 채택하는 충돌해석 프로그램인 EDSMAC과 PC-CRASH프로그램을 활용하여 초기 입력조건 중 차량의 무게, 무게중심, 구름저항, 강성계수, 제동력 등 여러 충돌인자들을 일정한 범위 내에서 값을 변화시키면서 1차원 정면 및 2차원 측면직각충돌 실험을 수행하였다. 그리고 충돌인자들이 출력결과 값인 충돌 중 속도변화에 미치는 영향에 대해 알아보았다. 본 연구 결과, 두 시뮬레이션 프로그램 모두 차량의 무게, 무게중심, 제동력에 대해 동일한 속도변화의 패턴을 보였다. 차량의 강성계수는 EDSMAC에만 반응하였으며, 구름저항계수는 속도변화에 별다른 영향을 미치지 못하였다. 그러나 속도변화의 값에 대해서는 다소 상대적인 차이를 나타내었는데, 이는 각 시뮬레이션 프로그램에 고정된 물성치 값이 그대로 적용됨으로 인한 반응의 결과로 해석된다. 따라서 시뮬레이션 프로그램의 고정 값을 고려한 속도분석으로 교통사고 충돌해석에 대한 신뢰성을 향상시켜야 할 것이다.

자동차 추돌사고 속도분석에 관한 사례 연구 (A Case Study on Speed Analysis of the Rear-end Collision Accident)

  • 김대봉;윤대권;박정호;하성용;박제철
    • 한국자동차공학회논문집
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    • 제24권6호
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    • pp.724-729
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    • 2016
  • This case study carried out a rear-end collision accident analysis and physical simulation of an SUV and passenger car. The speed of the SUV by physical analysis is 71 ~ 87 km/h, while the speed of the passenger car is 6 ~ 22 km/h. Simulation results showed the optimal speed conditions for the SUV was 71 km/h, and 7 km/h for the passenger car. Simulations can be verified for the collision analysis. The findings of this study are expected to increase the reliability of accident reconstructions.

Dynamic analysis of high-speed railway train-bridge system after barge collision

  • Xia, Chaoyi;Ma, Qin;Song, Fudong;Wu, Xuan;Xia, He
    • Structural Engineering and Mechanics
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    • 제67권1호
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    • pp.9-20
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    • 2018
  • In this paper, a framework is proposed for dynamic analysis of train-bridge systems with a damaged pier after barge collision. In simulating the barge-pier collision, the concrete pier is considered to be nonlinear-inelastic, and the barge-bow is modeled as elastic-plastic. The changes of dynamic properties and deformation of the damaged pier, and the additional unevenness of the track induced by the change of deck profile, are analyzed. The dynamic analysis model for train-bridge coupling system with a damaged pier is established. Based on the framework, an illustrative case study is carried out with a $5{\times}32m$ simply-supported PC box-girder bridge and the ICE3 high-speed train, to investigate the dynamic response of the bridge with a damaged pier after barge collision and its influence on the running safety of high-speed train. The results show that after collision by the barge, the vibration properties of the pier and the deck profile of bridge are changed, forming an additional unevenness of the track, by which the dynamic responses of the bridge and the car-body accelerations of the train are increased, and the running safety of high-speed train is affected.

3차원 충돌해석 정보를 이용한 측면 충돌 사고 재구성 (A Study on the Side Collision Accident Reconstruction Using 3-Dimensional Crash Analysis)

  • 장인식;김일동
    • 한국자동차공학회논문집
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    • 제16권1호
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    • pp.52-63
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    • 2008
  • The side collision reconstruction algorithm is developed using three dimensional car crash analysis. Medium size passenger car is modeled for finite element analysis. Total 24 side collision configurations, four different speed and six different angle, are set up for making side collision database. Deformation index and degree index are built up for each collision case. Deformation index is a kind of deformation estimate averaging displacement of side door of crashed car from finite element analysis result. Angle index is constructed measuring deformed angle of crashing car. There are two kinds of angle index, one is measured at driver's side and the other is measured at passenger's side. Also a collision analysis information in side of cars is used for giving a basis for scientific and practical reason in a reconstruction of the car accident. The analysis program, LS-DYNA3D is utilized for finite element analysis program for a collision analysis. Those database are used for side collision reconstruction. Side collision reconstruction algorithm is developed, and applied to find the collision conditions before the accident occurs. Three example collision cases are tried to check the effectiveness of the algorithm. Deformation index and angle index is extracted for the case from the analysis result. Deformation index is compared to the established database, and estimated collision speed and angle are introduced by interpolation function. Angle index is used to select a specific collision condition from the several available conditions. The collision condition found by reconstruction algorithm shows good match with original condition within 10% error for speed and angle. As a result, the calculation from the reconstruction of the situation is reproducing the situation well. The performance in this study can be used in many ways for practical field using deformation index and degree index. Other different collision situations may be set up for extending the scope of this study in the future.

구조적 안전성을 고려한 빙해선박의 안전 운항속도 평가 (Safe Speed Estimation of Arctic Ships considering Structural Safety)

  • 노인식;임승재;강국진
    • 대한조선학회논문집
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    • 제55권3호
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    • pp.236-242
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    • 2018
  • Damage due to ice collision is the most serious threat for the structural safety of ships operating in arctic region. Since such hull damages are usually caused by the collision of floating ice at excessive voyage speed of ships, the authorities responsible for the shipping at arctic sea are required to provide the speed limit for safe voyage, so-called safe speed. In countries near arctic ocean, such as Canada and Russia, empirical methods to determine the safe speed of ships based on their long experience of arctic voyage have been established and applied them in the real arctic navigation. However, in Korea, it is not easy to accumulate the arctic voyage experience and related technical database, so it seems to be a realistic approach to adopt a safe voyage speed estimating method in arctic sea based on the ice collision simulation technology using the nonlinear finite element analysis. The aim of this study is to develop a technique for estimating the safe voyage speed of vessels operating at arctic sea through the ice collision analysis, In order to achieve this goal, the standard procedure of the ice collision analysis is dealt with and example analysis was carried out and the results were considered. To investigate the validity of developed method, POLARIS system proposed by IMO was studied for comparison.

선수 충돌시 구조거동과 충돌격벽에 미치는 영향 (Collision Response of Bow Structure and Its Affected Collision Bulkhead in Bow Collision)

  • 신영식;박명규
    • 한국해양공학회:학술대회논문집
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    • 한국해양공학회 2000년도 춘계학술대회 논문집
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    • pp.195-204
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    • 2000
  • In this paper a complicated structural behavior in collision and its effect of energy translation to the collision bulkhead was examined through a methodology of the numerical simulation to obtain a ideal bow construction and a location of collision bulkhead against head on collision. In the present the bow structure is normally designed in consideration of its specific structural arrangements and internal and external loads in these area such as hydrostatic and dynamic pressure, wave impact and bottom slamming in accordance with the Classification rules, and the specific location of collision bulkhead by SOLAS requirement. By these studies the behavior of the bow collapse due to collision was synthetically evaluated for the different size of tankers and its operational speed limits, and by the result of these simulation it provides the optimal design concept for the low construction to prevent the subsequent plastic deformation onto or near to the collision bulkhead boundary and to determine the rational location of collision bulkhead.

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