• 제목/요약/키워드: Multi-Body Dynamics

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유연매체 이송 시스템의 고장 진단을 위한 Simulation (Simulation for Automatic Diagnosis of Defect in Media Transport System)

  • 이남훈;유상헌;구자춘;최연선
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2005년도 추계학술대회논문집
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    • pp.564-568
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    • 2005
  • As functional requirements of automatic office machines like printers, ATMs, copying machines are on a trend for the higher speed and precision, extensive technical advances are being developed and implemented in the industry. Media transport system is a device to convey a sheet of paper in ATMs and printers. The stability of media transport system is a matter of concern as their operating throughput rapidly increases. And defects of belts or rollers in a transport system directly affect the level of stability of the system. Therefore an automatic diagnostic system for predicting various defects is necessary for the stable operation of the media transport system. A simulation based on multi-body dynamics has been done for a feasibility study of a system design for the defect anticipation.

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발사체의 배꼽 플러그 분리 안정성 연구 (A Study on Separation Stability of The Umbilical Plug of A Store)

  • 김용일
    • 한국군사과학기술학회지
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    • 제22권4호
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    • pp.441-451
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    • 2019
  • When a store is launched, the umbilical plug should be separated from the launcher without any physical interference and fragments. In order to satisfy these conditions, an umbilical plug and an umbilical separating device were designed. The plug is separated from the receptacle of the store while moving along inclined planes by the store thrust and the spring force connected from the launcher to the plug. As a result of the prototype test, the hanger on the store collided with the plug. Several tests were conducted after some actions were taken to prevent the collision. However, not only the same phenomenon was repeated, but also fragmentation occurred. In this study, the non-colliding conditions were analyzed through rigid and flexible multi-body dynamics analysis.

120밀리 자주박격포 사격 충격에 따른 마운트 구조 안정성 분석 (Structural Stability Analysis of a Mount in 120mm Self-propelled Mortar)

  • 김동휘
    • 한국기계기술학회지
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    • 제20권6호
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    • pp.836-843
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    • 2018
  • In this paper, dynamic model of 120mm self-propelled mortar is developed, and multi flexible body dynamics analysis is performed to analyze stresses occurring in the mount during mortar fire. For this, vehicle dynamic system, mortar dynamic system, and finite element mount model are proposed. The commercial program Recurdyn is used in the analysis. As a result of the analysis, the maximum stress(146.9MPa) occurred at the mount side plate. In order to analyze the validity of the analysis results, we performed strain measurement tests by selecting three major points, and the errors of results were 7.91%, 11.15%, and 18.23%, respectively. It is confirmed that the tendency of analysis and test is similar.

반디호 복합재 착륙장치의 착륙특성에 관한 해석

  • 최선우;박일경
    • 항공우주기술
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    • 제4권2호
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    • pp.15-20
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    • 2005
  • 지금까지 착륙장치에 대한 다물체 동역학은 주로 구조물을 강체로 가정하여 지상하중 및 지상거동에 대해 활발한 연구가 진행되어 왔고, 실제 착륙장치 개발에 사용되고 있으나 강체 다물체 동역학에서는 구성품들을 대부분 강체로 가정하기 때문에 해석결과에 많은 오차가 포함될 수 있다. 특히 착륙장치 시스템의 경우 지상 충격시 3축 방향으로 매우 큰 하중이 발생하고 이로 말미암아 구조 변형이 크게 발생한다. 따라서 구조물을 강체 대신 실제에 보다 가까운 유연체로 모델링을 하는 유연 다물체 동역학 해석을 도입하면 보다 정확한 해석결과를 얻을 수 있다. 반면, 유연 다물체 동역학 해석을 실시하기 위해서는 동역학 모델 및 유한요소 모델 등을 준비하는데 상당한 시간과 기술이 요구된다. 본 연구에서는 반디호에 장착된 복합재 판스프링 착륙장치 구조물을 모델로 지상충격하중 및 동적거동을 예측할 수 있는 프로그램을 개발하였다.

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3D/1D 하이브리드 유한요소 모델을 이용한 동력 분산형 차세대 고속열차 전체차량의 충돌 해석 (Collision Analysis of the Next Generation High-speed EMU Using 3D/1D Hybrid FE Model)

  • 김거영;구정서
    • 한국자동차공학회논문집
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    • 제20권3호
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    • pp.67-76
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    • 2012
  • In this paper, collision analysis of the full rake for the Next Generation High-speed EMU is conducted using a 3D/1D hybrid model, which combines 3-dimensional (3D) front-end structure of finite element model and 1-dimensional (1D) multi-body dynamics model in order to analyze train collision with a standard 3D deformable obstacle. The crush forces, passengers' accelerations and energy absorptions of a full rake train can be easily obtained through a simulation of a 1D dynamics model composed of nonlinear springs, dampers and masses. Also the obtained simulation results are very similar to those of a 3D model if an overriding behavior does not occur during collision. The standard obstacle in TSI regulation has been changed from a rigid body to a deformable body, and therefore 3D collision simulations should be conducted because their simulation results depends on the front-end structure of a train. According to the obstacle collision analysis of this study, the obstacle collides with the driver's upper structure after overriding over the front-end module. The 3D/1D hybrid model is effective to evaluate a main energy-absorbing module that is frequently changed during design process and reduce the need time of the modeling and analysis when compared to a 3D full car body.

이산요소법-다물체동역학 연성해석 모델을 활용한 로타리 경운작업 시 표면 에너지에 따른 PTO 소요동력 예측 (Prediction of PTO Power Requirements according to Surface energy during Rotary Tillage using DEM-MBD Coupling Model)

  • 배보민;정대위;안장현;최세오;이상현;성시원;김연수;김용주
    • 드라이브 ㆍ 컨트롤
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    • 제21권2호
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    • pp.44-52
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    • 2024
  • In this study, we predicted PTO power requirements based on torque predicted by the discrete element method and the multi-body dynamics coupling method. Six different scenarios were simulated to predict PTO power requirements in different soil conditions. The first scenario was a tillage operation on cohesionless soil, and the field was modeled using the Hertz-Mindlin contact model. In the second through sixth scenarios, tillage operations were performed on viscous soils, and the field was represented by the Hertz-Mindlin + JKR model for cohesion. To check the influence of surface energy, a parameter to reproduce cohesion, on the power requirement, a simple regression analysis was performed. The significance and appropriateness of the regression model were checked and found to be acceptable. The study findings are expected to be used in design optimization studies of agricultural machinery by predicting power requirements using the discrete element method and the multi-body dynamics coupling method and analyzing the effect of soil cohesion on the power requirement.

완충시스템을 장착한 고충격 발생기구의 동특성 해석 및 실험 (Dynamic Analysis and Experiments of High Impulsive Force Device with Isolation System)

  • 박문선;강태호;변영섭;송준범;구태완;강범수
    • 한국정밀공학회지
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    • 제25권10호
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    • pp.107-114
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    • 2008
  • The aim of this study is to obtain the useful design guideline for high impulsive force device with an isolation system by the analytic approach of dynamics characteristics. In this study, the high impulsive force system was modeled and analyzed in view of multi-body dynamics, and verified the modeling and analysis result by the experiment of the high impulsive force device. Additionally, the dynamic analysis was performed for the isolation system with the selected coefficients of elastic spring and damper selected. Experimental result for the high impulsive force device with the isolation system was compared and analyzed. From the result, it was confirmed that the design guideline for the isolation system of the high impulsive force device was useful.

다물체 동역학을 이용한 연약 지반 4열 궤도 차량의 최적 선회 주행 연구 (Study on Optimum Curve Driving of Four-row Tracked Vehicle in Soft Ground using Multi-body Dynamics)

  • 오재원;이창호;홍섭;배대성;임준현;김형우
    • 한국해양공학회지
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    • 제28권2호
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    • pp.167-176
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    • 2014
  • This paper proposes an optimum curve driving method for adeep-seabed mining robot(MineRo) in deep-sea soft ground. MineRo was designed as afour-row tracked vehicle. A study on the turning methods for the four-row tracked vehicle was conducted using three case by changing the velocity profile of each track. The configuration of the four-row tracked vehicle and soft ground equation are introduced, along with the dynamics analysis models of MineRo and soft ground, which were constructed using the commercial software DAFUL. Because the purpose of this study was to investigate a driving method on soft ground, the marine environment of the deep sea was not considered.

Hard-landing Simulation by a Hierarchical Aircraft Landing Model and an Extended Inertia Relief Technique

  • Lee, Kyu Beom;Jeong, Seon Ho;Cho, Jin Yeon;Kim, Jeong Ho;Park, Chan Yik
    • International Journal of Aeronautical and Space Sciences
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    • 제16권3호
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    • pp.394-406
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    • 2015
  • In this work, an efficient aircraft landing simulation strategy is proposed to develop an efficient and reliable hard-landing monitoring procedure. Landing stage is the most dangerous moment during operation cycle of aircraft and it may cause structural damage when hard-landing occurs. Therefore, the occurrence of hard-landing should be reported accurately to guarantee the structural integrity of aircraft. In order to accurately determine whether hard-landing occurs or not from given landing conditions, full nonlinear structural dynamic simulation can be performed, but this approach is highly time-consuming. Thus, a more efficient approach for aircraft landing simulation which uses a hierarchical aircraft landing model and an extended inertia relief technique is proposed. The proposed aircraft landing model is composed of a multi-body dynamics model equipped with landing gear and tire models to extract the impact force and inertia force at touch-down and a linear dynamic structural model with an extended inertia relief method to analyze the structural response subject to the prescribed rigid body motion and the forces extracted from the multi-body dynamics model. The numerical examples show the efficiency and practical advantages of the proposed landing model as an essential component of aircraft hard-landing monitoring procedure.