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전철웅(Chul Woong Jun),손정현(Jeong Hyun Sohn) 대한기계학회 2014 大韓機械學會論文集A Vol.38 No.1
그래픽 처리장치(GPU)는 병렬적인 정보를 포함하는 문제를 해결하는데 이상적이다. 본 연구에서는 GPU 는 입자동역학과 함께 다물체 동역학 시뮬레이션을 효율적으로 수행하기 위해 사용되었다. 수치계산을 위해서 HHT 암시적 적분 알고리즘이 사용되었다. 입자들 사이의 접촉을 판별하기 위해서 공간분할 알고리즘과 입자 거동 해석법으로 이산 요소법(DEM)이 사용되었다. 개발된 다물체 동역학 프로그램은 해는 ADAMS 프로그램의 결과와 비교 검증하였다. CPU 기반의 순차해석 프로그램과 GPU 기반 병렬 프로그램은 입자의 수에 따른 수치계산 효율성을 알아보기 위해 서로 비교되었으며, 입자의 수가 많아질수록 계산시간은 단축되었다. 본 예제에서 입자의 수가 1,300 개일 때, 순차 해석 프로그램보다 병렬 프로그램이 약 5 배 가량 빠른 계산 속도를 보였다. Graphics processing units (GPUs) are ideal for solving problems involving parallel data computations. In this study, the GPU is used for effectively carrying out a multi-body dynamic simulation with particle dynamics. The Hilber-Hushes-Taylor (HHT) implicit integration algorithm is used to solve the integral equations. For detecting collisions among particles, the spatial subdivision algorithm and discrete-element methods (DEM) are employed. The developed program is verified by comparing its results with those of ADAMS. The numerical efficiencies of the serial program using the CPU and the parallel program using the GPU are compared in terms of the number of particles, and it is observed that when the number of particles is greater, more computing time is saved by using the GPU. In the present example, when the number of particles is 1,300, the computational speed of the parallel analysis program is about 5 times faster than that of the serial analysis program.
고등어 자동 선별기 개발을 위한 고등어 선별 성능 분석
전철웅(Chul-Woong Jun),손정현(Jeong-Hyun Sohn),최명구(Myung Gu Choi) 한국기계가공학회 2016 한국기계가공학회지 Vol.15 No.3
A mackerel grader is a machine for sorting mackerel according to size. In this study, the dynamic deflection and optimal sorting simulation of a mackerel grader was carried out by using multi-body dynamics. To analyze the dynamic deflection of the roller, RecurDyn, a multi-body dynamics analysis program, was used. The dynamic deflection of the roller pipe was analyzed according to the inclination of the roller pipe. When the inclination of the roller pipe was 30 degrees, the roller indicated the maximum deflection of about 6.3 ㎜ at the center of the mass. To simulate the mackerel sorting, the mackerel grader machine was modeled, and the contact simulation between the mackerel model and the rotating roller pipe was carried out. When the inclination of the roller frame was 7 degrees, the mackerel grader indicated optimal sorting performance.
전철웅(Chul-Woong Jun),손정현(Jeong-Hyun Sohn),이재욱(Jae-Wook Lee) 한국기계가공학회 2016 한국기계가공학회지 Vol.15 No.4
The pick cutter, which directly contacts and crushes the rock, is the expendable part of a roadheader. The arrangement and angle of attachment of the pick cutter are important factors that determine excavator performance. It is necessary to numerically calculate the contact between the pick cutter and rock. The rock is defined as a set of particles using the discrete element method. The parallel bond model is used to define the bonds between particles. The properties of granite that are measured by the uniaxial compressive test are applied to the numerical rock model. The pick cutter is defined by the polygon elements. The linear cutting simulation is considered to simulate the contact between the pick cutter and rock. The results of the simulation show the rock breaking due to contact with the pick cutter.
파력발전기 부유체설계를 위한 SPH와 ISPH 유체모델링 기법 비교
전철웅(Chul-Woong Jun),손정현(Jeong-Hyun Sohn),양민석(Min-Seok Yang) 한국기계가공학회 2017 한국기계가공학회지 Vol.16 No.3
The buoy of the wave energy converter moves by direct contact with the fluid. In order to design a buoy by using the numerical method, it is necessary to analyze not only the contact with the fluid but also the exact behavior of the fluid. In this paper, differences between weakly compressible smoothed particle hydrodynamics (WCSPH) and incompressible smoothed particle hydrodynamics (ISPH) are compared and analyzed for two-dimensional dam breaking simulation. ABAQUS, which is a commercial analysis program, is used for WCSPH analysis. A laboratory code is developed for ISPH analysis. The surface shape, the velocity, and the pressure pattern of the fluid are compared. The results of the laboratory code show the similar tendencies with those of ABAQUS, and there is a little difference in the pressure result.