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http://dx.doi.org/10.7315/CADCAM.2014.316

Model-Driven Design Framework for Future Combat Vehicle Development based on Firepower and Mobility: (1) Integrated Performance Modeling  

Lim, Sunghoon (Department of Automotive Engineering, Hanyang University)
Lim, Woochul (Department of Automotive Engineering, Hanyang University)
Min, Seungjae (Department of Automotive Engineering, Hanyang University)
Lee, Tae Hee (Department of Automotive Engineering, Hanyang University)
Ryoo, Jae Bong (Agency for Defence Development)
Pyun, Jai-Jeong (Agency for Defence Development)
Abstract
This paper proposes the 3D modeling and simulation technique for predicting the integrated performance of combat vehicle. To consider the practical driving and firing condition of a combat vehicle, the full vehicle model, which can define the six degrees-of-freedom of vehicle motion and various firing angles, is developed. The critical design parameters such as the stiffness and damping coefficient of suspension system are applied to construct the analysis model of vehicle. A simple ballistic model, which incorporates the empirical interior ballistic model and the point mass trajectory model, is built to estimate the firing range and the firing recoil force. To predict the integrated performance and analyze the effect of system parameters, MATLAB/SIM-ULINK model of a combat vehicle for performing the real time simulation is also developed. Several simulation tests incorporating the road bump and the firing recoil force are presented to confirm the effectiveness of the proposed vehicle model.
Keywords
Combat vehicle; Firepower; Integrated performance; Mobility; Modeling and simulation; 3D vehicle model;
Citations & Related Records
Times Cited By KSCI : 5  (Citation Analysis)
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