Optimization of transmission angle for slider-crank mechanism with joint clearances

Structural and Multidisciplinary Optimization - Tập 37 - Trang 493-508 - 2008
Selçuk Erkaya1, İbrahim Uzmay1
1Department of Mechanical Engineering, Erciyes University, Kayseri, Turkey

Tóm tắt

In this study, kinematic analysis of a planar slider-crank mechanism having revolute joints with clearances was presented. Joint clearance was modelled as a massless virtual link, and Multi-Layered Neural Network (MLNN) structure was used for approximating the motion of this link with respect to the position of input link. Training and testing data sets for the neural network were obtained from mechanism simulation using the ADAMS software. A genetic algorithm was also used to optimize the design parameters for minimizing the deviations due to clearances. When two joint clearances at crank-pin and piston-pin centers were considered, the effects of these clearances on the kinematic characteristics and transmission quality of the mechanism were investigated using continuous contact model between the journal and bearing at a joint.

Tài liệu tham khảo

Bengisu MT, Hidayetoğlu T, Akay A (1986) A theoretical and experimental investigation of contact loss in the clearances of a four-bar mechanism. ASME J Mech Transm Autom Des 108:237–244 Chen M, Chen L, Zhang X, Bai H, Xiao Y (2003) Research and dynamic simulation of docking locks with contact-impact. Aerosp Sci Technol 7:364–372 Dubowsky S (1974) On predicting the dynamic effects of clearances in planar mechanisms. J Eng Ind 96(1):317–323 Erkaya S, Su Ş, Uzmay İ (2007) Dynamic analysis of a slider-crank mechanism with eccentric connector and planetary gears. Mech Mach Theory 42:393–408 Flores P, Ambrosio J, Claro JCP, Lankarani HM, Koshy CS (2006) A study on dynamics of mechanical systems including joints with clearance and lubrication. Mech Mach Theory 41:247–261 Furuhashi T, Morita N, Matsuura M (1978a) Research on dynamics of four-bar linkage with clearances at turning pairs. 1st Report, General Theory of Continuous Contact Model. Bullet JSME 21:518–523 Furuhashi T, Morita N, Matsuura M (1978b) Research on dynamics of four-bar linkage with clearances at turning pairs. 4th Report, Force Acting at Joints of Crank-Level Mechanism. Bullet JSME 21:1299–1305 Goldberg DE (1989) Genetic algorithms in search, optimization and machine learning. Addison-Wesley publishing http://www.mathworks.com MATLAB (ver 7.0) (2005) The MathWorks Inc. 3 Apple Hill Drive, Natick, MA 01760-2098 Morita N, Furuhashi T, Matsuura M (1978a) Research on dynamics of four-bar linkage with clearances at turning pairs. 2nd Report, Analysis of Crank-Level Mechanism with Clearance at Joint of Crank and Coupler Using Continuous Contact Model. Bullet JSME 21:1284–1291 Morita N, Furuhashi T, Matsuura M (1978b) Research on dynamics of four-bar linkage with clearances at turning pairs. 3rd Report, Analysis of Crank-Level Mechanism with Clearance at Joint of Coupler and Lever Using Continuous Contact Model. Bullet JSME 21:1292–1298 MSC Software Corporation (2005) Automatic Dynamic Analysis of Mechanical Systems (MSC.ADAMS (2005) r2) Osman MOM, Bahgat BM, Osman M (1987) Dynamic analysis of a cam mechanism with bearing clearances. Mech Mach Theor 22(4):303–314 Ting KW, Zhu J, Watkins D (2000) The effects of joint clearance on position and orientation deviation of linkages and manipulators. Mech Mach Theor 35:391–401 Tsai MJ, Lai TH (2004) Kinematic sensitivity analysis of linkage with joint clearance based on transmission quality. Mech Mach Theor 39:1189–1206 Vasiliu A, Yannou B (2001) Dimensional synthesis of planar mechanisms using neural networks: application to path generator linkages. Mech Mach Theor 36:299–310 Yıldırım Ş, Erkaya S, Su Ş, Uzmay İ (2005) Design of neural networks model for transmission angle of a modified mechanism. J Mech Sci Tech 19(10):1875–1884