山东大学学报(工学版) ›› 2017, Vol. 47 ›› Issue (1): 112-118.doi: 10.6040/j.issn.1672-3961.0.2016.326
韩广冬,张桐,陈海泉,王生海,张金男
HAN Guangdong, ZHANG Tong, CHEN Haiquan, WANG Shenghai, ZHANG Jinnan
摘要: 基于船舶在海浪中的运动导致吊重的摆动问题,利用吊重系统的空间位置关系得到吊重的运动方程,采用拉格朗日方程建立船用起重机吊重系统的运动学模型,使用Matlab/Simulink软件对运动学模型进行仿真建模,根据船舶在规则波浪中的运动,详细分析不同的吊绳长度、激励频率、起落速度下吊重摆动情况,并进行比对。结果表明:吊重的摆角随绳长的增加呈现出先增加后减小的趋势;吊重的摆幅随着激励频率不断接近系统固有频率而增加;提高起升速度对吊重的摇摆有增强作用,提高下降速度对吊重的摆角有抑制作用。通过搭建试验平台进行试验,试验结果验证了仿真结果的准确性。
中图分类号:
[1] 王学林,尤心一,胡于进. 规则波作用下起重船吊重的动力学分析[J].中国机械工程,2010,9:1077-1082. WANG Xuelin, YOU Xinyi, HU Yujin. Cargo pendulation analysis of moored crane ship under regular waves[J]. China Mechanical Engineering, 2010, 9:1077-1082. [2] HENRY R J, MASOUD Z N, NAYFEH A H, et al. Cargo pendulation reduction of ship-mounted cranes via boom-luff angle actuation[J]. Journal of Vibration and Control, 2001, 7(8):1253-1264. [3] CHIN C, NAYFEH A H, ABDEL-RAHMAN E. Nonlinear dynamics of a boom crane[J]. Journal of Vibration and Control, 2001, 7(2):199-220. [4] CHIN C M, NAYFEH A H. Dynamics and control of ship-mounted cranes[J]. Journal of Vibration and Control, 2001, 7(6):891-904. [5] ELLERMANN K, KREUZER E, MARKIEWICZ M. Nonlinear dynamics in the motion of a floating cranes[J]. Multibody System Dynamics, 2003, 9(4):377-387. [6] PARK K P, CHA J R, LEE K Y, et al. Modeling of multi-boom floating crane for lifting analysis of offshore wind turbine[J]. Transactions of the Korean Society of Mechanical Engineers A, 2011, 35:115-120. [7] MILES J W. Stability of force oscillations of a spherical pendulum[J]. Journal of the Acoustical Society of America, 1962, 20(1):21-32. [8] MILES J W. Resonant motion of a spherical pendulum[J]. Physica D Nonlinear Phenomena, 1984, 11(3):309-323. [9] PATEL M, BROWN D, WITZ J A. Operability analysis for a manual crane vessel[J]. Transaction of the Royal Institute of Naval Architects, 1987, 129:103-113. [10] MCCORMICK F J, WITZ J A. An investigation into the parametric excitation of suspended loads during crane vessel operations[J]. Underwater Technology, 1993, 19:30-39. [11] WITZ J A. Parametric excitation of crane loads in moderate sea states[J]. Ocean Engineering, 1995, 22(4):411-420. [12] SCHELLIN T E, JIANG T, SHARMA S D. Crane ship response to wave groups[J]. Journal of Offshore Mechanics and Arctic Engineering, 1991, 113(3):211-218. [13] ELLERMANN K, KREUZER E. Moored crane vessels in regular waves[J]. Solid Mechanics and its Applications, 2000, 77:105-113. [14] MALEKI EA. Dynamics and control of a small-scale boom crane[J]. Journal of Computational and Nonlinear Dynamics, 2011, 6(3):921-928. [15] POSIADALA B, SKALMIERSKI B, TOMSKI L. Motion of the lifted load brought by a kinematic forcing of the crane telescopic boom[J]. Mechanism and Machine Theory, 1990, 25(5):547-556. [16] REN Huili, WANG Xuelin, HU Yujin, et al. Dynamic response analysis of a moored crane-ship with a flexible boom[J]. Journal of Zhejiang University Science A, 2008, 9(1):26-31. [17] 李震震. 船用起重机吊物波浪补偿控制研究[D]. 大连:大连理工大学, 2014. LI Zhenzhen. Research on wave compensation of marine crane hanging object[D]. Dalian:Dalian University of Technology, 2014. [18] 刘伟. 起重船吊物动力响应及主动控制研究[D]. 大连:大连理工大学, 2013. LIU Wei. Research on dynamic response and active control of the floating crane hanging object[D]. Dalian:Dalian University of Technology, 2013. |
[1] | 袁丽,田国会*,李国栋. #br# NAO机器人的视觉伺服物品抓取操作[J]. 山东大学学报(工学版), 2014, 44(3): 57-63. |
|