Damping Device Used in Large-scale Precision Equipment Rapid Transporter

  • ZHAO Jingyi ,
  • KANG Shaopeng ,
  • FAN Liangzhen
Expand
  • 1. Hebei Provincial Key Laboratory of Heavy Machinery Fluid Power Transmission and Control, Yanshan University, Qinhuangdao 066004;
    2. Key Laboratory of Advanced Forging & Stamping Technology and Science (Yanshan University), Qinhuangdao 066004);

Online published: 2017-01-05

Abstract

In order to realize the long-distance and fast transportation of the large-scale precision equipment, and ensure the safety of the equipment during the transportation, a set of damping devices is designed in the gooseneck section of the transporter, so the vibration of the equipment can be reduced efficiently in the driving direction and vertical direction. A kind of damping device which can limit the height and location is designed in the joint of the middle frame section and the rear frame section, so the terrain clearance of the middle frame section can be ensured during the transportation, and the vibration of the middle frame section can be reduced efficiently. The air suspension structures are used in the rear frame section, which are good for the large-scale precision equipment in the driving direction and the vertical direction. The mechanical model and mathematical model of the whole transporter are built, and the simulation analysis of vibration and the research of experiment are processed in different conditions. It is proved that the damping devices have great feasibility and practicability, and the safety of the large-scale precision equipment can be ensured efficiently during the transportation. The study of vibration damping performance has guiding effect and practical value.

 

Cite this article

ZHAO Jingyi , KANG Shaopeng , FAN Liangzhen . Damping Device Used in Large-scale Precision Equipment Rapid Transporter[J]. Journal of Mechanical Engineering, 2017 , 53(1) : 93 -100 . DOI: 10.3901/JME.2017.01.093

References

 [1]  赵静一,姚成玉. 我国液压可靠性技术概述[J]. 液压与气动,201310):1-7.

        ZHAO JingyiYAO Chengyu. Overview of china’s hydraulic reliability technology[J]. Chinese Hydraulics & Pneumatics201310):1-7.

 [2]  李新亚王德成刘丰,等. 先进成形技术与装备发展道路刍议——先进成形技术与装备发展现状与趋势[J]. 机械工程学报,201046(17)100-104.

        LI XinyaWANG DechengLIU Fenget al. Visioning—future of advanced manufacture technology & equipment——present situation & tendency of advanced forming technique & equipment[J]. Journal of Mechanical Engineering201046(17)100-104.

 [3]  ,袁巨龙,吴喆,等. 复杂曲面零件超精密加工方法的研究进展[J]. 机械工程学报,201551(5)178-191.

        LI MingYUAN JulongWU Zheet al. Progress in ultra-precision machining methods of complex curved parts[J]. Journal of Mechanical Engineering201551(5)178-191.

 [4]  高峰,郭为忠,宋清玉,等. 重型制造装备国内外研究与发展[J]. 机械工程学报,201046(19)92-107.

        GAO FengGUO WeizhongSONG Qingyuet al. Current development of heavy-duty manufacturing equipments[J]. Journal of Mechanical Engineering201046(19)92-107.

 [5]  谢少飞,张家应,刘子明. 关于军事装备运输性问题的研究[J]. 硅谷,2014713):190-191.

        XIE ShaofeiZHANG JiayingLIU Ziming. Research on military equipment transportation problem[J]. Silicon Valley2014713):190-191.

 [6]  赵静一. 大型自行式液压载重车[M]. 北京:化学工业出版社,2010.

        ZHAO Jingyi. Large self-propelled hydraulic transporter[M] BeijingChemical Industry Press2010.

 [7]赵静一,陈鹏飞,郭锐. 自行式液压货车非对称转向系统设计[J]. 机械工程学报,201248(10)160-166.

        ZHAO JingyiCHEN PengfeiGUO Rui. Design of asymmetry steering system for self-propelled hydraulic transporter[J]. Journal of Mechanical Engineering201248(10)160-166.

 [8]  赵静一,程斐,郭锐,等. 自行式载重车悬架升降电液同步驱动控制研究[J]. 中国机械工程,201425(7)972-978.

        ZHAO JingyiCHENG FeiGUO Ruiet al. Research on electro-hydraulic synchronization driving control for self-propelled transporter suspension lifting[J]. China Mechanical Engineering201425(7)972-978.

 [9]  汪小朋,刘文彬,黄俊杰,等. 路面随机激励下的汽车振动仿真分析[J]. 山东交通学院学报,201018(3)7-11.

        WANG XiaopengLIU WenbinHUANG Junjieet al. Simulation analysis of vehicle vibration under randomly road excitation[J]. Journal of Shandong Jiaotong University201018(3)7-11.

[10]  中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会. GB/T 7031-2005机械振动道路路面谱测量数据报告[S]. 北京:中国标准出版社,2006.

        General Administration of Quality SupervisionInspection and Quarantine of the People’s Republic of ChinaStandardization Administration of the People’s Republic of China. GB/T 7031-2005 mechanical vibration--road surface profiles--reporting of measured data[S]. BeijingStandards Press of China2006.

[11]  谢俊淋,张庆永. 基于Simulink的汽车平顺性仿真分析[J]. 机电技术,201327(1)14-18.

        XIE JunlinZHANG Qingyong. Simulation analysis of automobile ride comfort based on the simulink[J]. Mechanical & Electrical Technology201327(1)14-18.

[12]  陈杰平,陈无畏,祝辉,等. 基于Matlab/Simulink的随机路面建模与不平度仿真[J]. 农业机械学报,201041(3)11-15.

        CHEN JiepingCHEN WuweiZHU Huiet al. Modeling and simulation on stochastic road surface irregularity based on matlab/simulink[J]. Transactions of the Chinese Society for Agricultural Machinery201041(3)11-15.

Outlines

/