基于ADAMS的汽车起重机动力学仿真分析

Q4 Engineering
Yunsheng Xin, Ruiyi Dong, Shuyi Lv
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引用次数: 0

摘要

随着伸缩臂起重机自重的减轻和起重能力的提高,其速度、稳定性和安全性之间的矛盾更加突出。伸缩臂在运行过程中也有柔性变形,会引起整车系统的振动。因此,为了保证工作过程中的安全、准确、高效,有必要对伸缩臂载荷在工作过程中的动态特性进行准确预测。本研究的目的是建立起重机刚柔耦合动力学模型,在仿真试验中能够准确反映伸缩臂运行过程中的动态特性。从理论上分析了汽车起重机的特性,并将其简化为悬臂梁。基于欧拉-伯努利梁理论,建立了运动质量-悬臂梁系统的振动微分方程。仿真方面,利用三维建模软件Solidworks建立汽车伸缩臂的实体模型,利用有限元分析软件建立汽车伸缩臂的有限元模型,生成模态中性文件并导入ADAMS中,建立汽车起重机多级柔性伸缩臂的动力学模型。在ADAMS软件中对汽车伸缩臂式起重机虚拟样机模型进行了动态仿真,获得了起重机关键部件在特定工况下的动态特性。理论推导的振动微分方程可通过MATLAB编程求解起重机臂架在特定条件下的动力响应。仿真方面,分析了起重机关键部件在工作状态下的误差波动及其原因,验证了虚拟样机模型的合理性。最后,通过典型工况下起重机的轨迹规划,实现了汽车起重机伸缩臂系统稳定控制的目的。推导出的方程对于求解一般情况下起重机臂架的振动具有通用性。该刚柔耦合模型为多级柔性伸缩臂的动力学建模、分析、设计和制造提供了参考。本研究结果可为相关专利研究与开发提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Simulation Analysis of Truck Crane Based on ADAMS
With a reduction in the weight of telescopic boom crane and an increase in its lifting capacity, the contradiction between its speed, stability and safety becomes more prominent. The telescopic arm also has flexible deformation during operation, which will cause vibration of the whole vehicle system. Therefore, in order to ensure safety, accuracy, and efficiency in the working process, it is necessary to accurately predict the dynamic characteristics of the telescopic boom load in the working process. The purpose of this study is to establish a rigid-flexible coupling dynamic model of the crane, which can accurately reflect the dynamic characteristics of the telescopic boom during its operation in the simulation test. In theory, this study analyzes the characteristics of a truck crane and simplifies it as a cantilever beam. Based on the Euler-Bernoulli beam theory, the vibration differential equation of the mobile mass-cantilever beam system is established. In the aspect of simulation, the three-dimensional modeling software Solidworks is used to establish the solid model of the truck telescopic boom, the finite element analysis software is used to establish the finite element model of the telescopic boom, and the modal neutral file is generated and imported into ADAMS to establish the dynamic model of the truck crane multi-level flexible telescopic boom. The dynamic simulation of the virtual prototype model of the truck telescopic boom crane is carried out in ADAMS software to obtain the dynamic characteristics of the key components of crane under specific working conditions. The vibration differential equation derived in theory can be used to solve the dynamic response of the crane jib under specific conditions by MATLAB programming. In the aspect of simulation, the error fluctuation and its causes in the key components of the crane in the working state are analyzed, and the rationality of the virtual prototype model is verified. Finally, through the trajectory planning of the crane under typical working conditions, the purpose of stable control of the telescopic boom system of the truck crane is realized. The derived equation is universal for solving the vibration of crane jib in general cases. The rigid-flexible coupling model also provides a reference for the dynamic modeling, analysis, design, and manufacture of a multi-stage flexible telescopic boom. The findings of this study can provide a reference for related patent research and development.
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来源期刊
Recent Patents on Mechanical Engineering
Recent Patents on Mechanical Engineering Engineering-Mechanical Engineering
CiteScore
0.80
自引率
0.00%
发文量
48
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