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Prediction of dynamic behavior for different configurations in a drilling-milling machine based on substructuring analysis

机译:基于子结构分析的钻铣床不同配置动态行为预测

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摘要

Dynamic models of machine tool structures are essential instruments to evaluate structural performance in cutting operations. In order to fully exploit these models, they must meet three critical requirements such as accuracy, computational efficiency and multi-configuration machine behavior predictability. These virtues are hard to combine in one single model, as the improvement of one feature can easily involve a negative effect in the others. This paper deals with this problem and presents a robust procedure to develop reliable, efficient and versatile dynamic models. First, the machine tool structure is split up in several components. For each component, a finite element model is developed and the necessary corrections are made comparing the numerical results to the experimental data obtained from a modal analysis test. Once suitable numerical definitions of the components are available, substructures are defined, considering some components individually and grouping those with no relative movement. In this process, the connection between components is accurately modeled, checking the resulting substructures experimentally. Secondly, the order of the substructures is reduced using a Component Mode Synthesis approach based on Craig-Bampton method. Traditionally, when working with movable substructures, the order reduction capability has been limited by the large amount of connection degrees of freedom which must be kept in the reduced representation to cover all possible positions of substructures. This paper presents a procedure to solve this issue, where these degrees of freedom are eliminated from the reduced model as the substructures are assembled sequentially. Finally, in order to evaluate the reliability of the resulting model, the dynamic characteristics of the structure in various configurations are calculated and the results are compared with the experimentally obtained natural frequencies, mode shapes and frequency response functions for the same configurations. Results indicate that the proposed method predicts correctly the positiondependent dynamic behavior of a machine, validating the developed procedure. (C) 2015 Elsevier Ltd. All rights reserved.
机译:机床结构的动态模型是评估切削操作中结构性能的重要工具。为了充分利用这些模型,它们必须满足三个关键要求,例如准确性,计算效率和多配置机器行为可预测性。这些优点很难在一个模型中组合,因为一项功能的改进很容易在其他功能中带来负面影响。本文解决了这个问题,并提出了开发可靠,高效和通用动态模型的鲁棒程序。首先,机床结构分为几个部分。对于每个组件,都会开发一个有限元模型,并将数值结果与从模态分析测试中获得的实验数据进行比较,从而进行必要的修正。一旦获得了合适的组件数字定义,就可以定义子结构,单独考虑一些组件并将没有相对运动的组件分组。在此过程中,将对组件之间的连接进行精确建模,并通过实验检查生成的子结构。其次,使用基于Craig-Bampton方法的组件模式综合方法降低了子结构的顺序。传统上,在使用可移动子结构时,降序功能受到大量连接自由度的限制,必须以缩小的表示形式保留该连接数以覆盖子结构的所有可能位置。本文提出了解决此问题的方法,其中随着子结构的顺序组装,从简化模型中消除了这些自由度。最后,为了评估所得模型的可靠性,计算了各种配置中结构的动态特性,并将结果与​​实验获得的相同配置的固有频率,振型和频率响应函数进行了比较。结果表明,所提出的方法正确预测了机器的位置相关的动态行为,从而验证了所开发的过程。 (C)2015 Elsevier Ltd.保留所有权利。

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