The study of vibration disturbance mapping in the geometry of the surface formed by turning

V. Zakovorotny, V. Gvindjiliya
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Abstract

Introduction. The development of virtual digital models of the machining process on metal-cutting machines is a dynamically developing direction of increasing the efficiency of machine-building production. Such models include subsystems of parts quality prediction. Accuracy and validity of its work directly depends on the built model of dynamic cutting system, which is perturbed by force noise, the sources of which have different physical origin. In addition, the autonomous dynamic system itself is a generator of various attracting sets of deformations, such as limit cycles or chaotic attractors. Taking into account various nonlinear transformations in the properties of the dynamics of the cutting process allows increasing the adequacy of the model to the real process and is an actual task in the construction of simulation modeling systems of the dynamics of surface machining by cutting. Study object. Our earlier studies allow us to determine the geometry corresponding to the deformation trajectories of the surface formed by cutting. However, the adequacy of the mapping of the calculated trajectories to the geometry estimates remains not quite clear. The proposed paper focuses on achieving an adequate mapping of calculated as well as measured strain trajectories into the geometric topology of the part. The aim of the work is to evaluate the mapping of vibration perturbations of the system into the geometry of the surface formed by cutting. Method and methodology. The research is of experimental-theoretical nature. The content of the research includes the study of the correspondence of frequency characteristics obtained on the model and in real machining. The main attention is paid to the mapping of deformations to the part geometry. For this purpose, the paper considers the coherence functions between the strain functions and the part profile. Results and Discussion. It is shown that the conditioning of these transformations has a limited frequency range in which the explanation of the variable components of the generated relief is statistically significant. Mathematical modeling of the dynamic cutting system based on the mechanics of interaction between tool and workpiece allows adequate prediction of the macro geometry of the part formed by cutting. The obtained mathematical tools can be used to create systems for predicting the geometry of the machined surface.
车削表面几何形状中的振动扰动映射研究
引言开发金属切削机床加工过程的虚拟数字模型是提高机械制造生产效率的一个动态发展方向。这些模型包括零件质量预测子系统。其工作的准确性和有效性直接取决于所建立的动态切削系统模型,该模型受到力噪声的干扰,而力噪声的来源具有不同的物理特性。此外,自主动态系统本身也是各种变形吸引集(如极限循环或混沌吸引集)的生成器。考虑到切削过程动力学特性中的各种非线性变换,可以提高模型与实际过程的匹配度,这也是构建切削表面加工动力学仿真模型系统的一项实际任务。研究对象。通过之前的研究,我们可以确定与切削加工表面变形轨迹相对应的几何形状。然而,计算出的轨迹与几何估计值之间的映射关系是否恰当仍不十分明确。本文的重点是将计算和测量的应变轨迹充分映射到零件的几何拓扑结构中。这项工作的目的是评估系统振动扰动与切割形成的表面几何形状之间的映射关系。方法和手段。研究具有实验-理论性质。研究内容包括研究在模型和实际加工中获得的频率特性的对应关系。主要关注变形与零件几何形状的映射。为此,本文考虑了应变函数和零件轮廓之间的相干函数。结果与讨论。结果表明,这些变换的调节有一个有限的频率范围,在此范围内,对所产生的浮雕的可变成分的解释具有统计意义。根据刀具和工件之间的相互作用力学建立动态切削系统的数学模型,可以充分预测切削所形成工件的宏观几何形状。所获得的数学工具可用于创建预测加工表面几何形状的系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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