间断铣削的频域半解析稳定性算法

IF 14 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
M. Sanz-Calle , J. Munoa , A. Iglesias , L.N. López de Lacalle , Z. Dombovari
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引用次数: 1

摘要

由于传统的零阶近似的时间平均参数扫描省略了中断切削时产生的周期加倍叶片,因此,在频率域或时域上,通常采用耗时的数值方法来构建中断切削情况下的稳定性图。本文提出了一种在频域上分析中断铣削的新方法。该方法利用其解析颤振频率分布,在现有的零阶解的Hopf极限基础上增加了单频扫描计算的周期倍频瓣。这与智能选择扫描频率范围和截断到最小谐波集一起,可以非常快速地计算出中断铣削情况的稳定性图,同时保留了零阶算法的分析基础和优势。该方法准确地描述了周期加倍控制区域的稳定性极限,改进了现有的零阶解,但由于模态相互作用和谐波截断效应,在Hopf边界的预测中存在轻微的不准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Semianalytic stability algorithm in the frequency domain for interrupted milling

Semianalytic stability algorithm in the frequency domain for interrupted milling

The construction of stability diagrams of interrupted milling cases is generally carried out by means of time-consuming numerical methods in either frequency or time domain, since the period doubling lobes arising under interrupted cutting are omitted by the time-averaged parametric scan of the traditional zeroth order approximation. This paper presents a novel seminalytic method in the frequency domain for interrupted milling. Taking advantage of their analytical chatter frequency distribution, this method adds the period doubling lobes calculated in a single frequency scan to the existing Hopf limits of the zeroth order solution. This, together with intelligent selection of scanning frequency ranges and truncation to the minimum set of harmonics, allows very fast calculation of the stability charts of interrupted milling cases while retaining the analytical basis and advantages of the zeroth order algorithm. The method accurately describes the stability limits at period doubling dominated zones and improves the existing zeroth order solution, but exhibits slight inaccuracies in the prediction of Hopf boundaries due to mode interaction and harmonic truncation effects.

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来源期刊
CiteScore
25.70
自引率
10.00%
发文量
66
审稿时长
18 days
期刊介绍: The International Journal of Machine Tools and Manufacture is dedicated to advancing scientific comprehension of the fundamental mechanics involved in processes and machines utilized in the manufacturing of engineering components. While the primary focus is on metals, the journal also explores applications in composites, ceramics, and other structural or functional materials. The coverage includes a diverse range of topics: - Essential mechanics of processes involving material removal, accretion, and deformation, encompassing solid, semi-solid, or particulate forms. - Significant scientific advancements in existing or new processes and machines. - In-depth characterization of workpiece materials (structure/surfaces) through advanced techniques (e.g., SEM, EDS, TEM, EBSD, AES, Raman spectroscopy) to unveil new phenomenological aspects governing manufacturing processes. - Tool design, utilization, and comprehensive studies of failure mechanisms. - Innovative concepts of machine tools, fixtures, and tool holders supported by modeling and demonstrations relevant to manufacturing processes within the journal's scope. - Novel scientific contributions exploring interactions between the machine tool, control system, software design, and processes. - Studies elucidating specific mechanisms governing niche processes (e.g., ultra-high precision, nano/atomic level manufacturing with either mechanical or non-mechanical "tools"). - Innovative approaches, underpinned by thorough scientific analysis, addressing emerging or breakthrough processes (e.g., bio-inspired manufacturing) and/or applications (e.g., ultra-high precision optics).
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