Accurate real-time trajectory generation of circular motion using FIR interpolation: a trochoidal milling case study.

IF 2.9 3区 工程技术 Q2 AUTOMATION & CONTROL SYSTEMS
David Wilkinson, Burak Sencer, Rob Ward
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引用次数: 0

Abstract

Subtractive manufacturing is undergoing a transformative shift towards sustainability and zero-defect manufacturing. This shift is driving the need for more efficient machining strategies such as dynamic milling. The real-time implementation of dynamic milling toolpaths, composed of circular and cycloidal curve patterns, is challenging due to the kinematic constraints in computer numerically controlled machine tools. Resulting from a rigorous analytical analysis of kinematics, the limitations of current approaches to finite impulse response (FIR) interpolation of circular arc (G02/G03) motion are addressed. A novel hybrid FIR interpolation method is presented which modifies the interpolation style depending on the fundamental geometry of commanded circular motion. The method globally satisfies kinematic constraints and tool centre point position tolerances during circular motion and allows consideration of machine dynamics (i.e., resonant frequencies) within the interpolation strategy. The proposed method outperformed current state-of-the-art methods during benchmarking tests which included a high-performance machine tool and two commercial controllers. Reductions of up to 38% in manufacturing cycle times were demonstrated when interpolating high-speed trochoidal toolpaths with the proposed method.

精确的实时轨迹生成的圆周运动使用FIR插值:一个摆线铣削案例研究。
减法制造正经历着向可持续性和零缺陷制造的转型转变。这种转变推动了对更有效的加工策略的需求,例如动态铣削。由于计算机数控机床的运动学约束,由圆线和摆线曲线模式组成的动态铣削刀具轨迹的实时实现具有挑战性。通过对运动学的严格分析,解决了当前圆弧(G02/G03)运动的有限脉冲响应(FIR)插值方法的局限性。提出了一种新的混合FIR插值方法,该方法根据指令圆周运动的基本几何形状来修改插值方式。该方法在整体上满足圆周运动期间的运动学约束和刀具中心点位置公差,并允许在插补策略中考虑机器动力学(即谐振频率)。在包括高性能机床和两个商用控制器在内的基准测试中,所提出的方法优于目前最先进的方法。当采用该方法插值高速摆线刀具轨迹时,制造周期时间减少了38%。
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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来源期刊
CiteScore
5.70
自引率
17.60%
发文量
2008
审稿时长
62 days
期刊介绍: The International Journal of Advanced Manufacturing Technology bridges the gap between pure research journals and the more practical publications on advanced manufacturing and systems. It therefore provides an outstanding forum for papers covering applications-based research topics relevant to manufacturing processes, machines and process integration.
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