先进的超高精度系统(NanoCyl),用于精确的圆柱度测量

IF 5.4 2区 工程技术 Q2 ENGINEERING, MANUFACTURING
Rim Bennoune , Gengxiang Chen , Saint-Clair Toguem Tagne , Alain Vissiere , Mohamed Damak , Charyar Mehdi-Souzani , Nabil Anwer , René Mayer , Hichem Nouira
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引用次数: 0

摘要

在制造中实现超高精度依赖于精确的测量系统,特别是像圆柱度这样的几何形状,这是精密工程的基本组成部分。然而,目前的商用圆柱度测量机难以提供所需的超高精度或全面的误差分析。本文研制了一种超高精度的圆柱度测量机(NanoCyl),用于圆柱度轮廓提取和纳米不确定度的精确缺陷评估。NanoCyl结合分离的计量结构和严格遵守阿贝原则,通过最大限度地减少外部和内部干扰,确保无与伦比的准确性。通过电容探头的原位校准和先进的数据处理,NanoCyl保持对SI仪表的可追溯性,以确保高精度性能。误差分离技术(EST)集成到NanoCyl进一步消除机床轴误差和优化测量不确定度。NanoCyl可以评估ISO 12180-1定义的圆柱度的三个主要组成部分:通过EST的横截面偏差,谐波信号分析的中线偏差,以及使用相反探头同步测量的径向偏差。实验验证表明,NanoCyl能够在几十纳米内实现标准测量不确定度。这些发现突出了其显著提高圆柱度测量精度的潜力,确保在高精度制造中更好的质量控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced ultra-high precision system (NanoCyl) for accurate cylindricity measurements
Achieving ultra-high precision in manufacturing relies on accurate measurement systems, especially for geometries like cylindricity, which are fundamental components for precision engineering. However, current commercial cylindricity measuring machines struggle to provide the required ultra-high precision or comprehensive error analysis. This work develops an ultra-high precision cylindricity measuring machine (NanoCyl) for cylindricity profile extraction and accurate defect assessment with nanometre uncertainty. The NanoCyl incorporate the dissociated metrology structure and strict adherence to the Abbe principle, ensuring unparalleled accuracy by minimising external and internal disturbances. With in-situ calibration of capacitive probes and advanced data processing, the NanoCyl maintains traceability to the SI metre to ensure the high-precision performance. Error separation techniques (EST) are integrated into the NanoCyl to further eliminate the machine axis errors and optimise the measurement uncertainty. The NanoCyl can evaluate the three main components of cylindricity, as defined by ISO 12180–1: cross-section deviations through EST, median line deviations from harmonic signal analysis, and radial deviations using synchronised measurements from opposite probes. Experimental validation demonstrates the NanoCyl’s capability to achieve a standard measurement uncertainty within a few tens of nanometres. These findings highlight its potential for significantly improving the accuracy of cylindricity measurements, ensuring better quality control in high-precision manufacturing.
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来源期刊
CIRP Journal of Manufacturing Science and Technology
CIRP Journal of Manufacturing Science and Technology Engineering-Industrial and Manufacturing Engineering
CiteScore
9.10
自引率
6.20%
发文量
166
审稿时长
63 days
期刊介绍: The CIRP Journal of Manufacturing Science and Technology (CIRP-JMST) publishes fundamental papers on manufacturing processes, production equipment and automation, product design, manufacturing systems and production organisations up to the level of the production networks, including all the related technical, human and economic factors. Preference is given to contributions describing research results whose feasibility has been demonstrated either in a laboratory or in the industrial praxis. Case studies and review papers on specific issues in manufacturing science and technology are equally encouraged.
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