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A Digital Perspective on Machine Tool Calibration

机译:关于机床校准的数字视角

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Machine tool calibration and subsequent controller-based compensation are industrially established and research-intensive techniques used to monitor and increase the volumetric performance in high-precision manufacturing. Moreover, a variety of interim performance checks and integrated sensor approaches have been developed to predict volumetric performance degradation and avoid an economically undesirable downtime. However, the fragmentation of data acquisition and management limits the potential for additional insights with respect to the value creation based on existing methods in the field of machine tool calibration. The authors reviewed the former from the perspective of data sources according to the frequency of their contribution to the digital twin of a machine tool, adopting a digital view regarding machine tool calibration within the Internet of Production concept. The latter proposes a semantic separation of cyber physical production systems into four layers: data sources, data access and provisioning, storage and analytics, and user respective agent feedback. To achieve a common representation across different layers, devices, and industrial Internet protocols, a model-based abstraction layer is required, which must be compatible with existing standards within the field, e.g., the ISO 230 series. Utilizing different Internet of Production architectures and platforms, a multitude of parallel analytic applications and an evaluation of complex models are enabled owing to the availability of ample computing resources, among which the machine tool's numerical controller takes the role of an edge-device injecting the feedback into the production process. A proof-of-concept of a digital approach to machine tool calibration data storage and processing was established based on the software prototype VoluSoft, which implements an ISO 230-1:2012 based abstraction layer in JavaScript Object Notation format, and an evaluation of the kinematic models to estimate the volumetric performance at the functional point. Apart from generating compensation tables, the results are used to project the expected deviation at the tool tip to the computer-aided design-model of a work piece, correlate the error motions using the temperature data acquired by integrated sensors, and estimate the contribution of the volumetric performance limitation to the uncertainty budget of on-machine measurements.
机译:机床校准和随后的基于控制器的补偿是在工业上建立的和基于控制的补偿,用于监测和提高高精度制造中的体积性能。此外,已经开发出各种临时性能检查和集成传感器方法来预测体积性能下降,并避免经济上不期望的停机时间。然而,数据采集和管理的碎片限制了基于机床校准领域现有方法对值创建的额外见解的可能性。作者从数据来源的角度审查了前者,根据其对机床数字双胞胎的贡献的频率,采用了关于生产概念互联网内的机床校准的数字视图。后者提出了网络物理生产系统的语义分离成四层:数据源,数据访问和供应,存储和分析以及用户各自的代理反馈。为了在不同层,设备和工业互联网协议上实现公共表示,需要一种基于模型的抽象层,这必须与现有标准兼容,例如ISO 230系列。利用不同的生产架构和平台互联网,由于充足的计算资源的可用性,可以启用多种并行分析应用和复杂模型的评估,其中机床的数值控制器采用注入反馈的边缘设备的作用进入生产过程。基于软件原型VoluSoft建立了一种用于机床校准数据存储和处理的数字方法的概念,它以JavaScript对象表示法格式实现了基于ISO 230-1:2012的抽象层,以及评估运动模型来估算功能点的体积性能。除了产生补偿表之外,结果用于将工具尖端的预期偏差投射到工件的计算机辅助设计模型,使用由集成传感器获取的温度数据来关联误差运动,并估算贡献对机器测量不确定性预算的体积性能限制。

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