Modelling and prototyping the conceptual design of 3D CMM micro-probe

S. Stoyanov, C. Bailey, R. Leach, B. Hughes, A. Wilson, W. O'Neill, R. Dorey, C. Shaw, D. Underhill, H. Almond
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引用次数: 16

Abstract

This paper details the prototyping of a novel three axial micro probe based on utilisation of piezoelectric sensors and actuators for true three dimensional metrology and measurements at micro- and nanometre scale. Computational mechanics is used first to model and simulate the performance of the conceptual design of the micro-probe. Piezoelectric analysis is conducted to understand performance of three different materials - silicon, glassy carbon, and nickel - and the effect of load parameters (amplitude, frequency, phase angle) on the magnitude of vibrations. Simulations are also used to compare several design options for layout of the lead zirconium titanate (PZT) sensors and to identify the most feasible from fabrication point of view design. The material options for the realisation of the device have been also tested. Direct laser machining was selected as the primary means of production. It is found that a Yb MOPA based fiber laser was capable of providing the necessary precision on glassy carbon (GC), although machining trials on Si and Ni were less successful due to residual thermal effects.To provide the active and sensing elements on the flexures of the probe, PZT thick films are developed and deposited at low temperatures (Lt720 degC) allowing a high quality functional ceramic to be directly integrated with selected materials. Characterisation of the materials has shown that the film has a homogenous and small pore microstructure.
三维三坐标测量机微探头概念设计的建模与原型设计
本文详细介绍了一种基于压电传感器和致动器的新型三轴微探头的原型设计,用于真正的三维测量和微纳米尺度的测量。首先利用计算力学对微探针概念设计的性能进行建模和仿真。压电分析是为了了解三种不同材料——硅、玻碳和镍的性能,以及负载参数(振幅、频率、相位角)对振动幅度的影响。仿真还用于比较几种钛酸铅锆(PZT)传感器布局的设计方案,并从制造的角度确定最可行的设计方案。实现该装置的材料选择也进行了测试。选择直接激光加工作为主要的生产手段。发现基于Yb MOPA的光纤激光器能够在玻碳(GC)上提供必要的精度,尽管由于残余热效应,Si和Ni的加工试验不太成功。为了在探头的弯曲处提供主动和传感元件,PZT厚膜在低温(Lt720℃)下形成并沉积,从而使高质量的功能陶瓷直接与选定的材料集成。材料的表征表明,薄膜具有均匀的小孔微观结构。
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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