Abstract

This paper presents a functional microstructured surface, named Polar Microstructure. Polar microstructure is a three dimensional (3D) structured surface possessing a pattern of distribution of latitude and longitude micro-topographies with geometrical characteristics, which is similar to that in the Earth’s north or south pole. The spacing of its small surface features can achieve form accuracy at the micrometer level. Polar microstructure has great potential for applications in precision measurement of angle displacement based on the characteristics of its surface features. This paper presents the development of a machining process chain system that integrates single point diamond turning (SPDT) and diamond broaching together to fabricate polar microstructure. A framework of a machining process chain system is presented which is composed of input module, design module, simulation module, output module, and metrology module. After that, modeling of the machining process chain composed of SPDT and diamond broaching is built up. The model takes into consideration the initial surface topography of the workpiece. Simulations have been conducted to obtain the optimal machining parameters in each machining process. A series of experiments was conducted for the ultra-precision machining of various types of polar microstructures. The machining results show that the machining process chain system is technically feasible and effective in the precision manufacturing of polar microstructure. The experimental results agree well with the simulated results.

Highlights

  • Polar coordinates have been widely used in many fields, such as modeling, positioning, navigation, etc. [1]

  • In simulation module, the modeling of individual machining processes is conducted and the machining process chain is modeled based on the results of the previous modeling of the Micromachines 2017, 8, 345

  • This paper presents a machining method for the precision manufacturing of polar microstructure based on a machining process chain system in ultra-precision machining

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Summary

Introduction

Polar coordinates have been widely used in many fields, such as modeling, positioning, navigation, etc. [1]. In the precision engineering field, polar coordinates are vital as they provide a potential method for positioning in precision measurement. If a high precision micro-level polar coordinate is fabricated and determines the angular measurement through the computing vision method, there is no need for other sensors and the components of this measurement system are fewer in number. To realize this measurement idea, the first step is fabrication of a high precision polar coordinate device.

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