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Title: Optimization of tool path for uniform scallop-height in ultra-precision grinding of free-form surfaces
Authors: Chen, S
Cheung, CF 
Zhang, F
Liu, M
Issue Date: Dec-2019
Source: Nanomanufacturing and metrology, Dec. 2019, v. 2, no. 4, p. 215-224
Abstract: Free-form surfaces have been widely used in complex optical devices to improve the functional performance of imaging and illumination quality and reduce sizes. Ultra-precision grinding is a kind of ultra-precision machining technology for fabricating free-form surfaces with high form accuracy and good surface finish. However, the complexity and variation of curvature of the free-form surface impose a lot of challenges to make the process more predictable. Tool path as a critical factor directly determines the form error and surface quality in ultra-precision grinding of free-form surfaces. In conventional tool path planning, the constant angle method is widely used in machining free-form surfaces, which resulted in non-uniform scallop-height and degraded surface quality of the machined surfaces. In this paper, a theoretical scallop-height model is developed to relate the residual height and diverse curvature radius. Hence, a novel tool-path generation method is developed to achieve uniform scallop-height in ultra-precision grinding of free-form surfaces. Moreover, the iterative closest-point matching method, which is a well-known algorithm to register two surfaces, is exploited to make the two surfaces match closely through rotation and translation. The deviation of corresponding points between the theoretical and the measured surfaces is determined. Hence, an optimized tool-path generator is developed that is experimentally verified through a series of grinding experiments conducted on annular sinusoidal surface and single sinusoidal surface, which allows the realization of the achievement of uniform scallop-height in ultra-precision grinding of free-form surfaces.
Keywords: Free-form surfaces
Optimization
Scallop-height
Tool-path generation
Ultra-precision grinding
Ultra-precision machining
Publisher: Springer
Journal: Nanomanufacturing and metrology 
ISSN: 2520-811X
EISSN: 2520-8128
DOI: 10.1007/s41871-019-00048-0
Rights: © International Society for Nanomanufacturing and Tianjin University and Springer Nature Singapore Pte Ltd. 2019
This version of the article has been accepted for publication, after peer review (when applicable) and is subject to Springer Nature’s AM terms of use (https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms), but is not the Version of Record and does not reflect post-acceptance improvements, or any corrections. The Version of Record is available online at: http://dx.doi.org/10.1007/s41871-019-00048-0.
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