Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing

In the technology of computer-controlled optical surfacing (CCOS), the convergence of surface form error has a close relationship with the distribution of surface form error, the calculation of dwell time, tool influence function (TIF) and path planning. The distribution of surface form error direct...

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Main Authors: Yanjun Han, Lei Zhang, Cheng Fan, Wule Zhu, Anthony Beaucamp
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Applied Sciences
Subjects:
Online Access:http://www.mdpi.com/2076-3417/8/10/1814
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spelling doaj-9aa2a42376c54217a95d9e6ec31de3192020-11-25T00:23:59ZengMDPI AGApplied Sciences2076-34172018-10-01810181410.3390/app8101814app8101814Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet PolishingYanjun Han0Lei Zhang1Cheng Fan2Wule Zhu3Anthony Beaucamp4School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130025, ChinaRobotics and Micro-Systems Research Center, Soochow University, Suzhou 215021, ChinaRobotics and Micro-Systems Research Center, Soochow University, Suzhou 215021, ChinaDepartment of Micro-Engineering, Kyoto University, Kyoto 606-8501, JapanDepartment of Micro-Engineering, Kyoto University, Kyoto 606-8501, JapanIn the technology of computer-controlled optical surfacing (CCOS), the convergence of surface form error has a close relationship with the distribution of surface form error, the calculation of dwell time, tool influence function (TIF) and path planning. The distribution of surface form error directly reflects the difference in bulk material removal depth across a to-be-polished surface in subsequent corrective polishing. In this paper, the effect of path spacing and bulk material removal depth on the residual error have been deeply investigated based on basic simulation experiments excluding the interference factors in the actual polishing process. With the relationship among the critical evaluation parameters of the residual error (root-mean-square (RMS) and peak-to-valley (PV)), the path spacing and bulk material removal depth are mathematically characterized by the proposed RMS and PV maps, respectively. Moreover, a variable pitch path self-planning strategy based on the distribution of surface form error is proposed to optimize the residual error distribution. In the proposed strategy, the influence of different bulk material removal depths caused by the distribution of surface form error on residual error is compensated by fine adjustment of the path spacing according to the obtained path spacing optimization models. The simulated experimental results demonstrate that the residual error optimization strategy proposed in this paper can significantly optimize the overall residual error distribution without compromising the convergence speed. The optimized residual error distribution obtained in sub-regions of the polished surface is more uniform than that without optimization and is almost unaffected by the distribution of parent surface form error.http://www.mdpi.com/2076-3417/8/10/1814fluid jet polishingdeterministic polishingvariable pitch pathresidual error optimizationpath adaptability
collection DOAJ
language English
format Article
sources DOAJ
author Yanjun Han
Lei Zhang
Cheng Fan
Wule Zhu
Anthony Beaucamp
spellingShingle Yanjun Han
Lei Zhang
Cheng Fan
Wule Zhu
Anthony Beaucamp
Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing
Applied Sciences
fluid jet polishing
deterministic polishing
variable pitch path
residual error optimization
path adaptability
author_facet Yanjun Han
Lei Zhang
Cheng Fan
Wule Zhu
Anthony Beaucamp
author_sort Yanjun Han
title Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing
title_short Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing
title_full Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing
title_fullStr Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing
title_full_unstemmed Theoretical Study of Path Adaptability Based on Surface Form Error Distribution in Fluid Jet Polishing
title_sort theoretical study of path adaptability based on surface form error distribution in fluid jet polishing
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2018-10-01
description In the technology of computer-controlled optical surfacing (CCOS), the convergence of surface form error has a close relationship with the distribution of surface form error, the calculation of dwell time, tool influence function (TIF) and path planning. The distribution of surface form error directly reflects the difference in bulk material removal depth across a to-be-polished surface in subsequent corrective polishing. In this paper, the effect of path spacing and bulk material removal depth on the residual error have been deeply investigated based on basic simulation experiments excluding the interference factors in the actual polishing process. With the relationship among the critical evaluation parameters of the residual error (root-mean-square (RMS) and peak-to-valley (PV)), the path spacing and bulk material removal depth are mathematically characterized by the proposed RMS and PV maps, respectively. Moreover, a variable pitch path self-planning strategy based on the distribution of surface form error is proposed to optimize the residual error distribution. In the proposed strategy, the influence of different bulk material removal depths caused by the distribution of surface form error on residual error is compensated by fine adjustment of the path spacing according to the obtained path spacing optimization models. The simulated experimental results demonstrate that the residual error optimization strategy proposed in this paper can significantly optimize the overall residual error distribution without compromising the convergence speed. The optimized residual error distribution obtained in sub-regions of the polished surface is more uniform than that without optimization and is almost unaffected by the distribution of parent surface form error.
topic fluid jet polishing
deterministic polishing
variable pitch path
residual error optimization
path adaptability
url http://www.mdpi.com/2076-3417/8/10/1814
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AT chengfan theoreticalstudyofpathadaptabilitybasedonsurfaceformerrordistributioninfluidjetpolishing
AT wulezhu theoreticalstudyofpathadaptabilitybasedonsurfaceformerrordistributioninfluidjetpolishing
AT anthonybeaucamp theoreticalstudyofpathadaptabilitybasedonsurfaceformerrordistributioninfluidjetpolishing
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