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  4. Two-phase data science framework for compensation of the friction force in CNC machines
 
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Two-phase data science framework for compensation of the friction force in CNC machines

Journal
International Journal of Computer Integrated Manufacturing
Start Page
1
End Page
16
ISSN
0951-192X
1362-3052
Date Issued
2024-05-28
Author(s)
Yu Hsiang Cheng
Chia-Yen Lee  
Ching-Hsiung Tsai
Jia-Ming Wu
DOI
10.1080/0951192x.2024.2358033
DOI
10.1080/0951192X.2024.2358033
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-105001831707&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/722436
Abstract
This study proposes a two-phase data science framework for the friction force and parameter estimation of the hysteresis effect segment in the servo-control systems of precision machines. The first phase uses an exponential-based friction force model to identify the model parameters by an autoregressive model and Z-transform. The second phase uses symbolic regression for the residual analysis to enhance the friction force estimation. An empirical study of three types of CNC machines under different working conditions is conducted to validate the two-phase data science framework and identify the change of the machining displacement considered to be a critical factor affecting friction force. The exponential-based model successfully eliminates the circular spike error caused by the friction force in the tapping center machine. The results indicate that the proposed two-phase framework improves mean absolute error by 5.6% on average in the tapping center, 6.5% in the milling machine and 7.6% in the turning and milling center, respectively.
Subjects
compensation
Friction force estimation
prognostic and health management (PHM)
servo control system
symbolic regression
SDGs

[SDGs]SDG9

Publisher
Informa UK Limited
Type
journal article

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To permanently archive and promote researcher profiles and scholarly works, Library integrates the services of “NTU Repository” with “Academic Hub” to form NTU Scholars.

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