Dynamic analysis and parametric control of ultrasonic vibration assistant machining system

Vibration assisted machining combines precision machining with the application of small-amplitude vibration to improve the machining process and achieve better surface quality. The periodic separation between the tool rake face and uncut material surface produces intermittent cutting, which reduces...

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Main Author: Tan, Shao Wei.
Other Authors: Lin Rongming
Format: Final Year Project
Language:English
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/10356/50302
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-503022023-03-04T19:22:34Z Dynamic analysis and parametric control of ultrasonic vibration assistant machining system Tan, Shao Wei. Lin Rongming School of Mechanical and Aerospace Engineering A*STAR Singapore Institute of Manufacturing Technology DRNTU::Engineering Vibration assisted machining combines precision machining with the application of small-amplitude vibration to improve the machining process and achieve better surface quality. The periodic separation between the tool rake face and uncut material surface produces intermittent cutting, which reduces cutting tool forces, resulting in improved surface quality and also extended tool life. Previous investigations have been carried out to study the effect of application of one dimensional vibratory motion in the feed and cross feed directions. In this Final Year Project, 1D ultrasonic vibration assisted milling in the axial direction of the cutting tool is designed. Modal analysis is first simulated using the ANSYS® software to determine the natural frequencies of the tooling system used. Following which, milling tests are performed, and different machining parameters are investigated. These parameters include cutting tool diameter, direction of milling, spindle speed and feed per tooth. It is observed that a larger cutting tool diameter is able to produce better surface quality for the experimental setup used. In addition, down milling is able to produce better surface quality than up milling at higher spindle speed. Also, ultrasonic vibration assistance is observed to bring out lower surface roughness than conventional milling as feed per tooth increases. Some explanations are offered to support these results at the end of this report. Bachelor of Engineering (Aerospace Engineering) 2012-05-31T07:43:36Z 2012-05-31T07:43:36Z 2012 2012 Final Year Project (FYP) http://hdl.handle.net/10356/50302 en Nanyang Technological University 94 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Tan, Shao Wei.
Dynamic analysis and parametric control of ultrasonic vibration assistant machining system
description Vibration assisted machining combines precision machining with the application of small-amplitude vibration to improve the machining process and achieve better surface quality. The periodic separation between the tool rake face and uncut material surface produces intermittent cutting, which reduces cutting tool forces, resulting in improved surface quality and also extended tool life. Previous investigations have been carried out to study the effect of application of one dimensional vibratory motion in the feed and cross feed directions. In this Final Year Project, 1D ultrasonic vibration assisted milling in the axial direction of the cutting tool is designed. Modal analysis is first simulated using the ANSYS® software to determine the natural frequencies of the tooling system used. Following which, milling tests are performed, and different machining parameters are investigated. These parameters include cutting tool diameter, direction of milling, spindle speed and feed per tooth. It is observed that a larger cutting tool diameter is able to produce better surface quality for the experimental setup used. In addition, down milling is able to produce better surface quality than up milling at higher spindle speed. Also, ultrasonic vibration assistance is observed to bring out lower surface roughness than conventional milling as feed per tooth increases. Some explanations are offered to support these results at the end of this report.
author2 Lin Rongming
author_facet Lin Rongming
Tan, Shao Wei.
format Final Year Project
author Tan, Shao Wei.
author_sort Tan, Shao Wei.
title Dynamic analysis and parametric control of ultrasonic vibration assistant machining system
title_short Dynamic analysis and parametric control of ultrasonic vibration assistant machining system
title_full Dynamic analysis and parametric control of ultrasonic vibration assistant machining system
title_fullStr Dynamic analysis and parametric control of ultrasonic vibration assistant machining system
title_full_unstemmed Dynamic analysis and parametric control of ultrasonic vibration assistant machining system
title_sort dynamic analysis and parametric control of ultrasonic vibration assistant machining system
publishDate 2012
url http://hdl.handle.net/10356/50302
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