Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM

In today’s scenario, composite like Carbon Fiber Reinforced Polymer (CFRP) is a standout and the most alluring and profitable material among all the designing materials. The reason for using these composite laminates is their superior properties and their influential application in aerospace industr...

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Main Author: Abdul Rahim, Mohd Isa
Format: Thesis
Language:English
English
Published: 2019
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Online Access:http://eprints.utem.edu.my/id/eprint/24936/1/Optimization%20Of%20Drilling%20Parameter%20For%20Carbon%20Fiber%20Reinforced%20Polymer%20Cfrp%20Material%20Using%20RSM.pdf
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institution Universiti Teknikal Malaysia Melaka
collection UTeM Repository
language English
English
advisor Raja Abdullah, Raja Izamshah

topic T Technology (General)
TJ Mechanical engineering and machinery
spellingShingle T Technology (General)
TJ Mechanical engineering and machinery
Abdul Rahim, Mohd Isa
Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM
description In today’s scenario, composite like Carbon Fiber Reinforced Polymer (CFRP) is a standout and the most alluring and profitable material among all the designing materials. The reason for using these composite laminates is their superior properties and their influential application in aerospace industries, aircraft structural components, and others. The present learning about drilling of CFRP composites is in a moving stage for its ideal usage in different fields of uses despite being composite overlays are viewed as difficult for machine materials. Drilling process is highly depended on the drilling parameters (i.e. Feed, Speed). This becomes more important when a new product design , shape and hole dimension is critical inwhich high surface finish, accuracy of dimensional tolerances and high material removal rate are required. Therefore, the application using Ultrasonic and Non Ultrasonic is proposed to get the optimization of machining parameters in improving the product quality, as well as its productivity. Effects of input variable of drilling process (Spindle speed, feedrate) using Ultrasonic and Non Ultrasonic on the machining output; entrance and exit hole accuracy also surface roughness were studied. The optimum values of machining parameters can be obtained is Spindle Speed = 2500 rpm , Feed rate = 0.09 mm/tooth and Ultrasonic Assisted Drilling.
format Thesis
qualification_name Master of Philosophy (M.Phil.)
qualification_level Master's degree
author Abdul Rahim, Mohd Isa
author_facet Abdul Rahim, Mohd Isa
author_sort Abdul Rahim, Mohd Isa
title Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM
title_short Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM
title_full Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM
title_fullStr Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM
title_full_unstemmed Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM
title_sort optimization of drilling parameter for carbon fiber reinforced polymer cfrp material using rsm
granting_institution Universiti Teknikal Malaysia Melaka
granting_department Faculty of Manufacturing Engineering
publishDate 2019
url http://eprints.utem.edu.my/id/eprint/24936/1/Optimization%20Of%20Drilling%20Parameter%20For%20Carbon%20Fiber%20Reinforced%20Polymer%20Cfrp%20Material%20Using%20RSM.pdf
http://eprints.utem.edu.my/id/eprint/24936/2/Optimization%20Of%20Drilling%20Parameter%20For%20Carbon%20Fiber%20Reinforced%20Polymer%20Cfrp%20Material%20Using%20RSM.pdf
_version_ 1747834100791640064
spelling my-utem-ep.249362021-09-29T12:01:31Z Optimization Of Drilling Parameter For Carbon Fiber Reinforced Polymer CFRP Material Using RSM 2019 Abdul Rahim, Mohd Isa T Technology (General) TJ Mechanical engineering and machinery In today’s scenario, composite like Carbon Fiber Reinforced Polymer (CFRP) is a standout and the most alluring and profitable material among all the designing materials. The reason for using these composite laminates is their superior properties and their influential application in aerospace industries, aircraft structural components, and others. The present learning about drilling of CFRP composites is in a moving stage for its ideal usage in different fields of uses despite being composite overlays are viewed as difficult for machine materials. Drilling process is highly depended on the drilling parameters (i.e. Feed, Speed). This becomes more important when a new product design , shape and hole dimension is critical inwhich high surface finish, accuracy of dimensional tolerances and high material removal rate are required. Therefore, the application using Ultrasonic and Non Ultrasonic is proposed to get the optimization of machining parameters in improving the product quality, as well as its productivity. Effects of input variable of drilling process (Spindle speed, feedrate) using Ultrasonic and Non Ultrasonic on the machining output; entrance and exit hole accuracy also surface roughness were studied. The optimum values of machining parameters can be obtained is Spindle Speed = 2500 rpm , Feed rate = 0.09 mm/tooth and Ultrasonic Assisted Drilling. 2019 Thesis http://eprints.utem.edu.my/id/eprint/24936/ http://eprints.utem.edu.my/id/eprint/24936/1/Optimization%20Of%20Drilling%20Parameter%20For%20Carbon%20Fiber%20Reinforced%20Polymer%20Cfrp%20Material%20Using%20RSM.pdf text en public http://eprints.utem.edu.my/id/eprint/24936/2/Optimization%20Of%20Drilling%20Parameter%20For%20Carbon%20Fiber%20Reinforced%20Polymer%20Cfrp%20Material%20Using%20RSM.pdf text en validuser https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=118041 mphil masters Universiti Teknikal Malaysia Melaka Faculty of Manufacturing Engineering Raja Abdullah, Raja Izamshah 1. R. Singh and J. S. Khamba (2007) “Taguchi Technique for Modeling Material Removal Rate in Ultrasonic Machining of Titanium,” Materials Science and Engineering, Vol. A460-461, pp. 365-369. 2. Ramulu, M., Wem, C. W., and Garbini, J. 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