Influence of electrode profiles on electrical discharge machining of titanium
Electric discharge machining (EDM) is an effective manufacturing technique that enables the production of parts made of hard materials with complicated geometry that are difficult to produce by conventional machining processes. EDM is a process of eroding material by transient action of electric sp...
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Trans Tech Publications,
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iium-18662011-09-27T06:33:33Z http://irep.iium.edu.my/1866/ Influence of electrode profiles on electrical discharge machining of titanium Zain, Zakaria Mohd Khan, Ahsan Ali Abdulkareem, Suleiman TS200 Metal manufactures. Metalworking Electric discharge machining (EDM) is an effective manufacturing technique that enables the production of parts made of hard materials with complicated geometry that are difficult to produce by conventional machining processes. EDM is a process of eroding material by transient action of electric sparks on electrically conductive materials, one being the workpiece the other being the electrode immersed in a dielectric fluid and separated by a spark gap. The EDM ability to control the process parameters to achieve the required dimensional accuracy and surface finish has placed this machining operation in a prominent position in industrial applications. This work reports on the different electrode profiles on the machinability factors of surface roughness (Ra) and material removal rate (MRR). The machining factors used in this study are the current (I), on-time and off-time. Based on the experimental Trans Tech Publications, 2011-06-30 Article PeerReviewed application/pdf en http://irep.iium.edu.my/1866/1/Zakaria%2C_Ahsan%2C_Suleiman.pdf Zain, Zakaria Mohd and Khan, Ahsan Ali and Abdulkareem, Suleiman (2011) Influence of electrode profiles on electrical discharge machining of titanium. Advanced Materials Research, 264-65. pp. 1205-1210. ISSN 1022-6680 doi:10.4028/www.scientific.net/AMR.264-265.1205 |
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TS200 Metal manufactures. Metalworking |
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TS200 Metal manufactures. Metalworking Zain, Zakaria Mohd Khan, Ahsan Ali Abdulkareem, Suleiman Influence of electrode profiles on electrical discharge machining of titanium |
description |
Electric discharge machining (EDM) is an effective manufacturing technique that enables the production of parts made of hard materials with complicated geometry that are difficult to produce by conventional machining processes. EDM is a process of eroding material by transient
action of electric sparks on electrically conductive materials, one being the workpiece the other being the electrode immersed in a dielectric fluid and separated by a spark gap. The EDM ability to control the process parameters to achieve the required dimensional accuracy and surface finish has placed this machining operation in a prominent position in industrial applications. This work reports on the different electrode profiles on the machinability factors of surface roughness (Ra) and
material removal rate (MRR). The machining factors used in this study are the current (I), on-time and off-time. Based on the experimental |
format |
Article |
author |
Zain, Zakaria Mohd Khan, Ahsan Ali Abdulkareem, Suleiman |
author_facet |
Zain, Zakaria Mohd Khan, Ahsan Ali Abdulkareem, Suleiman |
author_sort |
Zain, Zakaria Mohd |
title |
Influence of electrode profiles on electrical discharge machining of titanium |
title_short |
Influence of electrode profiles on electrical discharge machining of titanium |
title_full |
Influence of electrode profiles on electrical discharge machining of titanium |
title_fullStr |
Influence of electrode profiles on electrical discharge machining of titanium |
title_full_unstemmed |
Influence of electrode profiles on electrical discharge machining of titanium |
title_sort |
influence of electrode profiles on electrical discharge machining of titanium |
publisher |
Trans Tech Publications, |
publishDate |
2011 |
url |
http://irep.iium.edu.my/1866/ http://irep.iium.edu.my/1866/ http://irep.iium.edu.my/1866/1/Zakaria%2C_Ahsan%2C_Suleiman.pdf |
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2023-09-18T20:09:23Z |
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2023-09-18T20:09:23Z |
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1777407375008858112 |