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Experimental Investigation on Wire Electric Discharge Machining of Biodegradable Az91 Mg Alloy

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Date

2021

Journal Title

Journal ISSN

Volume Title

Publisher

Springer

Open Access Color

Green Open Access

Yes

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Publicly Funded

No
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Top 10%
Influence
Top 10%
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Top 10%

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Abstract

The AZ91 magnesium alloy, used commonly as a biodegradable material in biomedical applications, is generally formed by conventional casting method (CCM) and high-pressure die casting method (HPDCM). The AZ91 alloys exhibit poor machinability with conventional chip removal methods since they degrade at elevated temperatures. In this study, the wire electric discharge machining (WEDM) was presented as a candidate process to machine the AZ91 alloy since no cutting stresses and plastic deformations were applied by the cutting tool to the part causing elevated temperatures. In this context, the WEDM machinability of the AZ91 alloy samples produced by cold chamber HPDCM and CCM at different process parameters, was experimentally investigated. The machining performance outputs (the machining current (I), the machining rate (MR), the average surface roughness (R-a), and surface topography) were found for the varying process parameters [pulse time (t(s)), pulse-off time (t(off)), dielectric flushing pressure (P-d), and wire speed (V-w)]. The present study revealed that the I and the MR were significantly dependent on the density, the porosity, and the micro structure of the samples, and the HPDCM samples gave the higher MR and the smoother surface than that of the CCM.

Description

Keywords

Az91 Alloy, Machining Current, Machining Rate, Surface Roughness, Wedm

Fields of Science

0203 mechanical engineering, 0103 physical sciences, 02 engineering and technology, 01 natural sciences

Citation

Ürtekin, Levent...et al. (2021). "Experimental Investigation on Wire Electric Discharge Machining of Biodegradable AZ91 Mg Alloy", Journal of Materials Engineering and Performance, Vol. 30, No. 10, pp. 7752-7761.

WoS Q

Q3

Scopus Q

Q2
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OpenCitations Citation Count
22

Source

Journal of Materials Engineering and Performance

Volume

30

Issue

10

Start Page

7752

End Page

7761
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Scopus : 24

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Mendeley Readers : 14

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