The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio

In this study, the effects of the particle reinforcement ratio on cutting forces and surface roughness were investigated when milling particle-reinforced metal matrix composite (MMCp) produced by hot pressing with different cutting tools. Alumix 123 alloy as the matrix material and B4C particles wit...

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Main Authors: Ekici Ergün, Gülesin Mahmut
Format: Article
Language:English
Published: De Gruyter 2016-11-01
Series:Science and Engineering of Composite Materials
Subjects:
b4c
Online Access:https://doi.org/10.1515/secm-2014-0068
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spelling doaj-c327e68678fe4e5181f13836966c84af2021-09-05T14:00:30ZengDe GruyterScience and Engineering of Composite Materials0792-12332191-03592016-11-0123674375010.1515/secm-2014-0068The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratioEkici Ergün0Gülesin Mahmut1Faculty of Engineering, Department of Industrial Engineering, Çanakkale Onsekiz Mart University, Çanakkale, Burslem 17100, TurkeyFaculty of Technology, Department of Manufacturing Engineering, Gazi University, Ankara, TurkeyIn this study, the effects of the particle reinforcement ratio on cutting forces and surface roughness were investigated when milling particle-reinforced metal matrix composite (MMCp) produced by hot pressing with different cutting tools. Alumix 123 alloy as the matrix material and B4C particles with an average size of 27 μm and 5%, 10% and 15% ratio as reinforcing elements were used for the manufacture of composite materials. The experiments were carried out in dry cutting conditions with four different cutting speeds, constant feed rate and depth of cut. Changes depending on the increased reinforcement ratio in cutting forces and surface roughness values were investigated; the effects of 10% B4C reinforced composite on tool wear were also examined. It was observed that cutting forces increased with the increase in cutting speed and particle ratio with carbide cutting tools, and it was seen that the cutting forces on the cutting tools decreased when cutting speed decreased and the cutting forces increased as the reinforcement ratios increased. In addition, with increasing the cutting speed, the surface roughness of the machined surfaces of composite samples increased with the carbide tools, while the cubic boron nitride (CBN) tools have the opposite effect. While it was seen that flank and crater wear occurred on the cemented carbide cutting tools, abrasive, adhesive and other wear mechanism tools in addition to the main wear mechanism, no remarkable flank and crater wear occurred on CBN cutting tools.https://doi.org/10.1515/secm-2014-0068b4cmetal matrix compositemillingsurface roughnesstool wear
collection DOAJ
language English
format Article
sources DOAJ
author Ekici Ergün
Gülesin Mahmut
spellingShingle Ekici Ergün
Gülesin Mahmut
The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio
Science and Engineering of Composite Materials
b4c
metal matrix composite
milling
surface roughness
tool wear
author_facet Ekici Ergün
Gülesin Mahmut
author_sort Ekici Ergün
title The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio
title_short The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio
title_full The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio
title_fullStr The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio
title_full_unstemmed The machinability of Al/B4C composites produced by hot pressing based on reinforcing the element ratio
title_sort machinability of al/b4c composites produced by hot pressing based on reinforcing the element ratio
publisher De Gruyter
series Science and Engineering of Composite Materials
issn 0792-1233
2191-0359
publishDate 2016-11-01
description In this study, the effects of the particle reinforcement ratio on cutting forces and surface roughness were investigated when milling particle-reinforced metal matrix composite (MMCp) produced by hot pressing with different cutting tools. Alumix 123 alloy as the matrix material and B4C particles with an average size of 27 μm and 5%, 10% and 15% ratio as reinforcing elements were used for the manufacture of composite materials. The experiments were carried out in dry cutting conditions with four different cutting speeds, constant feed rate and depth of cut. Changes depending on the increased reinforcement ratio in cutting forces and surface roughness values were investigated; the effects of 10% B4C reinforced composite on tool wear were also examined. It was observed that cutting forces increased with the increase in cutting speed and particle ratio with carbide cutting tools, and it was seen that the cutting forces on the cutting tools decreased when cutting speed decreased and the cutting forces increased as the reinforcement ratios increased. In addition, with increasing the cutting speed, the surface roughness of the machined surfaces of composite samples increased with the carbide tools, while the cubic boron nitride (CBN) tools have the opposite effect. While it was seen that flank and crater wear occurred on the cemented carbide cutting tools, abrasive, adhesive and other wear mechanism tools in addition to the main wear mechanism, no remarkable flank and crater wear occurred on CBN cutting tools.
topic b4c
metal matrix composite
milling
surface roughness
tool wear
url https://doi.org/10.1515/secm-2014-0068
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