Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models

One of the factors affecting the effectiveness of machining time of 5-axis miling is the method being used. By using flank milling method, as one of the optimized processes to make a workpiece, the time required for the process becomes shorter.This research is aimed at developing the method for dete...

Full description

Bibliographic Details
Main Authors: Kiswanto Gandjar, Baskoro Ario Sunar, Syaefudin Eko Arif
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201710804006
_version_ 1818622838152626176
author Kiswanto Gandjar
Baskoro Ario Sunar
Syaefudin Eko Arif
author_facet Kiswanto Gandjar
Baskoro Ario Sunar
Syaefudin Eko Arif
author_sort Kiswanto Gandjar
collection DOAJ
description One of the factors affecting the effectiveness of machining time of 5-axis miling is the method being used. By using flank milling method, as one of the optimized processes to make a workpiece, the time required for the process becomes shorter.This research is aimed at developing the method for determining the initial orientation of the tool for a sculptured surface on the basis of faceted model. By determining cc-point as the basis for positioning the tool on the surface of the workpiece, the cutting direction is formed from the nearest cc-point in the XY flat plane direction of the faceted model at the spatial coordinate. The positioning of the tool is initially based on the Local Coordinate System developed by the cross product between the normal vector nat each cc-point and cutting direction vector Ffrom one cc-point to the other. The cross product resulted is a tangent vector Tof the plane formed from the normal vector and cutting direction. The orientation of the tool is formed and defined by an inclination angle (α) and a screw angle (β). Maximizing the cutting volume and avoiding gouging at each cc-point during the flank milling are carried out through optimal adjustment of these two rotational angles. Furthermore, when the adjustment of rotational angles cannot resolve the gouging, appropriate tool lifting along the normal vector is conductedhis method is very much applicable for flank milling having the basis of data in the form of faceted models.
first_indexed 2024-12-16T18:31:31Z
format Article
id doaj.art-ba28043e3cf14656a3360f8829eceffd
institution Directory Open Access Journal
issn 2261-236X
language English
last_indexed 2024-12-16T18:31:31Z
publishDate 2017-01-01
publisher EDP Sciences
record_format Article
series MATEC Web of Conferences
spelling doaj.art-ba28043e3cf14656a3360f8829eceffd2022-12-21T22:21:17ZengEDP SciencesMATEC Web of Conferences2261-236X2017-01-011080400610.1051/matecconf/201710804006matecconf_icmaa2017_04006Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted ModelsKiswanto Gandjar0Baskoro Ario Sunar1Syaefudin Eko Arif2Dept. of Mechanical Engineering, University of IndonesiaDept. of Mechanical Engineering, University of IndonesiaDept. of Mechanical Engineering, Jakarta State UniversityOne of the factors affecting the effectiveness of machining time of 5-axis miling is the method being used. By using flank milling method, as one of the optimized processes to make a workpiece, the time required for the process becomes shorter.This research is aimed at developing the method for determining the initial orientation of the tool for a sculptured surface on the basis of faceted model. By determining cc-point as the basis for positioning the tool on the surface of the workpiece, the cutting direction is formed from the nearest cc-point in the XY flat plane direction of the faceted model at the spatial coordinate. The positioning of the tool is initially based on the Local Coordinate System developed by the cross product between the normal vector nat each cc-point and cutting direction vector Ffrom one cc-point to the other. The cross product resulted is a tangent vector Tof the plane formed from the normal vector and cutting direction. The orientation of the tool is formed and defined by an inclination angle (α) and a screw angle (β). Maximizing the cutting volume and avoiding gouging at each cc-point during the flank milling are carried out through optimal adjustment of these two rotational angles. Furthermore, when the adjustment of rotational angles cannot resolve the gouging, appropriate tool lifting along the normal vector is conductedhis method is very much applicable for flank milling having the basis of data in the form of faceted models.https://doi.org/10.1051/matecconf/201710804006
spellingShingle Kiswanto Gandjar
Baskoro Ario Sunar
Syaefudin Eko Arif
Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models
MATEC Web of Conferences
title Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models
title_full Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models
title_fullStr Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models
title_full_unstemmed Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models
title_short Initial Tool Orientation Set-up for 5-Axis Flank Milling Based on Faceted Models
title_sort initial tool orientation set up for 5 axis flank milling based on faceted models
url https://doi.org/10.1051/matecconf/201710804006
work_keys_str_mv AT kiswantogandjar initialtoolorientationsetupfor5axisflankmillingbasedonfacetedmodels
AT baskoroariosunar initialtoolorientationsetupfor5axisflankmillingbasedonfacetedmodels
AT syaefudinekoarif initialtoolorientationsetupfor5axisflankmillingbasedonfacetedmodels