FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS

Miniaturized devices are the key producing next-generation microelectro-mechanical products. The applications extend to many fields that demand high-level tolerances from microproducts and component functional and structural integrity. Silicon-based products are limited because silicon is brittle. P...

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Bibliographic Details
Main Author: Chittipolu, Sujeev
Other Authors: Hung, Nguyen P.
Format: Others
Language:English
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/1969.1/ETD-TAMU-2009-05-788
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-2009-05-7882013-01-08T10:41:12ZFAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLSChittipolu, SujeevMicromachiningCutting forcetool runouttool failure predictionMiniaturized devices are the key producing next-generation microelectro-mechanical products. The applications extend to many fields that demand high-level tolerances from microproducts and component functional and structural integrity. Silicon-based products are limited because silicon is brittle. Products can be made from other engineering materials and need to be machined in microscale. This research deals with predicting microtool failure by studying spindle runout and tool deflection effects on the tool, and by measuring the cutting force that would fail the tool during microend-milling. End-milling was performed using a tungsten carbide (Ø1.016 mm dia., 2 flute) tool on SS-316L material. Tool runout measured using a laser was found to be less than 1 µm and tool deflection at 25000 rpm was 20 µm. Finite element analysis (FEA) predicts tool failure due to static bending for a deflection greater than 99% of tool diameter. Threshold values of chipload and cutting force resulting in tool failure were found using workdone by tool. Threshold values to predict tool failure were suggested for axial depth of cut in between 17.25% - 34.5% of cutter length. For a chipload greater than 20% of cutter diameter, the microtool fails instantly for any radial depth of cut.Hung, Nguyen P.2010-07-15T00:14:11Z2010-07-23T21:45:34Z2010-07-15T00:14:11Z2010-07-23T21:45:34Z2009-052010-07-14May 2009BookThesisElectronic Thesistextapplication/pdfhttp://hdl.handle.net/1969.1/ETD-TAMU-2009-05-788eng
collection NDLTD
language English
format Others
sources NDLTD
topic Micromachining
Cutting force
tool runout
tool failure prediction
spellingShingle Micromachining
Cutting force
tool runout
tool failure prediction
Chittipolu, Sujeev
FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS
description Miniaturized devices are the key producing next-generation microelectro-mechanical products. The applications extend to many fields that demand high-level tolerances from microproducts and component functional and structural integrity. Silicon-based products are limited because silicon is brittle. Products can be made from other engineering materials and need to be machined in microscale. This research deals with predicting microtool failure by studying spindle runout and tool deflection effects on the tool, and by measuring the cutting force that would fail the tool during microend-milling. End-milling was performed using a tungsten carbide (Ø1.016 mm dia., 2 flute) tool on SS-316L material. Tool runout measured using a laser was found to be less than 1 µm and tool deflection at 25000 rpm was 20 µm. Finite element analysis (FEA) predicts tool failure due to static bending for a deflection greater than 99% of tool diameter. Threshold values of chipload and cutting force resulting in tool failure were found using workdone by tool. Threshold values to predict tool failure were suggested for axial depth of cut in between 17.25% - 34.5% of cutter length. For a chipload greater than 20% of cutter diameter, the microtool fails instantly for any radial depth of cut.
author2 Hung, Nguyen P.
author_facet Hung, Nguyen P.
Chittipolu, Sujeev
author Chittipolu, Sujeev
author_sort Chittipolu, Sujeev
title FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS
title_short FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS
title_full FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS
title_fullStr FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS
title_full_unstemmed FAILURE PREDICTION AND STRESS ANALYSIS OF MICROCUTTING TOOLS
title_sort failure prediction and stress analysis of microcutting tools
publishDate 2010
url http://hdl.handle.net/1969.1/ETD-TAMU-2009-05-788
work_keys_str_mv AT chittipolusujeev failurepredictionandstressanalysisofmicrocuttingtools
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