Materials-affected manufacturing in precision machining

The influence of different microstructural attributes on the material properties such strength, hardness, residual stress or other physical properties are very well understood. During the manufacturing of mechanical parts utilized in important industries such as energy, aerospace or biomedical, the...

Full description

Bibliographic Details
Main Author: Fergani, Omar
Other Authors: Jianguo, Yang
Format: Others
Language:en_US
Published: Georgia Institute of Technology 2015
Subjects:
Online Access:http://hdl.handle.net/1853/53103
id ndltd-GATECH-oai-smartech.gatech.edu-1853-53103
record_format oai_dc
spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-531032016-06-10T03:32:22ZMaterials-affected manufacturing in precision machiningFergani, OmarMachiningResidual stressMicrostructureThe influence of different microstructural attributes on the material properties such strength, hardness, residual stress or other physical properties are very well understood. During the manufacturing of mechanical parts utilized in important industries such as energy, aerospace or biomedical, the effect of the processing in term of thermal and mechanical loading is very important as it is directly influencing the microstructure evolution and the properties. The understanding of how the manufacturing process such as high precision machining will affect first the microstructure and therefore the part properties. In this work, we propose the Materials-Affected Manufacturing (MAM). It is a new paradigm helping to understand the interaction between the manufacturing process parameters, materials microstructure attributes and the properties. This is solved using a computational approach using an iterative blending to relate different models. Residual stresses are also studied. An enhanced analytical model is proposed. The model is capable for the first time to predict analytically the residual stress regeneration in the multi-step machining problem. An enhancement of the existing model is proposed. The (MAM) method was applied to the case of turning process of Aluminum 7075. The average grain size and the crystallographic texture were predicted and validated experimentally. The residual stress regeneration was computed for the case of milling of Aluminum 2024. Experimental validations using X-ray technique were performed for validations.Georgia Institute of TechnologyJianguo, YangLiang, Steven Y.2015-01-12T20:53:23Z2015-01-12T20:53:23Z2014-122014-12-04December 20142015-01-12T20:53:23ZThesisapplication/pdfhttp://hdl.handle.net/1853/53103en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Machining
Residual stress
Microstructure
spellingShingle Machining
Residual stress
Microstructure
Fergani, Omar
Materials-affected manufacturing in precision machining
description The influence of different microstructural attributes on the material properties such strength, hardness, residual stress or other physical properties are very well understood. During the manufacturing of mechanical parts utilized in important industries such as energy, aerospace or biomedical, the effect of the processing in term of thermal and mechanical loading is very important as it is directly influencing the microstructure evolution and the properties. The understanding of how the manufacturing process such as high precision machining will affect first the microstructure and therefore the part properties. In this work, we propose the Materials-Affected Manufacturing (MAM). It is a new paradigm helping to understand the interaction between the manufacturing process parameters, materials microstructure attributes and the properties. This is solved using a computational approach using an iterative blending to relate different models. Residual stresses are also studied. An enhanced analytical model is proposed. The model is capable for the first time to predict analytically the residual stress regeneration in the multi-step machining problem. An enhancement of the existing model is proposed. The (MAM) method was applied to the case of turning process of Aluminum 7075. The average grain size and the crystallographic texture were predicted and validated experimentally. The residual stress regeneration was computed for the case of milling of Aluminum 2024. Experimental validations using X-ray technique were performed for validations.
author2 Jianguo, Yang
author_facet Jianguo, Yang
Fergani, Omar
author Fergani, Omar
author_sort Fergani, Omar
title Materials-affected manufacturing in precision machining
title_short Materials-affected manufacturing in precision machining
title_full Materials-affected manufacturing in precision machining
title_fullStr Materials-affected manufacturing in precision machining
title_full_unstemmed Materials-affected manufacturing in precision machining
title_sort materials-affected manufacturing in precision machining
publisher Georgia Institute of Technology
publishDate 2015
url http://hdl.handle.net/1853/53103
work_keys_str_mv AT ferganiomar materialsaffectedmanufacturinginprecisionmachining
_version_ 1718298806551838720