Layer generation in a stepless rapid prototyping system

Current rapid prototyping processes build parts in a layer by layer based on CAD data of a part that is either triangulated or sliced directly into thin layers representing consecutive cross-sections of the part. One of the problems is that side surfaces of a layer that are not perpendicular to the...

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Main Author: Ngooi, Chan Siang.
Other Authors: Gong, Thomas Haiqing
Format: Theses and Dissertations
Language:English
Published: 2008
Subjects:
Online Access:http://hdl.handle.net/10356/13516
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-135162023-03-11T16:56:53Z Layer generation in a stepless rapid prototyping system Ngooi, Chan Siang. Gong, Thomas Haiqing School of Mechanical and Production Engineering DRNTU::Engineering::Mechanical engineering::Prototyping Current rapid prototyping processes build parts in a layer by layer based on CAD data of a part that is either triangulated or sliced directly into thin layers representing consecutive cross-sections of the part. One of the problems is that side surfaces of a layer that are not perpendicular to the slice plane are approximated as vertical side surfaces, creating a staircase effect on the part surfaces. The aims of this thesis were to eliminate the staircase effect through a slanted layer building method to achieve higher rapid prototyping accuracy and to reduce the overall building time through thick layer deposition. A Stepless Rapid Prototyping (SRP) system is under development to fulfil these aims. A layer-slicing algorithm and a Layer Transfer Interface (LTI) data format were developed to create three-dimensional layers for slanted layer building. This new data format provides adaptive slicing of layers and hence enables a thick layer material deposition to support the use of these adaptive slices. An adaptive slicing on the de facto facet STL models was successfully carried out. To support the use of adaptive slicing, a powder sintering experiment on thermoplastic polymer layer of 1 mm thick was also examined. A sintering model was developed to predict the sintering time required for the thermoplastic powders used. Test parts were built and verified using both the SRP machine and Steoreolithography machine. Results showed that slanted layers with thick layer deposition were achieved in the SRP machine. This work suggests that the adaptive slicing of slanted layers on facet STL model and the corresponding thick layer deposition can be realized to achieve more accurate and faster rapid prototyping. Master of Engineering (MPE) 2008-08-26T03:58:35Z 2008-10-20T08:22:14Z 2008-08-26T03:58:35Z 2008-10-20T08:22:14Z 1998 1998 Thesis http://hdl.handle.net/10356/13516 en 115 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering::Prototyping
spellingShingle DRNTU::Engineering::Mechanical engineering::Prototyping
Ngooi, Chan Siang.
Layer generation in a stepless rapid prototyping system
description Current rapid prototyping processes build parts in a layer by layer based on CAD data of a part that is either triangulated or sliced directly into thin layers representing consecutive cross-sections of the part. One of the problems is that side surfaces of a layer that are not perpendicular to the slice plane are approximated as vertical side surfaces, creating a staircase effect on the part surfaces. The aims of this thesis were to eliminate the staircase effect through a slanted layer building method to achieve higher rapid prototyping accuracy and to reduce the overall building time through thick layer deposition. A Stepless Rapid Prototyping (SRP) system is under development to fulfil these aims. A layer-slicing algorithm and a Layer Transfer Interface (LTI) data format were developed to create three-dimensional layers for slanted layer building. This new data format provides adaptive slicing of layers and hence enables a thick layer material deposition to support the use of these adaptive slices. An adaptive slicing on the de facto facet STL models was successfully carried out. To support the use of adaptive slicing, a powder sintering experiment on thermoplastic polymer layer of 1 mm thick was also examined. A sintering model was developed to predict the sintering time required for the thermoplastic powders used. Test parts were built and verified using both the SRP machine and Steoreolithography machine. Results showed that slanted layers with thick layer deposition were achieved in the SRP machine. This work suggests that the adaptive slicing of slanted layers on facet STL model and the corresponding thick layer deposition can be realized to achieve more accurate and faster rapid prototyping.
author2 Gong, Thomas Haiqing
author_facet Gong, Thomas Haiqing
Ngooi, Chan Siang.
format Theses and Dissertations
author Ngooi, Chan Siang.
author_sort Ngooi, Chan Siang.
title Layer generation in a stepless rapid prototyping system
title_short Layer generation in a stepless rapid prototyping system
title_full Layer generation in a stepless rapid prototyping system
title_fullStr Layer generation in a stepless rapid prototyping system
title_full_unstemmed Layer generation in a stepless rapid prototyping system
title_sort layer generation in a stepless rapid prototyping system
publishDate 2008
url http://hdl.handle.net/10356/13516
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