Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis

Experimental works for analysing flow behaviour inside human trachea has become continuous problem as the model used to study cannot imitate the real geometry of human trachea structure. As the technology develop, Rapid Prototyping (RP) become more useful in constructing the 3D model that has comple...

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Main Authors: Mohd Salleh, Zuliazura, Osman, Kahar, Marian, Mohd Fairuz, Mat Hassan, Nik Normunira, Madon, Rais Hanizam, Samiran, Nor Afzanizam, Rashid, Razlin Abd, lshak, lzuan Amin, Darlis, Nofrizalidris
Format: Article
Language:English
Published: Penerbit Akademia Baru 2021
Subjects:
Online Access:http://eprints.uthm.edu.my/1766/1/J12156_9dd150b90ce8574660d314dc8188bb53.pdf
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author Mohd Salleh, Zuliazura
Osman, Kahar
Marian, Mohd Fairuz
Mat Hassan, Nik Normunira
Madon, Rais Hanizam
Samiran, Nor Afzanizam
Rashid, Razlin Abd
lshak, lzuan Amin
Darlis, Nofrizalidris
author_facet Mohd Salleh, Zuliazura
Osman, Kahar
Marian, Mohd Fairuz
Mat Hassan, Nik Normunira
Madon, Rais Hanizam
Samiran, Nor Afzanizam
Rashid, Razlin Abd
lshak, lzuan Amin
Darlis, Nofrizalidris
author_sort Mohd Salleh, Zuliazura
collection UTHM
description Experimental works for analysing flow behaviour inside human trachea has become continuous problem as the model used to study cannot imitate the real geometry of human trachea structure. As the technology develop, Rapid Prototyping (RP) become more useful in constructing the 3D model that has complexity in their geometries. RP not only offer several technologies in developing the 3D model, but also varies type of materials that can be used to manufacture the 3D model. In this study, RP technique was chosen to develop the 3D model of human trachea to do the Particle Image Velocimetry (PIV) experimental works. Material used was Vero Clear due to PIV need a model that transparent so that visualization on flow inside the model can be seen and the velocity magnitude can be capture. The geometry was adapted from 60 years old trachea patient where the images of trachea was taken by using CT-scan. MIMICS software was used to extracted the images before reconstruct the trachea into 3D model. Velocity distribution was visualized and the magnitude were taken at both left and right bronchi. From the analysis, it concluded that the distribution of airflow to the second generation of trachea was 60:40 to right and left bronchi. It follows the rules as the right bronchi need to supply more air to the right lung compared to left as the volume of right lung bigger that left lung.
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spelling uthm.eprints-17662021-10-18T02:53:10Z http://eprints.uthm.edu.my/1766/ Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis Mohd Salleh, Zuliazura Osman, Kahar Marian, Mohd Fairuz Mat Hassan, Nik Normunira Madon, Rais Hanizam Samiran, Nor Afzanizam Rashid, Razlin Abd lshak, lzuan Amin Darlis, Nofrizalidris TA1501-1820 Applied optics. Photonics Experimental works for analysing flow behaviour inside human trachea has become continuous problem as the model used to study cannot imitate the real geometry of human trachea structure. As the technology develop, Rapid Prototyping (RP) become more useful in constructing the 3D model that has complexity in their geometries. RP not only offer several technologies in developing the 3D model, but also varies type of materials that can be used to manufacture the 3D model. In this study, RP technique was chosen to develop the 3D model of human trachea to do the Particle Image Velocimetry (PIV) experimental works. Material used was Vero Clear due to PIV need a model that transparent so that visualization on flow inside the model can be seen and the velocity magnitude can be capture. The geometry was adapted from 60 years old trachea patient where the images of trachea was taken by using CT-scan. MIMICS software was used to extracted the images before reconstruct the trachea into 3D model. Velocity distribution was visualized and the magnitude were taken at both left and right bronchi. From the analysis, it concluded that the distribution of airflow to the second generation of trachea was 60:40 to right and left bronchi. It follows the rules as the right bronchi need to supply more air to the right lung compared to left as the volume of right lung bigger that left lung. Penerbit Akademia Baru 2021 Article PeerReviewed text en http://eprints.uthm.edu.my/1766/1/J12156_9dd150b90ce8574660d314dc8188bb53.pdf Mohd Salleh, Zuliazura and Osman, Kahar and Marian, Mohd Fairuz and Mat Hassan, Nik Normunira and Madon, Rais Hanizam and Samiran, Nor Afzanizam and Rashid, Razlin Abd and lshak, lzuan Amin and Darlis, Nofrizalidris (2021) Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis. Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, 79 (2). pp. 65-73. ISSN 2289-7879 https://doi.org/10.37934/arfmts. 79 .2. 65 73
spellingShingle TA1501-1820 Applied optics. Photonics
Mohd Salleh, Zuliazura
Osman, Kahar
Marian, Mohd Fairuz
Mat Hassan, Nik Normunira
Madon, Rais Hanizam
Samiran, Nor Afzanizam
Rashid, Razlin Abd
lshak, lzuan Amin
Darlis, Nofrizalidris
Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis
title Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis
title_full Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis
title_fullStr Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis
title_full_unstemmed Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis
title_short Rapid Prototyping 30 Model for PIV: Application in Human Trachea Model Flow Analysis
title_sort rapid prototyping 30 model for piv application in human trachea model flow analysis
topic TA1501-1820 Applied optics. Photonics
url http://eprints.uthm.edu.my/1766/1/J12156_9dd150b90ce8574660d314dc8188bb53.pdf
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