Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission

Dry ice blasting has been used in the modern cleaning industry. However, the primary disadvantage of dry ice blasting is high noise exposure. At a high blasting pressure, the process reaches a harmful noise level of up to 130 dBA. The situation significantly impairs to a human being when the noise e...

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Main Authors: Mat, Mohamad Nur Hidayat, Asmuin, Nor Zelawati
Format: Article
Language:English
Published: Penerbit UTHM 2018
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Online Access:http://eprints.uthm.edu.my/3501/1/AJ%202018%20%28690%29.pdf
http://eprints.uthm.edu.my/3501/
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Institution: Universiti Tun Hussein Onn Malaysia
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spelling my.uthm.eprints.35012021-11-18T01:45:10Z http://eprints.uthm.edu.my/3501/ Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission Mat, Mohamad Nur Hidayat Asmuin, Nor Zelawati TA630-695 Structural engineering (General) Dry ice blasting has been used in the modern cleaning industry. However, the primary disadvantage of dry ice blasting is high noise exposure. At a high blasting pressure, the process reaches a harmful noise level of up to 130 dBA. The situation significantly impairs to a human being when the noise emission occurs in an inaudible frequency area. Present safety measures are only based on administrative control by encapsulating the entire system with sound insulation. The main objective of this project is to study the optimum nozzle configuration on the effect of dry ice blasting particle velocity and acoustic noise emission. Different nozzle geometry were simulated several times until optimization is achievable. Three-dimension models are designed using CATIA V5. Then the models are simulated with Ansys Fluent V18.2. The numerical studies have been carried out using density based, standard k- e turbulence and Acoustic Broadband Noise Sources model. Six (6) different nozzle configuration namely divergent length, the angle of particle inlet, convergent diameter, expansion ratio, gas inlet diameter and length ratio are analyzed in term of particle velocity magnitude and acoustic power level. The result shows that the optimum nozzle configuration for divergent length, the angle of particle inlet, convergent diameter, expansion ratio, gas inlet diameter and length ratio are 230 mm, 30 mm, 35 mm, 1.00, 6 mm and 0.80 respectively. This configuration provides minimum lowest acoustic noise emission and maximum particle velocity magnitude. Penerbit UTHM 2018 Article PeerReviewed text en http://eprints.uthm.edu.my/3501/1/AJ%202018%20%28690%29.pdf Mat, Mohamad Nur Hidayat and Asmuin, Nor Zelawati (2018) Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission. The International Journal of Integrated Engineering, 10 (5). pp. 130-135. ISSN 2229-838X
institution Universiti Tun Hussein Onn Malaysia
building UTHM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tun Hussein Onn Malaysia
content_source UTHM Institutional Repository
url_provider http://eprints.uthm.edu.my/
language English
topic TA630-695 Structural engineering (General)
spellingShingle TA630-695 Structural engineering (General)
Mat, Mohamad Nur Hidayat
Asmuin, Nor Zelawati
Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission
description Dry ice blasting has been used in the modern cleaning industry. However, the primary disadvantage of dry ice blasting is high noise exposure. At a high blasting pressure, the process reaches a harmful noise level of up to 130 dBA. The situation significantly impairs to a human being when the noise emission occurs in an inaudible frequency area. Present safety measures are only based on administrative control by encapsulating the entire system with sound insulation. The main objective of this project is to study the optimum nozzle configuration on the effect of dry ice blasting particle velocity and acoustic noise emission. Different nozzle geometry were simulated several times until optimization is achievable. Three-dimension models are designed using CATIA V5. Then the models are simulated with Ansys Fluent V18.2. The numerical studies have been carried out using density based, standard k- e turbulence and Acoustic Broadband Noise Sources model. Six (6) different nozzle configuration namely divergent length, the angle of particle inlet, convergent diameter, expansion ratio, gas inlet diameter and length ratio are analyzed in term of particle velocity magnitude and acoustic power level. The result shows that the optimum nozzle configuration for divergent length, the angle of particle inlet, convergent diameter, expansion ratio, gas inlet diameter and length ratio are 230 mm, 30 mm, 35 mm, 1.00, 6 mm and 0.80 respectively. This configuration provides minimum lowest acoustic noise emission and maximum particle velocity magnitude.
format Article
author Mat, Mohamad Nur Hidayat
Asmuin, Nor Zelawati
author_facet Mat, Mohamad Nur Hidayat
Asmuin, Nor Zelawati
author_sort Mat, Mohamad Nur Hidayat
title Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission
title_short Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission
title_full Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission
title_fullStr Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission
title_full_unstemmed Optimum design of nozzle geometry of dry ice blasting using CFD for the reduction of noise emission
title_sort optimum design of nozzle geometry of dry ice blasting using cfd for the reduction of noise emission
publisher Penerbit UTHM
publishDate 2018
url http://eprints.uthm.edu.my/3501/1/AJ%202018%20%28690%29.pdf
http://eprints.uthm.edu.my/3501/
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