Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach

Hydrogen leakage may cause destructive incidents due to its high flammability and explosivity. Thus, better preventive methods must be used to mitigate the impacts. This paper proposed an approach using targeted nitrogen nozzle spray to induce both blower ventilation and inert gas atmosphere on leak...

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Main Authors: Tan, Wei Jian, Ban, Zhen Hong, Chen, Bing Hui, Kim, Kek Seong, Siwayanan, Parthiban, Choong, Thomas S. Y., Lau, Kok Keong
Format: Article
Published: American Chemical Society 2022
Online Access:http://psasir.upm.edu.my/id/eprint/101263/
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author Tan, Wei Jian
Ban, Zhen Hong
Chen, Bing Hui
Kim, Kek Seong
Siwayanan, Parthiban
Choong, Thomas S. Y.
Lau, Kok Keong
author_facet Tan, Wei Jian
Ban, Zhen Hong
Chen, Bing Hui
Kim, Kek Seong
Siwayanan, Parthiban
Choong, Thomas S. Y.
Lau, Kok Keong
author_sort Tan, Wei Jian
building UPM Institutional Repository
collection Online Access
description Hydrogen leakage may cause destructive incidents due to its high flammability and explosivity. Thus, better preventive methods must be used to mitigate the impacts. This paper proposed an approach using targeted nitrogen nozzle spray to induce both blower ventilation and inert gas atmosphere on leak sources to suppress hydrogen leakage because studies on blower ventilation and inert gas suppression to mitigate hydrogen leakage are usually conducted separately rather than coupled. Its feasibility was studied using computational fluid dynamics. Dispersion of leaked hydrogen, flammability zone, and room temperature were analyzed. Eight cases were conducted to compare three types of nozzle spray orientation, which are horizontal (90°) targeted nozzle spray, slanted (45°) targeted nozzle spray, and overhead sprinkler. The results showed that the slanted (45°) nozzle exhibited better performance. The distance between the nozzle and the leakage point and the nozzle orientations are the deciding factors of equal importance. Shorter distances such as that in targeted sprays can shorten the time for nitrogen to reach the leak source, and more concentrated nitrogen can be presented. However, proper orientation is required to provide better suppression and to prevent further damage. The proposed method can induce blower ventilation and inert atmosphere to suppress the leaked hydrogen effectively. It can be achieved by using existing industrial nozzle, and the hydrogen leakage from different locations can be treated by changing the nozzle orientations.
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institution Universiti Putra Malaysia
institution_category Local University
last_indexed 2025-11-15T13:34:18Z
publishDate 2022
publisher American Chemical Society
recordtype eprints
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spelling upm-1012632023-12-15T23:26:37Z http://psasir.upm.edu.my/id/eprint/101263/ Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach Tan, Wei Jian Ban, Zhen Hong Chen, Bing Hui Kim, Kek Seong Siwayanan, Parthiban Choong, Thomas S. Y. Lau, Kok Keong Hydrogen leakage may cause destructive incidents due to its high flammability and explosivity. Thus, better preventive methods must be used to mitigate the impacts. This paper proposed an approach using targeted nitrogen nozzle spray to induce both blower ventilation and inert gas atmosphere on leak sources to suppress hydrogen leakage because studies on blower ventilation and inert gas suppression to mitigate hydrogen leakage are usually conducted separately rather than coupled. Its feasibility was studied using computational fluid dynamics. Dispersion of leaked hydrogen, flammability zone, and room temperature were analyzed. Eight cases were conducted to compare three types of nozzle spray orientation, which are horizontal (90°) targeted nozzle spray, slanted (45°) targeted nozzle spray, and overhead sprinkler. The results showed that the slanted (45°) nozzle exhibited better performance. The distance between the nozzle and the leakage point and the nozzle orientations are the deciding factors of equal importance. Shorter distances such as that in targeted sprays can shorten the time for nitrogen to reach the leak source, and more concentrated nitrogen can be presented. However, proper orientation is required to provide better suppression and to prevent further damage. The proposed method can induce blower ventilation and inert atmosphere to suppress the leaked hydrogen effectively. It can be achieved by using existing industrial nozzle, and the hydrogen leakage from different locations can be treated by changing the nozzle orientations. American Chemical Society 2022-04-29 Article PeerReviewed Tan, Wei Jian and Ban, Zhen Hong and Chen, Bing Hui and Kim, Kek Seong and Siwayanan, Parthiban and Choong, Thomas S. Y. and Lau, Kok Keong (2022) Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach. ACS Chemical Health & Safety, 29 (3). 309 - 318. ISSN 1878-0504 https://pubs.acs.org/doi/epdf/10.1021/acs.chas.1c00096 10.1021/acs.chas.1c00096
spellingShingle Tan, Wei Jian
Ban, Zhen Hong
Chen, Bing Hui
Kim, Kek Seong
Siwayanan, Parthiban
Choong, Thomas S. Y.
Lau, Kok Keong
Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
title Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
title_full Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
title_fullStr Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
title_full_unstemmed Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
title_short Enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
title_sort enhanced mitigation of fire and explosion risks due to hydrogen leakage using targeted nitrogen nozzle spray approach
url http://psasir.upm.edu.my/id/eprint/101263/
http://psasir.upm.edu.my/id/eprint/101263/
http://psasir.upm.edu.my/id/eprint/101263/