Araştırma Makalesi

Assessing Unconfined Vapor Cloud Explosions (Uvce) Physical Effects: A Software Built For Modelling With Bst Methodology

Cilt: 13 Sayı: 2 30 Haziran 2025
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Assessing Unconfined Vapor Cloud Explosions (Uvce) Physical Effects: A Software Built For Modelling With Bst Methodology

Abstract

The calculation of physical effects of unconfined vapour cloud explosions (UVCE), which are caused by explosive atmosphere, is important for risk assessment studies. During the evaluation of explosive atmospheres, effects of a possible explosion are determined in order to take safety measures. There are various algorithms for calculating the overpressure. In physical effect calculations, evaluation of the surrounding environment and chemical reaction are important criteria for accuracy of the results. Usually, a large portion of risk assessment studies neglect overpressure damage assessment as these algorithms cannot be understood or implemented easily due to difficulties in usage. There are various software used in calculating explosion overpressure, however these software generally are run without assessing operating limits and scenario parameters correctly. Thereby, explosion effects cannot be evaluated properly in many explosive atmosphere risk assessments. Taking this as the basis for our aim, an overpressure calculation software called ExCALc has been coded for use in UVCE risk assessment studies. ExCALc uses Baker-Strehlow-Tang (BST) model. The parameters are input in a user friendly way and the scenario results are calculated for varying distances. It is thought that for complex methodology used in assessments, simplifying tools will benefit industrial safety in the long term.

Keywords

Teşekkür

The author would like to acknowledge Dr. Tolga BARIŞIK (from Istanbul Yeni Yuzyil University Occupational Health & Safety Department) for his contribution on determining the validation method for the code calculation results.

Kaynakça

  1. [1] Mannan S. Lees' Loss Prevention in the Process Industries: Hazard Identification, Assessment and Control (4th ed.). Butterworth-Heinemann; 2012.
  2. [2] DIRECTIVE 1999/92/EC OF THE EUROPEAN PARLIAMENT AND OF THE COUNCIL On minimum requirements for improving the safety and health of workers potentially at risk from explosive atmospheres. (2000). Official Journal of the European Communities, L23, 57-64.
  3. [3] Van den Bosch C, Weterings R (Eds.). Methods for the Calculation of Physical Effects CPR14E (Yellow Book) (3rd ed.). NL: Committee for the Prevention of Disasters; 2005.
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  6. [6] Van den Berg AC, Eggen J. GAME: Guidance for the Application of the Multi-Energy Method. 2nd International Specialist Meeting on Fuel-Air Explosions. Bergen, Norway: TNO; 1996.
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  8. [8] Alonso FD, Ferradás EG, Perez JF, Aznar AM, Gimeno JR, Alonso JM. Characteristic overpressure-impulse-distance curves for vapour cloud explosions using the TNO Multi-Energy Model. Journal of Hazardous Materials 2006;137(2):734-741. https://doi.org/10.1016/j.jhazmat.2006.04.005

Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Erken Görünüm Tarihi

26 Mayıs 2025

Yayımlanma Tarihi

30 Haziran 2025

Gönderilme Tarihi

22 Şubat 2022

Kabul Tarihi

6 Ocak 2023

Yayımlandığı Sayı

Yıl 2025 Cilt: 13 Sayı: 2

Kaynak Göster

APA
Kepekli, T. A. (2025). Assessing Unconfined Vapor Cloud Explosions (Uvce) Physical Effects: A Software Built For Modelling With Bst Methodology. Gazi Üniversitesi Fen Bilimleri Dergisi Part C: Tasarım ve Teknoloji, 13(2), 512-525. https://doi.org/10.29109/gujsc.1077377

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