Shock Initiation and Propagation of Detonation in ANFO

Author:

Bohanek Vječislav1ORCID,Štimac Tumara Barbara1,Serene Chan Hay Yee2ORCID,Sućeska Muhamed1

Affiliation:

1. Department of Mining Engineering and Geotechnics, Faculty of Mining, Geology and Petroleum Engineering, University of Zagreb, Pierottijeva 6, 10000 Zagreb, Croatia

2. Emerging Nanoscience Research Institute, Nanyang Technological University, 50 Nanyang Avenue, North Spine, Block N1-B4a-02, Singapore 639798, Singapore

Abstract

The ammonium nitrate (AN) and fuel oil (FO) mixture known as ANFO is a typical representative of non-ideal explosives. In contrast to ideal explosives, the detonation behavior of ANFO exhibits a strong dependence on charge diameter, existence, and properties of confinement, with a large failure diameter and long distance required to establish steady-state detonation. In this study shock initiation and propagation of detonation in ANFO were studied experimentally by determining the detonation velocity at different distances from the initiation point, as well as by numerical modeling using AUTODYN hydrodynamics code and a Wood–Kirkwood detonation model incorporated into EXPLO5 thermochemical code. The run-to-steady-state detonation velocity distance was determined as a function of charge diameter, booster charge mass, and confinement. It was demonstrated that a Lee–Tarver ignition and growth reactive flow model with properly calibrated rate constants was capable of correctly ascertaining experimentally observed shock initiation behavior and propagation of detonation in ANFO, as well as the effects of charge diameter, booster mass, and confinement.

Funder

Croatian Science Foundation

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference38 articles.

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2. Shock Initiation Studies of Ammonium Nitrate Explosives;Cudzilo;Combust. Flame,1995

3. Esen, S. (2004). A Non-Ideal Detonation Model for Commercial Explosives. [Ph.D. Thesis, University of Queensland].

4. Fabin, M., and Jarosz, T. (2021). Improving ANFO: Effect of Additives and Ammonium Nitrate Morphology on Detonation Parameters. Materials, 14.

5. Reaction Rates of Ammonium Nitrate in Detonation;Cook;J. Phys. Chem.,1955

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