Determination of detonation front curvature radius of ANFO explosives and its importance in numerical modelling of detonation with the Wood-Kirkwood model

IF 1.2 Q3 GEOSCIENCES, MULTIDISCIPLINARY Rudarsko-Geolosko-Naftni Zbornik Pub Date : 2022-01-01 DOI:10.17794/rgn2022.2.9
B. Stimac Tumara, M. Dobrilović, V. Škrlec, M. Sućeska
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Abstract

Unlike most military high explosives, which are characterized by an almost plane detonation front, ammonium nitratebased commercial explosives, such as ANFO (ammonium nitrate/fuel oil mixture) and emulsion explosives, are characterized by a curved detonation front. The curvature is directly related to the rate of radial expansion of detonation products in the detonation driving zone and the rate of chemical reactions, and it is one of the characteristics of nonideal explosives. The detonation theories used to model the nonideal behaviour of explosives require both reaction rate and rate of radial expansion to be known/specified as input data. Unfortunately, neither can be measured and what is mostly used is a link between these rates and parameters which can be more easily measured. In this paper, the Wood-Kirkwood approach of determination of radial expansion through the radius of detonation front curvature and the electro-optical technique for experimental determination of detonation front curvature of ANFO explosives is applied. It was shown that an experimentally determined radius of detonation front curvature vs charge diameter, incorporated in the Wood-Kirkwood detonation theory, can satisfactorily reproduce experimental detonation velocity-charge diameter data for ANFO explosives, especially when the pressure-based reaction rate law is also calibrated (D=1.3 and k=0.06 1/(μs/GPaD)).
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ANFO炸药爆轰前曲率半径的确定及其在Wood-Kirkwood模型爆轰数值模拟中的重要性
大多数军用烈性炸药的特点是几乎是平面爆轰面,而硝酸铵类商业炸药,如硝酸铵/燃油混合物和乳化炸药,其特点是弯曲爆轰面。曲率直接关系到爆轰驱动区爆轰产物径向膨胀速率和化学反应速率,是非理想炸药的特征之一。用于模拟炸药非理想行为的爆轰理论要求反应速率和径向膨胀速率作为输入数据是已知的/指定的。不幸的是,两者都无法测量,主要使用的是这些速率和更容易测量的参数之间的联系。本文采用了通过爆轰前曲率半径测定径向膨胀的Wood-Kirkwood法和实验测定ANFO炸药爆轰前曲率的光电技术。结果表明,结合Wood-Kirkwood爆轰理论,采用实验确定的爆轰前曲率半径与装药直径的关系,可以较好地再现ANFO炸药爆轰速度-装药直径的实验数据,特别是在标定了基于压力的反应速率定律(D=1.3, k=0.06 1/(μs/GPaD))的情况下。
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来源期刊
CiteScore
2.50
自引率
15.40%
发文量
50
审稿时长
12 weeks
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