由于马赫系统,PVB爆炸负荷增强

W. Lowry, J. Geng
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引用次数: 0

摘要

压力容器爆炸(PVB)是化学加工和石油炼制设施中常见的爆炸场景。现有的方法可用于预测由球形或圆柱形PVB源产生的爆炸载荷,PVB源可以在坡度上或海拔上。在PVB源升高的情况下,产生的爆炸波将以一定角度从地面反射。这种地面反射将导致在入射爆炸波与地面之间形成一定角度的马赫干,所需的角度取决于爆炸波超压。随着马赫数杆向前推进,与马赫数杆相关的三相点向上移动,这可以产生高爆炸压力区域。本文重点研究了一种方法,该方法可用于确定由马赫干产生的高压区域,以及相关的爆炸压力,作为PVB源标高和入射爆炸压力的函数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PVB Blast Load Enhancement due to Mach Stem
A pressure vessel burst (PVB) is an explosion scenario commonly encountered at chemical processing and petroleum refining facilities. Existing methodologies are available to predict the blast loads resulting from a spherical or cylindrical PVB source, with the PVB source either at grade or at an elevation. In the case of an elevated PVB source, the resulting blast wave will reflect from the ground at an angle. This ground level reflection will result in the formation of a Mach stem at certain angles between the incident blast wave and ground, with the required angles dependent on the blast wave overpressure. The triple point associated with the Mach stem moves upwards as the Mach stem progresses forwards, which can create a region of high blast pressure. This paper focuses on the investigation of a methodology that can be used to determine the high-pressure region generated by the Mach stem, along with the associated blast pressure, as a function of the PVB source elevation and incident blast pressure.
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