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Bench blast modeling: Consequences of crushed zone, wave front shape, and radial cracks.

机译:台爆模型:压碎区,波前形状和径向裂缝的后果。

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摘要

A geometrical model for the rock crushed zone around a cylindrical charge is developed. The model is used to obtain empirical relationships between the scaled crushed zone diameter and some dimensionless ratios of explosive and rock properties. The ratios are velocity ratio, characteristic impedance ratio, medium stress ratio, and detonation pressure ratio. The empirical relations for granite, salt, and limestone in combination with a variety of explosives show that the scaled crushed zone diameter increases at a decreasing rate with increasing dimensionless ratios.;The shape of the wave fronts around a cylindrical charge detonating in rock has been constructed for velocity ratios ranging from infinity to less than one. The shape of the wave front is not planar in the range of dimensions used in full scale bench blasting. The shape of the wave front is cylindrical in the middle and spherical at the top and bottom for infinite velocity ratio; sphero-conical for velocity ratios greater than one; spherical for velocity ratios ;Quasi-static finite element models for a blasthole in a full scale bench blasting are analyzed using a 2-D finite element program written by the author. The models include a model neglecting radial cracks, models considering pressurized and non-pressurized radial cracks around the blasthole, and a model using an equivalent cavity to replace the pressurized radial cracks. Displacement fields, stress fields, and strain energy density distribution are studied. The analyses show that including radial cracks increases the levels of the strain energy density contours and the magnitudes of the displacement and stress fields several fold. The equivalent cavity gives much lower levels of strain energy contours and gives lower displacement and stress field magnitudes than those produced by the pressurized radial cracks. The scaled areas of the strain energy density contours increase at a decreasing rate with increasing the blasthole internal pressure and with increasing the ratio of the compressive strength to the tensile strength. These contour areas decrease at a decreasing rate with increasing tensile strength.
机译:建立了圆柱装药周围岩石破碎区的几何模型。该模型用于获得缩放的破碎区直径与炸药和岩石特性的一些无量纲比率之间的经验关系。这些比率是速度比率,特征阻抗比率,介质应力比率和爆震压力比率。花岗岩,盐和石灰石与多种炸药结合的经验关系表明,随着无因次比的增加,按比例缩小的破碎区直径以减小的速率增加。;在岩石中爆炸的圆柱形装药周围的波前形状为构造为速度比从无穷大到小于1。在全尺寸台式爆破中使用的尺寸范围内,波阵面的形状不是平面的。波前的形状在中间为圆柱状,在顶部和底部为球形,以实现无限速比。速度比大于1的球面圆锥体;球形的速度比;使用作者编写的二维有限元程序分析了全尺寸台式爆破中爆破孔的准静态有限元模型。这些模型包括忽略径向裂纹的模型,考虑爆破孔周围受压和非受压径向裂纹的模型,以及使用等效腔体替代受压径向裂纹的模型。研究了位移场,应力场和应变能密度分布。分析表明,包括径向裂纹会增加应变能密度轮廓的水平,并且位移场和应力场的大小会增加几倍。等效腔比受压径向裂纹产生的应变能轮廓要低得多,位移和应力场的幅度也要低。应变能密度等值线的缩放区域随着爆破孔内压的增加和抗压强度与抗拉强度之比的增加而减小。这些轮廓区域随着拉伸强度的增加而减小。

著录项

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Engineering Mining.;Geotechnology.;Applied Mechanics.
  • 学位 Ph.D.
  • 年度 1990
  • 页码 304 p.
  • 总页数 304
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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