首页> 外文学位 >I. Impact spallation experiments: Fracture patterns and spall velocities. II. Craters in carbonate rocks: An electron paramagnetic resonance analysis of shock damage.
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I. Impact spallation experiments: Fracture patterns and spall velocities. II. Craters in carbonate rocks: An electron paramagnetic resonance analysis of shock damage.

机译:I.冲击剥落实验:断裂模式和剥落速度。二。碳酸盐岩石中的火山口:冲击破坏的电子顺磁共振分析。

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摘要

This work is divided into two independent papers.; Paper 1. Spall velocities were measured for nine experimental impacts into San Marcos gabbro targets. Impact velocities ranged from 1 to 6.5 km/sec. Projectiles were iron, aluminum, lead, and basalt of varying sizes. The projectile masses ranged from a 4 g lead bullet to a 0.04 g aluminum sphere. The velocities of fragments were measured from high-speed films taken of the events. The maximum spall velocity observed was 30 m/sec, or 0.56 percent of the 5.4 km/sec impact velocity. The measured velocities were compared to the spall velocities predicted by the spallation model of Melosh (1984). The compatibility between the spallation model for large planetary impacts and the results of these small scale experiments are considered in detail.; The targets were also bisected to observe the pattern of internal fractures. A series of fractures were observed, whose location coincided with the boundary between rock subjected to the peak shock compression and a theoretical "near surface zone" predicted by the spallation model. Thus, between this boundary and the free surface, the target material should receive reduced levels of compressive stress as compared to the more highly shocked region below.; Paper 2. Carbonate samples from the nuclear explosion crater, OAK, and a terrestrial impact crater, Meteor Crater, were analyzed for shock damage using electron paramagnetic resonance, EPR. The first series of samples for OAK Crater were obtained from six boreholes within the crater, and the second series were ejecta samples recovered from the crater floor. The degree of shock damage in the carbonate material was assessed by comparing the sample spectra to spectra of Solenhofen limestone, which had been shocked to known pressures.; The results of the OAK borehole analysis have identified a thin zone of highly shocked carbonate material underneath the crater floor. This zone has a maximum depth of approximately 200 ft below sea floor at the ground zero borehole and decreases in depth towards the crater rim. A layer of highly shocked material is also found on the surface in the vicinity of the reference borehole, located outside the crater. This material could represent a fallout layer. The ejecta samples have experienced a range of shock pressures.; It was also demonstrated that the EPR technique is feasible for the study of terrestrial impact craters formed in carbonate bedrock. The results for the Meteor Crater analysis suggest a slight degree of shock damage present in the {dollar}beta{dollar} member of the Kaibab Formation exposed in the crater walls.
机译:这项工作分为两篇独立的论文。论文1.测量了剥落速度对圣马科斯gabbro目标的九次实验影响。撞击速度范围为1至6.5 km / sec。弹丸是大小不一的铁,铝,铅和玄武岩。弹丸质量从4克铅弹到0.04克铝球不等。从事件发生的高速胶片中测量碎片的速度。观察到的最大剥落速度为30 m / sec,或5.4 km / sec撞击速度的0.56%。将测得的速度与Melosh(1984)的散裂模型预测的散裂速度进行比较。详细讨论了大型行星撞击的散裂模型与这些小规模实验结果之间的兼容性。还将目标一分为二以观察内部骨折的模式。观察到一系列裂缝,其位置与遭受峰值冲击压缩的岩石和由散裂模型预测的理论“近表面区域”之间的边界重合。因此,在该边界和自由表面之间,与下面的震动程度较高的区域相比,目标材料应承受的压缩应力降低。论文2。使用电子顺磁共振EPR分析了来自核爆炸坑OAK和地面撞击坑陨石坑的碳酸盐样品的冲击破坏。 OAK火山口的第一批样品是从火山口内的六个钻孔中获得的,第二系列是从火山口底板回收的喷射样品。通过将样品光谱图与Solenhofen石灰石的光谱图(已被已知压力震荡)进行比较,来评估碳酸盐材料中的冲击破坏程度。 OAK井眼分析的结果已经确定了火山口底下一个高度震动的碳酸盐材料的薄层。该区域在地面零井眼处的海床以下最大深度约为200英尺,并且朝着火山口边缘的深度减小。在火山口外侧的参考钻孔附近的表面上也发现了一层高度震动的材料。该材料可能代表一个辐射层。喷射样品经受了一定范围的冲击压力。研究还表明,EPR技术对于研究碳酸盐岩中形成的地面撞击坑是可行的。流星陨石坑分析的结果表明,暴露在火山口壁中的Kaibab组的{dolal} beta {dollar}成员中存在轻微程度的冲击破坏。

著录项

  • 作者

    Polanskey, Carol Ann.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Geophysics.; Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 1988
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

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