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Influence of Structure and Cracks Distribution on P-wave Velocity Anisotropy in Rocks - Laboratory and Field Study

机译:结构与裂缝分布对岩石岩石速度各向异性的影响 - 实验室与田间研究

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Physical properties of rocks are often investigated by laboratory methods. The extrapolation of the laboratory results anisotropy of P-wave propagation to larger rock units requires comparison with direct field measurements. The purpose of this contribution is this comparison between laboratory and field measured anisotropy of P-wave. Field measurements and rock sampling for laboratory tests carried out on the outcrop of peridotite massif in the Ivrea zone - north-western Italy. The direct surface seismic measurement of elastic waves velocity was realized by means of shallow seismic refraction method on base approximately 10m. Laboratory tests were realized on spherical samples with diameter 50 mm by using ultrasound velocity measurement in 132 directions under confining stress from atmospheric level up to 150 MPa. The common laboratory and field research can reveal reasons of anisotropy at different scales. Scaling factor is effected dominantly by different sampling size. Laboratory samples contain only microcraks, which represents nearly continuum with regard to ultrasound wave length (11 mm). Rock massif, however, contains beside mickrocraks also cracks with comparable size of applied seismic wave length (10 m).
机译:岩石的物理性质通常通过实验室方法来研究。实验室结果的外推对较大岩石单元的P波传播各向异性需要与直接场测量进行比较。该贡献的目的是实验室与场的比较比较测量的P波的各向异性。田园植物区赤岩地块露头进行实验室测量和岩​​石抽样 - 意大利西北西北。通过浅地震折射法实现了弹性波速度的直接表面地震测量,基部约10m。通过在大气压范围内的限制应力下的132方向上使用超声速度测量,在直径为50mm的球形样品上实现了实验室测试。共同的实验室和现场研究可以揭示不同尺度各向异性的原因。缩放因子通过不同的采样尺寸主导地实现。实验室样品仅含有微菌,这代表了超声波长度(11mm)的几乎连续。然而,岩体含有Mickrocraks旁边的裂缝也裂缝,施加地震波长的相当大小(10米)。

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