首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Mineral Alteration and Fracture Influence on the Elastic Properties of Volcaniclastic Rocks
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Mineral Alteration and Fracture Influence on the Elastic Properties of Volcaniclastic Rocks

机译:矿物改变与骨折对火山岩弹性性能的影响

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摘要

In geothermal environments, the physical properties of rocks, such as porosity and alteration, are highly variable and control the reservoir's elastic and hydraulic properties. Elastic wave velocity in volcaniclastic rocks and their relation to fractures, pore shapes, and mineral alteration is mostly unknown.We measure ultrasonic P and S wave speeds on volcanic rocks from the Ngatamariki Geothermal Reservoir, New Zealand. Data clustering of wave speed versus porosity and density allow us to classify lithotypes of variable propylitic and phyllic mineral alteration.Wave speeds increase first due to porosity reduction as a result of mineral alteration and welding and, second, due to the high elasticity of alteration minerals (epidote, chlorite, and carbonates).We model the rock porosity as composed of equant pores and oblate-spheroidal microfractures following an elastic effective medium model. For our samples, microfracture porosities range from 4% in the volcaniclastic tuffs to less than 1% in the ignimbrites, which we validate with pycnometer porosity data under effective pressure.We quantify that within one geological volcaniclastic formation, wave speeds vary up to 47% due to rock alteration and welding, while the effect of microfractures and changes in effective stress on wave speeds is secondary (up to 11%) but not negligible. From the experimental and numerical results we show that equant pores remain open at reservoir conditions (2,000 m) and can retain considerable porosity (10%). Our analysis has implications for microfracture and pore network characterization in geothermal reservoirs, in particular, in vapor-dominated systems where matrix porosity and permeability play a role.
机译:在地热环境中,岩石的物理性质,例如孔隙率和变化,具有高度可变的可变,并控制储层的弹性和液压性能。火山岩岩石中的弹性波速度及其与骨折,孔隙形状和矿物改变的关系大多是未知的。我们测量新西兰Ngatamariki地热水库火山岩上的超声波P和S波速。波速与孔隙率和密度的数据聚类允许我们分类可变丙基和文学矿物质改变的硅藻。由于矿物改变和焊接的结果,首先增加速度,而且,由于改变矿物的高弹性,而不是孔隙率。 (环虫,氯酸盐和碳酸盐).We模拟岩石孔隙率,如弹性有效介质模型后的刻标孔隙和扁圆形微磨术组成。对于我们的样品,微型裂缝孔隙率的范围从火山岩牙龈的4%范围为1%的IGNIMBRITE,我们在有效压力下验证了Pycnometer孔隙度数据。我们量化了一个地质火山岩形成,波速变化高达47%由于岩石改变和焊接,而微型磨损和有效应力变化对波速的影响是次要的(高达11%)但不可忽略不计。从实验和数值结果来看,我们表明秤孔在储层条件下保持开放(2,000米),可保持相当大的孔隙率(10%)。我们的分析对地热储层中的微折痕和孔隙网络表征具有影响,特别是在蒸汽主导的系统中,其中矩阵孔隙率和渗透率起作用。

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