首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Design of Sand-Based, 3-D-Printed Analog Faults With Controlled Frictional Properties
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Design of Sand-Based, 3-D-Printed Analog Faults With Controlled Frictional Properties

机译:具有受控摩擦性能的砂型3-D印刷模拟故障设计

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Laboratory experiments with surrogate materials play an important role in fault mechanics. They can improve the current state of knowledge by testing various scientific hypotheses in a repeatable and controlled way. Central in these experiments is the selection of appropriate analog, rock-like materials. Here, we investigated the frictional properties of sand-based, 3-D-printed materials. We performed uniaxial compression tests, direct shear, and inclined plane tests in order to determine a) the main bulk mechanical parameters of this new analog material, b) its viscous behavior, c) its frictional properties, and d) the influence of some printing parameters. Complete stress-strain/apparent friction-displacement curves were presented including the post-peak, softening behavior, which is a key factor in earthquake instability. Going a step further, we printed rock-like interfaces of custom frictional properties. Based on a simple analytical model, we designed the a) maximum, minimum, and residual apparent frictional properties, b) characteristic slip distance, c) evolution of the friction coefficient with slip, and d) dilatancy of the printed interfaces. This model was experimentally validated using interfaces following a sinusoidal pattern, which led to an oscillating evolution of the apparent friction coefficient with slip. Our approach could be used for simulating earthquake-like instabilities in the laboratory and mimic the periodical rupture and healing of fault sections. Additionally, our tests showed the creation of a gouge-like layer due to granular debonding during sliding, whose properties were quantified. The experimental results and the presented methodology make it possible to design new surrogate laboratory experiments for fault mechanics and geomechanics.
机译:用替代材料进行的实验室实验在断层力学中起着重要作用。他们可以通过以可重复和可控的方式测试各种科学假设来改善当前的知识状态。这些实验的核心是选择合适的类似岩石的材料。在这里,我们研究了砂基3D打印材料的摩擦性能。我们进行了单轴压缩试验、直剪试验和斜面试验,以确定a)这种新型模拟材料的主要本体力学参数,b)其粘性行为,c)其摩擦性能,以及d)一些印刷参数的影响。给出了完整的应力-应变/表观摩擦-位移曲线,包括峰后软化行为,这是地震失稳的关键因素。更进一步,我们打印了具有自定义摩擦特性的岩石状界面。基于一个简单的分析模型,我们设计了a)最大、最小和残余表观摩擦特性,b)特征滑移距离,c)摩擦系数随滑移的演化,以及d)印刷界面的剪胀性。该模型通过正弦模式下的界面进行了实验验证,该模式导致了表观摩擦系数随滑移的振荡演化。我们的方法可用于在实验室模拟类似地震的不稳定性,并模拟断层的周期性破裂和愈合。此外,我们的测试表明,由于滑动过程中的颗粒脱粘,产生了类似凿槽的层,其性质已被量化。实验结果和提出的方法使设计新的断层力学和地质力学替代实验室实验成为可能。

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