泥石流运动特征斜槽试验研究

    EXPERIMENTAL STUDY OF CHUTE WITH DEBRIS FLOW MOTION CHARACTERISTICS

    • 摘要: 泥石流因其复杂的固液耦合作用与强致灾性,成为山区地质灾害研究的重点。本研究通过斜槽试验,以石质圆球模拟固相、甘油-水混合物模拟液相,系统研究泥石流的流动特性与基底应力响应规律。通过三轴应力传感器、超声波测距仪及高速摄像机,对泥石流运动过程的基底应力响应、运动过程进行监测,揭示泥石流流态转变及基底应力演化规律。研究结果表明,基底压应力和剪切应力与液相黏性、坡度、颗粒数量及粒径呈正相关,其中粒径影响最显著。流动状态从层流向湍流转变时,颗粒相对运动和碰撞频率增加,应力波动增大,泥石流侵蚀能力增强。颗粒激扰强度与波动压应力变化密切相关,影响流动稳定性和侵蚀特性。本研究对揭示泥石流的运动特征具有重要研究意义。

       

      Abstract: Debris flows are a critical focus in the prevention of geological disasters in mountainous regions due to their complex solid-liquid interactions and high destructive potential. Flume experiments were conducted to simulate debris flows using spherical particles and glycerol-water mixtures. Triaxial stress sensors, ultrasonic sensors, and high-speed cameras were systematically employed to quantify flow dynamics and substrate stress responses. Results indicate that basal normal and shear stresses exhibit positive correlations with liquid viscosity, slope gradient, particle count, and particle size—with particle size being the dominant factor. Transitions from laminar to turbulent flow amplify particle collisions, increasing stress fluctuations and the erosive capacity of debris flows. Additionally, particle agitation intensity is directly linked to stress fluctuations, thereby governing flow stability and erosion patterns. This work provides new insights into debris flow mechanisms through quantitative analysis of phase interactions.

       

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