论文标题

颗粒培养基中低速正常影响驱动的脉冲的传播和衰减

Propagation and attenuation of pulses driven by low velocity normal impacts in granular media

论文作者

Quillen, A. C., Neiderbach, Max, Suo, Bingcheng, South, Juliana, Wright, Esteban, Skerrett, Nathan, Sánchez, Paul, Cúñez, Fernando David, Miklavcic, Peter, Askari, Heesam

论文摘要

我们进行低速效果的实验,对颗粒物材料产生了大约42升浴缸的颗粒状材料。用7个嵌入式加速度计跟踪颗粒介质中的运动。纵向脉冲因冲击而激发的纵向脉冲及其形状扩大,并随着距离撞击部位的行进距离而变得更加顺畅。脉冲传播在撞击部位上并不是球面对称。对于向下传播的脉冲向下传播的峰值幅度大约是垂直45度的两倍。对流扩散模型用于估计脉冲特性与距撞击部位的旅行距离的函数。脉冲峰压力,速度和地震能的功率定律依赖于从冲击到-2.5的距离,而这种快速衰减与我们的实验测量大致一致。我们的实验支持地震震动模型,从而使冲击产生的地震能量的快速衰减成为瓦砾的小行星,而不是回响模型,在这种模型中,地震能慢慢衰减。我们将扩散模型应用于估计地震脉冲的物理特性,这将因即将到来的小行星二进制(65803)didymos系统的DART任务对二次Dimorphos的影响而激发。我们估计,脉冲峰加速度将超过表面重力,因为它通过小行星行驶。

We carry out experiments of low velocity normal impacts into granular materials that fill an approximately cylindrical 42 litre tub. Motions in the granular medium are tracked with an array of 7 embedded accelerometers. Longitudinal pulses excited by the impact attenuate and their shapes broaden and become smoother as a function of travel distance from the site of impact. Pulse propagation is not spherically symmetric about the site of impact. Peak amplitudes are about twice as large for the pulse propagating downward than at 45 degrees from vertical. An advection-diffusion model is used to estimate the dependence of pulse properties as a function of travel distance from the site of impact. The power law forms for pulse peak pressure, velocity and seismic energy depend on distance from impact to a power of -2.5 and this rapid decay is approximately consistent with our experimental measurements. Our experiments support a seismic jolt model, giving rapid attenuation of impact generated seismic energy into rubble asteroids, rather than a reverberation model, where seismic energy slowly decays. We apply our diffusive model to estimate physical properties of the seismic pulse that will be excited by the forthcoming DART mission impact onto the secondary, Dimorphos, of the asteroid binary (65803) Didymos system. We estimate that the pulse peak acceleration will exceed the surface gravity as it travels through the asteroid.

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