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An underground barrier of locally resonant metamaterial to attenuate surface elastic waves in solids

机译:局部共振超材料的地下屏障以衰减固体中的表面弹性波

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The low frequency of seismic waves severely limits the regulation of wave propagation in earthquake protection engineering applications. In recent years, locally resonant metamaterials have been introduced for seismic wave attenuation. A barrier based on locally resonant metamaterials consisting of rows of wells is proposed to reduce the transmission of Rayleigh waves during propagation, achieving earthquake protection. First, comparisons are made between the wells of the metamaterial, empty wells, solid steel wells, and a continuous steel wall. It is evident that locally resonant metamaterials exhibit better performance than that of the other materials. Simulations of the relationships between the attenuation of Rayleigh waves and the depth, number of rows, and working frequency of the wells are presented. With a barrier of ten rows of wells, where the diameter of each well is less than one-twentieth of the wavelength of the Rayleigh wave and the depth of the wells is nearly four-fifths of the wavelength, the maximum attenuation reaches up to 16.2 dB when all the wells share the same working frequency, and the bandwidth is broader, but the maximum value is less when the rows have different working frequencies. Depending on the demand for a higher value or a broader bandwidth of the Rayleigh wave attenuation, this barrier promotes flexible and achievable improvements by adding rows or decentralizing the working frequencies of the wells. The vast potential of seismic wave attenuation from locally resonant metamaterials is anticipated in the future.
机译:地震波的低频严重限制了地震保护工程应用中的波传播的调节。近年来,已经引入了局部共振超材料用于地震波衰减。提出了一种基于局部共振超材料的屏障,提出包括孔行的行,以减少传播期间瑞利波的传输,实现地震保护。首先,在超材料,空井,固体钢井和连续钢壁之间进行比较。显然,局部共振超材料表现出比其他材料的性能更好。呈现了瑞利波衰减与井的深度,行数和工作频率之间的关系的模拟。具有十排井的屏障,其中每个孔的直径小于瑞利波的波长的一十分之一,孔的深度是波长的几个五分之一,最大衰减达到16.2 DB当所有井中共享相同的工作频率时,带宽更宽,但是当行具有不同的工作频率时,最大值较少。根据对瑞利波衰减的更高价值或更广泛的带宽的需求,通过添加行或分散井的工作频率,该屏障促进了灵活和可实现的改进。未来预期从局部共振超材料的地震波衰减的巨大潜力。

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