Identification of modal parameters of soil specimen based on impact force

Chuan Wang, Zhenghao Ma, Shutang Liu, Peizhi Zhuang, W. Cao
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Abstract

This study used vibration testing signals of soil samples under external loading to identify modal parameters (including natural frequencies and damping ratios) with different compaction degrees. Based on these parameters, a novel approach was proposed for reliable roadbed vibration compaction control and compaction process optimization. The experimental section utilized six soil samples with varying compaction degrees as experimental subjects, using the hammering method as the excitation mode. Subsequently, the frequency response function and modal parameters of the sample system were obtained through the acquisition, analysis, and parameter identification of samples’ acceleration signals. Firstly, samples with compaction degrees ranging from 88 % to 97 % primarily exhibited three modes, with the second modal frequency response displaying the weakest amplitude, and the fundamental mode being the dominant one. Additionally, parameter identification results revealed that the fundamental modal frequency exhibited a significant negative exponential growth with increasing compaction degree, while the second and third modal frequencies showed significant linear growth. Furthermore, the average damping ratio also demonstrated a tendency toward linear change with increasing compaction degree. Finally, the feasibility of modal parameters being actively used in practical engineering is discussed. Consequently, this study aimed to propose an indicator system for accurately assessing the bearing level of compacted soils from a modal dynamics perspective and to integrate modal dynamic indicators with density-class indicators into further optimization design work on road compaction processes.
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根据冲击力确定土壤试样的模态参数
本研究利用土样在外部荷载作用下的振动测试信号,确定了不同压实度下的模态参数(包括固有频率和阻尼比)。根据这些参数,提出了一种可靠的路基振动压实控制和压实工艺优化的新方法。实验部分以六个不同压实度的土样为实验对象,采用锤击法作为激励模式。随后,通过对样品加速度信号的采集、分析和参数识别,获得了样品系统的频率响应函数和模态参数。首先,压实度在 88% 至 97% 之间的样品主要表现出三种模态,其中第二种模态频率响应的振幅最弱,基本模态是主要模态。此外,参数识别结果表明,随着压实度的增加,基本模态频率呈显著的负指数增长,而第二和第三模态频率则呈显著的线性增长。此外,平均阻尼比也随着压实度的增加呈线性变化趋势。最后,讨论了在实际工程中积极使用模态参数的可行性。因此,本研究旨在提出一种从模态动力学角度准确评估压实土壤承载水平的指标体系,并将模态动力学指标与密度等级指标整合到道路压实过程的进一步优化设计工作中。
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