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基于常時微動的單結構面危巖體損傷識別實驗

Experimental study on damage identification of single structure plane dangerous rock masses based on constant micromotion

  • 摘要: 危巖體的動力學參數能夠表征危巖體與基巖之間結構面的損傷,實際工程中人工激勵危巖體較為困難,因此,如何根據場地常時微動特征識別危巖體動力學參數仍是亟需解決的問題. 本文將常時微動激勵下的危巖體振動問題歸為欠阻尼條件單自由度結構受迫振動問題,將危巖體頻譜幅值與基巖頻譜幅值之比作為相對幅值譜,通過相對幅值K>1的最大峰值點對應的頻率得到危巖體的一階固有頻率. 以宏觀裂縫控制型危巖體(懸臂式和錯斷式危巖體)及微觀裂隙控制型危巖體(滑移式危巖體)為研究對象,通過模型實驗驗證了常時微動條件下測量危巖體一階固有頻率的可行性,通過切割裂縫模擬懸臂式危巖體和錯斷式危巖體結構面損傷弱化,發現隨著損傷程度加劇,一階固有頻率呈明顯下降趨勢;通過水溶膠凍結融化模擬滑移式危巖體結構面損傷弱化,隨著損傷程度加劇,其一階固有頻率無明顯變化,高頻段的重心頻率發生明顯變化. 實驗結果表明對于宏觀裂縫控制型危巖體結構面損傷可通過危巖體的一階固有頻率進行識別,對于微觀裂隙控制型危巖體結構面損傷可通過危巖體高頻段的重心頻率變化進行識別,將兩者綜合起來對危巖體結構面損傷進行識別將更加有效.

     

    Abstract: The dynamic parameters of the dangerous rock mass can represent the damage to the structural plane between the dangerous rock mass and the bedrock. For a dangerous rock mass in the field, measuring the first-order natural frequency by artificially stimulating the dangerous rock mass is difficult. Therefore, how to measure the dynamic parameters of dangerous rock mass based on constant micromotion remains an urgent issue. In this paper, the vibration of a dangerous rock mass undergoing excitation from constant micromotion is categorized as forced undamped structural vibration with a single degree of freedom. The ratio of the amplitude of the spectrum of the dangerous rock mass to the amplitude of the spectrum of the bedrock refers to the relative amplitude spectrum. The first-order natural frequency of the dangerous rock mass is determined at the frequency associated with the maximum peak point of the relative amplitude K > 1. The possibility of calculating the first-order intrinsic frequency of dangerous rock bodies under constant micromotion conditions was confirmed by modeling experiments using macroscopic crack-controlled dangerous rock mass (cantilever and shear fractured dangerous rock mass) and microscopic crack-controlled dangerous rock mass (sliding dangerous rock mass) as the study objects. The possibility of determining the first-order natural frequency of dangerous rock mass under underdamped conditions was experimentally confirmed. The damage and weakening of the structural plane of the cantilever dangerous rock mass and shear fractured dangerous rock mass were simulated by cutting the trailing edge cracks. Analysis of the experimental data revealed that the first-order natural frequency has a significant downward trend with an increasing degree of damage. Conversely, those of the structural plane of the sliding dangerous rock mass were simulated by hydrosol melting, demonstrating that with increasing degrees of damage, the first-order natural frequency did not change significantly, but the center frequency changed significantly. The experimental results show that the structural plane damage of the macroscopic crack-controlled dangerous rock mass can be recognized by the first-order natural frequency. The structural plane damage of the dangerous rock mass controlled by microscopic cracks can be identified by the center frequency change in the high-frequency range of the dangerous rock mass. Therefore, it will be more effective to determine the structural surface damage of dangerous rock mass by combining first-order natural and center frequencies in the high-frequency range.

     

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