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基于聲發射信息的熱損傷花崗巖單軸壓縮破裂機制及破裂前兆

Fracture mechanism and precursors of thermally damaged granite uniaxial compression based on acoustic emission information

  • 摘要: 為研究高溫造成的熱損傷對花崗巖在不同應力階段聲發射特征及破裂機制的影響,本文對25、200、400和600 ℃熱損傷花崗巖開展了單軸壓縮試驗并進行了實時聲發射監測,分析了不同應力階段熱損傷花崗巖峰值頻率、上升時間/振幅-平均頻率(RA-AF)數據分布特征以及能量集中度\rho 的分布規律. 結果表明:各溫度熱處理后花崗巖單軸壓縮的應力階段可以依據聲發射發育特征分為:Ⅰ裂紋壓密階段、Ⅱ裂紋萌生及穩定發育階段、Ⅲ裂紋非穩定發育階段、Ⅳ峰后破壞階段. 花崗巖的熱損傷越嚴重,聲發射峰值頻率越早產生中、高頻破裂信號,且主頻帶分布范圍越寬,破壞時超高頻信號越少. 各溫度熱損傷花崗巖聲發射RA-AF數據分布特征可以表征各應力階段產生的裂紋類型,熱損傷花崗巖在壓力作用下由壓密至破壞過程中聲發射RA-AF數據分布特征的變化說明剪切裂紋活動逐漸活躍,且熱損傷溫度越高,剪切裂紋越發育. 能量集中度曲線的穩定發育階段與突降階段之間的突變點可以作為花崗巖單軸壓縮條件下的破壞前兆.

     

    Abstract: To determine the impact of high-temperature-induced thermal damage on the acoustic emission characteristics and fracture mechanism of granite during various stress stages, uniaxial compression tests and real-time acoustic emission monitoring of thermally damaged granite at 25, 200, 400, and 600 ℃ were performed. The peak frequencies of thermally damaged granites, the distribution characteristics of RA-AF (AE rise time/AE amplitude-AE average frequency) data, and the distribution patterns of energy concentration \rho at various loading stages were investigated. The results show that the stress stages of granite under uniaxial compression conditions after thermal damage at each temperature can be divided into the following stages: Stage Ⅰ corresponds to the crack compaction stage; Stage Ⅱ corresponds to the crack emergence and stable development stage; Stage Ⅲ corresponds to the crack unstable development stage; and Stage Ⅳ corresponds to the post-peak damage stage based on the acoustic emission development characteristics. Further, the more severe the thermal damage to the granite, the earlier the granite enters Stage II and the longer the duration of this stage. The acoustic emission peak frequency of thermally damaged granite at different temperatures exhibits a band distribution across four principal frequency regions. With increasing severity of thermal damage, the generation of medium- and high-frequency fracture signals occurs earlier, resulting in a wider distribution range of the primary frequency bands. In addition, there is a decrease in the occurrence of ultrahigh frequency signals during the failure stage. The distribution characteristics of the acoustic emission RA-AF data of the thermally damaged granite at different temperatures can provide insights into the cracking mechanism observed during different stress stages. Subsequently, Stage I generates a small amount of tensile and tension–shear cracks; Stage II generates mixed tension–shear cracks; Stage III generates tensile and mixed tension–shear cracks while shear cracks continue to develop and enlarge; and Stage IV generates numerous shear cracks. The thermally damaged granite is more likely to produce shear cracks under pressure. The higher the temperature of thermal damage, the more shear cracks develop. The curve of energy concentration based on acoustic emission data during uniaxial compression of granite contains three major stages: the initial irregular fluctuation, stable, and abrupt drop stages, which have obvious correspondence to stages I, II, and III, respectively. The abrupt change point between the stable and abrupt drop stages of the energy concentration curve can be used as a failure precursor for granite samples under uniaxial compression.

     

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