层厚比对含夹层盐岩组合体疲劳损伤与界面破坏机制的影响

Impact of layer thickness ratio on fatigue damage and interface failure mechanisms of salt rock composite bodies with interlayers

  • 摘要: 我国陆相层状盐岩储层夹层发育、非均质性强,周期性注采易导致软硬岩界面变形不协调和局部失稳。为明确层厚比对含夹层盐岩组合体疲劳损伤及界面破坏的控制作用,以泰安大汶口层状盐岩地层为工程背景,选取高纯度盐岩与典型矿区石膏制备纯盐岩、薄夹层与厚夹层3类标准试样,定义石膏夹层厚度与试样总高度之比为层厚比λ,设置λ=0、0.2、0.4三组试样,在10 MPa围压和0.4 Hz频率下开展三轴循环加卸载试验;结合应力−应变、能量分配、累积耗散能损伤模型以及X射线三维显微计算机断层扫描和孔隙网络模型分析,从宏观变形、能量演化和孔裂隙连通性评价界面失稳过程。结果表明:层厚比增大显著抑制盐岩基质轴向流变和侧向扩容,λ=0.4试样在归一化循环次数0.5时的累计轴向应变为1.74%,较λ=0试样的2.44%降低约30%,稳态循环蠕变速率由1.14×10−4/次降至4.31×10−5/次;其环向应变在疲劳后期突增至−5.84%,体积应变反转至−5.00%,破坏由协调渐进变形转为受限压密后的突发扩容。各组单次循环能量均由耗散主导转向弹性储能主导,对应轴向应变阈值随λ增大由0.75%依次提前至0.55%和0.45%,稳定阶段能量耗散比低于0.05。以累积耗散能定义损伤变量并引入层厚比相关损伤加速因子后,模型拟合决定系数R2均大于0.998,损伤加速因子β由3.71增至4.87,表明界面约束强化了局部储能与损伤加速效应。疲劳后,λ=0、0.2和0.4试样中大于20 nm孔裂隙体积占比分别为2.94%、67.3%和79.3%;薄夹层试样上、下界面富集带占切片层数的13.00%,强富集系数达5.82。随着λ由0.2增至0.4,孔隙网络平均配位数由4.90增至5.81,平均孔隙半径由14.83 nm增至26.75 nm,平均喉道长度由68.30 nm增至159.32 nm,表明孔裂隙由分散小尺度连接向粗大贯通通道转化。层厚比增大通过强化刚度失配和界面约束,使组合体沿“变形受限—能量集聚—界面贯通”路径发生疲劳失稳;厚夹层界面应作为盐穴储气库压力波动控制、腔周监测与长期稳定性评价的重点部位。

     

    Abstract: Continental bedded salt formations in China are characterized by abundant interlayers and pronounced heterogeneity, and cyclic gas injection and withdrawal can induce deformation incompatibility and local instability at soft-hard rock interfaces. To clarify the effects of layer thickness ratio on fatigue damage and interface failure in interlayered salt-rock composites, pure rock-salt specimens and composite specimens containing thin and thick gypsum interlayers were prepared using high-purity rock salt and gypsum from a representative mining area, with the bedded salt formation in the Dawenkou Basin, Tai'an, serving as the engineering background. The layer thickness ratio, λ, was defined as the ratio of gypsum interlayer thickness to total specimen height, and three groups with λ= 0, 0.2, and 0.4 were tested. Triaxial cyclic loading-unloading tests were conducted under a confining pressure of 10 MPa at a frequency of 0.4 Hz. Stress-strain responses, energy partitioning, a cumulative-dissipated-energy-based damage model, X-ray three-dimensional micro-computed tomography, and pore network modeling were integrated to characterize interface instability in terms of macroscopic deformation, energy evolution, and pore-fracture connectivity. The results show that increasing λ markedly suppresses the axial rheological deformation and lateral dilation of the rock-salt matrix. At a normalized cycle count of 0.5, the cumulative axial strain of the λ= 0.4 specimen was 1.74%, approximately 30% lower than the 2.44% measured for the λ= 0 specimen, while the steady-state cyclic creep rate decreased from 1.14 × 10−4 to 4.31 × 10−5 per cycle. In the late fatigue stage, its circumferential strain increased abruptly to −5.84%, while the volumetric strain reversed to -5.00%, indicating a transition from coordinated progressive deformation to sudden dilation following constrained compaction. The single-cycle energy response of all specimens shifted from dissipation-dominated to elastic-energy-storage-dominated behavior. As λ increased, the corresponding axial-strain threshold advanced successively from 0.75% to 0.55% and 0.45%, while the energy dissipation ratio remained below 0.05 during the stable stage. A damage variable based on cumulative dissipated energy and a layer-thickness-ratio-dependent damage acceleration factor were introduced. The coefficients of determination, R2, exceeded 0.998 for all fitted curves, and the damage acceleration factor β increased from 3.71 to 4.87, demonstrating that interface constraint intensifies local energy storage and accelerates damage evolution. After fatigue loading, the volume fractions of pores and fractures larger than 20 nm in the specimens with λ= 0, 0.2, and 0.4 were 2.94%, 67.3%, and 79.3%, respectively. In the thin-interlayer specimen, enrichment bands around the upper and lower interfaces accounted for 13.00% of the CT slices, with a strong-enrichment coefficient of 5.82. As λ increased from 0.2 to 0.4, the mean coordination number of the pore network increased from 4.90 to 5.81, the mean pore radius increased from 14.83 to 26.75 nm, and the mean throat length increased from 68.30 to 159.32 nm. These changes indicate that dispersed small-scale pore-fracture connections progressively evolve into larger, well-connected pathways. Increasing the layer thickness ratio strengthens stiffness mismatch and interface constraint, causing fatigue instability to evolve through a sequence of constrained deformation, energy accumulation, and interface coalescence. Therefore, thick-interlayer interfaces should be regarded as critical zones for operational control of pressure fluctuations, cavern-wall monitoring, and long-term stability assessment of salt-cavern gas storage facilities.

     

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