Abstract:Due to the scarcity of basic data of hydrate-bearing sediments, a series of triaxial tests are made on synthetic samples of methane-hydrate-bearing and tetrahydrofuran-hydrate-bearing sandy sediments, which are generated using the gas-filtration method and the pre-freezing method, respectively. Attention is focused on the bulk strength of the specimens at different levels of hydrate saturation. The contribution attributed to the back pressure is confirmed by use of the experimental data. The results indicate that the cohesion exponentially increases with the increase of the hydrate saturation. No significant variation is found in the internal frictional angle of the specimens with low to medium hydrate saturation (<50%), while the angle decreases with the increase of the hydrate saturation due to less particle interlocking at high saturation (>80%). In addition, the back pressure helps to strengthen the hydrate in voids and thus causes an increase in the strength of the hydrate-bearing specimens.
KVENVOLDEN K A. Methane hydrate-a major reservoir of carbon in the shallow geosphere[J]. Chemical Geology, 1988, 71(1-3): 41-51. WAITE W F, SANTAMARINA J C, CORTES D D,et al. Physical properties of hydrate-bearing sediments[J]. Reviews of Geophysics. 2009, 47(RG4003): 1-38. 张旭辉, 王淑云, 李清平, 等. 天然气水合物沉积物力学性质的试验研究[J]. (岩土力学), 2010, 31(10): 3069-3074.(ZHANG Xu-hui, WANG Shu-yun, LI Qing-ping,et al. Experimental study of mechanical properties of gas hydrate deposits[J]. Rock and Soil Mechanics, 2010, 31(10): 3069-3074. (in Chinese)) 张旭辉, 鲁晓兵, 王淑云, 等. 四氢呋喃水合物沉积物静动力学性质试验研究[J]. (岩土力学.) 2011, 32(增刊1): 303-308.(ZHANG Xu-hui, LU Xiao-bin, WANG Shu-yunet al. Experimental study of static and dynamic properties of tetrahydrofuran hydrate-bearing sediments[J]. Rock and Soil Mechanics, 2011, 32(S1): 303-308. (in Chinese)) 颜荣涛, 韦昌富, 魏厚振, 等. 水合物形成对含水合物砂土强度影响[J]. (岩土工程学报.) 2012, 34(7): 1234-1240.(YAN Rong-tao, WEI Chang-fu, WEI Hou-zhen,et al. Effect of hydrate formation on mechanical strength of hydrate-bearing sand[J], Chinese Journal of Geotechnical Engineering , 2012, 34(7): 1234-1240. (in Chinese)) 李洋辉, 宋永臣, 于 锋, 等. 围压对含水合物沉积物力学特性的影响[J]. (石油勘探与开发), 2011, 38(5): 637-640.(LI Yang-hui, SONG Yong-chen, YU Feng,et al. Effect of confining pressure on mechanical behavior of methane hydrate-bearing sediments[J]. Petroleum Exploration and Development, 2011, 38(5): 637-640. (in Chinese)) 李洋辉, 宋永臣, 刘卫国, 等. 温度和应变速率对水合物沉积物强度影响试验研究[J]. (天然气勘探与开发.) 2012, 35(1): 50-53.(LI Yang-hui, SONG Yong-chen, LIU Wei-guo,et al. Effects of temperature and strain rate on strength of hydrate sediment[J]. Natural Gas Exploration and Development, 2012, 35(1): 50-53. (in Chinese)) WAITE W F, WINTERS W J, MASON D H. Methane hydrate formation in partially water-saturated Ottawa sand[J]. American Mineralogist, 2004, 89: 1202-1207. MASUI A, HANEDA H, GATA Y Oet al. Effects of methane hydrate formation on shear strength of synthetic methane hydrate sediments[C]// The Proceedings of the 15th ISOPE. Seoul, 2005: 364-369. CLAYTON C R I, PRIEST J A, BEST A I. The effect of disseminated methane hydrate on the dynamic stiffness and damping of a sand[J]. Geotechnique, 2005, 55(6): 423-434. HYODO M, NAKATA Y, YOSHIMOTO N,et al. Basic Research on mechanical behavior of methane hydrate- sediments mixture[J]. Soils and Foundations, 2005, 45(1): 75-85. HYODO M, YONEDA J, NAKATA Y,et al. Strength and dissociation property of methane hydrate bearing sand[C]// The Proceedings of the 7th International Conference on Gas Hydrates. Edinburgh, 2011. YUN T S, SANTAMARINA J C, RUPPEL C. Mechanical properties of sand, silt and clay containing tetrahydrofuran hydrate[J]. Journal of Geophysical Research-Solid Earth, 2007, 112(B4): 1-13. GROZIC J L H, GHIASSIAN H. Undrained shear strength of methane hydrate-bearing sand; preliminary laboratory results[C]// The Proceedings of 6th Canadian Permafrost Conference. Calgary, 2010: 459-466. MIYAZAKI K, MASUI A, YAMAGUCHI T,et al. Investigation of deformation mechanism for methane hydrate sediment based upon mechanical properties in unloading and reloading process under triaxial compression[C]// The Proceedings of the 8th ISOPE-OMS. Chennai, 2009: 102-106. 王家生, 高钰涯, 李 清, 等. 沉积物粒度对水合物形成的制约:来自IODP 311航次证[J]. (地球科学进展), 2007, 22(7): 559-665.(WANG Jia-sheng, GAO Yu-ya, LI Qing,et al. Grain size constraint on GasHydrateOccurrence: evidence from sediment size during IODP 311[J]. Advances in Earth Science, 2007, 22(7): 559-665. (in Chinese)) 李建红, 张其光, 孙 逊, 等. 胶结和孔隙比对结构性土力学特性的影响[J]. (清华大学学报(自然科学版)), 2008, 48(9): 1431-1435.(LI Jian-hong, ZHANG Qi-guang, SUN Xun,et al. Effect of bonding and void ratio on the mechanical behavior of structured soil[J]. Journal of Tsinghua University (Sci & Tech ), 2008, 48(9): 1431-1435. (in Chinese)) SONG Y, YU F, LI Yet al. Mechanical property of artificial mehane hydrate under triaxial compression[J]. Journal of Natural Gas Chemistry, 2010, 19(3): 246-250. 蒋明镜, 朱方园, 申志福. 试验反压对深海能源土宏观力学特性影响的离散元分析[J]. (岩土工程学报), 2012, 35(2): 219-226.(JIANG Ming-jing, ZHU Fang-yuan, SHEN Zhi-fu. The influence of backpressure on macro-mechanical properties of methane hydrate soils by DEM analyses[J]. Chinese Journal of Geotechnical Engineering, 2012, 35(2): 219-226. (in Chinese))