Citation: | LEI Jiaqi, WU Kunyu, YOU Chao, JIANG Xuemeng, WANG Peng, JIANG Yongjun. Characteristics of sedimentary geology of parent rock at the Xueyudong Cave and its impact on secondary sediments [J]. CARSOLOGICA SINICA, 2017, 36(3): 296-305. doi: 10.11932/karst20170302 |
[1] |
Bar-Matthews M, Matthews A, Ayalon A. Environmental Controls of speleothem mineralogy in a karstic dolomitic terrain (Soreq Cave, Israel)[J]. The Journal of Geology,1991, 99(2): 189-207.
|
[2] |
Fairchild I J, Borsato A, Tooth A F, et al. Controls on trace element (Sr-Mg) compositions of carbonate cave waters: implications for speleothem climatic records[J]. Chemical Geology,2000, 166(3-4): 255-269.
|
[3] |
Frisia S, Borsato A, Fairchild I J, et al. Aragonite-calcite relationships in speleothems (Grotte De Clamouse, France): Environment, fabrics, and carbonate geochemistry[J]. Journal of Sedimentary Research,2002, 72(5): 687-699.
|
[4] |
Self C A, Hill C A. How speleothems grow: An introduction to the ontogeny of cave minerals[J]. Journal of Cave & Karst Studies,2003.
|
[5] |
Oster J L, Montaez I P, Kelley N P. Response of a modern cave system to large seasonal precipitation variability[J]. Geochimica et Cosmochimica Acta,2012, 91(5): 92-108.
|
[6] |
Gascoyne M. Trace-element partition coefficients in the calcite-water system and their paleoclimatic significance in cave studies[J]. Journal of Hydrology,1983, 61(1-3): 213-222.
|
[7] |
朱学稳,张远海,韩道山,等. 重庆丰都雪玉洞群的洞穴特征和洞穴沉积物[J]. 中国岩溶,2004, 23(2): 85-90.
|
[8] |
Pu J, Wang A, Shen L, et al. Factors controlling the growth rate, carbon and oxygen isotope variation in modern calcite precipitation in a subtropical cave, Southwest China[J]. Journal of Asian Earth Sciences,2016, 119: 167-178.
|
[9] |
Wang A, Junbing P U, Shen L, et al. Natural and human factors of CO2 concentration variations in Xueyu Cave, Chongqing[J]. Tropical Geography,2010, 30(3): 272-277.
|
[10] |
王翱宇,蒲俊兵,沈立成,等. 重庆雪玉洞CO2浓度变化的自然与人为因素探讨[J]. 热带地理,2010(3): 272-277.
|
[11] |
Wang Z, Zhang L, Tao T,et al. Structural analysis of the multi-layer detachment folding in eastern Sichuan Province[J]. 地质学报(英文版),2010, 84(3): 497-514.
|
[12] |
Jun-Bing P U, Shen L C, Wang A Y, et al. Space-time variation of hydro-geochemistry index of the Xueyu cave system in Fengdu county,Chongqing[J]. Carsologica Sinica,2009, 28(1): 49-54.
|
[13] |
黄思静.碳酸盐岩的成岩作用[M].地质出版社,2010,148-150.
|
[14] |
Huang S J, Qing H R, Huang P P, et al. Evolution of strontium isotopic composition of seawater from Late Permian to Early Triassic based on study of marine carbonates, Zhongliang Mountain, Chongqing, China[J]. Science China Earth Sciences,2008, 51(4): 528-539.
|
[15] |
黄思静,张萌,孙治雷,等. 川东L2井三叠系飞仙关组碳酸盐样品的锶同位素年龄标定[J]. 成都理工大学学报(自科版),2006, 33(2): 111-116.
|
[16] |
Zharkov M A, Chumakov N M. Paleogeography and sedimentation settings during Permian-Triassic reorganizations in biosphere[J]. Stratigraphy & Geological Correlation,2001, 9(4): 340-363.
|
[17] |
Yin H. Late Permian-Middle Triassic sea level changes of Yangtze Platform[J]. Journal of Earth Science,1996, 19(1): 101-104.
|
[18] |
Choudens-Sanchez V D, Gonzalez L A. Calcite and aragonite precipitation under controlled instantaneous supersaturation: Elucidating the role of CaCO3 saturation state and Mg/Ca ratio on calcium carbonate polymorphism[J]. Journal of Sedimentary Research,2009, 79(6): 363-376.
|
[19] |
Stanley S M, Ries J B, Hardie L A. Low-magnesium calcite produced by coralline algae in seawater of Late Cretaceous composition[J]. Proceedings of the National Academy of Sciences,2002, 99(24): 15323-15326.
|
[20] |
周福莉,李廷勇,陈虹利,等. 重庆芙蓉洞洞穴水水文地球化学指标的时空变化[J]. 水土保持学报. 2012, 26(3): 253-259.
|
[21] |
Folk R L. The natural history of crystalline calcium carbonate: Effect of magnesium content and salinity.[J]. Journal of Sedimentary Petrology,1974, 44(1): 40-53.
|
[22] |
Dreybrodt W, Lauckner J, Liu Z, et al. The kinetics of the reaction CO2+ H2O→H++ HCO3- as one of the rate limiting steps for the dissolution of calcite in the system H2O-CO2-CaCO3[J]. Geochimica et Cosmochimica Acta,1996, 60(18): 3375-3381.
|
[23] |
Liu Z, Dreybrod W. Dissolution kinetics of calcium carbonate minerals in H2O-CO2 solutions in turbulent flow: The role of diffusion boundary layer and the slow reaction H2O + CO2 = H++ HCO3-[J]. Geochimica et Cosmochimica Acta,1997, 61(14): 2879-2889.
|
[24] |
袁道先. 中国岩溶动力系统[M]. 地质出版社,2002, 42-49.
|