Abstract As an important category of carbonate rocks,the forming mechanism and its temporal-spatial distribution feature have been an important researching topic in sedimentology all along.Although lots of models of dolomitization have been proposed and are used to interpret the origin of diversified dolostone,the forming mechanism and process of dolomite have not been simulated and confirmed under experimental conditions,which led to a conundrum in sedimentology,i.e.the “dolostone problem”.The formation of dolostone has been simplified as the dolomitization and has been referred as one type of carbonate diagenesis,which represents the first advance of scientific concept.On the basis of the excellent preservation of the primary sedimentary fabrics for the Precambrian dolostone,the change from the previous assumption that the Precambrian dolostone could be primary precipitates to an important concept of the mimetic dolomitization means the second advance of scientific concept.The third advance of scientific concept for dolomite and dolomitization,should refer to the model of microbial dolomitization resulted from the understanding of that microbes can help to dolomitization.Seeking these important advancements will be very meaningful to further understand the progresses of the studies of the “dolostone problem” in sedimentology.
About author: Mei Mingxiang,born in 1965, graduated from China University of Geosciences(Beijing)in 1993 with his Ph.D.degree.Now he is a professor at School of Earth Sciences and Resources,China University of Geosciences(Beijing),and is engaged in sedimentology and stratigraphy.
Cite this article:
Mei Mingxiang. Brief introduction of “dolostone problem” in sedimentology according to three scientific ideas[J]. JOURNAL OF PALAEOGEOGRAPHY, 2012, 14(1): 1-12.
Mei Mingxiang. Brief introduction of “dolostone problem” in sedimentology according to three scientific ideas[J]. JOPC, 2012, 14(1): 1-12.
陈代钊.2008.构造—热液白云岩化作用与白云岩储层[J].石油与天然气地质,29(5):614-622. 陈晋镳,武铁山.1997.华北区区域地层[M].湖北武汉: 中国地质大学出版社,45-64. 冯增昭.1994.碳酸盐岩岩类学[C].见: 冯增昭,王英华,刘焕杰,等.中国沉积学[M].北京: 石油工业出版社,105-127. 赫云兰,刘波,秦善.2010.白云石化机理与白云岩成因问题研究[J].北京大学学报(自然科学版),46(6):1010-1020. 旷红伟,柳永清,彭楠,等.2011.再论臼齿碳酸盐岩成因[J].古地理学报,13(3):253-261. 旷红伟,彭楠,罗顺社,等.2009.燕山中东部凌源地区雾迷山组MT构造的发现、地质特征及研究意义[J].自然科学进展,19(2):1308-1318. 李波,颜佳新,刘喜停,等.2010.白云岩有机成因模式: 机制、进展与意义[J].古地理学报,12(6):699-710. 梁玉左,曹瑞骥,张录易.1984.前寒武纪假裸枝叠层石[M].北京: 地质出版社,1-199. 柳益群,李红,朱玉双,等.2010.白云岩成因探讨: 新疆三塘湖盆地发现二叠系湖相喷流型热水白云岩[J].沉积学报,28(5):861-867. 梅冥相.2005.天津蓟县剖面中元古代高于庄组臼齿状构造的层序地层位置及其成因的初步研究[J].古地理学报,7(4):428-447. 梅冥相.2007a.前寒武纪 “臼齿状构造谜”的一些认识: 来自天津蓟县剖面中元古代高于庄组的信息[J].古地理学报,9(6):587-609. 梅冥相.2007b.上扬子区寒武系娄山关群白云岩层序地层格架及其古地理背景[J].古地理学报,9(2):117-132. 梅冥相.2011.关于超微细菌的争论: 灰岩成因研究的重要驱动力[J].古地理学报,13(4):363-374. 梅冥相,马永生,周丕康,等.1997.碳酸盐岩沉积学导论[M].北京:地震出版社,1-306. 梅冥相,马永生,周洪瑞,等.2001.雾迷山旋回层的费希尔图解及其在定义前寒武纪三级海平面变化记录中的应用[J].地球学报,22(5):429-436. 梅冥相,高金汉,孟庆芬,等.2008.天津蓟县中元古界雾迷山组微指状叠层石及其对1250 Ma±叠层石衰减事件的响应[J].古地理学报,10(5):495-509. 乔秀夫,高林志.2007.燕辽裂隙槽中元古代古地震与古地理[J].古地理学报,9(4):337-352. 王勇.2006.“白云岩问题”与 “前寒武纪之谜”研究进展[J].地球科学进展,21(8):857-862. 由雪莲,孙枢,朱井泉,等.2011.微生物白云岩模式研究进展[J].地学前缘,18(4):52-64. 于炳松,董海良,蒋宏忱,等.2007.青海湖底沉积物中球状白云石集合体的发现及其地质意义[J].现代地质,21(1):66-70. 张学丰,胡文瑄,张军涛.2006.白云岩成因相关问题及主要形成模式[J].地质科技情报,25(5):32-40. 张学丰,刘波,蔡忠贤,等.2010.白云岩化作用与碳酸盐岩储层物性[J].地质科技情报,29(3):79-85. Allan J R,Wiggins W D.1993.Dolomite reservoirs: Geochemical techniques for evaluating origin and distribution[J].American Association of Petroleum Geologists,Continuing Education Course,Note Series 36: 1-29. Aloisi G,Gloter A,Krüger M, et al.2006.Nucleation of calcium carbonate on bacterial nanoglobules[J].Geology,34: 1017-1020. Altermann W.2004.Precambrian stromatolites: Problems in definition,classification,morphology and stratigraphy[C].In: Eriksson P G,Altermann W,Nelson D R, et al(eds).The Precambrian Earth: Tempos and Events.Amsterdam: Elsevier,564-574. Bathurst R G C.1975.Developments in Sedimentology 12:Carbonate Sediments and Their Diagenesis(Second Edition)[M].New York: Elsevier,1-658. Baumgartner L K,Reid R P,Dupraz C, et al.2006.Sulfate reducing bacteria in microbial mats: Changing paradigms,new discoveries[J].Sedimentary Geology,185: 131-145. Bontognali T R R,Vasconcelos C,Warthmann R J, et al.2008.Microbes produce nanobacteria-like structures,avoiding cell entombment[J].Geology,36: 663-666. Brehm U,Krumbein W E,Palinska K A.2006.Biomicrospheres generate ooids in laboratory[J].Geomicrobiology Journal,23: 545-550. Brennan S T,Lowenstein T K,Juske H.2004.Seawater chemistry and the advent of biocalcification[J].Geology,32: 473-476. Burns S J,McKenzie J A,Vasconcelos C.2000.Dolomite formation and biogeochemical cycles in the Phanerozoic[J].Sedimentology,47(Supple 1): 49-61. Castanier S,Métayer-Levrel G L,Perthuisot J P.1999.Ca-carbonates precipitation and limestone genesis: The microbiologist point of view[J].Sedimentary Geology,126: 9-23. Chafetz H S,Buczynski C.1992.Bacterially induced lithification of microbial mats[J].Palaios,7: 277-293. Corsetti F A,Kidder D L,Marenco P J.2006.Trends in oolite dolomitization across the Neoproterozoic-Cambrian boundary: A case study from Death Valley,California[J].Sedimentary Geology,191: 135-150. Daniel J C,Chin K.2010.The role of bacterially mediated precipitation in the permineralization of bone[J].Palaios,25: 507-516. Davies G R,Smith B S Jr.2006.Structurally controlled hydrothermal dolomite reservoir facies: An overview[J].AAPG Bulletin,90: 1641-1690. Deng Shicai,Dong Hailiang,Guo Lv, et al.2010.Microbial dolomite precipitation using sulfate reducing and halophilic bacteria: Results from Qinghai Lake,Tibetan Plateau,NW China[J].Chemical Geology,278: 151-159. Duguid S M A,Kyser T K,James N P, et al.2010.Microbes and ooids[J].Journal of Sedimentary Research,80: 236-251. Dupraz C, Reid R P,Braissant O, et al.2009.Processes of carbonate precipitation in modern microbial mats[J].Earth-Science Reviews,96: 141-162. Dupraz C,Visscher P T,Baumgartner L K, et al.2004.Microbe-mineral interactions: Early carbonate precipitation in a hypersaline lake(Eleuthera Island,Bahamas)[J].Sedimentology,51: 745-765. Folk R L. 1993a.SEM imaging of bacteria and nannobacteria in carbonate sediments and rocks[J].Journal of Sedimentary Petrology,63: 990-999. Folk R L.1993b.Dolomite and dwarf bacteria(nannobacteria)[J].Geological Society of America Abstracts with Programs,25(6):A-397. Folk R L,Land L S.1975.Mg/Ca ratio and salinity: Two controls over crystallization of dolomite[J].AAPG Bulletin,59: 60-68. Friedman G M.1980.Dolomite is an evaporite mineral: Evidence from the rock record and from sea-marginal ponds of the Red Sea[C].In: Zenger D H,Dunham J B,Ethington R L(eds).Concepts and Models of Dolomitization: Society of Economic Paleontologists and Mineralogists,Special Publication 28: 69-80. Gaines A M.1980.Dolomitization kinetics: Recent experimental studies[C].In: Zenger D H,Dunham J B,Ethington R L(eds).Concepts and Models of Dolomitization: Society of Economic Paleontologists and Mineralogists,Special Publication 28: 81-86. García-Ruiz J M,Melero-García E,Hyde S T.2009.Morphogenesis of self-assembled nanocrystalline materials of barium carbonate and silica[J].Science,323: 362-365. Grotzinger J P,James N P.2000.Precambrian carbonates: Evolution of understanding[C].In: Grotzinger,J P,James N P(eds).Carbonate Sedimentation and Diagenesis in the Evolving Precambrian World: Society of Economic Paleontologists and Mineralogists, Special Publication,67: 3-22. Hardie L A.1996.Secular variation in seawater chemistry:An explanation for the coupled secular variation in the mineralogies of marine limestones and potash evaporites over the past 600 m.y[J].Geology,24: 279-283. Hardie L A.2003.Secular variations in Precambrian seawater chemistry and the timing of Precambrian aragonite seas and calcite seas[J].Geology,31: 785-788. Iannace A,Frisia S.1994.Changing dolomitization styles from Norian to Rhaetian in the southern Tethys realm[C].In: Purser B,Tucker M,Zenger D(eds).Dolomites: A Volume in Honour of Dolomieu.IAS Special Publication,21: 75-89. Kah L C,Knoll A H.1996.Microbenthic distribution of Proterozoic tidal flats: Environmental and taphonomic considerations[J].Geology,24: 79-82. Kah L C,Riding R.2007.Mesoproterozoic carbon dioxide levels inferred from calcified cyanobacteria[J].Geology,35: 799-802. Kenward P A,Goldstein R H,Gonzlez L A, et al.2009.Precipitation of low-temperature dolomite from an anaerobic microbial consortium: The role of methanogenic Archaea[J].Geobiology,7: 556-565. Kirkland B L,Lynch F L,Rahnis M A, et al.1999.Alternative origins for nannobacteria-like objects in calcite[J].Geology,27: 347-350. Land L S.1985.The origin of massive dolomite[J].Journal of Geological Education,33: 112-125. Land L S.1998.Failure to precipitate dolomite at 25 ℃ from dilute solution despite 1000-fold oversaturation after 32-years[J].Aquatic Geochemistry,4: 361-368. Lowenstein T K,Hardie L A,Timofeeff M N, et al.2003.Secular variation in seawater chemistry and the origin of calcium chloride basinal brines[J].Geology,31: 857-860. Lumsden D N,Caudle G C.2001.Origin of massive dolostone: The upper Knox model[J].Journal of Sedimentary Research,71: 400-409. Machel H G,Lonnee J.2002.Hydrothermal dolomite: A product of poor definition and imagination[J].Sedimentary Geology,152: 163-171. Martel J,Ding-E Young J.2008.Purported nanobacteria in human blood as calcium carbonate nanoparticles[J].Procedings of the National Academy of Sciences,105: 5549-5554. Mastandrea A,Perri E,Russo F, et al.2006.Microbial primary dolomite from a Norian carbonate platform: Northern Calabria,southern Italy[J].Sedimentology,53: 465-480. Mazzullo S J.2000.Organogenic dolomitization in peritidal to deep sea sediments[J].Journal of Sedimentary Research,70(1):10-23. McKenzie J A,Vasconcelos C.2009.Dolomite Mountains and the origin of the dolomite rock of which they mainly consist: Historical developments and new perspectives[J].Sedimentology,56: 205-219. Meng Xianghuan,Ge Ming.2002.The sedimentary features of Proterozoic microspar(MT)carbonates in China and their significance[J].Episodes,25: 185-195. Pacton M,Gorin G,Vasconcelos C, et al.2010.Structural arrangement of sedimentary organic matter: Nanometer-scale spheroids as evidence of a microbial signature in early diagenetic processes[J].Journal of Sedimentary Research,80: 919-932. Perry R S,Mcloughlin N,Lynne B Y, et al.2007.Defining biominerals and organominerals: Direct and indirect indicators of life[J].Sedimentary Geology,201: 157-179. Rameil N.2008.Early diagenetic dolomitization and dedolomitization of Late Jurassic and earliest Cretaceous platform carbonates: A case study from the Jura Mountains(NW Switzerland,E France)[J].Sedimentary Geology,212: 70-85. Reid R P,Visscher P T,Decho A W, et al.2000.The role of microbes in accretion,lamination and early lithification of modern marine stromatolites[J].Nature,406: 989-992. Reitner J.2004.Organomineralization: A Clue to the Understanding of Meteorite-related “Bacteria-Shaped” Carbonate Particles[C].In: Seckbach J(ed).Origins.Amsterdam: Kluwer Academic Publishers,195-212. Riding R.2000.Microbial carbonates: The geological record of calcified bacterial-algal mats and biofilms[J].Sedimentology,47(Supple 1): 179-214. Ronchi P,Jadoul F,Ceriani A, et al.2011.Multistage dolomitization and distribution of dolomitized bodies in Early Jurassic carbonate platforms(Southern Alps,Italy)[J].Sedimentology,58: 532-565. Snchez-Romn M,Vasconcelos C,Schmid T, et al.2008.Aerobic microbial dolomite at the nanometer scale: Implications for the geologic record[J].Geology,36: 879-882. Sandberg P A.1983.An oscillating trend in Phanerozoic non-skeletal carbonate mineralogy[J].Nature,305: 19-22. Schieber J,Arnott H J.2003.Nannobacteria as a byproduct of enzyme-driven tissue decay[J].Geology,31: 717-720. Seilacher A.1999.Biomat-related lifestyles in the Precambrian[J].Palaios,14: 86-93. Shinn E A,Ginsburg R N,Lloyd R M.1965,Recent supratidal dolomite from Andros Island,Bahamas[C].In: Pray L C,Murray R C(eds).Dolomitization and Limestone Diagenesis: Society of Economic Paleontologists and Mineralogists, Special Publication, 13: 112-123. Sibley D F.1991.Secular changes in the amount and texture of dolomite[J].Geology, 19: 151-154. Touir J,Soussi M,Troudi H.2009.Polyphased dolomitization of a shoal-rimmed carbonate platform: Example from the middle Turonian Bireno dolomites of central Tunisia[J].Cretaceous Research,30: 785-804. Tucker M,Wright V P.1990.Carbonate Sedimentology[M].Oxford: Blackwell,1-482. van Lith Y,Warthmann R,Vasconcelos C, et al.2003.Microbial fossilization in carbonate sediments: A result of the bacterial surface involvement in dolomite precipitation[J].Sedimentology,50: 237-245. Vasconcelos C,McKenzie J A,Bernaconi S, et al.1995.Microbialme diation as a possible mechanism for nature dolomite formation at low temperature[J].Nature,377: 220-222. Vasconcelos C,McKenzie J A.1997.Microbial mediation of modern dolomite precipitation and diagenesis under anoxic conditions,Lagoa Vermelha,Rio de Janeiro,Brazil[J].Journal of Sedimentary Research,67: 378-390. Warren J.2000.Dolomite: Occurrence,evolution and economically important associations[J].Earth-Science Reviews,52: 1-81. Warthmann R,van Lith Y,Vasconcelos C, et al.2000.Bacterially induced dolomite precipitation in anoxic culture experiments[J].Geology,28: 1091-1094. Wright D T,Wacey D.2005.Precipitation of dolomite using sulphate-reducing bacteria from the Coorong Region,South Australia: Significance and implications[J].Sedimentology,52: 987-1008.李新坡