The potential of enhanced weathering in the UK
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[1] D. Manning,et al. Passive sequestration of atmospheric CO2 through coupled plant-mineral reactions in urban soils. , 2013, Environmental science & technology.
[2] Manya Ranjan,et al. Economic and energetic analysis of capturing CO2 from ambient air , 2011, Proceedings of the National Academy of Sciences.
[3] N. E. Idoine,et al. Collation of the results of the 2009 aggregate minerals survey for England and Wales , 2011 .
[4] John Frederick Rudge,et al. Rates and mechanisms of mineral carbonation in peridotite: natural processes and recipes for enhanced, in situ CO2 capture and storage , 2011 .
[5] J. Hartmann,et al. Reply to Schuiling et al.: Different processes at work , 2011, Proceedings of the National Academy of Sciences.
[6] P Renforth,et al. Silicate production and availability for mineral carbonation. , 2011, Environmental science & technology.
[7] G. Rau. CO2 mitigation via capture and chemical conversion in seawater. , 2011, Environmental science & technology.
[8] I. Munz,et al. Investigating dissolution of mechanically activated olivine for carbonation purposes , 2010 .
[9] G. Davies. Geoengineering the Climate: Science, Governance and Uncertainty , 2010 .
[10] Wallace S. Broecker,et al. Mineral sequestration of carbon dioxide in basalt: A pre-injection overview of the CarbFix project , 2010 .
[11] Jens Hartmann,et al. Geoengineering potential of artificially enhanced silicate weathering of olivine , 2010, Proceedings of the National Academy of Sciences.
[12] Suzanne Hangx,et al. Coastal spreading of olivine to control atmospheric CO2 concentrations: A critical analysis of viability , 2009 .
[13] N. Stanietsky,et al. The interaction of TIGIT with PVR and PVRL2 inhibits human NK cell cytotoxicity , 2009, Proceedings of the National Academy of Sciences.
[14] David W. Keith,et al. Why Capture CO2 from the Atmosphere? , 2009, Science.
[15] D. Manning,et al. Carbonate precipitation in artificial soils as a sink for atmospheric carbon dioxide , 2009 .
[16] J. Shepherd,et al. Geoengineering the Climate: Science, Governance and Uncertainty , 2009 .
[17] E. Petrakis,et al. Surface area production during grinding , 2009 .
[18] John S Gierke,et al. Carbon dioxide sequestration in cement kiln dust through mineral carbonation. , 2009, Environmental science & technology.
[19] Peter B. Kelemen,et al. In situ carbonation of peridotite for CO2 storage , 2008, Proceedings of the National Academy of Sciences.
[20] P. Baláž,et al. Structural changes in olivine (Mg, Fe)2SiO4 mechanically activated in high-energy mills , 2008 .
[21] Taro Takahashi,et al. Carbon dioxide sequestration in deep-sea basalt , 2008, Proceedings of the National Academy of Sciences.
[22] D. Victor. On the regulation of geoengineering , 2008 .
[23] L. Harvey,et al. Mitigating the atmospheric CO2 increase and ocean acidification by adding limestone powder to upwelling regions , 2008 .
[24] D. Manning,et al. Biological enhancement of soil carbonate precipitation: passive removal of atmospheric CO2 , 2008, Mineralogical Magazine.
[25] Geert-Jan Witkamp,et al. Cost evaluation of CO2 sequestration by aqueous mineral carbonation , 2007 .
[26] James J. Dooley,et al. Potential for carbon dioxide sequestration in flood basalts , 2006 .
[27] R. Schuiling,et al. Enhanced Weathering: An Effective and Cheap Tool to Sequester Co2 , 2006 .
[28] Geert-Jan Witkamp,et al. Mineral CO2 sequestration by steel slag carbonation. , 2005, Environmental science & technology.
[29] D. Flinn,et al. A history of the Shetland Ophiolite Complex , 2005, Scottish Journal of Geology.
[30] Eric Forssberg,et al. Dry fine comminution in a stirred media mill—MaxxMill® , 2004 .
[31] W. Owens,et al. New palaeomagnetic results from the Whin Sill complex: evidence for a multiple intrusion event and revised virtual geomagnetic poles for the late Carboniferous for the British Isles , 2004, Journal of the Geological Society.
[32] R. Lal,et al. Carbon emission from farm operations. , 2004, Environment international.
[33] S. Brantley,et al. The effect of time on the weathering of silicate minerals: why do weathering rates differ in the laboratory and field? , 2003 .
[34] D. Manning. Calcite precipitation in landfills: an essential product of waste stabilization , 2001, Mineralogical Magazine.
[35] Ian Douglas,et al. Recycling construction and demolition wastes – a UK perspective , 2001 .
[36] D. Millward,et al. The Eycott Volcanic Group, an Ordovician continental margin andesite suite in the English Lake District , 2000 .
[37] R. K. Rowe,et al. Field observations of clogging in a landfill leachate collection system , 1999 .
[38] D. Jolley,et al. On the origin of a reddened interflow bed within the Palaeocene lava field of north Skye , 1996, Scottish Journal of Geology.
[39] J. Barrat,et al. Geochemistry of the Tertiary volcanism of Northern Ireland , 1996 .
[40] Haroon S. Kheshgi,et al. Sequestering atmospheric carbon dioxide by increasing ocean alkalinity , 1995 .
[41] A. Kerr. THE GEOCHEMISTRY OF THE MULL-MORVERN TERTIARY LAVA SUCCESSION, NW SCOTLAND: AN ASSESSMENT OF MANTLE SOURCES DURING PLUME-RELATED VOLCANISM , 1995 .
[42] R. England. The structure of the Skye lava field , 1994, Scottish Journal of Geology.
[43] B. A. Randall. Dolerite-pegmatites from the Whin Sill near Barrasford, Northumberland , 1989 .
[44] P. Kokelaar. Petrology and Geochemistry of the Rhobell Volcanic Complex: Amphibole-Dominated Fractionation at an Early Ordovician Arc Volcano in North Wales , 1986 .
[45] K. Rollin. Geophysical surveys on the Lizard Complex, Cornwall , 1986, Journal of the Geological Society.
[46] R. Thorpe,et al. Geochemical evidence for the emplacement of the Whin Sill complex of northern England , 1985, Geological Magazine.
[47] G. Kirby. The petrology and geochemistry of dykes of the Lizard Ophiolite Complex, Cornwall , 1984, Journal of the Geological Society.
[48] M. Thirlwall. Isotope geochemistry and origin of calc-alkaline lavas from a caledonian continental margin volcanic arc , 1983 .
[49] D. Sutherland. Igneous Rocks of the British Isles , 1982 .
[50] M. Thirlwall. Implications for Caledonian plate tectonic models of chemical data from volcanic rocks of the British Old Red Sandstone , 1981, Journal of the Geological Society.
[51] R. G. Coleman,et al. Ophiolites: Ancient Oceanic Lithosphere? , 1977 .
[52] R. Macdonald,et al. Variations in basalt chemistry with time in the Midland Valley province during the Carboniferous and Permian , 1977, Scottish Journal of Geology.
[53] R. Gayer,et al. The Ballantrae ophiolite , 1973, Geological Magazine.
[54] J. Fitton. The genetic significance of almandine-pyrope phenocrysts in the calc-alkaline Borrowdale Volcanic Group, Northern England , 1972 .
[55] S. S. Goldich. A Study in Rock-Weathering , 1938, The Journal of Geology.
[56] Wallace S. Broecker,et al. The CarbFix Pilot Project–Storing carbon dioxide in basalt , 2011 .
[57] J. Hartmann. Enhanced silicate weathering is not limited by silicic acid saturation , 2011 .
[58] D. Viete,et al. Lithospheric-scale extension during Grampian orogenesis in Scotland , 2010 .
[59] ‘s. PROGRESS ON BINDING CO2 IN MINERAL SUBSTRATES , 2008 .
[60] Jonathan Vetterlein,et al. Exploitation and Use of Quarry Fines , 2004 .
[61] E. Forssberg,et al. International overview and outlook on comminution technology , 2003 .
[62] Michael A.E. Browne,et al. A lithostratigraphical framework for the Carboniferous rocks of the Midland Valley of Scotland. Version 2 , 1999 .
[63] D. C. Mann,et al. Geological and other influences on the design of containment systems in hard rock quarries , 1996, Geological Society, London, Engineering Geology Special Publications.
[64] S. Brantley,et al. Chemical weathering rates of silicate minerals , 1995 .
[65] Klaus S. Lackner,et al. Carbon dioxide disposal in carbonate minerals , 1995 .
[66] R. Berner,et al. GEOCARB III : A REVISED MODEL OF ATMOSPHERIC CO 2 OVER PHANEROZOIC TIME , 2001 .
[67] D. J. Sloane. Some physical properties of dolerite , 1991 .
[68] G. Greer,et al. Energy use in New Zealand agricultural production , 1984 .
[69] M. Styles,et al. Platinum-group element mineralisation in the Unst ophiolite, Shetland , 1984 .
[70] M. Gandy. The Petrology of the Lower Old Red Sandstone Lavas of the Eastern Sidlaw Hills, Perthshire, Scotland , 1975 .
[71] D. Green. The Petrogenesis of the High-temperature Peridotite Intrusion in the Lizard Area, Cornwall , 1964 .