MORRISONG. W., ORRL.: ‘A review of exploration potential in Mount Leyshon ML 101444 and Fenian EPM 10203', Townsville, Queensland, Klondike Exploration Services, 2000, 1–43.
2.
HEDENQUISTJ. W. and LOWENSTERNJ. B.: ‘The role of magmas in the formation of hydrothermal ore deposits', Nature1994, 370, 519–527.
3.
HILLIERS. and CLAYTONT.: Illite/smectite diagenesis in Devonian lacustrine mudrocks from northern Scotland and its relationship to organic maturity indicators', Clay Minerals1989, 24, 181–196.
4.
INOUEA.: ‘Formation of clay minerals in hydrothermal environments' (ed. Velde B.), Origin and mineralogy of clays, Berlin, Springer, 1995.
5.
RICEC. M..: ‘A Devonian auriferous hot spring system, Rhynie, Scotland'1. Geol. Soc. Lond., 1995, 152, 229–250.
6.
DUNHAMK. C.: ‘Geology of the Northern Pennine Orefield. Volume 1: Tyne to Stainmore. Economic Memoir Covering the Areas of 1:50000 and One-inch Geological Sheets 19 and 25 and Parts of 13, 24, 26, 31, 32 (England and Wales)', British Geological Survey, London, HMSO, 1990.
7.
BEERK. E., BALLT. K., COOPERD. C., EVANSA. D., JONESR. C., ROLLINK. E. et al: ‘Mineral investigations in the Teign Valley, Devon. Part 2: base metals’, Mineral Reconnaissance Programme Report of the British Geological Survey, No 123, 1992.
8.
JONESR. C., BEERK. E. and TOMBSJ. M. C.: ‘Geo-chemical and geophysical investigations in Exmoor and the Brendon Hills’, Mineral Reconnaissance Programme Report of the British Geological Survey, No 90, 1987.
9.
ROLLINK. E., GUNNA. G., SCRIVNERR. C. and SHAWM. H.: ‘Potential for stratiform massive sulphide mineralisation in south-west England’, British Geological Survey Commissioned Report CR/01/240, DTI Minerals Programme Publication No 9, 2001.
10.
ROLLINK. E., SHAWM. H., BENHAMA. J. and MORGAND. J. R.: ‘High-resolution gravity surveys at Egloskerry and Combe Martin, SW England’, British Geological Survey, Internal Report, IR/02/195, 2002.
11.
BONIM. and LARGED.: Nonsulfide zinc mineralization in Europe: an overview', Econ. Geol., 2003, 98, 715–729.
12.
BRUGGERJ., MCPHAILD.C., WALLACEM. and WATERSJ.: ‘Formation of willemite in hydrothermal environments', Econ. Geol., 2003, 98, 819–835.
HITZMANM. W, REYNOLDSN. A., SANGSTERD. F., ALLENC. R. and CARMANC.: ‘Classification, genesis, and exploration guides for nonsulfide zinc deposits', Econ. Geol., 2003, 98, 685–714.
15.
LARGED.: ‘The geology of non-sulphide zinc deposits — an overview', Erzmetall, 2001, 54, 264–276.
16.
PETMECKYS., MEIERL., REISERH. and LITTKER.: ‘High thermal maturity in the Lower Saxony Basin: intrusion or deep burial?'Tectonophysics, 1999, 304, 317–344.
17.
BARRIEC. T., AMELINY and PASCUALE.: ‘U—Pb geochronology of VMS mineralisation in the Iberian Pyrite Belt', Mineral. Deposita, 2002, 37, 684–703.
18.
BOULTERC. A.: ‘Extensional tectonics and magmatism as drivers of convection leading to Iberian Pyrite Belt massive sulphide deposits', 1. Geol. Soc. Lond., 1996, 153, 181–184.
19.
BOULTERC. A., SORIANOC. and ZIMMANP.: ‘The Iberian Pyrite belt: a mineralised system dismembered by voluminous high-level sills', Terra Nova, 2001, 13, 99–103.
20.
DUNNINGG. R., DIEZ MONTESA., MATASJ., MARTIN PARRAL. M., ALMARZAJ. and DONAIREM.: ‘Geocronologia U/Pb del volcanismo acido y granitoides de la Faja Piritica Iberica (Zona Surportuguesa)', Geogaceta, 2002, 32: 127–130.
21.
GONZALEZF., MORENOC., SAEZR. and CLAYTONG.: ‘Ore genesis age of the Tharsis Mining District (Iberian Pyrite Belt): a palynological approach.1 Geol. Soc. Lond., 2002, 159, 229–232.
22.
OLIVEIRAJ. T., PACHECON., CARVALHOP. and FERREIRAA.: ‘The Neves Corvo mine and the Paleozoic geology of southwest Portugal’, (eds.Barriga F. J. A. S. and Carvalho D.), Geology and VMS deposits of the Iberian Pyrite Belt, Society of Economic Geologists, Guidebook Series, 1997, 27, 21–71.
23.
PEREIRAZ., SAEZR., PONSJ. M., OLIVEIRAJ. T. and MORENOC.: ‘Edad dev R. SAEZ, J. M. PONS, J. T. OLIVEIRAes, 1997, hwest Portugal‘, (eds. BarrigaF. J. A. S. and CarvalhoD.),Geogaceta, 1996, 20, 1609–1612.
24.
STREELM., CAPUTOM. V., LOBOZIAKS. and MELOJ. H. G.: ‘Late Frasnian-Famennian climates based on playnomorph analyses and the question of the Late Devonian glaciations.Earth ScL Rev., 2000, 52, 121–173.
25.
BALLENTINEC. J., BURGESSR. and MARTYB.: ‘Tracing fluid origin, transport and interaction in the crust', Rev. Mineral. Geochem., 2002, 47, 539–614.
26.
BURNARDP. G., GRAHAMD. W and TURNERG.: ‘Vesicle-specific noble gas analyses of ‘popping rock': implications for primordial noble gases in the Earth', Science, 1997, 276, 568–571.
27.
BURNARDP. G., HUR., TURNERG. and BIX.: ‘Mantle, crustal and atmospheric noble gases in Ailaoshan gold deposits, Yunnan Province, China', Geochim. Cosmochim. Acta, 1999, 63, 1595–1604.
28.
HUR., BURNARDP. G., TURNERG. and XIANWUB.: ‘Helium and argon isotope systematics in fluid inclusions of Machangqing copper deposit in West Yunnan Province, China', Chem. Geol., 1998, 146, 55–63.
29.
KENDRICKM. A., BURGESSR., LEACHD. and PATTRICKR. A. D.: ‘Hydrothermal fluid origins in Mississippi valley-type ore districts; combined noble gas (He, Ar, Kr) and halogen (Cl, Br, I) analysis of fluid inclusions from the Illinois-Kentucky fluorspar district, Viburnum Trend and Tri-State districts, Midcontinent United States', Econ. Geol., 2002, 97, 453–469.
30.
KENDRICKM. A., BURGESSR., PATTRICKR. A. D. and TURNERG.: ‘Fluid inclusion noble gas and halogen evidence on the origin of Cu-porphyry mineralising fluids', Geochim. Cosmochim. Acta, 2001, 65, 2651–2668.
31.
LUPTONJ. E., BAKERE. T. and MASSOTHG. J.: ‘Variable ‘He/heat ratios in submarine hydrothermal systems: evidence from two plumes over the Juan de Fuca ridge.Nature, 1989, 337, 161–164.
32.
SHAILR. K., STUARTF. M., WILKINSONJ. J. and BOYCEA. J.: ‘The role of Post-Variscan tectonic and mantle melting in the generation of the lower Permian granites and the giant W—As—Sn—Cu—Zn—Pb orefied of SW England.Applied Earth Science (Trans. Inst. MM. Metall. B), 2003, 112, B127—B128.
33.
SIMMONSS. F., SAWKINSF. J. and SCHLUTTERD. J.: ‘Mantle-derived helium in two Peruvian ore deposits', Nature, 1987, 329, 429–432.
34.
STUARTF. M., BURNARDP. G., TAYLORR. P. and TURNERG.: ‘Resolving mantle and crustal contributions to ancient hydrothermal fluids: He—Ar isotopes in fluid inclusions from Dae Hwa W—Mo mineralisation, S. Korea', Geochim. Cosmochim. Acta, 1995, 59, 4663–4673.
35.
LOWTHERJ. M., BALDINGA. B., DUNPHYS., MCEVOYF. M. and BOWDENA. A.: Proc. 5th Biennial SGA Meeting, vol 2, Rotterdam, A. A. Balkema, 1999, 881–884.
36.
BOUDREAUA. E.: J. Petrol., 1999, 40, 755–772.
37.
BOUDREAUA. E. and MEURERW P.: Cont. Min. Petrol., 1999, 134, 174–185.
38.
CAMPBELLI. H., NALDRETTA. J. and BARNESS. J.:./ Petrol., 1983, 24, 133–165.
NALDRETTA. J. and LEHMANNJ.: In Prichard et al., Geo-Platinum ‘87, 1987, 113–143.
42.
TREDOUXM., LINDSAYN. M., DAVIESG. and MCDONALDI.: S. Afr.1. Geol., 1995, 98, 157–167.
43.
VERMAAKC. F.: Econ. Geol., 1976, 71, 1270–1298.
44.
KEMPL. D., BONHAM-CARTERG. F., RAINESG. L. and LOONEYC. G.: 2001. ‘Arc-SDM: arcview extension for spatial data modelling using weights of evidence, logistic regression, fuzzy logic and neural network analysis', 2001, <http://ntserv.gis.nrcan.gc.ca/sdm/>.
45.
TANGESTANIM. H. and MOOREF.: ‘Porphyry copper potential mapping using the weights-of evidence model in a GIS, northern Shahr-e-Babak, Iran‘, Aust..1. Earth Sc., 2001, 48, 695–701.
46.
LINBLOMS.: ‘Fluid inclusion studies of the Liasvall sandstone lead-zinc deposit, Sweden’, Doctoral thesis. Stockholms Universitets Geologiska Institution No 252, 1982.
47.
LUCKST. J., BARNICOATA. and FREEMANB.: ‘Porosity and permeability controls within sandstone lithologies of the Laisvall Pb—Zn, N. Sweden', A, ppl Earth Sci. (Trans. Inst. Min. Metal. B), 2002; 112, B226.
48.
RICKARDD. T., WILDENM. Y, MARINDERN. E. and DONELLYT. H.: ‘Studies on the genesis of the Laisvall sandstone lead—zinc deposit, Sweden', Econ. Geol., 1979, 74, 1255–1285.
49.
BOIRONM-C., MOISETTEA., CATHELINEAUM., BANKSD., MONNINC. and DUBESSYJ.: ‘Detailled determination of paleofluid chemistry: an integrated study of sulphate-volatile rich brines and aquo-carbonic fluids in quartz veins from Ouro Fino (Brazil)', Chem. Geol., 1999, 154, 179–192.
50.
CAMPBELLA. R. and PANTERK. S.: ‘Comparison of fluid inclusions in coexisting (cogenetic ?) wolframite, cassiterite and quartz from St Michel's Mount and Cligga Head, Cornwall, England', Geochim. Cosmochim. Acta, 1990, 54, 673–681.
51.
HOEFSJ., MOLLERG. and SCHUSTERA. K.: Polymetamorphic relations in iron ores from the Iron Quadrangle, Brazil: the correlation of oxygen isotope variations with deformation history', Contrib. Mineral. PetroL, 1982, 79, 241–251.
52.
OLIVOG. R., GAUTHIERM., BARDOUXM., SÁE. L., FONESCAJ. T. F. and SANTANAF. C.: Palladium-bearing gold deposit hosted by Proterozoic Lake Superior-type iron-formation at the Cauê iron mine, Itabira district, southern Sdo Francisco craton, Brazil: geologic and structural controls', Econ. Geol., 1995, 90, 118–134.
53.
KOUZMANOVK., BAILLYL., RAMBOZC., ROUERO. and BENYJ-M.: ‘Morphology, origin and infrared microthermometry of fluid inclusions in pyrite from the Radka epithermal copper deposit, Srednogorie zone, Bulgaria', Mineral. Depos., 2002, 37, 599–613.
54.
LODERSV.: ‘Contribution of infrared microscopy to fluid inclusion studies in some opaque minerals (wolframite, stibnite,bournonite);metallogenicimplications', Econ. Geol., 1996, 91, 1462–1468.
55.
LODERSV. and ZIEMANNM.: ‘Possibilities and limits of infrared light microthermometry applied to studies of pyrite-hosted fluid inclusions', Chem. Geol., 1999, 154, 169–178.
56.
LODERSV., GUTZMERJ. and BEUKESN. J.: ‘Fluid inclusion studies in cogenetic hematite, hausmannite, and gangue minerals from high-grade manganese ores in the Kalahari Manganese Field, South Africa', Econ. Geol., 1999, 94, 589–596.
57.
MANCANOD. P. and CAMPBELLA. R.: ‘Micro-thermometry of enargite-hosted fluid inclusions from Lepanto, Phillipines, high-sulfidation Cu-Au deposit', Geochim. Cosmochim. Acta, 1995, 59, 3909–3916.
58.
LESHERC. M. et al: Geological Association of Canada Short Course Notes, 1999, 13, 451–477.
59.
LESHERC. M.personal communication, 2003
60.
MELEZHIKV. A.. Proc. 1st Int. Barents Symp., Geology and Minerals of the Barents Region, Norske Geologiske Undersokelse Special Publication 1995, No. 7, 81–91.
61.
CHAIG. and NALDRETTA. J.:.1. Petrol., 1992, 33, 1–27.
62.
NALDRETTA. J.: ‘Magmatic sulfide deposits of nickel-copper and platinum-metal ores', St Petersburg University Press, 2003, 487.
63.
LIC and NALDRETT:A. J. J. Petrol., 1992, 33, 1–27.
64.
MILLERJ. D. and RIPLEYE. M.: In ‘Layered Intrusions', ed. CawthornR.G.Amsterdam, Elsevier, 1996, 257–301.
65.
RIPLEYE. M. and LIC.: Econ. Geol. 2003, 98, 635–642.
66.
BLEEKER and WOUTER: Unpublished Ph.D. thesis, University of New Brunswick, Canada, 1990, p356.
67.
ECKSTRANDO. R..: Curr. Res. Part C, Geological Survey of Canada, 1989, Paper 89-1C, p. 235–242.
68.
BRUGMANNG. E..:.1. Petrol. 2000, 41, 1721–1742.
69.
SMOLKINV. F.: Can.1 Earth Sci. 1997, 34, 426–443.
70.
RIPLEYE. M..: Geol. Assoc. Can., Mineralogical Association of Canada, Soc. Econ. Geologists joint meeting, Vancouver, BC Canada. May2003.
71.
DUZHIKOVO. A..: Soc. Econ. Geologists, Special Publication, 1992, No.1p242
RIPLEYE. M.: Geological Association of Canada Short Course Notes, 1999, 13, 133–158.
76.
CRAWD., WINDLES. J. and ANGUSP. V.: ‘Gold mineralisation without quartz veins in a ductile-brittle shear zone, Macraes Mine, Otago Schist, New Zealand.Miner. Deposita, 1999, 34, 382–394.
77.
DERONDEC. E. J., FAUREK., BRAYC. J. and WHITFORDD. J.: ‘Round Hill shear zone-hosted gold deposit, Macraes Flat, Otago, New Zealand: evidence of a magmatic ore fluid', Econ. Geol., 2000, 95, 1025–1048.
78.
GROVESD. I., GOLDFARBR. J., ROBERTF. and HARTC. J. R.: ‘Gold deposits in metamorphic belts: overview of current understanding, outstanding problems, future research, and exploration significance.Econ. Geol., 2003, 98, 1–29.
79.
HENLEYR. W, NORRISR. J. and PATERSONC. J.: ‘Multistage ore genesis in the New Zealand geosyncline: a history of post-metamorphic lode emplacement', Miner. Deposita, 1976, 11, 180–196.
80.
HOLMD. K., NORRISR. J. and CRAWD.: ‘Brittle and ductile deformation in a zone of rapid uplift: Central Southern Alps, New Zealand', Tectonics, 1989, 8, 153–168.
81.
MCKEAGS. A., CRAWD. and NORRISR. J.: ‘Origin and deposition of graphitic schist-hosted metamorphogenic Au—W deposit, Macraes, East Otago, New Zealand', Miner. Deposita, 1989, 24, 124–131.
82.
MORTIMERN.: ‘Metamorphic discontinuities in orogenic belts: example of the garnet—biotite—albite zone in the Otago Schist, New Zealand.Int. J Earth Sci., 2000, 89, 295–306.
TEAGLED. A. H., NORRISR. J. and CRAWD.: ‘Structural controls on gold-bearing quartz mineralisation in a duplex thrust system, Hyde—Macraes shear zone, Otago Schist, New Zealand.Econ. Geol., 1990, 85, 1711–1719.
85.
BERGMANS., KfTBLERL. and MARTINSSONO.: ‘Description of regional geological and geophysical maps of northern Norrbotten County (east of the Caledonian Orogen)', Sveriges Geologiska Undersökning Ba56, 2001.
86.
HITZMANM. W, ORESKESN. and EINAUDIM. T.: ‘Geological characteristics and tectonic setting of Proterozoic iron oxide (Cu—U—Au—REE) deposits', Precambrian Res., 1992, 58, 241–287.
87.
BERGMANS., KOBLERL. and MATINSSONO.: ‘Description of regional geological and geophysical maps of northern Norrbotten county (east of the Caledonian orogen)‘, Sveriges geologiska undersökning Ba56, 2001.
88.
CLIFFR. A., RICKARDD. and BLAKEK.: ‘Isotope systematics of the Kiruna magnetite ores, Sweden: part 1. Age of the ore', Econ. Geol., 1990, 85, 1770–1776.
89.
ROMERR. L., MARTINSSONO. and PERDAHLJ-A.: ‘Geochronology of the Kiruna iron ores and hydrothermal alterations', Econ. Geol., 1994, 89, 1249–1261.
90.
STACEYJ. S. and KRAMERSJ. D.: ‘Approximation of terrestrial lead isotope evolution by a two-stage model', Earth Planet. Sci. Lett., 1975, 26, 207–221.
91.
GILMOURJ..: Rev Sci. Inst., 1994, 65, 617–625.
92.
GILMOURJ..: Proc. 5th Bicentennial SGA Meeting and 10th Quadrennial IAGOD meeting, London, Amsterdam, Balkmena, 1999, 1259–1261.
MENUGEJ. F. and DALYJ. S.: (GowerC. F.. eds.), Geol. Assoc. Canada Spec. Paper, 1990, 38, 41–52.
99.
MILLSH..: Nature, 1987, 327, 223–226.
100.
O'KEEFFEW. G.: (AndrewC. J.. eds.), Geology and genesis of mineral deposits in Ireland, IAEG Spec. Publ., 1986, 617–624.
101.
PEACEW. M. and WALLACEM. W.: Geology, 2000, 2, 711–714.
102.
PHILLIPSW. E. A.: (HollandC. H. ed.), The geology of Ireland, 2nd edn, London, Academic Press, 2001, 192–196.
103.
RUSSELLM. J.: (1986) (AndrewC. J.. eds.), Geology and genesis of mineral deposits in Ireland. IAEG Spec.Publ., 1986, 545–554.
104.
SYMONSD. T. A.et al.: Econ. Geol., 2002, 97, 997–1012.
105.
BLATTNERP. and WILLIAMSJ. G.: The Largs high-latitude oxygen isotope anomaly (New Zealand) and climatic controls of oxygen isotopes in magmas', Earth Planet. Sci. Lett., 1991, 103, 270–284.
106.
BLATTNERP., GRINDLEYG. W and ADAMSC. J.: ‘Low 180 terranes tracking Meosozic climates in the South Pacific', Geochim. Cosmochim. Acta, 1997, 61, 569–576.
107.
DALLAIL., GHEZZOC. and LONGINELLIA.: ‘Fossil hydrothermal systems tracking Eocene climate change in Antarctica', Geology, 2001, 29, 931–934.
108.
HARRISA. C. and GOLDINGS. D.: ‘New evidence of magmatic-fluid-related phyllic alteration: implications for the genesis of porphyry Cu deposits', Geology, 2002, 30, 335–338.
109.
KERRICHR. and LUDDENJ.: The role of fluids during formation and evolution of the southern Superior Province lithosphere: an overview', Can..1 Earth Sci, 2000, 37, 135–164.
110.
NEVLER. J., BRANDRISSR. E., BIRDD. K., MCWILLIAMSM. O. and O'NEILJ. R.: ‘Tertiary plutons monitor climate change in East Greenland', Geology, 1994, 22, 775–778.
111.
RUMBLED., GIORGISD., IRELANDT., ZHANGZ., XUH., YUIT. F..: ‘Low S180 zircons, U—Pb dating, and the age of the Qinglongshan oxygen and hydrogen isotope anomaly near Donghai in Jiangsu Province, China', Geochim. Cosmochim. Acta, 2002, 66, 2299–2306.
112.
TOURETJ. L. R.: ‘Fluids in the deep earth', 1 Geochem. Explor, 2003, 78/79, 659–663.
113.
WILLANR. C. R. and ARMSTRONGD. C.: ‘Successive geothermal, volcanic-hydrothermal and contact-metasomatic events in Cenozoic volcanic-arc basalts, South Shetland Islands, Antarctica', Geol. Mag, 2002, 139, 209–231.
114.
AUDETATA., GUNTERD. and HEIRRICHC. A.: ‘Causes for large-scale metal zonation around mineralised plutons: Fluid inclusion LA-ICP-MS evidence from the Mole granite, Australia', Econ. Geol., 2000, 95, 1563–1581.
115.
BANKSD. A., GUILIANIG., YARDLEYB. W D. and CHEILLETZA.: ‘Emerald mineralisation in Columbia: fluid chemistry and the role of brine mixing', Miner. Depos., 2000, 35, 699–713.
116.
Bo I-IrellS. H. and YARDLEYB. W. D.: The composition of a primary granite-derived ore fluid from SW England, determined by fluid inclusion analysis', Geochim. Cosmochim. Acta, 1988, 52, 585–588.
117.
CARPENTERA. B., TROUTM. L. and PICKETTE. E.: ‘Preliminary report on the origin and chemical evolution of lead and zinc-rich oilfield brines in Central Mississippi', Econ. Geol., 1974, 69, 1191–1206.
118.
CONNOLLYC. A., WALTERL. M., BAADSGAARDH. and LONGSTAFFEF.: ‘Origin and evolution of formation waters, Alberta Basin, Western Canada Sedimentary Basin. I. Chemistry', Appl Geochem., 1990, 5, 375–395.
119.
FRITZP. and FRAPES. K. (eds.): ‘Saline water and gases in crystalline rocks’, Geological Association of Canada Special Paper33, 1987.
120.
KAMENETSKYV. S., ACHTERBERGHE. VAN, RYANC. G., NAUMOVV. B., MENAGHT. P. and DAVIDSONP.: ‘Extreme chemical heterogeneity of granite-derived hydrothermal fluids: an example from inclusions in a single crystal of miarolitic quartz', Geology, 2002, 30, 459–462.
121.
LANDL. S., MCPHERSONG. L. and MACKL. E.: The geochemistry of saline formation waters, Miocene offshore Louisiana', Gulf Coast Assoc Geol. Trans., 1988, 38, 503–511.
122.
MCCAIGA. M., TRITLLAJ. and BANKSD. A.: ‘Fluid mixing and recycling during Pyrenean thrusting: evidence from fluid inclusion halogen ratios', Geochim. Cosmochim. Acta, 2000, 64, 3395–3412.
123.
MEEREP. A. and BANKSD. A.: ‘Upper crustal fluid migration: an example from the Variscides of SW Ireland', 1 Geol. Soc Lond., 1997, 154, 975–985.
124.
MUNZI. A., YARDLEYB. W D., BANKSD. A. and WAYNED.: ‘Deep penetration of sedimentary fluids in basement rocks from southern Norway: evidence from hydrocarbon and brine inclusions in quartz veins', Geochim. Cosmochim. Acta, 1995, 59, 239–254.
125.
SMITHM. P., BANKSD. A., YARDLEYB. W D. and BOYCEA.: ‘Fluid inclusion and stable isotope constraints on the genesis of the Cligga Head Sn—W deposit, SW England', Eur..1 Mineral., 1996, 8, 961–974.
126.
WILLIAMSA. E. and McKIBBENM. A.: ‘A brine interface in the Salton Sea geothermal system, California: fluid geochemical and isotopic characteristics', Geochim. Cosmochim. Acta, 1989, 53, 1905–1920.