Skip to main content
Log in

Crystallization processes in the Bjerkreim-Sokndal layered intrusion, south Norway: evidence from the boundary between two macrocyclic units

  • Published:
Contributions to Mineralogy and Petrology Aims and scope Submit manuscript

Abstract

The Bjerkreim-Sokndal (BKSK) layered intrusion belongs to the Rogaland anorthosite province in southern Norway. The northwestern part of BKSK consists of a ca. 6 km-thick Layered Series, made up of macrocyclic units (MCU) arranged in a syncline. Each MCU, which resulted from the crystallization of a major-magma influx, can be subdivided into a series of cumulate zones. The MCU III/IV boundary has been studied in seven profiles across its strike length of 24 km. Massive piC1 at the base of MCU IV overlies laminated and modally layered phimC in the central part of the chamber and phimacC towards the flanks; there is a discordance of between 2 and 6° between the base of MCU IV and phase layering in MCU III. The MCU IV piC is overlain by 75–100 m of massive poiC (the Svaalestad unit of Michot 1960; a similar olivine-bearing unit occurs near the base of MCU III) which has more primitive compositions than the underlying piC. This is followed by laminated and modally layered phiC, phimC and phimacC. The reversal to more primitive mineral assemblages across the MCU III/IV boundary is accompanied by a cryptic reversal; plagioclase and Ca-poor pyroxene have compositions of about An 44/Mg no. 71 at the top MCU III and about An 52/Mg no. 77 near the base of MCU IV. Olivines in the MCU IV poiC vary unsystematically from Fo 66 to 76. Macrocyclic units III and IV crystallized from monzonoritic parental magma. The BKSK magma chamber had a broad saucer-like shape with a small thickness to breadth ratio. The magma in the chamber during crystallization of MCU III was compositionally zoned and crystallized on an inward-sloping floor by down-dip accretion. Just before the major-magma influx at the base of MCU IV, phimC was crystallizing from the basal-magma layer at the centre of the chamber, while phimacC was crystallizing towards the flanks. The new, dense magma fountained into and mixed with the basal-magma layers already in the chamber. This hybrid magma crystallized during continued influx to produce massive piC at the base of MCU IV. This hybrid unit is thickest near the centre of the chamber and smoothed out the floor to an essentially horizontal surface. Continued influx resulted in the dense, primitive magma ponding on the floor; this crystallized fairly rapidly to produce the massive poiC unit. The return of normal fractional crystallization conditions is marked by the overlying sequence of modally and cryptically layered cumulates which duplicate the succession in MCU III. The variation in thickness of the upper part of MCU IV indicates that crystallization of the BKSK Layered Series was accompanied by sinking of the floor at a greater rate near the centre of the chamber than towards the flanks. This was accompanied by compaction of the underlying cumulates, promoting the development of lamination and the expulsion of intercumulus melt to encourage the development of adcumulates.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

Abbreviations

1 p :

plagioclase

i :

ilmenite

h :

Ca-poor pyroxene

o :

olivine

m :

magnetite

a :

apatite

c :

Ca-rich pyroxene

C :

cumulate

References

  • Barton M, Gaans CV (1988) Formation of orthopyroxene-Fe−Ti oxide symplectites in Precambrian intrusives, Rogaland, southwestern Norway. Am Mineral 73:1046–1059

    Google Scholar 

  • Campbell IH (1978) Some problems with the cumulus theory. Lithos 11:311–323

    Google Scholar 

  • Campbell IH, Roeder PL, Dixon JM (1978) Plagioclase buoyancy in basaltic liquids as determined with a centrifuge furnace. Contrib Mineral Petrol 67:369–377

    Google Scholar 

  • Duchesne JC (1970) Sur la provenance de xénolithes anorthosites dans le massif de Bjerkreim-Sogndal (Norvège). Ann Soc Geol Belg 93:523–526

    Google Scholar 

  • Duchesne JC (1971) Le rapport Sr/Ca dans les plagioclases du massif de Bjerkreim-Sogndal (Norvège méridionale) et son évolution dans la crystallisation fractionée du magma plagioclasique. Chem Geol 8:123–130

    Google Scholar 

  • Ducchesne JC (1972a) Iron-titanium oxide minerals in the Bjerkreim-Sogndal massf, southwestern Norway. J Petrol 13:57–81

    Google Scholar 

  • Duchesne JC (1972b) Pyroxènes et olivines dans le massif de Bjerkreim-Sogndal (Norvège méridionale). Contribution a l'étude de la série anorthosite-mangerite. 24th Int Geol Congr Montreal sect. 2:320–328

    Google Scholar 

  • Duchesne JC (1978) Quantitative modelling of Sr, Ca, Rb and K in the Bjerkreim-Sogndal layered lopolith (SW Norway). Contrib Mineral Petrol 66:175–184

    Google Scholar 

  • Duchesne JC (1987) The Bjerkreim-Sokndal massif. In: Maijer C, Padget P (eds) The geology of southernmost Norway: an excursion guide. Nor Geol Unders Spec Publ 1, pp 56–59

  • Duchesne JC (1990) Origin and evolution of monzonorites related to anorthosites. Schweiz Mineral Petrogr Mitt 70:189–198

    Google Scholar 

  • Duchesne JC, Demaiffe (1978) Trace elements and anorthosite genesis. Earth Planet Sci Lett 38:249–272

    Google Scholar 

  • Duchesne JC, Demaiffe D, Roelandts I, Weis D (1985) Petrology of monzonoritic dykes in the Egersund-Ogna anorthosite (Rogaland, SW Norway): trace elements and isotopic constraints. Contrib Mineral Petrol 90:214–225

    Google Scholar 

  • Duchesne JC, Denoiseux B, Hertogen J (1987) The norite-mangerite relationships in the Bjerkreim-Sokndal layered lopolith (SW Norway). Lithos 20:1–17

    Google Scholar 

  • Duchesne JC, Hertogen J (1988) Le magma parental du lopolithe de Bjerkreim-Sokndal (Norvège méridionale). Cah Rech Acad Sci Paris 306:45–48

    Google Scholar 

  • Huppert HE, Sparks RSJ, Wilson JR, Hallworth MA (1986) Cooling and crystallization at an inclined plane. Earth Planet Sci Lett 79:319–328

    Google Scholar 

  • Hupper HE, Sparks RSJ, Wilson JR, Wilsoorth MA, Leitch AM (1987) Laboratory experiments with aqueous solutions modelling magma chamber processes II. Cooling and crystallization along inclined planes. In: Parsons I (ed) Origins of igneous layering, Reidel Dordrecht Boston, pp 539–568

    Google Scholar 

  • Irvine TN (1980) Magmatic infiltration metasomatism, double diffusive fractional crystallization, and adcumulus growth in the Muskox intrusion and other layered intrusions. In: Hargraves RB (ed) Physics of magmatic processes. Princeton University Press, pp 325–383

  • Irvine TN (1981) A liquid-density controlled model for chromitite formation in the Muskox intrusion. Carnegie Inst Washington Yearb 80:317–323

    Google Scholar 

  • Irvine TN (1982) Terminology for layered intrusions. J Petrol 23:127–162

    Google Scholar 

  • Irvine TN, Keith DW, Todd SG (1983) The J-M Platinum-palladium reef of the Stillwater Complex, Montana: II. Origin by double-diffusive convective magma mixing and implications for the Bushveld Complex. Econ Geol 78:1287–1334

    Google Scholar 

  • Maijer C, Hermans GAEM, Tobi AC, Jansen JBH (1987) The metamorphic envelope of the Rogaland intrusive complex. Maijer C, Padget P (eds) The geology of southernmost Norway: an excursion guide. Nor Geol Unders spec publ 1, pp 81–87

  • Martin D, Campbell IH (1988) Laboratory modelling of convection in magma chambers: crystallization against sloping floors. J Geophys Res 93:7974–7988

    Google Scholar 

  • McBirney AR (1980) Mixing and unmixing of magmas. J Volcanol Geotherm Res 7:357–371

    Google Scholar 

  • McBirney AR, Noyes RM (1979) Crystallization and layering in the Skaergaard intrusion. J Petrol 20:487–554

    Google Scholar 

  • Michot J (1961) The anorthositic complex of Haaland-Helleren. Nor Geol Tidsskr 41:157–172

    Google Scholar 

  • Michot J, Michot P (1969) The problem of the anorthosites. The South Rogaland igneous complex (South Western Norway). In: Isachsen YW (ed) Origin of anorthosites and related rocks. NY State Mus Sci Serv Mem 18, pp 399–410

  • Michot P (1960) La géologie de la catazone: le problème des anorthosites, la palingenèse basique et la tectonique catazonale dans le Rogaland méridional (Norvège méridionale). Nor Geol Unders 212g:1–54

    Google Scholar 

  • Michol P (1965) La magma plagioclasique. Geol Rundsch 54:956–976

    Google Scholar 

  • Morse SA (1986) Thermal structure of crystallizing magma with two-phase convection. Geol Mag 123:205–214

    Google Scholar 

  • Pasteels P, Demaiffe D, Michot J (1979) U-Pb and Rb-Sr geochronology of the eastern part of the south Rogaland igeneous complex, Southern Norway. Lithos 12:199–208

    Google Scholar 

  • Sparks RSJ, Huppert HE (1984) Density changes during the fractional crystallization of basaltic magmas: fluid dynamic implications. Contrib Mineral Petrol 85:300–309

    Google Scholar 

  • Tait SR, Kerr RC (1987) Experimental modelling of interstitial melt convection in cumulus piles. In: Parsons I (ed) Origins of igneous larving. Reidel Dordrecht Boston, pp 569–587

    Google Scholar 

  • Turner JS, Campbell GM (1986) Convection and mixing in magma chambers. Earth-Sci Rev 23:255–352

    Google Scholar 

  • Wager LR, Brown GM (1968) Layered igneous rocks. Oliver and Boyd, Edinburgh, pp 1–588

    Google Scholar 

  • Wielens JBW, Andriessen PAM, Boelrijk NAIM, Hebeda EH, Priem HNA, Verdurmen EAT, Verschure RH (1980) Isotope geochronology in the high-grade metamorphic Precambrian of southwestern Norway: new data and interpretations. Nor Geol Unders 359:1–30

    Google Scholar 

  • Wilmart E, Demaiffe D, Duchesne JC (1989) Geochemical constraints on the genesis of the Tellnes ilmenite deposit, southwest Norway. Econ Geol 84:1047–1056

    Google Scholar 

  • Wilson JR, Larsen SB (1985) Two dimensional study of a layered intrusion — the Hyllingen Series, Norway. Geol Mag 122:97–124

    Google Scholar 

  • Wilson JR, Menuge JF, Pedersen S, Engell-Sørensen O (1987) The southern part of the Fongen-Hyllingen layered mafic complex, Norway: Emplacement and crystallization of compositionally stratified magma. In: Parsons I (ed) Origins of igneous layering. Reidel Dordrecht Boston, pp 145–184

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Nielsen, F.M., Wilson, J.R. Crystallization processes in the Bjerkreim-Sokndal layered intrusion, south Norway: evidence from the boundary between two macrocyclic units. Contr Mineral Petrol 107, 403–414 (1991). https://doi.org/10.1007/BF00325107

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00325107

Keywords

Navigation