SHEAR LOCALIZATION IN UPPER MANTLE PERIDOTITES

被引:98
作者
DRURY, MR
VISSERS, RLM
VANDERWAL, D
STRATING, EHH
机构
[1] Research School of Earth Sciences, Australian National University, Canberra, 2601, ACT
[2] Department of Geology, Institute of Earth Sciences, State University of Utrecht, Utrecht, 3508 TA
关键词
DEFORMATION; LOCALIZATION; SOFTENING; MANTLE; PERIDOTITE; OLIVINE;
D O I
10.1007/BF00879044
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Upper mantle peridotite bodies at the earth's surface contain relict structures and microstructures which provide direct information on the role and the mechanisms of shear localisation in the upper mantle. Deformation which occurred at high temperatures (T > 950 +/- 50-degrees-C) is relatively homogeneous within domains ranging in scale from a few kilometres to a few tens of kilometres. Below 950 +/- 50-degrees-C strain is localised into centimetre to several hundred metre wide shear zones which commonly contain hydrated mylonitic peridotites. The microstructures developed in the peridotites suggest there is a correlation between the occurrence of shear localisation and the occurrence of strain softening and brittle deformation processes. The most important strain softening processes are inferred to be structural and reaction induced softening. Structural softening processes include dynamic recrystallisation and strain-induced transitions from dislocation creep to some form of grain-size-sensitive (GSS) creep. Reaction induced softening is related to the formation of fine grained polyphase reaction products which deform by GSS creep and the formation of weak sheet silicates such as phlogopite, chlorite, talc and antigorite. From experimental studies these softening processes and brittle deformation processes are inferred to occur mainly at temperatures less than about 910 +/- 160-degrees-C. This temperature range is inferred to be a significant rheological transition in the upper mantle. Below 910 +/- 160-degrees-C deformation during orogenesis may be accommodated by an anastomosing network of hydrated mylonitic shear zones with a distinct, perhaps weak, rheology. At higher temperatures strain is accommodated in much wider deformation zones. On the scale of the lithosphere the degree of localisation may be different to that determined at the scale of the peridotite massif. An anastomosing network of hundred metre wide mylonitic shear zones forming 0.05-0.3 by volume fraction of the mantle lithosphere at T < 950-degrees-C could accommodate inhomogeneous or homogeneous bulk deformation depending on the spatial distribution and ordering of the mylonite zones. The higher temperature deformation at deeper levels in the mantle could be markedly inhomogeneous being concentrated in shear zones with widths in the range of 2-20 km, alternatively these zones may widen significantly during deformation, resulting in a decrease in the degree of localisation with increasing bulk strain.
引用
收藏
页码:439 / 460
页数:22
相关论文
共 95 条
[1]  
Aydin A., Johnson A.M., Analysis of Faulting in Porous Sandstones, J. Struct. Geology, 5, pp. 19-31, (1983)
[2]  
Bay B., Hansen N., Recrystallization in Commercially Pure Aluminium, Metall. Trans., 15 A, pp. 287-297, (1979)
[3]  
Biot M.A., Mechanics of Incremental Deformations, (1965)
[4]  
Blacic J.D., Effect of water on the experimental deformation of olivine, Flow and Fracture of Rocks, (1972)
[5]  
Bodinier J.L., Vasseur G., Vernieres J., Dupuy C., Fabries J., Mechanisms of Mantle Metasomatism: Geochemical Evidence from the Lherz Orgenic Peridotite, J. Petrology, 31, pp. 597-628, (1990)
[6]  
Boudier F., Structure and Petrology of the Lanzo Peridotite Massif (Piedmont Alps), Geol. Soc. Am. Bull., 89, pp. 1574-1591, (1978)
[7]  
Boudier F., Jackson M., Nicolas A., Structural Study of the Balmuccia Massif (Western Alps): A Transition from Mantle to Lower Crust, Geologie en Mijnbouw, 63, pp. 179-188, (1984)
[8]  
Boudier F., Ceuleneer G., Nicolas A., Shear Zones, Thrusts and Related Magmatism in the Oman Ophiolite: Initiation of Thrusting on an Ocean Ridge, Tectonophys., 151, pp. 275-296, (1988)
[9]  
Boullier A.M., Gueguen Y., SP-mylonites: Origin of Some Mylonites by Superplastic Flow, Contrib. Mineral. Petrology, 50, pp. 93-104, (1975)
[10]  
Bowden P.B., A Criterion for Inhomogeneous Plastic Deformation, Philosophical Magazine, 22, pp. 455-462, (1970)