More than 150 Ordovician and Early Silurian brachiopod species have been assigned to the genus Platystrophia King, 1850 mainly on the basis of their Spirifer-like shell exteriors. King’s concept of the genus was based on Platystrophia biforata King, which is not conspecific with Terebratulites biforatus Schlotheim, traditionally regarded as the type species of Platystrophia. Porambonites costatus Pander, 1830 is formally proposed as the type species of the genus to replace P. biforata; the latter is considered to be a nomen dubium. In our revised diagnosis, Platystrophia is restricted to a group of Arenig to upper Caradoc species from Baltica and Avalonia, whereas the Ashgill and lower Silurian taxa of these regions, hitherto assigned to Platystrophia, are placed in the new genus Neoplatystrophia. Platystrophia ponderosa Foerste, 1909 from the Upper Ordovician of North America is proposed as the type species of a new genus Vinlandostrophia. Two new species, Platystrophia baltica and Platystrophia pogrebovi from the Llanvirn–Caradoc of the East Baltic are also described.
Bagdassarov, N. & Dorfman, A. 1998. Granite rheology: magma flow and melt migration. Journal of the Geological Society, 155, 863–872.
Bak, P., Tang, C. & Wiesenfeld, K. 1987. Self-organized criticality: an explanation of 1/f noise. Physical Review Letters, 59, 381–384.
Bak, P., Tang, C. & Wiesenfeld, K. 1988. Self-organized criticality. Physical Review A, 38, 364–374.
Bonnet, E., Bour, O., Odling, N. E., Davy, P., Main, I., Cowie, P. & Berkowitz, B. 2001. Scaling of fracture systems in geological media. Reviews of Geophysics, 39, 347–383.
Bons, P. D. & van Millingen, B. P. 2001. New experiment to model self-organized critical transport and accumulation of melt and hydrocarbons from their source rock. Geology, 29, 919–922.
Bons, P. D., Arnold, J., Elburg, M. A., Kalda, J., Soesoo, A. & van Millingen, B. P. 2004. Melt extraction and accumulation from partially molten rocks. Lithos, 78, 25–42.
Brown, M. A., Brown, M., Carlson, W. D. & Denison, C. 1999. Topology of syntectonic melt-flow networks in the deep crust: inferences from three-dimensional images of leucosome geometry in migmatites. American Mineralogist, 84, 1793–1818.
Johannes, W., Ehlers, C., Kriegsman, L. M. & Mengel, K. 2003. The link between migmatites and S-type granites in the Turku area, southern Finland. Lithos, 68, 69–90.
Knesel, K. M. & Davidson, J. P. 1999. Sr isotope systematics during melt generation by intrusion of basalt into continental crust. Contributions to Mineralogy and Petrology, 136, 285–295.
Laporte, D. & Watson, E. B. 1995. Experimental and theoretical constraints on melt distribution in crustal sources: the effect of crystalline anisotropy on melt interconnectivity. Chemical Geology, 124, 161–184.
Maaløe, S. 1992. Melting and diffusion processes in closed-system migmatization. Journal of Metamorphic Geology, 10, 503–516.
Marchildon, N. & Brown, M. 2003. Spatial distribution of melt-bearing structures in anatectic rocks from Southern Brittany, France: implications for melt transfer at grain- to orogen-scale. Tectonophysics, 364, 215–235.
Mengel, K., Richter, M. & Johannes, W. 2001. Leucosome-forming small-scale geochemical processes in the metapelitic migmatites of the Turku area, Finland. Lithos, 56, 47–73.
Sawyer, E. W. 2001. Melt segregation in the continental crust: distribution and movement of melt in anatectic rocks. Journal of Metamorphic Geology, 19, 291–309.
Silva, J. B. & Pereira, M. F. 2004. Transcurrent continental tectonics model for the Ossa-Morena Zone Neoproterozoic Paleozoic evolution, SW Iberian Massif, Portugal. International Journal of Earth Sciences, 93, 886–896.
Soesoo, A., Puura, V., Kirs, J., Petersell, V., Niin, M. & All, T. 2004a. Outlines of the Precambrian basement of Estonia. Proceedings of the Estonian Academy of Sciences, Geology, 53, 149–164.
Soesoo, A., Kalda, J., Bons, P. D., Urtson, K. & Kalm, V. 2004b. Fractality in geology: a possible use of fractals in the studies of partial melting processes. Proceedings of the Estonian Academy of Sciences, Geology, 53, 13–27.
Tanner, D. C. 1999. The scale-invariant nature of migmatite from the Oberpfalz, NE Bavaria and its significance for melt transport. Tectonophysics, 302, 297–305.
Vigneresse, J. L. & Burg, J. P. 2000. Continuous vs. discontinuous melt segregation in migmatites: insights from a cellular automaton model. Terra Nova, 12, 188–192.
Vigneresse, J. L., Barbey, P. & Cuney, M. 1996. Rheological transitions during partial melting and crystallization with application to felsic magma segregation and transfer. Journal of Petrology, 37, 1579–1600.
Walte, N. P., Bons, P. D., Passchier, C. W. & Koehn, D. 2003. Disequilibrium melt distribution during static recrystallization. Geology, 31, 1009–1012.