Non-mare silicic volcanism on the lunar farside at Compton–Belkovich (original) (raw)
References
Lawrence, D. J. et al. High resolution measurements of absolute thorium abundance on the lunar surface. Geophys. Res. Lett.26, 2681–2683 (1999). Article Google Scholar
Lawrence, D. J. et al. Small-area thorium features on the lunar surface. J. Geophys. Res.108, JE002050 (2003). Article Google Scholar
Lawrence, D. J. et al. Global spatial deconvolution of Lunar Prospector Th abundances. Geophys. Res. Lett.34, L03201 (2007). Google Scholar
Gillis, J. J., Jolliff, B. L., Lawrence, D. J., Lawson, S. L. & Prettyman, T. H. The Compton–Belkovich region of the Moon: Remotely sensed observations and lunar sample association. Lunar Planet. Sci.33, abstr. no. 1967 (2002). Google Scholar
Robinson, M. S. et al. Lunar Reconnaissance Orbiter Camera (LROC) instrument overview. Space Sci. Rev.150, 81–124 (2010). Article Google Scholar
Tran, T. et al. Generating digital terrain models from LROC stereo images with SOCET SET. Lunar Planet. Sci.41, abstr. no. 2515 (2010). Google Scholar
Scholten, F. et al. Towards global lunar topography using LROC WAC stereo data. Lunar Planet. Sci.41, abstr. no. 2111 (2010). Google Scholar
Zuber, M. T. et al. The Lunar Orbiter Laser Altimeter investigation on the Lunar Reconnaissance Orbiter mission. Space Sci. Rev.150, 63–80 (2010). Article Google Scholar
Lawrence, S. J. et al. LROC observations of the Marius Hills. Lunar Planet. Sci.41, abstr. no. 1906 (2010). Google Scholar
Murase, T. & McBirney, A. R. Viscosity of lunar lavas. Science167, 1491–1493 (1970). Article Google Scholar
Li, L. & Mustard, J. F. Compositional gradients across mare-highland contacts: Importance and geological implication of lateral transport. J. Geophys. Res.105, 20431–20450 (2000). Article Google Scholar
Lawrence, D. J. et al. Iron abundances on the lunar surface as measured by the Lunar Prospector gamma-ray and neutron spectrometers. J. Geophys. Res.107, JE001530 (2002). Article Google Scholar
Ryder, G. Lunar sample 15405: Remnant of a KREEP basalt-granite differentiated pluton. Earth Planet. Sci. Lett.29, 255–268 (1976). Article Google Scholar
Warren, P. H. et al. Seventh foray: Whitlockite-rich lithologies, a diopside-bearing troctolitic anorthosite, ferroan anorthosites, and KREEP. Proc. Lunar Planet. Sci. Conf. 14th in J. Geophys. Res.88, B151–B164 (1983). Article Google Scholar
Warren, P. H., Jerde, E. A. & Kallemeyn, G. W. Pristine Moon rocks: A ‘large’ felsite and a metal-rich ferroan anorthosite. Proc. Lunar. Planet. Sci. Conf. 17th in J. Geophys. Res.92, E303–E313 (1987). Article Google Scholar
Marvin, U. B., Lindstrom, M. M., Holmberg, B. B. & Martinez, R. R. New observations on the quartz monzodiorite-granite suite. Proc. Lunar Planet. Sci.21, 119–135 (1991). Google Scholar
Jolliff, B. L. Fragments of quartz monzodiorite and felsite in Apollo 14 soil particles. Proc. Lunar Planet. Sci.21, 101–118 (1991). Google Scholar
Snyder, G. A., Taylor, L. A. & Halliday, A. Chronology and petrogenesis of the lunar highlands alkali suite: Cumulates from KREEP basalt crystallization. Geochim. Cosmochim. Acta59, 1185–1203 (1995). Article Google Scholar
Seddio, S. M., Jolliff, B. L., Korotev, R. L. & Zeigler, R. A. A newly characterized granite from the Apollo 12 regolith. Lunar Planet. Sci.40, abstr. no. 2285 (2009). Google Scholar
Seddio, S. M., Korotev, R. L., Jolliff, B. L. & Zeigler, R. A. Comparing the bulk compositions of lunar granites, with petrologic implications. Lunar Planet. Sci.41, abstr. no. 2688 (2010). Google Scholar
Jolliff, B. L. Large-scale separation of K-frac and REEP-frac in the source regions of Apollo impact-melt breccias, and a revised estimate of the KREEP composition. Int. Geology Rev.40, 916–935 (1998). Article Google Scholar
Paige, D. A. et al. The Lunar Reconnaissance Orbiter Diviner Lunar Radiometer Experiment. Space Sci. Rev.150, 125–160 (2010). Article Google Scholar
Greenhagen, B. T. et al. Global silicate mineralogy of the Moon from the Diviner lunar radiometer. Science329, 1507–1509 (2010). Article Google Scholar
Glotch, T. D. et al. Identification of highly silicic features on the Moon. Science329, 1510–1513 (2010). Article Google Scholar
Wilhelms, D. E. in The geologic history of the Moon Vol. 1348 (US Geol. Surv. Prof. Paper, United States Government Printing Office, 1987). Book Google Scholar
Jolliff, B. L., Gillis, J. J., Haskin, L., Korotev, R. L. & Wieczorek, M. A. Major lunar crustal terranes: Surface expressions and crust-mantle origins. J. Geophys. Res.105, 4197–4216 (2000). Article Google Scholar
Taylor, G. J., Warner, R. D., Keil, K., Ma, M-S. & Schmitt, R. A. in Proceedings of the Conference on the Lunar Highlands Crust (eds Papike, J. J. & Merrill, R. B.) 339–352 (Geochim. Cosmochim. Acta: Supplement, 12, Pergamon, 1980). Google Scholar
Longhi, J. Silicate liquid immiscibility in isothermal crystallization experiments. Proc. Lunar Planet. Sci. Conf.20, 13–24 (1990). Google Scholar
McBirney, A. R. & Nakamura, Y. Immiscibility in late-stage magmas of the Skaergaard intrusion. Carnegie Inst. Wash. Yearb.73, 348–352 (1974). Google Scholar
Hawke, B. R. et al. Hansteen Alpha: A volcanic construct in the lunar highlands. J. Geophys. Res.108, E002013 (2003). Google Scholar
Chevrel, S. D., Pinet, P. C. & Head, J. W. III Gruithuisen domes region: A candidate for an extended nonmare volcanism unit on the Moon. J. Geophys. Res.104, 16515–16529 (1999). Article Google Scholar
Wilson, L. & Head, J. W. Lunar Gruithuisen and Mairan domes: Rheology and mode of emplacement. J. Geophys. Res.108, 5012 (2003). Google Scholar
Hagerty, J. J. et al. Refined thorium abundances for lunar red spots: Implications for evolved, nonmare volcanism on the Moon. J. Geophys. Res.111, E06002 (2006). Article Google Scholar
Lawrence, S. J. et al. Composition and origin of the Dewar geochemical anomaly. J. Geophys. Res.113, E02001 (2008). Google Scholar
Tran, T. et al. Morphometry of lunar volcanic domes from LROC. Lunar Planet. Sci.42, abstr. no. 2228 (2011). Google Scholar
Wieczorek, M. A. & Phillips, R. J. Potential anomalies on a sphere: Application to the thickness of the lunar crust. J. Geophys. Res.103, 1715–1724 (1998). Article Google Scholar
Wieczorek, M. A. et al. in New Views of the Moon Vol. 60 (eds Jolliff, B. L., Wieczorek, M. A., Shearer, C. K. & Neal, C. R.) 221–364 (Mineralogical Society of America, 2006). Book Google Scholar
Tran, T. et al. Generating digital terrain models using LROC NAC images. Joint Symposium of ISPRS Technical Commission IV & AutoCarto in conjunction with ASPRS/CaGIS 2010 Fall Specialty Conference, Nov. 15–19, Orlando, Florida.
Scholten, F. et al. Towards global lunar topography using LROC WAC stereo data. Lunar Planet. Sci.41, abstr. no. 2111 (2010). Google Scholar