Cosmogenic21Ne and22Ne depth profiles in chondrites
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[1] W. Hampel,et al. Cosmic-ray constancy and cosmogenic production rates in short-lived chondrites , 1981 .
[2] C. B. Moore,et al. Atmospheric ablation in meteorites: A study based on cosmic ray tracks and neon isotopes , 1980 .
[3] T. R. Venkatesan,et al. Determination of Preatmospheric Sizes of Meteorites Using Neon Isotopes and Particle Tracks , 1980 .
[4] K. Nishiizumi,et al. Cosmic ray exposure ages of chondrites, pre-irradiation and constancy of cosmic ray flux in the past , 1980 .
[5] G. Wetherill. Multiple cosmic-ray exposure ages of meteorites , 1980 .
[6] M. Imamura,et al. Depth and size dependence of 53Mn activity in chondrites , 1979 .
[7] G. Heusser,et al. Complex Irradiation History of the Kirin (H5) Chondrite , 1979 .
[8] R. Reedy,et al. The reaction Mg(n,α)Ne at 14.1 and 14.7 MeV: cross sections and implications for meteorites , 1979 .
[9] M. Potdar,et al. Natural radioactivity of Luna-24 and Apollo-16 soils. , 1979 .
[10] N. Bhandari,et al. Cosmogenic radioisotopes in the Dhajala chondrite: implications to variations of cosmic ray fluxes in the interplanetary space , 1978 .
[11] R. Finkel,et al. The cosmic ray record in the San Juan Capistrano meteorite , 1978 .
[12] T. R. Venkatesan,et al. Cosmogenic and radiogenic noble gases in the Dhajala chondrite , 1977 .
[13] D. Lal,et al. On the flux of low-energy particles in the solar system: The record in St. Séverin meteorite , 1977 .
[14] D. Heymann,et al. Cross sections for He and Ne isotopes in natural Mg, Al, and Si, He isotopes in CaF2, Ar isotopes in natural Ca, and radionuclides in natural Al, Si, Ti, Cr, and stainless steel induced by 12- to 45-MeV protons , 1976 .
[15] D. Bogard,et al. On the calculation of cosmic-ray exposure ages of stone meteorites , 1976 .
[16] L. Schultz,et al. Depth dependence of spallogenic helium, neon, and argon in the St. Severin chondrite , 1976 .
[17] N. Bhandari,et al. Solar proton fluxes during the last million years , 1976 .
[18] D. Lal,et al. Semiempirical rates of formation of cosmic-ray tracks in spherical objects exposed in space: preatmospheric and postatmospheric depth profiles , 1973 .
[19] G. Herzog. Variability of the He3 and Ne21 production rates in ordinary chondrites , 1973 .
[20] L. Nyquist,et al. He, Ne and Ar in chondritic Ni-Fe as irradiation hardness sensors. , 1973 .
[21] M. A. Reynolds,et al. Depth variation of cosmogenic noble gases in the ∼120‐kg Keyes chondrite , 1973 .
[22] S. Gupta,et al. Cosmic ray effects induced in a rock exposed on the moon or in free space: contrast in patterns for ‘tracks’ and ‘isotopes’ , 1973 .
[23] L. Schultz,et al. COMPLEX IRRADIATION HISTORY OF THE WESTON CHONDRITE. , 1972 .
[24] R. Reedy,et al. Interaction of solar and galactic cosmic-ray particles with the Moon , 1972 .
[25] E. Anders,et al. Absolute scale for radiation ages of stony meteorites , 1971 .
[26] J. Tobailem,et al. Reconstitution de la Météorite Saint-Séverin Dans L’espace , 1969 .
[27] R. Lindstrom,et al. Cosmic-Ray Produced Radionuclides and Rare Gases Near the Surface of Saint-Séverin Meteorite , 1969 .
[28] J. Zaehringer,et al. PRODUCTION CROSS-SECTIONS OF TRITIUM AND RARE GASES IN VARIOUS TARGET ELEMENTS , 1964 .
[29] T. Kirsten,et al. Edelgas- und kalium-bestimmungen an einer gröβeren zahl von steinmeteoriten , 1963 .