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The Solar Irradiation Record in Lunar Dust Grains

Published online by Cambridge University Press:  07 February 2017

J. Borg
Affiliation:
Centre de Spectrométrie de Masse du C.N.R.S.-91 ORSAY-France
B. Vassent
Affiliation:
Centre de Spectrométrie de Masse du C.N.R.S.-91 ORSAY-France

Abstract

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Comparative studies of the distribution of latent and etched tracks in lunar grains from five different size fractions of three lunar fine samples and of six lunar dust samples taken at different depths in core tube 12028 have been performed by using transmission and scanning electron microscopies. Two very different sets of etching conditions were used: a slight etching was applied for transmission microscopy but a much stronger etching was used for scanning microscopy. We observed: (1) a definite stratigraphy in the core tube, both in the latent and etched track distributions; (2) striking differences between the densities of the latent and slightly etched tracks (≥ 1010 tracks cm−2) and those of the strongly etched tracks, ranging from ⋍ 108 to 5.109 tracks cm−2; (3) a lack of correlation between the grain size and the density of strongly etched tracks observed on the external surface of grains from sample 12032; (4) no variation of the density of the tracks with the depth inside a grain. Some implications of the present results concerning the ancient low energy solar cosmic rays and the fabric of the lunar soil will be briefly discussed.

Type
Part II: Scientific Papers
Copyright
Copyright © Reidel 1972 

References

1. Borg, J., Dran, J. C., Durrieu, L., Jouret, C., and Maurette, M.: 1970, Earth Planetary Sci. Letters 8, 379.Google Scholar
2. Dran, J. C., Durrieu, L., Jouret, C., and Maurette, M.: 1970, Earth Planetary Sci. Letters 9, 391.Google Scholar
3. Borg, J., Dran, J. C., Durrieu, L., Jouret, C., and Maurette, M.: 1970, ‘High Voltage Electron Microscope Studies of Extraterrestrial Matter’, 7th Int. Colloquium Corpuscular Photography and Visual Solid Detectors, Barcelona, Paper No. 41.Google Scholar
4. Borg, J., Durrieu, L., Jouret, C., and Maurette, M.: 1971, ‘The Ultramicroscopic Irradiation Record of Micron-Sized Lunar Dust Grains’, Second Lunar Science Conference (unpublished proceedings).Google Scholar
5. Borg, J., Durrieu, L., Jouret, C., and Maurette, M.: 1971, Geochim. Cosmochim. Acta (in press).Google Scholar
6. We give only the references of the most recent contributions actually in press in Geochim. Cosmochim. Acta (October 1971): Arrhenius, G., Liang, S., MacDougall, D., Wilkening, L., Bhandari, N., Bhatt, S., Lal, D., Rajagopalan, G., Tamhane, A. S., and Venkatavaradan, V. S.: ‘The Exposure History of the Apollo 12 Regolith’.Google Scholar
Barber, D. G., Cowsik, R., Hutcheon, I. D., Price, P. B., and Rajan, R. S.: ‘Solar Flares, the Lunar Surface and Gas-Rich Meteorites’.Google Scholar
Borg, J., Durrieu, L., Jouret, C., and Maurette, M.: ‘Ultramicroscopic Features in Micron-Sized Lunar Dust Grains and Cosmophysics’.Google Scholar
Crozaz, G., Walker, R. M., and Woolum, D.: ‘Nuclear Track Studies of Dynamic Surface Processes on the Moon and the Constancy of Solar Activity’.Google Scholar
Fleischer, R. L., Hart, H. R., and Comstock, G. M.: ‘Very Heavy Solar Cosmic Rays: Energy Spectrum and Implication for Lunar Erosion’.Google Scholar
7. Frank, L. A.: 1970, J. Geophys. Res. 75, 707.CrossRefGoogle Scholar
8. Bastin, G., Borg, J., Dran, J. C., Maurette, M., and Vassent, B.: 1970, ‘Etude de l'enregistrement de traces d'interactions nucléaires dans des pyroxènes et des feldspaths d'origine lunaire, météoritique et terrestre’, Proceedings of the VIIth International Colloquium on Corpuscular Photography and Visual Solid Detectors, Barcelona, July 1970.Google Scholar
9. Dran, J. C., Duraud, J. P., and Maurette, M.: 1972, this volume, p. 309.Google Scholar
10. Comstock, G. M., Evwaraye, A. O., Fleischer, R. L., and Hart, H. R. Jr.: 1971, ‘The Particle Track Record of Lunar Soil’, General Electric Company, Report No. 71-C-073.Google Scholar
11. See for example the work of Crozaz et al. in [6].Google Scholar
12. See for example the work of Arrhenius et al. in [6].Google Scholar
13. Barber, D. J., Hutcheon, I., and Price, P. B.: 1971, Science 171, 372.Google Scholar
14. Crozaz, G., Haack, U., Hair, M., Maurette, M., Walker, R. M., and Woolum, D.: 1970, Geochim. Cosmochim. Acta Suppl. 1 3, 2051.Google Scholar
15. Armstrong, T. P. and Krimigis, S. M.: 1970, ‘A Statistical Study of Solar Protons, Alphas and Z > 3 Nuclei in 1967—68’, Johns Hopkins Univ. Preprint.Google Scholar
16. Stone, E.: 1971, ‘Low Energy Solar Cosmic Rays’, Caltech Preprint.Google Scholar
17. Borg, J., Maurette, M., and Vassent, B.: 1971, ‘Low Energy Solar Nuclear Particles: New Detection Methods and New Results’, Paper to be presented at the 12th Int. Conf. on Cosmic Rays. Hobart, Australia (August 1971).Google Scholar
18. Cadogan, P. H., Eglinton, G., Maxwell, J. R., and Pillinger, C. T.: 1971, Nature 231, 29.Google Scholar