Nonuniform cratering of the terrestrial planets

被引:133
作者
Le Feuvre, Mathieu [1 ]
Wieczorek, Mark A. [1 ]
机构
[1] Inst Phys Globe Paris, F-94107 St Maur des Fosses, France
关键词
cratering; terrestrial planets;
D O I
10.1016/j.icarus.2008.04.011
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We estimate the impact flux and cratering Fate as a function of latitude on the terrestrial planets using a model distribution of planet Crossing asteroids and comets [Bottke, W.F., Morbidelli, A., Jedicke, R., Petit, J.-M., Levison, H.F., Michel, R, Metcalfe, T.S., 2002. Icarus 156, 399-433]. After determining the planetary impact probabilities as a function of the relative encounter- velocity and encounter inclination, the impact positions are Calculated analytically, assuming the projectiles follow hyperbolic paths during the encounter phase. As the source of projectiles is not isotropic, latitudinal variations of the impact flux are predicted: the calculated ratio between the pole and equator is 1.05 for Mercury, 1.00 for Venus, 0.96 for the Earth, 0.90 for the Moon, and 1.14 for Mars over its long-term obliquity variation history. By taking into account the latitudinal dependence of the impact velocity and impact angle, and by using a crater scaling law that depends on the vertical component of the impact velocity, the latitudinal variations of the cratering rate (the number of craters with a given size formed per unit time and unit area) is in general enhanced. With respect to the equator, the polar cratering rate is about 30% larger on Mars and 10% on Mercury, whereas it is 10% less on the Earth and 20% less on the Moon. The cratering Fate is found to be uniform on Venus. The relative global impact fluxes on Mercury, Venus, the Earth and Mars are calculated with respect to the Moon, and we find values of 1.9, 1.8, 1.6, and 2.8, respectively. Our results show that the relative shape of the crater size-frequency distribution does not noticeably depend upon latitude for any of the terrestrial bodies in this study. Nevertheless, by neglecting the expected latitudinal variations of the cratering rate, systematic errors of 20-30% in the age of planetary Surfaces could exist between equatorial and polar regions when using the crater chronology method. (C) 2008 Elsevier Inc. All rights reserved.
引用
收藏
页码:291 / 306
页数:16
相关论文
共 68 条
  • [1] [Anonymous], ASTRONOM ASTROPHYS
  • [2] [Anonymous], 1982, NASA REFERENCE PUBLI
  • [3] [Anonymous], 1989, OXFORD MONOGRAPHS GE
  • [4] A 1 Gyr climate model for Mars: new orbital statistics and the importance of seasonally resolved polar processesz
    Armstrong, JC
    Leovy, CB
    Quinn, T
    [J]. ICARUS, 2004, 171 (02) : 255 - 271
  • [5] Debiased orbital and absolute magnitude distribution of the near-earth objects
    Bottke, WF
    Morbidelli, A
    Jedicke, R
    Petit, JM
    Levison, HF
    Michel, P
    Metcalfe, TS
    [J]. ICARUS, 2002, 156 (02) : 399 - 433
  • [6] Linking the collisional history of the main asteroid belt to its dynamical excitation and depletion
    Bottke, WF
    Durda, DD
    Nesvorny, D
    Jedicke, R
    Morbidelli, A
    Vokrouhlicky, D
    Levison, HE
    [J]. ICARUS, 2005, 179 (01) : 63 - 94
  • [7] Interpreting the elliptical crater populations on Mars, Venus, and the Moon
    Bottke, WF
    Love, SG
    Tytell, D
    Glotch, T
    [J]. ICARUS, 2000, 145 (01) : 108 - 121
  • [8] VELOCITY DISTRIBUTIONS AMONG COLLIDING ASTEROIDS
    BOTTKE, WF
    NOLAN, MC
    GREENBERG, R
    KOLVOORD, RA
    [J]. ICARUS, 1994, 107 (02) : 255 - 268
  • [9] ASTEROIDAL COLLISION PROBABILITIES
    BOTTKE, WF
    GREENBERG, R
    [J]. GEOPHYSICAL RESEARCH LETTERS, 1993, 20 (10) : 879 - 881
  • [10] CROFT SK, 1985, J GEOPHYS RES, V90, P828