James G. Acker May-21-93 05:54AM Venus Resurfacing II Organization: NASA Goddard Space FLight Ceneter -- InterNetNews site From: jgacker@news.gsfc.nasa.gov (James G. Acker) Message-ID: <1timu9$iie@skates.gsfc.nasa.gov> Newsgroups: talk.origins "An Assessment of Resurfacing Models for Venus" Walter S. Kiefer (Lunar and Planetary Institute, Houston, TX 77058; phone number and email address on request -- JGA) Interpretations of the Venus cratering record have focused on two endmember models: (1) catastrophic resurfacing of the entire planet about 500 My ago, with little subsequent resurfacing, or (2) continuous resurfacing at a constant rate of small, randomly located patches over the last billion years. Both the Earth's resurfacing history and numerical modeling provide a context for assessing these alternatives. Although there is considerable evidence for variability in the Earth's resurfacing rate, there is apparently no evidence for the near-absence of resurfacing for 500 m.y. periods. Several approaches for producing catastrophic resurfacing have been proposed, including (1) a recent transition from time-dependent to steady-state mantle convection; (2) the effects of chemical buoyancy from a depleted mantle layer; and (3) a recent transition from a layered to whole mantle convection. However, steady-state convection does not preclude continual resurfacing. In this case, the resurfacing will have a non-random spatial distribution, in violation of observations. Chemical buoyancy can cause episodic variations in volcanism with a 500 m.y. period, but the resurfacing rate remains high for most of this period, contrary to hypothesis 1. A transition from layered to whole mantle convection could produce an intense resurfacing episode, but provides no mechanism for preventing later resurfacing, again contrary to hypothesis 1. These considerations favor a continuous resurfacing model as more likely for Venus. Existing Monte Carlo models of continuous resurfacing presume randomly distributed resurfacing patches of a fixed size and constraint the allowed patch size. More realistic models would allow for a spectrum of resurfacing sizes and for some temporal and spatial coherence in the resurfacing pattern. In such a model, the observed randomness of the crater distribution probably reflects chaotic reorganization of the mantle's convective platform. The observed crater distribution may place an upper-bound on the time-scale for this reorganization. Abstract for the AGU Spring Meeting, May 24-28, 1993, Baltimore, MD. Jim Acker