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8.2: Geology of Mercury

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    110547
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    Looks like the Moon –  

    mostly craters with some large basins 

    Some craters are very old, some are very young, rayed

    Scarps

    There is no evidence of plate tectonics on Mercury. However, the planet’s distinctive long scarps can sometimes be seen cutting across craters; this means the scarps must have formed later than the craters (Figure 9.24). These long, curved cliffs appear to have their origin in the slight compression of Mercury’s crust.  

    Large Scarp on Mercury. This long cliff structure crosses both flat lands and craters as it extends down the right hand side of this image.
    Figure 9.24 : Discovery Scarp on Mercury. This long cliff, nearly 1 kilometer high and more than 100 kilometers long, cuts across several craters. Astronomers conclude that the compression that made “wrinkles” like this in the planet's surface must have taken place after the craters were formed. (credit: modification of work by NASA/JPL/Northwestern University)

    Caloris

    Caloris basin 

     

    1550 km – impactor about 100 km 

    Multiple rings up to 3 km high 

    Caloris – latin for heat – one of two hot poles that face the sun at perihelion 

    Impact threw eject up to 1000 km and cracked the opposite side of the planet (similar to imbrium on Moon) seismic waves 

    Filled with lava (though not as much as Orientale and Imbrium) some from impact, some from large cracks 

    Plains

    Plains 

     

    Lava flows

    Lighter color than maria on Moon, different composition???? 

    Most of surface is heavily cratered 

    Intercrater plains 

    Lower crater density that cratered plains – these are younger than heavily cratered plains 

    Craters <15 km 

    Some ejecta from  large impacts 

    Smooth plains

    Younger than intercrater plains 

    Lava flows that occured after heavy bombardment 

    Mostly near Caloris – formed soon after impact

    Interior

    Mercury Interior 

     

    Mercury density 5.43 g/cm3 - much higher than the Moon – highest among planets/moons? 

    Mercury must have a metal core 

    Mercury is small and should have cooled enough to solidify core, so should have no – magnetic field 

    Radar images show tidal flexing of surface of Mercury during elliptical orbit = outer core must still be molten  

    Sulfur could lower melting point of core, and there is a decvent amount of sulfur and other volatile compounds – what are volatiles doing that close the Sun? 

    Core is very large relative to planet size – larger than predicted by regular condensation sequence

    Composition and Structure

    Mercury’s mass is one-eighteenth that of Earth, making it the smallest terrestrial planet. Mercury is the smallest planet (except for the dwarf planets), having a diameter of 4878 kilometers, less than half that of Earth. Mercury’s density is 5.4 g/cm3, much greater than the density of the Moon, indicating that the composition of those two objects differs substantially.

    Mercury’s composition is one of the most interesting things about it and makes it unique among the planets. Mercury’s high density tells us that it must be composed largely of heavier materials such as metals. The most likely models for Mercury’s interior suggest a metallic iron-nickel core amounting to 60% of the total mass, with the rest of the planet made up primarily of silicates. The core has a diameter of 3500 kilometers and extends out to within 700 kilometers of the surface. We could think of Mercury as a metal ball the size of the Moon surrounded by a rocky crust 700 kilometers thick (Figure 9.20). Unlike the Moon, Mercury does have a weak magnetic field. The existence of this field is consistent with the presence of a large metal core, and it suggests that at least part of the core must be liquid in order to generate the observed magnetic field.3

    Cutaway Illustration of Mercury. This diagram shows the huge metallic core of Mercury as a yellow sphere surrounded by the thin, rocky crust drawn in light red.
    Figure 9.20 : Mercury’s Internal Structure. The interior of Mercury is dominated by a metallic core about the same size as our Moon.

    8.2: Geology of Mercury is shared under a CC BY 4.0 license and was authored, remixed, and/or curated by LibreTexts.

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