Relaxation States of Large Impact Basins on Mercury Based on MESSENGER Data

被引:0
作者
Szczech, Claudia [1 ,2 ]
Broquet, Adrien [2 ]
Plesa, Ana-Catalina [2 ]
Fleury, Aymeric [2 ]
Walterova, Michaela [2 ,3 ]
Stark, Alexander [2 ]
Oberst, Juergen [1 ]
机构
[1] Tech Univ Berlin, Inst Planetary Geodesy, Berlin, Germany
[2] German Aerosp Ctr DLR, Inst Planetary Res, Berlin, Germany
[3] Charles Univ Prague, Fac Math & Phys, Dept Geophys, Prague, Czech Republic
关键词
Mercury; impact basins; bouguer anomaly; relaxation; THERMAL-STABILITY; EVOLUTION; ORIGIN; ANOMALIES; HISTORY; MOON; ICE;
D O I
10.1029/2024GL110748
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The crustal structure of Mercury's large impact basins provides valuable insights into the planet's geological history. For a warm crust, a post-impact basin structure will viscously relax with inward flow of crustal materials toward the basin center. This effect drastically diminishes the crustal thickness contrasts and associated Bouguer gravity contrasts between the basin center and its surroundings. Here, we analyze Bouguer contrasts of 36 basins (diameter >300 km) located in the northern hemisphere as a proxy for viscoelastic relaxation. Thermal evolution models, assuming the present 3:2 spin-orbit configuration, are used to predict crustal temperatures. Our analysis reveals that the expected correlation between zones of warm crust and low Bouguer contrast from relaxation is not observed in the available data. This suggests that crustal temperatures have changed in the past, potentially due to a change in Mercury's orbit or to a major volcanic event associated with smooth plain formation.
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页数:10
相关论文
共 66 条
[1]   The origin of the non-mare mascon gravity anomalies in lunar basins [J].
Andrews-Hanna, Jeffrey C. .
ICARUS, 2013, 222 (01) :159-168
[2]   Estimation of surface temperatures on Mercury in preparation of the MERTIS experiment onboard BepiColombo [J].
Bauch, Karin E. ;
Hiesinger, Harald ;
Greenhagen, Benjamin T. ;
Helbert, Joern .
ICARUS, 2021, 354
[3]   BepiColombo-Comprehensive exploration of Mercury: Mission overview and science goals [J].
Benkhoff, Johannes ;
van Casteren, Jan ;
Hayakawa, Hajime ;
Fujimoto, Masaki ;
Laakso, Harri ;
Novara, Mauro ;
Ferri, Paolo ;
Middleton, Helen R. ;
Ziethe, Ruth .
PLANETARY AND SPACE SCIENCE, 2010, 58 (1-2) :2-20
[4]   Mercury's Crustal Thickness Correlates With Lateral Variations in Mantle Melt Production [J].
Beuthe, Mikael ;
Charlier, Bernard ;
Namur, Olivier ;
Rivoldini, Attilio ;
Van Hoolst, Tim .
GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (09)
[5]   A volcanic inventory of the Moon [J].
Broquet, A. ;
Andrews-Hanna, J. C. .
ICARUS, 2024, 411
[6]   The moon before mare [J].
Broquet, A. ;
Andrews-Hanna, J. C. .
ICARUS, 2024, 408
[7]  
Broquet A., 2024, GRL: In Review, DOI [10.22541/essoar.171804829.91023526/v1, DOI 10.22541/ESSOAR.171804829.91023526/V1]
[8]   Long-term evolution of the spin of Mercury I. Effect of the obliquity and core-mantle friction [J].
Correia, Alexandre C. M. ;
Laskar, Jacques .
ICARUS, 2010, 205 (02) :338-355
[9]   Mercury's capture into the 3/2 spin-orbit resonance including the effect of core-mantle friction [J].
Correia, Alexandre C. M. ;
Laskar, Jacques .
ICARUS, 2009, 201 (01) :1-11
[10]   The distribution and origin of smooth plains on Mercury [J].
Denevi, Brett W. ;
Ernst, Carolyn M. ;
Meyer, Heather M. ;
Robinson, Mark S. ;
Murchie, Scott L. ;
Whitten, Jennifer L. ;
Head, James W. ;
Watters, Thomas R. ;
Solomon, Sean C. ;
Ostrach, Lillian R. ;
Chapman, Clark R. ;
Byrne, Paul K. ;
Klimczak, Christian ;
Peplowski, Patrick N. .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2013, 118 (05) :891-907