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Transverse aeolian ridges in the landing area of the Tianwen-1 Zhurong rover on Utopia Planitia, Mars

Earth and Planetary Science Letters, 2022
Kaichang Di   +2 more
exaly   +2 more sources

Transverse Aeolian Ridges at the ExoMars Rover landing sites

2022
<p><strong>Introduction</strong></p> <p>Apart from the Earth, no planetary body is mapped more extensively and to such fine resolution as Mars. The increasing volume of remote sensing data means we are better equipped than ever to answer the fundamental questions about the history of
Eleni Bohacek   +4 more
openaire   +1 more source

The morphology of transverse aeolian ridges on Mars

Aeolian Research, 2017
Abstract A preliminary survey of publicly released high resolution digital terrain models (DTMs) produced by the High Resolution Imaging Science Experiment (HiRISE) camera on Mars Reconnaissance Orbiter identified transverse aeolian ridges (TARs) in 154 DTMs in latitudes from 50°S to 40°N.
Paul E. Geissler, Justin T. Wilgus
openaire   +1 more source

AiTARs-Net: A novel network for detecting arbitrary-oriented transverse aeolian ridges from Tianwen-1 HiRIC images

ISPRS Journal of Photogrammetry and Remote Sensing
Dong Chen, Zhizhong Kang, Qingyu Meng
exaly   +2 more sources

Interaction bounding surfaces exposed in migrating transverse aeolian ridges on Mars

Geology, 2021
AbstractWind-blown sand self-organizes into bedforms that have now been identified on six different planetary bodies. These bedforms, including ripples and dunes, exhibit patterns that are diagnostic of surface-atmosphere interactions and can be used to interpret winds and sediment supply from satellite images of planetary surfaces.
openaire   +1 more source

Latitude‐dependent nature and physical characteristics of transverse aeolian ridges on Mars

Journal of Geophysical Research: Planets, 2004
Narrow‐angle images from the Mars Orbiter Camera (MOC) have revealed the common occurrence of small‐scale (<100 m wavelength) bright transverse aeolian ridges (TARs) on the surface of Mars. MOC images were used to assess the broad distribution of TARs from 90°N to 90°S between 180°E and ∼240°E to investigate their relationship to latitude, elevation,
Sharon A. Wilson, James R. Zimbelman
openaire   +1 more source

Dingo Gap: Curiosity Went Up a Small Transverse Aeolian Ridge and Came Down a Megaripple

Journal of Geophysical Research: Planets, 2020
AbstractRover data can provide important constraints on the possible origin of wind‐related martian features that have been termed “Transverse Aeolian Ridges” (TARs). The large aeolian bedform traversed by Curiosity at Dingo Gap has a planform and albedo similar to members of nearby TAR fields, so that the crossing at Dingo Gap revealed the surface ...
James R. Zimbelman, Marzieh Foroutan
openaire   +1 more source

A progression of induration in Medusae Fossae Formation transverse aeolian ridges: evidence for ancient aeolian bedforms and extensive reworking

Earth Surface Processes and Landforms, 2011
ABSTRACTA progression of induration, erosion, and redeposition of transverse and networked transverse aeolian ridges (TARs) has been documented in the Medusae Fossae Formation (MFF), Mars. Cratered and eroded aeolian bedforms are rarely observed on Mars, indicating that those found in the MFF have been inactive for much longer than those found ...
Laura Kerber, James W. Head
openaire   +1 more source

Analysis of transverse aeolian ridge profiles derived from HiRISE images of Mars

Earth Surface Processes and Landforms, 2012
ABSTRACTPhotoclinometry was used to analyze selected High Resolution Imaging Science Experiment (HiRISE) images of Transverse Aeolian Ridges (TARs) on Mars. Sixty Mars profiles have been assessed and a summary of their morphologic characteristics compiled.
Shockey, Kelly M., Zimbelman, James R.
openaire   +2 more sources

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