Javascript must be enabled to continue!
Mesoscale modeling of the Arsia Mons Elongated Cloud (AMEC) on Mars
View through CrossRef
<p>A recent work (Hern&#225;ndez-Bernal et al., 2021) described the Arsia Mons Elongated Cloud (AMEC), an impressive orographically generated cloud that appears next to the Arsia Mons volcano on Mars during the early morning on a daily basis in southern spring and summer. The most visually striking characteristic of this cloud is its extremely elongated shape.</p><p>This spectacular cloud is formed by underlying dynamical and microphysical processes that remain to be elucidated. To that end, we run the LMD (Laboratoire de M&#233;t&#233;orologie Dynamique) MMM (Mars Mesoscale Model; Spiga and Forget, 2009) for Solar Longitude 270&#186;, with a grid resolution of 10km. The model shows that the interaction of fast transient easterly winds with the summit of Arsia Mons results in strong ascending winds on the western slope of the volcano, seasonally and diurnally coincident with the occurrence of the AMEC according to observations. These ascending winds propagate vertically and result in a temperature drop which takes values of down to -30K in the hygropause (around 45 km over the areoid). This results in extreme relative humidity values and condensation, spatially coincident with what Hern&#225;ndez-Bernal et al. (2021) called the head of the AMEC. We expect advection by easterly winds to produce the particular elongated shape of the AMEC, however the advection of condensed particles is not clearly reproduced by the model.</p><p>This AMEC study demonstrates that coupling the analysis of mesoscale modeling with imagery monitoring on elongated clouds help to better understand the involved processes to form the cloud. We aim to search for similar mechanisms in other visually resemblant clouds, like those reported by Clancy et al. (2006; 2021), and others observed by the Visual Monitoring Camera onboard Mars Express, among other imagers. In the meantime, the AMEC is expected to appear again in early June 2022 and different instruments are already planning observations.</p><p><strong>References:</strong></p><ul><li>Hern&#225;ndez&#8208;Bernal, Jorge, et al. "An extremely elongated cloud over Arsia Mons volcano on Mars: I. Life cycle." <em>Journal of Geophysical Research: Planets</em> 126.3 (2021): e2020JE006517.</li>
<li>Spiga, Aymeric, and Fran&#231;ois Forget. "A new model to simulate the Martian mesoscale and microscale atmospheric circulation: Validation and first results." <em>Journal of Geophysical Research: Planets</em> 114.E2 (2009).</li>
<li>
<div>Clancy, R. Todd, et al. "Valles Marineris cloud trails." <em>Journal of Geophysical Research: Planets</em> 114.E11 (2009).</div>
</li>
<li>
<div>Clancy, R. Todd, et al. "Mars perihelion cloud trails as revealed by MARCI: Mesoscale topographically focused updrafts and gravity wave forcing of high altitude clouds." <em>Icarus</em> 362 (2021): 114411.</div>
</li>
</ul><p>&#160;</p>
Title: Mesoscale modeling of the Arsia Mons Elongated Cloud (AMEC) on Mars
Description:
<p>A recent work (Hern&#225;ndez-Bernal et al.
, 2021) described the Arsia Mons Elongated Cloud (AMEC), an impressive orographically generated cloud that appears next to the Arsia Mons volcano on Mars during the early morning on a daily basis in southern spring and summer.
The most visually striking characteristic of this cloud is its extremely elongated shape.
</p><p>This spectacular cloud is formed by underlying dynamical and microphysical processes that remain to be elucidated.
To that end, we run the LMD (Laboratoire de M&#233;t&#233;orologie Dynamique) MMM (Mars Mesoscale Model; Spiga and Forget, 2009) for Solar Longitude 270&#186;, with a grid resolution of 10km.
The model shows that the interaction of fast transient easterly winds with the summit of Arsia Mons results in strong ascending winds on the western slope of the volcano, seasonally and diurnally coincident with the occurrence of the AMEC according to observations.
These ascending winds propagate vertically and result in a temperature drop which takes values of down to -30K in the hygropause (around 45 km over the areoid).
This results in extreme relative humidity values and condensation, spatially coincident with what Hern&#225;ndez-Bernal et al.
(2021) called the head of the AMEC.
We expect advection by easterly winds to produce the particular elongated shape of the AMEC, however the advection of condensed particles is not clearly reproduced by the model.
</p><p>This AMEC study demonstrates that coupling the analysis of mesoscale modeling with imagery monitoring on elongated clouds help to better understand the involved processes to form the cloud.
We aim to search for similar mechanisms in other visually resemblant clouds, like those reported by Clancy et al.
(2006; 2021), and others observed by the Visual Monitoring Camera onboard Mars Express, among other imagers.
In the meantime, the AMEC is expected to appear again in early June 2022 and different instruments are already planning observations.
</p><p><strong>References:</strong></p><ul><li>Hern&#225;ndez&#8208;Bernal, Jorge, et al.
"An extremely elongated cloud over Arsia Mons volcano on Mars: I.
Life cycle.
" <em>Journal of Geophysical Research: Planets</em> 126.
3 (2021): e2020JE006517.
</li>
<li>Spiga, Aymeric, and Fran&#231;ois Forget.
"A new model to simulate the Martian mesoscale and microscale atmospheric circulation: Validation and first results.
" <em>Journal of Geophysical Research: Planets</em> 114.
E2 (2009).
</li>
<li>
<div>Clancy, R.
Todd, et al.
"Valles Marineris cloud trails.
" <em>Journal of Geophysical Research: Planets</em> 114.
E11 (2009).
</div>
</li>
<li>
<div>Clancy, R.
Todd, et al.
"Mars perihelion cloud trails as revealed by MARCI: Mesoscale topographically focused updrafts and gravity wave forcing of high altitude clouds.
" <em>Icarus</em> 362 (2021): 114411.
</div>
</li>
</ul><p>&#160;</p>.
Related Results
Homogeneous nucleation on Mars. An unexpected process that deciphers mysterious elongated clouds
Homogeneous nucleation on Mars. An unexpected process that deciphers mysterious elongated clouds
Homogeneous nucleation has not been considered a possibility in cloud formation processes in the atmosphere of Mars (e.g. Clancy et al., 2017), since Määttänen et al. (2005) made a...
Exploring the formation of the Arsia Mons Elongated Cloud on Mars
Exploring the formation of the Arsia Mons Elongated Cloud on Mars
In a recently published paper, we reported the existence and properties of the Arsia Mons Elongated Cloud (AMEC; Hernández-Bernal et al., 2021). We are now exploring model...
MARS-seq2.0: an experimental and analytical pipeline for indexed sorting combined with single-cell RNA sequencing v1
MARS-seq2.0: an experimental and analytical pipeline for indexed sorting combined with single-cell RNA sequencing v1
Human tissues comprise trillions of cells that populate a complex space of molecular phenotypes and functions and that vary in abundance by 4–9 orders of magnitude. Relying solely ...
Late Amazonian lateral lava flows coeval with caldera eruptions at Arsia Mons
Late Amazonian lateral lava flows coeval with caldera eruptions at Arsia Mons
Introduction: The Tharsis dome is the main volcanic province on Mars. Being the locus of volcanism since at least the lower Hesperian, the age of emplacement and succession of its ...
Exploring de formation of the Arsia Mons Elongated Cloud on Mars
Exploring de formation of the Arsia Mons Elongated Cloud on Mars
<p>In a recent work (Hern&#225;ndez-Bernal et al. 2020) we reported the existence and properties of the AMEC (Arsia Mons Elongated Cloud). This cloud appears ...
MGS‐TES thermal inertia study of the Arsia Mons Caldera
MGS‐TES thermal inertia study of the Arsia Mons Caldera
Temperatures of the Arsia Mons caldera floor and two nearby control areas were obtained by the Mars Global Surveyor (MGS) Thermal Emission Spectrometer (TES). These observations re...
Concept of Operations for Future Mars Helicopters: Accessing Distant Targets with a Pathfinder-Style EDL System
Concept of Operations for Future Mars Helicopters: Accessing Distant Targets with a Pathfinder-Style EDL System
. IntroductionThe highly successful campaign of the Ingenuity Mars helicopter [1] proved the feasibility of powered, controlled flight on Mars and has motivated the development of ...
Spontaneous near-inertial wave generation from mesoscale eddy: Energy transformation
Spontaneous near-inertial wave generation from mesoscale eddy: Energy transformation
The energy transformation between inertial oscillations (IOs), near-inertial waves (NIWs), and mesoscale eddies during spontaneous NIW generation is analyzed by the kinetic energy ...

