A Comodulation Analysis of Atmospheric Energy Injection Into the Ground Motion at InSight, Mars

Journal of Geophysical Research: Planets 126:4 (2021)

Authors:

C Charalambous, AE Stott, WT Pike, JB McClean, T Warren, A Spiga, D Banfield, RF Garcia, J Clinton, S Stähler, S Navarro, P Lognonné, JR Scholz, T Kawamura, M van Driel, M Böse, S Ceylan, A Khan, A Horleston, G Orhand-Mainsant, LM Sotomayor, N Murdoch, D Giardini, WB Banerdt

Abstract:

Seismic observations involve signals that can be easily masked by noise injection. For the NASA Mars lander InSight, the atmosphere is a significant noise contributor, impeding the identification of seismic events for two-thirds of a Martian day. While the noise is below that seen at even the quietest sites on Earth, the amplitude of seismic signals on Mars is also considerably lower, requiring an understanding and quantification of environmental injection at unprecedented levels. Mars’ ground and atmosphere are a continuously coupled seismic system, and although atmospheric functions are of distinct origins, the superposition of these noise contributions is poorly understood, making separation a challenging task. We present a novel method for partitioning the observed signal into seismic and environmental contributions. Atmospheric pressure and wind fluctuations are shown to exhibit temporal cross-frequency coupling across multiple bands, injecting noise that is neither random nor coherent. We investigate this through comodulation, quantifying the synchrony of the seismic motion, wind and pressure signals. By working in the time-frequency domain, we discriminate between the different origins of underlying processes and determine the site's environmental sensitivity. Our method aims to create a virtual vault at InSight's landing site on Mars, shielding the seismometers with effective postprocessing in lieu of a physical vault. This allows us to describe the environmental and seismic signals over a sequence of sols, to quantify the wind and pressure injection and estimate the seismic content of possible marsquakes with a signal-to-noise ratio that can be quantified in terms of environmental independence. Finally, we exploit the relationship between the comodulated signals to identify their sources.

Listening for the Landing: Seismic Detections of Perseverance's Arrival at Mars With InSight

EARTH AND SPACE SCIENCE 8:4 (2021) ARTN e2020EA001585

Authors:

Benjamin Fernando, Natalia Wojcicka, Marouchka Froment, Ross Maguire, Simon C Staehler, Lucie Rolland, Gareth S Collins, Ozgur Karatekin, Carene Larmat, Eleanor K Sansom, Nicholas A Teanby, Aymeric Spiga, Foivos Karakostas, Kuangdai Leng, Tarje Nissen-Meyer, Taichi Kawamura, Domenico Giardini, Philippe Lognonne, Bruce Banerdt, Ingrid J Daubar

Observations of Mars with ALMA: potential for future constraints of global circulation models

JOURNAL OF ASTRONOMICAL TELESCOPES INSTRUMENTS AND SYSTEMS 7:2 (2021) ARTN 025001

Authors:

Maxwell C Parks, Conor A Nixon, Geronimo L Villanueva, Michael D Smith, Alain SJ Khayat, Alexander E Thelen, Eric Villard, Steven B Charnley, Patrick GJ Irwin

Seasonal reappearance of HCl in the atmosphere of Mars during the Mars year 35 dusty season

Astronomy and Astrophysics EDP Sciences 647:March 2021 (2021) A161

Authors:

Kevin Olsen, A Trokhimovskiy, L Montabone, Aa Fedorova, M Luginin, F Lefèvre, Oi Korablev, F Montmessin, F Forget, E Millour, L Baggio, Juan Alday Parejo, Cf Wilson, Patrick Irwin, Da Belyaev, A Patrakeev, A Shakun

Abstract:

HCl was discovered in the atmosphere of Mars for the first time during the global dust storm in Mars year (MY) 34 (July 2018) using the Atmospheric Chemistry Suite mid-infrared channel (ACS MIR) on the ExoMars Trace Gas Orbiter. The simultaneity of variations in dust and HCl, and a correlation between water vapour and HCl, led to the proposal of a novel surface-atmosphere coupling analogous to terrestrial HCl production in the troposphere from salt aerosols. After seasonal dust activity restarted in MY 35 (August 2020), we have been monitoring HCl activity to determine whether such a coupling was validated. Here we present a new technique for analyzing the absorption features of trace gases close to the ACS MIR noise level and report that HCl mixing ratios are observed to rapidly increase in both hemispheres coincidentally with the onset of the MY 35 perihelion dust season. We present the temporal evolution of the vertical distribution of HCl (0.1–6 ppbv) and of dust activity in both hemispheres. We also report two observations of > 2 ppbv HCl below 10 km in the northern hemisphere during the aphelion period.

Habitability of Small Bodies — State of Knowledge and Motivations for Exploration in the Next Decade

Bulletin of the AAS American Astronomical Society 53:4 (2021)

Authors:

Julie Castillo-Rogez, Jason D Hofgartner, Kelsi Singer, Charles Cockell, Bryan J Holler, Marc Neveu, Maitrayee Bose, Tim Swindle, Carly Howett, Joseph Lazio, John Elliott, Jennifer Scully, Andreas Nathues