NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Press Enter or click the Search button to begin your search.

Back to Results
High-Temperature MEMS Based Venus SeismometerSeismology is the method of choice for studying a planet’s interior and assessing current tectonic activity. With a single strategically placed seismometer, or preferably a network of seismometers, a variety of key aspects of a planet can be evaluated. The level and nature of seismicity observed provides a gauge of current geologic, especially tectonic, activity. Where tectonic activity is and is not occurring illuminates what regions and geologic features on the planet are currently active, thus, constraining global geodynamics. Larger distal earthquakes can be used to determine major compositional and structural boundaries within a planet’s interior, providing major constraints on planet formation and interior evolution. Seismometers have been deployed successfully on the Moon and Mars. Only small subsets of the scientific knowledge that can be gained from seismology can be obtained from alternative scientific approaches, such as global gravity solutions or repeat-pass interferometry.

By virtue of its similar size to Earth, Venus is likely to be highly seismically active (Fig. 1). Even at Earth-like levels of seismology, returning meaningful data would require observation over a period that is at least 2–3 orders of magnitude longer than the 1–2 h lifetime of previous Soviet landers. Clever insulation could extend the lifetime of standard electronics in a modern lander to perhaps 24 h. While active cooling of electronics for a Venusian lander is plausible, this approach would require considerable technological advancement and will likely come at a high monetary and mass cost. The high density of the Venusian atmosphere at the surface should mean that there is good coupling of seismic energy into the atmosphere, such that seismology using infrasound from a balloon platform is currently being explored, and observations of the upper levels of the atmosphere from orbit has also been proposed [3]. Besides losing all shear wave information with these two methods, calibrating and interpreting seismic information that has been distorted by, and convolved with, atmospheric phenomena will be challenging without existing seismology data collected through surface seismometers (optimally, simultaneous surface seismological observations would be made).
Document ID
20240013198
Acquisition Source
Glenn Research Center
Document Type
Poster
Authors
Tibor Kremic
(Glenn Research Center Cleveland, United States)
Robert Herrick
(University of Alaska Fairbanks Fairbanks, United States)
David Spry
(Glenn Research Center Cleveland, United States)
Michael Krasowski
(Glenn Research Center Cleveland, United States)
W Tom Pike
(Imperial College London London, United Kingdom)
Nathan Funk
(Glenn Research Center Cleveland, United States)
Date Acquired
October 17, 2024
Subject Category
Lunar and Planetary Science and Exploration
Meeting Information
Meeting: Planetary Science Technology Symposium
Location: Cleveland, OH
Country: US
Start Date: October 22, 2024
End Date: October 24, 2024
Sponsors: National Aeronautics and Space Administration
Funding Number(s)
WBS: 427922.04.10.01.04
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
NASA Technical Management
Keywords
silicon carbide
high temperature
quake
planetary
seismometer
No Preview Available