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The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities
The NASA InSight Lander on Mars includes the Heat Flow and Physical Properties Package HP(3) to measure the surface heat flow of the planet. The package uses temperature sensors that would have been brought to the target depth of 3–5 m by a small penetrator, nicknamed the mole. The mole requiring fr...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Springer Netherlands
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9734249/ https://www.ncbi.nlm.nih.gov/pubmed/36514324 http://dx.doi.org/10.1007/s11214-022-00941-z |
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author | Spohn, T. Hudson, T. L. Marteau, E. Golombek, M. Grott, M. Wippermann, T. Ali, K. S. Schmelzbach, C. Kedar, S. Hurst, K. Trebi-Ollennu, A. Ansan, V. Garvin, J. Knollenberg, J. Müller, N. Piqueux, S. Lichtenheldt, R. Krause, C. Fantinati, C. Brinkman, N. Sollberger, D. Delage, P. Vrettos, C. Reershemius, S. Wisniewski, L. Grygorczuk, J. Robertsson, J. Edme, P. Andersson, F. Krömer, O. Lognonné, P. Giardini, D. Smrekar, S. E. Banerdt, W. B. |
author_facet | Spohn, T. Hudson, T. L. Marteau, E. Golombek, M. Grott, M. Wippermann, T. Ali, K. S. Schmelzbach, C. Kedar, S. Hurst, K. Trebi-Ollennu, A. Ansan, V. Garvin, J. Knollenberg, J. Müller, N. Piqueux, S. Lichtenheldt, R. Krause, C. Fantinati, C. Brinkman, N. Sollberger, D. Delage, P. Vrettos, C. Reershemius, S. Wisniewski, L. Grygorczuk, J. Robertsson, J. Edme, P. Andersson, F. Krömer, O. Lognonné, P. Giardini, D. Smrekar, S. E. Banerdt, W. B. |
author_sort | Spohn, T. |
collection | PubMed |
description | The NASA InSight Lander on Mars includes the Heat Flow and Physical Properties Package HP(3) to measure the surface heat flow of the planet. The package uses temperature sensors that would have been brought to the target depth of 3–5 m by a small penetrator, nicknamed the mole. The mole requiring friction on its hull to balance remaining recoil from its hammer mechanism did not penetrate to the targeted depth. Instead, by precessing about a point midway along its hull, it carved a 7 cm deep and 5–6 cm wide pit and reached a depth of initially 31 cm. The root cause of the failure – as was determined through an extensive, almost two years long campaign – was a lack of friction in an unexpectedly thick cohesive duricrust. During the campaign – described in detail in this paper – the mole penetrated further aided by friction applied using the scoop at the end of the robotic Instrument Deployment Arm and by direct support by the latter. The mole tip finally reached a depth of about 37 cm, bringing the mole back-end 1–2 cm below the surface. It reversed its downward motion twice during attempts to provide friction through pressure on the regolith instead of directly with the scoop to the mole hull. The penetration record of the mole was used to infer mechanical soil parameters such as the penetration resistance of the duricrust of 0.3–0.7 MPa and a penetration resistance of a deeper layer ([Formula: see text] depth) of [Formula: see text] . Using the mole’s thermal sensors, thermal conductivity and diffusivity were measured. Applying cone penetration theory, the resistance of the duricrust was used to estimate a cohesion of the latter of 2–15 kPa depending on the internal friction angle of the duricrust. Pushing the scoop with its blade into the surface and chopping off a piece of duricrust provided another estimate of the cohesion of 5.8 kPa. The hammerings of the mole were recorded by the seismometer SEIS and the signals were used to derive P-wave and S-wave velocities representative of the topmost tens of cm of the regolith. Together with the density provided by a thermal conductivity and diffusivity measurement using the mole’s thermal sensors, the elastic moduli were calculated from the seismic velocities. Using empirical correlations from terrestrial soil studies between the shear modulus and cohesion, the previous cohesion estimates were found to be consistent with the elastic moduli. The combined data were used to derive a model of the regolith that has an about 20 cm thick duricrust underneath a 1 cm thick unconsolidated layer of sand mixed with dust and above another 10 cm of unconsolidated sand. Underneath the latter, a layer more resistant to penetration and possibly containing debris from a small impact crater is inferred. The thermal conductivity increases from 14 mW/m K to 34 mW/m K through the 1 cm sand/dust layer, keeps the latter value in the duricrust and the sand layer underneath and then increases to 64 mW/m K in the sand/gravel layer below. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s11214-022-00941-z. |
format | Online Article Text |
id | pubmed-9734249 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Springer Netherlands |
record_format | MEDLINE/PubMed |
spelling | pubmed-97342492022-12-11 The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities Spohn, T. Hudson, T. L. Marteau, E. Golombek, M. Grott, M. Wippermann, T. Ali, K. S. Schmelzbach, C. Kedar, S. Hurst, K. Trebi-Ollennu, A. Ansan, V. Garvin, J. Knollenberg, J. Müller, N. Piqueux, S. Lichtenheldt, R. Krause, C. Fantinati, C. Brinkman, N. Sollberger, D. Delage, P. Vrettos, C. Reershemius, S. Wisniewski, L. Grygorczuk, J. Robertsson, J. Edme, P. Andersson, F. Krömer, O. Lognonné, P. Giardini, D. Smrekar, S. E. Banerdt, W. B. Space Sci Rev Special Communication The NASA InSight Lander on Mars includes the Heat Flow and Physical Properties Package HP(3) to measure the surface heat flow of the planet. The package uses temperature sensors that would have been brought to the target depth of 3–5 m by a small penetrator, nicknamed the mole. The mole requiring friction on its hull to balance remaining recoil from its hammer mechanism did not penetrate to the targeted depth. Instead, by precessing about a point midway along its hull, it carved a 7 cm deep and 5–6 cm wide pit and reached a depth of initially 31 cm. The root cause of the failure – as was determined through an extensive, almost two years long campaign – was a lack of friction in an unexpectedly thick cohesive duricrust. During the campaign – described in detail in this paper – the mole penetrated further aided by friction applied using the scoop at the end of the robotic Instrument Deployment Arm and by direct support by the latter. The mole tip finally reached a depth of about 37 cm, bringing the mole back-end 1–2 cm below the surface. It reversed its downward motion twice during attempts to provide friction through pressure on the regolith instead of directly with the scoop to the mole hull. The penetration record of the mole was used to infer mechanical soil parameters such as the penetration resistance of the duricrust of 0.3–0.7 MPa and a penetration resistance of a deeper layer ([Formula: see text] depth) of [Formula: see text] . Using the mole’s thermal sensors, thermal conductivity and diffusivity were measured. Applying cone penetration theory, the resistance of the duricrust was used to estimate a cohesion of the latter of 2–15 kPa depending on the internal friction angle of the duricrust. Pushing the scoop with its blade into the surface and chopping off a piece of duricrust provided another estimate of the cohesion of 5.8 kPa. The hammerings of the mole were recorded by the seismometer SEIS and the signals were used to derive P-wave and S-wave velocities representative of the topmost tens of cm of the regolith. Together with the density provided by a thermal conductivity and diffusivity measurement using the mole’s thermal sensors, the elastic moduli were calculated from the seismic velocities. Using empirical correlations from terrestrial soil studies between the shear modulus and cohesion, the previous cohesion estimates were found to be consistent with the elastic moduli. The combined data were used to derive a model of the regolith that has an about 20 cm thick duricrust underneath a 1 cm thick unconsolidated layer of sand mixed with dust and above another 10 cm of unconsolidated sand. Underneath the latter, a layer more resistant to penetration and possibly containing debris from a small impact crater is inferred. The thermal conductivity increases from 14 mW/m K to 34 mW/m K through the 1 cm sand/dust layer, keeps the latter value in the duricrust and the sand layer underneath and then increases to 64 mW/m K in the sand/gravel layer below. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s11214-022-00941-z. Springer Netherlands 2022-12-09 2022 /pmc/articles/PMC9734249/ /pubmed/36514324 http://dx.doi.org/10.1007/s11214-022-00941-z Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) . |
spellingShingle | Special Communication Spohn, T. Hudson, T. L. Marteau, E. Golombek, M. Grott, M. Wippermann, T. Ali, K. S. Schmelzbach, C. Kedar, S. Hurst, K. Trebi-Ollennu, A. Ansan, V. Garvin, J. Knollenberg, J. Müller, N. Piqueux, S. Lichtenheldt, R. Krause, C. Fantinati, C. Brinkman, N. Sollberger, D. Delage, P. Vrettos, C. Reershemius, S. Wisniewski, L. Grygorczuk, J. Robertsson, J. Edme, P. Andersson, F. Krömer, O. Lognonné, P. Giardini, D. Smrekar, S. E. Banerdt, W. B. The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities |
title | The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities |
title_full | The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities |
title_fullStr | The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities |
title_full_unstemmed | The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities |
title_short | The InSight HP(3) Penetrator (Mole) on Mars: Soil Properties Derived from the Penetration Attempts and Related Activities |
title_sort | insight hp(3) penetrator (mole) on mars: soil properties derived from the penetration attempts and related activities |
topic | Special Communication |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9734249/ https://www.ncbi.nlm.nih.gov/pubmed/36514324 http://dx.doi.org/10.1007/s11214-022-00941-z |
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