InSight goes silent as Martian dust and cold ends mission by Staff Writers Berlin, Germany (SPX) Dec 27, 2022
The InSight Mars mission is history. On 20 December 2022, NASA declared the mission over. The two attempts from Mission Control Centre at NASA's Jet Propulsion Laboratory (JPL) in Southern California to reach the lander via relay satellites in Mars orbit have been unsuccessful. This almost certainly means that InSight's solar-powered batteries are no longer supplying enough power, a condition engineers call 'dead bus' mode. The German Aerospace Center contributed measuring instruments and a science team to the lander mission. InSight was the first purely geophysical mission to explore Mars. The last radio contact with Earth took place on 15 December 2022. InSight uses solar energy to recharge the batteries, which is currently no longer sufficiently possible due to the dust accumulation on the solar panels. If, however, wind cleared the panels and a sufficient charge level is reached again, InSight could power up and attempt to communicate. Further contact would then be possible and even a resumption of operation. However, the increasing dust build-up on the solar panels makes this unlikely. "It is always regrettable when a planetary mission for which you have prepared for more than a decade and then operated for years finally fails to deliver further measurement data," says Heike Rauer, Director of the DLR Institute of Planetary Research in Berlin, looking back on the InSight mission. "On the other hand, the positives absolutely outweigh the negatives: the scientific fruits of preparation and planning have been successfully harvested. "We have learned a lot about the internal structure of Mars and are also using this to understand the other Earth-like bodies in the Solar System. Our planetary geophysicists have drawn many important lessons from the measurements." The end of the mission loomed over the course of the last few months and came as no surprise. After more than four years, the mission duration had exceeded expectations by a factor of two. The Interior Exploration Using Seismic Investigations, Geodesy and Heat Transport (InSight) mission was NASA's eighth mission to land on Mars since 1976 and the first to be devoted almost exclusively to geophysical investigations. The solar panels were designed in such a way that they would provide enough energy for the originally planned lifetime of one Mars year (two Earth years), despite dust accumulation. In the end, they lasted long enough to extend the mission duration by a second Mars year.
Almost everything succeeds as planned The primary instruments for acquiring these measurements were the Heat Flow and Physical Properties Package (HP3) provided by DLR and the Seismic Experiment for Interior Structures (SEIS) seismometer developed by the French space agency CNES. It is the NASA Mars mission with by far the most significant European contribution to date. NASA Science Director Thomas Zurbuchen hailed the mission as a great success.
Robotic arm helps mole dig below the surface Originally, the Mole was supposed to penetrate to a depth of five metres and drag a tether with temperature sensors behind it. "This would have allowed us to measure how the temperature rises with depth. With the help of the thermal conductivity measured during the Mole's descent, we could have directly determined the heat flow from the interior of Mars," explains Tilman Spohn. "This would have helped us to classify the evolution of Mars from a hot origin to its current, almost entirely cold state." The Mars Mole, designed as a self-hammering probe capable of penetrating through the familiar loose, sandy soil of other missions, was unable to find a foothold in the unexpectedly hard soil around InSight's surroundings. The instrument was eventually able to bury its 40-centimetre probe just below the surface, collecting some valuable data on the mechanical and thermal properties of the martian soil despite its setback. "These data will be very helpful for future exploration of Mars by humans or robots trying to dig into the Martian subsurface," Tilman Spohn continues. The fact that the Mole was finally able to burrow in is thanks to a team effort by engineers from JPL and DLR. They used the InSight lander's robotic arm in a creative way to give the Mole additional support. The arm and its small scoop were primarily designed to place scientific instruments on the surface of Mars. Eventually, though, they even helped clear some of the dust from InSight's solar panels as the power waned.
Seismometer provides 'ground-breaking' data In these cases, even the location of the impacts could be reconstructed from the data and, in several cases, confirmed using images acquired by the Mars Reconnaissance Orbiter. The two largest related craters measure more than 100 metres in diameter. Caused by tectonic activity, these marsquakes provide important clues about the structure of the Red Planet. The reflection of these seismic waves at the boundaries between the solid rock mantle and the liquid core finally allowed the size of the martian core to be determined precisely. Its diameter is between 3600 and 3700 kilometres, which is at the upper end of the size estimated before the mission. For comparison, the total diameter of Mars is just under 6800 kilometres. Seismic waves passing through the core also provide clues to its internal structure and composition. The complementary auxiliary instruments on board also provided important data, such as the DLR RAD radiometer, which is part of HP3. RAD recorded the daily change in the surface temperature by measuring infrared radiation. This made it possible to collect important data for characterising the thermal properties of the martian soil.
Patience required - quakes limited to the Martian summer "When things did get going much later, it became clear that the noise of the wind in the region of the InSight landing area, where it was currently winter, masked all signals of marsquakes. On top of this, we were later able to prove that the frequency of these quakes is actually lower in winter than in summer." Later, on 'warm' spring and summer evenings in the Elysium Planum region in which InSight landed, there was almost no wind. This made for ideal measurement conditions, primarily between sunset and midnight. Ultimately, more than 1300 marsquakes could be registered. Many of them originated in the Cerberus Fossae region, 1500 kilometres away from InSight. This corresponds roughly to the distance between Cologne and Mount Etna in Sicily. In the Cerberus Fossae region, the last volcanic activity took place less than 200,000 years ago, and the observed quakes exhibit characteristics similar to those of volcanic regions of the Earth, such as the Eifel region in Germany. "However, this does not mean that a new volcanic eruption is to be expected here in the near future," Knapmeyer adds, assessing the measurements.
At last, numerical values for the thickness of the Martian crust However, by registering surface waves from some of the stronger marsquakes, it also became possible to determine the crustal thickness along the path of these waves. "This means that numbers can now finally be attached to the 'contour lines' of the crust thickness," says Knapmeyer, highlighting another important result of the mission. The average thickness of the crust is between 24 and 72 kilometres, which is somewhat thinner than earlier, more indirect investigations had shown.
Diverse missions on Mars
Perseverance deposits first sample on Mars surface Pasadena CA (JPL) Dec 22, 2022 A titanium tube containing a rock sample is resting on the Red Planet's surface after being placed there on Dec. 21 by NASA's Perseverance Mars rover. Over the next two months, the rover will deposit a total of 10 tubes at the location, called "Three Forks," building humanity's first sample depot on another planet. The depot marks a historic early step in the Mars Sample Return campaign. Perseverance has been taking duplicate samples from rock targets the mission selects. The rover currently has t ... read more
|
|
The content herein, unless otherwise known to be public domain, are Copyright 1995-2024 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. All articles labeled "by Staff Writers" include reports supplied to Space Media Network by industry news wires, PR agencies, corporate press officers and the like. Such articles are individually curated and edited by Space Media Network staff on the basis of the report's information value to our industry and professional readership. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. General Data Protection Regulation (GDPR) Statement Our advertisers use various cookies and the like to deliver the best ad banner available at one time. All network advertising suppliers have GDPR policies (Legitimate Interest) that conform with EU regulations for data collection. By using our websites you consent to cookie based advertising. If you do not agree with this then you must stop using the websites from May 25, 2018. Privacy Statement. Additional information can be found here at About Us. |