Showing posts with label Europa. Show all posts
Showing posts with label Europa. Show all posts

Saturday, April 17, 2010

Dual Drill Designed For Europa Ice Mission



A mole-like thermal drill designed to cut through the icy surface of Jupiter's moon Europa could be on a future mission slated for launch in 2020. Such a device would represent the best of both worlds by using heat to melt through the ice and rotating drill blades to clear away rocky material. The drill would be nestled inside a larger penetrator probe that would burrow itself into Europa's icy shell.

"Penetrators are the most feasible, cheapest and safest option for a landing on Europa today, and the knowledge to build those is there," said Peter Weiss, a post-doc now at the National Center for Scientific Research (CNRS) in France. He and his colleagues at the Hong Kong Polytechnic University worked with other researchers at the Institut fuer Weltraumforschung in Graz, Austria on a study detailed in the January issue of the journal Advances in Space Research.

NASA and the European Space Agency (ESA) have teamed up on the Europa Jupiter System Mission (EJSM), with both Russia and Japan also showing interest. The mission could be composed of several orbiters peering down at Europa, but Russia has its eyes on a possible lander - and the Russians have already built penetrators for past missions, such as the failed Mars 96 mission.

"A thermal drill could be the 'nose' of a penetrator, to taste the ice of Europa," Weiss explained.

Drilling gets hot
Any landing probe that wants to search for signs of life on Europa must go deeper than two meters into the surface ice, because heavy radiation and particle bombardment would have erased any biological traces in the top layer.

Having a robotic lander make a soft landing before preparing to drill would be a more complicated and expensive task compared to a penetrator, Weiss said. A thermal drill could simply deploy from the side of the penetrator after impact, and begin drilling through the pristine ice below to sample material at depths of up to 10 meters.

Estimates for the thickness of Europa's ice shell vary between a few kilometers and tens of kilometers, but Weiss says it doesn't make sense to go much deeper than 10 meters because of the current state of technology. For instance, the drill would be tethered to the penetrator by a communication cable, and the length of cable would be limited based on how much the probe could carry.

This cable would allow data collected from the drill to snake back to the main scientific instruments in the penetrator, and then the data would get beamed up to an orbiter.

Lab experiments showed how a thermal drill design fared much better in dealing with the combined challenge of ice and regolith, as opposed to a melting probe such as the Cryobot that relies upon heat alone.

Inner pressure inside the hole is expected to increase and allow for liquid water once the initial borehole has refrozen. That would allow the drill to sample water by using a micro-pump, but the refreezing hole would also protect the pristine ice against possible contamination from the outside.

Forget the submersibles
Some concepts of a submersible exploring the supposed ocean depths of Europa have appeared in past years, and NASA has tested robotic subs in the frigid lakes of Antarctica.

But Weiss, who draws upon several years working with sub-sea robotics, said that current technology cannot deploy a submersible on Europa. Just packing in all the cabling that would connect a submersible to the main landing craft would represent a problem. While the ice shell is thought to be at least several kilometers thick, no one knows exactly how far down the ocean may be - there could be a thick layer of slush between the ice shell and ocean. Another question is the distance down to the ocean floor.

"The ocean beneath - if existent - could be 100 kilometers deep," said Weiss.

Robotic subs on Earth have reached ocean depths of 11 km (6.8 miles), but weighed several tons and required huge surface support ships. That doesn't work for a mission to Europa that needs to travel light.

"Institutes that pretend to develop sub-sea robots 'to explore the bottom of Europa's ocean' should be financed by Hollywood, not NASA," Weiss said.

Waiting for a call
The researchers have so far tested their drill in both pressure and vacuum environments, but still want to boost its efficiency. A next logical step might test how well a thermal drill survives impact aboard a penetrator.

Whether or not a thermal drill or any sort of landing probe gets a shot at Europa's icy surface remains up in the air. But even as the different space agencies figure out their roles and budgets, Weiss says there's a sense of urgency to find out what's going on with Europa.

A mission that consisted of only orbiters might find more interesting evidence that supports the possibility of life on the Jovian moon, but would not have the ability to go down and find proof. And a follow-up mission might not even launch until the 2040s - good reason for the current generation of scientists to want some surface explorer element.

"Otherwise, we won't have any confirmation on astrobiology on Europa - or maybe even in the solar system - during our lifetime," Weiss said.

Friday, April 9, 2010

ENDURANCE May Explore Europa's Oceans



Image comment: ENDURANCE would need to be scaled down for a prospective mission to the Jovian moon Europa
Image credits: Stone Aerospace

Europa is perhaps the most famous moon of Jupiter, and for good reason. Data sent back years ago by the Galileo spacecraft hinted at the fact that the small world might in fact be covered in a liquid ocean, although it could be buried as deep as 100 kilometers or more under a thick ice sheet. Still, the prospect of liquid water on a distant world is much too appealing for scientists to let it slide, and so they have been looking into devising methods of studying it for a long time, Space reports.

These efforts are finally beginning to pay off, they announce, as the ENDURENCE robot has just finished its second test season successfully. The machine, called the Environmentally Non-Disturbing Under-Ice Robotic Antarctic Explorer, was put through trials at Lake Bonney, a peculiar landscape feature located in the Dry Valleys of Antarctica. The lake is composed of two “lobes” connected to each other via a narrow channel. It is covered by ice, just as the waters of Europa could be, and researchers needed to melt a hole through the cover before they could put the robot underwater.

During the experiments, the scientific instruments aboard ENDURANCE proved to work remarkably well, and researchers are hopeful that they may one day use a similar machine to explore Europa. They say that scaling back the current design is critical for this, given that the current robot weighs about 1,300 kilograms. Delivering such a heavy load as far as Jupiter is highly unlikely, provided that even the Curiosity rover, bound to go to Mars next year, is less than a ton, while being the size of a Mini Cooper. But experts are already working on other ideas other than miniaturization.

One possible option would be to create a “parent” explorer, outfitted with several mini-subs that could be operated individually. This means that the largest robot would only steer through safe locations, while producing coarse maps of its environment. Whenever an interesting structure is found, it could deploy specialized observatories, which would take high-resolution images and readings, and would also return samples to the parent explorer, for analysis. An additional problem that needs fixing is determining how to make the machine function with more autonomy, at the same time ensuring that the maximum amount of data is produced from the overall mission.

Friday, March 26, 2010

Determining If Europa Could Support Life



Image comment: A photo showing Europa's surface, as collected by the Galileo spacecraft
Image credits: NASA / JPL / University of Arizona / University of Colora

Jupiter's moon Europa is undoubtedly one of the most interesting celestial bodies in the solar system, right alongside Titan and Enceladus, natural satellites of Saturn. This space rock is believed to be covered in an icy cap that may very well be hiding a liquid ocean of water underneath. Cracks in the surface of these caps contain sulfur-rich materials that researchers believe could shed some light on the composition of what's below the ices. In order to get a better understanding of this, astronomers are now turning to the Arctic, which they plan to use a “simulator” for Europa, Space reports.

The biggest assumption that experts are making is that the sulfur-rich materials on the surface of the moon may be containing organic matter that was drawn upwards from within the moon. If that is indeed the case, then early forms of life may have developed inside Europa's liquid oceans, and this would be tremendously important for science.

“Europa's liquid water layer contains twice the volume of all the Earth's oceans combined, an enormous potentially habitable environment, not billions of years in the past but at the present day. The composition of the ocean directly controls our view of the habitability of the environment, our understanding of whether microbial life could survive there, and if so, what metabolic pathways or geochemical gradients it could utilize to gain energy,” says Damhnait Gleeson, an expert in astrobiology who works at the Pasadena, California-based NASA Jet Propulsion Laboratory (JPL).

While investigating the Canadian High Arctic for Earth-based equivalents to the conditions on the Jovian moon, the JPL team discovered such a rare combination of elements at Ellesmere Island. They were basically trying to find a place where sulfur-rich springs met glacial ice. In the Arctic, where spring comes late, and only lasts for a very short time, studying the interactions that appear in such ecosystems may hold the key to making more accurate predictions about what is going on millions of miles away, on Jupiter's orbit.

“These results represent the first data on the detection of sulfur minerals on ice in a terrestrial setting. These new data improve our ability to correctly identify these minerals in other locations. Technology under development for future missions could benefit from field-testing in this Europa-relevant environment,” the team leader adds.