Showing posts with label terrain Camera. Show all posts
Showing posts with label terrain Camera. Show all posts

Saturday, May 5, 2012

The new Kaguya Terrain Camera tours

Still from the 16:9 spectacular Kaguya terrain camera video tour of the Reiner Gamma albedo swirl in Oceanus Procellarum. The presentation does an excellent job showing the apparent link between the swirl and the morphology of the Marius Hill to its northwest [JAXA/SELENE].
Japan's space agency JAXA recently published a handful of spectacular, new highly realistic 3D tours from Terrain Camera data returned from SELENE-1 (Kaguya 2007-2009). Since Kaguya met its end in a guided impact visible from Earth in 2009, sporadic updates to the Kaguya Image Gallery, where mission science, presentations and a sampling of HDTV are available, have been few. 

The Japanese language side of the gallery is always updated first, so it took a little intuition for us to find the useful link to the new products. These are also comparatively large video files (20Mps MPEG, ~100 mg). Unable to view the best of these new presentations following the Flash linkage, the stand-alone files can download for viewing locally . It's worth the effort. A user can "right hand click" the links below to save the video files directly.


If you don't want to bother with all that and still want a renewed taste of Kaguya's still-unique and valuable contributions - not the least their addition to the aesthetics and appreciation for the beauty of Earth's Moon - don't neglect the Kaguya YouTube videos, starting with the famous Earthrise from 2008.

While in the neighborhood, a new and improved Kaguya terrain camera tour of the wider vicinity of the Marius pit, situated within a sinuous rille winding through the heart of the Marius Hills, is also worth the time.

Tuesday, July 13, 2010

NASA@Science: "Down the lunar rabbit-hole"

The 'skylight' in the middle of Mare Ingenii, on the Moon's Far Side, show a tantalizing view of house-sized boulders on part of it's barely illuminated floor in this LRO Narrow Angle Camera (NAC) observation, LROC News System Featured Image released June 16, 2010. Two kilometers wide, the Ingenni pit is twice the size of the skylight previously unveiled by JAXA SELENE-1 (Kaguya) investigators in 2009 - [M128020284LE, LRO orbit 4026, May 11, 2010 - NASA/GSFC/Arizona State University].

Dauna Coulter
Science@NASA

A whole new world came to life for Alice when she followed the White Rabbit down the hole. There was a grinning cat, a Hookah-smoking caterpillar, a Mad Hatter, and much more. It makes you wonder... what's waiting down the rabbit-hole on the Moon?

NASA's Lunar Reconnaissance Orbiter (LRO) is beaming back images of caverns hundreds of feet deep -- beckoning scientists to follow.

"They could be entrances to a geologic wonderland," says Mark Robinson of Arizona State University, principal investigator for the LRO camera. "We believe the giant holes are skylights that formed when the ceilings of underground lava tubes collapsed."

Japan's Kaguya spacecraft first photographed the enormous caverns last year. Now the powerful Lunar Reconnaissance Orbiter Camera (LROC, the same camera that photographed Apollo landers and astronauts' tracks in the moondust) is giving us enticing high-resolution images of the caverns' entrances and their surroundings.

Situated a bend at the northwestern reaches of the unofficially named sinuous rille 'A,' near the heart of the widespread Marius Hills volcanic region in Oceanus Procellarum, the "Haruyama" skylight (unofficially named, for the lead investigator of the JAXA SELENE-1 (Kaguya) science team who first identified it) is wide enough to swallow The White House in Washington, DC (LROC Narrow Angle Camera observation M114328462RE; LRO orbit 1982, December 1, 2009; Alt. 45.38 km, Resolution = 50cm per pixel) [NASA/GSFC/Arizona State University].

Back in the 1960s, before humans set foot on the Moon, researchers proposed the existence of a network of tunnels, relics of molten lava rivers, beneath the lunar surface. They based their theory on early orbital photographs that revealed hundreds of long, narrow channels called rilles winding across the vast lunar plains, or maria. Scientists believed these rilles to be surface evidence of below-ground tunnels through which lava flowed billions of years ago.

"It's exciting that we've now confirmed this idea," says Robinson. "The Kaguya and LROC photos prove that these caverns are skylights to lava tubes, so we know such tunnels can exist intact at least in small segments after several billion years."

Context for the LROC NAC image of the Marius Hills 'skylight,' is LROC Wide Angle Camera (WAC) image M117867923ME, showing a 26 km-wide area in the heart of the Marius Hills. The white arrow designates the location of the pit, at the bend in "Sinuous Rill A." The location is almost directly situated between the two main volcanic vents of what China's Chang'E-1 orbiter team have labeled "Yutu," theorized to be an extinct single volcanic under the entire Marius dome region, a claim perhaps backed up by LRO (LOLA) laser altimetry data [NASA/GSFC/Arizona State University].

Lava tubes are formed when the upper layer of lava flowing from a volcano starts to cool while the lava underneath continues to flow in tubular channels. The hardened lava above insulates the molten lava below, allowing it to retain its liquid warmth and continue flowing. Lava tubes are found on Earth and can vary from a simple tube to a complex labyrinth that extends for miles.

If the tunnels leading off the skylights have stood the test of time and are still open, they could someday provide human visitors protection from incoming meteoroids and other perils.

"The tunnels offer a perfect radiation shield and a very benign thermal environment," says Robinson. "Once you get down to 2 meters under the surface of the Moon, the temperature remains fairly constant, probably around -30 to -40 degrees C."


Lunar Orbiter IV (1967) photographed the Marius Hills region from 2668 km (1967,) shown in this "no dash" noise-reduction of the original image by the USGS Lunar Orbiter Digitization Project (not to be confused with the Lunar Orbiter Image Restoration Project, or LOIRP, who re-creating Lunar Orbiter images directly from restored telemetry). The sinuous rilles shown above are barely visible in the upper left center. Much detail from the original image is lost in the reduction to merely 400 pixels. Nevertheless, the larger context for the region-at-large is seen here, and the neighbors, including many of the Marius domes (visible with the Sun illuminating from the right, 27° over the eastern horizon. At center left is Rima Galilaei and the bright surface feature in the south is the frilly northeastern extremes of the Reiner Gamma albedo swirl phenomena, suggesting it also may be related to an extinct regional "Yutu" volcano; a very large part of Oceanus Procellarum. (Image width is about 160km) [NASA/JPL/USGS].

That may sound cold, but it would be welcome news to explorers seeking to escape the temperature extremes of the lunar surface. At the Moon's equator, mid-day temperatures soar to 100 deg C and plunge to a frigid -150 deg C at night.

Paul Spudis of the Lunar and Planetary Institute agrees that lunar lava tubes and chambers hold potential advantages to future explorers but says, "Hold off on booking your next vacation at the Lunar Carlsbad Hilton. Many tunnels may have filled up with their own solidified lava."

However, like Alice's Queen of Hearts, who "believed as many as six impossible things before breakfast," Spudis is keeping an open mind.

"We just can't tell, with our remote instruments, what the skylights lead to. To find out for sure, we'd need to go to the Moon and do some spelunking. I've had my share of surprises in caving. Several years ago I was helping map a lava flow in Hawaii. We had a nice set of vents, sort of like these skylights. It turned out that there was a whole new cave system that was not evident from aerial photos."

As for something similar under the lunar skylights?

"Who knows?" says Spudis. "The Moon continually surprises me."

This could be a white rabbit worth following.

Further Reading:

Depths of Mare Ingenii, June 16, 2010

Hearts of Marius, Shadows of Yutu, May 29, 2010

Local Topography and Reiner Gamma, May 22, 2010

LRO/LROC/LOLA: Marius Hills, March 20, 2010

Tuesday, June 15, 2010

LOLA: Moscoviense



Mare Moscoviense (GSFC - LOLA Image of the Week, June 14, 2010) is one of the few large maria located on the far side of the Moon.

LOLA data reveal the lowest point inside Titov crater to be about 2.7 km below the lunar datum. In contrast, the highest point on the rim of the basin rests about 3 km above lunar datum.

The total relief for the basin surrounding Mare Moscoviense is 5.7km. Although there are just as many impact basins on the lunar far side as the near, the extensive lunar volcanism seen on the near side is lacking on the far side of the Moon [NASA/GSFC/LOLA].


The spectacular Moscoviense Terrain Camera image from 2008, returned by Japan's first lunar orbiter Kaguya (SELENE-1). The yellow arrow indicates the location of a new and distinct kind of lunar rock discovered from data returned by India's first lunar orbiter Chandrayaan-1. The story from April 12 can be read here [JAXA/SELENE].


Figure 2, LROC News System Featured Image, January 8, 2010. LROC Wide Angle Camera color (Red=689, Green=566, Blue=415 nm) mosaic, with the location of the proposed Constellation Region of Interest (ROI) indicated with arrow [NASA/GSFC/Arizona State University].


Looking east over the Moscoviense Constellation ROI, LROC WAC M103531211, overlaid with LROC Narrow-Angle Camera image M105887165, atop the improving resolution of the lunar far side elevation map available in Google Moon. The arrow on the WAC image released by LROC is not completely covered, left center [NASA/GSFC/Arizona State University].


Stepping back from the false-color data in the LOLA Image of the Week, at the top, "bright is equal to relative height" in this look at Moscoviense in the global-scale, low-resolution LOLA data available through the Planetary Data System. Titov is just visible, and unlike visible imagery of the area, the multi-ringed nature of this impact basin is clearly visible along with a strong indication that the original inner ring may have been partially inundated with intrusive molten material, probably from within the Moon after it's original formation The obliquity of the "impact-forming event," retained in its present 'rectangular' shape also appears to have been a part of the formation from the instant it formed [NASA/GSFC/LOLA].

Some other postings related to Moscoviense:

Far Side was volcanically active
until 2.5 billion years ago

June 13, 2009

Far Side borderland landing site
October 6, 2009

Mare Moscoviense Constellation Landing Site
January 8, 2010

New spinel-rich lunar rock type
April 12, 2010

Friday, February 26, 2010

More cavern entrances discovered on the Moon

NEW DISCOVERIES OF LUNAR HOLES IN MARE TRANQUILLTATIS AND MARE INGENII. Junichi Haruyama1, Seiichi Hara2, Kazuyuki Hioki2, Tomokatsu Morota1, Yasuhiro Yokota1, Motomaro Shirao3, Harald Hiesinger4, Carolyn H. van der Bogert4, Hideaki Miyamoto5, Akira Iwasaki5, Makiko Ohtake1, Yoshifumi Saito1, Tsuneo Matsunaga6, Shunsuke Nakanotani7, Carle M. Pieters8, and Paul G. Lucey9, 1ISAS, JAXA, Japan (Haruya-ma.junichi@jaxa.jp), 2NTT DATA CCS CORPORATION, Japan, 3Taito-ku, Tokyo 111-0035, Japan, 4Westfälische Wilhelms-Universität, Germany, 5The University of Tokyo, Japan, 6NIES, Japan, 7Mitsubishi Space Software Co., Ltd., Japan, 8Brown University, USA, 9University of Hawaii, USA.

Introduction: We recently reported the discovery of a vertical hole on the Moon [1] in data acquired by the Terrain Camera (TC) and Multiband Imager (MI) on the Japanese lunar orbiter Selenological and Engineering Explorer (SELENE) [2], (nicknamed Kaguya). The 65 m-diameter hole is located at 303.3 °E, 14.2 °N in the Marius Hills region in Oceanus Procellarum on the near side of the Moon. The Marius Hills Hole (MHH) is probably a skylight in a lava tube. Here, we report the discovery of two additional nearly circular deep shafts.

Hole Search Methodology: SELENE TC and MI achieved almost 100% coverage of the Moon during the twenty-one month SELENE mission. To find vertical holes similar to MHH, we extracted the TC data of higher solar elevation angles (SEAs) of > 40° (Fig. 1). At these sun angles, the shadowed portions of these vertical shafts receive less sunlight reflected off of their walls than typical shallow lunar craters causing their shadows to be darker than typical craters. Be-cause TC’s sensitivity is very high, we can detect this difference. We searched for the lowest radiances in the data set and found two new holes in Mare Tranquillitatis and Mare Ingenii.

Mare Tranquillitatis Hole: The hole in Mare Tranquillitatis (MTH) is located at 33.2 °E, 8.3 °N (Fig. 1), 350 km from the Apollo 11 landing site. It is nearly twice the diameter of the MHH, and is roughly circular with a short axis length of 110 m (east-west) and a long axis length 120 m (north-south) (Fig. 2). The east rim is about 50 m higher than the west rim. MTH was observed eight times by TC and twice by MI. From the higher SEA data (49.6° in TC observations and 75.6° and 82.8° in MI), we estimate the hole to be 180m deep from the east rim. Unlike the Marius Hills Hole (MHH), MTH is not in or near a sinuous rille. There are numerous craters near MTH, but no other holes are present at the resolution of TC (10 m).

Mare Ingenii Hole: Using the same search for low radiance data, we discovered a hole in Mare Inge-nii (MIH) at 166.0 °E, 35.6 °S, near a prominent swirl feature on the far side of the Moon (Fig. 1). It has a slightly irregular shape (rounded triangle) with a long axis length of 140 m (east-west) and a short axis length of 110 m (north-south) (Fig. 3). Its northwest rim is a few tens of meters higher than the other portions of the rim. TC observed MIH six times and MI observed it once. Because we could not detect the bottom of MIH, even at the highest SEA (47.4° with TC), we can only place a lower limit on the depth of 90 meters. Like that in Mare Tranquillitatis, this hole is not located on or near a rille.

Interior Temperatures of Underlying Lava Tubes: The temperatures of these cavities are of interest for lunar resources and as special lunar microen-vironments. Based on a thermal equilibrium calculation for the shallow lunar interior, we estimated the temperature at the bottoms of the holes. For the surface albedos around the lunar holes, we used radiance data acquired by TC. Assuming a diffuse (Lambertian) sur-face, the albedos are 3.6%, for the surfaces around MHH, 3.7% around MTH, and 5.2% around MIH (Table 1). The interior temperatures of any lava tubes possibly connected to MHH, MTH, and MIH are estimated to be 18, 19, and 4 °C (Table 1). These tempera-tures may be overestimated because we used the radiance data obtained at SEA < style="font-weight: bold;">Table 1.


Hydrogen Accumulation in lava tubes exposed by skylights: The lunar surface is continuously showered by solar wind protons. Although a small fraction of the protons are implanted into the lunar surface, most pro-tons escape into space. However, the deep holes and their possible connected lava tubes might effectively trap solar wind protons. The surface ages surrounding MHH, MTH, and MIH are 3.5 Ga [1], 3.7 Ga [3], and 3.2 Ga [4]. If the holes opened simultaneously with or just after the formation of surrounding surfaces and the solar proton flux was similar to the current flux: 4 x 10(8)/cm2/sec [5], the integrated amount of the protons inside MHH, MIH, and MIH and their con-nected lava tubes would be 3 x 10(3), 1 x 10(4), and 9 x 10(3) tons, which correspond to water of 3 x 10(4), 9 x 10(4), and 8 x 10(4) tons (Table 2).



While these abundances are not entirely protected from loss, the vertical shafts and especially any connected lava tubes are protected from loss mechanisms such as sputtering and UV radiation, while preserving local low temperatures.

Observations By Other Missions: Although SELENE impacted on the Moon and ended its mission in June 2009, the Lunar Reconnaissance Orbiter (LRO) is currently observing the lunar surface with a variety of instruments. The observations acquired by LRO instruments will provide much additional information on these lunar holes. For example, the Lunar Reconnaissance Orbiter Camera (LROC) will reveal the detailed structure of the holes, Diviner can investigate the thermal conditions of the holes, and Chandrayaan and Change’1 data will also hopefully provide additional data for these holes. Of critical importance, is to investigate and understand the geological setting of each of the holes, to determine whether they are associated with lava tubes, like MHH, or have another origin.




Figure 1
. SELENE Terrain Camera observation coverage at solar elevation angles > 40°. Marius Hills Hole and newly dis-covered holes in Mare Tranquillitatis and Mare Ingenii are indicated by *1 (303.3 °E, 14.2 °N), *2(33.2 °E, 8.3 °N), and *3(35.6 °S, 166.0 °E).




Figure 2
. Enlarged TC images of Mare Tranquillitatis Hole, nearly circular with a short axis length of 110 m (east-west) and a long axis length 120 m (north-south).




Figure 3
. Enlarged TC images of Mare Ingenii Hole, a slightly irregular shape (rounded triangle) with a long axis length of 140 m (east-west) and a short axis of 110 m (north-south).


References: [1] Haruyama J. et al. (2009) GRL, 36, L21206, doi:10.1029/2009GL040635. [2] Haruyama J. et al. (2008) Earth Planets and Space, 60, 243-255. [3] Hiesinger H. et al. (2000), JGR, 105(E12), 29239-29276. [4] Haruyama J. et al. (2008) Science, 322, 938-939. [5] Starukhina L. V. and Shkuratov Y. G. (2000) Icarus 147, 585–587.

Saturday, November 28, 2009

More Kaguya Terrain Camera images

Copernican crater Birt (22.4°S, 351.5°E) as deciphered from data collected by the Terrain Camera on-board Japan's lunar orbiter Kaguya (SELENE-1). A 400 pixel-wide reduction from the original still released November 26.

Hat tip once again to Chuck Wood and his diligent work at Lunar Picture of the Day (LPOD), even to the lengths of keeping tabs on the Japanese language-side of the Kaguya Image Gallery (where public releases usually appear weeks prior to their appearance on the English side).

A few weeks ago I made a valiant effort to rip stills from a Kaguya Terrain Camera survey of the same landmark territory near Rupes Recta, the famous "Strait Wall" among the most familiar features of the Moon's Near Side. This was done by downloading the video of that area posted up to JAXA's channel on YouTube, but the result (while interesting) can't hold a candle to the still JAXA posted to its own site earlier this past week.

Chuck linked to the Kaguya Gallery to his discussion of another of these spectacular new releases HERE.

(All of these latest shots have confirmed my long suspicion that at least one of the three more prominent collapsed "ramps" conveniently positioned along the 114 kilometer long fault line might one day serve as a short cut for ground vehicles moving east and west from the area around Birt to the higher elevation eastward beyond the wall.)

Tuesday, November 24, 2009

The Moon's lowest of the low


Newly-released (Nov. 6) Kaguya Terrain Camera image of an as yet unnamed crater (70.7 S, 186.6 E) wherein rests the Moon's lowest elevation (-9060 meters, below global mean). Apparently warped after formation, perhaps by the intrusion of an inundating flood of mare material from below, this otherwise unremarkable crater stands out inside 143 km-wide Antoniadi - itself within the vast South Pole-Aitken Basin. From this low profile, similar to HDTV video captured shortly before the guided impact of Japan's first lunar orbiter, data making up this image may have been collected very late in the historic mission.

Tuesday, November 17, 2009

Heart of Reiner Gamma

The most familiar lunar "Swirl" phenomena, now associated with a crustal magnetic field, tightly centered near lower right hand part of this Kaguya Terrain Camera image, and field lines measured by Lunar Prospector at 9 nT centered in the distinctive middle of the 30 km wide "eye" of the feature. Two similarly bright arms of the swirl meander hundreds of kilometers toward Hevelius in the southwest and into the domes of Marius Hills hundreds of kilometers to the northeast. This image is one of the best detailed shots of Reiner Γ yet, though at this perspective it's not useful in illustrating the almost non-existence of topography corresponding to the change in albedo, from the dark banding and brighter swirl material. Thanks to Chuck Wood and his always spectacular Lunar Picture of the Day, for keeping a watch on the Japanese language side of the Kaguya Image Gallery [JAXA/SELENE].

Friday, October 9, 2009

Cabeus from Kaguya's Terrain Camera

The North Slope of Cabeus, released on the Japanese language side of the lunar orbiter's Image Gallery less than three hours prior to the LCROSS impact on the Moon. The full 6158px x 6078px image includes Cabeus A & B. [JAXA/SELENE]


Saturday, June 20, 2009

Kaguya's last Terrain Camera images



Junya Tarezono of JAXA forwards his congratulations, again, on the successful launch, Thursday, of LRO & LCROSS.

And he forward the following, about additional imagery JAXA released (again, on the Japanese language part of the beautiful Kaguya Image Gallery, though the new set of final images are composed from data compiled from the on-board Terrain Camera.

In yesterday's JAXA press release, reference was made only to data by NHK's HDTV, but not for Kaguya's Terrain Camera.

However, now you can see a magnificant view of the movies compiled from last shots taken by the TC. (HERE.)

Under "Hot Topic (HERE), and go to "JAXA Video" If you are YouTube lover, just go to:

http://www.youtube.com/watch?v=AxDNWXZpC3g

The movie was taken approximately 12 minutes before the impact. As the Kaguya's impact point was in the shadowed area and became dark, they could not obtain the image pairs to create a 3D movie.

One shot, centered at 73.5 S and 260.5 E around, and from an altitude of approximately 25 kilometers, the viewpoint is at first above 2300 meters from the lunar surface, and the viewpoint as Kaguya decends 400 meters in the last scene.

P
ress release can be found HERE.

http://www.jaxa.jp/press/2009/06/20090619_kaguya_tcmi_j.html

Enjoy!

Junya Terazono
(jtv@terakin.com)