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Space Science Reviews | 2004

The Mars Odyssey Gamma-Ray Spectrometer Instrument Suite

William V. Boynton; W. C. Feldman; I. G. Mitrofanov; Larry G. Evans; Robert C. Reedy; S. W. Squyres; Richard D. Starr; Jack I. Trombka; C. d'Uston; J.R. Arnold; P.A.J. Englert; Albert E. Metzger; H. Wänke; J. Brückner; Darrell M. Drake; C. Shinohara; C. Fellows; David K. Hamara; K. Harshman; K. E. Kerry; Carl Turner; M. Ward; H. Barthe; K.R. Fuller; S. A. Storms; G. W. Thornton; J. L. Longmire; M. L. Litvak; A.K. Ton'chev

The Mars Odyssey Gamma-Ray Spectrometer is a suite of three different instruments, a gamma subsystem (GS), a neutron spectrometer, and a high-energy neutron detector, working together to collect data that will permit the mapping of elemental concentrations on the surface of Mars. The instruments are complimentary in that the neutron instruments have greater sensitivity to low amounts of hydrogen, but their signals saturate as the hydrogen content gets high. The hydrogen signal in the GS, on the other hand, does not saturate at high hydrogen contents and is sensitive to small differences in hydrogen content even when hydrogen is very abundant. The hydrogen signal in the neutron instruments and the GS have a different dependence on depth, and thus by combining both data sets we can infer not only the amount of hydrogen, but constrain its distribution with depth. In addition to hydrogen, the GS determines the abundances of several other elements. The instruments, the basis of the technique, and the data processing requirements are described as are some expected applications of the data to scientific problems.


Science | 2010

Hydrogen mapping of the lunar south pole using the LRO neutron detector experiment LEND.

I. G. Mitrofanov; A. B. Sanin; William V. Boynton; G. Chin; James B. Garvin; D. V. Golovin; Larry G. Evans; K. Harshman; A. S. Kozyrev; M. L. Litvak; A. Malakhov; Erwan Mazarico; Timothy P. McClanahan; G. M. Milikh; M. I. Mokrousov; G. Nandikotkur; Gregory A. Neumann; I. Nuzhdin; R. Z. Sagdeev; V.V. Shevchenko; V. N. Shvetsov; David E. Smith; Richard D. Starr; V. I. Tret'yakov; J. Trombka; D. A. Usikov; A. Varenikov; A. A. Vostrukhin; Maria T. Zuber

Watering the Moon About a year ago, a spent upper stage of an Atlas rocket was deliberately crashed into a crater at the south pole of the Moon, ejecting a plume of debris, dust, and vapor. The goal of this event, the Lunar Crater Observation and Sensing Satellite (LCROSS) experiment, was to search for water and other volatiles in the soil of one of the coldest places on the Moon: the permanently shadowed region within the Cabeus crater. Using ultraviolet, visible, and near-infrared spectroscopy data from accompanying craft, Colaprete et al. (p. 463; see the news story by Kerr; see the cover) found evidence for the presence of water and other volatiles within the ejecta cloud. Schultz et al. (p. 468) monitored the different stages of the impact and the resulting plume. Gladstone et al. (p. 472), using an ultraviolet spectrograph onboard the Lunar Reconnaissance Orbiter (LRO), detected H2, CO, Ca, Hg, and Mg in the impact plume, and Hayne et al. (p. 477) measured the thermal signature of the impact and discovered that it had heated a 30 to 200 square-meter region from ∼40 kelvin to at least 950 kelvin. Paige et al. (p. 479) mapped cryogenic zones predictive of volatile entrapment, and Mitrofanov et al. (p. 483) used LRO instruments to confirm that surface temperatures in the south polar region persist even in sunlight. In all, about 155 kilograms of water vapor was emitted during the impact; meanwhile, the LRO continues to orbit the Moon, sending back a stream of data to help us understand the evolution of its complex surface structures. A controlled spacecraft impact into a crater in the lunar south pole plunged through the lunar soil, revealing water and other volatiles. Hydrogen has been inferred to occur in enhanced concentrations within permanently shadowed regions and, hence, the coldest areas of the lunar poles. The Lunar Crater Observation and Sensing Satellite (LCROSS) mission was designed to detect hydrogen-bearing volatiles directly. Neutron flux measurements of the Moon’s south polar region from the Lunar Exploration Neutron Detector (LEND) on the Lunar Reconnaissance Orbiter (LRO) spacecraft were used to select the optimal impact site for LCROSS. LEND data show several regions where the epithermal neutron flux from the surface is suppressed, which is indicative of enhanced hydrogen content. These regions are not spatially coincident with permanently shadowed regions of the Moon. The LCROSS impact site inside the Cabeus crater demonstrates the highest hydrogen concentration in the lunar south polar region, corresponding to an estimated content of 0.5 to 4.0% water ice by weight, depending on the thickness of any overlying dry regolith layer. The distribution of hydrogen across the region is consistent with buried water ice from cometary impacts, hydrogen implantation from the solar wind, and/or other as yet unknown sources.


The Astrophysical Journal | 2003

Discovery of GRB 020405 and Its Late Red Bump

P. A. Price; S. R. Kulkarni; Edo Berger; D. W. Fox; J. S. Bloom; S. G. Djorgovski; Dale A. Frail; Titus J. Galama; Fiona A. Harrison; Patrick J. McCarthy; Daniel E. Reichart; Re'em Sari; Scott A. Yost; Helmut Jerjen; K. P. Flint; A. Phillips; B. E. Warren; Timothy S. Axelrod; Roger A. Chevalier; J. Holtzman; Randy A. Kimble; Brian Paul Schmidt; J. C. Wheeler; F. Frontera; Enrico Costa; L. Piro; K. Hurley; T. L. Cline; C. Guidorzi; E. Montanari

We present the discovery of GRB 020405 made with the Interplanetary Network (IPN). With a duration of 60 s, the burst appears to be a typical long-duration event. We observed the 75 arcmin2 IPN error region with the Mount Stromlo Observatorys 50 inch robotic telescope and discovered a transient source that subsequently decayed and was also associated with a variable radio source. We identify this source as the afterglow of GRB 020405. Subsequent observations by other groups found varying polarized flux and established a redshift of 0.690 to the host galaxy. Motivated by the low redshift, we triggered observations with WFPC2 on board the Hubble Space Telescope (HST). Modeling the early ground-based data with a jet model, we find a clear red excess over the decaying optical light curves that is present between day 10 and day 141 (the last HST epoch). This bump has the spectral and temporal features expected of an underlying supernova (SN). In particular, the red color of the putative SN is similar to that of the SN associated with GRB 011121 at late time. Restricting the sample of GRBs to those with z < 0.7, a total of five bursts, red bumps at late times are found in GRB 970228, GRB 011121, and GRB 020405. It is possible that the simplest idea, namely, that all long-duration γ-ray bursts have underlying SNe with a modest dispersion in their properties (especially peak luminosity), is sufficient to explain the nondetections.


Journal of Geophysical Research | 2014

Water and chlorine content in the Martian soil along the first 1900 m of the Curiosity rover traverse as estimated by the DAN instrument

I. G. Mitrofanov; M. L. Litvak; A. B. Sanin; Richard D. Starr; D. Lisov; Ruslan O. Kuzmin; Alberto Behar; William V. Boynton; Craig Hardgrove; K. Harshman; Insoo Jun; Ralph E. Milliken; Michael A. Mischna; Jeffrey Edward Moersch; C. Tate

The presence of hydrated phases in the soil and near-surface bedrock of Gale Crater is thought to be direct evidence for water-rock interaction in the crater in the ancient past. Layered sediments over the Gale Crater floor are thought to have formed in past epochs due to sediment transport, accumulation, and cementation through interaction with fluids, and the observed strata of water-bearing minerals record the history of these episodes. The first data analysis of the Dynamic Albedo of Neutrons (DAN) investigation on board the Curiosity rover is presented for 154 individual points of active mode measurements along 1900 m of the traverse over the first 361 Martian solar days in Gale crater. It is found that a model of constant water content within subsurface should be rejected for practically all tested points, whereas a two-layer model with different water contents in each layer is supported by the data. A so-called direct two-layer model (water content increasing with depth) yields acceptable fits for odometry ranges between 0 and 455 m and beyond 638 m. The mean water (H2O) abundances of the top and bottom layers vary from 1.5 to 1.7 wt % and from 2.2 to 3.3 wt %, respectively, while at some tested spots the water content is estimated to be as high as ~5 wt %. The data for odometry range 455–638 m support an inverse two-layer model (water content decreasing with depth), with an estimated mean water abundance of 2.1 ± 0.1 wt % and 1.4 ± 0.04 wt % in the top and bottom layers, respectively.


The Astrophysical Journal | 2015

A MISSING-LINK IN THE SUPERNOVA–GRB CONNECTION: THE CASE OF SN 2012ap

Sayan Chakraborti; Alicia M. Soderberg; Laura Chomiuk; Atish Kamble; Naveen Yadav; Alak Ray; K. Hurley; Raffaella Margutti; Dan Milisavljevic; Michael F. Bietenholz; A. Brunthaler; Giuliano Pignata; E. Pian; Paolo A. Mazzali; Claes Fransson; Norbert Bartel; Mario Hamuy; Emily M. Levesque; Andrew I. MacFadyen; Jason A. Dittmann; Miriam I. Krauss; M. S. Briggs; V. Connaughton; Kazutaka Yamaoka; Tadayuki Takahashi; M. Ohno; Yasushi Fukazawa; Makoto Tashiro; Yukikatsu Terada; Toshio Murakami

Gamma-ray bursts (GRBs) are characterized by ultra-relativistic outflows, while supernovae are generally characterized by non-relativistic ejecta. GRB afterglows decelerate rapidly, usually within days, because their low-mass ejecta rapidly sweep up a comparatively larger mass of circumstellar material. However, supernovae with heavy ejecta can be in nearly free expansion for centuries. Supernovae were thought to have non-relativistic outflows except for a few relativistic ones accompanied by GRBs. This clear division was blurred by SN 2009bb, the first supernova with a relativistic outflow without an observed GRB. However, the ejecta from SN 2009bb was baryon loaded and in nearly free expansion for a year, unlike GRBs. We report the first supernova discovered without a GRB but with rapidly decelerating mildly relativistic ejecta, SN 2012ap. We discovered a bright and rapidly evolving radio counterpart driven by the circumstellar interaction of the relativistic ejecta. However, we did not find any coincident GRB with an isotropic fluence of more than one-sixth of the fluence from GRB 980425. This shows for the first time that central engines in SNe Ic, even without an observed GRB, can produce both relativistic and rapidly decelerating outflows like GRBs.


Journal of Geophysical Research | 2014

Local variations of bulk hydrogen and chlorine‐equivalent neutron absorption content measured at the contact between the Sheepbed and Gillespie Lake units in Yellowknife Bay, Gale Crater, using the DAN instrument onboard Curiosity

M. L. Litvak; I. G. Mitrofanov; A. B. Sanin; D. Lisov; A. Behar; William V. Boynton; Lauren DeFlores; F. Fedosov; D. V. Golovin; Craig Hardgrove; K. Harshman; I. Jun; A. S. Kozyrev; Ruslan O. Kuzmin; A. Malakhov; Ralph E. Milliken; M. Mischna; Jeffrey Edward Moersch; M. I. Mokrousov; V. N. Shvetsov; Kathryn M. Stack; Richard D. Starr; C. Tate; V. I. Tret'yakov; A. A. Vostrukhin

Data gathered with the Dynamic Albedo of Neutron (DAN) instrument onboard rover Curiosity were analyzed for variations in subsurface neutron flux and tested for possible correlation with local geological context. A special DAN observation campaign was executed, in which 18 adjacent DAN active measurements were acquired every 0.75–1.0 m to search for the variations of subsurface hydrogen content along a 15 m traverse across geologic contacts between the Sheepbed and Gillespie Lake members of the Yellowknife Bay formation. It was found that several subunits in Sheepbed and Gillespie Lake could be characterized with different depth distributions of water-equivalent hydrogen (WEH) and different chlorine-equivalent abundance responsible for the distribution of neutron absorption elements. The variations of the average WEH at the top 60 cm of the subsurface are estimated at up to 2–3%. Chlorine-equivalent neutron absorption abundances ranged within 0.8–1.5%. The largest difference in WEH and chlorine-equivalent neutron absorption distribution is found between Sheepbed and Gillespie Lake.


Astrophysical Journal Supplement Series | 2006

Mars Odyssey Joins the Third Interplanetary Network

K. Hurley; I. G. Mitrofanov; A. S. Kozyrev; M. L. Litvak; A. Sanin V. Grinkov; S. Charyshnikov; William V. Boynton; C. Fellows; K. Harshman; David K. Hamara; C. Shinohara; Richard D. Starr; T. L. Cline

The Mars Odyssey spacecraft carries two experiments that are capable of detecting cosmic gamma-ray bursts and soft gamma repeaters. Since 2001 April they have detected over 275 bursts and, in conjunction with the other spacecraft of the interplanetary network, localized many of them rapidly and precisely enough to allow sensitive multiwavelength counterpart searches. We present the Mars Odyssey mission and describe the burst capabilities of the two experiments in detail. We explain how the spacecraft timing and ephemeris have been verified in-flight using bursts from objects whose precise positions are known by other means. Finally, we show several examples of localizations and discuss future plans for the Odyssey mission and the network as a whole.


Journal of Geophysical Research | 2016

Hydrogen and chlorine abundances in the Kimberley formation of Gale crater measured by the DAN instrument on board the Mars Science Laboratory Curiosity rover

M. L. Litvak; Igor G. Mitrofanov; Craig Hardgrove; Kathryn M. Stack; A. B. Sanin; D. Lisov; William V. Boynton; F. Fedosov; D. V. Golovin; K. Harshman; Insoo Jun; A. S. Kozyrev; Ruslan O. Kuzmin; A. Malakhov; Ralph E. Milliken; Michael A. Mischna; Jeffrey Edward Moersch; M. I. Mokrousov; Richard D. Starr; C. Tate; V. I. Tret'yakov; A. A. Vostrukhin

The Dynamic Albedo of Neutron (DAN) instrument on board the Mars Science Laboratory Curiosity rover acquired a series of measurements as part of an observational campaign of the Kimberley area in Gale crater. These observations were planned to assess the variability of bulk hydrogen and neutron-absorbing elements, characterized as chlorine-equivalent concentration, in the geologic members of the Kimberley formation and in surface materials exposed throughout the area. During the traverse of the Kimberley area, Curiosity drove primarily over the “Smooth Hummocky” unit, a unit composed primarily of sand and loose rocks, with occasional stops at bedrock of the Kimberley formation. During the Kimberley campaign, DAN detected ranges of water equivalent hydrogen (WEH) and chlorine-equivalent concentrations of 1.5–2.5 wt % and 0.6–2 wt %, respectively. Results show that as the traverse progressed, DAN observed an overall decrease in both WEH and chlorine-equivalent concentration measured over the sand and loose rocks of the Smooth Hummocky unit. DAN measurements of WEH and chlorine-equivalent concentrations in the well-exposed sedimentary bedrock of the Kimberley formation show fluctuations with stratigraphic position. The Kimberley campaign also provided an opportunity to compare measurements from DAN with those from the Sample Analysis at Mars (SAM) and the Alpha-Particle X-ray Spectrometer (APXS) instruments. DAN measurements obtained near the Windjana drill location show a WEH concentration of ~1.5 wt %, consistent with the concentration of low-temperature absorbed water measured by SAM for the Windjana drill sample. A comparison between DAN chlorine-equivalent concentrations measured throughout the Kimberley area and APXS observations of corresponding local surface targets and drill fines shows general agreement between the two instruments.


Space Science Reviews | 2018

OCAMS: The OSIRIS-REx Camera Suite

Bashar Rizk; C. Drouet d’Aubigny; Dathon R. Golish; C. Fellows; C. Merrill; Peter W. H. Smith; M. S. Walker; J. E. Hendershot; J. Hancock; S. H. Bailey; D. N. DellaGiustina; Dante S. Lauretta; R. Tanner; M. Williams; K. Harshman; M. Fitzgibbon; W. Verts; J. Chen; T. Connors; David K. Hamara; A. Dowd; A. Lowman; M. Dubin; R. Burt; M. Whiteley; M. Watson; T. McMahon; M. Ward; D. Booher; M. Read

The OSIRIS-REx Camera Suite (OCAMS) will acquire images essential to collecting a sample from the surface of Bennu. During proximity operations, these images will document the presence of satellites and plumes, record spin state, enable an accurate model of the asteroid’s shape, and identify any surface hazards. They will confirm the presence of sampleable regolith on the surface, observe the sampling event itself, and image the sample head in order to verify its readiness to be stowed. They will document Bennu’s history as an example of early solar system material, as a microgravity body with a planetesimal size-scale, and as a carbonaceous object. OCAMS is fitted with three cameras. The MapCam will record color images of Bennu as a point source on approach to the asteroid in order to connect Bennu’s ground-based point-source observational record to later higher-resolution surface spectral imaging. The SamCam will document the sample site before, during, and after it is disturbed by the sample mechanism. The PolyCam, using its focus mechanism, will observe the sample site at sub-centimeter resolutions, revealing surface texture and morphology. While their imaging requirements divide naturally between the three cameras, they preserve a strong degree of functional overlap. OCAMS and the other spacecraft instruments will allow the OSIRIS-REx mission to collect a sample from a microgravity body on the same visit during which it was first optically acquired from long range, a useful capability as humanity reaches out to explore near-Earth, Main-Belt and Jupiter Trojan asteroids.


arXiv: High Energy Astrophysical Phenomena | 2008

Extremely long hard bursts observed by Konus‐Wind

Valentin Pal'Shin; R. L. Aptekar; Dmitry D. Frederiks; S. Golenetskii; V. Il'inskii; E. Mazets; Kazutaka Yamaoka; M. Ohno; K. Hurley; Takanori Sakamoto; P. Oleynik; M. Ulanov; I. G. Mitrofanov; D. V. Golovin; M. L. Lirvak; A. B. Sanin; William V. Boynton; C. Fellows; K. Harshman; C. Shinohara; Richard D. Starr

We report the observations of the prompt emission of the extremely long hard burst, GRB 060814B, discovered by Konus‐Wind and localized by the IPN. The observations reveal a smooth, hard, ∼40‐min long pulse followed by weaker emission seen several hours after the burst onset. We also present the Konus‐Wind data on similar burst, GRB 971208, localized by BATSE/IPN. And finally we discuss the different possible origins of these unusual events.

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Richard D. Starr

The Catholic University of America

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A. S. Kozyrev

Russian Academy of Sciences

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Maxim L. Litvak

Russian Federal Space Agency

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Anton B. Sanin

Russian Federal Space Agency

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S. Golenetskii

Russian Academy of Sciences

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E. Mazets

Russian Academy of Sciences

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Igor G. Mitrofanov

Russian Federal Space Agency

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