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Dive into the research topics where C. M. Carr is active.

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Featured researches published by C. M. Carr.


Journal of Geophysical Research | 2006

Joint observations by Cluster satellites of bursty bulk flows in the magnetotail

Jintao Cao; Yiming Ma; G. K. Parks; H. Rème; I. Dandouras; R. Nakamura; T. L. Zhang; Q.-G. Zong; Elizabeth A. Lucek; C. M. Carr; Z. X. Liu; G. C. Zhou

[1] Using the observations of three satellites of Cluster (C1, C3, and C4) during the periods July to October 2001 and July to October 2002, we study 209 active time bursty bulk flows (BBFs), the difference between single satellite observations and multisatellite observations, and the difference among three selection criteria (two about BBFs and one about rapid convection event). Single satellite observations show that the average duration of BBFs selected by the criterion of Angelopoulos et al. is 604 s, while multisatellite observations show that the average duration of BBFs is 1105 s. Single satellite sometimes misses the BBFs. The missing ratio of single satellite is 22.4% for the criterion of Angelopoulos et al. and 44.9 % for the criterion of Raj et al. Therefore the single satellite observations cannot tell the true number of BBFs. The multisatellite observations are more important for the criterion of Raj et al. The single satellite observations also show that 22% of substorms are not accompanied by BBFs, while multisatellite observations show that only 4.5% of substorms are not accompanied by BBFs. Thus it seems possible that all substorms are accompanied by BBFs. The occurrence frequency of RCEs in the central plasma sheet obtained by multisatellites is 12.2%. The occurrence frequency of BBFs in the central plasma sheet is 9.5% for single satellite observations and 19.4% for multisatellite observations. So BBFs may contribute more to the transport of magnetic flux, mass, and energy than what was estimated by previous studies based on single satellite observations.


Journal of Geophysical Research | 2008

Occurrence of reconnection jets at the dayside magnetopause: Double Star observations

L. Trenchi; M. F. Marcucci; G. Pallocchia; Giuseppe Consolini; M. B. Bavassano Cattaneo; A. M. Di Lellis; H. Rème; L. M. Kistler; C. M. Carr; Jintao Cao

We present a statistical study on reconnection occurrence at the dayside magnetopause performed using the Double Star TC1 plasma and magnetic field data. We examined the magnetopause crossings that occurred during the first year of the mission in the 0600 1800 LT interval and we identified plasma flows, at the magnetopause or in the boundary layer, with a different velocity with respect to the adjacent magnetosheath. We used the Walen relation to test which of these flows could be generated by magnetic reconnection. For some event we observed opposite-directed reconnection jets, which could be associated with the passage of the X-line near the satellite. We analyzed the occurrence of the reconnection jets and reconnection jet reversals in relation to the magnetosheath parameters, in particular the local Alfven Mach number, the plasma beta, and the magnetic shear angle. We also studied the positions and velocities of the reconnection jets and jet reversals in relation to the magnetosheath magnetic field clock angle. We found that the observations indicate the presence of a reconnection line hinged near the subsolar point and tilted according to the observed magnetosheath clock angle, consistently with the component merging model.


Science | 2015

Birth of a comet magnetosphere: A spring of water ions

H. Nilsson; Gabriella Stenberg Wieser; E. Behar; Cyril Simon Wedlund; H. Gunell; M. Yamauchi; R. Lundin; Stas Barabash; Martin Wieser; C. M. Carr; E. Cupido; J. L. Burch; A. Fedorov; J.-A. Sauvaud; Hannu E. J. Koskinen; E. Kallio; Jean Pierre Lebreton; Anders Eriksson; Niklas J. T. Edberg; R. Goldstein; P. Henri; C. Koenders; P. Mokashi; Z. Nemeth; I. Richter; K. Szego; M. Volwerk; Claire Vallat; Martin Rubin

The Rosetta mission shall accompany comet 67P/Churyumov-Gerasimenko from a heliocentric distance of >3.6 astronomical units through perihelion passage at 1.25 astronomical units, spanning low and maximum activity levels. Initially, the solar wind permeates the thin comet atmosphere formed from sublimation, until the size and plasma pressure of the ionized atmosphere define its boundaries: A magnetosphere is born. Using the Rosetta Plasma Consortium ion composition analyzer, we trace the evolution from the first detection of water ions to when the atmosphere begins repelling the solar wind (~3.3 astronomical units), and we report the spatial structure of this early interaction. The near-comet water population comprises accelerated ions (<800 electron volts), produced upstream of Rosetta, and lower energy locally produced ions; we estimate the fluxes of both ion species and energetic neutral atoms.


Nature | 2007

Little or no solar wind enters Venus' atmosphere at solar minimum.

T.-L. Zhang; M. Delva; W. Baumjohann; H. U. Auster; C. M. Carr; C. T. Russell; S. Barabash; M. A. Balikhin; K. Kudela; G. Berghofer; H. K. Biernat; H. Lammer; Herbert I. M. Lichtenegger; W. Magnes; R. Nakamura; K. Schwingenschuh; M. Volwerk; Z. Vörös; W. Zambelli; K.-H. Fornacon; K.-H. Glassmeier; I. Richter; A. Balogh; H. Schwarzl; Simon Pope; J. K. Shi; C. Wang; Uwe Motschmann; J.-P. Lebreton

Venus has no significant internal magnetic field, which allows the solar wind to interact directly with its atmosphere2,3. A field is induced in this interaction, which partially shields the atmosphere, but we have no knowledge of how effective that shield is at solar minimum. (Our current knowledge of the solar wind interaction with Venus is derived from measurements at solar maximum.) The bow shock is close to the planet, meaning that it is possible that some solar wind could be absorbed by the atmosphere and contribute to the evolution of the atmosphere. Here we report magnetic field measurements from the Venus Express spacecraft in the plasma environment surrounding Venus. The bow shock under low solar activity conditions seems to be in the position that would be expected from a complete deflection by a magnetized ionosphere. Therefore little solar wind enters the Venus ionosphere even at solar minimum.


Annales Geophysicae | 2005

Double Star/Cluster observation of neutral sheet oscillations on 5 August 2004

T.-L. Zhang; R. Nakamura; M. Volwerk; A. Runov; W. Baumjohann; H. U. Eichelberger; C. M. Carr; A. Balogh; V. A. Sergeev; J. K. Shi; K.-H. Fornacon

Abstract. Previous Cluster observations have shown that the flapping motions of the Earths magnetotail are of internal origin and that kink-like waves are emitted from the central part of the tail and propagate toward the tail flanks. The newly launched Double Star Program (DSP) TC-1 satellite allows us to investigate neutral sheet at 10-13 Re in the tail. Using conjunctions with Cluster we will have simultaneous observations at 10-13 and 16-19 Re of these flapping motions. In this paper, we present the first results of neutral sheet oscillations observed by the Cluster and Double Star satellites on 5 August 2004.


Geophysical Research Letters | 2006

Do BBFs contribute to inner magnetosphere dipolarizations: concurrent cluster and double star observations

T. Takada; R. Nakamura; W. Baumjohann; Y. Asano; M. Volwerk; T. L. Zhang; B. Klecker; H. Rème; Elizabeth A. Lucek; C. M. Carr

[1] We examined the relationship between bursty bulk flow (BBF) events observed by Cluster between -19 R E -8 R E associated with BBFs at Cluster in our dataset suggests two possibilities: near-geosynchronous dipolarization needs another mechanism in addition to flux pile-up and braking, or during near-geosynchronous dipolarization the near-tail current sheet/plasma sheet is too thin to be observed by Cluster.


Astronomy and Astrophysics | 2015

Evolution of the ion environment of comet 67P/Churyumov-Gerasimenko - Observations between 3.6 and 2.0 AU

H. Nilsson; G. Stenberg Wieser; E. Behar; C. Simon Wedlund; E. Kallio; H. Gunell; Niklas J. T. Edberg; Anders Eriksson; M. Yamauchi; C. Koenders; Martin Wieser; R. Lundin; S. Barabash; K. Mandt; J. L. Burch; R. Goldstein; P. Mokashi; C. M. Carr; E. Cupido; P.T. Fox; K. Szego; Z. Nemeth; A. Fedorov; J.-A. Sauvaud; H. E. J. Koskinen; I. Richter; J.-P. Lebreton; P. Henri; M. Volwerk; Claire Vallat

Context. The Rosetta spacecraft is escorting comet 67P/Churyumov-Gerasimenko from a heliocentric distance of >3.6 AU, where the comet activity was low, until perihelion at 1.24 AU. Initially, the solar wind permeates the thin comet atmosphere formed from sublimation. Aims. Using the Rosetta Plasma Consortium Ion Composition Analyzer (RPC-ICA), we study the gradual evolution of the comet ion environment, from the first detectable traces of water ions to the stage where cometary water ions accelerated to about 1 keV energy are abundant. We compare ion fluxes of solar wind and cometary origin. Methods. RPC-ICA is an ion mass spectrometer measuring ions of solar wind and cometary origins in the 10 eV–40 keV energy range. Results. We show how the flux of accelerated water ions with energies above 120 eV increases between 3.6 and 2.0 AU. The 24 h average increases by 4 orders of magnitude, mainly because high-flux periods become more common. The water ion energy spectra also become broader with time. This may indicate a larger and more uniform source region. At 2.0 AU the accelerated water ion flux is frequently of the same order as the solar wind proton flux. Water ions of 120 eV–few keV energy may thus constitute a significant part of the ions sputtering the nucleus surface. The ion density and mass in the comet vicinity is dominated by ions of cometary origin. The solar wind is deflected and the energy spectra broadened compared to an undisturbed solar wind. Conclusions. The flux of accelerated water ions moving from the upstream direction back toward the nucleus is a strongly nonlinear function of the heliocentric distance.


Geophysical Research Letters | 2007

Global view of dayside magnetic reconnection with the dusk-dawn IMF orientation: A statistical study for Double Star and Cluster data

Z. Y. Pu; Xuanze Zhang; X. G. Wang; Jun Wang; X.-Z. Zhou; M. W. Dunlop; Lun Xie; C. J. Xiao; Q.-G. Zong; S. Y. Fu; Z. X. Liu; C. M. Carr; Z. W. Ma; Chao Shen; Elizabeth A. Lucek; H. Rème; P. Escoubet

Double Star/TC-1 and Cluster data show that both component reconnection and anti-parallel reconnection occur at the magnetopause when the interplanetary magnetic field ( IMF) is predominantly dawnward. The occurrence of these different features under these very similar IMF conditions are further confirmed by a statistical study of 290 fast flows measured in both the low and high latitude magnetopause boundary layers. The directions of these fast flows suggest a possible S-shaped configuration of the reconnection X-line under such a dawnward dominated IMF orientation.


Journal of Geophysical Research | 2009

A solar storm observed from the Sun to Venus using the STEREO, Venus Express, and MESSENGER spacecraft

A. P. Rouillard; J. A. Davies; R. J. Forsyth; N. P. Savani; N. R. Sheeley; A. Thernisien; T. L. Zhang; Russell A. Howard; Brian J. Anderson; C. M. Carr; S. Tsang; Mike Lockwood; C. J. Davis; R. A. Harrison; Danielle Bewsher; M. Fränz; S. R. Crothers; C. J. Eyles; Daniel Stephen Brown; Ian Whittaker; Mike Hapgood; A. J. Coates; G. H. Jones; M. Grande; R. A. Frahm; J. D. Winningham

The suite of SECCHI optical imaging instruments on the STEREO-A spacecraft is used to track a solar storm, consisting of several coronal mass ejections (CMEs) and other coronal loops, as it propagates from the Sun into the heliosphere during May 2007. The 3-D propagation path of the largest interplanetary CME (ICME) is determined from the observations made by the SECCHI Heliospheric Imager (HI) on STEREO-A (HI-1/2A). Two parts of the CME are tracked through the SECCHI images, a bright loop and a V-shaped feature located at the rear of the event. We show that these two structures could be the result of line-of-sight integration of the light scattered by electrons located on a single flux rope. In addition to being imaged by HI, the CME is observed simultaneously by the plasma and magnetic field experiments on the Venus Express and MESSENGER spacecraft. The imaged loop and V-shaped structure bound, as expected, the flux rope observed in situ. The SECCHI images reveal that the leading loop-like structure propagated faster than the V-shaped structure, and a decrease in in situ CME speed occurred during the passage of the flux rope. We interpret this as the result of the continuous radial expansion of the flux rope as it progressed outward through the interplanetary medium. An expansion speed in the radial direction of similar to 30 km s(-1) is obtained directly from the SECCHI-HI images and is in agreement with the difference in speed of the two structures observed in situ. This paper shows that the flux rope location can be determined from white light images, which could have important space weather applications.


Geophysical Research Letters | 2015

Spatial distribution of low-energy plasma around comet 67P/CG from Rosetta measurements

Niklas J. T. Edberg; Anders Eriksson; Elias Odelstad; P. Henri; J.-P. Lebreton; Sébastien Gasc; Martin Rubin; Mats André; R. Gill; Erik P. G. Johansson; F. L. Johansson; E. Vigren; Jan-Erik Wahlund; C. M. Carr; E. Cupido; K.-H. Glassmeier; R. Goldstein; C. Koenders; K. Mandt; Z. Nemeth; H. Nilsson; I. Richter; G. Stenberg Wieser; K. Szego; M. Volwerk

We use measurements from the Rosetta plasma consortium (RPC) Langmuir probe (LAP) and mutual impedance probe (MIP) to study the spatial distribution of low-energy plasma in the near-nucleus coma of comet 67P/Churyumov-Gerasimenko. The spatial distribution is highly structured with the highest density in the summer hemisphere and above the region connecting the two main lobes of the comet, i.e. the neck region. There is a clear correlation with the neutral density and the plasma to neutral density ratio is found to be ∼1-2·10 −6 , at a cometocentric distance of 10 km and at 3.1 AU from the sun. A clear 6.2 h modulation of the plasma is seen as the neck is exposed twice per rotation. The electron density of the collisonless plasma within 260 km from the nucleus falls of with radial distance as ∼1/r. The spatial structure indicates that local ionization of neutral gas is the dominant source of low-energy plasma around the comet.

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M. W. Dunlop

Rutherford Appleton Laboratory

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H. Rème

University of Toulouse

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W. Baumjohann

Austrian Academy of Sciences

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T. L. Zhang

Austrian Academy of Sciences

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Z. X. Liu

Chinese Academy of Sciences

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K.-H. Glassmeier

Braunschweig University of Technology

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A. Balogh

Imperial College London

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I. Richter

Braunschweig University of Technology

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