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    Délégation Paris 7

    1,344论文总数
    5.2万引用总数

    论文量&引用量时间轴

    机构学者

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    Jacques Delabrouille
    Jacques Delabrouille
    Astronomy Department, Shanghai Jiao Tong University;Laboratoire AstroParticule et Cosmologie
    论文:26引用:0H-index:0
    Samuele Galeotta
    Samuele Galeotta
    Osservatorio Astronomico di Trieste, Istituto Nazionale di Astrofisica
    论文:26引用:0H-index:0
    J. F. Macías-Pérez
    J. F. Macías-Pérez
    Laboratoire de Physique|et de Cosmologie|Institut Polytechnique de Grenoble
    论文:26引用:0H-index:0
    L. Valenziano
    L. Valenziano
    Helsinki Inst Phys, Univ Helsinki
    论文:25引用:0H-index:0
    Xavier Dupac
    Xavier Dupac
    European Space Agency
    论文:25引用:0H-index:0
    Alessandro Gruppuso
    Alessandro Gruppuso
    INAF OAS Bologna
    论文:25引用:0H-index:0
    Hannu Kurki-Suonio
    Hannu Kurki-Suonio
    Division of Particle Physics and Astrophysics, Department of Physics, Faculty of Science, University of Helsinki;Helsinki Institute of Physics, Faculty of Science, University of Helsinki
    论文:24引用:0H-index:0
    Torsten Enßlin
    Torsten Enßlin
    Max-Planck-Institut für Astrophysik;The International Max Planck Research School on Astrophysics, Ludwig Maximilians University
    论文:22引用:0H-index:0
    Dipak Munshi
    Dipak Munshi
    Queen Mary and Westfield College
    论文:21引用:0H-index:0

    论文(1344)

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    1Rings Around Small Bodies: the 1/3 Resonance is Key
    Bruno Sicardy,Heikki Salo,Damya Souami,Stéfan Renner,Bruno Morgado,Felipe Braga-Ribas,Gustavo Benedetti-Rossi,Thamiris de Santana

    Narrow and dense rings have been discovered around the small Centaur object Chariklo (Braga-Ribas et al 2014) and the dwarf planet Haumea (Ortiz et al. 2017). Both ring systems are observed close to the 1/3 resonance with the central body, meaning that the particles complete one revolution while the body completes three rotations.The potential of small bodies can have large non-axisymmetric terms when compared to the giants planets. As a result, strong resonant couplings occur between the body and a surrounding collisional, dissipative disk (Sicardy et al. 2019). Those resonances are described by a critical angle φ= mλ' - (m-j)λ - jϖ, where j>0 is the resonant order (i.e. the order in eccentricity of the resonant term in the Hamiltonian), m (m0) is the azimuthal number, λ' (resp. λ) is the rotational angle of the body (resp. the particle), and ϖ is the longitude of periapse of the particle.Among the j= 1 (Lindblad), 2, 3 and 4 resonances, only the cases j= 1 and 2 can have an unstable (more precisely non-elliptic) point at the origin of the phase portrait describing [X= e.cos(φ), Y= e.sin(φ)], where e is the eccentricity and φ is the critical angle previously defined. The 1/3 resonant in particular has m=-1 and j=2, and is thus of second order. For a narrow range of the Jacobi constant associated with that resonance [i.e. a - (3/2)a0e2, where a is the ring's semi-major axis and a0 is the semi-major axis at exact resonance], the origin of the phase portrait is hyperbolic, hence unstable.This instability triggers an eccentricity excitation of the ring near the 1/3 resonance, a source of torque on that ring. Such resonance can be created by a mass anomaly in the central body. We have tested this mechanism by simulating a ring with 30,000 particles undergoing inelastic collisions near the 1/3 resonance with Chariklo, in the presence of a large mass anomaly that represents 0.1 the mass of the body. Preliminary results are shown in the figure above. The density of particles has been plotted in a (Jacobi constant-eccentricity) diagram, with the exact resonance location plotted as the vertical dash-dotted gray line. The solid gray line is the expected maximum eccentricity reached by particles for the corresponding Jacobi constant. Panel (a): initial conditions for the 30,000 ring particles; panel (b): the particles after 2,000 Chariklo rotations (about 1.6 years) during the excitation phase due to the 1/3 resonance; panel (c): the particles in the time interval 9,000-9,900 Chariklo rotations (~7-8 years). At that point, the ring has settled just outside the resonance location, reaching a balance between the eccentricity and semi-major dampings due to inelastic collisions, and the eccentricity excitation caused by the resonance. More quantitative results will be presented, in particular the effect of smaller, more realistic, mass anomalies, and the assessment of a possible slow outward drift caused by a residual secular torque on the ring. Meanwhile, the observed behavior in those simulations appears as a promising mechanism to explain the proximity of both Chariklo's and Haumea's rings to the 1/3 resonance. ReferencesBraga-Ribas et al. 2014, Nature 508, 72Ortiz et al. 2017, Nature 550, 219Sicardy et al. 2019, Nature Astronomy 3, 146Sicardy et al. 2020, in The Trans-Neptunian Solar System (Eds. D. Prialnik, M.A. Barucci and L. Young), Elsevier (Chapter 11) Acknowledgements. The work leading to these results has received funding from the European Research Council under the European Community's H2020 2014-2021 ERC Grant Agreement n°669416 "Lucky Star".

    2024引用:3
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    2How Can We Choose Relevant Mathematical Content to Help Future Teachers Understand and Overcome Klein's Second Discontinuity? the Case of the Scalar Product
    Nicolas Grenier-Boley
    2024
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    3Propos Sur L’interception Des Malocclusions De La Dimension Transversale : Au Sujet D’un Cas
    Claude Chabre
    2024Revue d'Orthopédie Dento-Faciale(2024)
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    4The May 26, 2020 Multi-Chord Stellar Occultation by the Trans-Neptunian Object (119951) 2002 KX14 
    Mike Kretlow,J. L. Ortiz,B. Sicardy,J. Desmars,P. Santos-Sanz,N. Morales,F. Braga-Ribas,Mónica Vara-Lubiano,F. L. Rommel,D. Souami,R. Duffárd,A. Álvarez-Candal,

    Centaurs and trans-Neptunian objects (TNOs) are considered to be the most pristine members of our solar system, beside Oort cloud objects.The observation of stellar occultations by solar system objects is a powerful technique to directly measure their size and profile shapes with kilometer accuracy [e.g. 1, and references therein], to probe the environment of them with the possibility to reveal satellites and / or rings [e.g. 2, 3] and to detect or to constrain an atmosphere down to the nanobar level [e.g. 4]. Finally it provides a high-accuracy astrometric measurement, which can for example be used for improving the prediction of subsequent occultation events within short or mid-term time spans.Here we report the observation of an occultation event of the star Gaia DR2 4111560308371475840 (G = 14.6 mag) by the TNO (119951) 2002 KX14 on May 26, 2020. The shadow was predicted to cross eastern Europe (Fig. 1) and the event was observed successfully by ten stations supplemented by another good dozen of stations which had a miss (no event detected).2002 KX14 is a low-inclination (i ~ 0.4°), low-eccentricity (e ~ 0.04) cold classical TNO, orbiting the Sun at an average distance of a ~ 39 au. The radiometric diameter is given as 455 ± 27 km [5]. On April 26, 2012, an occultation by this object was observed with the 4.2-m William Herschel Telescope on La Palma (Spain) at high cadence. From this single-chord observation (with a chord length of 415 ± 1 km), combined with accurate astrometry at the time of occultation, an area-equivalent diameter of at least 365 (+30, -21) km was estimated [6]. The rotational period is yet unknown. The lightcurve amplitude is reported as Δm

    2024
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    5The Press and Literature: on a Recent Work Devoted to the Revue De Paris
    José-Luis Dı́az
    2024
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