CHEOPS observations of the HD 108236 planetary system: a fifth planet, improved ephemerides, and planetary radii★

Astronomy & Astrophysics EDP Sciences 646 (2021) a157

Authors:

A Bonfanti, L Delrez, MJ Hooton, TG Wilson, L Fossati, Y Alibert, S Hoyer, AJ Mustill, HP Osborn, V Adibekyan, D Gandolfi, S Salmon, SG Sousa, A Tuson, V Van Grootel, J Cabrera, V Nascimbeni, PFL Maxted, SCC Barros, N Billot, X Bonfils, L Borsato, C Broeg, MB Davies, M Deleuil, ODS Demangeon, M Fridlund, G Lacedelli, M Lendl, C Persson, NC Santos, G Scandariato, Gy M Szabó, A Collier Cameron, S Udry, W Benz, M Beck, D Ehrenreich, A Fortier, KG Isaak, D Queloz, R Alonso, J Asquier, T Bandy, T Bárczy, D Barrado, O Barragán, W Baumjohann, T Beck, A Bekkelien, M Bergomi, A Brandeker, M-D Busch, V Cessa, S Charnoz, B Chazelas, C Corral Van Damme, B-O Demory, A Erikson, J Farinato, D Futyan, A Garcia Muñoz, M Gillon, M Guedel, P Guterman, J Hasiba, K Heng, E Hernandez, L Kiss, T Kuntzer, J Laskar, A Lecavelier des Etangs, C Lovis, D Magrin, L Malvasio, L Marafatto, H Michaelis, M Munari, G Olofsson, H Ottacher, R Ottensamer, I Pagano, E Pallé, G Peter, D Piazza, G Piotto, D Pollacco, R Ragazzoni, N Rando, F Ratti, H Rauer, I Ribas, M Rieder, R Rohlfs, F Safa, M Salatti, D Ségransan, AE Simon, AMS Smith, M Sordet, M Steller, N Thomas, M Tschentscher, V Van Eylen, V Viotto, I Walter, NA Walton, F Wildi, D Wolter

On a new formulation for energy transfer between convection and fast tides with application to giant planets and solar type stars

Monthly Notices of the Royal Astronomical Society Royal Astronomical Society 503:4 (2021) 5789-5806

Abstract:

All the studies of the interaction between tides and a convective flow assume that the large scale tides can be described as a mean shear flow which is damped by small scale fluctuating convective eddies. The convective Reynolds stress is calculated using mixing length theory, accounting for a sharp suppression of dissipation when the turnover timescale is larger than the tidal period. This yields tidal dissipation rates several orders of magnitude too small to account for the circularization periods of late–type binaries or the tidal dissipation factor of giant planets. Here, we argue that the above description is inconsistent, because fluctuations and mean flow should be identified based on the timescale, not on the spatial scale, on which they vary. Therefore, the standard picture should be reversed, with the fluctuations being the tidal oscillations and the mean shear flow provided by the largest convective eddies. We assume that energy is locally transferred from the tides to the convective flow. Using this assumption, we obtain values for the tidal Q factor of Jupiter and Saturn and for the circularization periods of PMS binaries in good agreement with observations. The timescales obtained with the equilibrium tide approximation are however still 40 times too large to account for the circularization periods of late–type binaries. For these systems, shear in the tachocline or at the base of the convective zone may be the main cause of tidal dissipation.

Vertically resolved magma ocean–protoatmosphere evolution: H2, H2O, CO2, CH4, CO, O2, and N2 as primary absorbers

Journal of Geophysical Research: Planets American Geophysical Union (AGU) (2021)

Authors:

Tim Lichtenberg, Dan J Bower, Mark Hammond, Ryan Boukrouche, Patrick Sanan, Shang‐Min Tsai, Raymond T Pierrehumbert

Predicting the observability of population III stars with ELT-HARMONI via the helium 1640 Å emission line

Monthly Notices of the Royal Astronomical Society Oxford University Press 501:4 (2021) 5517-5537

Authors:

Kearn Grisdale, Niranjan Thatte, Julien Devriendt, Miguel Pereira Santaella, Adrianne Slyz, Taysun Kimm, Yohan Dubois, Sukyoung Yi

Abstract:

Population III (Pop. III) stars, as of yet, have not been detected, however as we move into the era of extremely large telescopes this is likely to change. One likely tracer for Pop. III stars is the He IIλ1640 emission line, which will be detectable by the HARMONI spectrograph on the European Extremely Large Telescope (ELT) over a broad range of redshifts (2 ≤ z ≤ 14). By post-processing galaxies from the cosmological, AMR-hydrodynamical simulation NEWHORIZON with theoretical spectral energy distributions (SED) for Pop. III stars and radiative transfer (i.e. the Yggdrasil Models and CLOUDY look-up tables, respectively) we are able to compute the flux of He IIλ1640 for individual galaxies. From mock 10 h observations of these galaxies we show that HARMONI will be able to detect Pop. III stars in galaxies up to z ∼ 10 provided Pop. III stars have a top heavy initial mass function (IMF). Furthermore, we find that should Pop. III stars instead have an IMF similar to those of the Pop. I stars, the He IIλ1640 line would only be observable for galaxies with Pop. III stellar masses in excess of 107M⊙⁠, average stellar age <1Myr at z = 4. Finally, we are able to determine the minimal intrinsic flux required for HARMONI to detect Pop. III stars in a galaxy up to z = 10.

A planetary system with two transiting mini-Neptunes near the radius valley transition around the bright M dwarf TOI-776

ASTRONOMY & ASTROPHYSICS 645 (2021) ARTN A41

Authors:

R Luque, LM Serrano, K Molaverdikhani, MC Nixon, JH Livingston, EW Guenther, E Palle, N Madhusudhan, G Nowak, J Korth, WD Cochran, T Hirano, P Chaturvedi, E Goffo, S Albrecht, O Barragan, C Briceno, J Cabrera, D Charbonneau, R Cloutier, KA Collins, KI Collins, KD Colon, IJM Crossfield, Sz Csizmadia, F Dai, HJ Deeg, M Esposito, M Fridlund, D Gandolfi, I Georgieva, A Glidden, RF Goeke, S Grziwa, AP Hatzes, CE Henze, SB Howell, J Irwin, JM Jenkins, ELN Jensen, P Kabath, Kidwell RC Jr, JF Kielkopf, E Knudstrup, KWF Lam, DW Latham, JJ Lissauer, AW Mann, EC Matthews, I Mireles, N Narita, M Paegert, CM Persson, S Redfield, GR Ricker, F Rodler, JE Schlieder, NJ Scott, S Seager, J Subjak, TG Tan, EB Ting, R Vanderspek, V Van Eylen, JN Winn, C Ziegler