2019ApJ...884..142G


Query : 2019ApJ...884..142G

2019ApJ...884..142G - Astrophys. J., 884, 142-142 (2019/October-3)

Properties of density and velocity gaps induced by a planet in a protoplanetary disk.

GYEOL YUN H., KIM W.-T., BAE J. and HAN C.

Abstract (from CDS):

Gravitational interactions between a protoplanetary disk and its embedded planet are one of the formation mechanisms of gaps and rings found in recent ALMA observations. To quantify the gap properties measured in not only surface density but also rotational velocity profiles, we run two-dimensional hydrodynamic simulations of protoplanetary disks by varying three parameters: the mass ratio q of a planet to a central star, the ratio of the disk scale height hp to the orbital radius rp of the planet, and the viscosity parameter α. We find that the gap depth δΣ in the gas surface density depends on a single dimensionless parameter K≡q2(hp/rp)–5α–1 as δΣ=(1+0.046K)–1, consistent with the previous results of Kanagawa et al. The gap depth δV in the rotational velocity is given by δV=0.007(hp/rp)K1.38/(1+0.06K1.03). The gap width, in both surface density and rotational velocity, has a minimum of about 4.7hp when the planet mass Mp is around the disk thermal mass Mth, while it increases in a power-law fashion as Mp/Mth increases or decreases from unity. This minimum in the gap width arises because spirals from sub-thermal planets have to propagate before they shock the disk gas and open a gap. We compare our relations for the gap depth and width with the previous results, and discuss their applicability to observations.

Abstract Copyright: © 2019. The American Astronomical Society. All rights reserved.

Journal keyword(s): Protoplanetary disks - Hydrodynamical simulations - Hydrodynamics

Simbad objects: 18

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Number of rows : 18
N Identifier Otype ICRS (J2000)
RA
ICRS (J2000)
DEC
Mag U Mag B Mag V Mag R Mag I Sp type #ref
1850 - 2024
#notes
1 V* HL Tau Or* 04 31 38.5107609312 +18 13 57.859747968   15.89 14.49 14.39   K5 1424 0
2 V* AA Tau Or* 04 34 55.4201902392 +24 28 53.033624580 13.14 13.34 12.20 12.03   K5Ve 724 0
3 HD 36112 Ae* 05 30 27.5285630040 +25 19 57.076288752   8.57 8.27     A8Ve 469 0
4 V* V419 Hya BY* 10 43 28.2715703736 -29 03 51.432666948 9.144 8.596 7.719 7.232 6.806 K1V 183 0
5 V* TW Hya TT* 11 01 51.9053285064 -34 42 17.033218380   11.94 10.50 10.626 9.18 K6Ve 1892 1
6 HD 97048 Ae* 11 08 03.3109731720 -77 39 17.490777444 9.03 8.76 9.00   8.64 A0Vep 543 0
7 HD 100453 Ae* 11 33 05.5766482920 -54 19 28.547100696   8.09 7.79     F1Vn 284 1
8 CD-40 8434 TT* 14 08 10.1545500744 -41 23 52.573291080   13.42 12.18 11.71 10.506 K7IVe 359 0
9 CPD-36 6759 Y*O 15 15 48.4460065200 -37 09 16.024369824   9.21 8.708     F8V 463 1
10 HD 142527 Ae* 15 56 41.8882637904 -42 19 23.248281828   9.04 8.34     F6III 642 1
11 HD 143005 * 15 58 20.5639556496 -17 23 55.132826784   9.72 9.19     F0V 12 0
12 V* V1094 Sco TT* 16 08 36.1772010696 -39 23 02.464980972 16.01 15.00 13.48 12.47 11.45 ~ 78 1
13 Elia 2-24 TT* 16 26 24.0886188024 -24 16 13.448569260   16.3 14.40 15.81 13.97 K6 165 1
14 [GY92] 91 Y*O 16 26 40.46952 -24 27 14.4720           ~ 80 1
15 IRAS 16245-2423 TT* 16 27 37.1906433768 -24 30 35.025246828       16.66 14.67 B5-F2 307 0
16 EM* AS 209 TT* 16 49 15.3034917000 -14 22 08.643317664   12.62 11.28     K4Ve 390 0
17 HD 163296 Ae* 17 56 21.2881851168 -21 57 21.871819008 7.00 6.93 6.85 6.86 6.67 A3VaekA1mA1 1111 0
18 HD 169142 Ae* 18 24 29.7799891464 -29 46 49.327400568   8.42 8.16     F1VekA3mA3_lB? 448 0

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