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Broadening the Canonical Picture of EUV-Driven Photoevaporation of Accretion Disks

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arxiv 2406.18461 v1 pith:6BSGWNWG submitted 2024-06-26 astro-ph.EP

classification astro-ph.EP
keywords modelwindsphotoevaporationclassicalphotoionizationpictureanalyticalapprox
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abstract

Photoevaporation driven by hydrogen-ionizing radiation, also known as extreme-ultraviolet (EUV), profoundly shapes the lives of diverse astrophysical objects. Focusing here mainly on the dispersal of protoplanetary disks, we construct an analytical model accounting for the finite timescales of photoheating and photoionization. The model offers improved estimates for the ionization, temperature, and velocity structures versus distance from the central source, for a given EUV emission rate and spectral hardness. Compared to the classical picture of fully-ionized and isothermal winds with temperatures $\approx 10^4{\rm \,K}$ and speeds $\approx 10{\rm \,km\,s^{-1}}$, our model unveils broader hydrodynamical and thermochemical states of photoevaporative winds. In contrast to the classical picture, T~Tauri stars with EUV luminosities around $10^{30}{\rm \,erg\,s^{-1}}$ have non-isothermal ionized winds at lower temperatures than the classical value if the spectrum is soft, with an average deposited energy per photoionization less than about 3.7\,eV. Conversely, if the spectrum is hard, the winds tend to be atomic and isothermal at most radii in the disk. For lower EUV intensities, even with soft spectra, atomic winds can emerge beyond $\sim 10{\, \rm au}$ through advection. We demonstrate that the analytical model's predictions are in general agreement with detailed radiation-hydrodynamics calculations. The model furthermore illustrates how the energy efficiency of photoevaporation varies with the intensity and spectral hardness of the EUV illumination, as well as addressing discrepancies in the literature around the effectiveness of X-ray photoevaporation. These findings highlight the importance of considering the finite timescales of photoheating and photoionization, both in modeling and in interpreting observational data.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Physically motivated analytic model of energy efficiency for EUV-driven atmospheric escape of close-in exoplanets

    astro-ph.EP 2025-02 conditional novelty 6.0 of 10

    An analytic efficiency formula for EUV-driven exoplanet mass loss bridges energy-limited and recombination-limited regimes and links Ly-alpha and H-alpha detections to escape rates.

  2. Secret of Longevity: Protoplanetary Disks as a Source of Gas in Debris Disks

    astro-ph.EP 2024-11 conditional novelty 5.0 of 10

    Massive, low-turbulence, small-grain-depleted disks around one to five solar-mass stars can retain gas for 10-100 million years, with the longest lifetimes near two solar masses, supporting a primordial origin for gas...

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