The Soft X-ray Lightcurves of Partially Eclipsed Stellar Flares
arXiv:1108.3999 · doi:10.1111/j.1365-2966.2011.19666.x
Abstract
Most stellar flares' soft X-ray lightcurves possess a `typical' morphology, which consists of a rapid rise followed by a slow exponential decay. However, a study of 216 of the brightest flares on 161 pre-main sequence stars, observed during the Chandra Orion-Ultradeep Project (COUP), showed that many flare lightcurves depart from this typical morphology. While this can be attributed to the superposition of multiple typical flares, we explore the possibility that the time-variable eclipsing of flares by their host stars may also be an important factor. We assume each flare is contained within a single, uniform plasma density magnetic loop and specify the intrinsic variation of the flare's emission measure with time. We consider rotational eclipse by the star itself, but also by circumstellar discs and flare-associated prominences. Based on this simple model, we generate a set of flares similar to those observed in the COUP database. Many eclipses simply reduce the flare's maximum emission measure or decay time. We conclude therefore that eclipses often pass undetected, but usually have only a modest influence on the flare emission measure profile and hence the derived loop lengths. We show that eclipsing can easily reproduce the observed atypical flare morphologies. The number of atypical modelled flare morphologies is however much less than that found in the COUP sample. The large number of observed atypical flare morphologies, therefore, must be attributed to other processes such as multiple flaring loops.
11 pages, 9 figures
References in corpus (6)
- X-ray flares in Orion young stars. I. Flare characteristics
- Scaling laws of solar and stellar flares
- X-Ray flares in Orion Young Stars. II. Flares, Magnetospheres, and Protoplanetary Disks
- A study of X-ray flares - I. Active late-type dwarfs
- The coronal structure of Speedy Mic - II: Prominence masses and off-disc emission
- Eclipsed X-ray flares in binary stars: geometrical constraints on the flare's location and size
Cited by in corpus (17)
- On the Cluster Physics of Sunyaev-Zel'dovich Surveys I: The Influence of Feedback, Non-thermal Pressure and Cluster Shapes on Y-M Scaling Relations
- Subsonic turbulence in smoothed particle hydrodynamics and moving-mesh simulations
- Mass loss in pre-main sequence stars via coronal mass ejections and implications for angular momentum loss
- Weighing Galaxy Clusters with Gas. I. On the Methods of Computing Hydrostatic Mass Bias
- Buoyancy Instabilities in a Weakly Collisional Intracluster Medium
- X-ray Super-Flares From Pre-Main Sequence Stars: Flare Energetics And Frequency
- Detection of a giant flare displaying quasi-periodic pulsations from a pre-main sequence M star with NGTS
- Predicting Merger-Induced Gas Motions in Lambda-CDM Galaxy Clusters
- Giant white-light flares on fully convective stars occur at high latitudes
- X-ray variability of PMS stars - Toward an explanation of the different X-ray properties of CTTS and WTTS
- The polytropic approximation and X-ray scaling relations: constraints on gas and dark matter profiles for galaxy groups and clusters
- A simple parametric model for spherical galaxy clusters
- Probing Gas Motions in the Intra-Cluster Medium: A Mixture Model Approach
- Cosmological Simulations of Isotropic Conduction in Galaxy Clusters
- Testing hydrostatic equilibrium in galaxy cluster MS 2137
- HD314884: A Slowly Pulsating B star in a Close Binary
- Einstein Probe Discovery of an X-ray Flare from K-type Star PM J23221-0301