The Relation between Solar Spicules and Magnetohydrodynamic Shocks
arXiv:2506.21517 · doi:10.3847/1538-4357/ade9b4
Abstract
Spicules are thin, elongated jet-like features seen in observations of the solar atmosphere, at the interface between the solar photosphere and the corona. These features exhibit highly complex dynamics and are a necessary connecting link between the cooler, denser solar chromosphere and the extremely hot, tenuous corona. In this work, we explore the spatial and temporal relation between solar spicules and magneto-hydrodynamic (MHD) shocks using data from a 2D radiative MHD (rMHD) simulation of the solar atmosphere driven by solar convection. Here, we demonstrate, through direct identification, that slow MHD shocks, which propagate along magnetic field lines, are regions of strong positive vertical acceleration of the plasma that forms the tip of the spicule material during its rise phase. We quantify the effect of pressure and Lorentz forces on the acceleration of the plasma inside the shocks during the rise of spicules. The causality between spicule and shock propagation in the atmosphere of the model is also investigated. It is further shown that the strength of these shocks may play a vital role in determining the height of the spicules, supporting the idea that shocks act as drivers of some spicules. In addition, we also find the presence of structures similar to propagating coronal disturbances (PCDs) in the simulation, linked with the spicules. Here, PCDs appear to be associated with the shock waves driving the spicules that subsequently propagate into the corona and have similar speeds to those reported in observations.
12 pages, 11 figures. Accepted for publication in ApJ. The animation is available as an ancillary file
References in corpus (17)
- Array Programming with NumPy
- Dynamic Fibrils are driven by Magnetoacoustic Shocks
- High Resolution Observations and Modeling of Dynamic Fibrils
- On the generation of solar spicules and Alfvénic waves
- Generation of Solar Spicules and Subsequent Atmospheric Heating
- An Interface Region Imaging Spectrograph first view on Solar Spicules
- Magnetoacoustic shocks as driver of quiet Sun mottles
- Three-dimensional Magnetohydrodynamic Simulation of the Formation of Solar Chromospheric Jets with Twisted Magnetic Field Lines
- The Role of Type II Spicules in the Upper Solar Atmosphere
- Observations and numerical models of solar coronal heating associated with spicules
- Radiative transfer in decomposed domains
- Polymeric jets throw light on the origin and nature of the forest of solar spicules
- The chromosphere underneath a Coronal Bright Point
- MHD modeling of coronal loops: injection of high-speed chromospheric flows
- Contribution of spicules to solar coronal emission
- Modelling the connection between propagating disturbances and solar spicules
- Dependence of Spicule Properties on the Magnetic Field -- Results from Magnetohydrodynamics Simulations