Spatial and Temporal Distribution of Nanoflare Heating During Active Region Evolution

Fuente: arXiv
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Main Authors: Mondal, Biswajit, Klimchuk, James A, Winebarger, Amy R., Athiray, P. S., Liu, Jiayi
Format: Preprint
Published: 2024
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author Mondal, Biswajit
Klimchuk, James A
Winebarger, Amy R.
Athiray, P. S.
Liu, Jiayi
author_facet Mondal, Biswajit
Klimchuk, James A
Winebarger, Amy R.
Athiray, P. S.
Liu, Jiayi
contents Nanoflares are believed to be key contributors to heating solar non-flaring active regions, though their individual detection remains challenging. This study uses a data-driven field-aligned hydrodynamic model to examine nanoflare properties throughout the lifecycle of AR12758. We simulate coronal loop emissions, where each loop is heated by random nanoflares depending on the loop parameters derived from photospheric magnetograms observed by SDO/HMI. Simulated X-ray flux and temperature can reproduce the temporal variations observed by Chandrayaan-2/XSM. Our findings show that high-frequency nanoflares contribute to cool emissions across the AR, while low- and intermediate- frequency primarily contribute to hot emissions. During the emerging phase, energy deposition is dominated by low-frequency events. Post-emergence, energy is deposited by both low- and intermediate-frequency nanoflares, while as the AR ages, the contribution from intermediate- and high-frequency nanoflares increases. The spatial distribution of heating frequencies across the AR reveals a clear pattern: the core of the active region spends most of its time in a low-frequency heating state, the periphery is dominated by high-frequency heating, and the region between the core and periphery experiences intermediate-frequency heating.
format Preprint
id arxiv_https___arxiv_org_abs_2412_20348
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Spatial and Temporal Distribution of Nanoflare Heating During Active Region Evolution
Mondal, Biswajit
Klimchuk, James A
Winebarger, Amy R.
Athiray, P. S.
Liu, Jiayi
Solar and Stellar Astrophysics
Nanoflares are believed to be key contributors to heating solar non-flaring active regions, though their individual detection remains challenging. This study uses a data-driven field-aligned hydrodynamic model to examine nanoflare properties throughout the lifecycle of AR12758. We simulate coronal loop emissions, where each loop is heated by random nanoflares depending on the loop parameters derived from photospheric magnetograms observed by SDO/HMI. Simulated X-ray flux and temperature can reproduce the temporal variations observed by Chandrayaan-2/XSM. Our findings show that high-frequency nanoflares contribute to cool emissions across the AR, while low- and intermediate- frequency primarily contribute to hot emissions. During the emerging phase, energy deposition is dominated by low-frequency events. Post-emergence, energy is deposited by both low- and intermediate-frequency nanoflares, while as the AR ages, the contribution from intermediate- and high-frequency nanoflares increases. The spatial distribution of heating frequencies across the AR reveals a clear pattern: the core of the active region spends most of its time in a low-frequency heating state, the periphery is dominated by high-frequency heating, and the region between the core and periphery experiences intermediate-frequency heating.
title Spatial and Temporal Distribution of Nanoflare Heating During Active Region Evolution
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2412.20348