Parker Solar Probe Observations of Compound Reconnection Exhaust Boundaries and Mirror-Mode Structures in the Near-Sun Heliospheric Current Sheet

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Main Authors: Sun, Weijie, Phan, Tai, Huang, Jia, Liu, Yi-Hsin, Slavin, James A., Romeo, Orlando, Liu, Mingzhe, Angelopoulos, Vassilis, Rahmati, Ali, Larson, Davin, Walia, Nehpreet, Bale, Stuart, Pulupa, Marc, Zhao, Jiutong, Livi, Roberto
Format: Preprint
Published: 2026
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author Sun, Weijie
Phan, Tai
Huang, Jia
Liu, Yi-Hsin
Slavin, James A.
Romeo, Orlando
Liu, Mingzhe
Angelopoulos, Vassilis
Rahmati, Ali
Larson, Davin
Walia, Nehpreet
Bale, Stuart
Pulupa, Marc
Zhao, Jiutong
Livi, Roberto
author_facet Sun, Weijie
Phan, Tai
Huang, Jia
Liu, Yi-Hsin
Slavin, James A.
Romeo, Orlando
Liu, Mingzhe
Angelopoulos, Vassilis
Rahmati, Ali
Larson, Davin
Walia, Nehpreet
Bale, Stuart
Pulupa, Marc
Zhao, Jiutong
Livi, Roberto
contents Magnetic reconnection is a fundamental physical process that can drive rapid conversion of magnetic energy into plasma bulk flows, thermal heating, and particle acceleration in space and astrophysical plasmas. Classical reconnection theory predicts that the Alfvenic reconnection exhausts are bounded by pairs of slow-mode shocks. However, identifying and characterizing these shocks through in situ spacecraft observations remains a challenge. Here we report Parker Solar Probe (PSP) observations of a reconnection exhaust embedded in the heliospheric current sheet (HCS) at a heliocentric distance of 12.2 R_O. The reconnection exhaust is bounded on both boundaries by compound magnetic structures rather than a pair of pure slow shocks. Each boundary consists of a rapidly evolving, steep inner slow shock, whose Mach numbers and shock-normal angles change significantly within several minutes, and an outer, gradual compound structure which comprises a slow shock and a rotational discontinuity. These slow shocks are quasi-perpendicular and are accompanied by enhanced proton perpendicular heating. Deep within the reconnection exhaust, high perpendicular temperature together with large plasma beta trigger mirror instability and generate mirror-mode structures. These observations provide new insights into the structure of reconnection exhaust boundaries and their role in energy conversion in the near-Sun plasma.
format Preprint
id arxiv_https___arxiv_org_abs_2604_26137
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Parker Solar Probe Observations of Compound Reconnection Exhaust Boundaries and Mirror-Mode Structures in the Near-Sun Heliospheric Current Sheet
Sun, Weijie
Phan, Tai
Huang, Jia
Liu, Yi-Hsin
Slavin, James A.
Romeo, Orlando
Liu, Mingzhe
Angelopoulos, Vassilis
Rahmati, Ali
Larson, Davin
Walia, Nehpreet
Bale, Stuart
Pulupa, Marc
Zhao, Jiutong
Livi, Roberto
Solar and Stellar Astrophysics
Space Physics
Magnetic reconnection is a fundamental physical process that can drive rapid conversion of magnetic energy into plasma bulk flows, thermal heating, and particle acceleration in space and astrophysical plasmas. Classical reconnection theory predicts that the Alfvenic reconnection exhausts are bounded by pairs of slow-mode shocks. However, identifying and characterizing these shocks through in situ spacecraft observations remains a challenge. Here we report Parker Solar Probe (PSP) observations of a reconnection exhaust embedded in the heliospheric current sheet (HCS) at a heliocentric distance of 12.2 R_O. The reconnection exhaust is bounded on both boundaries by compound magnetic structures rather than a pair of pure slow shocks. Each boundary consists of a rapidly evolving, steep inner slow shock, whose Mach numbers and shock-normal angles change significantly within several minutes, and an outer, gradual compound structure which comprises a slow shock and a rotational discontinuity. These slow shocks are quasi-perpendicular and are accompanied by enhanced proton perpendicular heating. Deep within the reconnection exhaust, high perpendicular temperature together with large plasma beta trigger mirror instability and generate mirror-mode structures. These observations provide new insights into the structure of reconnection exhaust boundaries and their role in energy conversion in the near-Sun plasma.
title Parker Solar Probe Observations of Compound Reconnection Exhaust Boundaries and Mirror-Mode Structures in the Near-Sun Heliospheric Current Sheet
topic Solar and Stellar Astrophysics
Space Physics
url https://arxiv.org/abs/2604.26137