Effect of interplanetary shock waves on turbulence parameters

Fuente: arXiv
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Auteurs principaux: Kilpua, Emilia, Good, Simon, Soljento, Juska, Trotta, Domenico, Bäcker, Tia, Ruohotie, Julia, Pomoell, Jens, Sishtla, Chaitanya, Vainio, Rami
Format: Preprint
Publié: 2025
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author Kilpua, Emilia
Good, Simon
Soljento, Juska
Trotta, Domenico
Bäcker, Tia
Ruohotie, Julia
Pomoell, Jens
Sishtla, Chaitanya
Vainio, Rami
author_facet Kilpua, Emilia
Good, Simon
Soljento, Juska
Trotta, Domenico
Bäcker, Tia
Ruohotie, Julia
Pomoell, Jens
Sishtla, Chaitanya
Vainio, Rami
contents We have performed an extensive statistical investigation of how interplanetary fast forward shocks affect certain turbulence parameters, namely, the cross-helicity, $σ_c$, residual energy, $σ_r$, and magnetic helicity, $σ_m$. A total of 371 shocks detected by Wind at 1 au and seven shocks by Solar Orbiter at 0.3-0.5 au have been analysed. We explore how the aforementioned turbulence parameters and their variation across the shock depend on shock characteristics including the gas compression ratio, upstream plasma beta, velocity jump and shock angle. In the shock vicinity, fluctuations tend on average to show antisunward imbalance (measured as $σ_c>0$ when rectified to the Parker spiral direction), a dominance of magnetic energy ($σ_r<0$) and zero $σ_m$, all being typical solar wind properties . Antisunward imbalance and equipartition ($σ_r \sim0$) in the upstream is increasingly prevalent with increasing shock velocity jump and decreasing upstream beta and shock angle. Shocks with large velocity jumps and gas compression ratios have considerably more balanced ($σ_c\sim0$) and more magnetically dominated fluctuations downstream than upstream. From upstream to downstream, we also find that the occurrence of time periods fulfilling strict criteria for Alfvénic fluctuations (AFs) usually decreases, while those meeting the criteria for small-scale flux ropes (SFRs) increases. The occurrence of AF periods peaks for quasi-parallel shocks with large velocity jumps and small upstream beta. The occurrence of SFRs increases with increasing gas compression ratio and upstream beta. The shocks observed by Solar Orbiter below 0.5 au display similar distributions of turbulence parameters and upstream-to-downstream changes to those detected at 1 au. These results are relevant for understanding turbulence and charged-particle acceleration at collisionless shocks.
format Preprint
id arxiv_https___arxiv_org_abs_2505_04450
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Effect of interplanetary shock waves on turbulence parameters
Kilpua, Emilia
Good, Simon
Soljento, Juska
Trotta, Domenico
Bäcker, Tia
Ruohotie, Julia
Pomoell, Jens
Sishtla, Chaitanya
Vainio, Rami
Solar and Stellar Astrophysics
Plasma Physics
Space Physics
We have performed an extensive statistical investigation of how interplanetary fast forward shocks affect certain turbulence parameters, namely, the cross-helicity, $σ_c$, residual energy, $σ_r$, and magnetic helicity, $σ_m$. A total of 371 shocks detected by Wind at 1 au and seven shocks by Solar Orbiter at 0.3-0.5 au have been analysed. We explore how the aforementioned turbulence parameters and their variation across the shock depend on shock characteristics including the gas compression ratio, upstream plasma beta, velocity jump and shock angle. In the shock vicinity, fluctuations tend on average to show antisunward imbalance (measured as $σ_c>0$ when rectified to the Parker spiral direction), a dominance of magnetic energy ($σ_r<0$) and zero $σ_m$, all being typical solar wind properties . Antisunward imbalance and equipartition ($σ_r \sim0$) in the upstream is increasingly prevalent with increasing shock velocity jump and decreasing upstream beta and shock angle. Shocks with large velocity jumps and gas compression ratios have considerably more balanced ($σ_c\sim0$) and more magnetically dominated fluctuations downstream than upstream. From upstream to downstream, we also find that the occurrence of time periods fulfilling strict criteria for Alfvénic fluctuations (AFs) usually decreases, while those meeting the criteria for small-scale flux ropes (SFRs) increases. The occurrence of AF periods peaks for quasi-parallel shocks with large velocity jumps and small upstream beta. The occurrence of SFRs increases with increasing gas compression ratio and upstream beta. The shocks observed by Solar Orbiter below 0.5 au display similar distributions of turbulence parameters and upstream-to-downstream changes to those detected at 1 au. These results are relevant for understanding turbulence and charged-particle acceleration at collisionless shocks.
title Effect of interplanetary shock waves on turbulence parameters
topic Solar and Stellar Astrophysics
Plasma Physics
Space Physics
url https://arxiv.org/abs/2505.04450