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  1. 原著論文

Plasma heating and current sheet structure in anti-parallel magnetic reconnection

https://repo.qst.go.jp/records/84641
https://repo.qst.go.jp/records/84641
f78fff92-efc8-43de-ab5a-e61f9503f2ff
Item type 学術雑誌論文 / Journal Article(1)
公開日 2021-09-30
タイトル
タイトル Plasma heating and current sheet structure in anti-parallel magnetic reconnection
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
アクセス権
アクセス権 metadata only access
アクセス権URI http://purl.org/coar/access_right/c_14cb
著者 Z. Cheng, C.

× Z. Cheng, C.

WEKO 1021533

Z. Cheng, C.

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Shizuo, Inoue

× Shizuo, Inoue

WEKO 1021534

Shizuo, Inoue

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Ono, Y.

× Ono, Y.

WEKO 1021535

Ono, Y.

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Tanabe, H.

× Tanabe, H.

WEKO 1021536

Tanabe, H.

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Horiuchi, R.

× Horiuchi, R.

WEKO 1021537

Horiuchi, R.

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Usami, S.

× Usami, S.

WEKO 1021538

Usami, S.

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Shizuo, Inoue

× Shizuo, Inoue

WEKO 1021539

en Shizuo, Inoue

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抄録
内容記述タイプ Abstract
内容記述 A theoretical model and an analytic theory of current sheet structure are presented for understanding anti-parallel driven magnetic reconnection in 2-1/2 dimension in collisionless plasmas. The theoretical model provides formulation to compute the current sheet y-profiles by specifying the profiles of electron and ion flow velocities Vex(x,y) and Vix(x,y). The current sheet solutions depend on the plasma density nin, merging magnetic field B0, ion velocity vi, and electron velocity ve in the upstream and the Sevz=Vez/Vdz parameter where Vez is the electron velocity accelerated by the reconnection electric field Ez in the electron orbit meandering region, Vdz≃cEy/Bx is the
→
E
×
→
B
drift velocity as electrons enter the orbit meandering region, Bx is the merging magnetic field, and Ey is the electrostatic electric field. With simplifying assumptions on the y-profiles of Vex and Vix, we have also developed an analytic theory of the current sheet structure. Analytic expressions for the anomalous resistivity, the electrostatic potential drop, and the maximum Ey amplitude Emax are obtained. The analytic results agree reasonably well with both the particle-in-cell simulation results and the numerical solutions of the theoretical model. The ions energy gain due to the potential drop is ∝B
2
0
/nin. The electron energy gain is ∝(B
2
0
/8πnin)Sevz. The B
2
0
/nin scaling of the average ion and electron energy gains are consistent with laboratory experiments and space plasma observations.
書誌情報 Physics of Plasmas

巻 28, 号 7, p. 072101, 発行日 2021-06
ISSN
収録物識別子タイプ ISSN
収録物識別子 1070-664X
DOI
識別子タイプ DOI
関連識別子 10.1063/5.0039818
関連サイト
識別子タイプ URI
関連識別子 https://aip.scitation.org/doi/10.1063/5.0039818
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