Kyoto University · 물리·천문학
Satoshi Andoh 교수의 연구실은 고도별 대기와 전리권의 상호작용을 중심으로, 특히 중간권과 전리권에서 발생하는 금속 이온층과 스폰태니어스 E층( sporadic E layers)의 3차원 구조 및 일일 변동성 메커니즘을 수치 모델링을 통해 규명하는 데 초점을 맞추고 있습니다. 주로 대기 tidal 파동, 바람 시어, 전기장 등의 영향이 일일 변화하는 전리층 구조에 어떻게 기여하는지 분석하며, 특히 저위도 및 중위도 지역에서의 이론적 기반과 관측 데이터의 일치를 도모하고 있습니다. 이는 장거리 무선 통신 및 항법 시스템의 정확성 향상에 기여할 수 있는 핵심 연구입니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Abstract We present the first simulations that successfully reproduce the day-to-day variability of the mid-latitude sporadic E ( $$E_s$$ <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"><mml:msub><mml:mi>E</mml:mi><mml:mi>s</mml:mi></mml:msub></mml:math> ) layers. $$E_s$$ <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"><mml:msub><mml:mi>E</mml:mi><mml:mi>s</mml:mi></mml:msub></mml:math> layers appearing in the lower ionosphere have been extensively investigated to monitor and f
Abstract A regional numerical ionospheric model with neutral winds, corresponding to the Ground‐to‐topside model of Atmosphere and Ionosphere for Aeronomy model, was used to investigate the temporal evolution of 3‐D structures of metal ion layers (MILs) around Japan. The MILs that appear specifically in the ionospheric E region, called “sporadic E ,” display complicated multi‐layer structures and intense density variations. Although the wind shear theory elucidates the basic formation mechanism
Abstract To reveal mechanisms of day‐to‐day variations of the low‐latitude sporadic E (Es) layers, Es layer simulations were performed and compared to plasma layers observed by the Arecibo radar. Many studies have been conducted about the Es layers till now. However, few studies investigated the day‐to‐day variations of the Es layers especially at the low‐latitudes. Herein, for the first time, our numerical model generally succeeded in reproducing features of the day‐to‐day variations of the low
Abstract The present study aims to reveal horizontal sporadic E (Es) movements driven by atmospheric diurnal/semi-diurnal tides using a three-dimensional (3D) ionospheric model. Horizontal Es movements have been investigated since the mid-twentieth century, using a variety of 1D/2D observational techniques. However, there are no comprehensive studies that explain the different results asserted by the observations. Herein, we performed 3D Es simulations at mid- and low-latitudes. This is the firs
Abstract This study investigates the effects of the electric fields (E‐fields) on day‐to‐day variations in geomagnetic mid‐latitude sporadic E layers (EsLs) using a numerical ionospheric model. It is widely accepted that geomagnetic mid‐latitude EsL dynamics depend largely on wind shear variations. In contrast, E‐field effects on geomagnetic mid‐latitude EsLs have not been investigated extensively and are still little known. Previous observations have reported that E‐fields change EsL heights by
Abstract This study provides a physical mechanism for the temporary intensification of wintertime sporadic E layers (EsLs) in 2009. It is widely accepted that vertical wind shears control EsL formations. EsL intensity is minimal in winter, partially because of the weakened vertical wind shears. Despite the wintertime minimum EsL intensity, temporary intensifications of EsLs occurred for 10–30 days in some winters, the cause of which remains unclear. In this study, we conducted month-long EsL sim
Abstract This study examines the role of winds in wintertime sporadic E layer intensification (WEsLI) in 2009 from a global viewpoint. Previous studies showed that sporadic E layer (EsL) intensity had increased for 20–30 days in some winters, although intense EsLs do not form generally in winter. A recent study found that vertical ion convergence (VIC) driven by intensified migrating semidiurnal (SW2) tides caused WEsLI at middle latitudes in 2009. However, no studies have investigated the globa
Data file for the paper 'Temporal evolution of three-dimensional structures of metal ion layer around Japan simulated by a mid-latitude ionospheric model'
The temporal evolution of the three-dimensional metal ion flow (MIF) is crucial for polar sporadic E layer dynamics. Yet, until now it has not been studied in detail. Here, we present a new ionospheric model for metal ion dynamics, which incorporates electric fields and winds from a whole atmospheric model. We revealed the time-dependent three-dimensional MIFs in the polar ionosphere, driven by two-cell convective electric fields. The simulated MIFs closely matched observations reported in previ
Data file for the paper 'Temporal evolution of three-dimensional structures of metal ion layer around Japan simulated by a mid-latitude ionospheric model'
Abstract We investigate the cause of the spatial distribution of sporadic E (Es) layer occurrences in the austral summer Southern Hemisphere using a numerical model that incorporates metal ion dynamics. Previous studies have attributed longitudinal variations in Es occurrence (EsO) distributions to geomagnetic field distributions, particularly suggesting that high magnetic inclination causes a significant reduction in EsO near Southern Africa. In this study, we perform Es layer simulations for l