• 제목/요약/키워드: coronal mass ejections (CMEs)

검색결과 54건 처리시간 0.023초

KINEMATIC OSCILLATIONS OF POST-CME BLOBS DETECTED BY K-COR ON 2017 SEPTEMBER 10

  • Lee, Jae-Ok;Cho, Kyung-Suk;Nakariakov, Valery M.;Lee, Harim;Kim, Rok-Soon;Jang, Soojeong;Yang, Heesu;Kim, Sujin;Kim, Yeon-Han
    • 천문학회지
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    • 제54권2호
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    • pp.61-70
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    • 2021
  • We investigate 20 post-coronal mass ejection (CME) blobs formed in the post-CME current sheet (CS) that were observed by K-Cor on 2017 September 10. By visual inspection of the trajectories and projected speed variations of each blob, we find that all blobs except one show irregular "zigzag" trajectories resembling transverse oscillatory motions along the CS, and have at least one oscillatory pattern in their instantaneous radial speeds. Their oscillation periods are ranging from 30 to 91 s and their speed amplitudes from 128 to 902 km s-1. Among 19 blobs, 10 blobs have experienced at least two cycles of radial speed oscillations with different speed amplitudes and periods, while 9 blobs undergo one oscillation cycle. To examine whether or not the apparent speed oscillations can be explained by vortex shedding, we estimate the quantitative parameter of vortex shedding, the Strouhal number, by using the observed lateral widths, linear speeds, and oscillation periods of the blobs. We then compare our estimates with theoretical and experimental results from MHD simulations and fluid dynamic experiments. We find that the observed Strouhal numbers range from 0.2 to 2.1, consistent with those (0.15-3.0) from fluid dynamic experiments of bluff spheres, while they are higher than those (0.15-0.25) from MHD simulations of cylindrical shapes. We thus find that blobs formed in a post-CME CS undergo kinematic oscillations caused by fluid dynamic vortex shedding. The vortex shedding is driven by the interaction of the outward-moving blob having a bluff spherical shape with the background plasma in the post-CME CS.

A Study of Solar Eruption : The Case of 2011 Sep. 29 Event

  • Cho, Kyuhyoun;Chae, Jongchul;Ahn, Kwangsu
    • 천문학회보
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    • 제38권2호
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    • pp.90.2-90.2
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    • 2013
  • Filament eruptions are one of the energetic phenomena on the solar surface with flares and coronal mass ejections (CMEs). We observed the whole process of filament eruption that occurred in AR 11305 in association with a C5.6 flare on 2011 September 29th using the Fast Imaging Solar Spectrograph (FISS) and the Solar Dynamics Observatory (SDO). The eruption consists of a slow phase with a transverse speed of ~10 km $s^{-1}$ in 16 minutes and a fast phase with a transverse speed of ~200 km $s^{-1}$ in 3 minutes. Near the beginning of slow phase eruption, preflare brightening occurred beneath the filament in $H{\alpha}$ and some EUV images. The preflare brightening region is associated with a blue-shifted $H{\alpha}$ feature with a speed of ~60 km $s^{-1}$. It appears that this is the outflow from magnetic reconnection which may have occurred at relatively low atmosphere. Our result support the notion that the preflare brightening is a process of magnetic reconnection playing an important role in triggering the filament eruption by deformative the magnetic field lines under the eruptive filament.

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Comparison of 3-D structures of Halo CMEs using cone models

  • 나현옥;문용재;장수정;이경선
    • 천문학회보
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    • 제37권1호
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    • pp.95.1-95.1
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    • 2012
  • Halo coronal mass ejections (HCMEs) are major cause of geomagnetic storms and their three dimensional structures are important for space weather. In this study, we compare three cone models: an elliptical cone model, an ice-cream cone model, and an asymmetric cone model. These models allow us to determine the three dimensional parameters of HCMEs such as radial speed, angular width, and the angle (${\gamma}$) between sky plane and cone axis. We compare these parameters obtained from three models using 62 well-observed HCMEs from 2001 to 2002. Then we obtain the root mean square error (RMS error) between maximum measured projection speeds and their calculated projection speeds from the cone models. As a result, we find that the radial speeds obtained from the models are well correlated with one another (R > 0.84). The correlation coefficients between angular widths are less than 0.53 and those between ${\gamma}$ values are less than 0.47, which are much smaller than expected. The reason may be due to different assumptions and methods. The RMS errors of the elliptical cone model, the ice-cream cone model, and the asymmetric cone model are 213 km/s, 254 km/s, and 267 km/s, respectively. Finally, we discuss their strengths and weaknesses in terms of space weather application.

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The study on source regions of solar energetic particles detected by widely separated multiple spacecraft

  • 박진혜;;;문용재
    • 천문학회보
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    • 제37권2호
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    • pp.110.1-110.1
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    • 2012
  • We studied the source regions of 12 solar energetic particle (SEP) events seen between 2010 August and 2012 January at STEREO-A, B and ACE, when the two STEREO spacecraft were separated by about $180^{\circ}$. All events were associated with strong flares (C1 - X6) and fast coronal mass ejections (CMEs) accompanied by type II radio bursts. We have determined the arrival times of the SEP events at the three spacecraft. EUV waves observed in $195{\AA}$ and $193{\AA}$ channels of STEREO and SDO/AIA are tracked across the Sun and the arrival time of the EUV wave at the photospheric source of open field lines extending to the spacecraft connection points at 2.5 Rsun estimated. We found 7 events with flux enhancements in all spacecraft and 4 in two spacecraft. Most events came from a single source. The results show that magnetic field connections between source regions and the spacecraft play an important role in abrupt flux enhancements. In the most cases, EUV waves at the Sun are associated with a wide longitudinal spread of the SEPs.

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Dependence of Geomagnetic Storms on Their Assocatied Halo CME Parameters

  • 이재옥;문용재;이경선;김록순
    • 천문학회보
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    • 제37권1호
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    • pp.95.2-95.2
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    • 2012
  • We have compared the geoeffective parameters of halo coronal mass ejections (CMEs) to predict geomagnetic storms. For this we consider 50 front-side full halo CMEs whose asymmetric cone model parameters and earthward direction parameter were available. For each CME we use its projected velocity (Vp), radial velocity (Vr), angle between cone axis and sky plane (${\gamma}$) from the cone model, earthward direction parameter (D), source longitude (L), and magnetic field orientation (M) of the CME source region. We make a simple and multiple linear regression analysis to find out the relationship between CME parameters and Dst index. Major results are as follows. (1) $Vr{\times}{\gamma}$ has a higher correlation coefficient (cc = 0.70) with the Dst index than the others. When we make a multiple regression of Dst and two parameters ($Vr{\times}{\gamma}$, D), the correlation coefficient increases from 0.70 to 0.77. (2) Correlation coefficients between Dst index and $Vr{\times}{\gamma}$ have different values depending on M and L. (3) Super geomagnetic storms (Dst ${\leq}$ -200 nT) only appear in the western and southward events. Our results demonstrate that not only the cone model parameters together with the earthward direction parameter improve the relationship between CME parameters and Dst index but also the source longitude and its magnetic field orientation play a significant role in predicting geomagnetic storms.

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CME and radio characteristics of making large solar proton events

  • 황정아;조경석;봉수찬;김수진;박영득
    • 천문학회보
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    • 제35권1호
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    • pp.33.2-33.2
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    • 2010
  • We have investigated a relationship among the solar proton events (SPEs), coronal mass ejections (CMEs) and solar flares during the solar cycle 23 (1997-2006). Using 63 SPE dataset, we found that SPE rise time, duration time, and decrease times depend on CME speed and SPE peak intensity depends on the CME earthward direction parameter as well as CME speed and x-ray flare intensity. While inspecting the relation between SPE peak intensity and the CME earthward direction parameter, we found that there are two groups: first group consists of large 6 SPEs (> 10,000 pfu at >10 MeV proton channel of GOES satellite) and shows a very good correlation (cc=0.65) between SPE peak intensity and CME earthward direction parameter. The second group has a relatively weak SPE peak intensity and shows poor correlation between SPE peak intensity and the CME earthward direction parameter (cc=0.01). By investigating characteristics of 6 SPEs in the first group, we found that there are special common conditions of the extremely large proton events (group 1); (1) all the SPEs are associated with very fast halo CME (>1400km/s), (2) they are almost located at disk region, (3) they also accompany large flare (>M7), (4) all they are preceded by another wide CMEs, and (5) they all show helmet streamer nearby the main CME. In this presentation, we will give details of the energy spectra of the 6 SPE events from the ERNE/HED aboard the Solar and Heliospheric Observatory (SOHO), and onset time comparison among the SPE, flare, type II burst, and CME.

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전파통신에서의 전리층 역할 (IONOSPHERIC EFFECTS ON THE RADIO COMMUNICATION)

  • 표유선;조경석;이동훈;김은화
    • 천문학논총
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    • 제15권spc2호
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    • pp.21-25
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    • 2000
  • The ionosphere, the atmosphere of the earth ionized by solar radiations, has been strongly varied with solar activity. The ionosphere varies with the solar cycle, the seasons, the latitudes and during any given day. Radio wave propagation through or in the ionosphere is affected by ionospheric condition so that one needs to consider its effects on operating communication systems normally. For examples, sporadic E may form at any time. It occurs at altitudes between 90 to 140 km (in the E region), and may be spread over a large area or be confined to a small region. Sometimes the sporadic E layer works as a mirror so that the communication signal does not reach the receiver. And radiation from the Sun during large solar flares causes increased ionization in the D region which results in greater absorption of HF radio waves. This phenomenon is called short wave fade-outs. If the flare is large enough, the whole of the HF spectrum can be rendered unusable for a period of time. Due to events on the Sun, sometimes the Earth's magnetic field becomes disturbed. The geomagnetic field and the ionosphere are linked in complex ways and a disturbance in the geomagnetic field can often cause a disturbance in the F region of the ionosphere. An enhancement will not usually concern the HF communicator, but the depression may cause frequencies normally used for communication to be too high with the result that the wave penetrates the ionosphere. Ionospheric storms can occur throughout the solar cycle and are related to coronal mass ejections (CMEs) and coronal holes on the Sun. Except the above mentioned phenomena, there are a lot of things to affect the radio communication. Nowadays, radio technique for probing the terrestrial ionosphere has a tendency to use satellite system such as GPS. To get more accurate information about the variation of the ionospheric electron density, a TEC measurement system is necessary so RRL will operate the system in the near future.

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강한 태양 및 지자기 활동 기간 중에 아리랑 위성 1호(KOMPSAT-1)의 궤도 변화 (DRAG EFFECT OF KOMPSAT-1 DURING STRONG SOLAR AND GEOMAGNETIC ACTIVITY)

  • 박진영;문용재;김관혁;조경석;김해동;김연한;박영득;이유
    • Journal of Astronomy and Space Sciences
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    • 제24권2호
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    • pp.125-134
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    • 2007
  • 이 연구에서는 태양 및 지자기 활동에 의해 발생한 우주환경변화가 우리나라 위성인 아리랑위성1호(KOMPSAT-1)의 궤도에 미치는 영향을 분석하였다. 인공위성의 궤도변화는 정상적인 상태에서도 자연적인 섭동에 의해 지속적으로 발생하지만, 거대한 태양폭발에 의한 지구 주변 우주환경이 급격히 변화할 때 고층대기의 밀도변화로 인해 크게 발생한다. 특히 이러한 현상은 아리랑위성 1호와 같이 저궤도 상에서 운영되는 위성에 직접적인 영향을 미친다. 이 때, 태양활동에 의한 지구 주변 우주환경의 변화는 크게 두 가지로 구분할 수 있다. 하나는 태양 플레어 (Flare)가 폭발했을 때 고에너지 복사(Radiation)로 인해 지구 고층대기가 가열되어 팽창하고 이런 결과로 고층대기에 있는 중성입자밀도가 급격히 증가하는 것이다. 다른 하나는 코로나 물질 방출(Coronal Mass Ejections) 등에 의해 발생한 지자기폭풍기간 동안 플라즈마 대류와 입자들의 하강으로 전기장이 강해져 상당량의 줄가열(Joule heating)과 하강입자가열(precipitating particle heating)이 발생하고 이로 인해 중성입자밀도가 증가하는 것이다. 두 가지 원인에 대한 영향을 구분하여 알아보기 위해, 우리는 태양 및 지자기 자료를 면밀히 분석하여 2001년에서 2002년 동안 5개의 기간을 선정하였다. 그 결과 위성의 대기저항가속도는 태양의 극자외선(Extreme Ultra-Violet)의 증가와 함께 약 하루 정도의 시간 지연을 가지고 유사하게 변화하고 있음을 확인하였다(R=0.92). 그리고 지자기폭풍이 발생한 기간동안 대기저항가속도는 지자기폭풍에 의한 Dst 변화와 상당히 유사하게 그리고 거의 동시에 급격히 변화하는 것을 확인하였다. 마지막으로 우리는 위성의 대기저항가속도의 변화는 전반적으로는 오랜 기간 동안 고에너지 복사에 의한 효과로 나타나고 있으나 짧은 기간(하루 미만) 동안 크게 발생하는 대기저항가속도의 변화는 지자기폭풍에 의한 효과로 보고 있다.

IMPACT OF THE ICME-EARTH GEOMETRY ON THE STRENGTH OF THE ASSOCIATED GEOMAGNETIC STORM: THE SEPTEMBER 2014 AND MARCH 2015 EVENTS

  • Cho, K.S.;Marubashi, K.;Kim, R.S.;Park, S.H.;Lim, E.K.;Kim, S.J.;Kumar, P.;Yurchyshyn, V.;Moon, Y.J.;Lee, J.O.
    • 천문학회지
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    • 제50권2호
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    • pp.29-39
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    • 2017
  • We investigate two abnormal CME-Storm pairs that occurred on 2014 September 10 - 12 and 2015 March 15 - 17, respectively. The first one was a moderate geomagnetic storm ($Dst_{min}{\sim}-75nT$) driven by the X1.6 high speed flare-associated CME ($1267km\;s^{-1}$) in AR 12158 (N14E02) near solar disk center. The other was a very intense geomagnetic storm ($Dst_{min}{\sim}-223nT$) caused by a CME with moderate speed ($719km\;s^{-1}$) and associated with a filament eruption accompanied by a weak flare (C9.1) in AR 12297 (S17W38). Both CMEs have large direction parameters facing the Earth and southward magnetic field orientation in their solar source region. In this study, we inspect the structure of Interplanetary Flux Ropes (IFRs) at the Earth estimated by using the torus fitting technique assuming self-similar expansion. As results, we find that the moderate storm on 2014 September 12 was caused by small-scale southward magnetic fields in the sheath region ahead of the IFR. The Earth traversed the portion of the IFR where only the northward fields are observed. Meanwhile, in case of the 2015 March 17 storm, our IFR analysis revealed that the Earth passed the very portion where only the southward magnetic fields are observed throughout the passage. The resultant southward magnetic field with long-duration is the main cause of the intense storm. We suggest that 3D magnetic field geometry of an IFR at the IFR-Earth encounter is important and the strength of a geomagnetic storm is strongly affected by the relative location of the Earth with respect to the IFR structure.

2003년 10월의 태양활동과 우주환경의 영향 (EFFECTS OF SOLAR ACTIVITY AND SPACE ENVIRONMENT IN 2003 OCT.)

  • 조경석;문용재;김연한;최성환;김록순;박종욱;김해동;임무택;박영득
    • Journal of Astronomy and Space Sciences
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    • 제21권4호
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    • pp.315-328
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    • 2004
  • 본 연구에서는 2003년 10월과 11월에 발생한 강력한 태양활동과 우주환경의 변화에 대한 국내외 관측결과를 분석하였다. 이러한 태양활동은 거대한 흑점군, X급 이상의 강력한 플레어, 연이은 코로나물질 방출(Coronal Mass Ejections: CMEs) 및 프로톤 현상 등으로 특징지어 질 수 있다. 특히 이때 발생한 고속의 CME들은 지구 방향으로 진행하여 매우 강력한 지자기 폭풍을 일으켰다. 미국 해양대기청 우주환경예보센터에서 제시한 우주환경기준(Space Weather Scales)에 따라 국내외 관측 자료를 분석하고 위성 및 통신에 미치는 영향을 예측하였다. 또한 같은 기간동안 우리나라에서 관측된 전리층 총전자함유량(Total Electron Contents: TEC), 오로라, 전리층의 F2 임계주파수, 그리고 아리랑 위성 1호의 궤도자료를 분석함으로서 우주환경변화가 우리나라 상층대기, 위성궤도, 무선통신 등에 미치는 영향을 조사하였다.