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1.
本文探讨磁层一电离层耦合过程内中纬地磁指数的变化特点,并与极光电集流和赤道电集流(指数)变化相比较.相关分析和时序叠加分析均表明,高、中、低纬地磁指数变化可归结为磁层一电离层电动耦合的统一物理图象.有R事件的磁暴主相初期和无R事件的磁扰期内,赤道电集流和中纬地磁指数的变化各不相同.这再次证明,耦合分析中将磁层源扰动的直接穿透作用与经电离层内动力过程的效应二者加以区分和综合研究是很重要的.  相似文献   

2.
采用具有明确物理意义的多个地磁指数,以及地面台站链观测的地磁和电离层参数,对一次典型磁暴期内从极光区到赤道附近电离层电流、电场演化发展的耦合过程作了具体分析.结果表明,地磁指数和观测参数能较好地说明磁层-电离层耦合理论结果的主要特征.  相似文献   

3.
1978—1988年间磁扰的分析与日地耦合   总被引:1,自引:0,他引:1  
用1978-1988年间行星际磁场(IMF)的Bz分量、极光区AL指数和赤道附近地磁台Z分量等资料探讨了日地耦合中的主要物理过程。Bz的11年变化大致与太阳活动程度相当,但AL和赤道附近ΔZ更多地受磁层和电离层内部过程所控制。分析中强调了对国际磁抗日按物理过程进行分类的必要性。   相似文献   

4.
用1978-1988年间行星际磁场(IMF)的BZ分量、极光区AL指数和赤道附近地磁台Z分量等资料探讨了日地耦合中的主要物理过程。BZ的11年变化大致与太阳活动程度相当,但AL和赤道附近ΔZ更多地受磁层和电离层内部过程所控制。分析中强调了对国际磁扰日按物理过程进行分类的必要性。  相似文献   

5.
基于IGS电离层TEC格网的扰动特征统计分析   总被引:1,自引:0,他引:1       下载免费PDF全文
电离层总电子含量(TEC)是研究空间天气特性的重要参量,通过分析电离层TEC,可以了解空间环境的变化特征.利用IGS提供的1999—2016年全球电离层TEC格网数据,按照地磁纬度将全球划分为高、中、中低、低磁纬四个区域,计算不同区域的电离层扰动;利用大量统计数据选取电离层扰动事件的判定阈值,分析电离层扰动与太阳活动、时空之间的关系;计算电离层扰动指数与地磁活动之间的相关系数.结果显示:电离层扰动与太阳活动变化具有较强的正相关特性.在太阳活动低年,电离层扰动事件发生的概率约为1.79%,在太阳活动高年发生扰动的概率约为10.18%.在空间分布上,无论是太阳活动高年还是低年,高磁纬地区发生扰动事件的概率均大于其他磁纬出现扰动事件的概率.计算得到的中磁纬和中低磁纬地区电离层扰动指数与全球地磁指数Ap的相关系数分别为0.57和0.56,说明电离层扰动指数与Ap具有较好的相关关系;高磁纬电离层扰动指数与Ap的相关系数为0.44;低磁纬扰动指数与Ap的相关系数为0.39.以上结果表明,不同区域电离层扰动与全球地磁指数Ap的相关性不同,测定区域地磁指数可能会提高与电离层扰动的相关性.   相似文献   

6.
本文利用印度TRIVANDRUM、KODAIKANAL、ANNAMALAINAGAR和中国的琼中等低纬台站1983—1984两年地磁Z分量资料,对磁层大尺度扰动的赤道电急流效应作了进一步研究.形态分析和周期迭加分析结果证实了作者仅用我国地磁资料所得的结论,即对应磁层环电流的发展,有ΔZ的负扰(即附加东向电急流).双站对比和地方时平均法表明,该效应在日侧最大,半夜至黎明前最弱.有关观测特征与模式计算基本相符.  相似文献   

7.
对印度Trivandrum站第21太阳活动周内地磁H分量分析表明,不仅在磁扰日及其随后的静日内,强磁扰对赤道电集流有显着作用,即使在持续静日期间,较弱的磁扰仍然对赤道电离层有很大影响。磁静日昏侧出现反向(西向)电集流是正常现象,弱磁扰是使此反向电流消失的可能机制。   相似文献   

8.
用高分辨率地磁资料考察磁层耦合的特征   总被引:2,自引:0,他引:2  
用取自100°E和300°E的两条地磁经度链附近11个台站的1min均值地磁资料,分析了1994年11月26日磁暴期间的磁扰特征,由H和Z分量变得知,一区和二区场向电流的变化发展是磁层-电离层电动耦合中的重要过程,它们对于极光区和中纬区电离层的作用效果有很大差异。  相似文献   

9.
本文讨论了强磁暴期间磁层环电流能量变化率与电离层电场变化之间的联系.STARE和SABRE雷达资料表明,电离层对环电流变化响应的主要特点是:(1)在磁地方时午后区,响应的时延达最大(约1—2小时),场强以指数形式增加;在其它时区内,无系统的增强过程,仅观测到较大的、有明显涨落的电场值.(2)STARE(70.2°N)和SABRE(65.8°N)测到的电场变化往往具有相反的趋势.(3)在STARE视场内,环电流能量变化达极大后,较低纬(70.2°N)上的电场值经常大于较高纬(71.8°N)上的值.分析结果表明,磁暴期间磁层-电离层耦合过程中,环电流起着重要作用.   相似文献   

10.
本文给出了1983-1985年磁暴期间,我国乌鲁木齐等七个站及日本国分寺等五个站出现微粒E层的情况;得到了微粒E层的日变化、月变化和纬度变化;结合同时的地磁、宇宙线、TEC和电离层的变化,对微粒E层出现率作了分析。初步证实:微粒E层的形成和维持与赤道环电流指数(Dst)负变幅大小密切相关,此外还同宇宙线的FD(Forbushdecreases)事件的出现有关。作者认为,沉降粒子可能是低纬地区微粒E层事件的主要粒子来源。   相似文献   

11.
The temporal variation of the equatorial electrojet is estimated utilising a suitably designed Kalman filter and using the established empirical relations between the anomaly component of equatorial TEC and the modified electrojet. TEC data obtained from dual frequency GPS receivers are used for the purpose. Estimation requires the a-priori knowledge of the peak electrojet value of the day and hence can be made in post temporal scenario only. Initial results obtained during a low solar activity time in an equinoctial month shows acceptable accuracy of the proposed algorithm. Limited analysis is done by segregating the results into temporal sessions of pre-attainment and post-attainment of the electrojet peak.  相似文献   

12.
利用WIND卫星的太阳风观测数据和地磁活动指数, 研究了太阳风扰动对环电流SYM-H指数, 西向极光电急流AL指数和东向极光电急流AU指数的影响. 结果表明, 太阳风动压增长和减少能够同步或延迟引起地磁活动指数的强烈扰动, 其包括环电流指数的上升, 西向极光电急流指数的下降和东向极光电急流指数的上升. 太阳风动压的突然剧烈增加还能够触发超级亚暴和大磁暴. 太阳风动压脉冲引起的地磁效应具有复杂的表现形式, 这说明太阳风动压脉冲的地磁效应不仅与太阳风动压脉冲大小和持续时间有关, 还与磁层本身所处的状态有关. 时间尺度较长, 消耗能量较大的磁暴只有大的持续时间较长的太阳风动压脉冲才能激发.   相似文献   

13.
The interplanetary magnetic field, geomagnetic variations, virtual ionosphere height h′F, and the critical frequency foF2 data during the geomagnetic storms are studied to demonstrate relationships between these phenomena. We study 5-min ionospheric variations using the first Western Pacific Ionosphere Campaign (1998–1999) observations, 5-min interplanetary magnetic field (IMF) and 5-min auroral electrojets data during a moderate geomagnetic storm. These data allowed us to demonstrate that the auroral and the equatorial ionospheric phenomena are developed practically simultaneously. Hourly average of the ionospheric foF2 and h′F variations at near equatorial stations during a similar storm show the same behavior. We suppose this is due to interaction between electric fields of the auroral and the equatorial ionosphere during geomagnetic storms. It is shown that the low-latitude ionosphere dynamics during these moderate storms was defined by the southward direction of the Bz-component of the interplanetary magnetic field. A southward IMF produces the Region I and Region II field-aligned currents (FAC) and polar electrojet current systems. We assume that the short-term ionospheric variations during geomagnetic storms can be explained mainly by the electric field of the FAC. The electric fields of the field-aligned currents can penetrate throughout the mid-latitude ionosphere to the equator and may serve as a coupling agent between the auroral and the equatorial ionosphere.  相似文献   

14.
Equatorial plasma bubbles (EPBs) are common features of the equatorial and low-latitude ionosphere and are known to cause radio wave scintillation which leads to the degradation of communication and navigation systems. Although these structures have been studied for decades, a full understanding of their evolution and dynamics remains important for space weather mitigation purposes. In this study, we present cases of EPBs occurrences around April and July 2012 geomagnetic storm periods over the African equatorial sector. The EPBs were observed from the Communications/Navigation Outage Forecasting System (C/NOFS) and generally correlated well to the ionospheric irregularities observed from the Global Positioning System total electron content (GPS-TEC) measurements (rate of TEC change, ROT). This study revealed that the evolution of the EPBs during moderate storms is controlled by the strength of the daytime equatorial electrojet (EEJ) currents regardless of the strength of the equatorial ionization anomaly (EIA), the latter is observed during the July storm case in particular. These effects were more evident during the main and part of the early recovery phases of the geomagnetic storm days considered. However, the evening hours TEC gradients between regions of the magnetic equator and ionization crests also played roles in the existence of ionospheric irregularities.  相似文献   

15.
利用武汉、广州、泉州和琼中等4个低纬地磁站连续多年的地磁资料,计算了各月5个磁静日Z分量日均值与中午1100---1300时段平均值之差(Dz),对每年12个Dz采用多元回归分析方法,得到各年的半年变化幅度和相位.结果表明:4个站的Dz每年都有半年变化现象;半年变化幅度与太阳活动有关,一般来说,太阳活动高年Dz半年变化幅度明显大于太阳活动低年;太阳活动本身的半年变化,对Dz半年变化幅度有显著的调制作用;Dz半年变化的相位在3—4月(或9—10月),即极大值出现在分季;低纬地区地磁Z分量存在显著的半年变化,能够反映赤道电急流也有明显的半年变化,这再一次证明,赤道电急流幅度的半年变化,通过“喷泉效应”使得电离层,f0F2产生半年变化,其是产生,f0F2半年变化的一个主要因素.  相似文献   

16.
The equatorial ionosphere and thermosphere constitute a coupled system, with its electro dynamical and plasma physical processes being responsible for a variety of ionospheric phenomena peculiar to the equatorial region. The most important of these phenomena are: the equatorial electrojet (EEJ) current system and its instabilities, the equatorial ionization anomaly (EIA), and the plasma instabilities/irregularities of the night ionosphere (associated with the plasma bubble events – ESF). They constitute the major topics of investigations having both scientific and practical objectives. The tidal wind interaction with the geomagnetic field is responsible for the atmospheric dynamo electric fields, that together with the wind system, drives the major phenomena, under quiet conditions. Drastic modifications of these phenomena can occur due to magnetospheric forcing under solar-, interplanetary- and magnetospheric disturbances. They can also undergo significant modifications due to forcing by atmospheric waves (such as planetary- and atmospheric gravity waves) propagating upward or from extra tropics. This article will focus on the ambient conditions of the ionosphere–thermosphere system and the electro dynamics and plasma instability processes that govern the plasma irregularity generation. Major emphasis is given to problems related to the structuring of the equatorial night ionosphere through plasma bubble/ESF irregularity processes. Specific topics to be covered will include: equatorial electric fields, thermospheric winds, sunset electrodynamic processes, plasma drifts, EEJ plasma instability/irregularity generation, nighttime/post sunset plasma bubble irregularity generation, and very briefly, disturbance electric fields and winds and their effect on the ionization anomaly, the TEC and ESF/plasma bubble irregularities.  相似文献   

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