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1.
太阳微波M型爆发   总被引:1,自引:0,他引:1  
分析北京天台1998年4月15日观测到的一个太阳微波M型爆发事件。M型爆发实质上是III型爆发的一个次型,它由两个连续的U型爆发所组成,即爆发源在同一个磁环中由于磁镜的作用而连续往返运动后的轨迹,但是在低时间分辨率(0.2s)记录资料中却是U型爆发的形态。因此高时间分辨率(8ms)的记录资料能更准确地反映M型爆发源的真实运动情况。对比组成M型爆发的两个U型爆发,可以看到,该磁环很可能处在下降的演化  相似文献   

2.
我们用新的时间分辨率短至8ms 的2 .6 ~3 .8GHz 微波动态频谱仪在1998 年4 月15 日爆发和1997 年11 月3 日爆发中发现了微U 型爆发。其顶部频率为3 .2 ~3 .4GHz( 相应的等离子体密度:基波:1 .2 ×1011 - 1 .4 ×1011/cm 3 ,二次谐波:3 .2 ×1010 - 3 .5 ×1010/cm 3) ;根部频率为3 .4 ~3 .6GHz;单个U 型爆发的频率范围为60 ~220 MHz ;上升段频漂率为7 ~28GHz/s;上升段持续时间为8 ~24ms;寿命为16 ~48ms;偏振度大于80 % 。在活动区为偶极子磁场的假设下,估计源区高度约为1 .3 ×104 公里,单一环的高度为250 ~800 公里。由此得出结论:1 .由于高频漂率和高偏振度,似乎发现的微U 型爆发不是Ⅲ型爆发形成,而是尖峰辐射(Spike) 形成。2 .我们发现的是小尺度的微磁环,其尺度与Spike 辐射的寿命相当。我们在1997 年11 月2 日的爆发中发现平均周期为数十ms 的准周期振荡群。在高密度流管的磁声波MHD 振荡条件下,可取得磁环半径约90 公里的结果。由此可以得到微磁环物理尺度的图象  相似文献   

3.
射电Ⅳ型运动爆发同日冕物质抛射(CMEs)关系极为密切。本文基于对Ⅳ型运动爆发的研究以及CMEs开放场的物理条件,探讨了CMEs形成及抛射的物理条件。由于磁通量突然喷发,能量大量释放,在CME闭合场中的等离子体被加速,导致高能质子和高能电子被大磁环捕获。随着磁环内的热压P和磁压Pm的升高,当β>βT时磁环将炸裂,从而产生CMEs。抛射出的未离化的等离子体团将产生等离子体基波与谐波辐射。随着等离子体的不断离化,高能相对论电子绕开放磁场线作螺旋飞行,这时等离体辐射降到次要地位,回旋同步加速辐射上升到主导地位,这就是射电Ⅳ型运动爆发。如果离化的早,则在微波波段也能看到Ⅳ型运动爆发。这就是微波Ⅳ型爆发,也是微波Ⅳ型爆发罕见的原因。射电运动Ⅳ型爆发源就是日冕抛射的物质。  相似文献   

4.
射电Ⅳ型运动爆发同日冕物质抛射(CMEs)关系极为密切。本文基于对Ⅳ型运动爆发的研究以及CMEs开放场的物理条件,探讨了CMEs形成及抛射的物理条件。由于磁通量突然喷发,能量大量释放,在CME闭合场中的等离子体被加速,导致高能质子和高能电子被大磁环捕获。随着磁环内的热压P和磁压Pm的升高,当β〉βT时磁环将炸裂,从而产生CMEs。抛射出的未离化的等离子体团将产生等离子体基波与谐波辐射。随着等离子体  相似文献   

5.
用云南天文台高时间分辨率(10ms)高频率分辨率(0.5MHz)的射电频谱仪观测分析证认了米波窄带短持续时间快频漂爆发的存在.这种爆发既不同于经典的III型爆发,也不同于spike和I型爆发,是一种新的米波爆发型别.它的特性与分米波的“blips”相近.  相似文献   

6.
米波窄带快频漂射电爆发—“Blips”的观测和证认   总被引:3,自引:0,他引:3  
用云南天台高时间分辨率(10ms)高频率分辨率(0.5MHz)的射电频谱仪观测分析证认了米波窄带短持续时间快频漂爆发的存在。这种漂发既不同于经典的Ⅲ型爆发,也不同于spike和Ⅰ型爆发,是一种新的米波爆发型别。它的特性与分米波的“blips“相近。  相似文献   

7.
微波组合Ⅲ型爆发是指由低频端的微波普通Ⅲ型爆发和同时出现在高频端的微波连续U型爆发构成的组合体。微波连续U型爆发是单个微波U型爆发在同一磁环中的进一步演化的结果,它仍是Ⅲ型爆发的一个次型,因此整个微波组合Ⅲ型爆发也是Ⅲ型爆发的一个次型。微波组合Ⅲ型爆发的辐射源(即高能电子束)来自同一个加速区,只不过在与低日冕区的磁环相互作用中被分离成捕获电子和逃逸电子束,并有不同的运动轨迹,最终同时辐射产生高频端的微波连续U型爆发和低频端的微波普通Ⅲ型爆发.微波组合Ⅲ型爆发的形成与低日冕区的磁环结构密切相关,因而它是微波段的特有现象。  相似文献   

8.
一个多次产生CME的活动区特征分析   总被引:1,自引:1,他引:0  
1998年4月-5月8210活动区在日面上接连出现6次大的爆发活动,搜集了这个活动区在整个日面上软X射线曲线,射电Ⅱ、Ⅳ型爆发,射电日像仪和远紫外观测等资料,它的能量积累过程快,3次软X射线爆发曲线的时间轮廓有一定的相似性。发生日冕物质抛射(CME)时,它的磁环只是局部开放,很快又收拢成一个闭合磁环,在一些非热电子的轰击下,再度被加热,又产生了强列的X射线爆发和射电Ⅱ、Ⅳ型爆发,磁环的薄弱处犹如一个活火山口,CME容易从此处再次喷发,找到非热过程与热过程衔接的拐点,在SXR时间轮廓曲线上它表现为斜率突变点,往往有Ⅲ型爆发作为对应的标志,日冕不同层次上先后出现的Ⅱ型爆发可作为CME出现的有力证据,并可作为判断CME运动速度的依据。  相似文献   

9.
周爱华  傅其骏 《天文学报》1996,37(2):212-220
本文分析了1993年10月2日07:39:40-07:41:00UT时段太阳产生的一个多脉冲微波暴的观测,认为它是由多个脉冲爆发叠加在一个慢变爆发背景上组成的.根据谱分析和利用我们的日冕磁场诊断公式[1],第一次获得了一个爆发源区的磁场强度和高能电子的信息,其主要结果是:(1)脉冲爆发分量在光薄部分的射电谱指数的平均值比慢变爆发背景的值小1,即前者的谱比后者的硬.在19.6GHz上的亮度温度前者比后者高6倍.(2)从脉冲爆发分量和慢变爆发背景分量推断的源区磁场平均值分别为158和531高斯,且发现在爆发期间,慢变暴源区磁场强度随时间圣马鞍形变化,在极大相的值比脉冲相和下降相低约50%(3)产生脉冲暴分量的高能电子的柱密度NL和数密度N(>E0)分别为慢变暴分量的4%和8%,但它们所携带的能流和发射系数要比慢变爆发分量的值高1倍和8倍!表明这两种爆发成份可能分别来自能谱不同的两群电子在不同爆发源区的辐射.  相似文献   

10.
周曦  方成 《天体物理学报》1996,16(4):401-407
本分析了南京大学太阳塔1991年10月24日用多波段光谱仪观测到的高时间分辨率(5s)的一个2N/X2.1级白光耀斑光谱,对耀斑谱线轮廓,连续发射强度,X射线和射电爆发资料进行了综合对比,分析表明,该耀斑属I类白光耀斑,具有如下特征:(1)在白光耀斑的脉冲相期间,各波段光谱线心强度,连续辐射,谱线半宽以及线翼红不对称性与硬X射线高能波段的爆分同时达到极大;(2)Hα谱线在连续发射极大时半宽达10  相似文献   

11.
统计分析了国家天文台2.6-3.8 GHz高时间分辨率射电动态频谱仪在23周峰年期间(1998.4—2003.1)观测到的266个III型爆发.对这些事件的频率漂移、持续时间、偏振、带宽、开始和结束频率做了详细分析.开始和结束频率的统计分析表明,开始频率在一个非常大的范围,从小于2.6 GHz到大于3.8 GHz,而结束频率的截止区相对集中,从2.82-3.76 G.Hz.这些现象说明,电子加速的高度相当分散,在观测频率范围内具有正、负漂移率的III型爆发数基本相等,这可能意味着被加速的向上和向下传播的电子束在2.6—3.8 GHz范围有相同的比例.统计结果表明,微波III型爆发的辐射机制主要是等离子体辐射和电子回旋脉泽辐射过程.  相似文献   

12.
总结了近期用射电频谱仪(高时间和高频谱分辨)和野边山射电日像仪(高空间分辨)以及国内外其它空间和地面设备分析日冕磁场和重联的系列工作。主要结论可归纳为:1)在Dulk等人(1982)的近似下自恰计算射电爆发源区磁场的平行和垂直分量,并首次得到该磁场在日面的两雏分布。2)为了考虑非热电子低能截止的影响,必须采用更严格的回旋同步辐射理论来计算。结果表明:低能截止和日冕磁场对计算有明显的影响,而其它参数(包括背景温度、密度、高能截止和辐射方向)的影响均可忽略。因此,对低能截止和日冕磁场必须联立求解。3)射电爆发中的精细结构可能反映了射电爆发源比较靠近粒子加速(磁场重联)的区域,利用高时间和高频率分辨的频谱仪和高空间分辨的日像仪联合分析,可以确定精细结构的源区位置,从而确定粒子加速(磁场重联)的准确时间和地点。  相似文献   

13.
Three particularly complex radio bursts (2001 October 19, 2001 April 10 and 2003 October 26) obtained with the spectrometers (0.65-7.6GHz) at the National Astronomical Observatories, Chinese Academy of Sciences (NAOC, Beijing and Yunnan) and other in- struments (NoRH, TRACE and SXT) are presented. They each have two groups of peaks occurring in different frequency ranges (broad-band microwave and narrow-band decimeter wavelengths). We stress that the second group of burst peaks that occurred in the late phase of the flares and associated with post-flare loops may be homologous radio bursts. We think that they are driven by the post-flare loops. In contrast to the time profiles of the radio bursts and the images of coronal magnetic polarities, we are able to find that the three events are caused by the active regions including main single-bipole magnetic structures, which are associated with multipole magnetic structures during the flare evolutions. In particular, we point out that the later decimetric radio bursts are possibly the radio counterparts of the homologous flares (called "homologous radio bursts" by us), which are also driven by the single-bipole mag- netic structures. By examining the evolutions of the magnetic polarities of sources (17GHz), we could presume that the drivers of the homologous radio bursts are new and/or recurring appearances/disappearances of the magnetic polarities of radio sources, and that the triggers are the magnetic reconnections of single-bipole configurations.  相似文献   

14.
High resolution spectral observations between 500 MHz and 550 MHz on 1972 October 25, revealed an emission event of special interest. The main feature was bursts with a single frequency duration of about 0.09 s and with a bandwidth of the same order of magnitude as the band covered by the spectrograph. The bursts occurred in showers' which lasted for one or two minutes and which were separated by quiet intervals of roughly the same length. Frequently the activity assumed a periodic nature. Periods between 0.1 s and 0.3 s were found. The most remarkable feature of the records was a very large number of bursts with the same duration as the wide band bursts, but showing a bandwidth of a mere 1–2 MHz.The wide band bursts may be plasma waves excited by proton streams trapped in coronal magnetic fields and the narrow band bursts may possibly be explained as perpendicular electrostatic electron cyclotron waves.  相似文献   

15.
Four microwave bursts have been selected from the Nobeyama Radio Polarimeter (NoRP) observations with an extremely flat spectrum in the optically thin part and a very hard spectral index between 0 and ?1 in the maximum phase of all bursts. It is found that the time evolution of the turnover frequency is inversely proportional to the time profiles of the radio flux in all bursts. Based on the nonthermal gyrosynchrotron theory of Ramaty (Astrophys. J. 158, 753, 1969), the local magnetic field strength and the electron spectral index are calculated uniquely from the observed radio spectral index and the turnover frequency. We found that the electron energy spectrum is very hard (spectral index 1?–?2), and the time variation of the magnetic field strength is also inversely proportional to the radio flux as a function of time in all bursts. Hence, the time evolution of the turnover frequency can be explained directly by its dependence on the local magnetic field strength. The high turnover frequency (several tens of GHz) is mainly caused by a strong magnetic field of up to several hundred gauss, and probably by the Razin effect under a high plasma density over \(10^{10}~\mbox{cm}^{-3}\) in the maximum phase of these bursts. Therefore, the extremely flat microwave spectrum can be well understood by the observed high turnover frequency and the calculated hard electron spectral index.  相似文献   

16.
Two impulsive microwave bursts observed by Owens-Valley Solar Arrays (OVSA)are studied.The fast time variation of the turnover frequency in these bursts is quite different from the constant value in the earlier conclusion.The observational turnover frequencies are consistent with the calculations using the non-thermal gyro- synchrotron radiation model.We find the turnover frequency may play an important role for calculating the coronal magnetic field on the basis of Dulk and Marsh's ap- proximations.  相似文献   

17.
本文介绍了云南天文台四波段(1.42,2.13,2.84和4.26GHz)太阳射电高时间分辩率同步观测得到的五个微波II型爆发事件,它们具有宽频带、长和短寿命、内向和外向快速频漂等特征.观测事例表明,非热电子束引起的等离子体辐射和电子回旋脉泽辐射两种机制都可能发生.这些观测特征既不完全同于米波—分米波II型爆发,也不完全同于微波高频段II型爆发,说明在微波低频段可能存在二重性或过渡现象  相似文献   

18.
Different forms of pairs of type III bursts have been discussed in the literature. We report here a new aspect revealed by high time resolution radioheliography. In some groups of these bursts, each element appears to be split into two components. These pairs recur with a characteristic time, and in a given group the time splitting of the two components of each pair is the same (one second or less). The nature of these pairs is discussed: the fundamental-harmonic hypothesis is excluded. Alternative interpretations are reviewed.  相似文献   

19.
C. Mercier 《Solar physics》1976,46(2):499-500
On 1 July 1971, about ten groups of type III bursts were observed with high time resolution (10?1 sec) with the 169 MHz Nançay radioheliograph. Each group consists of two or several bursts, appearing successively from E to W in all cases, with very short delays. The analysis of successive E-W profiles allowed us to show that, for each event:
  1. the delay between maximum times of the sources was in the range 0.3–0.8 s and that their time profiles were very similar.
  2. the mutual distance between sources was ~1.5 × 105 km.
Explanations by simultaneous emission at the fundamental and harmonic of the local plasma frequency, or by reflexion of electromagnetic radiations at boundary at a dense region are shown to be inconsistent with the observations. We suggest that distinct exciters are simultaneously accelerated at low levels in very close regions and propagate upward along very widely diverging magnetic field lines. This divergence could be related to the existence of large scale magnetic connexions in the corona as revealed by XUV observations. We stress the point that this kind of structure in type III bursts groups, visible only with high time resolution, may have led in the past to erroneous conclusions concerning diameter and decay time of type III bursts because of both spatial and temporal overlapping.  相似文献   

20.
Various solar bursts have been analysed with high sensitivity (0.03 sfu, rms) and high-time resolution (1 ms) at two frequencies in the millimeter wave range (22 GHz and 44 GHz), and with moderate time resolution (100 ms) by a patrol telescope at a frequency in the microwave range (7 GHz). It was found that, in most cases, burst maximum emission is not coincident in time at those frequencies. Preceding maximum emission can be either at the higher or at the lower frequency. Time delays ranged from about 3 s to near coincidence, defined within 10 ms. Some complex bursts presented all kinds of delays among different time structures, and sometimes nearly uncorrelated time structures.Large time delays favour the association of the dynamic effects to shock wave speeds. Directional particle acceleration in complex magnetic configuration could be considered to explain the variety of the dynamic effects. Fastest burst rise times observed, less than 50 ms at 44 GHz and at 22 GHz, might be associated to limiting formation times of emission sources combined with various absorption mechanisms at the source and surrounding plasma.In memoriam, 1942–1981.INPE operates Itapetinga Radio Observatory and CRAAM.  相似文献   

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