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1.
太阳空间观测为揭示太阳新的观测现象与研究开拓了新的途径。空间观测具有全波段、全时段、全方位以及无大气抖动和大气散射光等观测优点。本文着重探讨了太阳空间长波射电观测、X射线观测、紫外线观测的成就与研究结果。这些波段(包括光学)的爆发均起因于太阳大气中被加速的荷能电子与太阳等离子体、磁场相互作用而产生的电磁辐射,其能量约占太阳耀斑总量的1/4,即10^25J。  相似文献   

2.
太阳观测的意义 太阳是离我们最近的一颗恒星,也是唯一可以作为面源观测的恒星。对太阳上各种物理现象的观测给我们提供了一个内涵十分丰富的物理实验室,用以检验各种物理理论的适用性。同时,太阳又是唯一一颗与地球生命直接相关的恒星。太阳风和日冕物质抛射(CME)带来的日地空间电离层的变化,将直接影响地球大气外层空间,甚至可能带来地球大气的许多变化。因此,充分理解太阳以及太阳上的各种物理现象无疑是十分必要和十分有意义的。 为什么要进行空间观测 要想把握太阳活  相似文献   

3.
太阳总辐照是指在地球大气层顶接收到的太阳总辐射照度,也叫"太阳常数",但它实际上并非常数。太阳总辐照随波长的分布即为太阳分光辐照。太阳辐照变化的研究,对理解太阳表面及内部活动的物理过程、机制,研究地球大气、日地关系,解决人类面临的全球气候变暖的挑战等,都具有重要意义。首先简单介绍了太阳辐照,回顾了太阳辐照的空间观测;接着介绍了观测数据的并合,以及对合成数据的一些研究;然后讨论了太阳辐照变化的原因,简述了太阳总辐照的重构及其在气候研究上的一些应用,并进行必要的评论;最后对未来的研究方向提出了一些看法。  相似文献   

4.
星际航行时代的来临,使天文科学正经历着一次意义深远的革命.太阳物理所受的影响尤为显著.在这方面已有不少专书和调研报告,本文将着重介绍一些最新的成就.一、绪论1.空间太阳观测的意义(1)高空观测的主要目的是解除地球大气的桎梏,免除臭氧、水蒸汽等对天体紫外和红外辐射的吸收,扩展观测波段.一般可认为在200  相似文献   

5.
1m红外太阳塔是我国未来重点发展的地面太阳观测设备,本文的所有工作均围绕着与此相关的红外波段太阳观测技术方法展开。1.针对望远镜实验平台-云台太阳光谱仪,建立了光谱仪分光流量,工用多种实验手段验证了其可靠性。利用该模型计算了Fe Ⅰ1.56μm红外太阳光 谱的分光流量,分析了实验观测的可行性及改进方案。2.针对探测器实验平台-PtSi红外焦平面阵列相机,建立了FeⅠ1.56μm光谱观测信噪比模型,模拟了各种噪声对观测的影响。在此基础上,在国内首次成功进行了FeⅠ1.56μm红外太阳光谱的面阵观测实验。3.在红外观测实验所处的高背景低对比度条件下,讨论了红外太阳光谱观测的图像处理方法,分析了观测中出现的干涉条纹的来源及解决办法,初步建立起了一整套红外太阳光谱与成像的定标方法和图像处理方法。4.首次利用PVA材料,设计研制了一套FeⅠ1.56μm近红外Stokes参量偏振仪,并将该偏振仪安装在美国国立天文台McMath望远镜上进行了观测实验。针对一太阳黑子,通过扫描进行了二维的Stokes参量观测。同时建立了一套从Stokes参量反演磁矢量场的方法,并将反演的结果与怀柔太阳磁场望远镜的观测结果进行了比对。5.针对1m红外太阳塔的太阳光谱仪系统,给出了垂直多波段光谱仪和红外大色散光谱仪的光、机初步设计。6.针对1m红外太阳塔的科学目标,提出了多波段光谱仪探测器系统方案,对红外大色散光谱仪所使用的红外探测器也进行了初步方案设计。  相似文献   

6.
太阳软X射线观测进展   总被引:1,自引:0,他引:1  
太阳软x射线观测在太阳物理的研究中,特别在日冕结构、磁场和日冕等离子体活动等物理现象的研究中起着重要的作用。太阳软x射线观测主要有光谱和成像观测两种.随着观测技术、方法和内容的发展,太阳软x射线观测揭示了太阳物理的许多重要的科学现象,并在预报、监测空间天气变化,预警空间灾变天气等方面也有着重要的应用.  相似文献   

7.
1m红外太阳塔是我国未来重点发展的地面太阳观测设备 ,本文的所有工作均围绕着与此相关的红外波段太阳观测技术方法展开。1 .针对望远镜实验平台—云台太阳光谱仪 ,建立了光谱仪分光流量模型 ,并用多种实验手段验证了其可靠性。利用该模型计算了FeⅠ 1 .56μm红外太阳光谱的分光流量 ,分析了实验观测的可行性及改进方案。2 .针对探测器实验平台—PtSi红外焦平面阵列相机 ,建立了FeⅠ 1 .56μm光谱观测信噪比模型 ,模拟了各种噪声对观测的影响。在此基础上 ,在国内首次成功进行了FeⅠ1 .56μm红外太阳光谱的面阵观测实验。3 .在红外观测实验所处的高背景低对比度条件下 ,讨论了红外太阳光谱观测的图像处理方法 ,分析了观测中出现的干涉条纹的来源及解决办法 ,初步建立起了一整套红外太阳光谱与成像的定标方法和图像处理方法。4 .首次利用PVA材料 ,设计研制了一套FeⅠ 1 .56μm近红外Stokes参量偏振仪 ,并将该偏振仪安装在美国国立天文台McMath望远镜上进行了观测实验。针对一太阳黑子 ,通过扫描进行了二维的Stokes参量观测。同时建立了一套从Stokes参量反演磁矢量场的方法 ,并将反演的结果与怀柔太阳磁场望远镜的观测结果进行了比对。5.针对 1m红外太阳塔的太阳光谱仪系统 ,给出了垂直多波段光谱仪和红外  相似文献   

8.
太阳空间观测揭示出太阳的高能电子、高能质子发射以及γ射线爆发。证实了有关的太阳射电辐射理论、揭示出太阳耀斑中的核反应。日冕物质抛射和耀斑等离子体云的空间观测揭示出它们之间的区别和联系, 认识到耀斑的热区和冷区。太阳和日球磁场观测发展了磁流体动力学理论  相似文献   

9.
关于太阳厘米-分米波段频谱日像仪研究进展   总被引:4,自引:4,他引:0  
摘要:在无线电波段进行射电观测是研究太阳的一个十分重要的手段,不同波段的无线电波反映出不同的特性和状态,其辐射频率与环境参数密切相关。当探测出某一频率上的无线电辐射后,即可诊断源区的电子密度或磁场。因此,建设厘米-分米波段频谱日像仪将首次在该波段上实现同时以高空间、高时间和高频率分辨率观测太阳活动的动力学性质,探测日冕大气。对于太阳物理研究具有重要作用。本文介绍该项目的科学意义、技术方案及预研进展情况。  相似文献   

10.
太阳空间观测揭示出太阳的高能电子,高能质子发射以及γ射线爆发。证实了有关的太阳射电辐射理论,揭示出太阳耀斑中的核反应。日冕物质抛射和耀斑等离子体云的空间观测揭示出它们之间的区别和联系,认识到耀斑的热区和冷区。在阳和日球磁场以观测发展了磁流体动力学理论。  相似文献   

11.
史晨 《天文学报》2023,(3):30-130
磁云因其独特的磁场结构经常是重大灾害性空间天气的驱动源.近来从磁云的边界层结构、环向通量、大尺度结构等方面关于磁云传播的动力学演化过程的研究取得了一些进展.在磁云边界存在一个由于磁场重联而形成的边界层结构.在磁云传播过程中,这种发生在边界处的磁场重联可能会把磁云的磁场剥蚀掉,进而引起其磁通量绳结构环向通量的减少以及不对称.在磁云内部,经常会观测到多个子通量绳结构.这些特性各异的子通量绳可以通过磁场重联而合并,进而引起磁云磁结构的改变.关于磁云大尺度磁场拓扑位形的演化机制,除了较早提出的交换重联外,目前的研究表明在行星际空间中,磁云边界处的重联过程也可以将磁云闭合或半开放的磁场线打开或断开.尽管在相关研究中已经取得了较大进展,但关于磁云传播的动力学演化过程还有许多问题尚不清楚.在行星际小尺度磁通量绳边界也发现了边界层结构,那么磁云是否会因剥蚀而成为小尺度通量绳?磁云内子通量绳结构在相互作用中会不会引起某些不稳定性而导致整个通量绳系统的崩溃?这些问题的解决还有待于进一步的理论、观测和数值模拟研究.  相似文献   

12.
太阳风中的电磁离子回旋(Electromagnetic Ion Cyclotron, EMIC)波自报道以来,受到了广泛的关注和研究.由于波的频率接近质子的回旋频率, EMIC波可以通过回旋共振波粒相互作用将波能传递给离子,并在太阳风粒子加热和加速等能化现象中发挥重要作用.总结了太阳风中EMIC波的观测和理论研究进展,包括EMIC波在磁云内外、磁云和行星际日冕物质抛射鞘区中的观测研究得到的一系列结果以及基于观测进行波的激发机制所取得的研究进展,并展望未来研究太阳风中EMIC波的突破方向.  相似文献   

13.
Radio observation is one of important methods in solar physics and space science. Sometimes, it is almost the sole approach to observe the physical processes such as the acceleration, emission, and propagation of non-thermal energetic particles, etc. So far, more than 100 solar radio telescopes have been built in the world, including solar radiometers, dynamic spectrometers, and radioheliographs. Some of them have been closed after the fulfillment of their primary scientific objectives, or for their malfunctions, and thus replaced by other advanced instruments. At the same time, based on some new technologies and scientific ideas, various kinds of new and much more complicated solar radio telescopes are being constructed by solar radio astronomers and space scientists, such as the American E-OVSA and the solar radio observing system under the framework of Chinese Meridian Project II, etc. When we plan to develop a new solar radio telescope, it is crucial to design the most suitable technical parameters, e.g., the observing frequency range and bandwidth, temporal resolution, frequency resolution, spatial resolution, polarization degree, and dynamic range. Then, how do we select a rational set of these parameters? The long-term observation and study revealed that a large strong solar radio burst is frequently composed of a series of small bursts with different time scales. Among them, the radio spike burst is the smallest one with the shortest lifetime, the narrowest bandwidth, and the smallest source region. Solar radio spikes are considered to be related to a single magnetic energy release process, and can be regarded as an elementary burst in solar flares. It is a basic requirement for the new solar radio telescope to observe and discriminate these solar radio spike bursts, even though the temporal and spatial scales of radio spike bursts actually vary with the observing frequency. This paper presents the scaling laws of the lifetime and bandwidth of solar radio spike bursts with respect to the observing frequency, which provide some constraints for the new solar radio telescopes, and help us to select the rational telescope parameters. Besides, we propose a spectrum-image combination mode as the best observation mode for the next-generation solar radio telescopes with high temporal, spectral, and spatial resolutions, which may have an important significance for revealing the physical essence of the various non-thermal processes in violent solar eruptions.  相似文献   

14.
We present an analytical model to explore the magnetic field turbulent spectrum by coupled high-frequency kinetic Alfvén wave (KAW) and slow mode of Alfvén wave (AW). The spectrum is computed as a realization of energy cascades from larger to smaller scales for a specific case of solar wind plasma at 1 AU. A two-fluid technique is implemented for the derivation of model equations leading two wave modes. These coupled, nonlinear equations are solved numerically. The nonlinearity in the system arises due to nonlinear ponderomotive force, which is believed to be responsible for the wave localization and magnetic islands formation. The numerical results show that the magnetic islands grow with time and attain a quasi-steady state after the modulation instability is saturated. The magnetic field spectrum and associated spectral indices are computed near the time of saturation of instability. The simulated spectrum in dispersion region follows a power-law with an index of ?2.5. The steeper spectrum could be attributed as energy transfer from larger to smaller scales and helps to study turbulence in solar wind. The magnetic field spectrum and spectral index show a good agreement with the observation of solar wind turbulent spectra.  相似文献   

15.
太阳磁场观测研究   总被引:5,自引:0,他引:5  
简要回顾了近几年国际上太阳磁场研究的一些重要进展,包括耀斑与磁切和电流的关系,电流螺度和磁螺度,磁场拓扑性,三维磁场外推,色球磁场研究,日冕磁场研究,内网络磁元,磁流和振荡,极区磁场观测以及色球磁元观测等方面内容,同时也介绍了怀柔太阳观测站最近所取得的主要成果,自20世纪90年代以来,YOHKOH高分辨率的太阳X射线数据,SOHO的多波段大尺度观测,TRACE的高分辨太阳过渡区资料,为研究太阳磁场从内部到距离几十太阳半径处的大范围演化提供了依据,高效的空间资料结合长期的地面资料,将是正派推动太阳磁场研究的重要手段和必然趋势。  相似文献   

16.
The importance of energetic particles in the generation of solar flares and related phenomena has been underestimated if not completely neglected. A reexamination of their role in the light of recent observations carried out during the last solar maximum by a number of experiments on SMM and Hinotori satellites points out the continuous and violent evolution of the solar atmosphere. Most observed features can be better explained by the old idea that particles are trapped in magnetic loops above active regions where they are first heated and then accelerated by absorbing part of the wave energy flowing upwards continuously from the convection zone. Their catastrophic release into the chromosphere as a consequence of an instability in the region such as chromospheric heating or due to the emergence of new magnetic flux is considered as being the flare proper. Since the trapping of the particles involves the generation of resonant waves, a reassessment of the isotopic overabundance problem as well as a search for these waves in interplanetary space are proposed.  相似文献   

17.
A Combined Atmospheric Photochemistry and Ion Tracing code (CAPIT) has been developed to explore ion loss into space at Mars. The CAPIT code includes the major photochemical reactions of Mars’ ionosphere, ion tracing in the presence of magnetic fields, and plasma wave heating of ions. In particular, we examine whether O+ escape from the day-side ionosphere is limited by ion production (UV input) or by external energy input to the ions. To verify the code, it is demonstrated that the CAPIT solutions reproduce the Viking 1 Lander’s ion density and temperature profiles. Using Viking 1 Lander conditions as a baseline, ion outflow rates are examined as function of solar wind energy input via plasma waves and UV ionization rates. The O+ outflow rates predicted by the simulation are comparable to the outflow rates estimated by observation. The results indicate that plasma waves are a viable source of energy to O+ ions and suggest that present-day O+ outflow rates at Mars are source limited by photochemical production (UV input) during periods of strong energy input (plasma wave activity), but otherwise regulated by both UV input and energy input. These results imply that ion heating by plasma waves can influence the present-day loss of O+.  相似文献   

18.
The Sun is enveloped by a hot, tenuous million-degree corona that expands to create a continuous solar wind that sweeps past all the planets and fills the heliosphere. The solar wind is modulated by strong gusts that are initiated by powerful explosions on the Sun, including solar flares and coronal mass ejections. This dynamic, invisible outer atmosphere of the Sun is currently under observation with the soft X-ray telescope aboard the Yohkoh spacecraft, whose results are presented. We also show observations from the Ulysses spacecraft that is now passing over the solar pole, sampling the solar wind in this region for the first time. Two other spacecraft, Voyager 1 and 2, have recently detected the outer edge of the invisible heliosphere, roughly halfway to the nearest star. Magnetic solar activity, the total radiative output from the Sun, and the Earth's mean global surface temperature all vary with the 11-year sunspot cycle in which the total number of sunspots varies from a maximum to a minimum and back to a maximum again in about 11 years. The terrestrial magnetic field hollows out a protective magnetic cavity, called the magnetosphere, within the solar wind. This protection is incomplete, however, so the Sun feeds an unseen world of high-speed particles and magnetic fields that encircle the Earth in space. These particles endanger spacecraft and astronauts, and also produce terrestrial aurorae. An international flotilla of spacecraft is now sampling the weak points in this magnetic defense. Similar spacecraft have also discovered a new radiation belt, in addition to the familiar Van Allen belts, except fed by interstellar ions instead of electrons and protons from the Sun.  相似文献   

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