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1.
磁流体斜激波的碰撞   总被引:1,自引:0,他引:1  
讨论了磁流体斜激波之间的碰撞及其与接触间断的相互作用规律,主要结论如下:(1)两个快激波碰撞后交换位置,同时出现一接触间断和一慢稀疏波对。(2)两个慢激波碰撞后交换位置且强度减弱,同时出现一接触间断和一块激波对。(3)一前向快激波与一后向慢激波碰撞后交换位置,快激波强度增加,慢激波强度减弱,同时出现一后向快激波、一负接触间断和一前向慢稀疏波。(4)一前向快激波与一正(负)接触间断相互作用后交换位置,快激波减弱,同时出现一后向快稀疏波(快激波)、一后向慢激波和一前向慢激波(慢稀疏波).(5)一前向慢激波与一正(负)接触间断相互作用后交换位置,慢激波减弱,同时出现一后向慢稀疏波(慢激波)和一快稀疏波(快激波)对。   相似文献   

2.
磁流体斜激波的汇合   总被引:1,自引:1,他引:0  
本文讨论磁流体快、慢激波的汇合作用规律,主要结论如下:(1)两个前向快激波汇合之后,形成一更强的前向快激波,尾随一前向慢稀疏波、一正接触间断(后侧密度大于前侧)、一后向慢激波和一后向快稀疏浚。(2)两个前向慢激波汇合之后,形成一更强的前向慢激波,尾随一正接触间断、一后向慢稀疏波和一后向快激波2在前向慢激波前方出现一前向快波,它或为稀疏浚(中、小激波角情况),或为激波(大激波角情况).(3)前向快激波会追上前向慢激波而发生汇合,之后互换位置且强度减弱,尾随一正接触间断和一后向稀疏波对。   相似文献   

3.
采用一维磁流体力学模型和激波装配法,分析两个相继出现的耀斑激波的相互作用.前导激波下游的稀疏波显著改变后随激波的特性,并在它的下游产生强后向快激波.两耀斑激波汇合后将在下游形成密度比约为1.5的接触间断.  相似文献   

4.
本文讨论磁流体中间激波的相互作用规律.主要结论:中间激波汇合的产物为后向快简单波、后向慢简单波或慢激波、接触间断、前向慢激波和前向快激波,其中后向波成份和接触间断很弱.当左(右)激波较强时,中国激波碰撞产物为后(前)向快激波、后(前)向慢简单波或慢激波、负(正)切向间断、前(后)向慢简单波和前(后)向快激波.  相似文献   

5.
简要阐述了分析模拟的行星际磁流体力学(MHD)激波的局部性质时,采用无厚度局部平面激波这一假设的合理性,说明了在激波未扰动区域(激波上游),物理量在几个小时内的变化很小这一事实,利用平面激波的分析方法,提出了分析模拟的行星际MHD激波的新方法,包括激波位置的确定,上下游状态参数的选择,激波局部参数的计算以及激波的分类,最后应用这种方法对一个二维的MHD模拟结果进行了分析。结果证实了过去文献关于磁流体力学混合激波空间连接和时间演化的链式规则,而且说明位于太阳赤道附近的慢激波和中间激波最终会发展为快激波。  相似文献   

6.
太阳风中的动力论Alfven激波   总被引:1,自引:0,他引:1  
本文指出因动力论Alfven波的存在非线性作用,从而能引起波连续陡化;这种情况下考虑频散效应,理论上应该形成中间激波.针对这一物理思想,在二元流体模型下,引进离子声反常阻尼,数值解出中间激波的结构.  相似文献   

7.
本文用两维半MHD数值模型,数值模拟研究了两邻近扰动源所产生的激波在行星际空间黄道面内不同能量时的相互碰撞过程。在内边界(18R_s)两扰动中心的间距取为36°。结果表明:两弱激波(速度在500km/s左右以下)不会产生汇合,而是各自独立地传播;两中等强度激波(速度在1000km/s左右)将发生汇合,但在IAU尚可分辨;两强激波(速度在2000km/s以上)则在1AU以内已发生汇合,汇合后形成一个新激波,其磁场结构与单激波明显不同。激波能量越大,两激波汇合的越快。  相似文献   

8.
再论磁流体共面黎曼问题   总被引:1,自引:0,他引:1       下载免费PDF全文
本文证明一般磁流体共面间断D可分解为(这里有图片19980204-119.GIF),符号上的箭头表示各分解产物的传播方向,J为接触间断,Wf包含快激波、快简单波、1→3型中间激波及第一类快合成波,Ws包含慢激波、慢简单波、2→4型中间激波及第一类慢合成波.本文同时对某些特殊间断的分解作了分析.   相似文献   

9.
采用二维理想MHD模型,分别在日球赤道面(二维二分量模型)和日球子午面(二维三分量模型)内研究太阳风中慢激波的传播和演化规律.结果表明,慢激波在向外传播的过程中逐渐演化为由原慢激波和新产生的快激波构成的激波系统,该激波系统在子午面内相对慢激波源中心法线基本对称,而在赤道面内则是不对称的:快激波阵面和慢激波阵面之间存在一个切触点,该处两个激波合并,蜕化为气体激波.上述切触点相对激波源中心法线东偏,且东偏角度在激波系统向外传播过程中不断增加.初步分析表明,行星际磁场的螺旋结构是产生日球赤道面内慢激波传播和演化的东西不对称性的主要原因.  相似文献   

10.
本文用两维半MHD数值模型,模拟研究了不同间距的两扰动源所产生的激波在行星际空间黄道面内的相互碰撞过程。在内边界(18R_s),两扰动中心的间距取为24°、36°、48°、54°、72°、120°,模拟了两激波速度均为1000km/s和2000km/s两种情形。结果表明:1.速度为1000km/s的两中等激波,相距24°时,在1AU以内强烈相互作用而汇合成一新激波;相距36°时,在1AU附近发生汇合,但尚可分辨;相距48°时,在1AU以内有相互作用,但可近似认为是独立传播的;相距72°时,将独立向前传播。2.速眨为2000km/s的两强激波,相距≤48°时,将强烈汇合成一新激波;相距54°时,在1AU附近产生汇合,但尚可分辨;相距72°时,相互作用不足以汇合成新的激波;相距120°时,其传播相互独立地进行。并给出了上述情形下两激波汇合的时间和位置,详细比较了汇合激波与相同能量的单激波的等离子体特性。  相似文献   

11.
Many interplanetary shock waves have a fast mode MHD wave Mach number between one and two and the ambient solar wind plasma and magnetic field are known to fluctuate. Therefore a weak, fast, MHD interplanetary shock wave propagating into a fluctuating solar wind region or into a solar wind stream will be expected to vary its strength.It is possible that an interplanetary shock wave, upon entering such a region will weaken its strength and degenerate into a fast-mode MHD wave. It is even possible that the shock may dissipate and disappear.A model for the propagation of a solar flare - or CME (Coronal Mass Ejections) - associated interplanetary shock wave is given. A physical mechanism is described to calculate the probability that a weak shock which enters a turbulent solar wind region will degenerate into a MHD wave. That is, the shock would disappear as an entropy-generate entity. This model also suggests that most interplanetary shock waves cannot propagate continuously with a smooth shock surface. It is suggested that the surface of an interplanetary shock will be highly distorted and that parts of the shock surface can degenerate into MHD waves or even disappear during its global propagation through interplanetary space. A few observations to support this model will be briefly described.Finally, this model of shock propagation also applies to corotating shocks. As corotating shocks propagate into fluctuating ambient solar wind regions, shocks may degenerate into waves or disappear.  相似文献   

12.
根据磁流体力学间断面的守恒条件与磁流体力学单波方程的相似性,引入了一个称为磁流体力学激波特征速度的物理量,它是激波在波前后两侧介质中传播速度的几何平均值,当激波很弱时,它趋近于磁流体力学波的速度。本文导出一组以此特征速度为强度参数的激波跃变公式,形式上与单波的公式组非常相像,从而简化了激波跃变量的计算。其中密度跃变公式本身解析地证明:磁流体力学激波与磁流体力学波传播速度之间的关系是由激波是压缩波这一特性直接决定的。   相似文献   

13.
In this article, we study fast shocks at CIR boundaries during an extended interval of 15 consecutive major high speed solar wind streams in 1992–1993. Ulysses was 4–5 AU from the sun. The Abraham-Schrauner shock normal method and the Rankine-Hugoniot relations were used to determine fast shock directions and speeds. Out of 33 potential CIR shocks, 14 were determined to be fast forward shocks (FSs) and 14 were fast reverse shocks (RSs). Of the remaining 5 events, 2 were forward waves and 3 were reverse waves. CIR edges at latitudes below ∼30o were, for the most part, bounded by fast magnetosonic shocks. The forward shocks were generally quasi-perpendicular (average θnBo = 67o). The reverse shocks were more oblique (average θnBo = 52o), but they extended to all angles. Both FSs and RSs had magnetosonic Mach numbers ranging from 1 to 5 or 6. The average Mach numbers were 2.4 and 2.6 for FSs and RSs, respectively. The shock Mach numbers were noted to generally decrease with increasing latitude. The non-shock events or waves were noted to occur preferentially at high (∼−30° to −35°) heliolatitudes where stream-stream interactions were presumably weaker. These results are consistent with expectations, indicating the general accuracy of the Abraham-Schrauner technique.  相似文献   

14.
The Advanced Composition Explorer (ACE) spacecraft has measured 235 solar-based interplanetary (IP) shock waves between the years of 1998–2014. These were composed of 203 fast forward (FF), 6 slow forward (SF), 21 fast reverse (FR) and 5 slow reverse (SR) type shocks. These data can be obtained from the Interplanetary Shock Database of Harvard-Smithsonian Centre for Astrophysics. The Solar Section of American Association of Variable Star Observers (AAVSO) is an organization that counts the number of the sunspots. The effects of interplanetary shock waves on some physical parameters can be computed using a hydrodynamical model. There should be some correlations between these effects and the sunspot variations. The major objective of this paper is twofold. The first one is to search these correlations with sunspots given in the database of AAVSO. As expected, high correlations between physical parameters and sunspots have been obtained and these are presented in tables below. The second objective is to make an estimation of these parameters for the 22nd solar cycle and the years between 2015 and 2018 using an artificial neural network. Predictions have been made for these years where no shock data is present using artificial intelligence. The correlations were observed to increase further when these prediction results were included.  相似文献   

15.
太阳耀斑行星际激波传播中的追赶效应   总被引:1,自引:1,他引:0  
本文采用二维MHD模型对具有不同间隔时间的2个耀斑先后爆发,模拟研究它们所对应的行星际激波间的追赶效应,并和单个耀斑所产生的行星际激波相比较。研究结果表明,间隔时间一天以内的2个耀斑激波在行星际空间向外传播时,激波之间有明显的相互作用发生,间隔时间的长短决定了激波传播过程中追赶效应的强弱。根据数值试验结果,追赶效应可归纳为4类,(1)强追赶效应,(2)中等追赶效应,(3)弱追赶效应,(4)无追赶效应。属于强追赶效应的2个耀斑激波传播至1AU处,产生的行星际扰动非常相似于单个耀斑激波的扰动。  相似文献   

16.
耀斑激波传播的数值研究   总被引:3,自引:3,他引:0  
采用一维磁流体力学模型和激波装配法,分析耀斑激波在行星际空间的传播特性和激波下游区的波动结构,并就激波装配法和激波捕捉法的模拟结果的精度和可靠性进行比较.   相似文献   

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