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1.
在弱非线性理论基础上,将三维大气中行星波和惯性重力波从原始非弹性近似方程中分离出来,讨论了典型的2天行星波与惯性重力内波的非线性相互作用过程.从共振曲面和参量不稳定增长率来看,行星波倾向于与空间尺度较大的惯性重力波发生相互作用.利用潮汐波的等价重力波假设,讨论了2天行星波与半日潮及9.6h惯性重力波的相互作用,三波相互作用时能量守恒.非线性相互作用使2天波和潮汐波的波幅受到长期调制.   相似文献   

2.
采用武汉(30°N,114°E)MF雷达在2001年冬季的风场观测数据研究中纬度低热层大气潮汐之间的二阶非线性相互作用.经向风场的Lomb-Scargle归一化振幅谱表明,周日、半日和8 h潮汐是中纬冬季中层顶区域占优势的大气扰动;此外6 h潮汐也清晰可见.双相干谱分析揭示大多数显著的双相干谱峰代表潮汐谐振分量之间的相位互相关或单个潮汐分量的自相关.对随时间变化的潮汐垂直波长的比较发现,实际观测的8h潮汐垂直波长与假定的由观测的24 h潮汐和12 h潮汐非线性相互作用产生的8 h潮汐的理论垂直波长具有明显的一致性.在94.0~98.0km高度范围,周日、半日和8h潮汐之间不仅存在明显的相位相关和垂直波数相关,且它们的振幅随时间变化也显示出振荡幅值相近、振荡相位同步或反相的相关性,表明它们之间已经发生了二阶非线性相互作用.但是在94.0 km以下,三个潮汐分量之间的各种相关性随高度的下降变得越来越弱,因此潮汐二阶相互作用更可能是一种局地和暂态的现象.   相似文献   

3.
胡雄 Igar.  K 《空间科学学报》1999,19(3):226-231
对中纬度中频雷达1997年6月82km高度的小时平均风场数据进行了动态谱分析和双谱分析,得到了中层顶区域谱行为具有多样性和各向异性的特点,以及行星波,潮汐波和重力波之间相位相干的现象,讨论了中层顶行星波,潮汐波和重力波之间存在非线性相互作用的可能性。  相似文献   

4.
武汉上空(30°N,114°E)潮汐及其相互作用的MF雷达观测   总被引:1,自引:0,他引:1  
利用武汉(30°N,114°E)MF雷达2000年2月11日至25日,以及2月28日至3月13日的观测数据,研究中层顶(80-98km)区域冬季潮汐振荡及其共振相互作用.水平风场扰动的动态谱显示出在所有的观测高度上都持续存在很强的24 h潮汐波动;偶尔也会出现较强的12 h和弱的8 h潮汐振荡,这说明在中纬地区的冬季,24 h潮汐是中层顶区域主要的潮汐成分.潮汐振幅及其相关动能随时间的变化表明,在24h,12h和8h潮汐之间可能存在强的共振相互作用.另外,24 h潮汐的相位随高度的增加呈现出明显的增加趋势,表明观测到的24h潮汐是向上传播的.由相位剖面计算出24h潮汐纬向和经向风场的垂直波长分别为45km和47km,其向下的相位传播速度分别为1.88km/h和1.97km/h.  相似文献   

5.
武汉上空(30°N,l14°E)潮汐及其相互作用的MF雷达观测   总被引:5,自引:0,他引:5  
利用武汉(30°N,114°E)MF雷达2000年2月11日至25日,以及2月28日至3月13日的观测数据,研究中层顶(80-98 km)区域冬季潮汐振荡及其共振相互作用.水平风场扰动的动态谱显示出在所有的观测高度上都持续存在很强的24 h潮汐波动;偶尔也会出现较强的12 h和弱的8 h潮汐振荡,这说明在中纬地区的冬季, 24 h潮汐是中层顶区域主要的潮汐成分.潮汐振幅及其相关动能随时间的变化表明,在24 h,12 h和8 h潮汐之间可能存在强的共振相互作用.另外,24h潮汐的相位随高度的增加呈现出明显的增加趋势,表明观测到的24h潮汐是向上传播的.由相位剖面计算出24h潮汐纬向和经向风场的垂直波长分别为45km和47km,其向下的相位传播速度分别为1.88km/h和1.97km/h.  相似文献   

6.
重力波非线性传播过程中的饱和与破碎   总被引:2,自引:0,他引:2  
采用水平方向的显式算法与垂直方向的隐式算法相结合的时间分裂法,建立了二维可压缩大气中重力波非线性传播的数值模式.用本模式对小振幅重力波传播过程的模拟结果与线性重力波理论预测的结果吻合很好,从而验证了本模式的正确性.我们用此模式模拟了有限振幅重力波在非线性传播过程中的饱和与破碎,结果表明,(1)翻转出现在饱和之前,但向破碎演化仍需要一段时间,由于非线性波-波和波-流相互作用使得非线性数值模拟的饱和高度(出现时间)高(早)于线性饱和理论预测的结果;(2)重力波在不稳定之前已经有能量向背景场中转移,破碎直接导致非线性波-波相互作用,造成能量向小尺度短波上转移;(3)背景风场的加速方向,形成射流的方向与重力波的水平传播方向一致,表明重力波与背景流的非线性相互作用加剧了背景风剪切和不稳定性的发展.   相似文献   

7.
采用全隐欧拉格式(FICE)对重力波波包在三维非等温大气、均匀和剪切风场中的非线性传播进行了数值模拟,给出了重力波波包三维非线性传播的全过程,分析了重力波的传播特性及背景温度场、风场对重力波传播的影响。结果表明:波包扰动速度振幅的增长比在WKB条件下振幅的增长要慢;波包非线性传播的路径、能量传输速度不同于WKB近似下的结果,非线性效应导致了重力波的传播特性的改变;温度场的非均匀性会改变重力波传播的路径和速度;剪切风场使扰动速度振幅的增加变得缓慢,使垂直波长减小。  相似文献   

8.
重力波波包在真实大气中传播特性的数值研究   总被引:1,自引:4,他引:1  
采用二维全隐欧拉(FICE)格式,对重力波波包在真实大气中的非线性传播和演变过程进行了数值模拟,模拟结果表明,在中层大气下部激发的向上传播的重力波波包在传播到中层顶之前,波相关能量沿着射线路径传播,非线性效应和背景温场对波能量传播路径的影响很小,当波包传播到低热层大气后,波包饱和波相关能量几乎完全沿着水平方向传播,垂直方向的能量传播受到抑制,这与在无耗大气下,WKB近似条件下的线性重力波理论的预言相差很大,深入的分析表明抑制重力波波包向上传输能量的关键因素是大气分子粘性的垂直非均匀性。非线性和背景温场的影响不足以完全抑制波能量的向上传播,此外,在波包的整个传播过程中,由于非线性,背景温度和背景耗散的共同作用,重力波波包的垂直波长随时间明显减小,这些结果说明大气的分子粘性特别是分子粘性的垂直不均匀性对重力波波包在中、高层大气的非线性传播过程起着重要作用。  相似文献   

9.
武汉上空中层顶区域潮汐的MF雷达观测   总被引:1,自引:0,他引:1  
利用武汉中频雷达观测数据进行分析,研究2至3月份武汉上空中层顶潮汐结构及其随高度和时间变化的特性.用Lomb-Scargle周期图方法计算的水平风场动态功率谱表明,武汉上空存在持续的周日潮汐,是中层顶区域风场结构的主要成分.周日潮的平均振幅随高度的增加呈先增后减的趋势.大多数情况下,潮汐谱峰对应的频率与定义值有一定的偏移.周日潮水平扰动速度矢量随时问和高度变化的轨迹表明,经向分量的相位比纬向分量的相位超前,潮汐能量向上传播,对应于向下的相位传播速度.计算得出的经向分量和纬向分量的垂直相速度分别为1.10和1.15 km/h.   相似文献   

10.
武汉上空中层和低热层大气潮汐的流星雷达观测   总被引:10,自引:1,他引:10  
武汉流星雷达是2002年元月建成的我国第一部全天空流星雷达,本文对2002年2月19日到7月31日流星雷达观测的潮汐的讨论表明,武汉中层顶以周日潮汐为潮汐运动的主要分量,它的强度远大于半日潮汐,周日潮汐和半日潮汐的波源都在80km以下.周日潮汐分量在3、4月份最强,并且经向分量略强于纬向分量.两个分量的峰值在约95km处出现,分别达到44m/s和60m/s.半日潮的最大值24m/s出现在4月初约93km处.周日潮汐和半日潮汐的振幅和相位随时间呈现出拟周期变化的特征,这可能是潮汐与行星波非线形相互作用的结果.观测结果与GSWM模型的比较表明,GSWM模型在相位随高度变化趋势上与观测结果一致,但模型的周日潮相位比观测约超前1—2h,半日潮相位约滞后1—4h.在周日潮汐较强的月份,模型与观测有较大的差异,观测的幅度通常在95km附近有极大值,而模型并没有极大值.GSWM模型对半日潮的幅度的估计通常过小,观测的半日潮汐幅度有时甚至超过模型值的一倍以上.  相似文献   

11.
Nonlinear interactions between the quasi 5-day wave and tides based on meteor radar observation in the Mesosphere and Lower Thermosphere(MLT) at Maui are studied in this paper.Strong sum interaction between quasi 5-day wave and diurnal tide,and evident difference interaction between quasi 5-day wave and semidiurnal tide are observed during the time of attention.However,their difference and sum counterparts are clearly weaker.The secondary waves generated from those interactions beat with the tide and show intense modulation at the period of 5 days which confirms the existence of their interactions.Additionally,correlation coefficients among these waves are calculated to further explore their interactions and find that they can persist for several days although they are highly intermittent.The energy exchange among these waves can be reversible during the observational time.The periods when the significant difference interaction between the quasi 5-day wave and semidiurnal tide occur are much shorter than those when the significant sum interaction between the quasi 5-day wave and diurnal tide occur.Moreover,these two strong interactions can take place simultaneously.In generally,this study provides the proof of nonlinear interactions between quasi 5-day wave and tides which were seldom reported before.  相似文献   

12.
The global developments of the stratospheric events (~20–50 km) are briefly described using balloon and satellite data. Winds data from L.F. drift (52°N, 15°E, Europe) for heights of 90–100 km, and from M.F. radar (52°N, 107°W, Canada) for heights of 60–110 km are then compared with the stratospheric morphology.Data for 1982/3 and 1983/4 show that the planetary wave activity and warmings produced strong westward and southward perturbations in the radar winds. Satellite data from 0.1, 0.01 hPa are consistent with these winds; and also show smaller scale structures in the mesosphere than the stratosphere. The semi-diurnal tide responded strongly to the atmospheric disturbances in Europe and Canada: for the latter vertical wavelength changes occurred for heights of 70–100 km. However the correlation between these tidal fluctuations was not high indicating that the tidal adjustments were continental rather than hemispheric.  相似文献   

13.
The present paper is focused on the global spatial (altitude and latitude) structure, seasonal and interannual variability of the most stable in amplitude and phase eastward propagating diurnal and semidiurnal tides with zonal wavenumbers 2 and 3 derived from the SABER/TIMED temperatures for full 6 years (January 2002–December 2007). The tidal results are obtained by an analysis method where the tides (migrating and nonmigrating) and the planetary waves (zonally travelling, zonally symmetric and stationary) are simultaneously extracted from the satellite data. It has been found that the structures of the eastward propagating diurnal tides with zonal wavenumbers 3 and 2 change from antisymmetric with respect to the equator below ∼85 km height, to more symmetric above ∼95 km. The seasonal behavior of the DE3 is dominated by annual variation with maximum in August–September reaching average (2002–2007) amplitude of ∼15 K, while that of the DE2 by semiannual variation with solstice maxima and with average amplitude of ∼8 K. These tides revealed some interannual variability with a period of quasi-2 years. The seasonal behavior of the eastward propagating semidiurnal tide with zonal wavenumber 2 in the southern hemisphere (SH) is dominated by annual variation with maximum in the austral summer (November–January) while that in the northern hemisphere (NH) by semiannual variation with equinoctial maxima. The SE2 maximizes near 115 km height and at latitude of ∼30° reaching an average amplitude of ∼6 K. The seasonal behavior of the eastward propagating semidiurnal tide with zonal wavenumber 3 in both hemispheres indicates a main maximum during June solstice and a secondary one during December solstice. The tide maximizes near 110–115 km height and at a latitude of ∼30° reaching an average amplitude of ∼4.8 K in the SH and ∼4 K in the NH. The tidal structures of the two eastward propagating semidiurnal tides are predominantly antisymmetric about the equator.  相似文献   

14.
Winds from a meteor radar at Wuhan (30.6°N, 114.5°E) and a MF radar at Adelaide (35°S, 138°E) are used to study the 16-day waves in the mesosphere and lower thermosphere (MLT). The height range is 78–98 km at Wuhan and 70–98 km at Adelaide. By comparison, it is found that the zonal components at both sites are generally larger than the meridional ones, and eastward motion of the zonal background winds is favorable for the 16-day waves penetration to the MLT region. The zonal maximum amplitude appears in the autumn (September–October) around 86–98 km at Wuhan and in the winter months and early spring (July–October) around 72–82 km at Adelaide. Differences are found in wave amplitudes and time of appearance between the two years of 2002 and 2003. In 2003, the intensity of the wave amplitudes is relatively smaller than that for 2002 at both sites. The summer 16-day waves are comparatively weaker at Adelaide in both years, but stronger in 2002 at Wuhan near the mesopause and the lower thermosphere (86–98 km). The strong summer waves at Wuhan may come from the winter southern hemisphere.  相似文献   

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