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1.
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   

2.
中纬度冬季低热层潮汐水平风分量相位关系的MF雷达观测   总被引:1,自引:0,他引:1  
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水平风分量之间的相位关系.统一用弧度定义的各潮汐经纬向分量的拟合初相位在三个连续的高度上分别显示出相同的时间变化倾向和相近的相位差,但是在绝大多数观测时间△ψ24和△ψ12准正交,而△ψ8出乎意料地准同相.周日、半日和8 h潮汐经纬向分量的二次相位耦合(QPC)方程被分别估计出来,利用它们相减还得到一个潮汐相位差相关方程.推测的8 h潮汐相位和相位差与相应的观测值很好地符合.在第14个时间窗内,三个潮汐一般表现为椭圆偏振而不是圆偏振或线偏振,但是△ψ24和△ψ12在三个连续的高度上准正交,而△ψ8在92.0和94.0 km上准同相.因此估计的潮汐QPC方程、推导的潮汐相位差相关方程、观测的8 h潮汐准同相相位差以及典型的潮汐偏振图都是观测的周日、半日和8 h潮汐之间真实QPC的反映.   相似文献   

3.
MF雷达是中层大气风场及低电离层电子密度观测的重要手段. 简要介绍了新建昆明MF雷达设备的工作原理、结构及工作模式, 并对观测结果进行初步分析. 对2009年1月观测数据的分析表明, 该月纬向风场最大可达80 m/s, 经向风场则较小, 一般不超过40 m/s, 且二者均呈现一定波动性. 相应的LS谱及谐波拟合分析表明,周日潮汐是80~100 km高度大气风场的主要扰动成分, 其振幅随高度改变, 相位向下传播, 且周日潮汐经向分量相位超前于纬向分量相位. 此外, 分析了MF雷达白天的电子密度观测结果, 并与IRI2000进行比较, 发现两者在变化趋势上有非常好的一致性, 但雷达观测结果小于IRI2000给出的参考值.   相似文献   

4.
利用北京延庆子午工程激光雷达对北京上空钠层进行长期连续观测,分析研究钠层及其相关参数的周日变化.提取钠层各个高度上的相位信息,与同时段经向风潮汐信息进行比较发现:在各个高度上,二者周日相位数值基本一致.半日相位对比结果表明,虽然存在差异,但整体仍保持较好的一致性.此外,从2014年至2016年每年10月到第二年1月共4个月的钠层连续观测数据中提取钠层周日和半日的振幅和相位,探究北京上空冬季的潮汐特征.结果显示:周日潮的相位自上向下传播,且无明显的季节变化特征,其垂直波长在40~50km的范围;周日潮较强,半日潮较弱.   相似文献   

5.
极区夏季中间层半日潮汐的VHF雷达观测   总被引:4,自引:3,他引:1       下载免费PDF全文
采用德国SOUSYVHF雷达观测数据,研究了极区夏季中间层半日潮汐的结构和变化特征.纬向和经向风的动态Lomb-Scargle谱表明,半日潮是中间层高度上占支配地位的波动,其谱峰对应的频率一般与1/12c·h-1有偏离,说明它们经常处在被扰动状态.稳定的半日潮振幅随高度增加而迅速增长,在87.9km高度附近达到饱和;经向分量的相位一般比纬向分量的相位超前π/4-π/2,从而水平扰动速度矢量端点随时间变化的轨迹显示出顺时针方向旋转的特征.半日潮汐特征参量在纬向和经向风中随时间的变化在基本趋势一致的基础上显示出一定程度的各向异性.   相似文献   

6.
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   

7.
通过对2018年武汉站(114.61°E,30.53°N)数字测高仪记录的数据统计分析,研究武汉地区突发E层的特征。研究发现:2018年武汉地区电离层突发E层的临界频率在夏季最高,在冬季有一个次增强现象,在春秋季较低;在正午前最大,在日落后出现小幅度提升,在日出前最低。利用指定动态全球大气气候扩展模型SD-WACCM-X模拟出2018年武汉上空90~140 km高度的平均风场,探讨突发E层与背景风之间的关系,揭示突发E层的形成机制。结果表明,半日潮汐分量可能诱导突发E层临界频率的半日变化,周日潮汐分量诱导突发E层临界频率的周日变化;突发E层的强度可能与纬向风场120 km高度处的风剪切有关。   相似文献   

8.
武汉中层大气中频雷达及其初步探测结果   总被引:7,自引:9,他引:7  
首先简要地讨论了武汉中频雷达观测原理和设备的组成,该雷达测量60-100km高度的大气风场和电子密度,风场采用分布天线测量技术和全相关分析方法得到,电子密度通过微分吸收和微分相位技术获得,初步观测结果表明:(1)武汉上空冬季60-100km高度的纬向风多为西风,风速为30-50m/s,经向风速为10-20m/s,垂直风速较小,一般在5m/s以内,(2)60-100km高度范围的大气风场和电子密度均有明显的日变化,风场在某些时段和高度区间有较强的风剪切出现。(3)80km以上高度大气的风场和电子密度存在较明显的扰动现象,它可能与大气波动过程有关。  相似文献   

9.
利用安装于Andoya Rocket Range(69.14°N,16.02°E)的3 MHz、窄波束中频雷达2006年7月14日至8月14日之间的观测数据,研究了潮汐的变化特点并与GSWM模式的结果进行了比较.结果表明,在78~94km潮汐的纬向和经向分量随着高度的增加都经历了由弱到强然后减弱的过程.这说明潮汐在上传过程中很可能与其他波动相互作用而发生不稳定,在不稳定区域上方又生成新的潮汐波继续稳定地向上传播,或者有重力波等其他波动在此区域沉积动量导致潮汐振幅增大.潮汐振幅除了在垂直方向上发生变化,它随着时间演化也表现出显著的短期变化特点,逐日变化强度有时可达到3倍左右.结合近来的研究结果,可以认为,重力波的不稳定和破碎也可能是造成这种瞬态变化的原因之一.与GSWM-00模式的比较说明, GSWM-00模式能够较好地预测出周日潮汐的振幅和相位,而对半日潮汐的预测结果并不理想.  相似文献   

10.
利用武汉流星雷达2002年2月20日至2003年11月10日的观测数据,研究了武汉上空中间层-低热层(MLT)中的准16日波,即周期范围在12—20天的行星波。分析结果表明,16日波的纬向成分通常比经向成分要强.(1)在2002年和2003年,波振幅最强都出现在当年的秋季(约9月10日—10月10日).Lomb-Scargle(L-S)谱分析得到振幅最大值约为16m/s.2002年夏季出现了同年次最强的波动,但2003年没有发现这一现象.两年的冬季都没有出现强的16日波.(2)2002年,在86—98km处波动较强,最大振幅(约16m/s)出现在90km、94km处,而2003年低高度的波动要比较高高度的波动强.武汉上空MLT中,秋季的16日波是能量上传的波动,即它的源在较低的大气层.2002年夏季的波动的能量是下行的,波源可能在南半球.  相似文献   

11.
New meteor radar (MR) horizontal wind data obtained during 2015–2018 at Kazan (56°N, 49°E) are presented. The measurements were carried out with a state-of-the-art SKiYMET meteor radar. Monthly mean vertical profiles of zonal and meridional components of the prevailing wind speeds, also amplitudes and phases of the components of diurnal (DT) and semidiurnal tide (SDT) winds are displayed as contour plots for a mean calendar year over the four recent years and compared with distributions of these parameters provided by the previous multiyear (1986–2002) meteor radar (MR) measurements at Kazan and by the recent HWM07 empirical model. The analysis shows that the SKiYMET zonal and meridional prevailing wind speeds are generally in good agreement, sharing the same seasonal features, with the earlier MR seasonal winds. Comparisons with the HWM07 model are not favourable: eastward solstitial cells as modelled are significantly larger, >30?m/s compared to 15–20?m/s. Also, reversal lines are too variable with height, and the positions of modelled cells (positive and negative) are unlike those of either MRs at Kazan or other MLT radars. Both MR systems provide the large SDT amplitudes, approximately 30?m/s and vertical wavelengths, approximately 55?km, for both components at middle latitudes in winter. They also show the well known strong SDT September feature (heights 85–100?km, the vertical wavelength ~55–60?km), and the weak summer SDT for 80–91?km. HWM07 shows unrealistic amplitudes and phases above 90?km by height and month: minimal amplitudes in equinoxes and no September feature.The weak DT of middle to high latitudes provide similar amplitude and phase structures from both MRs, 1986–2002 and 2015–2017: largest amplitudes (10–12 or 8–10?m/s) for the evanescent meridional tide in summer, peaking in late July; weakest (0–2, 2–4?m/s) at 80 to 92–96?km, when the tide is vertically propagating (January, February, November, December) with a vertical wavelength near 40?km. Again, HWM07 differs in amplitude and phase structures: showing peak amplitudes in equinoxes: April, 15?m/s at 88?km; October, 21?m/s at 89?km.Coupling of the MR wind parameters with the ERA5 wind parameters is studied for a case in 2016. It is shown that the prevailing winds and DT amplitudes and phases of both datasets can be simply linked together, but that the ERA5 SDT amplitudes are significantly underestimated at the top model levels of the ERA5 reanalysis project.  相似文献   

12.
The Bologna meteor radar was operational during two winter campaigns, from 6 January 1982 to 1 February 1982 and from 10 December 1982 to 2 February 1983. As occurrence of minor stratospheric warmings has been reported for these intervals, possible effects on meteor wind over Bologna related to this kind of warming are pointed out. Zonal and meridional prevailing winds are found to exhibit the maximum peak to peak value in their oscillations when a minor stratospheric warming reaches such an intensity that ΔT(90°N–60°N) at 10 mbar is reversed. Diurnal and semidiurnal tides exhibit usual amplitude variations, but the semidiurnal tide has a noticeable phase shift at the time of a minor warming occurrence, while a similar shift is less evident in the diurnal tide phase.  相似文献   

13.
As part of an ongoing effort to understand the migrating diurnal tide generated by the NCAR Whole Atmosphere Community Climate Model, version 3 (WACCM3), we compare the WACCM3 migrating diurnal tide in the horizontal wind and temperature fields to similar results from the Global Scale Wave Model (GSWM). The WACCM3 diurnal tidal wind fields are also compared to tropical radar measurements at Kauai (22°N, 200.2°E) and Rarotonga (21.3°S, 199.7°E). The large-scale features of the WACCM3 results, such as the global spatial structure and the semiannual amplitude variation are in general agreement with past tidal studies; however, several differences do exist. WACCM3 exhibits a much higher degree of hemispheric asymmetry, lower overall amplitudes around the equinoxes, and peaks which are more confined in latitude when compared with the GSWM. Factors which may contribute to such differences between WACCM3 and GSWM are the solar heating profiles from ozone and water vapor, dissipation, and the zonal mean zonal winds. We find that the internally generated heating in WACCM3 and eddy dissipation values are both smaller than the values specified in the GSWM; the eddy dissipation fields and zonal mean zonal winds of the two models also display measurable differences in spatial structure. Comparisons with radar data show several differences in spatial and seasonal structure. In particular, the diurnal tide zonal winds in WACCM3 above Kauai are considerably larger in amplitude than those observed in the radar data, due to contributions from nonmigrating tidal components including wave numbers eastward 1 through 3, westward 2, and stationary components, which interfere constructively with the migrating component around equinox in WACCM3.  相似文献   

14.
Measurements and theory of diurnal and semidiurnal tidal oscillations between about 25 and 80 km are reviewed. At latitudes greater than about 30°, meridional (N-S) wind components are consistently in quadrature with and similar to the zonal (E-W) components. The tidal structures are interpreted as a superposition of quasi-steady higher-order modes excited in the troposphere by sources of limited extent (1,000–10,000 km). At latitudes less than about 30°, steady or quasi-steady diurnal and semidiurnal components are not necessarily the dominant components of the daily variation. At high latitudes diurnal phases generally show little change with height in comparison with observations at lower latitudes, in accord with the latitudinal properties of diurnal modes with positive and negative equivalent depths.  相似文献   

15.
The structure and variability of tides in the 80 – 120 km height region are reviewed. Particularly emphasised are seasonal-latitudinal variations in the vertical structure of diurnal and semidiurnal winds between 70 – 100 km as measured by meteor and partial reflection drift radars, and tidal temperatures determined by incoherent scatter radars between 100 and 140 km. Variations in tidal structures with longitude, from day to day, and during equinoctial transition periods are also addressed.  相似文献   

16.
Tidal variability in the mesosphere and lower thermosphere (MLT) during September 2019 Southern hemisphere minor sudden stratospheric warming (SSW) is investigated utilizing ground-based meteor radar wind observations from the equatorial, extratropical, middle, and high latitude stations and global reanalysis dataset. The polar warming is found to move from the mesosphere to the stratosphere until the peak warming day (PWD) of the SSW. The diurnal and semidiurnal tides at individual observational sites do not exhibit any consistent response during the observational interval, but a notable and consistent variability in some specific zonal wavenumber components, i. e., DW1 (migrating diurnal tide), DE3 (nonmigrating eastward wavenumber 3 diurnal tide), and SW2 (migrating semidiurnal tide) is found in the global reanalysis dataset. Incidentally, the warming event occurs during Spring equinox when a dominant seasonal change in the tidal activities generally takes place and hence seasonal variability is also looked into while identifying the SSW impact during the observational interval. It is found that the seasonal broad changes in the DW1, DE3, and SW2 amplitudes can be explained by the variability in the tidal sources, i.e., water vapor, convective activity, ozone, etc during the observational period. However, the extracted short-term variability in the global tidal modes on removing seasonal trend reveals noticeable response in connection with the warming event. The deseasoned amplitude of the DW1 significantly enhances around the PWD at most of the present latitudes. The deseasoned DE3 amplitude responds significantly in the middle atmosphere at low latitudes during the warming phase. The deseasoned SW2 exhibit clear enhancement around the PWD at all the latitudes. However, the deseasoned tidal features do not seem to correlate well with that of the source species unlike the seasonal ones that imply involvement of complex processes during the warming event, seeking further future investigations in this regard.  相似文献   

17.
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   

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