首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 140 毫秒
1.
气溶胶影响混合相对流云降水的数值模拟研究   总被引:2,自引:0,他引:2  
利用一种新的异质冰相核化参数化方案,研究了当气溶胶同时作为云凝结核和冰核时,在不同高度输送对混合相对流云和降水的影响。结果发现,对于本文研究的理想混合相对流云,气溶胶在边界层的输送导致液滴数浓度明显增加,有效半径减小,霰粒的生长受到抑制,引起霰粒质量浓度降低;而气溶胶在对流层中层4~6km输送时,导致冰晶和霰粒数浓度明显增加。由于较多的冰晶引起更加快速的贝吉隆过程,使霰粒的质量浓度增加;气溶胶在对流层中层2~4km高度输送时冰相形成作用相对较弱,并引起霰粒的数浓度略微增加,由于霰粒的有效半径减小导致其质量浓度下降。气溶胶在不同高度的输送都导致液态和固态降水率降低,随着背景气溶胶数浓度的增加,气溶胶在0~2km、2~4km以及4~6km的输送分别导致累积降水量减少28%~64%、4%~44%和3%~46%,并且对降水的抑制效应及所在高度不同引起的降水差异随着背景气溶胶数浓度的增加而减小。  相似文献   

2.
石茹琳  银燕  陈倩  王旭  况祥  张昕  王智敏 《大气科学》2021,45(1):107-122
利用带有分档微物理方案的中尺度模式(WRF-SBM)模拟了一次新疆夏季的冰雹天气过程,并通过敏感性试验研究了气溶胶浓度变化对雹云微物理特征、降水过程及冰雹形成机制的影响。结果表明:初始气溶胶浓度越大,对流云发展越旺盛。雹云发展阶段,云中液水含量随气溶胶浓度增加而增多,冰水含量在中度污染时最多。冰雹的含量随气溶胶浓度的增加呈现先增加后减小的趋势,相较而言中度污染条件下,云滴尺度适当,过冷云水含量相对充足,更有利于液相水成物向冰粒子的转化,也更有利于冰雹的生长。冰雹最初几乎全部由冰晶碰冻过冷水生成,随后该过程迅速减弱,液滴冻结过程短暂地成为主要来源,但冰雹一旦形成,自身就会迅速收集过冷水开始生长,成为冰雹生长的主导过程。重度污染条件导致各种成雹过程推迟发生。气溶胶浓度增大导致地面液相累积降水增加,冰相累积降水先增加减少,并且气溶胶浓度适当增大可使降雹量及冰相降水中冰雹的比重增加,过量则会减小。在此基础上,本文提出最适合冰雹生长的“最优气溶胶浓度”,同时也是人工防雹工作中应重点关注的浓度。  相似文献   

3.
利用CAM3.0气候模式模拟研究东亚地区气溶胶浓度增长以及1976/1977年前后发生的海温年代际变化对东亚夏季降水场的影响及其机制。采用四组试验:即对东亚区域(100~150°E,20~50°N)分别进行的单独加倍黑碳气溶胶浓度、单独加倍硫酸盐气溶胶浓度、同时加倍这两种气溶胶浓度的三组关于气溶胶直接气候效应的试验及全球海温在1976/1977前后发生变化的海温年代际变化试验,来比较、探讨海温年代际变化和东亚地区气溶胶浓度增加对东亚夏季降水的影响机制。结果表明,无论是海温年代际变化还是各种气溶胶的浓度加倍,都能导致我国出现长江以北地区降水减少-东南沿海地区降水增加的"南涝北旱"的降水异常分布型。但两者在洋面上空降水的迥异表现及东亚低层风场的不同变化,显示其具有不同的异常降水机制。比较三类气溶胶浓度增加的试验结果发现:在单独硫酸盐气溶胶浓度增加试验中,东亚中部出现最显著的中下层大气降温、异常下沉气流以及降水减少;而在黑碳气溶胶试验中,出现在东亚中部的异常下沉气流强度减弱且位置偏南;在同时增加两类气溶胶浓度时,降水异常分布与单独黑碳气溶胶浓度增加所导致的降水异常相近,但强度减小。  相似文献   

4.
人为气溶胶对地形云降水的影响:以黄山地区为例   总被引:1,自引:0,他引:1       下载免费PDF全文
选取黄山站为高山站,周围黄山区、绩溪、黄山市三个低海拔高度站为对比站,比较高山站与对比站1960—2009年降水量差值,即地形影响因子R0的变化趋势,以及同期能见度的变化,分析了人为气溶胶对黄山地形云降水的可能影响。结果表明,1960—1979年能见度下降,气溶胶含量增大,R0升高;1980—1989年,能见度升高,气溶胶含量有下降趋势,不同对比站R0变化趋势不同;1990—2009年,能见度下降,气溶胶含量升高,R0显著下降。气溶胶对降水的影响作用与背景气溶胶浓度有关,背景气溶胶浓度较低时,增加气溶胶浓度可促进降水;背景气溶胶浓度较高时,增加气溶胶含量对降水抑制作用显著,对应的能见度阈值为10km。当气溶胶对降水起抑制作用时,抑制作用与风速成反比,与风频和各风向平均降水量呈显著正相关。  相似文献   

5.
利用GRAPES模式研究气溶胶对云和降水过程的影响   总被引:5,自引:3,他引:2  
石荣光  刘奇俊  马占山 《气象》2015,41(3):272-285
在GRAPES中尺度模式的双参数微物理方案中加入了气溶胶活化参数化过程,实现了对云滴数浓度的预报。选取不同季节两个降水过程进行模拟,并分别开展了不同气溶胶背景下的两个试验进行对比分析,研究气溶胶对云和降水可能的影响。结果表明:气溶胶浓度增加后,因为活化产生了更多尺度较小的云滴,抑制了云雨的自动转化,使大气中滞留了更多的云水,暖云降水减小;另一方面,云水的增加会使冰相粒子,尤其是雪和霰通过碰并云水等过程而增大,最后融化成雨增加冷云降水,同时冰相粒子增加会释放更多的潜热,促进上升气流的发展,进一步增加冷云降水。气溶胶对降水的影响存在空间不一致性,暖云较厚的地方暖雨过程受到的抑制明显,使地面降水减小,冷云厚度相对较厚时,冷云降水的增加会大于暖云降水的抑制,使地面降水增加。同时由于在云降水发展的不同阶段冷暖云的变化,气溶胶对降水的影响也存在着时间不一致性。  相似文献   

6.
本文采用CAM30 模式研究东亚地区各种气溶胶浓度增加后对于东亚春季各气候要素,尤其是对降水和春季风场的影响。在模式中通过分别对区域(20~50 °N,100~150 °E)内黑碳气溶胶浓度单独加倍、硫酸盐气溶胶浓度单独加倍、两种气溶胶浓度同时加倍的实验方法,探讨不同气溶胶浓度变化在东亚春季气候变化中的具体作用。结果表明:在春季,3种气溶胶浓度增加方式都使得东亚地区表现出降水中南部减少北部增加,低层大气西南风异常以及地面温度南部增加北部减少。通过对110~120 °E的断面分析发现,硫酸盐与黑碳气溶胶在春季首先影响约800 hPa以上大气的温度并通过不同的动力机制影响东亚地区的风场,风场的改变进而导致了云量和降水在东亚北方地区增多而中南部地区减少,并最终使得地面温度表现出东亚中南部地区增温而北方地区相对降温的特征。  相似文献   

7.
本文采用CAM3.0模式研究东亚地区各种气溶胶浓度增加后对于东亚春季各气候要素,尤其是对降水和春季风场的影响。在模式中通过分别对区域(20~50°N,100~150°E)内黑碳气溶胶浓度单独加倍、硫酸盐气溶胶浓度单独加倍、两种气溶胶浓度同时加倍的实验方法,探讨不同气溶胶浓度变化在东亚春季气候变化中的具体作用。结果表明:在春季,3种气溶胶浓度增加方式都使得东亚地区表现出降水中南部减少北部增加,低层大气西南风异常以及地面温度南部增加北部减少。通过对110~120°E的断面分析发现,硫酸盐与黑碳气溶胶在春季首先影响约800 hPa以上大气的温度并通过不同的动力机制影响东亚地区的风场,风场的改变进而导致了云量和降水在东亚北方地区增多而中南部地区减少,并最终使得地面温度表现出东亚中南部地区增温而北方地区相对降温的特征。  相似文献   

8.
污染大气对冻雨过程影响的数值模拟   总被引:1,自引:1,他引:0  
为了揭示污染大气(气溶胶浓度增加)对于冰冻灾害天气尤其冻雨的影响,利用可分辨云模式(WRF)对2008年1月18—21日中国南方地区一次冰冻灾害天气进行了研究。结果表明:污染气溶胶对此次冰冻天气的区域降水有一定的抑制作用,其中对冻雨的抑制作用更为明显,尤其表现在对较强冻雨过程的抑制作用。微物理过程分析表明,贵阳地区冻雨形成机制表现为过冷云机制(暖云机制),污染气溶胶使云内云水含量浓度增加,使得冰相粒子撞冻过冷水这一过程进行的更加充分,引起过冷却雨水含量减小,进而导致地面以固态降水为主,抑制了冻雨的产生。  相似文献   

9.
气溶胶对我国中东部地区秋季降水的影响   总被引:10,自引:1,他引:9  
通过分析近50年来中国中东部地区降水资料发现,秋季降水与其他季节相比有明显减少趋势(每10年下降约54.3 mm),尤其自1980年代以来呈直线下降趋势(每10年降水减少5.6%)。从降水形成三个基本条件(水汽输送条件、稳定度条件、云微物理条件)出发,探究秋季降水减小的原因。结果表明,大气稳定度(对流抑制能(convective inhibition,CIN)以28.67(J/kg)/(10年)的速率增加,对流有效位能(convective available potential energy,CAPE)以12.81(J/kg)/(10年)的速率减小以及云微物理性质的变化(云滴有效粒子尺度减小)是导致秋季降水减少的直接原因,而这两个因素的变化与近20多年来气溶胶的大量增多有着非常密切的关系。因此,由空气污染造成的气溶胶浓度的增加可以作为导致中国中东部地区秋季降水减少的其中一个重要原因。由于秋季天气系统较稳定,主要受到大尺度系统影响,动力作用影响大于热力作用,所以减少了复杂中小天气系统和热力作用对降水的影响,故而更加突显出气溶胶对秋季降水的影响。  相似文献   

10.
利用WRF模式设计两个数值试验:敏感性试验(背景场云凝结核浓度为2 000 cm-3)和控制试验(背景场云凝结核浓度为300 cm-3)模拟气溶胶对登陆台风“莫拉克”(2009年第8号台风)降水的影响。结果显示大量气溶胶进入外围雨带中起到云凝结核作用,凝结水汽生成水滴,释放潜热有利于对流发展;气溶胶含量增多引起水滴半径减小,雨滴生成的时间加长,降水时间延后;大量液态水上升至冻结高度以上发生相变释放潜热,固态水物质含量增多;台风外围雨带的中小尺度对流云团增强,降水增加。  相似文献   

11.
对流云对大气气溶胶和相对湿度变化响应的数值模拟   总被引:6,自引:3,他引:3  
荣艳敏  银燕 《大气科学》2010,34(4):815-826
利用二维面对称分档云模式研究了气溶胶颗粒物浓度和尺度谱分布对混合相对流云微物理过程和降水的影响, 并重点讨论了气溶胶效应随环境相对湿度的变化。结果表明, 在初始热力和动力条件相同的情况下, 相对清洁的海洋性云在发展和成熟阶段能更有效地产生雨滴、 冰晶和霰粒, 形成更强的雷达反射率。随着气溶胶浓度增加, 比如在本文模拟的污染大陆性云中, 气溶胶粒子数浓度的增加限制云滴增长, 不利于降水粒子的形成。模拟结果也发现, 环境相对湿度对气溶胶效应有显著影响, 即当地面相对湿度从50%增大到70%时, 所模拟的云从浅对流泡发展为深对流云; 气溶胶对云微物理特性和降水的影响在干空气中较小, 但在湿空气中表现非常显著, 这与前人结果一致。随着相对湿度的增加, 冰相粒子出现的时间提前, 增长加快, 云砧范围扩大, 但相对来说, 降水起始时间对相对湿度的变化比气溶胶更敏感。  相似文献   

12.
沙尘气溶胶对大气冰相过程发展的敏感性试验   总被引:8,自引:6,他引:2  
陈丽  银燕 《气象科学》2009,29(2):208-213
利用分档云动力学模式,研究了沙尘气溶胶输送过程中在不同大气背景环境条件下对云内冰相粒子形成、发展和降水过程的影响.通过敏感性试验发现:在背景气溶胶浓度不断增加的情况下,冰相降水率以及冰相降水在总降水量中的比例逐渐减小;只有在大陆性云和污染严重的地区,含有一定比例可溶性物质的沙尘粒子提高了大气中的巨核浓度,使云中冰相降水质粒提前出现,有利于降水的形成.另一方面,当把不可溶矿物气溶胶粒子作为有效的大气冰核参与云降水形成的物理过程时,由矿物气溶胶引起的大气冰核浓度增加在一定程度上抑制云中冰相降水质粒的发展,部分抵消巨核对降水的促进作用.  相似文献   

13.
A two-dimensional cloud model with bin microphysics was used to investigate the effects of cloud condensation nuclei (CCN) concentrations and thermodynamic conditions on convective cloud and precipitation developments. Two different initial cloud droplet spectra were prescribed based on the total CCN concentrations of maritime (300 cm− 3) and continental (1000 cm− 3) air masses, and the model was run on eight thermodynamic conditions obtained from observational soundings. Six-hourly sounding data and 1-hourly precipitation data from two nearby weather stations in Korea were analyzed for the year 2002 to provide some observational support for the model results.For one small Convective Available Potential Energy (CAPE) ( 300 J kg− 1) sounding, the maritime and continental differences were incomparably large. The crucial difference was the production of ice phase hydrometeors in the maritime cloud and only water drops in the continental cloud. Ice phase hydrometeors and intrinsically large cloud drops of the maritime cloud eventually lead to significant precipitation. Meanwhile negligible precipitation developed from the continental cloud. For the three other small CAPE soundings, generally weak convective clouds developed but the maritime and continental clouds were of the same phases (both warm or both cold) and their differences were relatively small.Model runs with the four large CAPE ( 3000 J kg− 1) soundings demonstrated that the depth between the freezing level (FL) and the lifting condensation level (LCL) was crucial to determine whether a cloud becomes a cold cloud or not, which in turn was found to be a crucial factor to enhance cloud invigoration with the additional supply of freezing latent heat. For two large CAPE soundings, FL–LCL was so deep that penetration of FL was prohibitive, and precipitation was only mild in the maritime clouds and negligible in the continental clouds. Two other soundings of similarly large CAPE had small FL–LCL, and both the maritime and continental clouds became cold clouds. Precipitation was strong for both but much more so in the maritime clouds, while the maximum updraft velocity and the cloud top were slightly higher in continental clouds. Although limited to small CAPE cases, more precipitation for smaller FL–LCL for a selected group of precipitation and thermodynamic sounding data from Korea was in support of these model results in its tendency.These results clearly demonstrated that the CCN effects on cloud and precipitation developments critically depended on the given thermodynamic conditions and not just the CAPE but the entire structure of the thermodynamic profiles had to be taken into account.  相似文献   

14.
利用常规气象观测资料、NCEP FNL再分析资料以及中尺度WRF模式的数值模拟结果,对2010年7月1日发生在辽宁地区的一次嵌入对流云的形成、演变过程进行了分析,并对云中微物理特征进行了诊断。结果表明:WRF模式较理想地模拟出了此次对流过程。嵌入对流云是在大气上层分布有成片的层状云,低层有零星的对流泡生成的情况下,随着低层对流泡的不断发展壮大,当其伸展至层云的高度时镶嵌其中而成;嵌入的对流体在随层状云东移的过程中反复进行着并合、分裂过程,而且分裂过程中出现明显的右移性对流体的选择性加强;云系中不仅存在云水直接转化为雨水的暖云降水机制,也存在有播撒—供应的冷云降水机制,且成熟阶段冷、暖云降水机制均较为活跃;物理量场上,低层辐合高层辐散的强度在发展阶段最强,最有利云系的发展。  相似文献   

15.
In this study, simulations performed with a large-eddy resolving numerical model are used to examine the effect of aerosol on cumulus clouds, and how this effect varies with precipitation intensity. By systematically varying the surface moisture fluxes, the modeled precipitation rate is forced to change from weak to strong intensity. For each of these intensities, simulations of a high-aerosol case (a polluted case with a higher aerosol concentration) and a low-aerosol case (a clean case with a lower aerosol concentration) are performed. Whether or not precipitation and associated sub-cloud evaporation and convective available potential energy (CAPE) are large, liquid–water path (LWP) is larger in the high-aerosol case than in the low-aerosol case over the first two-thirds of the entire simulation period. In weak precipitation cases, reduction in aerosol content leads to changes in CAPE in the middle parts of cloud layers, which in turn induces larger LWP in the low-aerosol case over the last third of the simulation period. With strong precipitation, stronger stabilization of the sub-cloud layers in the low-aerosol case counters the CAPE changes in the middle parts of cloud layers, inducing smaller LWP in the low-aerosol case over the last third of the simulation period. The results highlight an interaction between aerosol effects on CAPE above cloud base and those in sub-cloud layers, and indicate the importance of a consideration of aerosol effects on CAPE above cloud base as well as those in sub-cloud layers. In the high-aerosol case, near the beginning of the simulation period, larger environmental CAPE does not necessarily lead to larger in-cloud CAPE and associated larger cloud intensity because aerosol-induced increase in cloud population enhances competition among clouds for the environmental CAPE. This demonstrates the importance of the consideration of cloud population for an improved parameterization of convective clouds in climate models.  相似文献   

16.
Aerosols affect precipitation by modifying cloud properties such as cloud droplet number concentration (CDNC). Aerosol effects on CDNC depend on aerosol properties such as number concentration, size spectrum, and chemical composition. This study focuses on the effects of aerosol chemical composition on CDNC and, thereby, precipitation in a mesoscale cloud ensemble (MCE) driven by deep convective clouds. The MCE was observed during the 1997 department of energy's Atmospheric Radiation Measurement (ARM) summer experiment. Double-moment microphysics with explicit nucleation parameterization, able to take into account those three properties of aerosols, is used to investigate the effects of aerosol chemical composition on CDNC and precipitation. The effects of aerosol chemical compositions are investigated for both soluble and insoluble substances in aerosol particles. The effects of soluble substances are examined by varying mass fractions of two representative soluble components of aerosols in the continental air mass: sulfate and organics. The increase in organics with decreasing sulfate lowers critical supersaturation (Sc) and leads to higher CDNC. Higher CDNC results in smaller autoconversion of cloud liquid to rain. This provides more abundant cloud liquid as a source of evaporative cooling, leading to more intense downdrafts, low-level convergence, and updrafts. The resultant stronger updrafts produce more condensation and thus precipitation, as compared to the case of 100% sulfate aerosols. The conventional assumption of sulfate aerosol as a surrogate for the whole aerosol mass can be inapplicable for the case with the strong sources of organics. The less precipitation is simulated when an insoluble substance replaces organics as compared to when it replaces sulfate. When the effects of organics on the surface tension of droplet and solution term in the Köhler curve are deactivated by the insoluble substance, Sc is raised more than when the effects of sulfate on the solution term are deactivated by the insoluble substance. This leads to lower CDNC and, thus, larger autoconversion of cloud liquid to rain, providing less abundant cloud liquid as a source of evaporative cooling. The resultant less evaporative cooling produces less intense downdrafts, weaker low-level convergence, updrafts, condensation and, thereby, less precipitation in the case where organics is replaced by the insoluble substance than in the case where sulfate is replaced by the insoluble substance. The variation of precipitation caused by the change in the mass fraction between the soluble and insoluble substances is larger than that caused by the change in the mass fraction between the soluble substances.  相似文献   

17.
东亚季风气候受到自然因素和人类活动的共同影响,而人类活动因子中气溶胶的作用尤为关键,采用诊断分析的手段研究东亚地区气溶胶的特征及其与云和降水的相互关系具有重要的科学意义。本文利用MODIS(moderate-resolution imaging spectroradiometer)气溶胶和云资料以及TRMM(Tropical Rainfall Measuring Mission)降水数据,分析了东亚夏季气溶胶、云、降水的时空分布特征,研究了气溶胶与云和降水的相互关系。结果表明:中国四个典型地区(珠三角、长三角、四川盆地、京津唐)2001~2011年夏季(6~8月)平均气溶胶光学厚度(Aerosol Optical Depth, AOD)变化范围为0.40~0.68,云光学厚度平均值为18.7~23.6,水云云滴有效粒子半径在20.2~25.6 μm,冰云有效粒子半径在12.9~15.3 μm,云水路径为222.2~243.8 g m-2,降水强度平均值3.6~8.6 mm d-1;珠三角气溶胶光学厚度有显著降低趋势,年倾向为-3.31%,四川盆地云滴有效粒子半径(冰云、水云)和云水路径年变化趋势为-0.42%、-0.49%和-1.26%,京津唐夏季降水量年增幅为3.24%。气溶胶光学厚度和云光学厚度呈正相关,相关系数最大为0.77;在相对湿度较低(30%~50%)情况下,气溶胶光学厚度与云滴有效粒子半径呈负相关;气溶胶光学厚度与云水路径呈正相关,相关系数最大为0.92;相对于低污染情况(AOD<0.5),高污染情况(AOD>0.5)下出现大雨(>10 mm d-1)的频率增加了6.6%~19.1%,小雨(<1 mm d-1)的频率减少了0.72%~7.3%。在水汽含量较少的情况下,气溶胶的增加导致云滴有效粒子半径的减少;气溶胶增强了南方地区的对流性降水,抑制了北方地区层云降水。  相似文献   

18.
在总结“十五”国家科技攻关重大计划项目“人工增雨技术研究及示范”成果的基础上,利用我国可移式新一代天气雷达在青海省河南县和河南省许昌市进行秋(春)季降水系统中尺度结构外场试验观测的方法和技术,对这两个地区云和降水的若干特征进行了分析;另外,使用两步变分方法反演了风场结构,分析了层状云和对流云的中尺度回波强度和动力结构。结果表明:新一代天气雷达可为人工影响天气作业指挥和云物理研究提供更多信息,包括风场中尺度结构、辐合线位置等;青海省河南县及周边地区秋季降水以对流云降水为主,低空辐合是对流云旺盛发展的重要原因;河南省许昌市春季降水既含有对流云降水也含有层状云降水,对流云降水过程伴有低空辐合,层状云内风场比较均匀,但风的垂直切变明显,多为暖平流。  相似文献   

19.
Aerosol–cloud–radiation interactions represent one of the largest uncertainties in the current climate assessment. Much of the complexity arises from the non-monotonic responses of clouds, precipitation and radiative fluxes to aerosol perturbations under various meteorological conditions. In this study, an aerosol-aware WRF model is used to investigate the microphysical and radiative effects of aerosols in three weather systems during the March 2000 Cloud Intensive Observational Period campaign at the US Southern Great Plains. Three simulated cloud ensembles include a low-pressure deep convective cloud system, a collection of less-precipitating stratus and shallow cumulus, and a cold frontal passage. The WRF simulations are evaluated by several ground-based measurements. The microphysical properties of cloud hydrometeors, such as their mass and number concentrations, generally show monotonic trends as a function of cloud condensation nuclei concentrations.Aerosol radiative effects do not influence the trends of cloud microphysics, except for the stratus and shallow cumulus cases where aerosol semi-direct effects are identified. The precipitation changes by aerosols vary with the cloud types and their evolving stages, with a prominent aerosol invigoration effect and associated enhanced precipitation from the convective sources. The simulated aerosol direct effect suppresses precipitation in all three cases but does not overturn the aerosol indirect effect. Cloud fraction exhibits much smaller sensitivity(typically less than 2%) to aerosol perturbations, and the responses vary with aerosol concentrations and cloud regimes. The surface shortwave radiation shows a monotonic decrease by increasing aerosols, while the magnitude of the decrease depends on the cloud type.  相似文献   

20.
气溶胶对北京地区不同类型云降水影响的数值模拟   总被引:10,自引:0,他引:10       下载免费PDF全文
岳治国  刘晓东  梁谷 《高原气象》2011,30(5):1356-1367
利用耦合Milbrandt双参数显式云方案的WRF模式,在大陆型和海洋型气溶胶浓度背景下,对北京地区暴雨、中雨和微量降水等3次云降水过程进行了数值模拟研究。结果表明,气溶胶的增加对北京地区云降水有多方面的影响:(1)影响地面降水量。随着气溶胶浓度的增加,北京地区的暴雨、中雨和微量降水平均累计降水量分别减少了23.8%,...  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号