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 156 毫秒
1.
泛北冰洋海区存在水温升高、入流水增加、海冰面积和厚度减少等不同于其他大洋的环境变化,其浮游生态系统对全球变暖的响应逐渐受到重视。入流水为北冰洋陆架海和海盆带来的大西洋和太平洋的浮游生物种类无法成功繁殖建立本地种群。随着入流水流量的增加,外来浮游生物种类的分布区域向北扩展,促进了浮游生物跨洋输送。由于大西洋入流水流量较大,海盆区域太平洋种类和大西洋种类之间的分界线有向美亚海盆移动的倾向。海冰覆盖面积和厚度减少使得冰藻水华重要性下降,海区由底栖食物链为主转化为浮游食物链为主,造成浮游植物粒径结构变小,光合作用中脂肪/蛋白质比例、脂肪酸组成产物变化,并影响食物链结构和传递、有机物沉降,使水体原生动物的重要性增加;海冰变化引起的光环境变化会导致浮游动物的分布深度和昼夜垂直迁移幅度增加。泛北冰洋海区的浮游生物组成和食物网结构逐渐北方化,其中太平洋扇区正在太平洋化,大西洋扇区正在大西洋化。若持续发展,可能会导致北方浮游生态系统逐步侵占北冰洋浮游生态系统。泛北冰洋浮游生态系统的变化在不同的海区有不同的特点,中长期策略性的观测是必要的。国内外许多研究人员正对北极生态系统开展长期监测,以强化泛北冰洋海区浮游生态系统变化的研究。其中太平洋和大西洋入流水的路径是重点监测区域之一,在白令海、楚科奇海、波弗特海和美亚海盆区进行长期持久的船基调查有助于趋势性深入研究。  相似文献   

2.
白令海表层营养盐水平输送的镭-228示踪   总被引:1,自引:1,他引:0       下载免费PDF全文
对白令海表层海水228Ra的分析表明,白令海表层海水228Ra比活度从低于检测限变化至0.81 Bq/m3,低于西北冰洋陆架区的报道值。表层水228Ra比活度和228Ra/226Ra)A.R.的空间分布均呈现由西南部中心海盆向东北部陆架区增加的趋势。由228Ra/226Ra)A.R.和盐度的关系揭示出白令海环流、白令海陆坡流和阿拉斯加沿岸流对228Ra和228Ra/226Ra)A.R.分布有明显影响。运用一维稳态扩散模型计算出白令海由中心海盆向东北部陆架方向上水体混合的水平涡动扩散系数为1.9×108 m2/d。结合海盆-陆架界面营养盐的水平浓度梯度,估算得硝酸盐、活性磷酸盐和活性硅酸盐由白令海中心海盆向东北部陆架区的水平输送通量,该通量对白令海东北部陆架区新生产力的贡献很小,其他途径输送的营养盐更为重要。  相似文献   

3.
利用中国第5次北极科学考察CTD数据,分析了白令海夏季声速剖面结构特征。对比Chen-Millero、Delgrosso、Wilson 3种声速计算方法,其中Chen-Millero方法计算的声速值居中。将白令海夏季声速剖面结构总结为5类。其中白令海盆区域,受次表层低声速水团影响,夏季声速从表层向下先减小后增大,双跃层结构明显,南北差异较大,主声跃层位于133~200 m,强度在0.38 S-1左右,季节跃层强度约为-0.77 S-1;海盆向陆架过渡区域,声速水平变化剧烈;白令海峡以南受不同性质海流的影响,西南部声速比东南部小、跃层强,强度分别为-2.4 S-1、-2.0 S-1;9月份陆架海区表层声速开始减小,从表层向下声速先减小后增大。  相似文献   

4.
2008年夏季白令海粒度分级叶绿素a和初级生产力   总被引:5,自引:2,他引:3  
2008年7月我国第三次北极科学考察中在白令海不同区域设立BR断面、NB断面和BS断面,对200 m以浅海水进行叶绿素a浓度和初级生产力的现场观测,对部分观测站进行微型、微微型光合浮游生物的粒级结构分析,结果表明,在白令海叶绿素a和初级生产力区域性特征明显,深海海盆中BR断面表层叶绿素a浓度为0.190~0.976μg...  相似文献   

5.
北黄海夏季pCO2分布及海-气CO2通量   总被引:1,自引:0,他引:1  
基于在2006年夏季北黄海收集的的高分辨率的表层CO2分压(pCO2)数据,结合水文和生物地球化学同步观测参数,探讨了夏季北黄海pCO2空间分布的控制因素。结果表明,夏季北黄海与大多数中低纬度陆架海类似,由于水温较高,表层pCO2较高(平均值为(463±41)μatm),整个海域相对大气CO2过饱和。表层pCO2分布具有明显的区域差异,辽南和鲁北近岸海域pCO2明显高于中部区域,辽南近岸的高pCO2主要与河流输入和水产养殖引起的生物好氧呼吸有关,而鲁北沿岸的高pCO2主要与烟台近岸的底层冷水涌升及由混合引起的高碳酸盐含量的黄河泥沙的再悬浮有关;在海区中部大部分水域,pCO2与温度之间有较好的相关性,说明温度是这一区域pCO2分布较为重要的控制因子。另外,采用Wannikhof的海-气气体交换系数估计了北黄海夏季海-气CO2通量,结果表明整个北黄海是大气CO2的源,平均释放速率为(4.00±0.57)mmol.m-2.d-1,高于南黄海夏季海-气CO2通量。  相似文献   

6.
2008年夏季白令海营养盐的分布及其结构状况   总被引:5,自引:2,他引:3       下载免费PDF全文
中国第3次北极考察对白令海营养盐的分布及结构状况进行了观测分析,结果表明,白令海营养盐分布和结构状况区域性特征明显。海盆区表层DIN、磷酸盐和硅酸盐平均浓度分别为9.73,0.94,11.06 μmol/dm3;陆架区表层DIN,磷酸盐和硅酸盐平均浓度分别为0.60, 0.43, 3.74 μmol/dm3。营养盐高值主要出现在白令海西南部的海盆区和海峡口西南侧水域,低值出现于陆架边缘的陆坡区和陆架东部水域。白令海盆区真光层DIN,磷酸盐、硅酸盐浓度普遍较高,叶绿素浓度则较低,具有典型的高营养盐、低叶绿素(HNLC)特征。海盆区生物作用不是营养盐空间分布的主要调控因子,而陆架区营养盐的分布变化不仅受控于物理海洋输运过程的变化,同时也受夏季浮游生物生长、营养盐吸收消耗所影响。陆架和陆坡区表层海水N/P,Si/P比值平均分别为1.8, 9.9和3.2, 2.2,呈明显的低N/P,Si/P比值结构特征,陆坡区缺硅明显,陆架区缺氮显著。在白令海水域磷酸盐浓度普遍较高,它不可能成为浮游植物光合作用限制因子。受硅限制水域主要限于陆坡区硅藻大量繁殖时期,属偶然性限制,在白令海陆架区绝大部分水域主要表现为氮限制。  相似文献   

7.
基于中国第7次北极科学考察白令海现场调查资料与数据,分析了2016年夏季白令海海水颗粒态(DMSOp)和溶解态二甲亚砜(DMSOd)浓度的空间变化特征及其影响因素。研究表明,夏季白令海二甲亚砜(DMSO)浓度高于全球多数大洋和近岸海域。夏季白令海DMSOd和DMSOp浓度空间变化相似。表层海水DMSOp浓度为6.47~169.40 nmol/L,平均值为(79.62±56.10) nmol/L;DMSOd浓度的变化范围是20.07~153.70 nmol/L,平均值为(72.67±39.20) nmol/L。平面分布上,白令海表层DMSO浓度由海盆区、中外陆架区至内陆架区依次降低;垂直分布上由表至底随深度增加而降低,表层DMSOd和DMSOp浓度高于55 nmol/L,底层低于25 nmol/L。海盆区DMSOd主要源于DMS氧化和浮游生物直接合成的DMSOp,海盆区深层水团DMSOd浓度主要受控于温度和盐度。中外陆架区表层暖水团DMSO浓度主要受控于温度,陆架冷水团DMSO浓度则受盐度影响较大。内陆架区陆架水团DMSOp浓度和阿拉斯加沿岸水团DMSOd浓度分别受温度和DMS光化学氧化影响。  相似文献   

8.
南海中部地震反射波特征及其地质解释   总被引:8,自引:2,他引:6  
刘建华 《海洋学报》2000,22(6):73-80
20世纪70年代以来,在南海中部海区开展了各种地震调查,为研究盖层和基底发育、断裂和岩浆活动、海盆成生演化提供了重要依据。在对南海中部海区4112km48道反射地震资料解释的基础上,识别出了T1,T2,T4,T6,Tg等五个反射界面;识别出了I~V五套地震反射层组,推测时代分别为上新世-第四纪、中新世晚期、中新世早-中期、渐新世和前渐新世。层组I~Ⅱ全区广布。在陆坡、岛坡区,层组Ⅲ以下层组主要见于断陷中;在深海盆,层组Ⅲ分布仍较广,除了在深海盆北段见到层组Ⅳ外,在西南次海盆剖面两缘也见到该层组。在东部次海盆剖面中还不同程度见到了双程反射时间为8.4~8.7s的莫霍面反射,埋深为10~12km,地壳厚度为6~8km.西南次海盆水深和新生界基底埋深均比深海盆北段除外的东部次海盆深,分别为4000-4300和5200~5500m.根据年龄和基底深度关系经验公式,计算西南次海盆基底年龄为距今51~39Ma.地震反射层组解释和年龄一基底深度关系计算表明,西南次海盆形成并非晚于东部次海盆,而是同时或早于东部次海盆。  相似文献   

9.
本文根据1983年国家海洋局南海中部海区地形测深资料,描述了南海海盆海山、海丘的分布状况,并对两种不同性质的海山、海丘成因进行了初步探讨。  相似文献   

10.
基于2019年夏季中国第十次北极科学考察("十北"科考)中"海燕"水下滑翔机观测的温度和溶解氧(Dissolved Oxygen, DO)数据,对白令海海盆区水团分类,及其温度和溶解氧分布特征进行了分析研究。结果表明:北极白令海海盆区水体一般由温度差异较为明显的上层水,中层水和深层水组成,其温度水平分布具有东高西低的特点,且随着深度的增加,水平温差逐渐减小。白令海上层水位于50 m以浅的位置,在约30~50 m深度处存在强温跃层,温跃层自西向东深度略有增加,且厚度不均匀,跃层强度约为0.31℃/m;白令海中层水位于50~250 m深度处,主要为冬季残留水,中层冬季残留水分布具有一定地区性差异,在此位置存在温度最小值,约为2.7℃;白令海深层水水体较稳定,温度随深度缓慢降低。对比垂直断面温度特征和溶解氧特征可知,白令海中层冬季残留水溶解氧含量较高,高于上层水团;在中层水与深层水之间存在氧跃层,氧含量从250μmol/L快速下降至50μmol/L,并随着深度的增加,在1 000 m深处降至20μmol/L。  相似文献   

11.
In the summers of 1999 and 2003, the 1st and 2nd Chinese National Arctic Research Expeditions measured the partial pressure of CO2 in the air and surface waters (pCO2) of the Bering Sea and the western Arctic Ocean. The lowest pCO2 values were found in continental shelf waters, increased values over the Bering Sea shelf slope, and the highest values in the waters of the Bering Abyssal Plain (BAP) and the Canadian Basin. These differences arise from a combination of various source waters, biological uptake, and seasonal warming. The Chukchi Sea was found to be a carbon dioxide sink, a result of the increased open water due to rapid sea-ice melting, high primary production over the shelf and in marginal ice zones (MIZ), and transport of low pCO2 waters from the Bering Sea. As a consequence of differences in inflow water masses, relatively low pCO2 concentrations occurred in the Anadyr waters that dominate the western Bering Strait, and relatively high values in the waters of the Alaskan Coastal Current (ACC) in the eastern strait. The generally lower pCO2 values found in mid-August compared to at the end of July in the Bering Strait region (66–69°N) are attributed to the presence of phytoplankton blooms. In August, higher pCO2 than in July between 68.5 and 69°N along 169°W was associated with higher sea-surface temperatures (SST), possibly as an influence of the ACC. In August in the MIZ, pCO2 was observed to increase along with the temperature, indicating that SST plays an important role when the pack ice melts and recedes.  相似文献   

12.
The uptake of atmospheric carbon dioxide in the water transported over the Bering–Chukchi shelves has been assessed from the change in carbon-related chemical constituents. The calculated uptake of atmospheric CO2 from the time that the water enters the Bering Sea shelf until it reaches the northern Chukchi Sea shelf slope (1 year) was estimated to be 86±22 g C m−2 in the upper 100 m. Combining the average uptake per m3 with a volume flow of 0.83×106 m3 s−1 through the Bering Strait yields a flux of 22×1012 g C year−1. We have also estimated the relative contribution from cooling, biology, freshening, CaCO3 dissolution, and denitrification for the modification of the seawater pCO2 over the shelf. The latter three had negligible impact on pCO2 compared to biology and cooling. Biology was found to be almost twice as important as cooling for lowering the pCO2 in the water on the Bering–Chukchi shelves. Those results were compared with earlier surveys made in the Barents Sea, where the uptake of atmospheric CO2 was about half that estimated in the Bering–Chukchi Seas. Cooling and biology were of nearly equal significance in the Barents Sea in driving the flux of CO2 into the ocean. The differences between the two regions are discussed. The loss of inorganic carbon due to primary production was estimated from the change in phosphate concentration in the water column. A larger loss of nitrate relative to phosphate compared to the classical ΔN/ΔP ratio of 16 was found. This excess loss was about 30% of the initial nitrate concentration and could possibly be explained by denitrification in the sediment of the Bering and Chukchi Seas.  相似文献   

13.
《Marine Chemistry》2005,93(2-4):131-147
Data on the distribution of dissolved inorganic carbon (DIC) and partial pressure of CO2 (pCO2) were obtained during a cruise in the North Sea during late summer 2001. A 1° by 1° grid of 97 stations was sampled for DIC while the pCO2 was measured continuously between the stations. The surface distributions of these two parameters show a clear boundary located around 54°N. South of this boundary the DIC and pCO2 range from 2070 to 2130 μmol kg−1 and 290 to 490 ppm, respectively, whereas in the northern North Sea, values range between 1970 and 2070 μmol kg−1 and 190 to 350 ppm, respectively. The vertical profiles measured in the two different areas show that the mixing regime of the water column is the major factor determining the surface distributions. The entirely mixed water column of the southern North Sea is heterotrophic, whereas the surface layer of the stratified water column in the northern North Sea is autotrophic. The application of different formulations for the calculation of the CO2 air–sea fluxes shows that the southern North Sea acts as a source of CO2 for the atmosphere within a range of +0.8 to +1.7 mmol m−2 day−1, whereas the northern North Sea absorbs CO2 within a range of −2.4 to −3.8 mmol m−2 day−1 in late summer. The North Sea as a whole acts as a sink of atmospheric CO2 of −1.5 to −2.2 mmol m−2 day−1 during late summer. Compared to the Baltic and the East China Seas at the same period of the year, the North Sea acts a weak sink of atmospheric CO2. The anticlockwise circulation and the short residence time of the water in the North Sea lead to a rapid transport of the atmospheric CO2 to the deeper layer of the North Atlantic Ocean. Thus, in late summer, the North Sea exports 2.2×1012 g C month−1 to the North Atlantic Ocean via the Norwegian trench, and, at the same period, absorbs from the atmosphere a quantity of CO2 (0.4 1012 g C month−1) equal to 15% of that export, which makes the North Sea a continental shelf pump of CO2.  相似文献   

14.
白令海特征区域的表层沉积硅藻分布及其古海洋学意义   总被引:1,自引:1,他引:0  
对白令海表层沉积物样品进行硅藻分析,共鉴定硅藻30属56种(含变种),并确定17种硅藻新记录,其中包括Kisseieviella carina等3种化石种。白令海表层沉积物中的硅藻优势种为Neodenticula seminae,Fragilariopsis cylindrusFragilariopsis oceanica,在白令海北部陆坡深水区附近以Neodenticula seminae为主,而在白令海北部陆架以Fragilariopsis cylindrusFragilariopsis oceanica为主。对硅藻结果进行聚类分析,可以划分出3个硅藻组合,硅藻组合Ⅰ代表海冰种硅藻组合,组合Ⅱ代表受阿拉斯加流影响的大洋浮游硅藻组合,组合Ⅲ代表上述两个硅藻组合之间的过渡组合。Fossula arctica是17种硅藻新记录之一,首次记录于白令海表层沉积物中,其百分含量分布趋势与Fragilariopsis cylindrusFragilariopsis oceanica的相近,在白令海北部陆架为11.7%~17.1%,而在陆坡深水区附近明显减少,是继Fragilariopsis cylindrusFragilariopsis oceanica之后白令海又一海冰指示种,并有望成为一种有效的海冰变化替代物运用于晚第四纪以来白令海海冰进退历史研究。  相似文献   

15.
Due to its unique geological location, the Bering Sea is an ideal place to investigate the water exchange and ecosystem connectivity of the Pacific Ocean–Arctic Ocean and subarctic–Arctic region. Based on a number of summer surveys(July to September, 2010, 2012 and 2014), macrobenthic communities and their spatial-temporal patterns are exhibited for the majority of the Bering Sea(53°59′–64°36′N). The results show that the macrobenthic communities were dominated by northern cold-water species and immigrant eurythermic species, and the communities assumed a dispersed and patchy distribution pattern. Polychaetes(Scoloplos armiger), crustaceans(Ceradocus capensis) and sea urchins(Echinarachnius parma) were the main dominant groups in the shallow shelves; the sea star(Ctenodiscus crispatus) and the brittle star(Ophiura sarsii) were the main dominant groups in the continental slope; whereas small polychaetes(Prionospio malmgreni) dominated the basin area. Sediment type, water depth, and currents were the major factors affecting the structure and spatial distribution of the macrobenthic communities. Compared with other seas, the shallow areas of the Bering Sea showed an extremely high-standing biomass. In particular, the northern shelf area(north of St. Lawrence Islands and west of 170°W),which is primarily controlled by Anadyr Water, is an undersea oasis. In contrast, a deficiency in the downward transport of particulate organic carbon has resulted in a desert-like seabed in the basin area. By comparing our results to previous studies, we found that macrobenthic communities of the Bering Sea have undergone significant structural changes in recent decades, resulting in a decrease in abundance and an increase in biomass.In addition, populations of amphipods and bivalves in the northern shelves have decreased significantly and have been gradually replaced by other species. These changes might be associated with advanced seasonal ice melting,changes in organic carbon input, and global warming, indicating that large-scale ecosystem changes have been occurring in the Bering Sea.  相似文献   

16.
The 3rd Chinese National Arctic Research Expedition(CHINARE–Arctic III) was carried out from July to September in 2008. The partial pressure of CO2(pCO2) in the atmosphere and in surface seawater were determined in the Bering Sea during July 11–27, 2008, and a large number of seawater samples were taken for total alkalinity(TA) and total dissolved inorganic carbon(DIC) analysis. The distributions of CO2 parameters in the Bering Sea and their controlling factors were discussed. The pCO2 values in surface seawater presented a drastic variation from 148 to 563 μatm(1 μatm = 1.013 25×10-1 Pa). The lowest pCO2 values were observed near the Bering Sea shelf break while the highest pCO2 existed at the western Bering Strait. The Bering Sea generally acts as a net sink for atmospheric CO2 in summer. The air-sea CO2 fluxes in the Bering Sea shelf, slope, and basin were estimated at-9.4,-16.3, and-5.1 mmol/(m2·d), respectively. The annual uptake of CO2 was about 34 Tg C in the Bering Sea.  相似文献   

17.
On the basis of the CTD data obtained within the Bering Sea shelf by the Second to Sixth Chinese National Arctic Research Expedition in the summers of 2003, 2008, 2010, 2012 and 2014, the classification and interannual variation of water masses on the central Bering Sea shelf and the northern Bering Sea shelf are analyzed. The results indicate that there are both connection and difference between two regions in hydrological features. On the central Bering Sea shelf, there are mainly four types of water masses distribute orderly from the slope to the coast of Alaska: Bering Slope Current Water(BSCW), MW(Mixed Water), Bering Shelf Water(BSW) and Alaska Coastal Water(ACW). In summer, BSW can be divided into Bering Shelf Surface Water(BSW_S) and Bering Shelf Cold Water(BSW_C). On the northern Bering Sea shelf near the Bering Strait,it contains Anadyr Water(AW), BSW and ACW from west to east. But the spatial-temporal features are also remarkable in each region. On the central shelf, the BSCW is saltiest and occupies the west of 177°W, which has the highest salinity in 2014. The BSW_C is the coldest water mass and warmest in 2014; the ACW is freshest and mainly occupies the east of 170°W, which has the highest temperature and salinity in 2012. On the northern Bering Sea shelf near the Bering Strait, the AW is saltiest with temperature decreasing sharply compared with BSCW on the central shelf. In the process of moving northward to the Bering Strait, the AW demonstrates a trend of eastward expansion. The ACW is freshest but saltier than the ACW on the central shelf,which is usually located above the BSW and is saltiest in 2014. The BSW distributes between the AW and the ACW and coldest in 2012, but the cold water of the BSW_C on the central shelf, whose temperature less than 0°C, does not exist on the northern shelf. Although there are so many changes, the respond to a climate change is synchronized in the both regions, which can be divided into the warm years(2003 and 2014) and cold years(2008, 2010 and 2012). The year of 2014 may be a new beginning of warm period.  相似文献   

18.
北白令海夏季冷水团的分布及其年际变化研究   总被引:7,自引:3,他引:4       下载免费PDF全文
利用1982-2008年间的高分辨率CTD数据,对夏季位于北白令海陆架底层的冷水团性质及其多年变化进行了研究.结果表明,依据该区域水体在温盐性质上的差异可以分为4类:陆架冷水团(BSW_C),白令海陆坡流水(BSCW),混合变性水(MW),陆架表层暖水(BSW_S).以-1℃,2℃和4℃温度等值线指示水团边界,清楚地将...  相似文献   

19.
北白令海透明胞外聚合颗粒物的含量与来源   总被引:2,自引:1,他引:1  
透明胞外聚合颗粒物(TEP)是海水中大量存在的黏性颗粒物质,它对于海洋颗粒物的聚集、有机碳的埋藏、食物网物质的传递、痕量金属的清除与迁出等均起着重要作用。本研究开展了夏季北白令海陆架、陆坡和海盆区透明胞外聚合颗粒物含量和分布的研究。结果表明,北白令海TEP含量介于34~628 mg/m3(Xeq)之间,其中陆架、陆坡和海盆区TEP的平均含量分别为240, 145和83 mg/m3(Xeq),整体呈现由陆架向外海降低的趋势。在陆坡和海盆区,TEP含量随着深度的增加而降低,但在陆架近底层水中,观察到TEP高含量的特征,与近底层水高的TSM, POC相对应。TEP与荧光强度、TSM、POC等的关系分析显示,研究海域TEP存在两个来源,其一为海洋上层水体的浮游生物,其主要贡献于陆架上层、陆坡和海盆水体;其二为陆架沉积物的底栖生物,其通过沉积物再悬浮贡献于陆架近底层水。  相似文献   

20.
The distribution of chlorophyll a(Chl a) and its relationships with physical and chemical parameters in different regions of the Bering Sea were discussed in July 2010. The results showed the seawater column Chl a concentrations were 13.41–553.89 mg/m2 and the average value was 118.15 mg/m2 in the study areas. The horizontal distribution of Chl a varied remarkably from basin to shelf in the Bering Sea. The regional order of Chl a concentrations from low to high was basin, slope, outer shelf, inner shelf, and middle shelf. The vertical distribution of Chl a was grouped mainly from single-peak type in basin, slope, outer shelf, and middle shelf, where the deep Chl a maxima(DCM) layer was observed at 25–50 m, 30–35 m, 36–44 m, and 37–47 m, respectively. The vertical distribution of Chl a mainly had three basic patterns: standard single-peak type, surface maximum type, and bottom maximum type in the inner shelf. The analysis also showed that the transportation of ocean currents may control the distribution of Chl a, and the effects were not simple in the basin of the Bering Sea. There was a positive correlation between Chl a and temperature, but no significant correlation between Chl a and nutrients. The Bering Sea slope was an area deeply influenced by slope current. Silicate was the factor that controlled the distribution of Chl a within parts of the water in the slope. Light intensity was an important environmental factor in controlling seawater column Chl a in the shelf, where Chl a was limited by nitrate rather than phosphate within the upper water. Meanwhile, there was a positive relationship between Chl a and salinity. Algal blooms broke out at Sta. B6 of the southwestern St. Lawrence Island and Stas F6 and F11 in the middle of the Bering Strait.  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