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连云港港深水航道是开敞海域淤泥质浅滩深水航道的典型。航道回淤规律和实践表明,连云港淤泥质浅滩深水航道中风天回淤量为航道回淤的主体,占年回淤总量的60%左右。由于中风天频率年际变化较大,导致航道年际回淤水平变幅较大。现有设计回淤量计算模式均未考虑风天分级。提出了“按小、中、大3个概化波浪动力计算回淤强度、再组合各自波浪频率得到设计回淤量”的开敞海域淤泥质浅滩深水航道设计年回淤量计算方法。该方法能够较为合理地体现全年波浪水平和波浪频率年际间差异对年回淤量的影响程度,显著提高了设计年回淤量预报精度,为合理确定开敞海域淤泥质浅滩深水航道的设计年回淤量水平和变化范围、正确评价航道的稳定性和技术可行性提供科学依据。经连云港区25万吨级航道和徐圩港区10万吨级航道工程实践检验,预报回淤量与实际回淤量偏差不超过25%。 相似文献
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不同的施工环境和工况,需要不同的配套设备,本文就是针对特殊的施工工作环境,通过合理选型、配套、优化设计的一种中小型绞吸式挖泥船。 相似文献
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Igor P. Semiletov Irina I. Pipko Irina Repina Natalia E. Shakhova 《Journal of Marine Systems》2007,66(1-4):204
Climatic changes in the Northern Hemisphere have led to remarkable environmental changes in the Arctic Ocean, which is surrounded by permafrost. These changes include significant shrinking of sea-ice cover in summer, increased time between sea-ice break-up and freeze-up, and Arctic surface water freshening and warming associated with melting sea-ice, thawing permafrost, and increased runoff. These changes are commonly attributed to the greenhouse effect resulting from increased atmospheric carbon dioxide (CO2) concentration and other non-CO2 radiatively active gases (methane, nitrous oxide). The greenhouse effect should be most pronounced in the Arctic where the largest air CO2 concentrations and winter–summer variations in the world for a clean background environment were detected. However, the air–land–shelf interaction in the Arctic has a substantial impact on the composition of the overlying atmosphere; as the permafrost thaws, a significant amount of old terrestrial carbon becomes available for biogeochemical cycling and oxidation to CO2. The Arctic Ocean's role in determining regional CO2 balance has been ignored, because of its small size (only 4% of the world ocean area) and because its continuous sea-ice cover is considered to impede gaseous exchange with the atmosphere so efficiently that no global climate models include CO2 exchange over sea-ice. In this paper we show that: (1) the Arctic shelf seas (the Laptev and East-Siberian seas) may become a strong source of atmospheric CO2 because of oxidation of bio-available eroded terrestrial carbon and river transport; (2) the Chukchi Sea shelf exhibits the strong uptake of atmospheric CO2; (3) the sea-ice melt ponds and open brine channels form an important spring/summer air CO2 sink that also must be included in any Arctic regional CO2 budget. Both the direction and amount of CO2 transfer between air and sea during open water season may be different from transfer during freezing and thawing, or during winter when CO2 accumulates beneath Arctic sea-ice; (4) direct measurements beneath the sea ice gave two initial results. First, a drastic pCO2 decrease from 410 μatm to 288 μatm, which was recorded in February–March beneath the fast ice near Barrow using the SAMI-CO2 sensor, may reflect increased photosynthetic activity beneath sea-ice just after polar sunrise. Second, new measurements made in summer 2005 beneath the sea ice in the Central Basin show relatively high values of pCO2 ranging between 425 μatm and 475 μatm, values, which are larger than the mean atmospheric value in the Arctic in summertime. The sources of those high values are supposed to be: high rates of bacterial respiration, import of the Upper Halocline Water (UHW) from the Chukchi Sea (CS) where values of pCO2 range between 400 and 600 μatm, a contribution from the Lena river plume, or any combination of these sources. 相似文献
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Melissa Chierici Helge Drange Leif G. Anderson Truls Johannessen 《Journal of Marine Systems》1999,22(4):1532
A carbon budget for the exchange of total dissolved inorganic carbon CT between the Greenland Sea and the surrounding seas has been constructed for winter and summer situations. An extensive data set of CT collected over the years 1994–1997 within the European Sub-polar Ocean Programmes (ESOP1 and ESOP2) are used for the budget calculation. Based on these data, mean values of CT in eight different boxes representing the inflow and outflow of water through the boundaries of the Greenland Sea Basin are estimated. The obtained values are then combined with simulated water transports taken from the ESOP2 version of the Miami Isopycnic Coordinate Ocean Model (MICOM). The fluxes of inorganic carbon are presented for three layers; a surface mixed layer, an intermediate layer and a deep layer, and the imbalance in the fluxes are attributed to air–sea exchange, biological fixation of inorganic carbon, and sedimentation. The main influx of carbon is found in the surface and the deep layers in the Fram Strait, and in the surface waters of direct Atlantic origin, whereas the main outflux is found in the surface layer over the Jan Mayen Fracture Zone and the Knipovich Ridge, transporting carbon into the Atlantic Ocean via the Denmark Strait and towards the Arctic Ocean via the Norwegian Sea, respectively. The flux calculation indicates that there is a net transport of carbon out of the Greenland Sea during wintertime. In the absence of biological activity, this imbalance is attributed to air sea exchange, and requires an oceanic uptake of CO2 of 0.024±0.006 Gt C yr−1. The flux calculations from the summer period are complicated by biological fixation of inorganic carbon, and show that data on organic carbon is required in order to estimate the air–sea exchange in the area. 相似文献
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铁路道口信号设备的维护与监测 总被引:1,自引:0,他引:1
利用微机技术、单片机技术、传感器技术和RS-232方式,完成对铁路道口信号设备实际运行情况的卖时监测,为实现道口信号设备状态维修提供基础设备。 相似文献
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针对南方某地铁线路高架车站站台设置送风系统方案,采用舒适度评价方法进行定量分析,得出结论:在夏季,高架站站台送风系统设计的必要性不大,因高架站站台设机械通风对人的舒适感没有太多的作用,因此可以不设机械通风,而延用自然通风方案即可。 相似文献