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1964年作者发表了“杭州湾潮混合的初步研究Ⅰ.上湾区”一文(毛汉礼、甘子钧等,1964)。根据表征入海径流冲淡作用的河口盐度沿程分布和变化特征,将杭州湾以海盐为界划分为上湾区和下湾区:海盐以上的上游段为上湾区,其潮混合为强混合型;海盐至湾口的下游段为下湾区。其后,又对杭州湾的盐度分布、水系和环流做了初步分析,并对潮汐、对流和风浪等作用所导致的涡动混合现象作了粗略的讨论,认为要合理地阐明下湾区的混合过程似应同时考虑侧向与垂向的混合效应(毛汉礼.沈鸿书等,1964)。本文根据1963年在杭州湾下湾区进行专题水文调查所获得的资料,对杭州湾下湾区的潮混合问题进行了研究:对表征该区潮混合扩散过程的某些特征量,如水平涡动扩散系数、水平涡动交换系数等作出量级估计,并给出涡动交换椭圆;估算了控制这一河口区域盐量平衡与动量平衡的各项物理过程的相对重要性,为进一步开展杭州湾下湾区潮混合过程的观测和理论研究提供依据。 相似文献
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运用神经网络模型的一典型模型——“反向传播”模型的改进形式,处理矿产资源统计预测问题,得出与数量化理论Ⅱ处理极为相似的结果. 相似文献
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Min Wang Zhengkang Shen Zhijun Niu Zusheng Zhang Hanrong Sun Weijun Gan Qi Wang Qun Ren 《中国科学D辑(英文版)》2003,46(2):25-40
We obtain the preliminary result of crustal deformation velocity field for the Chinese continent by analyzing GPS data from the Crustal Motion Observation Network of China (CMONOC), particularly the data from the regional networks of CMONOC observed in 1999 and 2001. We delineate 9 technically active blocks and 2 broadly distributed deformation zones out of a dense GPS velocity field, and derive block motion Euler poles for the blocks and their relative motion rates. Our result reveals that there are 3 categories of deformation patterns in the Chinese continent. The first category, associated with the interior of the Tibetan Plateau and the Tianshan orogenic belt, shows broadly distributed deformation within the regions. The third category, associated with the Tarim Basin and the region east of the north-south seismic belt of China, shows block-like motion, with deformation accommodated along the block boundaries only. The second category, mainly associated with the borderland of the Tibetan Plateau, such as the Qaidam, Qilian, Xining (in eastern Qinghai), and the Diamond-shaped (in western Sichuan and Yunnan) blocks, has the deformation pattern between the first and the third, i.e. these regions appear to deform block-like, but with smaller sizes and less strength for the blocks. Based on the analysis of the lithospheric structures and the deformation patterns of the regions above, we come to the inference that the deformation modes of the Chinese continental crust are mainly controlled by the crustal structure. The crust of the eastern China and the Tarim Basin is mechanically strong, and its deformation takes the form of relative motion between rigid blocks. On the other hand, the northward indentation of the Indian plate into the Asia continent has created the uplift of the Tibetan Plateau and the Tianshan Mountains, thickened their crust, and raised the temperature in the crust. The lower crust thus has become ductile, evidenced in low seismic velocity and high electric conductivity observed. The brittle part of the crust, driven by the visco-plastic flow of the lower crust, deforms extensively at all scales. The regions of the second category located at the borderland of the Tibetan Plateau are at the transition zone between the regions of the first and the third categories in terms of the crustal structure. Driven by the lateral boundary forces, their deformation style is also between the two, in the form of block motion and deformation with smaller blocks and less internal strength. 相似文献
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系统研究了Ge-ARS-H2C2O4-V体系报道极谱催化波的影响因素,测定了Ge-ARS-H2C2O4三元配合物的配合比为1:2:1。实验初步证明了该体系催化波为具有吸附性质的平行催化波。本法检出限为0.14mg.mL^-1,相对标准偏差小于9.89%,标准回收率为93.70%-109.0%,0-50mg.mL^-1的锗具有良好的线性关系。 相似文献
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Sewage sludge ash (SSA), the waste generated in sewage sludge incineration, was obtained from Wuhan Sewage Treatment Plant and used as a low-cost sorbent for removing Cu(Ⅱ) from wastewaters. The sorbent was first modified with 5 % sulfuric acid to increase its sorption capacity. The specific surface area, porosity, cation-exchange capacity (CEC) and pHZPC of the sorbent were measured. Batch experiments were made to study the effect of contact time, solution pH value and temperature on sorption. Both Langmuir and Freundlich models well described the Cu(Ⅱ) sorption process, with correlation coefficient (R2) values of 0.993 4 and 0.989 9 respectively. And the sorption process follows the Lagergren first order kinetic model. The equilibrium sorption capacity of acidified SSA to Cu(Ⅱ) is estimated to be 7.78 mg/g under optimal conditions. 相似文献
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