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31.
南海溶解氧垂直结构的季节变化分析 总被引:2,自引:0,他引:2
溶解氧在生物活动较小的情况下,与温盐相似,同样具有保守性。本文基于WOD05数据集中实际观测的溶解氧标准层资料,对南海溶解氧的垂直结构及其季节变化进行阐述,指出在浅水陆架区、中央海盆和吕宋岛以东深水区,溶解氧具有不同的垂向分布特点。重点分析了深水区的溶解氧垂向结构,发现其极大值存在季节性变化,量值在冬、春较大,夏、秋较小,出现的深度夏季最深,超过50 m,秋、冬较浅且现象不够明显;极小值基本不存在季节变化,出现的深度约860 m;对比温盐关系曲线,发现溶解氧极大值对应着南海次表层水团上界、衰减缓慢的稳定阶段对应次表层水团高盐核心水层、而极小值则对应中、深层水团的交界。 相似文献
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以铸态Ni-Cr-Fe合金为试样,于1 050℃湿氢气氛下恒温氧化20 h。通过氧化增重、SEM/EDS以及薄膜X-射线衍射等方法研究了氧分压对该合金在弱氧化性气氛下氧化成膜特性的影响。结果表明:表面氧化膜从外到内氧化物组成依次为:MnCr2O4、Cr2O3以及SiO2。氧化膜的厚度、组成及形貌与体系的氧分压密切相关,中等氧分压(15.9×10-18atm)有利于表面尖晶石的形成;较低氧分压有利于形成厚而多孔的氧化膜,而高氧分压则趋向于形成薄而致密的氧化膜。 相似文献
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A three-dimensional advection-diffusion model coupled with the degradation process is established for describing the transport of chemical oxygen demand (COD). Comparison of the simulated distribution of COD at the surface in the Bohai Sea in August, 2001 with field observations, shows that the model simulates the dataset reasonably well. The Laizhou Bay, Bohai Bay, and Liaodong Bay were contaminated heavily near shore. Based on the optimal discharge flux method, the Environmental Capacity (EC) and allocate... 相似文献
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The size effect of copper wire radius (0.04–0.82 mm) on the diffusion-limited current density of an oxygen reduction reaction in stagnant simulated seawater (naturally aerated 0.5 mol/L NaCl) is investigated by potentiodynamic polarization and electrochemical impedance spectroscopy (EIS) and compared with the results obtained in 0.5 mol/L H2SO4. In the oxygen diffusion-limited range, size effect is found to occur independent of electrolytes, which is attributed to non-linear diffusion. Additionally, to sati... 相似文献
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祁连山构成青藏高原的北东边界,是研究青藏高原的隆升与向内陆扩展的关键区域,利用新生代湖相沉积的碳氧同位素组成估算祁连山古海拔对认识青藏高原的隆升有重要意义。在中祁连陆块不同地点出露的始新统、渐新统、中新统和中晚更新统分别取样并进行碳氧同位素分析,估算相应地质时期的古年均温和古海拔高度。结果表明,祁连山地区古近纪的海拔约为2711 m,中新世早期的海拔为2848 m左右,中新世中晚期祁连山海拔达到约3586 m,中晚更新世祁连山的古海拔约为3790~3890 m。古近纪祁连山的海拔较低,但已经构成了青藏高原的东北边界;中新世中晚期祁连山强烈隆升,形成了盆-山构造地貌格局;第四纪祁连山地壳重新活跃并呈阶段性快速隆升,河流堆积和侵蚀交替进行。根据碳氧同位素估算的祁连山古海拔高度变化为认识青藏高原隆升的过程提供参考。 相似文献
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Eclogites from the North Qilian suture zone are high‐pressure low‐temperature metamorphic rocks of ocean crust protolith, and occur in both massive and foliated varieties as individual blocks of tens to hundreds of metres in size. The massive type is weakly deformed and shows granoblastic texture characterized by a coarse‐grained peak mineral assemblage of Grt1 + Omp1 + Ph + Rt ± Lws (or retrograde Cz). In contrast, the foliated type is strongly deformed and shows a fine‐grained retrograde mineral assemblage of Grt2 + Omp2 + Cz + Gln + Ph. Both total FeO and aegirine contents in omphacite, as well as XFe[=Fe3+/(Fe3+ + AlVI)] in clinozoisite/epidote, increase significantly from massive to foliated eclogites. Lattice preferred orientation (LPO) of omphacite, determined by electron back‐scatter diffraction analysis, is characterized by weak and strong SL‐type fabrics for massive and foliated eclogites, respectively. Clinozoisite/epidote also developed SL‐type fabric, but different from the LPOs of omphacite in <010> and <001> axes, owing to their opposite crystallographic long and short axis definitions. The transition of deformation mechanism from dislocation creep to diffusive mass transfer (DMT) creep in omphacite and the concomitant retrograde metamorphism both are efficiently facilitated when the original coarse‐grained Omp1 + Grt1 + Lws assemblage is dynamically recrystallized and retrogressed into the fine‐grained Fe3+‐rich assemblage of Omp2 + Grt2 + Cz + Gln. The DMT process with concomitant anisotropic growth assisted by fluids is considered to be an important deformation mechanism for most minerals in the foliated eclogite. P–T estimates yielded 2.3–2.6 GPa and 485?510 °C for the massive eclogite and 1.8–2.2 GPa and 450?480 °C for the foliated eclogite. The significant increase in total Fe and Fe3+ contents in omphacite and clinozoisite/epidote from massive to foliated eclogite suggests changes in mineral compositions accompanied by an increase in oxygen fugacity during ductile deformation associated with exhumation. The LPO transition of omphacite, clinozoisite and rutile from weak SL‐type in massive eclogites to strong SL‐type in foliated eclogites is interpreted to represent the increment of shear strain during exhumation along the ‘subduction channel’. 相似文献
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