水位下降对死海盐水化学成分的影响

IF 1.7 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS Aquatic Geochemistry Pub Date : 2018-03-15 DOI:10.1007/s10498-018-9336-z
Jamal Abu-Qubu, Broder Merkel, Volkmar Dunger, Omar Rimawi
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引用次数: 0

摘要

多年来,死海每年的入水量不足约10亿立方米,还有洪水和基流。水位的变化与大部分流入的地表水改作灌溉用途有关,此外还与高蒸发率和工业用水造成的大量水损失有关。这导致死海的水位下降了大约35?在过去的50年里?长期平均寿命约为0.79?每年100万美元。通过实验模拟了水化学成分的变化,以确定盐水蒸发水平及其密度的变化。死海水的总溶解固形物(TDS)和密度随其蒸发水平的变化而变化。结果表明,密度变化与水量变化不呈线性关系。但它遵循的是在不同水位下发生的沉淀总量。电导率(EC)随时间和温度的变化而变化。没有公式来计算盐水高于正常海水的高盐度。因此,采用EC测量值来表示死海海水的盐度。但本研究发现一个收敛因子(0.80971)可以将TDS值转换为盐度值。相反,pH值与蒸发水平呈反比关系。
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Variation of the Chemistry of the Dead Sea Brine as Consequence of the Decreasing Water Level

For many years, the Dead Sea suffers from an annual inflow deficiency of about one billion cubic meters, flood and baseflow. The water level changes are related to the majority of surface water inflows diverted for irrigation purposes, in addition to intensive loss of water by the high rate of evaporation and industrial water use. This causes the Dead Sea water level to decline about 35?m within the last 50?years for a long-term average of about 0.79?m per year. The changes in the hydrochemical composition were simulated experimentally to determine the changes that take place as a function of brine water evaporation level and its density. The Total Dissolved Solids (TDS) and the density of the Dead Sea water varies as a function of its water evaporation level changes. It was found that the density variation is not following a linear function with respect to water volume changes. But it follows the total amount of precipitate that occurred at different water levels. The electrical conductivity (EC) changes with respect to time and the prevailing temperature. There was no formula to calculate the high salinity of brine water above the normal ocean water. Consequently, the EC measurements were adopted to represent the Dead Sea water salinity. But in this research a converging factor (0.80971) has been found to convert the TDS values into salinity values. On contrary, the pH values revealed an inverse relationship with respect to the evaporation levels.

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来源期刊
Aquatic Geochemistry
Aquatic Geochemistry 地学-地球化学与地球物理
CiteScore
4.30
自引率
0.00%
发文量
6
审稿时长
1 months
期刊介绍: We publish original studies relating to the geochemistry of natural waters and their interactions with rocks and minerals under near Earth-surface conditions. Coverage includes theoretical, experimental, and modeling papers dealing with this subject area, as well as papers presenting observations of natural systems that stress major processes. The journal also presents `letter''-type papers for rapid publication and a limited number of review-type papers on topics of particularly broad interest or current major controversy.
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