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Influence of buoyancy forces on movement of liquid radioactive waste from deep injection disposal site in the Tomsk region, Russian Federation: analytical estimate and numerical modeling

机译:浮力对俄罗斯联邦托木斯克州深部注入处置场液体放射性废物运移的影响:分析估计和数值模型

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Deep injection disposal of liquid hazardous waste into aquifers confined from top and bottom by low permeable rock layers is examined. The injected waste represents aqueous solutions which are more dense than the reservoir water. Since the aquifer is not strictly horizontal, heterogeneity of the groundwater density causes a resultant buoyancy force which is directed down the dip of the aquifer. We considered a mathematical model of the contaminant plume movement taking into account both topography-driven (regional) and buoyancy induced components of the groundwater flow. Boussinesq's approximation is used. A simple analytical solution, which is obtained by general functions theory, permits to determine conditions when the buoyancy forces suppress the regional flow what can substantially increase safety of the injection disposal. The obtained result is applied to analysis of contaminant plume movement at injection disposal site of liquid radioactive waste from Siberian Chemical Plant in Tomsk region. A numerical modeling of plume movement at the injection site is carried out. Heterogeneity of water transmissivity of the reservoir bed is taken into account as well as heterogeneous relief of its upper and lower boundaries. We showed on the basis of the analytical solution that buoyancy forces caused by elevated salinity of the injected waste and slope of the reservoir bed at the injection site exert a substantial influence on direction of the contaminant plume movement. Numerical modeling of contaminant plume movement is in good agreement with the analytical estimation of the buoyancy forces influence. Velocity of the regional groundwater flow is directed to the southwest of the injection site. However only dilute solutions are carried southwest by the regional flow. Dense solutions move westward because the buoyancy forces hamper southern component of the regional flow. This leads to an increase in travel time of a substantial part of the radionuclides to the river what increases safety of the injection site.
机译:研究了将液态危险废物深注入到低渗透性岩石层限制的顶部和底部的含水层中的方法。注入的废物代表比储层水更稠密的水溶液。由于含水层并非严格水平,因此地下水密度的不均匀性会导致产生的浮力,该浮力直接作用于含水层的倾角。我们考虑了污染物羽流的数学模型,同时考虑了地形驱动的(区域)和浮力引起的地下水流分量。使用Boussinesq的近似值。通过通用函数理论获得的简单分析解决方案可以确定浮力抑制局部流动时的条件,从而可以显着提高注射处置的安全性。所得结果用于分析托木斯克州西伯利亚化工厂液体放射性废物注入处的污染物羽流运动。在注射部位进行了羽流运动的数值模拟。考虑了储层渗透率的非均质性以及其上下边界的非均质性。我们在分析解决方案的基础上表明,由注入废物的盐度升高和注入点处储层的倾斜引起的浮力会对污染物羽流的运动方向产生重大影响。污染物羽流运动的数值模型与浮力影响的分析估计非常吻合。区域地下水流的速度直接引向注入点的西南方向。但是,区域流仅将稀溶液带到西南。密集的解决方案向西移动,因为浮力阻碍了区域流量的南部部分。这导致大部分放射性核素到河中的传播时间增加,这增加了注入地点的安全性。

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