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Evaluation of mechanical vapor recompression crystallization process for treatment of high salinity wastewater

机译:用于处理高盐度废水的机械气相再压缩晶体的评价

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Single/multiple-effect evaporation (SEE/MEE) along with single/multi-stage mechanical vapor recompression (SVR-MVR) systems were simulated for high salinity wastewater treatment. They were optimized for feed salinity of 70 g/kg and zero liquid discharge (i.e., salt saturation concentration of 285 g/kg). The compressor specific power consumption (e.g., 0.193-0.064 kWh/kg for SEE-SVR) and the required heat transfer surface areas of the evaporator (e.g., 2719.78-498.01 m(2) for SEE-SVR) decreased by increasing the evaporating temperature (from 50 to 90 degrees C), depending on the temperature difference between the condensing vapor and the boiling brine (Delta T). An optimum value was obtained for Delta T (almost 3 degrees C for SEE-SVR) to target either lower power consumption and heat transfer surface area. Operational expenditures (OPEX) showed a minimum at the feed salinity of 70 g/kg. The feed containing CaCl2 needed more treatment energy, compared to NaCl and MgCl2. Among the simulated systems, MEE-SVR showed the best performance, in terms of energy consumption and OPEX. So, the optimized MEE-SVR system was combined with a crystallization unit for better water recovery and solid salt removal from high salinity wastewater. Increment of the feed salinity caused decreased mean crystal size by raising nucleation rate and reducing growth rate.
机译:单/多效蒸发(见/ MEE)以及单/多级机械蒸汽再压缩(SVR-MVR)系统被模拟用于高盐度废水处理。它们针对70g / kg的饲料盐度优化,零液体排出(即盐饱和浓度为285g / kg)。通过增加蒸发温度降低,压缩机特定功耗(例如,0.193-0.064 kWh / kg)和蒸发器的所需传热表面积和蒸发器的所需热传递表面区域(例如,2719.78-498.01m(2))降低(从50到90℃),取决于冷凝蒸气和沸腾盐水(δT)之间的温差。为倾斜较低功耗和传热表面积的ΔT(几乎3摄氏度)获得最佳值以瞄准较低的功耗和传热表面积。操作支出(OPEX)在70g / kg的饲料盐度下显示出最低限度。与NaCl和MgCl2相比,含有CaCl2的饲料需要更多的治疗能量。在模拟系统中,MEE-SVR在能耗和OPEX方面表现出最佳性能。因此,优化的MEE-SVR系统与结晶单元相结合,可从高盐度废水中更好的水回收和固体盐去除。通过提高成核率并降低生长速率,饲料盐度的增量导致平均晶体尺寸降低。

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