首页> 外文OA文献 >Simulation, optimisation and flexible scheduling of MSF desalination process under fouling. Optimal design and operation of MSF desalination process with brine heater and demister fouling, flexible design operation and scheduling under variable demand and seawater temperature using gPROMS.
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Simulation, optimisation and flexible scheduling of MSF desalination process under fouling. Optimal design and operation of MSF desalination process with brine heater and demister fouling, flexible design operation and scheduling under variable demand and seawater temperature using gPROMS.

机译:结垢下MSF脱盐过程的仿真,优化和灵活调度。使用gPROMS,在盐水加热器和除雾器结垢的MSF脱盐工艺的优化设计和运行,可变需求和海水温度下灵活的设计操作和调度。

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摘要

Among many seawater desalination processes, the multistage flash (MSF) desalination process is a major source of fresh water around the world. The most costly design and operation problem in seawater desalination is due to scale formation and corrosion problems. Fouling factor is one of the many important parameters that affect the operation of MSF processes. This thesis therefore focuses on determining the optimal design and operation strategy of MSF desalinations processes under fouling which will meet variable demand of freshwater.udFirst, a steady state model of MSF is developed based on the basic laws of mass balance, energy balance, and heat transfer equations with supporting correlations for physical properties. gPROMS software is used to develop the model which is validated against the results reported in the literature. The model is then used in further investigations.udBased on actual plant data, a simple dynamic fouling factor profile is developed which allows calculation of fouling factor at different time (season of the year). The role of changing brine heater fouling factor with varying seawater temperatures (during the year) on the plant performance and the monthly operating costs for fixed water demand and fixed top brine temperature are then studied. The total monthly operation cost of the process are minimised while the operating parameters such as make up, brine recycle flow rate and steam temperature are optimised. It was found that the seasonal variation in seawater temperature and brine heater fouling factor results in significant variations in the operating parameters and operating costs.udThe design and operation of the MSF process are optimized in order to meet variable demands of freshwater with changing seawater temperature throughout the day and throughout the year. On the basis of actual data, the neural network (NN) technique has been used to develop a correlation for calculating dynamic freshwater demand/consumption profiles at different times of the day and season. Also, a simple polynomial based dynamic seawater temperature correlation is developed based on actual data. An intermediate storage tank between the plant and the client is considered. The MSF process model developed earlier is coupled with the dynamic model for the storage tank and is incorporated into the optimization framework within gPROMS. Four main seasons are considered in a year and for each season, with variable freshwater demand and seawater temperature, the operating parameters are optimized at discrete time intervals, while minimizing the total daily costs. The intermediate storage tank adds flexible scheduling and maintenance opportunity of individual flash stages and makes it possible to meet variable freshwater demand with varying seawater temperatures without interrupting or fully shutting down the plant at any-time during the day and for any season.udFinally, the purity of freshwater coming from MSF desalination plants is very important when the water is used for industrial services such as feed of boiler to produce steam. In this work, for fixed water demand and top brine temperature, the effect of separation efficiency of demister with seasonal variation of seawater temperatures on the final purity of freshwater for both cleaned and fouled demister conditions is studied. It was found that the purity of freshwater is affected by the total number of stages. Also to maintain the purity of freshwater product, comparatively large number of flash stage is required for fouled demister.
机译:在许多海水淡化过程中,多级闪蒸(MSF)淡化过程是全世界淡水的主要来源。海水淡化中最昂贵的设计和操作问题是由于水垢形成和腐蚀问题。结垢因子是影响MSF过程操作的许多重要参数之一。因此,本论文着重于确定能够满足淡水变化需求的污垢条件下MSF脱盐工艺的最佳设计和操作策略。 ud首先,根据质量平衡,能量平衡和能量平衡的基本定律建立了MSF稳态模型。传热方程式具有物理特性的支持性相关性。 gPROMS软件用于开发模型,该模型针对文献中报道的结果进行了验证。然后将该模型用于进一步的研究。 ud基于工厂的实际数据,开发了一个简单的动态污垢因子曲线,可以计算不同时间(一年中的季节)的污垢因子。然后研究了随海水温度变化(一年中)而变化的盐水加热器结垢因子对工厂性能以及固定水需求和固定最高盐水温度的每月运行成本的影响。该工艺的每月总运营成本得以最小化,同时优化了诸如补给,盐水循环流量和蒸汽温度等运行参数。研究发现,海水温度和盐水加热器结垢因子的季节性变化会导致运行参数和运行成本发生重大变化。 ud优化了MSF工艺的设计和运行,以适应随海水温度变化而变化的淡水需求整天和全年。在实际数据的基础上,神经网络(NN)技术已被用于开发相关性,以计算一天中和季节中不同时间的动态淡水需求/消耗情况。此外,基于实际数据开发了基于简单多项式的动态海水温度相关性。考虑工厂与客户之间的中间储罐。先前开发的MSF过程模型与储罐的动态模型结合在一起,并被合并到gPROMS的优化框架中。一年中考虑了四个主要季节,每个季节的淡水需求和海水温度各不相同,在不连续的时间间隔内对运行参数进行了优化,同时最大程度地降低了每日总成本。中间储水箱为各个闪蒸阶段增加了灵活的调度和维护机会,并且可以在变化的海水温度下满足可变的淡水需求,而无需在白天和任何季节的任何时间中断或完全关闭工厂。当水用于工业服务(例如锅炉给水以产生蒸汽)时,来自MSF海水淡化厂的淡水的纯度非常重要。在这项工作中,对于固定的需水量和最高盐水温度,研究了除雾器的分离效率随海水温度的季节性变化对净化和污浊除雾器条件下淡水最终纯度的影响。发现淡水的纯度受阶段总数的影响。另外,为了保持淡水产品的纯度,对于结垢的除雾器需要相对大量的闪蒸阶段。

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    Hawaidi Ebrahim A.M.;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en
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