Abstract

Solar-driven membrane distillation (SDMD) for desalination is a feasible method to solve water and energy resource issues. The design and operation of SDMD is different from continuous and steady state processes, such as common chemical plants, due to the intermittent and unpredictive characteristics of solar radiation. Employing the steady state and dynamic simulation models developed on the platform of Aspen Custom Modeler®, this paper presents a two-stage design approach for the SDMD systems using different types of membrane distillation configurations, including AGMD (air gap MD), DCMD (direct contract MD) and VMD (vacuum MD). The first design stage uses the steady state simulation model and determines equipment sizes for different constant-value solar radiation intensities with the objective of minimizing total annual cost. The second design stage is implemented on the SDMD systems with process control to automatically adjust the operating flow rates using the dynamic simulation model. Operated with the yearly solar radiation intensity of Taiwan, the unit production costs (UPCs) of the optimal SDMD systems using AGMD, DCMD, and VMD are $2.71, 5.38, and 10.41 per m3 of water produced, respectively. When the membrane unit cost is decreased from $90/m2 to $36/m2, the UPC of the optimal solar-driven AGMD system can be reduced from $2.71/m3 to $2.04/m3.

Highlights

  • For each of the solar-driven membrane distillation (SDMD) system, the unit models illustrated above were developed and simultaneously solved using the solvers provided on Aspen Custom Modeler® (ACM)

  • For each of the optimal solution determined from the first stage, the second optimization stage starts by the simulation of that design under dynamic operation with a control system proposed by this study

  • Based on the control structure designed for maintaining the desalinated water production rate of the solar-driven Air Gap Membrane Distillation System for Desalination (AGMD) system with unpredictive solar energy intensity developed by the authors [20], modified control structures were developed of the solardriven membrane distillation systems for desalination

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Summary

Process Description and Modeling

The mathematic models of the individual units are explained. The third part presents the validation of the mathematic models of membrane distillation modules using experimental operation conditions and results from literature. The last part gives the simulation results of representative cases for the overall SDMD systems

Process Description
Modeling
Solar Collector
Heat Exchanger
Thermal Storage Tank
Membrane Distillation Modules
Membrane Distillation Model Validation of Membrane Distillation Modules
Overall System Simulation
Optimization
Design
First Design Stage manufacture
Objective Function
Control System Design
Optimal Solutions from the First Design Stage
Optimal solutions of solar-driven
Optimal Solutions from the Second Design Stage
Comparison of Costs of SDMD Systems
design
Equipment
Conclusions
Full Text
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