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Desalination Processes' Efficiency and Future Roadmap.
Muhammad Wakil Shahzad1, Muhammad Burhan1, Doskhan Ybyraiymkul1
1Water Desalination and Reuse Centre, King Abdullah University of Science & Technology, Thuwal 23955-6900, Saudi Arabia.
Entropy (Basel, Switzerland)
|December 3, 2020
Summary
Accurate energy efficiency evaluation is crucial for sustainable seawater desalination. A new thermodynamic framework using standard primary energy (SPE) corrects flawed industry methods, enabling better technology choices and environmental outcomes.
Area of Science:
- Thermodynamics
- Environmental Engineering
- Sustainable Energy
Background:
- Current seawater desalination energy efficiency evaluations omit the grade of energy supplied, leading to flawed comparisons and poor technology choices.
- This misconception of equivalent energy values in the desalination industry has significant economic and environmental repercussions.
- Suboptimal technology implementation in water-stressed regions increases energy costs and environmental impact.
Purpose of the Study:
- To present a standard primary energy-based thermodynamic framework for accurate energy efficiency evaluation in seawater desalination.
- To propose a universal performance ratio-based method for comparing diverse desalination processes.
- To guide the selection of more efficient and sustainable desalination technologies.
Main Methods:
- Development of a standard primary energy (SPE)-based thermodynamic framework.
- Application of the framework to analyze energy consumption of thermally driven desalination processes.
- Proposal of a universal performance ratio for evaluating desalination process efficacy against the thermodynamic limit.
Main Results:
- Thermally driven desalination processes consume 2.5-3% of standard primary energy (SPE) when integrated with power plants.
- Existing desalination processes operate between 10-14% of the thermodynamic limit.
- Achieving 2030 sustainability goals requires innovative processes reaching 25-30% of the thermodynamic limit.
Conclusions:
- A standard primary energy-based thermodynamic framework provides accurate energy efficiency assessment for desalination.
- Current desalination technologies are far from optimal thermodynamic efficiency.
- Innovation is essential to meet future sustainability targets in seawater desalination.
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