Power generation by coupling reverse electrodialysis and ammonium bicarbonate: Implication for recovery of waste heat
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- Type
- article
- Published
- 2012-06-01
- Cited by
- 126
- References
- 16
- OpenAlex
- https://openalex.org/W1977593299
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:94523873
Keywords
Reversed electrodialysis, Waste heat, Ammonium bicarbonate, Stack (abstract data type), Electricity generation
References
- Desalination by ammonia–carbon dioxide forward osmosis: Influence of draw and feed solution concentrations on process performance
- A novel ammonia–carbon dioxide osmotic heat engine for power generation
- Energy requirements of ammonia-carbon dioxide forward osmosis desalination
- Reverse electrodialysis : Performance of a stack with 50 cells on the mixing of sea and river water
- Energetic and economic investigation of Organic Rankine Cycle applications
- Energy recovery from controlled mixing salt and fresh water with a reverse electrodialysis system.
- The Future of Seawater Desalination: Energy, Technology, and the Environment
- A Review of Organic Rankine Cycles (ORCs) for the Recovery of Low-grade Waste Heat
- Reverse electrodialysis: Comparison of six commercial membrane pairs on the thermodynamic efficiency and power density
- Global challenges in energy and water supply: the promise of engineered osmosis.
- A REVIEW OF THERMODYNAMIC CYCLES AND WORKING FLUIDS FOR THE CONVERSION OF LOW-GRADE HEAT
- Practical potential of reverse electrodialysis as process for sustainable energy generation.
- Forward osmosis: Principles, applications, and recent developments
- Current status of ion exchange membranes for power generation from salinity gradients
- Reducing power losses caused by ionic shortcut currents in reverse electrodialysis stacks by a validated model
- Microbial reverse electrodialysis cells for synergistically enhanced power production.
Cited by
- Low-Grade Waste Heat Recovery via an Osmotic Heat Engine by Using a Freestanding Graphene Oxide Membrane
- Junction potentials in thermolytic reverse electrodialysis
- Hydrogen production from continuous flow, microbial reverse-electrodialysis electrolysis cells treating fermentation wastewater.
- Energy storage by reversible electrodialysis: The concentration battery
- Parametric study of reverse electrodialysis using ammonium bicarbonate solution for low-grade waste heat recovery
- Influence of solution concentration and salt types on the performance of reverse electrodialysis cells
- Experimental and modeling studies on reverse electrodialysis for sustainable power generation
- Performance of the first reverse electrodialysis pilot plant for power production from saline waters and concentrated brines
- The alkali stability of radiation-grafted anion-exchange membranes containing pendent 1-benzyl-2,3-dimethylimidazolium head-groups
- Evaluation of flow fields on bubble removal and system performance in an ammonium bicarbonate reverse electrodialysis stack
- Fundamental water and salt transport properties of polymeric materials
- Modeling of power generation from the mixing of simulated saline and freshwater with a reverse electrodialysis system: The effect of monovalent and multivalent ions
- Optimization of membrane stack configuration for efficient hydrogen production in microbial reverse-electrodialysis electrolysis cells coupled with thermolytic solutions.
- Ion Exchange Membranes for Electrodialysis: A Comprehensive Review of Recent Advances
- Ammonium Bicarbonate Transport in Anion Exchange Membranes for Salinity Gradient Energy.
- Anion-exchange membranes in electrochemical energy systems
- Minimal RED cell pairs markedly improve electrode kinetics and power production in microbial reverse electrodialysis cells.
- Numerical study on energy harvesting from concentration gradient by reverse electrodialysis in anodic alumina nanopores
- Comparison of hydrogen production and electrical power generation for energy capture in closed-loop ammonium bicarbonate reverse electrodialysis systems.
- Evaluating Battery-like Reactions to Harvest Energy from Salinity Differences using Ammonium Bicarbonate Salt Solutions.
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