Results 241 to 250 of about 15,672 (284)

Salinity Gradient Energy Conversion

open access: yesOCEANS '79, 1979
The feasibility of Osmo-Hydro PowerTM(OHP) systems, as conceived by ITC/Solar, to generate electricity in a practical and economic manner from aqueous saline solutions is discussed. Initial design of a 50-kWe system using brackish water and saturated brine is presented.
G. Mehta   +4 more
openaire   +2 more sources

Surveying Manganese Oxides as Electrode Materials for Harnessing Salinity Gradient Energy

open access: yesEnvironmental Science & Technology, 2020
The potential energy contained in the controlled mixing of waters with different salt concentrations (i.e., salinity gradient energy) can theoretically provide a substantial fraction of the global electrical demand. One method for generating electricity from salinity gradients is to use electrode-based reactions in electrochemical cells.
Jenelle Fortunato   +7 more
openaire   +4 more sources

Asymmetric Two-Dimensional Nanomembranes for Salinity Gradient Energy Conversion

open access: yesNano Letters
Salinity gradient energy offers a ubiquitous, renewable power source but remains inhibited by the trade-off between the ion selectivity and permeability of the membrane, which limits the diffusion potential and ionic current, thus restricting the output power.
Sungsoon Kim   +13 more
openaire   +3 more sources

Extraction of Salinity‐Gradient Energy by a Hybrid Capacitive‐Mixing System

ChemSusChem, 2017
AbstractSalinity‐gradient energy (SGE) is a renewable energy source available wherever two solutions with different salinity mix. Capacitive‐mixing (Capmix) is a technology that directly extracts the SG potential through the movements of ions in high‐ and low‐concentration solutions.
Jaehan Lee   +2 more
exaly   +3 more sources

Exergy Analysis-Potential of Salinity Gradient Energy Source

open access: yesJournal of Energy Resources Technology, 2018
Mixing of fresh (river) water and salty water (seawater or saline brine) in a controlled environment produces an electrical energy known as salinity gradient energy (SGE). Two main conversion technologies of SGE are membrane-based processes: pressure retarded osmosis (PRO) and reverse electrodialysis (RED).
Emdadi, Arash   +6 more
openaire   +5 more sources

Chapter 5 Salinity Gradient Energy [PDF]

open access: yes, 2010
There exists a huge potential for the generation of energy from the mixing of saltwater and freshwater. The potential is 2.6 TW, which is more than the global electricity consumption (2.0 TW).
Kitty Nijmeijer, Sybrand Metz
core   +3 more sources

An electrochemical system for salinity gradient energy harvesting

Energy Conversion and Management, 2022
Wei-Bin Zhang   +2 more
exaly   +2 more sources

Salinity gradient energy generation by pressure retarded osmosis: A review [PDF]

open access: yesDesalination, 2021
Pressure retarded osmosis (PRO) has gained attention due to its use as a salinity gradient energy-generating membrane process. This process can convert difference in salinity between two streams into energy as it allows water transport through a semi ...
Ralph Rolly Gonzales   +2 more
exaly   +3 more sources

Stable Ti3C2Tx MXene–Boron Nitride Membranes with Low Internal Resistance for Enhanced Salinity Gradient Energy Harvesting

open access: yesACS Nano, 2021
Stable Ti3C2TxMXene-Boron Nitride Membranes with Low Internal Resistance for Enhanced Salinity Gradient Energy ...
Dan Liu, Yijun Qian, Yuyu Su
exaly   +1 more source

Ammonium Bicarbonate Transport in Anion Exchange Membranes for Salinity Gradient Energy

open access: yesACS Macro Letters, 2013
Many salinity gradient energy technologies such as reverse electrodialysis (RED) rely on highly selective anion transport through polymeric anion exchange membranes. While there is considerable interest in using thermolytic solutions such as ammonium bicarbonate (AmB) in RED processes for closed-loop conversion of heat energy to electricity, little is ...
Geise, Geoffrey M.   +2 more
openaire   +4 more sources

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