A membrane technology that uses alternating electrical potentials on electrically conducting nanofiltration membranes to mix ions at the surface, preventing pre-nucleation cluster formation and mineral scaling. Enables greater than 95% water recovery in desalination and hardness removal applications, with membrane costs comparable to commercial alternatives.
This technology addresses mineral scaling, a major limiting factor in membrane-based desalination and water treatment. By applying alternating electrical potentials to the surface of electrically conducting nanofiltration membranes, the system drives electrokinetic ion mixing that prevents the co-location of anions and cations needed to form pre-nucleation clusters. Without these clusters, heterogeneous nucleation and mineral scale formation on the membrane surface are avoided, allowing systems to operate at very high water recovery rates. The approach has been validated for prevention of calcium sulfate and silicate scaling in nanofiltration and membrane distillation systems treating highly concentrated brines.
The technology has progressed beyond proof of concept. Mineral scale prevention has been demonstrated in electrically conducting nanofiltration and membrane distillation systems, including prevention of calcium sulfate and silicate mineral formation on highly concentrated brines. Scalable fabrication of the conducting porous polymer and nanomaterial composite membranes has been demonstrated, with material costs comparable to commercial alternatives. Ongoing validation includes fabrication and characterization of hardness-removing conducting nanofiltration membranes, evaluation of flow and electrical operating conditions for greater than 95% water recovery, and demonstration of a complete hardness removal system at 200 mL/min.
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