We present a techno-economic analysis of a 17,000–18,000 metric tons per year electrolytic process for producing Mg from MgO with and without out a concentrated solar thermal input. The solar thermal input is delivered via power tower technology and the evaporation and condensation of sodium. Energy requirements for the process at scale were based on thermodynamics and an extrapolation of laboratory measurements of the electrochemical kinetic and mass transport parameters via a finite-element numerical model. While technically possible, integrating a solar thermal input does not make economic sense without crediting avoided CO2 emissions. A solar thermal input reduces energy operational costs from $0.654/kg to as low as $ 0.481/kg, but it a...
Power-to-chemicals processes hold tremendous potential to enable the widespread adoption of renewa...
Solar hydrogen production by coupling of pressurized high temperature electrolyser with concentrated...
Hydrogen is acclaimed to be an energy carrier of the future. Currently, it is mainly produced by fos...
We present a techno-economic analysis of a 17,000–18,000 metric tons per year electrolytic process f...
The electrolytic production of Mg from MgO was experimentally and theoretically investigated near 15...
The electrolytic production of Mg from MgO was experimentally and theoretically investigated near 15...
The solar energy research team at VU is developing a novel process for producing Magnesium (Mg) that...
In 2011 Valparaiso University was awarded a grant from the Department of Energy (DOE) ARPA-E program...
Today the production of magnesium (Mg) is mostly conducted with the so-called Pidgeon process that i...
We examined the kinetic and transport processes involved in Mg production from MgO via electrolysis ...
The economics of magnesium smelting are examined. Processes used and proposed to smelt magnesium are...
The specific energy consumption for magnesium metal extraction which had been once around 20-22 kWh ...
A solar thermal electrolytic reactor was developed for studying at a 10 kW scale how a solar reactor...
For a few years now, magnesium supply has been dominated by Chinese producers who provide about 80 %...
The roadmap for the hydrogen uptake passes through the development of near-zero emission and/or rene...
Power-to-chemicals processes hold tremendous potential to enable the widespread adoption of renewa...
Solar hydrogen production by coupling of pressurized high temperature electrolyser with concentrated...
Hydrogen is acclaimed to be an energy carrier of the future. Currently, it is mainly produced by fos...
We present a techno-economic analysis of a 17,000–18,000 metric tons per year electrolytic process f...
The electrolytic production of Mg from MgO was experimentally and theoretically investigated near 15...
The electrolytic production of Mg from MgO was experimentally and theoretically investigated near 15...
The solar energy research team at VU is developing a novel process for producing Magnesium (Mg) that...
In 2011 Valparaiso University was awarded a grant from the Department of Energy (DOE) ARPA-E program...
Today the production of magnesium (Mg) is mostly conducted with the so-called Pidgeon process that i...
We examined the kinetic and transport processes involved in Mg production from MgO via electrolysis ...
The economics of magnesium smelting are examined. Processes used and proposed to smelt magnesium are...
The specific energy consumption for magnesium metal extraction which had been once around 20-22 kWh ...
A solar thermal electrolytic reactor was developed for studying at a 10 kW scale how a solar reactor...
For a few years now, magnesium supply has been dominated by Chinese producers who provide about 80 %...
The roadmap for the hydrogen uptake passes through the development of near-zero emission and/or rene...
Power-to-chemicals processes hold tremendous potential to enable the widespread adoption of renewa...
Solar hydrogen production by coupling of pressurized high temperature electrolyser with concentrated...
Hydrogen is acclaimed to be an energy carrier of the future. Currently, it is mainly produced by fos...