nmnmppX salt from the product composition. M is selected from the group consisting of Ca, Na, K and Mg, and X is selected from the group consisting of halide, hydroxide, and oxide. Each one of m, n, and p is 1 or 2. The temperature T is in the range of 300°C-1,000°C.
The present invention relates to a process of producing hydrogen gas from water vapor in the presence of an alkali metal, which is being recycled through the process.
C01B 3/10 - Production d'hydrogène ou de mélanges gazeux contenant de l'hydrogène par réaction de composés inorganiques comportant un hydrogène lié électropositivement, p. ex. de l'eau, des acides, des bases, de l'ammoniac, avec des agents réducteurs inorganiques avec des métaux par réaction de la vapeur d'eau avec des métaux
C01B 3/06 - Production d'hydrogène ou de mélanges gazeux contenant de l'hydrogène par réaction de composés inorganiques comportant un hydrogène lié électropositivement, p. ex. de l'eau, des acides, des bases, de l'ammoniac, avec des agents réducteurs inorganiques
B22F 9/18 - Fabrication des poudres métalliques ou de leurs suspensionsAppareils ou dispositifs spécialement adaptés à cet effet par un procédé chimique avec réduction de mélanges métalliques
C21B 15/00 - Autres procédés pour la fabrication de fer à partir de composés de fer
F27B 3/08 - Fours à sole, p. ex. fours à réverbérationFours à arc électrique à chauffage électrique, p. ex. fours à arc électrique, avec ou sans une autre source de chaleur
A sodium-based metal production system constituted of: a reactor comprising at least one chamber and at least one heat source; a first inlet subsystem; a sodium oxide dissociation unit; a control circuitry configured to: control the first inlet subsystem to feed a respective predetermined amount of a first material into the at least one chamber; control the first inlet subsystem to feed a respective predetermined amount of sodium into the at least one chamber; and control the at least one heat source to heat the at least one chamber, wherein the sodium oxide dissociation unit is configured to dissociate sodium oxide output from the reactor to produce sodium and oxygen, and wherein the produced sodium is output through the first outlet of the sodium oxide dissociation unit.
It is the object of the present invention to present a method of producing silicon, characterized by mixing silicon dioxide and at least one metal oxide at an elevated temperate wherein said oxide and silicon form a eutectic mixture or eutectic system.
It is the object of the present invention to present a cell for extracting oxygen from lunar regolith via Molten Oxide Electrolysis, comprising (i) a cathode, (ii) an anode and (iii) a crucible, wherein the anode is characterized as at least partially liquid. The anode may be constructed from palladium, lead, silver, gold, platinum tantalum, or from a mixture.
C25B 9/30 - Cellules ou assemblages de cellules comprenant des électrodes mobiles, p. ex. des électrodes rotativesAssemblages de leurs éléments de structure
B22F 9/18 - Fabrication des poudres métalliques ou de leurs suspensionsAppareils ou dispositifs spécialement adaptés à cet effet par un procédé chimique avec réduction de mélanges métalliques
C22B 5/00 - Procédés généraux de réduction appliqués aux métaux
It is the object of the present invention to present a method of producing silicon, characterized by mixing silicon dioxide and at least one metal oxide at an elevated temperate wherein said oxide and silicon form a eutectic mixture or eutectic system.
It is the object of the present invention to present a cell for extracting oxygen from lunar regolith via Molten Oxide Electrolysis, comprising (i) a cathode, (ii) an anode and (iii) a crucible, wherein the anode is characterized as at least partially liquid. The anode may be constructed from palladium, lead, silver, gold, platinum tantalum, or from a mixture
It is the object of the present invention to present a cell for extracting oxygen from lunar regolith via Molten Oxide Electrolysis, comprising (i) a cathode, (ii) an anode and (iii) a crucible, wherein the anode is characterized as at least partially liquid. The anode may be constructed from palladium, lead, silver, gold, platinum tantalum, or from a mixture