System and method for pyrolysis using a liquid metal catalyst
A process for decomposing a hydrocarbon-containing composition includes feeding the hydrocarbon-containing composition to a reactor containing a catalytically active molten metal or a catalytically active molten metal alloy, wherein the metal or alloy catalyzes a decomposition reaction of the hydrocarbon-containing composition into a hydrogen-rich gas phase and a solid carbon phase. The solid carbon phase is insoluble in the metal or alloy. The process may be a continuous process.
1. A process for decomposing a hydrocarbon-containing composition, the process comprising:
feeding the hydrocarbon-containing composition to a reactor containing a catalytically active molten metal or a catalytically active molten metal alloy; and
controlling an interfacial tension within the reactor by maintaining a dynamic equilibrium of oxide to optimize bubble surface area;
wherein the metal or alloy catalyzes a decomposition reaction of the hydrocarbon-containing composition into a hydrogen-rich gas phase and a solid carbon phase;
wherein the solid carbon phase is minimally soluble in the metal or alloy;
wherein the reactor is operated at a temperature of less than 1000° C.;
wherein the hydrocarbon-containing composition is fed to the reactor through a porous diffuser extending through a wall of the reactor; and
wherein the interfacial tension is controlled by doping the hydrocarbon-containing composition with oxygen or ozone to maintain a selected degree of oxidation of the molten metal.
2. The process of claim 1 , wherein the catalytically active molten metal or the catalytically active molten metal alloy comprises gallium.
3. The process of claim 1 , wherein the catalytically active molten metal or the catalytically active molten metal alloy comprises bismuth.
4. The process of claim 1 , wherein the catalytically active molten metal or the catalytically active molten metal alloy comprises at least one carrier element selected from the group consisting of gallium and bismuth.
5. The process of claim 1 , wherein the solid carbon phase forms a floating slag in the reactor; and wherein the process further comprises removing the floating slag.
6. The process of claim 1 , wherein the reactor is connected to a gravity settler or a cyclone separator.
7. The process of claim 1 , wherein the solid carbon phase comprises carbon fibers, graphene, diamond, glassy carbon, high-purity graphite, carbon nanotubes, carbon black, coke, or activated charcoal.
8. The process of claim 1 , wherein the alloy comprises at least one catalyst element selected from the group consisting of nickel, iron, copper, zinc and palladium.
9. The process of claim 1 , wherein:
the reactor contains the catalytically active molten metal alloy and the alloy is a nickel-gallium alloy, a copper-gallium alloy, an iron-gallium alloy, or any combination thereof.
10. The process of claim 1 , wherein the porous diffuser produces bubbles with a diameter in the range of from about 100 nm to about 10 mm.
11. The process of claim 1 , wherein the hydrocarbon-containing composition is selected from:
the group consisting of natural gas, liquefied petroleum gas, naphtha, light crude oil, heavy crude oil, oil sands, shale oil, wood, biomass and organic waste streams; or
the group consisting of straight or branched chain alkanes, alkenes, alkynes, arenes, and any combination thereof with a chain length of C 1 to C 20 .