Heat transfer optimization in multi shelled reformers
View Patent ↗A hydrocarbon fuel processing reactor for generating a hydrogen-enriched reformate from hydrocarbons is disclosed. A plurality of shells are arranged coaxially having a gap defined between each of the successive shells, thereby forming a plurality of coaxial zones. The shells are configured to permit heat transfer from one zone to another. Fluid streams for reactions within the reactor are preheated by heat transfer from adjacent zones.
1. A reactor for generating a hydrogen-rich reformate from hydrocarbons, comprising:
a core reaction zone having an outer wall, the core reaction zone configured to conduct at least one exothermic reaction and at least one fuel reforming reaction;
at least four shells arranged concentrically about the outer wall of the core reaction zone, a gap being defined between the outer wall of the core reaction zone and each of the successive shells to form a plurality of coaxial zones, the shells being configured to permit heat transfer directly between each adjacent zone, including the core reaction zone;
at least four fluid flows, each in a different coaxial zone, wherein at least two of the fluid flows comprise a reactant that is heated from a first temperature to a second higher temperature by traversing a coaxial zone, and wherein at least one of the fluid flows comprises a hot product of a reaction that is cooled from an initial elevated temperature to a second cooler temperature by traversing a coaxial zone.
2. The reactor of claim 1 wherein one of the at least one exothermic reaction comprises a burner and wherein exhaust from the burner is flowed through one of the at least four shells for heat exchange with one or more other zones.
3. The reactor of claim 1 wherein at least one of the at least four fluid flows is countercurrent to fluid flows in other concentric shells.
4. The reactor of claim 1 wherein the gaps of the plurality of coaxial zones are configured such that the fluid flow in each zone is predominantly turbulent.
5. The rector of claim 1 wherein the gaps of the plurality of coaxial zones are maintained by spacers placed between successive shells.
6. The reactor of claim 5 wherein spacers are selected from the group including: dimples; rods; flat screens; or undulating screens.
7. The reactor of claim 1 wherein the at least one fuel reforming reaction includes a steam reforming reaction.
8. The reactor of claim 1 wherein the second higher temperature is a temperature suitable for a reaction of the reactant.