IP Library Granted Patent US 10,543,483
Granted Patent B2
US 10,543,483 · App. 16/537,282 · Granted Jan 28, 2020

Separation method and assembly for process streams in component separation units

Inventors: John N. Glover (Houston, TX); Peter Gregory Ham (Houston, TX); Krishna K. Rao (The Woodlands, TX); Stephen J. McGovern (Mantua, NJ)
Assignee: CRYSTAPHASE INTERNATIONAL, INC.
B01J35/04B01D3/009B01D3/16B01D3/38B01D39/06B01D39/2051B01D39/2093B01D46/10B01D53/02B01D53/0423B01D53/86B01J8/006B01J8/009B01J8/0085B01J8/0214B01J8/0453B01J8/0469B01J8/0492B01J8/26B01J19/2485B01J19/30B01J19/305C10G7/00C10G21/00C10G25/003B01D3/14B01D2253/106B01D2253/112B01D2253/202B01D2253/306B01D2253/311B01D2253/342B01D2259/41B01D2275/40B01J23/85B01J2208/025B01J2219/00247B01J2219/00252B01J2219/3083B01J2219/3085B01J2219/30203B01J2219/30207B01J2219/30215B01J2219/30219B01J2219/30223B01J2219/30246B01J2219/30257B01J2219/30276B01J2219/30408B01J2219/30416B01J2219/30475B01J2219/32279
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Quick Facts
Patent No.
US 10,543,483
App. No.
16/537,282
Granted
Jan 28, 2020
Kind
B2
Abstract

A method and assembly for utilizing open-cell cellular solid material in a component separation unit to separate one or more process streams into component process streams having desired compositions. A method and assembly for using said open-cell cellular solid material to separate process streams into desired component process streams in a component separation unit, wherein the open-cell cellular solid material can include oxides, carbides, nitrides, borides, ceramics, metals, polymers, and chemical vapor deposition materials.

Claims (47)

1. A process unit assembly comprising:

a vessel having at least one bed with a plurality of stochastic three-dimensional cellular solid materials packed therein, the cellular solid materials having:

a coating applied thereon, the coating comprising a catalytically active material that is capable of reacting with one or more contaminants in a process stream introduced into the bed;

a pore size in the range of about 100 microns to about 6,000 microns; and

a contact surface with a surface area upon which two or more phases from the process stream can be contacted to facilitate mass transfer between the two or more phases,

wherein the phases comprise a liquid phase, a vapor phase or combinations thereof.

2. The process unit assembly of claim 1 , wherein the mass transfer between the phases facilitates contaminants removal from the process streams within the vessel.

3. The process unit assembly of claim 1 , wherein the cellular solid materials are randomly packed within the vessel.

4. The process unit assembly of claim 1 , wherein the contaminants comprise polymer precursors.

5. The process unit assembly of claim 1 , wherein the contaminants comprise salts.

6. The process unit assembly of claim 1 , wherein the coating comprises an alumina material.

7. The process unit assembly of claim 1 , wherein the catalyst coating comprises a Group VI-B or Group VIII metal.

8. The process unit assembly of claim 1 , wherein the vessel further contains catalyst.

9. The process unit assembly of claim 1 , wherein the vessel comprises at least one of a hydrotreater and a hydrocracker.

10. The process unit assembly of claim 1 , wherein the vessel is a refining process unit.

11. The process unit assembly of claim 1 , wherein at least two process streams are introduced into the bed, and wherein the at least two process streams are capable of reaction therebetween.

12. A process unit assembly comprising:

a vessel having at least one bed with a plurality of stochastic three-dimensional cellular solid materials randomly packed therein, the cellular solid materials having:

a pore size in the range of about 100 microns to about 6,000 microns; and

a coating applied thereon, the coating comprising a catalytically active material that is capable of reacting with a contaminant in one or more of a first process stream and a second process stream introduced into the vessel,

wherein the first process stream and the second process stream can be contacted with the cellular solid material to facilitate mass transfer therebetween and produce at least one component process stream having a desired composition that is different from the composition of the first process stream and the second process stream.

13. The process unit assembly of claim 12 , wherein the first process stream and the second process stream comprise one or more of a liquid phase, a vapor phase or combinations thereof, and wherein two or more of the phases are contacted with one another within the bed of cellular solid materials to effectuate mass transfer at the interface between the phases.

14. The process unit assembly of claim 13 , wherein the two or more phases that are contacted with one another comprise a phase moving in one direction and a phase moving in the opposite direction.

15. The process unit assembly of claim 12 , wherein the process unit assembly comprises one or more of an absorber and an adsorber.

16. The process unit assembly of claim 12 , wherein the process unit assembly is a distillation unit.

17. The process unit assembly of claim 12 , wherein the process unit assembly is a catalyst refining process unit.

18. The process unit assembly of claim 12 , wherein the process unit assembly is a refining process unit.

19. The process unit assembly of claim 12 , wherein the process unit further contains catalyst.

20. The process unit assembly of claim 12 , wherein the contaminants comprise polymer precursors.

21. The process unit assembly of claim 12 , wherein the contaminants comprise salts.

22. The process unit assembly of claim 12 , wherein the catalyst coating comprises an alumina material.

23. The process unit assembly of claim 12 , wherein the catalyst coating comprises a Group VI-B or Group VIII metal.

24. A method of decontaminating one or more process streams in a process unit comprising:

providing a plurality of stochastic three-dimensional cellular solid materials within a bed in the process unit, the cellular solid materials having a pore size in the range of about 100 microns to about 6,000 microns and a coating applied thereon, the coating comprising a catalytically active material;

passing a first process stream and a second process stream through the bed, wherein the first process stream and the second process stream each comprise one or more of a liquid phase, a vapor phase or combinations thereof; and

contacting the first process stream and the second process stream with the cellular solid materials to facilitate mass transfer between the phases in the first process stream and the second process stream,

wherein the mass transfer promotes reactivity of the coating with one or more contaminants in either of the first process stream and the second process stream.

25. The method of claim 24 , wherein a phase moving in one direction and a phase moving in the opposite direction are contacted with one another within the bed of cellular solid materials to effectuate mass transfer at the interface between the phases.

26. The method of claim 24 , wherein the coating comprises at least one of an alumina material and a Group VI-B or Group VIII metal.

27. The method of claim 24 , wherein the process unit further contains catalyst.

28. The method of claim 24 , wherein the contaminants comprise salts.

29. The method of claim 24 , wherein at least two process streams are introduced into the bed, and wherein the at least two process streams are capable of reaction therebetween.

30. A method of decontaminating a process stream in a process unit comprising:

providing a plurality of stochastic three-dimensional cellular solid materials within a bed in the process unit, the cellular solid materials having a pore size in the range of about 100 microns to about 6,000 microns and a coating applied thereon, the coating comprising a catalytically active material;

passing the process stream through the bed, wherein the process stream comprises one or more of a liquid phase, a vapor phase or combinations thereof; and

contacting the process stream with the cellular solid materials to facilitate mass transfer between the phases in the process stream,

wherein the mass transfer promotes reactivity of the coating with one or more contaminants in the process stream.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 9, 2019
From: GLOVER, JOHN N.; HAM, PETER GREGORY; RAO, KRISHNA K.; MCGOVERN, STEPHEN J.
To: CRYSTAPHASE INTERNATIONAL, INC.
Reel/Frame 050016/0378 →
Continuity (4)
Continuation 12786140 · May 24, 2010
Division 11136631 · May 24, 2005
Continuation In Part 10396851 · Mar 25, 2003
Related Publication 20190358620A1 · Nov 28, 2019
Cited By (3)
US 12,247,596 US 12,420,253 US 12,515,183