1. Field
Embodiments described herein generally relate to systems and methods for processing materials.
2. Description of the Related Art
Fluidized bed reactors are representative of devices used to perform any number of chemical reactions. Conventionally, fluidized bed reactors include a shell or containment chamber in which a solid granular material (e.g., a catalyst) is deposited. A hot fluid, which can be a fluid, liquid, or mixtures thereof, and which can include entrained particles, is passed through the granular material at a sufficiently high velocity to cause the solids to behave as a fluid.
There is a continuing need for new apparatus and methods for enhancing the fluid and solids interaction in fluidized bed reactors and other situations where fluides and one or more secondary materials are contacted with one another.
In aspects, the present disclosure provides a system for processing one or more materials. The system may include a processor having a shell defining a chamber. The system also includes a plurality of serially stacked pipe assemblies. Each pipe assembly may include a header having at least one substantially straight pipe section receiving a fluid; and a plurality of nozzles in fluid communication with and projecting downwardly from the header, the plurality of nozzles directing fluid into the chamber of the processor. In arrangements, the plurality of nozzles may be evenly circumferentially distributed around the shell. In further arrangements, the plurality of nozzles may be arranged to form a plurality of axially-spaced apart circumferential sets. In some embodiments, the system may include a dual layer refractory system associated with each of the pipe assemblies.
It should be understood that examples of the more important features of the disclosure have been summarized rather broadly in order that the detailed description thereof that follows may be better understood, and in order that the contributions to the art may be appreciated. There are, of course, additional features of the disclosure that will be described hereinafter and which will in some cases form the subject of the claims appended thereto.
For detailed understanding of the present disclosure, references should be made to the following detailed description of the preferred embodiment, taken in conjunction with the accompanying drawings, in which like elements have been given like numerals and wherein:
Referring to
In accordance with one embodiment of the present disclosure, the processor 10 includes a multi-inlet fluid distributor 20 in order to evenly distribute a high temperature, high velocity fluid into the solids (not shown). The fluid may be a gas having entrained solid particles. In aspects, the fluid has a temperature of at least 1,200 degrees F. In some applications, the fluid has a temperature of at least 2,000 degrees F. In other applications, the fluid as a temperature of at least 3,000 degrees F. The distributor 20 includes a plurality of inlets 22 that distributes the fluid circumferentially and axially into the shell 12. By axially, it is meant that there are inlets 22 are two or more discrete elevations. In some applications, the fluid has a velocity of at least forty feet per second. In other applications, the fluid may have a velocity of at least two hundred feet per second or at least three hundred feet per second.
In one arrangement, the distributor 20 includes a plurality of pipe assemblies 30, 32, 34. Since the pipe assemblies 30, 32, 34 share common features, only pipe assembly 30 will be described. Referring to
The header 42 may include one or more substantially straight pipe segments 46 from which the nozzles 44a-h may project downwards and join at a non-perpendicular juncture 49 with the chamber 14. The angle at the juncture 49 is selected to allow material to flow downward due to gravity into the chamber 14. The downward orientation forces solids to overcome gravity in order to enter the header 42. The header 42 may also include caps 48 that may be removed to allow cleaning implements to be inserted into the straight pipe segments 46. Thus, when needed, devices such as rods may be used to clean clogged pipes.
In embodiments, the distributor 20 may include a dual layer insulating and wear-resistant refractory lining 50 (
The pipe assemblies 32 (
In one mode of operation, a fluid is supplied to each of the pipe assemblies 30, 32, 34. In each pipe assembly 30, 32, 34, the fluid flows in a circular fashion prior to be flowing downward through the nozzles (e.g., nozzles 44a-h) into the processor 10. As noted above, the nozzles are evenly distributed both axially (vertically) and circumferentially. When the fluid velocity is sufficiently high, the force of the fluid on the solids counter-balances the weight of the solid material. At this point, the contents of the processor bed expand and swirl to form a fluidized bed.
It should be appreciated that these distributed nozzles promote mixing without the use of metal distributors positioned in the chamber 14 of the processor 10. Thus, the fluid may be supplied at temperatures that would otherwise be too hot for such metal distributors.
In contrast to processors that use structures inside the chamber 14 to redirect flow and promote mixing, embodiments of the present disclosure using multiple flow streams, each having different flow directions in order to generate uniform mixing inside the chamber 14. As shown, the nozzles 44a-h are sloped so that the flow is not perpendicular to the vertical axis of the chamber 14. Further, the nozzles 44a-h are all directed radially inward to the vertical axis of the chamber 14. However, in other embodiments, the nozzles 44a-h may induce flow that is perpendicular to this vertical axis. In still other embodiments, the nozzles 44a-h may induce a tangential component to the fluid flow. In still other embodiments, the nozzles 44a-h may point into two or more different directions.
As shown, the
Referring now to
In some embodiments, the nozzle 44 includes a venturi-type of flow restrictor 60. The flow restrictor 60 generates a pressure drop of the fluid flowing into the chamber 14. The magnitude of the pressure drop may be selected to circumferentially and axially equalize the flow of fluid into the chamber 14. As illustrated in
Referring to
While the foregoing is directed to embodiments of the present disclosure, other and further embodiments of the disclosure may be devised without departing from the basic scope thereof, and the scope thereof is determined by the claims that follow.
Number | Name | Date | Kind |
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3101249 | Priscu | Aug 1963 | A |
3740865 | Laguilharre | Jun 1973 | A |
3839017 | Schempp | Oct 1974 | A |
3887131 | Bourne | Jun 1975 | A |
3982605 | Sneckenberger | Sep 1976 | A |
4060041 | Sowards | Nov 1977 | A |
4460130 | Baumann | Jul 1984 | A |
4682985 | Kohl | Jul 1987 | A |
4773918 | Kohl | Sep 1988 | A |
5173093 | Johnson | Dec 1992 | A |
6284189 | Pavlicevic | Sep 2001 | B1 |
Number | Date | Country |
---|---|---|
4105280 | Aug 1991 | DE |
59205514 | Nov 1984 | JP |
1813189 | Apr 1993 | SU |
Entry |
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Machine translation of RU 1813189 (Apr. 1993). Retrieved from Espacenet on Jun. 19, 2019. (Year: 2019). |
Number | Date | Country | |
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20160250610 A1 | Sep 2016 | US |
Number | Date | Country | |
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62121001 | Feb 2015 | US |