This invention relates generally to production of droplets of liquid. More particularly, we are interested in a droplet generating rotating cutter.
The production of droplets of liquids, both pure liquids and slurries, is of great interesting in various industries. Droplets are used to contact the liquid with a gas and can be used in reactors, heat and material exchangers, and other applications. In cases where viscous liquids and slurries are involved, most droplet generation methods, including drip trays and nozzles, do not produce droplets that maximize surface area contact with gases. Droplet generating devices are required that can produce droplets out of fluids of any viscosity.
U.S. Pat. No. 3,532,271, to Polnauer, teaches spray nozzles with spiral flow fluid. The present disclosure differs from this disclosure in that the disclosure produces droplets using a nozzle, not by passing a liquid through parallel disks. This disclosure is pertinent and may benefit from the devices disclosed herein and is hereby incorporated by reference in its entirety for all that it teaches.
U.S. Pat. No. 4,327,050, to Salmon, teaches an extrusion and pelleting apparatus and method. The plastics are passed through a plate with openings and the pellets of plastic are cut off by rotating blades. The present disclosure differs from this disclosure in that the disclosure does not have two plates or discs, both of which have openings through which the fluid passes. This disclosure is pertinent and may benefit from the devices disclosed herein and is hereby incorporated by reference in its entirety for all that it teaches.
A device for producing droplets is disclosed. A disk assembly comprising a first disk mounted to a second disk is provided. The first disk comprises a plurality of first openings. The second disk comprises a plurality of second openings. The plurality of first openings and the plurality of second openings alternately align with one another such that, as a liquid passes through the plurality of first openings and the plurality of second openings, the liquid falls as a droplet as the plurality of first openings and the plurality of second openings skew apart.
The first disk and the second disk may comprise metals, plastics, ceramics, or combinations thereof.
The liquid may comprise a slurry or a pure liquid. The liquid may comprise a viscosity greater than water.
An interior, bottom portion of the plurality of first openings, an interior, top portion of the plurality of second openings, or a combination thereof, may comprise sharpened edges. The first disk may comprise needle-shaped protrusions attached to an edge of the plurality of first openings.
The first disk and the second disk may be installed in a vessel. The vessel may comprise a liquid inlet above the first disk, a gas-liquid contacting space, a liquid outlet below the gas-liquid contacting space, a gas inlet above the liquid outlet and below the gas-liquid contacting space, and a gas outlet below the second disk. The first disk, the second disk, or the first disk and the second disk may be caused to rotate by one or more friction drives. The first disk may be caused to rotate by a driven shaft attached to a center of the first disk, the second disk may be caused to rotate by a driven shaft attached to a center of the second disk, or a combination thereof. The first disk and the second disk may be sealed by gaskets or O-rings at inside edges of the vessel.
The first disk and the second disk may comprise identical opening patterns. The first disk and the second disk may comprise identical but mirrored opening patterns. The plurality of first openings may be divergent from each other, the plurality of second openings may be divergent from each other, or a combination thereof. The plurality of first openings may be divergent from any line made between a center and an outer edge of the first disk, the plurality of second openings may be divergent from any line made between a center and an outer edge of the second disk, or a combination thereof. The plurality of first openings may be antisymmetric about a center of the first disk, the plurality of second openings may be antisymmetric about a center of the second disk, or a combination thereof. The first disk and the second disk may comprise identical thicknesses. The first disk and the second disk may comprise different thicknesses. The first disk may be stationary and the second disk may be driven by gears that are driven by a turbine that may be driven by the fluid passing through the fluid inlet.
The disk assembly may be installed in a vessel. The vessel may comprise a liquid inlet above the first disk, a gas-liquid contacting space, a liquid outlet below the gas-liquid contacting space, a gas inlet above the liquid outlet and below the gas-liquid contacting space, and a gas outlet below the second disk. A contact liquid may pass through the liquid inlet and a carrier gas may pass through the gas inlet. The plurality of first openings and the plurality of second openings alternately align with one another such that, as the liquid passes through the plurality of first openings and the plurality of second openings, the liquid falls as a droplet as the plurality of first openings and the plurality of second openings skew apart. The droplet may fall through the carrier gas, exchanging heat, material, or heat and material. The gas may pass out the gas outlet and the liquid passes out the liquid outlet.
In order that the advantages of the invention will be readily understood, a more particular description of the invention briefly described above will be rendered by reference to specific embodiments illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the invention and are not therefore to be considered limiting of its scope, the invention will be described and explained with additional specificity and detail through use of the accompanying drawings, in which:
It will be readily understood that the components of the present invention, as generally described and illustrated in the Figures herein, could be arranged and designed in a wide variety of different configurations. Thus, the following more detailed description of the embodiments of the invention, as represented in the Figures, is not intended to limit the scope of the invention, as claimed, but is merely representative of certain examples of presently contemplated embodiments in accordance with the invention.
Referring to
Referring to
Referring to
Referring to
Referring to
The viscosity of the liquid and the relative rotational velocity of the openings as they cross each other determines the size of droplets. If the velocity is slow, the viscosity is low, or a combination thereof, the droplets will be rivulets. If the velocity is high, the viscosity is high, or a combination thereof, the droplets will be small.
In some embodiments, the first disk and the second disk comprise metals, plastics, ceramics, or combinations thereof.
In some embodiments, the liquid comprises a slurry or a pure liquid. In some embodiments, the liquid comprises a viscosity greater than water. One benefit of this design is the ability to handle highly viscous fluids. In some embodiments, an interior, bottom portion of the first opening, an interior, top portion of the second openings, or a combination thereof, comprise sharpened edges.
In some embodiments, the first disk and the second disk are installed in a vessel. In some embodiments, the vessel comprises a liquid inlet above the first disk, a gas-liquid contacting space, a liquid outlet below the gas-liquid contacting space, a gas inlet above the liquid outlet and below the gas-liquid contacting space, and a gas outlet below the second disk. In some embodiments, the first disk, the second disk, or the first disk and the second disk are caused to rotate by one or more friction drives. In some embodiments, the first disk is caused to rotate by a shaft attached to a center of the first disk. In some embodiments, the second disk is caused to rotate by a driven shaft attached to a center of the second disk. In some embodiments, the first disk is caused to rotate by a driven shaft attached to a center of the first disk and the second disk is caused to rotate by a driven shaft attached to a center of the second disk. In some embodiments, the shafts could be magnetic rotor poles and be driven by electromagnetic coils outside of the vessel.
In some embodiments, the first disk and the second disk are sealed by gaskets or O-rings at inside edges of the vessel.
In some embodiments, the first disk and the second disk comprise identical opening patterns. In some embodiments, the first disk and the second disk comprise identical but mirrored opening patterns. In some embodiments, the first openings are divergent from each other, the second openings are divergent from each other, or a combination thereof. In some embodiments, the first openings are divergent from any line made between a center and an outer edge of the first disk, the second openings are divergent from any line made between a center and an outer edge of the second disk, or a combination thereof. In some embodiments, the first openings are antisymmetric about a center of the first disk, the second openings are antisymmetric about a center of the second disk, or a combination thereof.
In some embodiments, the first disk and the second disk comprise identical thicknesses. In some embodiments, the first disk and the second disk comprise different thicknesses.
This invention was made with government support under DE-FE0028697 awarded by The Department of Energy. The government has certain rights in the invention.
Number | Name | Date | Kind |
---|---|---|---|
3369800 | Nakai | Feb 1968 | A |
Number | Date | Country | |
---|---|---|---|
20190070619 A1 | Mar 2019 | US |