Centrifugal Mesh Mist Eliminator
20200016522 ยท 2020-01-16
Inventors
Cpc classification
F25B43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D46/70
PERFORMING OPERATIONS; TRANSPORTING
B01D1/305
PERFORMING OPERATIONS; TRANSPORTING
B01D45/14
PERFORMING OPERATIONS; TRANSPORTING
B01D39/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
F25B43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D1/30
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A centrifugal mesh mist eliminator generally comprises a cylindrical roll of mesh attached to a vertical rotating shaft positioned within the center of a pressure vessel. A horizontal partition within the pressure vessel forms a barrier seal between the upper and lower portions thereby directing droplet laden gas flow through the rotating mesh. The incoming droplet laden gas stream enters the lower portion of the pressure vessel through an inlet nozzle. The droplet laden gas stream flows through the rotating cylindrical mesh element where it enters the top section of the pressure vessel. Droplets impinge on the mesh and coalesce into larger diameter drops. These larger diameter drops detach from the mesh due to centrifugal force. The detached liquid droplets settle to the bottom of the vessel as their mass is sufficient to overcome the surrounding flow stream drag force. Liquid discharges from the bottom of the vessel through an outlet nozzle while dry gas exits through a top outlet nozzle.
Claims
1. An apparatus for extracting entrained liquid droplets from a gaseous stream, comprising: a mesh mist elimination element attached to a frame; the frame affixed to a shaft, the shaft rotatable mounted in a separator vessel; wherein the shaft, the frame and the mesh mist eliminator element are disposed in the separator vessel, the separator vessel comprising a fluid inlet on one side of a partition disposed in the separator vessel, the separator vessel comprising a fluid outlet on the other side of the partition, the partition in rotatable sealing contact with an exterior of the mesh mist eliminator element; and a motor coupled to the shaft to rotate the shaft and the mesh mist eliminator element.
2. The apparatus of claim 1 further comprising at least one backwashing spray disposed inside the mesh mist eliminator element.
3. A method for extracting entrained liquid droplets from a gaseous stream, comprising: moving the gas stream through a mesh mist elimination element from an exterior of the mesh mist elimination element to an interior thereof; rotating the mesh mist elimination element; and collecting coalesced droplets of the entrained liquid on an interior wall of a separator vessel in which the mesh mist elimination element is disposed.
4. The method of claim 3 further comprising changing a rate of rotating the mesh mist eliminator element correspondingly to a flow rate of the gaseous stream through the mesh mist eliminator element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0023] As a general description of a mist eliminator according to the present disclosure, the mist eliminator comprises a rotating mesh coalescing (mist elimination) element attached to a rotating central shaft. The rotating central shaft may be driven by a motor. Liquid droplets entrained in a gaseous stream aggregate into larger liquid droplets as they impinge on the rotating mesh coalescing element, while the gas flows through the rotating mesh coalescing element. The aggregating liquid droplets migrate through the rotating mesh coalescing element radially outwardly toward the outer periphery of the rotating mesh element where they detach from the mesh coalescing element. During use of the mist eliminator, the detaching droplets are outwardly ejected from the outer periphery of the rotating mesh coalescing element, possessing sufficient mass to overcome the surrounding flowing gas drag force and thereby disengaging from the surrounding flowing gaseous stream.
[0024] The rotating central shaft may comprise an upper seal, e.g., a stuffing box, surrounding the rotating central shaft at the top of a separator vessel through which the central shaft passes. The central shaft may comprise a lower bearing arranged near the bottom of the separator vessel to enable rotation of the central shaft while reducing friction and handling stress experienced by the rotating central shaft.
[0025] The separator vessel comprises an inner partition dividing the separator vessel into an upper section and a lower section. The partition comprises a rotating seal, or a plurality of rotating seals, or a bearing, or a plurality of bearings, or a combined rotating seal and bearing, or a plurality of combined rotating seals and bearings, or a sealed bearing, or a plurality of sealed bearings. The foregoing may provide a sealing contact surface between the static surface of the partition and a rotating surface of the eliminator element. The lower section comprises an inlet through which the incoming gas-liquid stream comprising entrained liquid droplets enters the separator vessel. The gas may then be deflected by a deflector baffle. The upper section receives separated gas exiting the top opening of the mesh eliminator element. Separated gas exits the separator vessel through a top outlet. Liquid exits the separator vessel through an outlet.
[0026] In some embodiments, the rotation speed of the mesh eliminator element may be adjusted to correspond to changes in gas flow rate and/or liquid loading, thereby to maintain separation of the mist from the gas notwithstanding changes in gas flow rate and/or liquid loading.
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[0028] The separator vessel 1 comprises a top section 6 and a bottom section 7. The top 6 and bottom 7 sections of the separator vessel 1 operate under a differential pressure due to the pressure drop across the mesh mist elimination element 2. The top 6 and bottom 7 sections in the present embodiment may be separated by a partitioning flange 8 and a rotary seal 9 secured to the partitioning flange 8. In some embodiments the contacting surface between the mesh mist elimination element 2 and the partitioning flange 8 comprises a bearing, a plurality of bearings, a seal or a plurality of seals, a sealed bearing or a plurality of sealed bearings, or a combination of a bearing and a seal, or a plurality of combined bearings and seals. By providing a sealed contact between the partition 8 and the mesh mist eliminator element 2, the top portion 6 and the bottom portion 7 are pressure isolated other than through the mesh mist eliminator element 2. Gas thus flows through the separator vessel 1 from a region of higher pressure 10 to a region of lower pressure 11 by passing through the mesh mist elimination element 2. Liquid droplets that contact and coalesce on the mesh mist elimination element 2 are detached by the centrifugal force imposed by continually rotating the mist elimination element 2. The detached liquid droplets are larger than the droplets entrained in the inlet two phase gas stream. The detached droplets may be either deflected to the interior of the wall of the separator vessel 1, where they drop down the vessel wall to collect with liquid in the bottom of the separator vessel 1, or they settle out of the gas stream due to their greater mass, which permits them to overcome the surrounding gas flow drag forces experienced within the lower section 7 of the separator vessel 1 and drop to the bottom of the separator vessel 1. Filtered (mist-stripped) gas leaves the mist elimination element 2 through the center top opening of the mist elimination element 2, where it enters the top section 6 of the separator vessel 1. Filtered gas then discharges from the separator vessel 1 through an outlet 12 at the top of the separator vessel 1. Liquid discharges from the bottom of the separator vessel 1 through a bottom outlet 13. The rotatable shaft 3 may be supported at the bottom by a foot bearing 14 and at the top by a seal and bearing combination 15. The shaft 3 may be rotated by a motor 21 connected to the shaft 3.
[0029] In some embodiments, rotation speed of the motor 21 may be adjusted to correspond to the rate of flow of gas into the separator vessel 1. By adjusting the rotation rate of the motor, increased flow of droplet laden gas may be processed by the mist eliminator to maintain substantially full separation of mist from the gas.
[0030] The rotating mesh mist eliminator element 2 comprises a mist eliminator mesh material 16 which may be shaped in the form of a cylinder and affixed to an outer reinforcement element 17, such as a frame. The reinforcement element 17 maintains the shape of the mesh material 16 so that gas can flow therethrough and into the interior of the mist eliminator element 2 for discharge through the outlet 12. The rotating mesh mist eliminator element 2 may comprise an upper disk 2A proximate one longitudinal end shaped in the form of an annular ring so as to engage the rotary seal 9. The upper disk 2A enables passage of gas through the rotating mesh mist eliminator element 2 to the top section 6. The rotating mesh mist eliminator element 2 may comprise a lower disk 2B in the form of a solid plate proximate the other longitudinal end of the rotating mesh mist eliminator element 2. The lower disk 2B stops movement of any fluid through the longitudinal end of the rotating mesh mist eliminator element 2.
[0031] In some embodiments, an internal spray bar or a plurality of internal spray bars 18 may be positioned vertically within the mesh mist eliminator element 2 to permit backwashing when the mist eliminator is used in fouling process services. The spray bar(s) 18 may comprise spray nozzles 18A along the length of the spray bar 18 to enable spraying water or other cleaning liquid to facilitate cleaning the mesh material 16.
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[0039] Although only a few examples have been described in detail above, those skilled in the art will readily appreciate that many modifications are possible in the examples. Accordingly, all such modifications are intended to be included within the scope of this disclosure as defined in the following claims.