Hydrodynamic water-oil separation breakthrough
10300405 ยท 2019-05-28
Inventors
Cpc classification
B01D17/0214
PERFORMING OPERATIONS; TRANSPORTING
B01D21/245
PERFORMING OPERATIONS; TRANSPORTING
E21B43/34
FIXED CONSTRUCTIONS
B01D21/2483
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D17/02
PERFORMING OPERATIONS; TRANSPORTING
B01D21/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An improved water-oil separation apparatus with a separation vessel and associated water leg having internal inlet piping that feeds fluids to an engineered degassing boot, having an engineered degassing boot that is more effective in removing entrained gases from the incoming fluid stream, having an umbrella shaped upper baffle instead of an inverted umbrella shaped upper baffle, having an improved oil collection bucket or weir, having a much improved inlet water spiral distribution apparatus, having an improved water leg design, and having a water leg with a functional height that is externally adjustable to make it easier to regulate the oil-water interface level within the separation vessel.
Claims
1. A separation apparatus comprising: a separation vessel; a tube provided in the separation vessel; inlet piping attached to an inlet disposed along an upper portion of the tube, the inlet piping adapted to introduce a fluid mixture into a separation portion of the vessel where the fluid mixture separates into a gas, which gas collects in a gas layer at a top portion of the separation vessel, and into an oil layer and a water layer, which oil and water layers collect within the separation vessel below the gas layer; an outlet for the water layer provided within the water layer in the separation vessel; a water leg operably associated with the separation vessel; wherein the outlet for the water layer communicates with an inlet of the water leg that regulates a level of interface between the oil layer and water layer within the vessel, and an outlet provided on the water leg for discharging water out of the water leg, wherein the water leg is provided with an inner tube concentrically located within an outer tube and an adjustable height upper end of the inner tribe serving as a flow over weir allowing water entering the water leg from the separation vessel to travel upward within the water leg and crest over the flow over weir to flow downward within the water leg to the outlet provided on the water leg, wherein the water leg includes an internal slip-sleeve that is configured to raise and lower relative to the inner tube, and wherein the water leg includes an internal pipe section attached to the inner tube and the internal slip-sleeve is disposed to raise and lower on the internal pipe section.
2. The separation apparatus of claim 1, further comprising an upper baffle provided within the vessel below the inlet.
3. The separation apparatus of claim 2, further comprising a lower baffle located below the upper baffle within the vessel.
4. The separation apparatus of claim 1, further comprising means for skimming oil off the oil layer provided within the vessel, wherein the means for skimming oil fluidly communicates with an oil outlet for removing the skimmed oil from the vessel.
5. The separation apparatus of claim 1, wherein the adjustable height upper end of the water leg is adjusted in height external to the inner tube and the outer tube of the water leg.
6. The separation apparatus of claim 1, wherein the water leg is external to the vessel.
7. The separation apparatus of claim 5, wherein the water leg includes an external adjuster comprising an external jack screw assembly.
8. The separation apparatus of claim 7, wherein the slip-sleeve is responsive to the operation of the external jack screw assembly.
9. The separation apparatus of claim 7, wherein the external jack screw assembly includes a worm gear mechanism.
10. The separation apparatus of claim 9, wherein the external jack screw includes a hand wheel that is configured to turn the worm gear mechanism.
11. The separation apparatus of claim 10, wherein the worm gear mechanism is attached to the internal slip-sleeve to raise and lower the internal slip-sleeve.
12. The separation apparatus of claim 11, wherein a rod attaches the worm gear mechanism to the internal slip-sleeve.
13. The separation apparatus of claim 12, further comprising a packing gland through which the rod passes, the packing gland sealing the water leg and providing lubrication to the rod.
14. The separation apparatus of claim 1, wherein the internal pipe section is smooth.
15. The separation apparatus of claim 1, wherein the internal slip-sleeve is sealingly disposed on the internal pipe section.
16. The separation apparatus of claim 1, wherein the internal slip-sleeve forms the weir.
17. The separation apparatus of claim 1, further comprising a gas equalization passage that fluidly interconnects a top of the water leg with a top portion of the separation vessel.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
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DETAILED DESCRIPTION OF THE INVENTION
(11) Referring now to the drawings and initially to
(12) As shown in
(13) The internal inlet piping 20 is designed to be preinstalled internally in the vessel 12, and the fluid inlet 24 to the degassing boot 14 and the degassing boot gas outlet 26 and degassing boot gas equalization line 28 connecting the degassing boot 14 and into the top 22 of the vessel 12 are designed to be connected prior to installation of the vessel 12 to avoid the safety hazards of having to install these piping assemblies 20 and 28 in the field at dangerous elevations above OSHA minimums. Installing these piping assemblies 20 and 28 in the factory during fabrication simplifies field installation and eliminates concerns for the installation of field piping at heights. The internal piping also has the advantage of preventing freeze-ups in the colder winter months.
(14) Referring to
(15) The vertical flow diverters 32 provided within the de-gassing boot 14 in association with the fluid inlet 24 spread the liquids out inside the de-gassing boot 14. The liquids then gravity flow down a first inclined baffle or plate 34 provided within the de-gassing boot 14 and at the end of the first inclined baffle or plate 34, the liquids cascade onto an opposing second inclined baffle or plate 34 provided within the de-gassing boot 14 which serves to further thin the stream for even more efficient gas-liquids separation. The degassing boot gas equalizer line 28 connects the degassing boot 14 and the top 22 of the vessel 12, and excess gas accumulating in the top 22 of the vessel 12 and in the degassing boot 14 is removed from the system 10 via a gas vent 36 provided in the top 22 of the vessel 12.
(16) The degassed liquids then flow under the influence of gravity downward within an upper portion 38 of a central tube 40 provided in the vessel 12, as shown by Arrow D, and exit the central tube 40 at a spiral inlet diffuser 42, shown in detail in
(17) The degassed liquids flow through the spiral inlet diffuser 42 which imparts an ever increasing spiral flow path to the liquids as they enter a separation zone 44 of the vessel 12, as shown by Arrow E. This spiral flow path does two things.
(18) First, the spiral flow path slows the flow so that solids contained within the degassed liquids tend to fall out onto a convex top 46 of an umbrella shaped upper baffle 48 that is located just below the spiral inlet diffuser 42. Because the top 46 of the upper baffle 48 is convex, sand and other solids that fall on it do not accumulate to any great extent on the top 46 of the upper baffle 48, but instead tend to roll off of the upper baffle 48 and fall to a bottom 50 of the vessel 12 where they can be periodically removed via a manhole 52 provided in the vessel 12.
(19) Second, the spiral flow path provides sufficient retention time and quiescence to allow oil droplets to disengage from the water within the liquid stream and to migrate upward to an oil-water interface 54, as indicated in
(20) Excess oil is removed from the oil layer 56 and from the vessel 12 by one of two alternate structures: a bucket type oil collector 58, as shown in
(21) As shown in
(22) Alternately, as shown in
(23) After exiting the spiral inlet diffuser 42, as oil is separating and moving upward within the vessel 12, water separates flows downward around the upper baffle 48, as shown in
(24) The lower portion 76 of the central tube 40 is isolated via a separating plate 73 from the upper portion 38 of the central tube 40 through which the incoming flow from the degassing boot 14 enters the vessel 12. Water entering the water outlet openings 78 flows downward through the lower portion 76 of the central tube 40 and out of the vessel 12 at a water outlet 82 provided in the vessel 12, as shown by Arrows H and H. As shown in
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(26) In prior art water legs 16P, the water leg inlet 84P to the water leg 16P was a bottleneck that restricted flow and caused undesirable pressure drop through water outlet piping 90P and the water leg 16P due to the restricting flow area within the innermost pipe 86P.
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(28) Referring to
(29) As shown in
(30) While the invention has been described with a certain degree of particularity, it is manifest that many changes may be made in the details of construction and the arrangement of components without departing from the spirit and scope of this disclosure. It is understood that the invention is not limited to the embodiments set forth herein for the purposes of exemplification, but is to be limited only by the scope of the attached claim or claims, including the full range of equivalency to which each element thereof is entitled.