VORTEX-GENERATING WASH NOZZLE ASSEMBLIES
20180169674 ยท 2018-06-21
Inventors
Cpc classification
B08B9/0433
PERFORMING OPERATIONS; TRANSPORTING
E21B37/08
FIXED CONSTRUCTIONS
B05B1/06
PERFORMING OPERATIONS; TRANSPORTING
B05B1/3402
PERFORMING OPERATIONS; TRANSPORTING
B05B1/34
PERFORMING OPERATIONS; TRANSPORTING
B05B1/08
PERFORMING OPERATIONS; TRANSPORTING
B05B1/1609
PERFORMING OPERATIONS; TRANSPORTING
E21B37/00
FIXED CONSTRUCTIONS
International classification
B05B1/34
PERFORMING OPERATIONS; TRANSPORTING
B08B9/043
PERFORMING OPERATIONS; TRANSPORTING
B05B1/08
PERFORMING OPERATIONS; TRANSPORTING
B05B1/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A wash nozzle assembly for comprising a cylindrical nozzle body component having a proximal end with a demountable coupling device for engaging a supply of high-speed fluid, and a distal end; a cylindrical nozzle tip component having a proximal end for demountable coupling with the distal end of the cylindrical nozzle body, and a conical distal end, said conical distal end having at least one orifice; at least one O-ring mounted onto the distal end of the cylindrical nozzle body; a swirl plate mounted into a juncture of the cylindrical nozzle body and the cylindrical nozzle tip component, the swirl plate having at least one channel therethrough; and a three-dimensional flow interrupter component housed within the cylindrical nozzle tip component. The wash nozzle assembly can be demountable engaged with an end of coiled tubing for cleaning and washing debris from a wellbore.
Claims
1. A wash nozzle assembly comprising: a cylindrical nozzle body component having a proximal end with a demountable coupling device for engaging a supply of high-speed fluid, and a distal end; a cylindrical nozzle tip component having a proximal end for demountable coupling with the distal end of the cylindrical nozzle body, and a conical distal end, said conical distal end having a plurality of downward jetting slots; at least one O-ring mounted onto the distal end of the cylindrical nozzle body; a swirl plate mounted into a juncture of the cylindrical nozzle body and the cylindrical nozzle tip component, the swirl plate having at least one channel therethrough; and a three-dimensional flow interrupter component housed within the cylindrical nozzle tip component.
2. A wash nozzle assembly according to claim 1, wherein the distal end of the cylindrical nozzle tip component as a plurality of orifices therethrough.
3. A wash nozzle assembly according to claim 1, wherein the orifice in the distal end the cylindrical nozzle tip component is elongate in the form of a slot.
4. A wash nozzle assembly according to claim 1, wherein the three dimensional flow interrupter component is in the form of a sphere or an elliptical body.
5. A wash nozzle assembly according to claim 1, wherein the three dimensional flow interrupter component is in the form of a cube, a tetrahedron, a bisphenoid, a parallelepiped, a prism, a pyramid, a frustrum.
6. A wash nozzle assembly according to claim 1, wherein the three dimensional flow interrupter component has an irregular form.
7. A wash nozzle assembly according to claim 1, comprising two or more three dimensional flow interrupter components housed within the cylindrical nozzle tip component.
8. A wash nozzle assembly according to claim 7, wherein at least one three dimensional flow interrupter components has a smaller form or a heavier form or a denser form.
9. A wash nozzle assembly according to claim 1, wherein the cylindrical nozzle body component has a plurality of upward jetting slots and the the wash nozzle assembly additionally comprises: a piston slidingly housed within the cylindrical nozzle body component; a spring stack interposed the piston and the swirl plate, said spring stack comprising a first spring spacer, a spring, and a second spring spacer; a valve stem abutting the piston and slidingly communicable through a orifice provided therefor in the swirl plate; whereby when the piston is in a closed position, a high-pressure fluid flow is directed toward the downward jetting slots in the cylindrical nozzle tip component, and when the piston is in an open position, the high-pressure fluid flow is directed toward the upward jetting slots in the cylindrical nozzle body component.
10. A wash nozzle assembly according to claim 1, wherein the supply of high-speed fluid is delivered through a coiled tubing.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0012] The present disclosure will be described in conjunction with reference to the following drawings in which:
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DETAILED DESCRIPTION
[0028] The exemplary embodiments of the present disclosure generally pertain to wash nozzle assemblies for cleaning sand plugs and/or wax and/or calcium and/or other types of debris from fluid-conveying conduits exemplified by oil well casings, gas well casings, production tubing, wellbores, industrial waste fluid lines, municipal waste fluid lines, and the like.
[0029] According to some aspects, the wash nozzle assemblies disclosed herein produce overlapping laminar sheets of high-speed irrigating fluid flows projecting outward from the assemblies in a 360 degree spray pattern. The exemplary wash nozzle assemblies do not have any externally extending or positioned moving components or rotating components thereby minimizing the potential of stalling of the fluid flow due to blockage by the debris.
[0030] According to some aspects, the exemplary wash nozzle assemblies house in their tip components, one or more unrestrained flow interrupters which continuously cause intermittent asymmetrical blockages of fluid flow in areas of the nozzle assembly thereby producing an egressing fluid flow that is irregularly pulsatile and intermittent.
[0031] According to some aspects, the exemplary wash nozzle assemblies are provided with a vorticity-inducing component to cause one or more of a flow vortex, a swirl flow, and a helical flow of highly pressurized high-speed irrigation fluid within and out of the wash nozzle assemblies. It is within the scope of this disclosure for the high-speed fluid flow through the wash nozzle assemblies to concurrently induce vibration of the entire wash nozzle assemblies. Some aspects of the present disclosure relate to methods for controlling and or changing the rotation direction of high-speed fluid projected out of the wash nozzle assemblies, for example, by reconfiguring the components within the wash nozzle assemblies, or by modulating the fluid flow pressure through the wash nozzle assemblies.
[0032] The exemplary wash nozzle assemblies do not have any externally mounted fluid drive or fluid directing components, and function by modulating the rate of fluid flow into and through the wash nozzle assemblies in combination with the flow interrupter components and/or the vorticity-inducing components to controllably modulate the 360 degree high-speed outward projection of irrigating fluid from the wash nozzle assemblies into target areas within the coiled tubing. The exemplary wash nozzle assemblies direct irrigating fluid over the entire circumference of the tube or wellbore. Accordingly, the amount of deployment-recovery-repositioning cycles required to thoroughly clean a tube or well bore is considerable reduced. Furthermore, the flow interrupter components that generate the intermittent, pulsing high-speed fluid flow, reduce the volumes of water required for washing processes and the bending fatigue on the coiled tubing is reduced.
[0033] Additionally, the intermittent, pulsing high-speed fluid flow directed over the entire circumference allows the tube or wellbore to be thoroughly cleaned at lower fluid pressures and fluid flow rates than static jet wash nozzles. This reduces pressure fatigue on the coiled tubing.
[0034] An exemplary wash nozzle assembly 50 is shown in
[0035] The nozzle body component 1 (
[0036] The wash nozzle tip component 5 is approximately cylindrical with a conical tip at its distal end. The wash nozzle tip component 5 has an internal chamber in which may be housed one or more flow interrupter component 4 (
[0037] Mounted between the nozzle body component 1 and the wash nozzle tip component 5 is a swirl plate 3 (
[0038] The end of the wash nozzle tip component 5 is conical for the purpose of centering the wash nozzle assembly 50 within the casing of the wellbore and to allow the wash nozzle tip component 5 to be impaled into a sand plug or other such debris. The wash nozzle tip component 5 is robust and tolerant of mechanical damage. The wash nozzle tip component 5 has very thin downward jetting slots machined in the conical end at multiple angles from the longitudinal axis. Additionally, the wash nozzle tip component 5 may have orifices such as a circular profile hole at the tip. Irrigation fluid exemplified by pressurized water and acid solutions, exits the wash nozzle through these jetting slots and holes. Pressurized fluid exits each of the slots in a stream shaped like a fan or sheet. This results in a forward jetting stream and a high-pressure fluid stream that is non-perpendicular to the tubing wall. The slots each cover an arc of the circumference of the wash nozzle tip component 5. Preferably, the arcs overlap such that the entire circumference of the wash nozzle tip component 5 produces a plurality of laminar fluid sheets. For example, there may be three slots equally spaced around the circumference and each covering an arc of greater than 120 degrees of the circumference. Preferably the slots are angled to the longitudinal axis of the wash nozzle such that a vortex of fluid is generated as the fluid exits the wash nozzle. Optionally, the slots are angled to induce rotation in the fluid in the same direction as the swirl plate 3. Optionally, the slots are angled to optimize the vortex generation, for example by angling at 45 degrees to the longitudinal axis of the wash nozzle with similarly oriented 45 degree channels in the swirl plate 3. Preferably the fluid is spun in a counter clockwise rotation as to prevent the nozzle from unthreading from the nozzle body component 1. The fluid vortex generated outside the wash nozzle and inside the tubing aids in well cleaning as debris removed from the tubing wall impacts remaining debris.
[0039] The flow interrupter components 4 are moved within the wash nozzle tip component 5 by the fluid flow and will occasionally block the inner extent of the wash nozzle tip component 5 slots. This briefly reduces or stops the fluid flow exiting the wash nozzle in that region. Therefore the fluid flow exiting the wash nozzle at a particular point is pulsatile or intermittent. This aids in dislodging sand or debris by varying the force of the fluid stream that impacts any particular area of sand or debris. The flow interrupter components 4 may be spherical within a smooth chamber in the wash nozzle tip component 5, such that the flow interrupter components 4 move with a predominantly smooth, constant rotation speed and the resulting fluid stream from the wash nozzle has a regular, periodic variation. For example, the flow interrupter components 4 may be ball bearings or alternatively, be made from plastic.
[0040] In some applications, it may be preferred that fluid stream from the wash nozzle is random or aperiodic and covers a broad range of periodic frequencies. This may be preferred to reduce standing waves or to induce resonance in the debris with a broad range of frequencies. As exemplified in
[0041] Alternatively, as exemplified in
[0042] Alternatively, as shown in
[0043] Once assembled, the exemplary wash nozzle assembly 50 is installed onto a coiled tubing connector already attached to the coiled tubing, and is inserted into the casing of a wellbore. The device is lowered or pushed by the coiled tubing to the vicinity of the region of the wellbore to be cleaned. Irrigation fluid or cleaning fluid such as pressurized water, acid or nitrogen is pumped through the coiled tubing and enters the wash nozzle through the nozzle body component 1. The fluid is spun in a counter clockwise rotation as to prevent the wash nozzle tip component 5 from unthreading from the nozzle body component 1. As the flow interrupter components are spun inside the wash nozzle tip component 5 and momentarily block the flow from exiting the wash nozzle tip component 5. The result is a pulsated jet stream with random frequencies which will also aid in the cleaning operation. O-rings 2 are placed in the thread reliefs of the nozzle body component 1 and the wash nozzle tip component 5 to prevent the removed well debris from contaminating the threads and possibly damaging the tool.
[0044] Another embodiment of wash nozzle assembly 60 according to this disclosure is shown on
[0045] The exemplary flow interrupter components are field-serviceable and the wash nozzle tip component 5 can be unthreaded to remove the flow interrupter components and to insert replacement flow interrupter components. This can be used to change the characteristics of the fluid flow, for example by switching from periodic to random pulses, or by adding or removing vibration of the wash nozzle.
[0046] There may be cases where the flow interrupter components are not available or are lost or are damaged. In these cases, the flow interrupter components can be replaced in the field with any objects that can be placed inside the wash nozzle and spun in the fluid flow. For example, suitable objects include ball bearings, nuts, players dice, or small rocks. If the flow interrupter components fail to spin inside the wash nozzle. The flow will still result in a generated vortex below the tool in the tubing. It is also to be noted that non-similar-sized flow interrupter components and/or flow interrupter components having different densities will create an unbalanced rotation which will help aid progressing the tools through softer debris such as sand.
[0047] Since coiled tubing is manufactured in many different sizes ranging from 0.5 to 5 outside diameter, it is preferable for coiled tubing tools to have a similar same diameter as the coiled tubing within which they are to be deployed. The common use of any particular size is also based on supply/demand by the service providers' clients. The most commonly used sizes of coiled tubing and tools are exemplified by: (i) minimum 1.25 Outside Diameter, (ii) maximum 3.25 Outside Diameter, and (iii) particularly suitable is arrange from about 1.5 to about 2.875 Outside Diameter. While any type of material can be used to construct the exemplary wash nozzle assemblies disclosed herein, the following material Yield Tensile Strength (YTS) are particularly suitable:
[0048] Nozzle body component: [0049] Min Yield Tensile Strength (30,000 psi) [0050] Max Yield Tensile Strength (unlimited to material development) [0051] Preferred/Common Yield Tensile Strength (95,000 psi)
[0052] Wash nozzle tip component: [0053] Min Yield Tensile Strength (30,000 psi) [0054] Max Yield Tensile Strength (unlimited to material development) [0055] Preferred/Common Yield Tensile Strength (95,000 psi)
[0056] O-rings: [0057] VITON 75 Durometer (VITON is a registered trademark of Lautsprecher Teufel GmbH, Berlin, Fed. Rep. Germany)
[0058] Swirl plate component: [0059] Min Yield Tensile Strength (30,000 psi) [0060] Max Yield Tensile Strength (unlimited to material development) [0061] Preferred/Common Yield Tensile Strength (95,000 psi)
[0062] Flow interrupter components [0063] Stainless Steel 304/316 [0064] UHMW, PTFE
[0065] It is within the scope of the present disclosure to incorporate additional features into the exemplary wash nozzle assemblies disclosed herein. For example, the swirl plate component may be designed to rotate within the nozzle body component during fluid flow therethrough to facilitate a pulsated flow egressing from the wash nozzle tip component. Another example is to provide a second swirl plate within the wash nozzle assembly that is spaced-apart from the first swirl plate, wherein the second swirl plate has one or more channels angled to induce a clockwise rotation of the cleaning fluid plus one or more channels angled to induce a counter-clockwise rotation of the cleaning fluid. The reversing swirl plate will rotate about the longitudinal axis by, for example, 90 degrees every time a fluid pressure is applied.