Punch-in gas lift valve with improved geometry
The compact unloading valve with a valve float and biasing mechanism addresses issues of size and flow efficiency in gas lift systems, ensuring reliable fluid flow and durability by sealing at maximum rates and preventing reverse flow, suitable for retrofitting existing wellbore tubulars.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- SHELL INTERNATIONALE RESEARCH MAATSCHAPPIJ BV
- Filing Date
- 2025-10-16
- Publication Date
- 2026-04-30
AI Technical Summary
Existing gas lift valves in wellbore tubulars are too large for retrofitting, create re-circulation zones leading to reduced mass flow, and generate high stress, shock waves, and backflow, necessitating improvements for efficient fluid flow and durability.
A compact unloading valve with a valve float, inlet and outlet ports, and a biasing force mechanism that seals at maximum flow rates, featuring filleted openings and conical ends to enhance fluid flow, and includes a flapper for additional leak prevention.
The unloading valve allows efficient fluid flow up to a predetermined rate, prevents reverse flow, reduces shear stress, and extends valve life, enabling retrofitting without replacing production tubing and minimizing maintenance costs.
Smart Images

Figure EP2025079883_30042026_PF_FP_ABST
Abstract
Description
PUNCH-IN GAS LIFT VALVE WITH IMPROVED GEOMETRYFIELD OF THE INVENTION
[0001] The invention relates to a gas lift valve. More particularly, the valve includes improved geometry to improve fluid flow through the valve.BACKGROUND TO THE INVENTION
[0002] Annular gas lift is the most common method of getting gas into a liquid flow stream through the bore of a wellbore tubular, such as a production tubular. Lift gas is injected through the wellhead (or a gas lift-enabled tree in a subsea well) and typically into the production (‘A’) annulus. The lift gas goes from the annulus into the tubing through a gas lift valve, which is typically an orifice valve. Conventionally, the gas lift valve sits in a mandrel associated with the wellbore tubular, such as a side pocket mandrel. Mandrels offer minimum restriction to tubing flow and can be round or oval. The mandrels are normally a one-piece machined component in the production tubing without welds. If such mandrels are not already provided during the completion of the well, then a production tubing may have to be replaced to retrofit gas lift valves.
[0003] It is further known to install so-called unloading valves at various intermediate depths, to facilitate kicking off a gas lift. These valves normally open and close due to changes in tubing or casing pressure. With the use of unloading valves the wellhead injection pressure of the lift gas can be kept below a certain desired value by reducing the hydrostatic head in the tubing stage by stage. The technology for getting the valves to sense and react to either the tubing or the casing pressure relies on either a nitrogen charge and / or a spring to provide the closing force.
[0004] The known unloading valves are generally too large to retrofit a tubing rather than to replace the tubing. Known valves can create a re-circulation zone at the inlet leading to reduced mass flow of fluid and velocity. Certain geometries can create a higher stress and impact on the valve. And, certain valves can create higher shock waves, backflow and exit velocities that lead to an increasing impinging force on the fixture body through which it was punched. Therefore, improvements are desirable.SUMMARY OF THE INVENTION
[0005] In accordance with a first aspect of the present invention, an unloading valve for a gas lift system in a wellbore tubular is disclosed. The valve includes a valve float, an inlet port and outlet port. The valve float has a pointed end to reduce shear stress on the float. The inlet port has an inlet valve seat to receive the valve float whereby sealing the inlet port and further includes filleted or chamfered openings to improve fluid flow. The outlet port has an outlet valve seat to receive the valve float whereby sealing the outlet port when a flow exceeds a maximum flow and further includes conical shaped ends to improve fluid flow. The valve float is movably arranged in the flow path between the inlet port and the outlet port and is bidirectionally movable between the inlet valve seat and the outlet valve seat. Furthermore, a biasing force acts on the valve float directed towards the inlet valve seat.
[0006] In accordance with another aspect of the invention, there is provided a gas lift system including a borehole in an earth formation; a wellbore tubular arranged with the borehole, comprising a tubular bore, and whereby an annular space surrounds the wellbore tubular which annular space is accessible for fluid flow; and one or more unloading valves according to the first aspect arranged at increasing depths within a wall of the wellbore tubular.BRIEF DESCRIPTION OF THE DRAWINGS
[0007] The drawing figures depict one or more implementations in accordance with the present teachings, by way of example only, not by way of limitation. In the figures, like reference numerals refer to the same or similar elements.
[0008] Fig. 1 shows an example of an unloading valve of the invention;
[0009] Fig. 2 shows another example of an unloading valve of the invention;
[0010] Fig. 3 shows a graph with on the x-axis spring force at 3.5 mm displacement and on the y-axis flow rate just prior to closing of the unloading valve;
[0011] Fig. 4a to Fig. 4g schematically illustrate a gas lift system incorporating unloading valves during successive stages of a kick-off procedure;
[0012] Fig. 5 shows a photograph of an unloading valve punched into a wellbore tubular;
[0013] Fig. 6 shows a plan view inside the housing along the longitudinal direction of the unloading valve;
[0014] Fig. 7a shows a front view of another example of an unloading valve of the invention;
[0015] Fig. 7b shows a cross sectional view B-B of the unloading valve of Fig. 7a;
[0016] Fig. 7c shows a rear view of the unloading valve of Fig. 7a.
[0017] Fig. 8a shows a front view of another example of an unloading valve, according to an example embodiment of the present invention;
[0018] Fig. 8b shows a cross sectional view A-A of the unloading valve of Fig. 8a with a valve float in an open position, according to an example embodiment of the present invention;
[0019] Fig. 8c shows a rear view of the unloading valve of Fig. 8a, according to an example embodiment of the present invention;
[0020] Fig. 8d shows a cross-sectional view B-B of the unloading valve of Fig. 8a with the valve float in a closed position, according to an example embodiment of the present invention;
[0021] Figs. 9A and 9B are fluid flow diagrams, according to an example embodiment of the present invention;
[0022] Figs. 10A and 10B are fluid flow diagrams, according to an example embodiment of the present invention; and
[0023] Figs. 11 A and 11B are fluid flow diagrams, according to an example embodiment of the present invention.
[0024] Figs. 12Aand 12B are diagrams depicting oblique reflected shocks and total shock loading, according to an example embodiment of the present invention.
[0025] Fig. 13a shows a side view of another example of an unloading valve with a flapper in an open position, according to an example embodiment of the present invention;
[0026] Fig. 13b shows a rearview of the unloading valve of Fig. 13a, according to an example embodiment of the present invention;
[0027] Fig. 13c shows a cross-sectional view A-A of the unloading valve of Fig. 13b, according to an example embodiment of the present invention;
[0028] Fig. 13d shows a side view of the unloading valve of Fig. 13a with the flapper in the closed position, according to an example embodiment of the present invention;
[0029] Fig. 13e shows a rear view of the unloading valve of Fig. 13d, according to an example embodiment of the present invention; and
[0030] Fig. 13f shows a cross-sectional view B-B of the unloading valve of Fig. 13d, according to an example embodiment of the present invention.DETAILED DESCRIPTION OF THE INVENTION
[0031] The person skilled in the art will readily understand that, while the detailed description of the invention will be illustrated making reference to one or more embodiments, each having specific combinations of features and measures, many of those features and measures can be equally or similarly applied independently in other embodiments or combinations.
[0032] The present disclosure provides an unloading valve, which allows fluid flow in a flow direction through the unloading valve up to a predetermined maximum flow rate, and which blocks fluid flow in a blocking direction. Such an unloading valve, which closes upon a predetermined maximum flowrate, is so simple in design compared to pressure-regulated valves, that it can be embodied small enough so that it can be integrated within in an essentially cylindrical or slightly frustoconical housing, which can be punched through the tubing wall with a punch tool. It will be shown below that this way an entire gas lift system can be retrofitted into a production tubing that is already installed in the well, without having to remove the production tubing from the well.
[0033] The present disclosure also provides an unloading valve for a gas lift system in a wellbore tubular that includes a valve float, an inlet port and outlet port. The valve float has a pointed end to reduce shear stress on the valve float. The inlet port has an inlet valve seat to receive the valve float whereby sealing the inlet port and further includes filleted or chamfered openings to improve fluid flow. The outlet port has an outlet valve seat to receive the valve float whereby sealing the outlet port when a flow exceeds a maximum flow and further includes conical shaped ends to improve fluid flow. The valve float is movably arranged in the flow path between the inlet port and the outlet port and is bidirectionally movable between the inlet valveseat and the outlet valve seat. Furthermore, a bias force act on the valve float directed towards the inlet valve seat.
[0034] Furthermore, providing an additional barrier, such as a flapper, provides a robust prevention of leaks into the annulus leading to sustained casing pressure. A leak can lead to shutting down of the well if the annulus pressure limit exceeds a maximum allowable surface pressure operating limit. In such case, intervention is needed to rectify the leak, which is costly and leads to additional maintenance costs. An additional barrier also elongates the life of the valve and assures that if one barrier fails, a catastrophe does not occur. A valve float provides a first barrier while a flapper provides a second barrier to reverse flow through the valve.
[0035] Fig. 1 shows a cross section of one embodiment of a loading valve 29. It comprises a valve float 10 movably arranged in a housing 24. One side of the housing 24 is provided with an inlet port 12 comprising an inlet valve seat 14. The inlet valve seat 14 is arranged to receive the valve float 10, whereby sealing the inlet port 12. The inlet port 12 and the inlet valve seat 14 may suitably be integrated into an inlet cap 13 that fits on the housing 24. It further comprises an outlet port 16 comprising an outlet valve seat 18. The outlet valve seat 18 is also arranged to receive the valve float 10, whereby sealing the outlet port 16. A fluid flow path 20 extends between the inlet port 12 and the outlet port 16, and said flow direction is defined from the inlet port 12 to the outlet port 16, and wherein the valve float 10 is movably arranged in the flow path between the inlet port 12 and the outlet port 16. The valve float 10 is bidirectionally movable between the inlet valve seat 14 and the outlet valve seat 18. A bias spring 22 acts on the valve float 10, to impose said bias force on the valve float 10. The bias force is directed towards the inlet valve seat 14, and it increases as the valve float 10 is positioned closer to the outlet valve seat 18. In case of a spring, Hooke’s law applies.
[0036] Fluid cannot pass through the unloading valve along the fluid flow path 20 when the valve float 10 is seated the inlet valve seat 14 or the outlet valve seat 18. Only when the valve float 10 is in an intermediate position between the inlet valve seat 14 and the outlet valve seat 18 the fluid can pass along the fluid flow path 20 through the unloading valve.
[0037] When in rest, the spring 22 just pushes the valve float 10 into the inlet valve seat 14. This way, when the pressure on the inlet port exceeds the pressure on the outlet port, the force exerted by the fluid in the inlet port can overcome the force exerted on the valve float by the fluid in theoutlet port plus the residual bias force induced by the spring 22. The fluid will start to flow through the flow path 20 and will exert a force on the valve float 10, which typically increases with increasing flow rate. The force may comprise a hydrodynamic force and a force caused by an additional pressure drop over the valve float. The position of the valve float 10 will thus be an equilibrium between the bias force directed towards the inlet valve seat 14 and the net force directed towards the outlet valve seat 18, and as a result it is expected to shift towards the outlet valve seat 18 with increasing flow rate 18. Once the flow rate reaches a certain, predetermined, maximum flowrate the valve float 10 will contact the outlet valve seat 18 and flow will be completely blocked. The blocking will persist as long as the fluid pressure in the inlet port is sufficiently high to overcome both the fluid pressure in the outlet port and the bias force.
[0038] Reverse flow, directed from the outlet port 16 to the inlet port 12, will always be blocked as in that case the hydrodynamic force is directed in the same direction as the bias force.Therefore, the unloading valve described herein functions as a modified check valve and allows fluid to flow in the flow direction as long as the flow rate remains below a certain predetermined maximum, and blocks flow in the opposite direction. When the flow rate exceeds the maximum, the unloading valve closes in the flow direction. A conventional check valve, on the other hand, never closes in the flow direction.
[0039] Referring now to Fig. 2, there is shown a cross section of another embodiment. In this case the inlet cap is smaller in diameter than the housing 24’ so that it sinks into a recess provided at a head surface on the housing 24’. Furthermore, the outlet port 16’ is provided with one or more outlet channels 27’, which may act as flow restrictions to increase the fluid pressure in the outlet port 16. In the embodiment of Fig. 2, the outlet channels 27 are smaller diameter channels suitably provided in an outlet cap 23. The spring 22 may also be held by the outlet cap 23. The operation of the valve float is the same as explained above.
[0040] In each of the embodiments, the valve float 10 may suitably by made out of a hard material, such as a carbide or a nitride. The examples shown herein employ silicon nitride (SislSU). The housing 24 and / or the caps (13,23) are preferably made out of an alloy that provides a high yield point and high toughness. Prototypes tested herein were made out of alloy Premium 1.2709ESU commercially available from, for example, Abrams Premium Steel, Osnabriick, Germany. This is a X3NiCoMoTil8-9-5 alloy. The spring 22 may be made of springwire, such as Monel 400 which is a nickel-coper alloy which is suitable for use in a well environment.
[0041] The unloading valves described above have been manufactured in applicant’s laboratory with cylindrical housing 24 having an outer diameter as small as 20 mm. The axial length can be selected in relation to the wall thickness of the tubing side wall. In one particular example the axial length was about 16 mm and this was sufficient to house both the spring 22 and a spherical valve float 10 having a 7 mm diameter which can move 3.5 mm between the inlet valve seat 14 and the outlet valve seat 18. While the invention is not limited by this specific sizing, it does demonstrate how small these unloading valves can be. For the purpose of a punchable valve, a larger diameter helps to manage the compression stress in the valve housing. However, the maximum diameter of the housing is practically limited by the maximum force that the punch tool is capable of delivering. Preferably, the maximum diameter is 30 mm, more preferably 25 mm. The minimum diameter of the housing is limited by the maximum compressive strength of the housing. However, there are also other functions that tend to pose more demands on the minimum diameter than the risk of crushing the unloading valve, as the unloading valve needs to house a valve float which is durable against erosion, and the housing needs to provide enough internal space for the flow path as well.
[0042] Flow tests were done at room temperature (approx. 20 °C), to verify the behavior of the unloading valve as shown in Fig. 2. This valve had eight flow restricting outlet channels 27, evenly distributed about the circumference of the outlet cap 23 and each having an inner diameter of 1.7 mm each. However, the spring wires partly overlapped the apertures of these flow restrictions leaving a smaller effective flow area. Compressed air at a pressure of 6 bar (gauge) was passed through a ball valve fed into the inlet port of the unloading valve. The flow rate was measured downstream of the outlet port. The pressure at the outlet port was atmospheric (0 bar gauge). With each test run, the ball valve was slowly opened in small increments, to the point that the unloading valve closed. The valve closing was audible, and visible as a sharp drop in flow rate to zero. Using this methodology, the mass flow rate immediately prior to closing of the unloading valve was determined for a series of springs with different stiffnesses. Springs were changed between runs, such that the bias force acting on the valve float when the valve float was seated in contact with the outlet valve seat was different for each spring. The traveldistance of the valve float from the inlet valve seat 14 to the valve float seated in the outlet valve seat 18 was 3.4 mm for each case.
[0043] The data points in Fig. 3 show the thus measured mass flow rate just prior to closure of the unloading valve, as a function of the square root of the maximum force (assumed to be equal to the spring bias force with the valve float seated in the outlet valve seat displacement). The line shows a least squares fit (forced through the origin of the plot) with a coefficient of determination R2= 0.9965, which is consistent with the well-known drag equation:Fd = V2Cdp D v2wherein Fa is the drag force, Ca is a drag coefficient, p is the specific weight (density) of the fluid, D the projected cross-sectional area of the float (assumed in this case to be spherically shaped), and v is the velocity of the fluid. This measurement shows that the drag coefficient in a particular unloading valve configuration can be calibrated experimentally for the flow regime of interest, which then allows to select a spring stiffness that matches a certain maximum flow rate.
[0044] Figs. 4a to 4g illustrate a gas lift system which includes unloading valves as described above. The successive panels illustrate successive stages of a kick-off procedure. Starting with Fig. 4a, there is shown a wellbore tubular, typically here depicted in the form of a production tubing 42, arranged within a casing 43 (typically the “production casing” which is the deepest reaching casing. An annulus 41 (typically referred to the “A annulus”) extends between the wellbore tubular and the casing 43. The casing 43 and the production tubing 42 both reach into a borehole in an earth formation 45. At the top, the production tubing 42 may be connected to a downstream production facility, including for example a separator (not shown). The annulus 41 may be connected to a gas inlet compressor (not shown) and valve works (not shown). The production tubing 42 is typically not cemented, thus leaving the annulus 41 available for fluid flow. A production packer 47 is typically provided to isolate the annulus 41 from formation fluids that may enter the borehole from a reservoir rock 49 via perforations in provided in the casing 43. The skilled person will understand that this is a highly schematical representation.
[0045] A plurality of unloading valves 44 are provided at increasing depths in the production tubing 42. They pierce through the side wall of the production tubing 42 to establish a valved fluid communication through the side wall of the production tubing 42 with flow direction from the annulus 41 into the bore 46 of the production tubing. A binary check valve 48 is arranged inthe wellbore tubular 42 at a depth below the one or more unloading valves 44, for example just above the production packer 47. The binary check valve 48 allows fluid flow from the annular space 41 into the tubular bore 46 at any flow rate. The binary check valve 48 blocks flow in opposite direction.
[0046] Initially, the production tubing 42 and the annulus 41 may be filled with water. All unloading valves 44 and the binary check valve 48 may be closed due to spring bias.
[0047] Kicking off a gas lift involves allowing compressed gas to enter the annulus 41 at the top. Referring to Fig. 4b, this typically results in opening of the unloading valves 44 and the binary check valve 48, as the gas pressure will force the water level 40 in the annulus 41 downward. The gas pressure will drive displacement of the water from the annulus 41 into the tubing bore 46. In this phase, the drag force on the valve floats in the unloading valves 44, or at least the least deep one, must be kept low enough to avoid the closing of the unloading valve. As the gas pressure increases the water level 40 in the annulus 41 will go down more. The hydrostatic column in the tubing bore 46 will push back at full weight, so to force the water level 40 down, more gas pressure is needed. However, after water level 40 passes the shallowest unloading valve, gas will start to inject from the annulus 41 into the water column in the tubing bore 46. This is shown in Fig. 4c. As a result, the density of the liquid in the tubing bore 46 above the highest unloading valve will decrease and the hydrostatic load will decrease as well. Therefore, with the same gas pressure in the annulus 41 it will be possible to bring the water level 40 down further. Part of the gas that is admitted into the annulus will pass through the unloading valve and part will be available to create more dry volume in the annulus 41. This is shown in Fig. 4d. It is important that the maximum flow rate of the open unloading valve (i.e. the maximum drag force) is not exceeded, to ensure that the gas continues to be injected into the tubing bore 46.
[0048] Fig. 4e shows the situation where the water level 40 has reached the second unloading valve, which now also starts to function as a gas injection point into the tubing bore 46. After this has occurred, as shown in Fig. 4f, the least deep positioned unloading valve may close due to the flow rate exceeding the predetermined maximum flow rate for that unloading valve. As long as at least the next unloading valve in line is admitting gas into the tubular bore 46, the process continues, and successively deeper unloading valves will take over the role of admitting gas into the tubular bore 46 until the final deepest binary check valve 48 is reached. By adding moreunloading valve at a single depth, the injection rate of gas into the tubing bore 46 at a certain depth can be increased, without increasing the flow rate per unloading valve. Then the entire liquid column in the tubing bore 46 is gas lifted. At that point, the hydrostatic pressure in the tubing bore 46 should be sufficiently low for new formation fluids to enter the wellbore.
[0049] In operation, the gas lift system if fully self-controlled, and the proper functioning as described above requires selecting the correct spring stiffness and numbers of unloading valves at each depth, to make sure that unloading valves do not close prematurely by prematurely exceeding predetermined maximum drag forces in the unloading valves. At the same time, one would like the less deep unloading valves to close when deeper injection points have been reached in order to make more gas available for injection at deeper levels. The one or more outlet channels 27 may help to reduce the velocity particularly of liquids and other dense fluids, compared to gases. This helps to avoid premature closing of unloading valves which are still below the water level 40.
[0050] Also, the interspacing between successive depths for successive groups of unloading valves is a free parameter to be tuned. A full design should be prepared in advance. As the behavior of the unloading valves can be characterized empirically and / or by drag modelling, the design of the entire gas lift system can be modelled with fluid flow models.
[0051] The unloading valves 44 will stay closed as the gas pressure in the annulus 41, at every depth, is necessarily higher than the pressure in the tubing bore 46 as weight of the gas column in the annulus at every depth is less than the weight of the gas / liquid mixture inside the tubing bore 46. The gas pressure at the depth of the binary check valve 48 is necessarily equal to the hydrostatic pressure of the entire fluid column in the tubing bore 46 above the final binary check valve 48 injection point, and as the weight of the gas in the annulus 41 relatively low it means the pressure at the top (at surface) in the annulus 41 is almost as high (in any case, much higher than the pressure in the production tubing 42).
[0052] As mentioned above, the complete gas lift system can be retrofitted. Suitably, the unloading valves and also the binary check valve may be placed in an existing wellbore tubing 42 using a punch tool. A variation of punch tools has been described in literature, which may be, or may be modified to become, suitable for installing these valves. Reference is made to WO 2020 / 229440 Al; WO 2021 / 080434 Al; US 2,381,929; and US 2,544,601 which show variousnon-limiting examples. Another relevant punch tool is described in WO 2023 / 83946 Al. Such tools may be run rigless, for example on a wireline a slickline, a coiled tubing, or an e-line.
[0053] The punch tool may be run into the tubular bore 46 to a desired depth. At such depth, the punch tool may be activated to force (drive) the unloading valve 44 and / or the binary check valve 48 into the side wall of the wellbore tubular 42. The flow direction of the unloading valve 44 and / or the binary check valve 48 should allow a gas lift fluid flow from the annular space 41 into the tubular bore 46, but block return flow from the tubular bore 46 into the annulus 41. The punch tool may subsequently be removed from the tubular bore 46, while leaving the unloading valve 44 and / or the binary check valve 48 behind in the tubular wall.
[0054] Referring again to Figs. 1 and 2, the unloading valve 44 may comprise one or more receptacles 26, for receiving shear pins to mount the unloading valve 44 on a punch tool. The housing 24 may be essentially cylindrical, so that it can be punched in the tubing from the inside. However, a small taper 11 (sometimes referred to as “chamfer” or “bevel”) may be applied to part of the cylindrical side wall of the valve housing 24 (such as shown in Fig. 2) and / or the inlet cap 13 (shown in Fig. 1), to provide a frustoconical shape. The front face 29 of the unloading valve thus has a slightly smaller area than the cross-sectional area along the cylindrical part of the body 24. The effect of this is that a slightly smaller hole is punched out of the tubular wall and that a slightly oversized part of the housing is then forced in the smaller hole to secure the valve more rigidly in the tubular side wall. The front face 29 at inlet side of the valve is preferably in essence flat, so that the punch pressure is distributed over a significant area available on the valve allowing the tubing wall material to shear at the edges of the flat surface.
[0055] Fig. 5 shows a photograph of an unloading valve as depicted in Fig. 2 above (20 mm diameter; 16 mm length) after punching into a 4.5 inch (approx. 11.43 cm) outer diameter wellbore tubular 42 of 17 Ib / ft (approx. 25 kg / m) Pl 10 carbon steel. The corresponding wall thickness is about 9.6 mm. The front face 29, including the inlet cap 13, of the valve housing 24 can clearly be seen, as well as the valve float 10. The wall piece 35 that has been punched out is also included in the photograph, which demonstrates the nice clean cut as punched out by the chamfered front face 29 of the valve housing 24.
[0056] Collapse tests were performed in the laboratory. A 20-mm diameter valve with a small chamfer of 0.5 mm (reduction in radius, i.e. the diameter of the flat inlet surface was 1.0 mmsmaller than the diameter of the cylindrical part of the housing 24) collapsed at push back force corresponding to a pressure differential of 45 MPa. As a comparison, the collapse rating of the wellbore tubular is 117 MPa. The same size valve with a larger chamfer of 1.5 mm collapsed at 175 MPa. A clear benefit of the chamfer is observed. Without wishing to be limited by theory, it is suggested that the chamfer causes a slightly smaller hole to be created, by shear in the tubular wall, and that the full diameter cylindrical part of the housing is then inserted in a de-facto slightly undersized perforation whereby some radial elastic strain around the housing 24 is induced, which holds the valve housing 24 better in place. The chamfer size can be optimized to maximize push back collapse properties, as it may vary with type and size of wellbore tubular and with size of the valve housing. The chamfer can be applied to any type of punch-in valve, including the unloading valve 44 and / or the binary check valve 48.
[0057] Suitably, the valve float 10 is slidingly engaged within the valve housing 24 to restrict lateral movement of the valve float 10 within the valve housing 24. Fig. 6 shows a view along the longitudinal axis (perpendicular to the viewing plane) inside the valve housing 24 with the inlet cap removed. This can be achieved for example by shaping the internal space of the valve housing 24 with internal longitudinally oriented ribs 25, which confine the valve float 10 laterally, while allowing longitudinal movement between the inlet valve seat and the outlet valve seat (not visible in the view of Fig. 6). flow paths 20 between the inlet valve seat and the outlet valve seat extend between the ribs 25. A tolerance of 0.1 mm or thereabouts between the valve float 10 and the ribs 25 suffices to allow sufficient space for the valve float 10 to move in the longitudinal direction. This has proven to reduce lateral nuisance vibrations of the valve float 10 induced by the fluid flow. The present example employs three ribs 25, but fewer or more ribs can be used. Alternatively, a central sliding pin provided on the longitudinal axis of valve housing 24 may be used, in which case the valve float 10 may be provided with a through bore through which the sliding pin can extend to guide the valve float.
[0058] Figs. 7a to 7c show an embodiment, wherein a central sliding pin 28 is provided in the form of a tubular piece, which encloses the bias spring 22. The valve float 10 has a bore receptacle 30, which is telescopically in slidable engagement 31 with the central sliding pin 28. As currently shown in Fig. 7b, the bias spring 22 is compressed (loaded) and the valve float 10 is in sealing contact with the outlet valve seat 18. In rest, the bias spring 22 would push the valve float 10 in sealing contact with the inlet valve seat 14. Fluid flow path 20, between the inlet port12 and the outlet port 16, extends in an annular cavity formed around the valve float 10 and the central sliding pin 28. In this example, the outlet port 16 has a toroidal (ring) shape, and is in communication with one or more outlet channels 27 (in this particular example three are shown, but any number can be used). Due to the bias spring 22 being enclosed, it is shielded from fluid flowing along the fluid path 20 from the inlet port 12 to the outlet port 16 and thereby the flow of the fluid is less impeded and disturbed which makes this embodiment even more reliable.
[0059] Figs. 8a to 8d show another example embodiment of an unloading valve 829. Fig. 8a is a front view of the unloading valve 829, while Fig. 8c is a rear view of the unloading valve 829. Fig. 8b is a cross-sectional view of the unloading valve 829 taken along lines A-A (shown in Fig.8a). A central sliding pin 828 is provided in the form of a tubular piece, which encloses a bias spring 822. A valve float 810 is telescopically in slidable engagement with the central sliding pin 828. As currently shown in Fig. 8b, the bias spring 822 is compressed (loaded) and the valve float 810 is in sealing contact with an outlet valve seat 818. In rest, the bias spring 822 would push the valve float 810 in sealing contact with the inlet valve seat 814 (as shown in Fig. 8d).
[0060] A fluid flow path 820, between an inlet port 812 and an outlet port 816, extends in an annular cavity formed around the valve float 810 and the central sliding pin 828. In this example, the outlet port 816 has a toroidal (ring) shape, and is in communication with one or more outlet channels 827 (in this example there are four shown in Fig. 8c, but any number can be used). Due to the bias spring 822 being enclosed, it is shielded from fluid flowing along the fluid path 820 from the inlet port 812 to the outlet port 816 and thereby the flow of the fluid is less impeded and disturbed.
[0061] Fig. 8d is another cross-sectional view of the unloading valve 829 taken along lines B-B of Fig. 8a. Fig. 8d is similar to Fig 8b except that in Fig. 8d, the valve float 810 is in the closed position and in sealing contact with the inlet valve seat 814.
[0062] The unloading valve 829 illustrated in Figs. 8a-8d is distinctly different than the unloading valve 29 illustrated in Figs. 7a-7c. The inlet port 812 includes a fillet and / or chamfering 850 to give it a rounder geometry. This difference in inlet geometry results in lesser separation and a decrease in the re-circulation of fluid at the entry compared to the design of Figs. 7a-7c. In addition, an increase in mass inflow and velocity is achieved for valve 829.
[0063] Figs. 9A and 9B illustrate fluid flow simulation 900. At 902 (Fig. 9A), fluid is flowing through the valve 29 of Figs. 7a-7c. At 904 (Fig. 9B), fluid is flowing through the valve 829 of Figs. 8a-8d. As can be seen from a comparison of the figures, the fillets 850 added to the inlet port 812 improve the fluid flow into the valve 829. A higher mass inflow and a higher Mach number were achieved. The addition of the fillets 850 achieved an increased flow rate of 20%, i.e. 0.58kg / s for valve 829 from 0.48kg / s for valve 29. A higher volume flow rate was also achieved during flow loop testing, where 1.43 MMSCFD of gas circulated through the valve 829 compared to 1.19 MMSFD in the valve 29 of Figs. 7a-7c. This was achieved by the elimination of re- circulation zones in the initial valve geometry by the addition of the fillet geometry. A maximum velocity of 2.65 Mach (650m / s) was achieved in valve 829 compared to 2.37 Mach (620m / s) in the design of valve 29 of Figs. 7a-7c.
[0064] Furthermore, the shape of the valve float 810 is different. The shape is more pointed at a first end 854 to reduce fatigue caused by impinging particles flowing with the fluid in the fluid path 820. The geometry change of the first end 854 results in reduced shear stress on the valve float 810 and increases the overall lifespan of the valve float 810. Figs. 10A and 10B are diagrams of a fluid flow simulation 1000. At 1002 (Fig. 10A), fluid is flowing through the valve 29 of Figs. 7a-7c around the valve float 10. At 1004 (Fig. 10B), fluid is flowing through the valve 829 of Figs. 8a-8d around the valve float 810. As can be seen from a comparison of the figures, the improved pointed shape of the first end 854 of the valve float 810 results in less shear stress on the valve float 810. The change in curvature resulted in a reduction of the recirculation zone at the center of the flow. Figs. 10A and 10B depict less blue color or stagnation of flow at the center for valve 829. The pointed curvature in the valve float 810 results in a higher mass flow with less differential pressure loss, i.e. 12%.
[0065] Also, the exit profile is different in valve 829. An outlet end 852 of the outlet port 816 is shaped to be conical in geometry increasing the exit area. This change results in reduced exit velocities of the fluid, backflow and shockwaves, increasing the overall life span of valve 829 and the fixture in which it will be punched. Figs. 11 A and 11B are diagrams of a fluid flow simulation 1100. At 1102 (Fig. 11 A), fluid is flowing through the valve 29 of Figs. 7a-7c. At 1104 (Fig. 11B), fluid is flowing through the valve 829 of Figs. 8a-8d. As can be seen from a comparison of the two, the improved conical shape of the outlet ends 852 of the exit ports results in improved fluid flow from the valve 829. The change in the exit profile geometry of valve 829led to stabilized outflow, a reduction in oblique reflected shocks and total shock loading and impinging action on the wall of the A-annulus casing. Figs. 12A and 12B illustrate oblique reflected shocks and total shock loading 1202 (Fig. 12A) of valve 29 of Figs. 7a-7c compared to oblique reflected shocks and total shock loading 1204 (Fig. 12B) of valve 829 of Figs. 8a-8d. Impinging action leads to early erosion of wall thicknesses of the A-annulus casing and decreases well life. As illustrated in Figs. 12A and 12B, the Schlieren scale visualizes the reduction in the reflection shocks at the exit of the valves due to the improved exit profile design of valve 829 (Fig. 12B).
[0066] Figs. 13a to 13c show another example embodiment of an unloading valve 1300. Fig. 13a is a side view of the unloading valve 1300, while Fig. 13b is a rear view of the unloading valve 1300. Fig. 13c is a cross-sectional view of the unloading valve 1300 taken along lines A-A (shown in Fig. 13b). The unloading valve 1300 is similar to the unloading valve of 829 of Figs.8a-8d. However, in Figs. 13a-13c, a flapper or swing check valve 1302 is included and shown in its open position. It is noted that a check-valve could also be used. In Figs. 13d- 13f, the flapper 1302 is shown in its closed position. The flapper 1302 is a second barrier that prevents undesirable fluid flow from the tubing to the annulus (i.e. reverse flow). The flapper 1302 is shown on the exit side of the valve 1302. The flapper opens and closes about a hinge 1304. It is understood that any barrier could be provided in lieu of the flapper, such as a check-valve, and any number of barriers could be used. In addition, the flapper or check valve could be provided internally in the valve 1300 rather than at the outlet side of the valve 1300 as shown.
[0067] Having an additional barrier, such as the flapper 1302, provides a robust prevention of leaks into the annulus leading to sustained casing pressure. A leak can lead to shutting down of the well if the annulus pressure limit exceeds a maximum allowable surface pressure operating limit. In such case, intervention is needed to rectify the leak, which is costly and leads to additional maintenance costs. An additional barrier also elongates the life of the valve 1300 and assures that if one barrier fails, a catastrophe does not occur. Fig. 13f, illustrates the two barriers in their closed positions preventing reverse flow or backflow through the valve 1300. A valve float 1310, such as that described above, provides a first barrier while the flapper 1302 provides a second barrier to reverse flow through the valve 1300.
[0068] The person skilled in the art will understand that the present invention can be carried out in many various ways without departing from the scope of the appended claims.
Claims
CLAIMS1. An unloading valve for a gas lift system in a wellbore tubular comprising:a valve float having a pointed curvature to reduce shear stress on the valve float;an inlet port having an inlet valve seat to receive the valve float and seal the inlet port and wherein the inlet port has filleted or chamfered openings to improve fluid flow; andan outlet port having an outlet valve seat to receive the valve float and seal the outlet port when a flow exceeds a maximum flow in the opposite direction and wherein the outlet port has conical shaped ends to improve fluid flow;wherein the valve float is movably arranged in the flow path between the inlet port and the outlet port, and wherein the valve float is bidirectionally movable between the inlet valve seat and the outlet valve seat and further comprising a biasing force acting on the valve float directed towards the inlet valve seat.
2. The unloading valve of claim 1, wherein the inlet port has a higher mass inflow and Mach number with filleted or chamfered openings.
3. The unloading valve of claim 2, wherein a flow rate is equal to or greater than 0.50kg / s.
4. The unloading valve of claim 2, wherein volume flow rate is equal to or greater than 1.30 MMSCFD.
5. The unloading valve of claim 2, wherein a maximum velocity is equal to or greater than 2.50 Mach.
6. The unloading valve of claim 1, wherein the pointed curvature achieves a higher mass flow with less differential pressure loss of equal to or greater than 10%.
7. The unloading valve of claim 1, wherein the conical shaped ends stabilize outflow, reduce oblique reflected shocks and total shock loading and reduce impinging action on a wall of a casing.
8. The unloading valve of claim 1, further comprising a second barrier to seal the outlet port of the valve.
9. The unloading valve of claim 8, wherein the second barrier is a check valve.
10. A gas lift system comprising:- a borehole in an earth formation;- a wellbore tubular arranged with the borehole, comprising a tubular bore, and whereby an annular space surrounds the wellbore tubular which annular space is accessible for fluid flow; - one or more unloading valves according to Claim 1 arranged at increasing depths within a wall of the wellbore tubular, whereby the flow direction allows fluid flow from the annular space into the tubular bore;- a binary check valve arranged in the wellbore tubular at a depth below the one or more unloading valves, which binary check valves allows fluid flow from the annular space into the tubular bore at any flow rate and blocks flow in opposite direction.
11. The gas lift system of claim 10, wherein the inlet port has a higher mass inflow and Mach number with filleted or chamfered openings.
12. The gas lift system of claim 11, wherein a flow rate is equal to or greater than 0.50kg / s.
13. The gas lift system of claim 11, wherein volume flow rate is equal to or greater than 1.30 MMSCFD.
14. The gas lift system of claim 11, wherein a maximum velocity is equal to or greater than 2.50 Mach.
15. The gas lift system of claim 10, wherein the pointed curvature achieves a higher mass flow with less differential pressure loss of equal to or greater than 10%.
16. The gas lift system of claim 10, wherein the conical shaped ends stabilize outflow, reduce oblique reflected shocks and total shock loading and reduce impinging action on a wall of a casing.
Citation Information
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