The present invention relates to a well tool comprising a frangible well barrier, and a method for providing such a well tool.
Frangible well plugs are commonly used in tools for oil and/or gas wells. These plugs provide a pressure barrier in the tool, for example during periodic or permanent isolation of zones in the well, during well integrity testing, etc.
These frangible well plugs have a frangible barrier element in the form of a frangible disc made from glass, hardened glass, ceramics etc. The barrier element is provided in a seat in a metal housing. The barrier element may be removed by means of various techniques, where the purpose is to disintegrate the element into small pieces.
An example of a glass plug is known from NO 321 976 (TCO AS). The plug comprises a number of layered or stratified ring discs of a given thickness, which are placed in abutment on top of one another. Between the different layers of the plug an intermediate film of plastic, felt or paper is inserted; the various glass layers may also be joined by means of lamination by an adhesive such as a glue. During use the plug will be mounted in a plug-receiving chamber in a tubing, where the underside of the plug rests in a seat at the bottom of the chamber. An explosive charge is furthermore incorporated in the top of the plug by one or more recesses being drilled out from the top of the plug, in which recesses the explosive charge(s) are placed.
Another example is known from NO 20130427 (Vosstech AS). Here, the plug has one glass disc, which may be disintegrated by a radial pin or loading device being pushed into the glass disc.
Glass disks made of float glass of soda lime type are commonly used in such well plugs. Today, the highest available thickness for float glass of soda lime type of acceptable quality is produced at a maximum thickness of ca 25 mm. The maximum pressure a glass disc may withstand will depend on the glass quality and the diameter of the glass disc. Hence, this thickness of ca 25 mm represents a pressure limit for the glass plug. If the glass plug is to be used for higher pressures and higher diameters, several such glass discs must be used together in order to withstand higher pressures. The above NO 321 976 shows an example where several glass discs are assembled into one larger glass disc body.
With the above prior art well plugs, different types of seals or sealing elements are used between the metal and the glass. Often, one type of seal (typically o-ring) is used circumferentially around the glass disc to as a pressure seal to avoid fluid flow between the glass disc and the metal housing and a second type of seal or sealing element is used as a seal in the upper part and lower part of the seat to avoid contact between the glass disc and the metal housing, as such contact will cause an undesired breaking of the glass disc. A disadvantage with these prior art seals is that they require a very fine precision during machining of the metal housing and during polishing and hardening of the glass disc. Hence, it is an object of the invention to avoid or reduce the need of such fine precision machining operations.
Another disadvantage with these seals is that they are made of expensive materials, typically one O-ring, and two seat seals (upper and lower seat surface) needed for one glass disc will cost about NOK 3-5000. One object of the invention is to be able use alternative and cheaper seal materials.
Another disadvantage with the above seals is they are vulnerable to physical impacts. Hence, if a prior art well tool are falling to the ground during lifting the well tool for transportation, there is a risk for undesired breaking of the glass disk. One object of the invention is therefore to improve the support of, and the protection of, the glass disc within the seat of the well tool against physical impacts.
Another problem with the above seals is that when the frangible disc is disintegrated, the seals may follow the production flow and get stuck, in which case they may cause problems when later operations are to be performed in the well.
The present invention relates to a well tool device, comprising:
a housing having an inner surface defining a through bore;
a frangible disc provided in the through bore, where the frangible disc comprises a side surface;
a seat for supporting the frangible disc in relation to the housing, where the seat comprises a side surface;
a sealing device provided between the frangible disc and the seat;
characterized in that:
the sealing device provided between the side surface of the frangible disc and the side surface of the seat is made from a vulcanized rubber material.
Accordingly, the sealing device made from the vulcanized rubber material is replacing the o-ring(s) commonly used in prior art. In this aspect of the invention, prior art contact-preventing sealing elements may be used between the upper chamfered supporting surface of the seat and the upper chamfered supporting surface of the disc, and between the lower chamfered supporting surface of the seat and the lower chamfered supporting surface of the disc.
In another aspect of the invention, the sealing device made from the vulcanized rubber material may be used between the respective chamfered surfaces as well. In this aspect of the invention, the sealing device made from one body of vulcanized rubber material is replacing the previously known three separate sealing elements (at least one o-ring and two contact-preventing sealing elements).
One or several channels may be provided between the outside of the housing and the seat to allow excessive rubber material to escape out through the channel during the injection of the rubber material.
According to one aspect of the invention, the seat has been pre-treated before the assembly of the well tool device. The pre-treatment can be a sand-blowing process and a priming process before the assembly of the well tool device. Also the frangible disc may be pre-treated before the assembly of the well tool device. The pre-treatment can be a priming process before the assembly of the well tool device.
In one aspect of the invention, a reinforcement fiber is incorporated into the vulcanized rubber material of the sealing device.
In one aspect, the housing comprises:
a main housing section in which the seat is provided, where a section of the main housing section comprises an inwardly threaded area;
an auxiliary housing section comprising a corresponding outwardly threaded area for connection to the inwardly threaded area of the main housing section.
In one aspect of the invention, the housing comprises:
a first housing section, where a first seat section is provided in the inner surface of the first housing section;
a second housing section, where a second seat section is provided in the inner surface of the second housing section;
a third housing section provided circumferentially outside the first and second housing sections;
where the sealing device is provided continuously in an annular compartment provided axially between the first and second housing sections and radially between a side surface of the frangible disc and an inner surface of the third housing section.
The first and second housing sections may comprise a piston surface facing away from their respective seat sections.
In one aspect of the invention, an adhesive is provided between the sealing device and the frangible disc. The adhesive is typically added to the frangible disc before the injection of the rubber material.
The present invention also relates to a method for manufacturing a well tool device, comprising the steps of:
The compartment may comprise a first compartment defined as the compartments between the upper chamfered supporting surface of the seat and the upper chamfered supporting surface of the disc and between the lower chamfered supporting surface of the seat and the lower chamfered supporting surface of the disc, and a second compartment defined as the compartment between the side surface of the frangible disc and the side surface of the seat.
In one aspect, step b) comprises:
The step of injecting the rubber material into the compartment is performed until the rubber material is exiting through a channel provided in the housing radially outside of the seat.
In one aspect, the method comprises a step of incorporating a reinforcement fiber into the rubber material before step d).
In one aspect the method comprises a step of treating the seat with a sand-blowing process and a priming process step before step b).
In the following, embodiments of the invention will be described in detail with reference to the enclosed drawings, where:
It is now referred to
A seat 13 is provided for supporting the frangible disc 20 in relation to the housing 10. In
The frangible disc 20 is preferably a disc made of hardened glass.
The well tool device 1 further comprises a frangible disc 20 provided in the seat 13, as shown in
It is now referred to
In
The purpose of the respective upper and lower chamfered supporting surfaces C20, C13 is to transfer axial fluid pressure applied by the fluid in the well bore 12 on the frangible disc 20 to the housing 10.
In
The first compartment 15a is defined as the compartment between the chamfered supporting surfaces C20, C13. Hence, there is both an upper and a lower first compartment 15a.
The second compartment 15b is defined as the compartment between the side surface A20 of the frangible disc 20 and the side surface A13 of the seat 13.
In the present invention, the sealing device 30 is made from a vulcanized rubber material. The rubber material is injected or pressed into the first and second compartments 15a, 15b and thereafter, a vulcanizing process is performed to harden the rubber material. This injection and vulcanizing method will be described further below. As the first and second compartments 15a, 15b are filled with the rubber material, the rubber material will fill the available space of the first and second compartments 15a, 15b, and hence, the tolerances during the machining process during the manufacturing of the housing device 10 and the frangible disc 20 is no longer an important factor, as the entire space or void between the housing and disc will be filled with rubber material.
The rubber material may for example be a synthetic rubber material, selected among those materials suitable for the environment in the hydrocarbon well (i.e. dependent on temperature, pressure and amount of H2S content etc in the well). The rubber material may for example be NBR (Nitrile Butadiene rubber), HNBR (Hydrogenated Nitrile Butadiene Rubber), FKM (fluoroelastomers), FFKM (perfluoro-elastomers) or other suitable materials.
According to the embodiment in
In
In
In
In yet an alternative, the fibers 32 could be provided as short fibers mixed into the rubber material and then being injected together with the rubber material. The fibers 32 will then be distributed randomly in the rubber material.
The fibers can be made of any suitable material, for example aramid.
It is now referred to
It is now referred to
The first housing section 10c comprises a first seat section 13a comprising the upper chamfered surface C13 of the seat 13. The first seat section 13a is provided in the inner surface 11 of the first housing section 10c. The second housing section 10d comprises a second seat section 13b comprising the lowered chamfered surface C13 of the seat 13. The second housing section 13b is provided in the inner surface 11 of the second housing section 10d. As shown in
The third housing section 10e is provided circumferentially around the first and second housing sections 10c, 10d. The third housing section 10e is also provided axially above and below the first and second housing sections 10c, 10d. The third housing section 10e also has a through bore 12, where the diameter of the bore 12 preferably is the same axially through the well tool device 1, as indicated in
As shown in
As shown in
Each of the first and second housing sections 10c, 10d comprises a piston surface 17 facing away from their respective seat sections 13a, 13b, as shown in
In
The well tool device 1 may further comprise a primer material or an adhesive material between the sealing device 30 and the frangible disc 20 and/or between the sealing device 30 and the housing 10, in order to improve the sealing effect of the sealing device 30.
Preferably, also the seat 13 of the housing device 10 has been pre-treated before applying primer and/or adhesive and then the rubber material to improve the sealing effect. Such a pre-treatment may for example be a sand-blowing process.
The method for manufacturing the well tool device 1 will now be described with reference to
Initially, the different parts are provided, i.e. the frangible disc 20 and the housing 10, together with the rubber material for the sealing device 30. They may be pre-treated, for example by the above described sand-blowing process, priming applying process and/or adhesive applying process.
First, the frangible disc 20 is aligned in relation to the seat 13. In the aligning step, it should be ensured that there is a compartment 15a, i.e. a first compartment, and a compartment 15b, i.e. a second compartment, between the frangible disc 20 and the seat 13 for the embodiment in
In the embodiment in
In order to align the parts together, spacers or similar other means may be used to keep a distance between the parts before the injection of the rubber material.
If reinforcement fibers 32 are to be used, they are first located in the first compartment 15a for the embodiment in
In
In the next step, the rubber material is injected via the injection mold IM into the first and second compartments 15a, 15b provided between the seat 13 and the frangible disc 20. The rubber material is injected until the rubber material is exiting out through the channels 15c in the embodiment of
During the injection, the rubber material and possibly also the housing 10 may be preheated for increasing the viscosity of the rubber material.
In the next step, a vulcanizing process is performed. The vulcanizing process results in an increased strength in the rubber material.
The well tool device 1 shown in
For the above embodiments, it has been described that the vulcanized rubber material is used as a sealing device 30 both in the first compartment 15a and also in the second compartment 15b and hence, the sealing device 30 are serving two purposes, i.e. as a fluid seal and to prevent contact between seat of housing and disc.
It should be noted that in an alternative embodiment to those described above, the sealing device 30 made of vulcanized rubber material may be used for the function of preventing fluid flow between the upper side and lower sides of the frangible disc 20 only. This is illustrated in
In such an embodiment, another material, such as prior art sealing materials may be used in the first compartment 15a between the chamfered supporting surfaces C13 and C20 for the function of transferring axial forces from the frangible disc 20 to the seat 13 of the housing 10 and hence to avoid contact between the frangible disc 20 and the seat of the housing 10.
The well tool device 1 described herein may be a part of a plugging device, such as a bridge plug. The housing 10 will then typically be a part of the mandrel of the plugging device. The well tool device 1 may also be a part of a completion string, where the purpose of the frangible glass disc is used to pressure test the completion string, and when the frangible disc is removed, in order to start the production from the well. The housing 10 will here typically be a part of the completion string. The well tool device 1 may also be a part of other well tools where a temporary barrier is needed.
Number | Date | Country | Kind |
---|---|---|---|
20151496 | Nov 2015 | NO | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2016/076480 | 11/3/2016 | WO | 00 |