The present invention relates to a valve device for use in connection with the running of down hole tools and a method for operating a valve down hole.
For several activities performed down in the well there is a need for providing a fluid to the tool equipment and there is a need to return this fluid to the surface. One possible way of doing this is to use a dual bore from the surface and down to the tool in the well. This meaning one bore is used to transport the fluid down into the well and another bore is used to transport the fluid out of the well during the working process. The working process may be drilling, cleaning or lining of the bore hole or other activity or a combination of these activities.
In relation to this there is a need for controlling and guiding the flow of fluid in the well, and an aim with the present invention is to provide a device and method for achieving this.
According to the invention there is provided a valve device and a method for operating a valve device which solve this need.
The invention regards a valve device for use with a down hole tool. The down hole tool preferably comprises means for connecting it to at least a first fluid line and a return fluid line. This tool may be a drilling tool, a cleaning tool, a lining tool or other kinds of tool or a combination of these. One possible use for the valve device is in connection with drilling with a double coaxial drilling pipe and a piston arrangement in the annular space between the drilling pipe and the well bore for pressure assisted drilling. The double coaxial drilling pipe will in one pipe form a flow path for fluid flowing down into the well and a return pipe will form a flow path for the return of the fluid up to the surface. The return pipe may be the central bore and the flow into the well may be in an annular space around this central bore. The valve device comprises a first inlet and a first outlet forming a first flow path between them, a second inlet and a second outlet forming a second flow path between them, and at least one closure element for closing and or opening at least one of the flow paths. The first flow path may be connected to the annular flow path of the dual drill pipe and the second flow path may be connected to the centre flow path of the dual drill pipe, or dual bore pipe string if the activity to be performed is another activity than drilling.
It is according to the invention possible that there is one element which acts as a closure element for two or more flow paths, it is also possible that there are different closure element for the different flow paths or some common and some separate. Normally there will be at least one closure element which will close off or open the two flow paths in the valve device. According to one aspect there may be one common closure element for these two flow paths.
According to the invention the at least one closure element together with the respective flow paths forms a first and second check valves, which in a one state prevents a fluid from flowing from the first outlet to the first inlet and a fluid from flowing from the second inlet to the second outlet. This gives that the valve system will prevent a pressure build up in an area between the first outlet and the second inlet, from opening the valve system. The valve system may when this area is formed by the bottom of the well, act as a barrier. In such a system the first inlet and second outlet are connectable to a pipe string and the first outlet and second inlet are connectable to the tool. The down hole tool will normally be positioned between the first outlet and the second inlet. The first outlet will then normally lead to a tool, and the second inlet will normally lead a normal fluid flow from the tool. A fluid to the tool may then be sent down to the tool through the first flow path and returned through the second flow path. In one embodiment it is possible to reverse the flow of fluid through the valve system.
A check valve shall in this application be understood to be a valve which will, when it is not influence by outside signals, in normal operations, or with other words in a first state act as a one-way valve, allowing fluid to flow in one direction with a given pre-set pressure difference between the two sides of the valve. The check valve will with other words open from a closed state if the pressure in the fluid on one side, a first side, of the valve exceeds a pressure as fluid is added to this first side of the valve. The check valve will further in normal operation, in this first state, prevent fluid from flowing the opposite way, i.e. a fluid flow from a second side to a first side of the valve. An increased pressure in the fluid on this opposite side may assist in providing a sealing in the valve. The check valve may as indicated, be controlled by outside signals to be in a given position, either an open or a closed position in a second state of the valve. When the check valve is controlled by outside signals the check valve may be said to be in a second state and then no longer act as a normal check valve but acting as a more normal valve. These signal may be electrical, magnetic, hydraulic or mechanical and come form other down hole tools, as other vales or be signals from the surface. The signals will keep the check valve in this state, but if these signals stop the valve will again act as a one-way valve, a check valve under normal operations.
According to an aspect of the invention the second check valve in the second flow path may be connected to the first check valve in the first flow path, and may be arranged to be in an open position when the first check valve is in an open position. The second check valve, positioned in the second flow path, will with an outside signals be in a second state and in this second state be in a forced open position. This outside signal may be a specific signal or it may be a signal which indicates that the first check valve in the first flow path is in an open position. By this a fluid may flow through the first check valve when there is a given pressure difference across the first check valve, and this pressure difference opens the first check valve. This will signal to the second check valve to be in a second state, which is a forced open state, and the fluid may flow in through the first flow path and out through the second flow path. When the first check valve is closed, the second check valve is again in the first state and operated as a normal check valve. By this the flow path down to the tool may be opened by providing a pressure difference across the first check valve in the first flow path, which then opens the second flow path through the valve device. When there is no positive pressure difference across the first check valve to open this check valve, the second check valve is in a first state, a normal check valve. A pressure build up around the tool will then not be allowed to across the valve device, as it act as a barrier. The valves may also be given their state by signals from the surface.
There may according to the invention also be a similar connection between the second check valve and the first check valve, giving that when the second check valve is experiencing a pressure difference across the valve such that it opens as a normal check valve, this will give signals to the first check valve to go into a second state where it is in a forced open state. By this a fluid may flow the opposite direction through the valve device. The fluid will then flow into the second outlet, and out through the second inlet and then in through the first outlet and out through the first inlet. When there is no positive pressure difference across the second check valve it will again close and the first check valve will return to a first state.
According to another aspect the valve device may comprise a connection flow path between the first and second flow paths. There may in this connection flow path be arranged a valve device with a closure element for closing and or opening this connection flow path. There may be more than one connection flow path. The signals operating the connection fluid valve may be electrical, hydraulically, mechanical, or other kinds. These signals may come from the operation of the other valves, the first or second check valves or as a signal from an operator or other tools used in connection with the work performed in the well.
According to another aspect the connection flow path may be arranged to connect an upstream side of the first check valve with a downstream side of the second check valve. By such an arrangement one may in a dual bore tool string provide circulation of the fluid in the tool string before fluid is given more pressure and the first or second check valve is opened, dependent on the circulation direction and the fluid is guided to the tool below the valve device.
According to another aspect the valve device may comprise at least one closure element for the connection flow path and the first and second flow paths. There may be one common closure element operating all three flow paths. There may be one closure element for two of the flow paths and a separate one for the third or one closure element for each of the flow paths. There may be one closure element operating both check valves. There may also be more than one closure element in a flow path, forming a double valve in that flow path. With one closure element for several flow paths this element may be one solid element or several element fixed and or linked together or even just abutting each other and thereby acting on each other, and thereby giving signals for operation of the valves in the flow paths.
The connection between the at least one closure element for the at least two of the at least two flow paths may be mechanical, electrical, hydraulically, magnetically, acoustical or other kind of connection, providing a signal for operation of the closure element in relation to one flow path in relation to the closure element in another flow path. These signals may then override the normal operations for the second valve, by this moving the valve from a first state to a second state, which in a first state normally act as a check valve, and which in a second state is a forces open valve.
According to the invention there is provided a valve device for use with a down hole tool comprising at least a first fluid line and a return fluid line in the tool string. The return fluid line may be coaxial with the first fluid line and arranged within the first fluid line forming a centrally return line and an annular first line. The valve device comprises a first inlet and a first outlet forming a first flow path between them, and a second inlet and a second outlet forming a second flow path between them. These first and second flow paths will be connected to the first line and the return line of the tool string. There will be at least one closure element for closing and or opening at least one of the flow paths. According to the invention the first inlet may be connected to an annular space in the tool string, the first outlet to a centrally space in the tool string, the second inlet to an annular space around the tool string and the second outlet to a centrally space in the tool string, forming flow paths in opposite directions in the two flow paths in the valve device. This arrangement may also be arranged to move an annular flow to a centrally location and an outside annular flow to a centrally flow line. There may be arranged valve elements in connection with the two flow paths through the valve device. The may be at least one closure element for closing off and or opening the at least two flow paths through the valve device. This will form two valves one in each of the flow paths through the valve device. These valve elements may be in the form of check valve as described above but may also be other kinds of valves.
According to the invention there is also provided a valve device for use with a down hole tool comprising at least a first fluid line and a return fluid line in the tool string. The valve device comprises a first inlet and a first outlet forming a first flow path between them, and a second inlet and a second outlet forming a second flow path between them, at least one closure element for closing and or opening at least one of the flow paths forming a first and second valve in the first and second flow path respectively. According to the invention the opening and or closing of the first and second valve may be operated by an axial movement of the at least one closure element. By axial movement one should understand a movement in the direction of an axis of the well bore wherein the valve device will be used. The axial movement may be combined with a rotational movement. This rotational movement may be around an axis substantially equal to an axis of the well bore wherein the valve device is used or it may be an axis other than that, either parallel to this axis or with an angle to this axis.
According to an embodiment of this aspect there is in addition a flow connection path between the first and the second flow path, arranged from the upstream side of the first flow path to the downstream side of the second flow path. In connection with the flow connection path there is arranged a fluid connection valve operated by a closure element. According to one aspect the closure element for the flow connection path may in addition be operated by an axial movement of the at least one closure element. This axial movement may be the same axial movement as the movement for operation of the valves in the first and second flow paths. The valves in the first and second flow paths may be of the kind defined above but may also be a different kind of valve. The operation of the closure element for the three valves may be a common closure element, mechanically connected closure element or operated by electrical, hydraulic, magnetically means to act in response to each other.
According to the invention there is also provided a method for operating a valve device for use with a well tool comprising at least two fluid lines, a first fluid line and a return line, with the valve device comprising means for opening and or closing of the first fluid line and means for opening and or closing of the return fluid line, i.e. by opening or closing the first and second flow path through the valve device, and means for opening or closing for fluid communication between the first fluid line and the return fluid line upstream of means for closing the first flow line and downstream of means for closing the return line when these fluid lines are closed. According to the invention the method for activation of the valve device comprises the steps of firstly closing the fluid communication between the first fluid line and the return fluid line, thereafter opening the return fluid line, and opening the first fluid line. This will with the described valve device mean closing of the fluid communication path, thereafter opening the second flow path and opening the first flow path. The deactivation of the valves device comprises of the same steps in reverse order, i.e. firstly closing of the first fluid line, then closing of the return fluid line and lastly opening the communication between the first fluid line and the return fluid line. These acts in relation to the valves in the first and second flow paths may be made more or less simultaneous.
If the pressure below the valve device when it is used in the well exceeds the pressure of the fluid supplied at the inlet of the first flow path, the first check valve will automatically close and thereby not making the second check valve stay open, which second check valve then also will close since it possibly is experiencing the same pressure from the well as the first check valve. There may then be a link to the fluid connection valve to open, providing for circulation between the first fluid line and the return fluid line above the closed check valves.
In case of a controlled closing of the fluid circulation down to the tools in the well, the deactivation of the valve will be performed by reducing the pressure in the circulation fluid at the first inlet thereby causing the first check valve to close, thereby closing the second check valve and opening the fluid connection valve. Alternatively the deactivation can be controlled by signals from surface or from another down hole tool.
According to an aspect of the invention the different steps of the method may be performed by moving one element in an axial direction. This element may for instance be a common closure element for all three valves.
The present invention will now be explained with reference to the attached drawings, where;
The invention relates to a valve device 100 for user with a down hole tool 2 for use in a well bore 1. The valve device 100 is connected to a first fluid line 3 and a second fluid line 4. These fluid lines may as indicated in
In
In
In
The valve device comprises an outer sleeve element 8 a middle sleeve element 6 and an inner sleeve element 5. The outer sleeve element 8 is on the outside facing a annular space between the valve device and the well bore when the valve device is positioned within a well bore, as indicated in
The middle sleeve element 6 further comprises several holes through the wall of the middle sleeve element 6. One set of these are openings 32 arranged in the middle sleeve element 6 close to the sealing sleeve part 7. These openings 32 are formed in the middle sleeve element 6 upstream of the sealing sleeve part 7 in the first flow path 12 through the valve device. In the second state of the valve device, as indicated in
The middle sleeve part 6 further comprises a set of openings 24. These openings 24 are formed in a part of the middle sleeve part 6 which in a second state of the valve device,
The middle sleeve element 6 with the sealing sleeve part 7 forms a common closure element for the two check valves 13, 23 and also the connection flow path valve 31, thereby giving a mechanical connection between the three valves. When moving the middle sleeve element 6 the movement will in a first part of the movement, indicated with (a) in
The second check valve 23 may instead of a sleeve valve as shown be formed by a different kind of valve, for instance a plug connected to the end of the middle sleeve element 6, which plug for instance may close off the second end 52 of the inner sleeve element 5. The connection between such a plug element and the part of the middle sleeve element 6 forming part of the fluid connecting path 30 and the sealing sleeve part, may instead of a sleeve be formed by at least one rod. The rod may be formed to both specifically handle pressure and tension or just one of these forces with only a miner force of the other kind.
The invention has now been explained with reference to embodiments. A skilled person will understand that there may be made alterations and modifications to the embodiments that are within the scope of the invention as defined in the attached claims.
Number | Date | Country | Kind |
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20084145 | Oct 2008 | NO | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/NO2009/000339 | 9/30/2009 | WO | 00 | 3/30/2011 |