This application claims priority to EP Patent Application No. 17162047.9 filed Mar. 21, 2017, the entire content of which is hereby incorporated by reference.
The present invention relates to a downhole plug and abandonment system and to a downhole plug and abandonment method.
When a well becomes less productive, and all attempts to improve the production of hydrocarbons from a reservoir have failed, the unproductive part of the well, if not the whole well, is plugged and abandoned. The well is often abandoned by setting a cement plug in the casing, and subsequently the volume in the casing above the cement plug is pressurised to verify that the plug is able to withstand pressure and thus to prevent a blowout. However, a blowout is a very high pressure coming from below the plug, but such test circumstance cannot be provided as the volume in the casing below the plug is sealed off and therefore cannot be pressurised, and thus the pressure test from above the plug must thus suffice in the known plug and abandonment systems. However, there is a risk that the cement plug is not made properly and that gaps or non-cemented areas occur. And should such gaps or non-cemented areas occur near the bottom of the plug, this could jeopardise the cement plug when pressure comes from below.
It is an object of the present invention to wholly or partly overcome the above disadvantages and drawbacks of the prior art. More specifically, it is an object to provide an improved plug and abandonment system capable of ensuring that the plug can withstand pressure from a blowout, and thus increase the safety of abandoned wells.
The above objects, together with numerous other objects, advantages and features, which will become evident from the below description, are accomplished by a solution in accordance with the present invention by a downhole plug and abandonment system comprising:
By having an abandonment device in the confined space under the second plug, the second plug can be pressure tested from below. And thus the second plug can be tested in the circumstance which it is to prevent, namely preventing a blowout, from below the plug. In prior art solutions, the plug is merely tested from above by performing a pressure test by pressurising the inside of the well tubular structure above the plug which is not the same as testing the plug with an increased pressure from below.
Moreover, the second plug may have no through-bore for a cable, a conductor, an optic line or control line.
Further, the wireless abandonment device may be self-powered, e.g. by a battery or a fuel cell.
The downhole plug and abandonment system according to the present invention may further comprise a downhole tool arranged in the well tubular structure above the second plug, the downhole tool comprising a tool communication module for receiving signals from the abandonment device.
Also, the communication modules may send or receive data or signals by means of electromagnetic radiation or acoustic or mechanical vibrations.
Moreover, the communication module may comprise a transducer.
Furthermore, the transducer may be a piezoelectric element.
In addition, the downhole tool may comprise a tool sensor, such as a pressure sensor and/or a temperature sensor.
Further, the downhole tool may be a wireline tool.
The first plug and the second plug may be arranged in the same well tubular structure.
Also, the downhole tool may be configured to communicate with a control unit at surface.
Additionally, the unit may comprise a heating element for increasing the temperature in the confined space so that the pressure increases.
Such heating element may be a heater.
Furthermore, the unit may comprise a power charge for increasing the temperature in the confined space so that the pressure increases.
Said power charge may be a slow burning charge.
Further, said power charge may be configured to generate a gas pressure and/or heat.
Moreover, the unit may comprise a gas canister having a gas for increasing the pressure in the confined space when the gas is released in the confined space.
Also, the unit may comprise a pump and a fluid reservoir having a fluid.
Furthermore, the unit may comprise an accumulator.
The abandonment device may comprise a power pack such as a battery.
Further, the abandonment device may comprise a timer.
In addition, the abandonment device may comprise a volume determination arrangement configured to measure characteristics of the confined space for determining a volume of the confined space.
The first plug and the second plug may be made of cement.
Moreover, the cement may comprise a plurality of sensor units configured to form a mesh network.
Said mesh network may be a self-healing mesh network.
At least a plurality of the plurality of sensor units may be provided with a detector for detecting cement characteristics of the cement.
Also, the abandonment device may comprise an anchoring arrangement configured to anchor the abandonment device to the wall of the well tubular structure between the first plug and the second plug.
Additionally, the confined space may comprise a fluid.
The present invention also relates to a downhole plug and abandonment method comprising:
The downhole plug and abandonment method according to the present invention may further comprise arranging a downhole tool above the second plug configured to receive the measurement and/or the signal representing the measurement.
Further, the downhole plug and abandonment method according to the present invention may further comprise receiving the measurement and/or the signal representing the measurement by means of a tool communication module of the downhole tool from the abandonment device by means of a mesh network in the second plug.
The downhole plug and abandonment method according to the present invention may further comprise receiving the measurement and/or the signal representing the measurement by means of a tool communication module of the downhole tool from the abandonment device by means of electromagnetic radiation or acoustic or mechanical vibrations.
It should be noted that within this specification, the term “mesh network” should be interpreted as a network of which each associated sensor forms a network node being configured to relay data for the network. All network sensors thus cooperate in the distribution of data in the network. In a mesh network within the context of this specification, data transfer is accomplished by routing data between the sensors until the data reaches its destination. The data path is not constant, but re-routed if any existing sensors are unavailable.
The invention and its many advantages will be described in more detail below with reference to the accompanying schematic drawings, which for the purpose of illustration show some non-limiting embodiments and in which
All the figures are highly schematic and not necessarily to scale, and they show only those parts which are necessary in order to elucidate the invention, other parts being omitted or merely suggested.
Prior art solutions have a constellation in which the plug is tested from above or in which the plug is penetrated by wires which induces a substantial risk since the plug is not pressure tight and significant leaks have been observed to occur. As the wires deteriorates over time due to the harsh environment and thus leak very quickly, the well is not safely plugged when using such wiring through the plug.
By having a wireless abandonment device 10 arranged in the confined space 8, the plug above the wireless abandonment device 10 has no through-bore and is thus not penetrated by any conductors, cables etc., and the plug is thus significantly safer over time which is very important when abandoning the well, or that part of the well, for many years, if not entirely.
After the second plug 7 is set, the unit 11 increases the pressure or the temperature (and thereby the pressure), and the sensor 12 measures the pressure and/or the temperature to detect if the confined space 8 maintains the pressure before a natural decrease due to transmission of heat from the confined space to its surroundings over time. In this way, the second plug 7 is pressure tested from below, but the first plug 5 is at the same time tested from above. Once the sensor 12 has detected the pressure or temperature, the communication module sends the measured data to some device above the second plug 7 or just sends a signal as a representation of the measured temperature or pressure.
In
As can be seen in
In
In
By having a plurality of sensor units distributed in the cement, a mesh network can be formed by the sensor units, and each sensor unit can send information to an adjacent sensor unit which again sends the received information from the lower sensor unit. This is repeated until the information reaches the surface.
In order to increase the pressure in the confined space 8, the unit 11 comprises a heating element 17, as shown in
By having a wireless abandonment device in the confined space 8 which is self-powered, e.g. by a battery or a fuel cell, the wireless abandonment device is not dependent on receiving power from above the second plug either by wireline through the plug or through the well tubular metal structure, e.g. by means of lines therein/therethrough.
In
Each sensor unit 31 is positioned arbitrarily in the flowable cement during the making of the plugs, and the distribution of sensor units 31 is thus random, though distributed into the cement in an evenly manner so that the sensor units 31 are more or less evenly distributed in the flowable cement, as shown in
As will be explained in the following, this is realised by configuring the sensor units 31 to establish a physically distributed independent and localised sensing network, preferably with peer-to-peer communication architecture. As will be understood from the following description, the mesh network being established by the sensor units 31 as a self-healing mesh network will automatically provide for a reliable and self-healing data path even though at least some of the sensor units 31 are out of range from the final destination, i.e. the data collection provided at the surface level. All sensor units 31 are preferably identical, although provided with a unique ID. As shown in
Each one of said sensor units 31 of the mesh network is positioned in the cement, and at least one of said sensor units may be provided with a detector for detecting cement characteristics of the cement in the annulus. If a sensor unit detects cement all the way around itself, the sensor unit may send the measurement or only an “Okay” signal to the adjacent sensor unit, and if a sensor unit detects an uncemented area, the sensor unit may send such measurement or only a “non-okay” signal in order to simplify the data to be sent to the surface. In this way, also the cement of the plug can be verified so that if the second plug is not good enough, more cement can be pured down before preforming the pressure testing.
The power supply 41 is configured to supply power to the other components 42-45 of the sensor unit 31, either by means of an internal power storage, such as one or more batteries, or by converting energy of the surrounding cement to electrical energy. The digital processing unit 42 comprises a signal conditioning module 47, a data processing module 48, a data storage module 49 and a micro controller 50. The digital processing unit 42 is configured to control operation of the entire sensor unit 31, as well as temporarily storing sensed data in the memory of the data storage module 49. The transceiver 43 is configured to provide wireless communication with transceivers of adjacent sensor units 31. For this, the transceiver 43 comprises a radio communication module and an antenna. The radio communication module may be configured to communicate according to well-established radio protocols, e.g. IEEE 801.1aq (Shortest Path Bridging), IEEE 802.15.4 (ZigBee) etc. The transducer 44 is configured to transmit and receive sonar signals/pulses in order to determine characteristics of the surrounding cement.
In
The present invention also relates to a downhole plug and abandonment method. According to this method, a first plug 5 is arranged in a well tubular structure 1 for sealing off a lower part 6 of the well tubular structure 1. Then an abandonment device 10 is arranged above the first plug, and a second plug 7 is arranged in the well tubular structure at a distance and above the first plug isolating a confined space 8 having a space pressure between the first plug and the second plug, the abandonment device being arranged in the confined space. Subsequently, the pressure in the confined area is increased by means of the abandonment device, and a temperature and/or a pressure of the confined area are/is measured. At least a signal representing the measurement and/or the measurement is communicated to above the second plug.
Furthermore, in the downhole plug and abandonment method, a downhole tool 15 may be arranged above the second plug 7 configured to receive the measurement and/or the signal representing the measurement. Moreover, the measurement and/or the signal representing the measurement is received by means of a tool communication module 16 of the downhole tool from the abandonment device by means of a mesh network in the second plug. Further in this method, the measurement and/or the signal representing the measurement may be received by means of a tool communication module of the downhole tool from the abandonment device 10 by means of electromagnetic radiation or acoustic or mechanical vibrations.
By fluid or well fluid is meant any kind of fluid that may be present in oil or gas wells downhole, such as natural gas, oil, oil mud, crude oil, water, etc. By gas is meant any kind of gas composition present in a well, completion, or open hole, and by oil is meant any kind of oil composition, such as crude oil, an oil-containing fluid, etc. Gas, oil, and water fluids may thus all comprise other elements or substances than gas, oil, and/or water, respectively.
By a casing or well tubular structure is meant any kind of pipe, tubing, tubular, liner, string etc. used downhole in relation to oil or natural gas production.
In the event that the tool is not submergible all the way into the casing, a downhole tractor can be used to push the tool all the way into position in the well. The downhole tractor may have projectable arms having wheels, wherein the wheels contact the inner surface of the casing for propelling the tractor and the tool forward in the casing. A downhole tractor is any kind of driving tool capable of pushing or pulling tools in a well downhole, such as a Well Tractor®.
Although the invention has been described in the above in connection with preferred embodiments of the invention, it will be evident for a person skilled in the art that several modifications are conceivable without departing from the invention as defined by the following claims.
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