This disclosure relates to a wellbore, for example, through which hydrocarbons are produced.
Wellbores in an oil and gas well are filled with both liquid and gaseous phases of various fluids and chemicals including water, oils, and hydrocarbon gases. A wellbore completion is installed in the wellbore to seal the wellbore from the formations of the Earth and to control the flow of oil and gas from the wellbore to the surface of the Earth. The wellbore completion can include multiple components including isolation valves, tubing, tubing joints, pumps, liners, branches, and shoes. Maintenance tasks or inspections or both may be performed on the components of the wellbore completion assembly.
This disclosure describes technologies related to maintaining and inspecting a wellbore with a wellbore maintenance and inspection assembly. Implementations of the present disclosure include a wellbore maintenance and inspection assembly. The wellbore maintenance and inspection assembly includes a body to be disposed in a wellbore.
The wellbore maintenance and inspection assembly includes a magnetic wheel assembly including multiple magnetic wheel sub-assemblies adjustably coupled to the body. The magnetic wheel assembly positions the body within the wellbore and repositions the magnetic wheel sub-assemblies relative to the body in response to a wellbore narrowing or a wellbore widening. In some implementations, each of the magnetic wheel sub-assemblies include a magnetic wheel to couple to a surface of the wellbore. In some implementations, each of the magnetic wheel sub-assemblies include a hydraulic arm coupled to the magnetic wheel and the body. The hydraulic arm positions the magnetic wheel in contact with the surface of the wellbore. In some implementations, each of the magnetic wheel sub-assemblies include a support arm coupled to hydraulic arm and the body. The support arm supports the hydraulic arm. In some implementations, each of the magnetic wheel sub-assemblies include a drive spring arm coupled to the magnetic wheel and the body. The drive spring arm articulates in response to the hydraulic arm positioning the magnetic wheel and rotates the magnetic wheel. In some implementations, the magnetic wheel assembly includes six magnetic wheel sub-assemblies.
The wellbore maintenance and inspection assembly includes a tool connection mechanically coupled to the body. The tool connection couples a well tool to the body. In some implementations, the assembly further includes a well tool to perform a maintenance or inspection task on the wellbore. The well tool includes brushes to clean a surface of the wellbore.
The wellbore maintenance and inspection assembly includes a control sub-assembly mechanically coupled to the body, the magnetic wheel assembly, and the tool connection. The control sub-assembly controls the magnetic wheel assembly and operates the well tool within the wellbore. In some implementations, the control sub-assembly further includes a sensor to sense a condition and transmit a signal representing the condition. The condition is one or more of a pressure, a temperature, a depth, a conductivity, a pH, a dimension of the wellbore, or an orientation of the body relative to the wellbore and the surface of the Earth.
In some implementations, the control sub-assembly includes one or more computer processors and a non-transitory computer-readable storage medium storing instructions executable by the one or more computer processors to cause the one or more computer processors to perform operations. The operations include receiving a signal representing the condition from the sensor, comparing the signal representing the condition to the instructions, and responsive to the comparison of the signal representing the condition and the instructions, generating a command signal to operate the magnetic wheel sub-assembly or the well tool.
In some implementations, the condition is the dimension of the wellbore. In such implementations, the one or more computer processors further receive a first dimension of the wellbore, receive a second dimension of the wellbore, and compare the first dimension to the second dimension. The one or more computer processors then, where the comparison indicates the wellbore narrowing, responsive to the comparison of the first dimension of the wellbore to the second dimension of the wellbore, further generate a command signal to reposition the magnetic wheel sub-assemblies relative to the body in response to the wellbore narrowing.
In some implementations, the condition is the dimension of the wellbore. In such implementations, the one or more computer processors further receive a first dimension of the wellbore, receive a second dimension of the wellbore, and compare the first dimension to the second dimension. The one or more computer processors then, where the comparison indicates the wellbore widening, responsive to the comparison of the first dimension of the wellbore to the second dimension of the wellbore, further generate a command signal to reposition the magnetic wheel sub-assemblies relative to the body in response to the wellbore widening.
In some implementations, the control sub-assembly further includes a telemetry receiver to receive a reprogramming signal from a remote control station. The reprogramming signal instructs the one or more computer processors to perform a different operation from the operation stored in the non-transitory computer-readable storage medium.
In some implementations, the command signal includes a signal to the magnetic wheel assembly to rotate, stop rotating, or lock one or more of the magnetic wheels. In some implementations, one or more of the magnetic wheels are locked when engaged to a surface of the wellbore.
In some implementations, the assembly includes a power sub-assembly disposed within the body. The power sub-assembly supplies power to the control sub-assembly and the well tool. In some implementations, the power sub-assembly further includes a turbine to generate power from a wellbore fluid flow and supply the power to the power sub-assembly to power the control sub-assembly or the well tool.
The wellbore maintenance and inspection assembly includes a backup retrieval mechanism mechanically coupled to the body. The backup retrieval mechanism couples to a retrieval tool. In some implementations, the retrieval tool is a GS tool and the backup retrieval mechanism couples to the GS tool.
In some implementations, the assembly further includes a hydraulic sub-assembly to flow a hydraulic fluid to and from each hydraulic arm of each magnetic wheel assembly. In some implementations, the hydraulic sub-assembly includes a hydraulic fluid supply reservoir. In some implementations, the hydraulic sub-assembly includes a hydraulic control valve to control a fluid flow to and from each hydraulic arm. In some implementations, the hydraulic sub-assembly includes multiple hydraulic conduits fluidically coupled to the hydraulic fluid supply reservoir and each hydraulic arm to flow the fluid to flow a hydraulic control fluid to and from the each hydraulic arm.
Further implementations of the present disclosure include a method for maintaining a wellbore with a wellbore maintenance and inspection assembly positioned in the wellbore. The assembly includes a body to be disposed in a wellbore. The assembly includes a magnetic wheel assembly. The magnetic wheel assembly includes multiple magnetic wheel sub-assemblies adjustably coupled to the body. The magnetic wheel assembly positions the body within the wellbore and reposition the magnetic wheel sub-assemblies relative to the body in response to a wellbore narrowing or a wellbore widening. The assembly includes a tool connection mechanically coupled to the body. The tool connection couples a well tool to the body. The assembly includes a sensor mechanically coupled to the body. The sensor senses a condition and transmit a signal representing the condition. The condition is one or more of a pressure, a temperature, a depth, a conductivity, a pH, a dimension of the wellbore, or an orientation of the body relative to the wellbore and a surface of the Earth.
The assembly includes a control sub-assembly coupled to the body. The control sub-assembly is operatively coupled to the magnetic wheel assembly and the tool connection. The control sub-assembly includes one or more computer processors and a non-transitory computer-readable storage medium storing instructions executable by the one or more computer processors to cause the one or more computer processors to perform operations. The operations include receiving a signal representing the condition from the sensor. The operations include comparing the signal representing the condition to the instructions. The operations include, responsive to the comparison of the signal representing the condition and the instructions, generating a command signal to operate the magnetic wheel sub-assembly or the well tool.
The assembly includes a power sub-assembly to supply power to the control sub-assembly and the well tool. In some implementations, where the power sub-assembly includes a turbine, the method further includes generating electrical power responsive to a wellbore fluid flow and suppling the power to the power sub-assembly to electrically power the control sub-assembly or the well tool.
The assembly includes a backup retrieval mechanism mechanically coupled to the body. The backup retrieval mechanism couples to a retrieval tool.
The method includes sensing a condition, transmitting a signal representing the condition to the control sub-assembly, comparing the condition to the instruction, and responsive to the comparison of the signal representing the condition and the instruction, generating a command signal to operate the magnetic wheel sub-assembly or the well tool by the control sub-assembly.
In some implementations, where the well tool includes a brush coupled to the tool connection, the method further includes brushing a surface of the wellbore with the brush to clean the surface of the wellbore.
In some implementations, the method further includes engaging the magnetic wheel sub-assemblies to the surface of the wellbore. In some implementations, the method further includes rotating the magnetic wheel sub-assemblies while engaged to the surface of the wellbore. In some implementations, the method further includes, responsive to rotating the magnetic wheel sub-assemblies, repositioning the wellbore maintenance and inspection assembly in the wellbore. In some implementations, the method further includes stopping rotating the plurality of magnetic wheel sub-assemblies.
In some implementations, the method further includes locking the magnetic wheel sub-assemblies. Locking the magnetic wheel sub-assemblies prevents rotation of the magnetic wheel sub-assemblies. In some implementations, the method further includes engaging the locked magnetic wheel sub-assemblies to the surface of the wellbore. In some implementations, the method further includes, responsive to engaging the locked magnetic wheel sub-assemblies to the surface of the wellbore, maintaining the position of the wellbore maintenance and inspection assembly in the wellbore. In some implementations, the method further includes disengaging the locked magnetic wheel sub-assemblies from the surface of the wellbore. In some implementations, the method further includes unlocking the magnetic wheel sub-assemblies. Unlocking the magnetic wheel sub-assemblies allows rotation of the magnetic wheel sub-assemblies.
In some implementations, where the condition is the dimension of the wellbore, the method further includes receiving, at the controller, a first dimension of the wellbore. The method further includes receiving, at the controller, a second dimension of the wellbore. The method further includes comparing, by the controller, the first dimension to the second dimension. The method further includes, responsive to the comparison of the first dimension of the wellbore to the second dimension of the wellbore, where the comparison indicates the wellbore narrowing, generating, by the controller, a command signal to reposition the magnetic wheel sub-assemblies relative to the body in response to the wellbore narrowing. The method further includes, where the comparison indicates the wellbore widening, generating, by the controller, a command signal to reposition the magnetic wheel sub-assemblies relative to the body in response to the wellbore widening.
The details of one or more implementations of the subject matter described in this disclosure are set forth in the accompanying drawings and the description below. Other features, aspects, and advantages of the subject matter will become apparent from the description, the drawings, and the claims.
The present disclosure describes a system and a method for maintaining and inspecting a wellbore with a wellbore maintenance and inspection assembly. The assembly includes a body to be disposed in a wellbore. The assembly include a magnetic wheel assembly which includes multiple magnetic wheel sub-assemblies, each adjustably coupled to the body. The magnetic wheel assembly positions the body within the wellbore and repositions the magnetic wheel sub-assemblies relative to the body in response to a wellbore narrowing or a wellbore widening. The assembly includes a tool connection coupled to the body. The tool connection couples a well tool to the body.
The assembly includes a control sub-assembly coupled to the body, the magnetic wheel assembly, and the tool connection. The control sub-assembly controls the magnetic wheel assembly and operates the well tool within the wellbore. The assembly includes a power sub-assembly to supply power to the control sub-assembly and the well tool. The assembly includes a backup retrieval mechanism coupled to the body. The backup retrieval mechanism couples to a retrieval tool.
Implementations of the present disclosure realize one or more of the following advantages. Preventative and corrective maintenance on wellbore completion assembly components can be conducted a shorter time period. For example, a corroded or blocked tubular can be inspected and cleaned in a single operation. A tubular restriction can be navigated. The assembly can reduce its overall diameter to move through the tubular restriction. Multiple sizes of tubulars can be cleaned by the same wellbore maintenance and inspection assembly. For example, the assembly can actuate to maintain contact on tubulars of different inner diameters. Additionally, environmental safety is improved. For example, a wellbore containing tubulars of multiple sizes or with various internal restrictions can be inspected with a single wellbore maintenance and inspection assembly to insure component structural integrity and verify proper component operation. Ease of maintenance is improved as a workover rig or slickline logging tool surface equipment is not needed. The assembly is disposed in the wellbore without the workover rig or slickline logging tool surface equipment. For an offshore wellbore, a support barge is not needed. Also, the wellbore tubular and components can be maintained or inspected axially (in multiple directions) within the without surface interference, or in other words, the assembly operates autonomously or semi-autonomously. Retrieval of a wellbore maintenance and inspection assembly is simplified. For example, the assembly self-retrieves from the wellbore. A drilling rig or workover rig is not needed for assembly retrieval operations.
The pressurized liquid and gaseous phases of various fluids and chemicals including water, oils, and hydrocarbon gases contain particulates and debris 118 can adhere to an inner surface 120 of the casing 112. The particulates and debris 118 accumulate on the inner surface 120 of the casing 112 and cause a restriction 122 in water, oils, and hydrocarbon gas flow to the surface 110 of the Earth. Additionally, some of the gases, fluids, and chemicals are corrosive to wellbore components. The corrosive gases, fluids and chemicals can cause corrosion which accumulates to contribute to the restriction 122 or cause component failure. For example, an accumulation of corrosion on a valve (not shown) can result in the valve failing to open or shut properly. The wellbore maintenance and inspection assembly 102 can be configured to remove the restriction 122 by cleaning the inner surface 120 of the casing 112. Alternatively, the corrosive gases, fluids, and chemicals eat away a portion of the wellbore components. For example, a portion 124 of the casing 112 can be eaten away or removed by the corrosive gases, fluids, and chemicals. Removal of the portion 124 of the casing 112 can compromise the structural integrity of the wellbore 104 or the casing 112. The assembly 102 can be configured to inspect the inner surface 120 of the casing 112.
The assembly 102 includes a body 126. The body 126 is disposed in the wellbore 104.
Referring to
The magnetic wheel sub-assembly 130a includes a hydraulic arm 208a coupled to the magnetic wheel 204a and the body 126. The hydraulic arm 208a positions the magnetic wheel 204a in contact with the inner surface 120 of the casing 112. The hydraulic arm 208a changes in a length 210 to move the magnetic wheel 204a relative to the body 126 and engage or disengage from the inner surface 120 of the casing 112. The hydraulic arm 208a includes a hydraulic piston rod 212a coupled to the magnetic wheel 204a. The hydraulic piston rod 212a moves inside a hydraulic cylinder 214a when operated by a hydraulic piston (not shown) contained within the hydraulic cylinder 214.
The magnetic wheel 204a is mechanically and electrically coupled to the hydraulic arm 208a and the hydraulic piston rod 212a by a suspension fork 230a. The suspension fork 230a transfers power from a drive spring arm 218a, described below, to the magnetic wheel 204a.
The magnetic wheel sub-assemblies 130b-f each include a hydraulic arm, a hydraulic piston rod, a hydraulic cylinder, and a hydraulic piston substantially similar to the hydraulic arm 208a, the hydraulic piston rod 212a, the hydraulic cylinder 214a, and the hydraulic piston (not shown) previously discussed. The magnetic wheel sub-assembly 130b includes a hydraulic arm 208b, a hydraulic piston rod 212b, a hydraulic cylinder 214b, and a hydraulic piston (not shown). The magnetic wheel sub-assembly 130c includes a hydraulic arm 208c, a hydraulic piston rod 212c, a hydraulic cylinder 214c, and a hydraulic piston (not shown). The magnetic wheel sub-assembly 130d includes a hydraulic arm 208d, a hydraulic piston rod 212d, a hydraulic cylinder 214d, and a hydraulic piston (not shown). The magnetic wheel sub-assembly 130e includes a hydraulic arm (not shown), a hydraulic piston rod (not shown), a hydraulic cylinder (not shown), and a hydraulic piston (not shown). The magnetic wheel sub-assembly 130f includes a hydraulic arm 208f, a hydraulic piston rod 212f, a hydraulic cylinder 214f, and a hydraulic piston (not shown).
The magnetic wheel sub-assembly 130a includes a support arm 216a coupled to hydraulic arm 208a and the body 126 to support the hydraulic arm 208a. The support arm 216a provides structural rigidity to the hydraulic arm 208a. The support arm 216a is a movable mechanism with a knuckle joint (not shown) to allow the support arm 216a to move laterally and adjust according to the casing 112 dimensions as described later in reference to
The magnetic wheel sub-assembly 130a includes a drive spring arm 218a coupled to the magnetic wheel 204a and the body 126. The drive spring arm 218a is coupled to the body 126 by a pivot joint 220a. The pivot joint 220a allows the drive spring arm 218a to articulate in response to a change in the length 210 of the hydraulic arm 208a. The drive spring arm 218a is coupled to the magnetic wheel 204a by a spring assembly 222a. The spring assembly 222a adjusts an overall length 224 of the drive spring arm 218a in response to a change in the overall length of the hydraulic arm 208a. The drive spring arm 218a includes a geared drive mechanism (not shown) similar to a tractor shaft, to operate the magnetic wheel 204a, causing the magnetic wheel 204a to rotate.
The magnetic wheel sub-assemblies 130b-f each include a drive spring arm, pivot joint, spring assembly, and geared drive mechanism substantially similar to the drive spring arm 218a, pivot joint 220a, spring assembly 222a, and geared drive mechanism (not shown) previously discussed. The magnetic wheel sub-assembly 130b includes a drive spring arm 218b, pivot joint 220b, spring assembly 222b, and geared drive mechanism (not shown). The magnetic wheel sub-assembly 130c includes a drive spring arm 218c, pivot joint 220c, spring assembly 222c, and geared drive mechanism (not shown). The magnetic wheel sub-assembly 130d includes a drive spring arm 218d, pivot joint 220d, spring assembly 222d, and geared drive mechanism (not shown). The magnetic wheel sub-assembly 130e includes a drive spring arm (not shown), pivot joint (not shown), spring assembly (not shown), and geared drive mechanism (not shown). The magnetic wheel sub-assembly 130f includes a drive spring arm 218f, pivot joint 220f, spring assembly (not shown), and geared drive mechanism (not shown).
The magnetic wheel assembly 1502 is generally similar to the magnetic wheel assembly 128 previously described. The magnetic wheel assembly 1502 includes multiple magnetic wheel sub-assemblies 1504a, 1504b, 1504c, 1504d, 1504e, and 1504f adjustably coupled to the body 126. In some cases, the magnetic wheel assembly 128 can include fewer or more magnetic wheel sub-assemblies. For example, the magnetic wheel assembly 128 can include two, three, four, five, eight, nine, ten, or twelve more magnetic wheel sub-assemblies. The magnetic wheel assembly 128 positions the body 126 within the wellbore 104. Substantially similarly functionally to the magnetic wheel assembly 128, as described in respect to
Referring to
A second chain 1506b is mechanically and magnetically coupled to a second pair of magnetic wheel sub-assemblies 1504c and 1504d. A third chain 1506c is mechanically and magnetically coupled to a third pair of magnetic wheel sub-assemblies 1504e and 1504f. The second chain 1506b and the third chain 1506c are substantially similar to the first chain 1506a previously described. Otherwise, the magnetic wheel assembly 1502 is substantially similar to the magnetic wheel assembly 128 previously described.
The hydraulic sub-assembly 802 includes a hydraulic valve 806. The hydraulic valve 806 controls the fluid flow to and from the hydraulic fluid supply reservoir 804 through multiple hydraulic conduits to each of the magnetic wheel sub-assemblies 130a-f. A first hydraulic conduit 808a fluidically connects the hydraulic fluid supply reservoir 804 to the hydraulic valve 806. A second hydraulic conduit 808b fluidically connects the hydraulic valve 806 to the hydraulic arm 208a. A third hydraulic conduit 808c fluidically connects the hydraulic valve 806 to the hydraulic arm 208b. A fourth hydraulic conduit 808d fluidically connects the hydraulic valve 806 to the hydraulic arm 208c. A fifth hydraulic conduit 808e fluidically connects the hydraulic valve 806 to the hydraulic arm 208d. A sixth hydraulic conduit (not shown) fluidically connects the hydraulic valve 806 to the hydraulic arm 208e (shown in
Referring to
Referring to
Referring to
Referring to
As shown in
The brush assembly 140 includes a multiple brush heads 916a and 916b to scrape and clean the inner surface 120 of the wellbore 104. The brush heads 916a and 916b are each mechanically coupled to a brush shaft, 918a and 918b respectively. The brush drive shafts 918a and 918b rotate to cause the brush heads 916a and 916b to rotate. The brush drive shafts 918a and 918b are mechanically coupled to a gearbox 920. The gearbox is also mechanically coupled to a rotatable shaft 922. The rotatable shaft 922 is mechanically coupled a gear connection 924. The gear connection 924 is mechanically coupled to a tool motor 926. The tool motor 926 is positioned within the box connection 908. The tool motor 926 is electrically coupled to and powered by a battery 928. Alternatively or in addition, the brush assembly 140 can be powered by the assembly 102 as described later in reference to
The tool motor 926 operates to rotate the gear connection 924. The gear connection 924 rotates the rotatable shaft 922, which in turn rotates the gearbox 920. The gearbox 920 changes the direction and splits the rotational energy to rotate each of the brush drive shafts 918a and 918b, which then in turn each rotate the brush heads 916a and 916b, respectively.
The tool 138 can include one or multiple implements (such as the brush assembly 140) to perform one or multiple maintenance or inspection tasks. Additionally or alternatively the tool 138 can be a survey tool to measure conditions of the wellbore 104. For example, the tool 138 can be a temperature sensor, a pressure sensor, a flow rate sensor, or a caliper. Additionally or alternatively, the tool 138 can be an inclination measurement tool such as a drift tool.
Referring to
Referring to
The power sub-assembly 810 includes a battery 818. The battery 818 stores electrical power. The battery 818 supplies electrical power to the motor 814, the control sub-assembly 812, and the tool 138. The battery 818 is electrically coupled to the motor 814 by a power cable 820a. The battery 818 is electrically coupled to the control sub-assembly 812 by a power cable 820b. The battery 818 is electrically coupled to the tool 138 by a power cable 820c.
In some cases, as shown in
Referring to
The control sub-assembly 812 includes a controller 826. The controller 826 can be a computer and a microprocessor. The controller 826 has one or more sets of programmed instructions stored in a memory or other non-transitory computer-readable media that stores data (e.g., connected with the printed circuit board), which can be accessed and processed by a microprocessor. The programmed instructions can include, for example, instructions for sending or receiving signals and commands to operate the magnetic wheel sub-assemblies 130a-f, operate the tool 138, and/or collect and store data from a sensor 828. The controller 826 stores values (signals and commands) against which sensed values (signals and commands) representing the condition are compared.
The sensor 828 is positioned within the body 126. The sensor 828 senses a condition in the wellbore 104 and transmits a signal representing the condition to the controller 826. For example, the sensor can sense a pressure, a temperature, a flow rate, a depth, a conductivity, a pH, a dimension of the wellbore 104, an orientation of the body 126 relative to the wellbore 104 and the surface 110 of the Earth, or an optical condition of the wellbore 104.
The controller 826 receives the signal representing the condition from the sensor 828. The controller 826 then compares the signal representing the wellbore condition to the instructions. The recorded values are stored for the logging purposes and evaluated at the surface, similar to other logging tools. While running into or out of the wellbore 104, the controller 826 follows the trajectory that is stored in the processor and keep matching. Additionally, a maximum operating temperature and pressure values can be sensed and stored in the controller 826 when the controller 826 measure any value greater than a maximum operating limit (a maximum safe operating temperature of pressure), the assembly 102 can stop running into (deeper into the) wellbore 104 and proceed toward the surface 110 until a safe operating temperature or pressure is sensed.
In response to the comparison of the signal representing the wellbore condition and the instructions, the controller 826 generates a command signal to operate the magnetic wheel sub-assemblies 130a-f or the tool 138. The command signal can operate the magnetic wheel sub-assemblies 130a-f to rotate, stop rotating, or lock one or more of the magnetic wheels by operating the gearbox assembly 816 to control the gearbox linkages 830 as described in reference to
The command signal can operate the magnetic wheel sub-assemblies 130a-f to extend or retract the hydraulic arms 208a-f as described in reference to
In a similar manner, the controller 826 generates a command signal to reposition the magnetic wheel sub-assemblies 130b, 130d, and 130f relative to the body 126 in response to the wellbore widening 604, then the magnetic wheel sub-assemblies 130a, 130c, and 130e relative to the wellbore widening 604. The controller 826 receives the second dimension 614 of the casing 112. Then, the controller 826 receives the first dimension 612 of the casing 112. The controller 826 then compares the second dimension 614 to the first dimension 612. In response to the comparison of the second dimension 614 and first dimension 612 indicating the wellbore widening 604, the controller generates a command signal to reposition the magnetic wheel sub-assemblies 130b, 130d, and 130f relative to the body 126 in response to a wellbore widening 604. As the assembly 102 continues through the wellbore widening 604, the controller 826 generates a command signal to reposition the magnetic wheel sub-assemblies 130a, 130c, and 130e relative to the body 126.
The control sub-assembly 812 includes a telemetry receiver 832. The telemetry receiver 832 receives a reprogramming signal from a remote control station (not shown). The remote control station can be an operating station at the surface 110 which transmits the reprogramming signal through the wellbore 104 and is received by the telemetry receiver 832. For example, the telemetry receiver 832 can be an antenna. The reprogramming signal instructs the one or more computer processors to perform a different operation from the operation stored in the non-transitory computer-readable storage medium. For example, when the assembly 102 includes multiple tools 138 and an operator re-tasks the assembly 102 based on a sensed wellbore condition, for example, excessive debris 118 requiring a specific type of brush assembly 140 to clean, the operator can direct the brush assembly 140 to be exchanged, such as between a wire bristle brush or a nylon bristle brush. For example, when the assembly 102 approaches the wellbore narrowing 602 to narrow to pass, the operator can direct the assembly 102 to return to the surface 110 or enter another portion of the wellbore 104, for example a lateral branch of a multi-lateral well. For example, when the assembly 102 become stuck in the wellbore 104, the operator can send a command to the assembly 102 to transmit any stored data so the operator can evaluate downhole conditions (for example pressure and temperature. The operator can then use the downhole conditions to prepare a plan to mechanically retrieve the assembly 102 as described in reference to
At 1308, the controller 826 compares the signal representing the condition requiring a maintenance task, for example, the restriction 122, to a previous condition indicating that no maintenance task was required, for example a casing diameter or surface condition (cleanliness, pitting). At 1310, when the controller 826 determines that no action is needed based on the results of the comparison, the controller 826 records data correlating to the location and condition for further analysis and returns to step 1302. When the controller 826 determines that action is needed based on the results of the comparison, the controller 826 generates a command signal to the tool 138 to operate while the condition requiring the maintenance task is met. The controller 826 saves data correlating to the location and condition. For example, when the controller 826 senses the restriction 122 due to debris 118 accumulation, the controller 826 generates a commands signal to the brush assembly 140 to engage the inner surface and rotate, removing the restriction 122.
At 1312, the sensor 828 senses a condition indicating that the maintenance task is no longer required. For example, the accumulation of debris 118 creating the restriction 122 is clear. For example, the sensor 828 senses when the pressure, the flow rate, the dimension of the casing 112, or the optical condition indicate the restriction 122 is removed. At 1314, the sensor 828 generates a signal representing the condition indicating that the maintenance task is no longer required, for example, the restriction 122 is removed. At 1316, the sensor 828 transmits the signal representing the condition indicating that the maintenance task is no longer required, for example, the restriction 122 is removed, to the controller 826.
At 1318, the controller 826 compares the signal representing the condition indicating that the maintenance task is no longer required (the restriction 122 is removed) to another condition, for example the previous condition indicating that the maintenance task is required (the restriction 122 in the casing 112). At 1320, when the controller 826 determines that action is no longer needed, the controller records data correlating to the location and condition for further analysis and returns to step 1302. When the controller 826 determines that further action is needed, the controller 826 generates a command signal to the tool 138 to continue operating while the condition is met. The controller 826 saves data correlating to the location and condition of the condition.
The sensor senses a condition and transmits a signal representing the condition. The condition is one or more of a pressure, a temperature, a depth, a conductivity, a pH, a dimension of the wellbore, or an orientation of the body relative to the wellbore and a surface of the Earth. The control sub-assembly is coupled to the body. The control sub-assembly is operatively coupled to the magnetic wheel assembly and to the tool connection. The control sub-assembly includes one or more computer processors and a non-transitory computer-readable storage medium storing instructions executable by the one or more computer processors to cause the one or more computer processors to perform operations. The operations include receiving a signal representing the condition from the sensor; comparing the signal representing the wellbore condition to the instructions; and responsive to the comparison of the signal representing the wellbore condition and the instructions; generating a command signal to operate the magnetic wheel sub-assembly or the well tool.
The power sub-assembly supplies power to the control sub-assembly and the well tool. The backup retrieval mechanism is coupled to the body. The backup retrieval mechanism couples a retrieval tool to the body.
At 1402, a wellbore condition is sensed. For example, the sensor 828 senses a condition requiring a maintenance task (the accumulation of debris 118 creating the restriction 122). For example, the sensor 828 can sense where the pressure, the flow rate, the dimension of the casing 112, or the optical condition indicate the restriction 122 in the casing 112. At 1404, a signal representing the wellbore condition is transmitted to the control sub-assembly. For example, the sensor 828 senses the wellbore narrowing 602 caused by a change in casing 112 size.
At 1406, the wellbore condition is compared to the instruction. The controller 826 compares the signal representing the condition requiring a maintenance task, for example, the restriction 122, to a previous condition indicating that no maintenance task was required, for example a casing diameter or surface condition (cleanliness, pitting). For example, the controller 826 compares the casing 112 first dimension 612 (inner diameter) to the wellbore narrowing 602 second dimension 614.
At 1408, responsive to the comparison of the signal representing the wellbore condition and the instruction, a command signal is generated to operate the magnetic wheel sub-assembly or the well tool by the control sub-assembly. Where the well tool includes a brush, the command signal directs the well tool to brush a surface of the wellbore to clean the surface of the wellbore. For example, the magnetic wheel sub-assemblies 130b, 130f, and 130d actuate to navigate the assembly 102 into the wellbore narrowing 602.
The command signal can direct the magnetic wheel assembly to engage the magnetic wheel sub-assemblies to the surface of the wellbore. The command signal can direct the magnetic wheel assembly to rotating the magnetic wheel sub-assemblies while engaged to the surface of the wellbore. Responsive to rotating the magnetic wheel sub-assemblies, the wellbore maintenance and inspection assembly is repositioned in the wellbore. The command signal and direct the magnetic wheel sub-assemblies to stop rotating.
The command signal can direct the magnetic wheel assembly to lock the magnetic wheel sub-assemblies. Locking the magnetic wheel sub-assemblies prevents rotation of the magnetic wheel sub-assemblies. The command signal can direct the magnetic wheel assembly to engage the locked magnetic wheel sub-assemblies to the surface of the wellbore. Responsive to engaging the locked magnetic wheel sub-assemblies to the surface of the wellbore, the wellbore maintenance and inspection assembly is maintained the position of in the wellbore. The command signal can direct the magnetic wheel assembly to disengage the locked magnetic wheel sub-assemblies from the surface of the wellbore. The command signal can direct the magnetic wheel assembly to unlock the magnetic wheel sub-assemblies. Unlocking the magnetic wheel sub-assemblies allows rotation of the magnetic wheel sub-assemblies.
In some implementations, the power sub-assembly includes a turbine. Where the power sub-assembly includes a turbine, the method further includes generating power responsive to a wellbore fluid flow. The method then includes supplying the power to the power sub-assembly to power the control sub-assembly or the well tool.
In some implementations, where the condition is the dimension of the wellbore, the method includes receiving a first dimension of the wellbore. The method includes receiving a second dimension of the wellbore. The method includes comparing the first dimension to the second dimension. The method includes, responsive to the comparison of the first dimension of the wellbore to the second dimension of the wellbore, where the comparison indicates the wellbore narrowing, generating a command signal to reposition the magnetic wheel sub-assemblies relative to the body in response to the wellbore narrowing. The method includes, where the comparison indicates the wellbore widening, generating a command signal to reposition the magnetic wheel sub-assemblies relative to the body in response to the wellbore widening.
Although the following detailed description contains many specific details for purposes of illustration, it is understood that one of ordinary skill in the art will appreciate that many examples, variations, and alterations to the following details are within the scope and spirit of the disclosure. Accordingly, the example implementations described herein and provided in the appended figures are set forth without any loss of generality, and without imposing limitations on the claimed implementations.
Although the present implementations have been described in detail, it should be understood that various changes, substitutions, and alterations can be made hereupon without departing from the principle and scope of the disclosure. Accordingly, the scope of the present disclosure should be determined by the following claims and their appropriate legal equivalents.
Number | Name | Date | Kind |
---|---|---|---|
880404 | Sanford | Feb 1908 | A |
1033655 | Baker | Jul 1912 | A |
1258273 | Titus et al. | Mar 1918 | A |
1392650 | Mcmillian | Oct 1921 | A |
1491066 | Patrick | Apr 1924 | A |
1580352 | Ercole | Apr 1926 | A |
1591264 | Baash | Jul 1926 | A |
1621947 | Moore | Mar 1927 | A |
1638494 | Lewis et al. | Aug 1927 | A |
1789993 | Switzer | Jan 1931 | A |
1896236 | Howard | Feb 1933 | A |
1896482 | Crowell | Feb 1933 | A |
1897297 | Brown | Feb 1933 | A |
1949498 | Frederick et al. | Mar 1934 | A |
2047774 | Greene | Jul 1936 | A |
2121002 | Baker | Jun 1938 | A |
2121051 | Ragan et al. | Jun 1938 | A |
2187487 | Burt | Jan 1940 | A |
2189697 | Baker | Feb 1940 | A |
2222233 | Mize | Nov 1940 | A |
2286075 | Evans | Jun 1942 | A |
2304793 | Bodine | Dec 1942 | A |
2316402 | Canon | Apr 1943 | A |
2327092 | Botkin | Aug 1943 | A |
2377249 | Lawrence | May 1945 | A |
2411260 | Glover et al. | Nov 1946 | A |
2481637 | Yancey | Sep 1949 | A |
2546978 | Collins et al. | Apr 1951 | A |
2638988 | Williams | May 1953 | A |
2935020 | Howard | Aug 1953 | A |
2663370 | Robert et al. | Dec 1953 | A |
2672199 | McKenna | Mar 1954 | A |
2701019 | Steed | Feb 1955 | A |
2707998 | Baker et al. | May 1955 | A |
2708973 | Twining | May 1955 | A |
2728599 | Moore | Dec 1955 | A |
2734581 | Bonner | Feb 1956 | A |
2745693 | Mcgill | May 1956 | A |
2751010 | Trahan | Jun 1956 | A |
2762438 | Naylor | Sep 1956 | A |
2778428 | Baker et al. | Jan 1957 | A |
2806532 | Baker et al. | Sep 1957 | A |
2881838 | Morse et al. | Apr 1959 | A |
2887162 | Le Bus et al. | May 1959 | A |
2912053 | Bruekelman | Nov 1959 | A |
2912273 | Chadderdon et al. | Nov 1959 | A |
2915127 | Abendroth | Dec 1959 | A |
2947362 | Smith | Aug 1960 | A |
2965175 | Ransom | Dec 1960 | A |
2965177 | Le Bus et al. | Dec 1960 | A |
2965183 | Le Bus et al. | Dec 1960 | A |
3005506 | Le Bus et al. | Oct 1961 | A |
3023810 | Anderson | Mar 1962 | A |
3116799 | Lemons | Jan 1964 | A |
3147536 | Lamphere | Sep 1964 | A |
3191677 | Kinley | Jun 1965 | A |
3225828 | Wisenbaker et al. | Dec 1965 | A |
3308886 | Evans | Mar 1967 | A |
3352593 | Webb | Nov 1967 | A |
3369603 | Trantham | Feb 1968 | A |
3376934 | William | Apr 1968 | A |
3380528 | Durwood | Apr 1968 | A |
3381748 | Peters et al. | May 1968 | A |
3382925 | Jennings | May 1968 | A |
3409084 | Lawson, Jr. et al. | Nov 1968 | A |
3437136 | Young | Apr 1969 | A |
3554278 | Reistle | Jan 1971 | A |
3667721 | Vujasinovic | Jun 1972 | A |
3747674 | Murray | Jul 1973 | A |
3752230 | Bernat et al. | Aug 1973 | A |
3897038 | Le Rouax | Jul 1975 | A |
3915426 | Le Rouax | Oct 1975 | A |
3955622 | Jones | May 1976 | A |
4030354 | Scott | Jun 1977 | A |
4039798 | Lyhall et al. | Aug 1977 | A |
4042019 | Henning | Aug 1977 | A |
4059155 | Greer | Nov 1977 | A |
4099699 | Allen | Jul 1978 | A |
4190112 | Davis | Feb 1980 | A |
4215747 | Cox | Aug 1980 | A |
4227573 | Pearce et al. | Oct 1980 | A |
4254983 | Harris | Mar 1981 | A |
4276931 | Murray | Jul 1981 | A |
4285400 | Mullins | Aug 1981 | A |
4289200 | Fisher | Sep 1981 | A |
4296822 | Ormsby | Oct 1981 | A |
4325534 | Roark et al. | Apr 1982 | A |
4349071 | Fish | Sep 1982 | A |
4391326 | Greenlee | Jul 1983 | A |
4407367 | Kydd | Oct 1983 | A |
4412130 | Winters | Oct 1983 | A |
4413642 | Smith et al. | Nov 1983 | A |
4422948 | Corley et al. | Dec 1983 | A |
4467996 | Baugh | Aug 1984 | A |
4478286 | Fineberg | Oct 1984 | A |
4515212 | Krugh | May 1985 | A |
4538684 | Sheffield | Sep 1985 | A |
4562888 | Collet | Jan 1986 | A |
4603578 | Stolz | Aug 1986 | A |
4611658 | Salerni et al. | Sep 1986 | A |
4616721 | Furse | Oct 1986 | A |
4696502 | Desai | Sep 1987 | A |
4791992 | Greenlee et al. | Dec 1988 | A |
4834184 | Streich et al. | May 1989 | A |
4836289 | Young | Jun 1989 | A |
4869321 | Hamilton | Sep 1989 | A |
4877085 | Pullig, Jr. | Oct 1989 | A |
4898240 | Wittrisch | Feb 1990 | A |
4898245 | Braddick | Feb 1990 | A |
4928762 | Mamke | May 1990 | A |
4953617 | Ross et al. | Sep 1990 | A |
4997225 | Denis | Mar 1991 | A |
5012863 | Springer | May 1991 | A |
5013005 | Nance | May 1991 | A |
5054833 | Bishop et al. | Oct 1991 | A |
5060737 | Mohn | Oct 1991 | A |
5117909 | Wilton et al. | Jun 1992 | A |
5129956 | Christopher et al. | Jul 1992 | A |
5176208 | Lalande et al. | Jan 1993 | A |
5178219 | Streich et al. | Jan 1993 | A |
5197547 | Morgan | Mar 1993 | A |
5203646 | Landsberger et al. | Apr 1993 | A |
5257669 | Kerley | Nov 1993 | A |
5295541 | Ng et al. | Mar 1994 | A |
5330000 | Givens et al. | Jul 1994 | A |
5343946 | Morrill | Sep 1994 | A |
5348095 | Worrall | Sep 1994 | A |
5358048 | Brooks | Oct 1994 | A |
5392715 | Pelrine | Feb 1995 | A |
5456312 | Lynde et al. | Oct 1995 | A |
5507346 | Gano et al. | Apr 1996 | A |
5580114 | Palmer | Dec 1996 | A |
5584342 | Swinford | Dec 1996 | A |
5605366 | Beeman | Feb 1997 | A |
5639135 | Beeman | Jun 1997 | A |
5667015 | Harestad et al. | Sep 1997 | A |
5673754 | Taylor | Oct 1997 | A |
5678635 | Dunlap et al. | Oct 1997 | A |
5685982 | Foster | Nov 1997 | A |
5698814 | Parsons | Dec 1997 | A |
5775420 | Mitchell et al. | Jul 1998 | A |
5806596 | Hardy et al. | Sep 1998 | A |
5833001 | Song et al. | Nov 1998 | A |
5842518 | Soybel et al. | Dec 1998 | A |
5875841 | Wright et al. | Mar 1999 | A |
5881816 | Wright | Mar 1999 | A |
5899796 | Kamiyama et al. | May 1999 | A |
5924489 | Hatcher | Jul 1999 | A |
5931443 | Corte, Sr. | Aug 1999 | A |
5944101 | Hearn | Aug 1999 | A |
6070665 | Singleton et al. | Jun 2000 | A |
6112809 | Angle | Sep 2000 | A |
6130615 | Poteet | Oct 2000 | A |
6138764 | Scarsdale et al. | Oct 2000 | A |
6155428 | Bailey et al. | Dec 2000 | A |
6247542 | Kruspe et al. | Jun 2001 | B1 |
6273189 | Gissler et al. | Aug 2001 | B1 |
6276452 | Davis et al. | Aug 2001 | B1 |
6371204 | Singh et al. | Apr 2002 | B1 |
6378627 | Tubel et al. | Apr 2002 | B1 |
6491108 | Slup et al. | Dec 2002 | B1 |
6510900 | Dallas | Jan 2003 | B2 |
6510947 | Schulte et al. | Jan 2003 | B1 |
6595289 | Tumlin et al. | Jul 2003 | B2 |
6637511 | Linaker | Oct 2003 | B2 |
6679330 | Compton et al. | Jan 2004 | B1 |
6688386 | Cornelssen | Feb 2004 | B2 |
6698712 | Milberger et al. | Mar 2004 | B2 |
6729392 | DeBerry et al. | May 2004 | B2 |
6768106 | Gzara et al. | Jul 2004 | B2 |
6808023 | Smith et al. | Oct 2004 | B2 |
6811032 | Schulte et al. | Nov 2004 | B2 |
6854521 | Echols et al. | Feb 2005 | B2 |
6880639 | Rhodes et al. | Apr 2005 | B2 |
6899178 | Tubel | May 2005 | B2 |
6913084 | Boyd | Jul 2005 | B2 |
7049272 | Sinclair et al. | May 2006 | B2 |
7051810 | Halliburton | May 2006 | B2 |
7082994 | Frost, Jr. et al. | Aug 2006 | B2 |
7090019 | Barrow et al. | Aug 2006 | B2 |
7096950 | Howlett et al. | Aug 2006 | B2 |
7117941 | Gano | Oct 2006 | B1 |
7117956 | Grattan et al. | Oct 2006 | B2 |
7128146 | Baugh | Oct 2006 | B2 |
7150328 | Marketz et al. | Dec 2006 | B2 |
7174764 | Oosterling et al. | Feb 2007 | B2 |
7188568 | Stout | Mar 2007 | B2 |
7188674 | McGavern, III et al. | Mar 2007 | B2 |
7188675 | Reynolds | Mar 2007 | B2 |
7218235 | Rainey | May 2007 | B1 |
7231975 | Lavaure et al. | Jun 2007 | B2 |
7249633 | Ravensbergen et al. | Jul 2007 | B2 |
7275591 | Allen et al. | Oct 2007 | B2 |
7284611 | Reddy et al. | Oct 2007 | B2 |
7303010 | de Guzman et al. | Dec 2007 | B2 |
7363860 | Wilson | Apr 2008 | B2 |
7383889 | Ring | Jun 2008 | B2 |
7389817 | Almdahl | Jun 2008 | B2 |
7398832 | Brisco | Jul 2008 | B2 |
7405182 | Verrett | Jul 2008 | B2 |
7418860 | Austerlitz et al. | Sep 2008 | B2 |
7424909 | Roberts et al. | Sep 2008 | B2 |
7488705 | Reddy et al. | Feb 2009 | B2 |
7497260 | Telfer | Mar 2009 | B2 |
7533731 | Corre | May 2009 | B2 |
7591305 | Brookey et al. | Sep 2009 | B2 |
7600572 | Slup et al. | Oct 2009 | B2 |
7617876 | Patel et al. | Nov 2009 | B2 |
7621324 | Atencio | Nov 2009 | B2 |
7712527 | Roddy | May 2010 | B2 |
7735564 | Guerrero | Jun 2010 | B2 |
7762323 | Frazier | Jul 2010 | B2 |
7762330 | Saylor, III et al. | Jul 2010 | B2 |
7802621 | Richards et al. | Sep 2010 | B2 |
7878240 | Garcia | Feb 2011 | B2 |
7934552 | La Rovere | May 2011 | B2 |
7965175 | Yamano | Jun 2011 | B2 |
8002049 | Keese et al. | Aug 2011 | B2 |
8056621 | Ring et al. | Nov 2011 | B2 |
8069916 | Giroux et al. | Dec 2011 | B2 |
8157007 | Nicolas | Apr 2012 | B2 |
8201693 | Jan | Jun 2012 | B2 |
8210251 | Lynde et al. | Jul 2012 | B2 |
8376051 | McGrath et al. | Feb 2013 | B2 |
8424611 | Smith et al. | Apr 2013 | B2 |
8453724 | Zhou | Jun 2013 | B2 |
8496055 | Mootoo et al. | Jul 2013 | B2 |
8579024 | Mailand et al. | Nov 2013 | B2 |
8579037 | Jacob | Nov 2013 | B2 |
8596463 | Burkhard | Dec 2013 | B2 |
8662182 | Redlinger et al. | Mar 2014 | B2 |
8726983 | Khan | May 2014 | B2 |
8770276 | Nish et al. | Jul 2014 | B1 |
8899338 | Elsayed et al. | Dec 2014 | B2 |
8991489 | Redlinger et al. | Mar 2015 | B2 |
9079222 | Burnett et al. | Jul 2015 | B2 |
9109433 | DiFoggio et al. | Aug 2015 | B2 |
9133671 | Kellner | Sep 2015 | B2 |
9163469 | Broussard et al. | Oct 2015 | B2 |
9181782 | Berube et al. | Nov 2015 | B2 |
9212532 | Leuchtenberg et al. | Dec 2015 | B2 |
9234394 | Wheater et al. | Jan 2016 | B2 |
9353589 | Hekelaar | May 2016 | B2 |
9359861 | Burgos | Jun 2016 | B2 |
9410066 | Ghassemzadeh | Aug 2016 | B2 |
9416617 | Wiese et al. | Aug 2016 | B2 |
9441441 | Hickie | Sep 2016 | B1 |
9441451 | Jurgensmeier | Sep 2016 | B2 |
9528354 | Loiseau et al. | Dec 2016 | B2 |
9551200 | Read et al. | Jan 2017 | B2 |
9574417 | Laird et al. | Feb 2017 | B2 |
9617829 | Dale et al. | Apr 2017 | B2 |
9657213 | Murphy et al. | May 2017 | B2 |
9657884 | Carte | May 2017 | B1 |
9903192 | Entchev | Feb 2018 | B2 |
9976407 | Ash et al. | May 2018 | B2 |
10087752 | Bedonet | Oct 2018 | B2 |
10161194 | Clemens et al. | Dec 2018 | B2 |
10198929 | Snyder | Feb 2019 | B2 |
10202817 | Arteaga | Feb 2019 | B2 |
10266698 | Cano et al. | Apr 2019 | B2 |
10273770 | Van Der Ende | Apr 2019 | B2 |
10280706 | Sharp, III | May 2019 | B1 |
10301898 | Orban | May 2019 | B2 |
10301989 | Imada | May 2019 | B2 |
10544640 | Hekelaar et al. | Jan 2020 | B2 |
10584546 | Ford | Mar 2020 | B1 |
10626698 | Al-Mousa et al. | Apr 2020 | B2 |
10787888 | Andersen | Sep 2020 | B2 |
10837254 | Al-Mousa et al. | Nov 2020 | B2 |
10975654 | Neacsu et al. | Apr 2021 | B1 |
10982504 | Al-Mousa et al. | Apr 2021 | B2 |
11008824 | Al-Mousa et al. | May 2021 | B2 |
20020053428 | Maples | May 2002 | A1 |
20020060079 | Metcalfe et al. | May 2002 | A1 |
20020096322 | Barrett | Jul 2002 | A1 |
20020102136 | Holland | Aug 2002 | A1 |
20020195252 | Maguire | Dec 2002 | A1 |
20030047312 | Bell | Mar 2003 | A1 |
20030098064 | Kohli et al. | May 2003 | A1 |
20030132224 | Spencer | Jul 2003 | A1 |
20030150608 | Smith, Jr. et al. | Aug 2003 | A1 |
20030221840 | Whitelaw | Dec 2003 | A1 |
20040031940 | Biester | Feb 2004 | A1 |
20040040707 | Dusterhoft et al. | Mar 2004 | A1 |
20040065446 | Tran et al. | Apr 2004 | A1 |
20040074819 | Burnett | Apr 2004 | A1 |
20040095248 | Mandel | May 2004 | A1 |
20040168796 | Baugh et al. | Sep 2004 | A1 |
20040216891 | Maguire | Nov 2004 | A1 |
20050024231 | Fincher et al. | Feb 2005 | A1 |
20050056427 | Clemens et al. | Mar 2005 | A1 |
20050087585 | Copperthite et al. | Apr 2005 | A1 |
20050167097 | Sommers et al. | Aug 2005 | A1 |
20050263282 | Jeffrey et al. | Dec 2005 | A1 |
20050288819 | de Guzman | Dec 2005 | A1 |
20060082462 | Crook | Apr 2006 | A1 |
20060105896 | Smith et al. | May 2006 | A1 |
20060243453 | McKee | Nov 2006 | A1 |
20070114039 | Hobdy et al. | May 2007 | A1 |
20070137528 | Le Roy-Ddelage et al. | Jun 2007 | A1 |
20070181304 | Rankin et al. | Aug 2007 | A1 |
20070204999 | Cowie et al. | Sep 2007 | A1 |
20070256864 | Robichaux et al. | Nov 2007 | A1 |
20070256867 | DeGeare et al. | Nov 2007 | A1 |
20080007421 | Liu et al. | Jan 2008 | A1 |
20080087439 | Dallas | Apr 2008 | A1 |
20080236841 | Howlett et al. | Oct 2008 | A1 |
20080251253 | Lumbye | Oct 2008 | A1 |
20080314591 | Hales et al. | Dec 2008 | A1 |
20090194290 | Parks et al. | Aug 2009 | A1 |
20090250220 | Stamoulis | Oct 2009 | A1 |
20090308656 | Chitwood | Dec 2009 | A1 |
20100051265 | Hurst et al. | Mar 2010 | A1 |
20100193124 | Nicolas | Aug 2010 | A1 |
20100235018 | Christ | Sep 2010 | A1 |
20100258289 | Lynde et al. | Oct 2010 | A1 |
20100263856 | Lynde et al. | Oct 2010 | A1 |
20100270018 | Howlett | Oct 2010 | A1 |
20110036570 | La Rovere et al. | Feb 2011 | A1 |
20110056681 | Khan | Mar 2011 | A1 |
20110067869 | Bour et al. | Mar 2011 | A1 |
20110168411 | Braddick | Jul 2011 | A1 |
20110203794 | Moffitt et al. | Aug 2011 | A1 |
20110259609 | Hessels et al. | Oct 2011 | A1 |
20110273291 | Adams | Nov 2011 | A1 |
20110278021 | Travis et al. | Nov 2011 | A1 |
20120012335 | White et al. | Jan 2012 | A1 |
20120067447 | Ryan et al. | Mar 2012 | A1 |
20120085538 | Guerrero | Apr 2012 | A1 |
20120118571 | Zhou | May 2012 | A1 |
20120170406 | DiFoggio et al. | Jul 2012 | A1 |
20120285684 | Crow et al. | Nov 2012 | A1 |
20120325555 | Jette | Dec 2012 | A1 |
20130062055 | Tolman et al. | Mar 2013 | A1 |
20130134704 | Klimack | May 2013 | A1 |
20130213654 | Dewey et al. | Aug 2013 | A1 |
20130240207 | Frazier | Sep 2013 | A1 |
20130269097 | Alammari | Oct 2013 | A1 |
20130296199 | Ghassemzadeh | Nov 2013 | A1 |
20130299194 | Bell | Nov 2013 | A1 |
20140090898 | Moriarty | Apr 2014 | A1 |
20140138091 | Fuhst | May 2014 | A1 |
20140158350 | Castillo et al. | Jun 2014 | A1 |
20140189968 | Kim | Jul 2014 | A1 |
20140231068 | Isaksen | Aug 2014 | A1 |
20140251616 | O'Rourke et al. | Sep 2014 | A1 |
20140345367 | Mekid et al. | Nov 2014 | A1 |
20150013994 | Bailey et al. | Jan 2015 | A1 |
20150096738 | Atencio | Apr 2015 | A1 |
20150152704 | Tunget | Jun 2015 | A1 |
20150275649 | Orban et al. | Oct 2015 | A1 |
20160076327 | Glaser et al. | Mar 2016 | A1 |
20160084034 | Roane et al. | Mar 2016 | A1 |
20160130914 | Steele | May 2016 | A1 |
20160160106 | Jamison et al. | Jun 2016 | A1 |
20160237810 | Beaman et al. | Aug 2016 | A1 |
20160281458 | Greenlee | Sep 2016 | A1 |
20160305215 | Harris et al. | Oct 2016 | A1 |
20160340994 | Ferguson et al. | Nov 2016 | A1 |
20170044864 | Sabins et al. | Feb 2017 | A1 |
20170058628 | Wijk et al. | Mar 2017 | A1 |
20170067313 | Connell et al. | Mar 2017 | A1 |
20170089166 | Sullivan | Mar 2017 | A1 |
20180010418 | VanLue | Jan 2018 | A1 |
20180030809 | Harestad et al. | Feb 2018 | A1 |
20180058167 | Finol et al. | Mar 2018 | A1 |
20180187498 | Soto et al. | Jul 2018 | A1 |
20180209565 | Lingnau | Jul 2018 | A1 |
20180245427 | Jimenez et al. | Aug 2018 | A1 |
20180252069 | Abdollah et al. | Sep 2018 | A1 |
20180313715 | Cichosz | Nov 2018 | A1 |
20190024473 | Arefi | Jan 2019 | A1 |
20190049017 | McAdam et al. | Feb 2019 | A1 |
20190087548 | Bennett et al. | Mar 2019 | A1 |
20190186232 | Ingram | Jun 2019 | A1 |
20190203551 | Davis et al. | Jul 2019 | A1 |
20190284894 | Schmidt et al. | Sep 2019 | A1 |
20190284898 | Fagna et al. | Sep 2019 | A1 |
20190301258 | Li | Oct 2019 | A1 |
20190316424 | Robichaux et al. | Oct 2019 | A1 |
20190338615 | Landry | Nov 2019 | A1 |
20200032604 | Al-Ramadhan | Jan 2020 | A1 |
20200056446 | Al-Mousa et al. | Feb 2020 | A1 |
20200230668 | Baek | Jul 2020 | A1 |
20200240225 | King et al. | Jul 2020 | A1 |
20200384512 | Liu | Dec 2020 | A1 |
20210025259 | Al-Mousa et al. | Jan 2021 | A1 |
20210054696 | Golinowski et al. | Feb 2021 | A1 |
20210054706 | Al-Mousa et al. | Feb 2021 | A1 |
20210054708 | Al-Mousa et al. | Feb 2021 | A1 |
20210054710 | Neacsu et al. | Feb 2021 | A1 |
20210054716 | Al-Mousa et al. | Feb 2021 | A1 |
20210131212 | Al-Mousa et al. | May 2021 | A1 |
20210131215 | Al-Mousa et al. | May 2021 | A1 |
20210140267 | Al-Mousa et al. | May 2021 | A1 |
20210148503 | Fekrmandi | May 2021 | A1 |
20220080579 | Nelson | Mar 2022 | A1 |
Number | Date | Country |
---|---|---|
636642 | May 1993 | AU |
2007249417 | Nov 2007 | AU |
1329349 | May 1994 | CA |
2441138 | Mar 2004 | CA |
2762217 | May 2015 | CA |
2802988 | Oct 2015 | CA |
2879985 | Apr 2016 | CA |
2734032 | Jun 2016 | CA |
203292820 | Nov 2013 | CN |
103785923 | Jun 2016 | CN |
104712320 | Dec 2016 | CN |
107060679 | Aug 2017 | CN |
107191152 | Sep 2017 | CN |
107227939 | Oct 2017 | CN |
2545245 | Apr 2017 | DK |
2236742 | Aug 2017 | DK |
0792997 | Jan 1999 | EP |
2119867 | Nov 2009 | EP |
2964874 | Jan 2016 | EP |
2545245 | Apr 2017 | EP |
958734 | May 1964 | GB |
2021178 | Nov 1979 | GB |
2392183 | Feb 2004 | GB |
2396634 | Jun 2004 | GB |
2414586 | Nov 2005 | GB |
2425138 | Oct 2006 | GB |
2453279 | Jan 2009 | GB |
2492663 | Jan 2014 | GB |
333538 | Jul 2013 | NO |
20170293 | Aug 2018 | NO |
5503 | Apr 1981 | OA |
WO 1989012728 | Dec 1989 | WO |
WO 1996039570 | Dec 1996 | WO |
WO 2002090711 | Nov 2002 | WO |
WO 2004046497 | Jun 2004 | WO |
WO 2010132807 | Nov 2010 | WO |
WO 2012161854 | Nov 2012 | WO |
WO 2012164023 | Dec 2012 | WO |
WO 2013109248 | Jul 2013 | WO |
WO 2015112022 | Jul 2015 | WO |
WO 2016011085 | Jan 2016 | WO |
WO 2016040310 | Mar 2016 | WO |
WO 2016140807 | Sep 2016 | WO |
WO 2017043977 | Mar 2017 | WO |
WO 2018017104 | Jan 2018 | WO |
WO 2018164680 | Sep 2018 | WO |
WO 2019027830 | Feb 2019 | WO |
WO 2019132877 | Jul 2019 | WO |
WO 2019231679 | Dec 2019 | WO |
Entry |
---|
Nayak et al., Design of a New In-Pipe Inspection Robot, GCMM, 2014 (Year: 2014). |
Deepak et al., Development of in-pipe robots for inspection and cleaning tasks, IJIUS, 2016 (Year: 2016). |
Ciszewski et al., Design, Modelling and Laboratory Testing of a Pipe Inspection Robot, Archive of Mechanical Engineering, 2015 (Year: 2015). |
Ahmed et al., Design and Control of MIRA, DFKI, Jul. 3, 2015 (Year: 2015). |
Kim et al., An In-pipe Robot with Multi-axial Differential Gear Mechanism, IEEE, 2013 (Year: 2013). |
Zhao et al., Design and Analysis of Independently Adjustable Large In-Pipe Robot for Long-Distance Pipeline, Appl. Sci., 2020 ( Year: 2020). |
Al-Ansari et al., “Thermal Activated Resin to Avoid Pressure Build-Up in Casing-Casing Annulus (CCA),” SA-175425-MS, Society of Petroleum Engineers (SPE), presented at the SPE Offshore Europe Conference and Exhibition, Sep. 8-11, 2015, 11 pages. |
Al-Ibrahim et al., “Automated Cyclostratigraphic Analysis in Carbonate Mudrocks Using Borehole Images,” Article #41425, posted presented at the 2014 AAPG Annual Convention and Exhibition, Search and Discovery, Apr. 6-9, 2014, 4 pages. |
Bautista et al., “Probability-based Dynamic Time Warping for Gesture Recognition on RGB-D data,” WDIA 2012: Advances in Depth Image Analysis and Application, 126-135, International Workshop on Depth Image Analysis and Applications, 2012, 11 pages. |
Boriah et al., “Similarity Measures for Categorical Data: A Comparative Evaluation,” presented at the SIAM International Conference on Data Mining, SDM 2008, Apr. 24-26, 2008, 12 pages. |
Bruton et al., “Whipstock Options for Sidetracking,” Oilfield Review, 26:1, Spring 2014, 10 pages. |
Edwards et al., “Assessing Uncertainty in Stratigraphic Correlation: A Stochastic Method Based on Dynamic Time Warping,” RM13, Second EAGE Integrated Reservoir Modelling Conference, Nov. 16-19, 2014, 2 pages. |
Edwards, “Construction de modèles stratigraphiques à partir de données éparses,” Stratigraphie, Université de Lorraine, 2017, 133 pages, English abstract. |
Fischer, “The Lofer Cyclothems of the Alpine Triassic, ” published in Merriam, Symposium on Cyclic Sedimentation: Kansas Geological Survey (KGS), Bulletin, 1964, 169: 107-149, 50 pages. |
Forum Energy Technologies “Drill Pipe Float Valves,” 2019, Catalog, 6 pages. |
Hernandez-Vela et al., “Probability-based Dynamic Time Warping and Bag-of-Visual-and-Depth-Words for human Gesture Recognition in RGB-D,” Pattern Recognition Letters 50: 112-121, 2014, 10 pages. |
Herrera and Bann, “Guided seismic-to-well tying based on dynamic time warping,” SEG Las Vegas 2012 Annual Meeting, Nov. 2012, 6 pages. |
Hydril “Checkguard” Kellyguard Drill Stem Valves, Catalog DSV 2003, Brochure, 9 pages. |
Keogh and Ratanamahatana, “Exact indexing of dynamic time warping,” Knowledge and Information Systems, Springer-Verlag London Ltd., 2004, 29 pages. |
Lallier et al., “3D Stochastic Stratigraphic Well Correlation of Carbonate Ramp Systems,” IPTC 14046, International Petroleum Technology Conference (IPTC), presented at the International Petroleum Technology Conference, Dec. 7-9, 2009, 5 pages. |
Lallier et al., “Management of ambiguities in magnetostratigraphic correlation,” Earth and Planetary Science Letters, 2013, 371-372: 26-36, 11 pages. |
Lallier et al., “Uncertainty assessment in the stratigraphic well correlation of a carbonate ramp: Method and application of the Beausset Basin, SE France,” C. R. Geoscience 348: 499-509, 2016, 11 pages. |
Lineman et al., “Well to Well Log Correlation Using Knowledge-Based Systems and Dynamic Depth Warping,” SPWLA Twenty-Eighth Annual Logging Symposium, Jun. 29-Jul. 2, 1987, 25 pages. |
Nakanishi and Nakagawa, “Speaker-Independent Word Recognition by Less Cost and Stochastic Dynamic Time Warping Method,” ISCA Archive, European Conference on Speech Technology, Sep. 1987, 4 pages. |
packardusa.com [online], “Drop-in Check Valves,” Packard International, available on or before Jul. 6, 2007, via Internet Archive: Wayback Machine URL <http://web.archive.org/web/20070706210423/http://packardusa.com/productsandservices5.asp>, retrieved on May 11, 2021, URL <www.packardusa.com/productsandservices5.asp>, 2 pages. |
Pels et al., “Automated biostratigraphic correlation of palynological records on the basis of shapes of pollen curves and evaluation of next-best solutions,” Palaeogeography, Palaeoclimatology, Palaeoecology 124: 17-37, 1996, 21 pages. |
Pollack et al., “Automatic Well Log Correlation,” AAPG Annual Convention and Exhibition, Apr. 3, 2017, 1 page, Abstract Only. |
Rudman and Lankston, “Stratigraphic Correlation of Well Logs by Computer Techniques,” The American Association of Petroleum Geologists, Mar. 1973, 53:3 (557-588), 12 pages. |
Sakoe and Chiba, “Dynamic Programming Algorithm Optimization for Spoken Word Recognition,” IEEE Transactions on Acoustics, Speech and Signal Processing, ASSP-26:1, Feb. 1978, 7 pages. |
Salvador and Chan, “FastDTW: Toward Accurate Dynamic Time Warping in Linear Time and Space,” presented at the KDD Workshop on Mining Temporal and Sequential Data, Intelligent Data Analysis 11(5):70-80, Jan. 2004, 11 pages. |
Sayhi, “peakdet: Peak detection using MATLAB,” Jul. 2012, 4 pages. |
Scribd [online], “Milling Practices and Procedures,” retrieved from URL <https://www.scribd.com/document/358420338/Milling-Rev-2-Secured>, 80 pages. |
Silva and Koegh, “Prefix and Suffix Invariant Dynamic Time Warping,” IEEE Computer Society, presented at the IEEE 16th International Conference on Data Mining, 2016, 6 pages. |
Smith and Waterman, “New Stratigraphic Correlation Techniques,” Journal of Geology, 1980, 88: 451-457, 8 pages. |
Startzman and Kuo, “A Rule-Based System for Well Log Correlation,” SPE Formative Evaluation, Society of Petroleum Engineers (SPE), Sep. 1987, 9 pages. |
Tam International Inflatable and Swellable Packers, “TAM Scab Liner brochure,” Tam International, available on or before Nov. 15, 2016, 4 pages. |
Tomasi et al., “Correlation optimized warping and dynamic time warping as preprocessing methods for chromatographic data,” Journal of Chemometrics 18: 231-241, 2004, 11 pages. |
Uchida et al., “Non-Markovian Dynamic Time Warping,” presented at the 21st International Conference on Pattern Recognition (ICPR), Nov. 11-15, 2012, 4 pages. |
Waterman and Raymond, “The Match Game: New Stratigraphic Correlation Algorithms,” Mathematical Geology, 19: 2, 1987, 19 pages. |
Weatherford, “Micro-Seal Isolation System-Bow (MSIS-B),” Weatherford Swellable Well Construction Products, Brochure, 2009-2011, 2 pages. |
Zoraster et al., “Curve Alignment for Well-to-Well Log Correlation,” SPE 90471, Society of Petroleum Engineers (SPE), presented at the SPE Annual Technical Conference and Exhibition, Sep. 26-29, 2004, 6 pages. |
PCT International Search Report and Written Opinion in International Appln. No. PCT/US2022/018285, dated May 31, 2022, 13 pages. |
Yahya et al., “Development and Adaptability of In-Pipe Inspection Robots,” IOSR Journal of Mechanical and Civil Engineering (IOSR-JMCE), Jan. 2014, 9 pages. |
Number | Date | Country | |
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20220275692 A1 | Sep 2022 | US |