WO2012082081A2 - A method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells and devices for the method execution. - Google Patents

A method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells and devices for the method execution. Download PDF

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Publication number
WO2012082081A2
WO2012082081A2 PCT/SK2011/000007 SK2011000007W WO2012082081A2 WO 2012082081 A2 WO2012082081 A2 WO 2012082081A2 SK 2011000007 W SK2011000007 W SK 2011000007W WO 2012082081 A2 WO2012082081 A2 WO 2012082081A2
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WO
WIPO (PCT)
Prior art keywords
well
simulation
rod
pumping
pump
Prior art date
Application number
PCT/SK2011/000007
Other languages
French (fr)
Other versions
WO2012082081A3 (en
Inventor
Mathew John Raglin
Andrej Yurijevič SEVASTYANOV
Original Assignee
Naftamatika, S.R.O.
Spirit Global Energy Solutions, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Naftamatika, S.R.O., Spirit Global Energy Solutions, Inc. filed Critical Naftamatika, S.R.O.
Priority to EA201300676A priority Critical patent/EA201300676A1/en
Priority to CA2821914A priority patent/CA2821914A1/en
Priority to US13/994,535 priority patent/US20130333880A1/en
Publication of WO2012082081A2 publication Critical patent/WO2012082081A2/en
Publication of WO2012082081A3 publication Critical patent/WO2012082081A3/en

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Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B47/00Survey of boreholes or wells
    • E21B47/008Monitoring of down-hole pump systems, e.g. for the detection of "pumped-off" conditions
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B43/00Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
    • E21B43/12Methods or apparatus for controlling the flow of the obtained fluid to or in wells
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B47/00Pumps or pumping installations specially adapted for raising fluids from great depths, e.g. well pumps
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B51/00Testing machines, pumps, or pumping installations

Definitions

  • the invention is related to the method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells by using a well simulation and control unit while the unit's load and position sensors are mounted on the polished rod of the surface pump and the gathered data are processed real time utilizing programmable controller and transformed into output animation depicting behaviour and loading of the entire pumping system.
  • the surface dynamometer card is merely a plot of the surface load and position of the polished rod. As the well pumps off, the pump load decreases due to incomplete pump fill. The result is a diminished load area on the surface dynamometer card. A set point of some type or another type of area loss is measured and the well is shut off for a predetermined downtime. During downtime the reservoir will replenish the casing. After downtime the well is restarted and the process repeated.
  • US patent No. 3,951, 209 described a method to similar to No. 3,306,201 that measures area inside the surface dynamometer card.
  • US patent No. 4,583,915 describes a device that measures the area outside of the surface dynamometer card.
  • US patent No. 3,343,409 and US patent No. 5,252,031 describe a procedure whereby the surface load and position is utilized to calculate a plot of down hole load and position most times referred to as the down hole dynamometer card. This method is used to detect various conditions and is utilized to control for pump-
  • Mentioned inadequacies are in fact removed by the method for obtaining diagnostics and control of the pumping process of rod pumped oil or gas wells characterized by the fact that the diagnostics and control are implemented by means of the well simulation unit so that surface load values are gathered through utilization of a load cell mounted on the carrier bar and attaching to the top of the polished rod and surface position values are gathered through the use of a position sensor mounted on the polish rod and an inclinometer mounted on the pumping unit, or position sensors mounted to trigger during cycling of the pumping unit, further also estimated or indirectly measured position and load, while the data obtained are wirelessly transmitted to the well simulation unit.
  • animation representing the entire pumping system is displayed instantaneously either on local display or by utilizing a HMI or a portable laptop, or other device connected to SCADA system, and also changes of well conditions and pumping system conditions are displayed real time utilizing a direct simulation.
  • the diagnostics and control of the rod pump are implemented by means of the well simulation unit in those cases when a computer-generated two- and three-dimensional simulation or animation is used on the well site where position and load data are transmitted wirelessly from the end device, based on real time calculations of the pump function simulation where a rod string and the simulation of pump and the surface pumping unit are displayed on two- or three-dimensional graphical display, HMI, or laptop, computer or other device connected to SCADA system.
  • the diagnostics and control of the rod pump are implemented by means of the well simulation unit where diagnostic data and load values are displayed real time on a graphical display, HMI, or laptop, computer or other device connected to SCADA system; further the method for detection and control of pump-off or pump-fillage on a rod pumped well and the method for controlling the speed of a variable speed drive or variable frequency drive on the rod pump, and the method for monitoring and controlling a rod pumped well where the fluid level is displayed with casing and tubing, in all previous cases, by a computer-generated two- or three-dimensional simulation displayed on a graphical display, HMI, or laptop, computer or other device connected to SCADA system.
  • Devices for the method execution consists of the pumping unit with motor connected with a subsurface pump and a rod string, characterized by the fact that it is equipped with a well simulation and control unit comprising a programmable controller and a common casing , in which is integrated / combined load cell with a position sensor and a microcontroller , digital interface module, voltage transducer and the battery while the casing is wirelessly and/or via the cable connected with the programmable controller, while load cell and position sensor can be installed separated and connected to programmable controller wirelessly and / or via analog cable and /or via digital cable.
  • Alternative device is characterized by well simulation and control unit consisting of programmable controller directly connected to the motor of pumping unit via cable.
  • a live and dynamic presentation of entire system will be displayed.
  • the fluid level of the well, the pump intake pressure, pump leakage, subsurface pump and pump system diagnostics, as well as gas, oil, and water production will all be calculated and represented on the live display.
  • Variable speed or variable frequency drives are commonly utilized as method to speed up or slow down a well as an alternative to shutting down, going through downtime and restarting.
  • This invention will interface and control all available drive mechanisms available in the industry today and the real time simulator will control via speed up or slow down in addition to traditional start and stop.
  • the invention is a rod pumping system controller that will be located at the well-site of a rod pumped well.
  • a controller on each and every rod pumped well.
  • These controllers can operate as stand alone devices or can be connected to a central computer via radio, satellite or some means of remote communication. Remote access allows the ability to monitor and interrogate the controllers without having to travel to the well site.
  • the controllers can be interrogated at the well site by utilizing a local keypad and display, HMI device, or by utilizing a laptop computer.
  • the invention will utilize the most current state of the art electronics to insure speed, reliability, and user friendliness.
  • the real time display of the entire rod pumping system with complete diagnostics will allow the field operators a quick overview of the health of the pumping system.
  • the user friendliness of the invention will allow the operators to quickly access the system and will reduce the amount of man hours spent attempting to interpret the overall state of the system.
  • Fig. 1 represents a diagram of the well simulation and control unit during a wireless transmission.
  • Fig. 2 represents overall flow diagram of the method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells.
  • Fig. 3 represents a diagram of the well simulation and control unit during a digital cable connection.
  • Fig. 4 represents a diagram of the well simulation and control unit during an analogue cable connection.
  • Fig. 5 represents a diagram of the well simulation and control unit during a sensorless configuration.
  • Fig. 6 represents a diagram of the well simulation and control unit during separately installed load cell and position sensor with analog and / or digital cable connection.
  • Fig. 7 represents a diagram of the well simulation and control unit during separately installed load cell and position sensor with wireless connection.
  • FIG. 2 The flow diagram according to Fig. 2 represents an overall influence of the well simulation and control unit on the whole pumping process. Individual blocks are labelled with Arabic numerals with the following explanatory comments:
  • the well simulation and control unit 1 (Fig. 1) consists of the programmable controller 2 and a common casing 3, in which is integrated / combined load cell 4 with a position sensor 5 and a microcontroller 6, digital interface module 7, voltage transducer 8 and the battery 9.
  • the battery 9 is connected to the voltage transducer 8 that changes voltage into the correct excitation voltage for the position sensor 5 and the load cell 4.
  • the microcontroller 6 amplifies analogue signal from the sensors 4 and 5, converts it, and sends it wirelessly through the wireless digital interface module 7 with an aerial to the programmable controller 2.
  • the programmable controller 2 receives the digital signal by means of its own wireless interface module.
  • the well simulation and control unit 1 (Fig. 3) consists of the programmable controller 2 and a common casing 3, in which is integrated / combined load cell 4 with a position sensor 5 and a microcontroller 6, digital interface module 7, voltage transducer 8. Energy from the power supply is delivered through the cable into the casing 3 where the voltage transducer 8 changes voltage into the correct excitation voltage for the position sensor 5 and the load cell 4.
  • the microcontroller 6 amplifies analogue signal from the sensors 4 and 5, converts it, and sends it using the digital interface module 7 via the cable 10 to the programmable controller 2.
  • the well simulation and control unit 1 (Fig. 4) consists of the programmable controller 2 and a common casing 3, in which is integrated / combined load cell 4 with a position sensor 5 and voltage transducer 8. Energy from the power supply is delivered into the casing 3 where the voltage transducer 8 changes voltage into the correct excitation voltage for the position sensor 5 and the load cell 4.
  • the programmable controller 2 receives analogue signal from the sensors 4 and 5 via the cable 10.
  • the well simulation and control unit 1 (Fig. 5) consists of the programmable controller 2 .
  • 3- phase voltage of pumping unit motor 11 is connected by wires 12 to inputs of the programmable controller 2 which estimates load and position using motor voltage and current.
  • the well simulation and control unit 1 (Fig. 6) consists of the programmable controller 2 connected to load cell 4 and position sensor 5.
  • Programmable controller 2 receives signal from load cell 4 and position sensor 5 via analog and / or via digital cables 10.
  • the well simulation and control unit 1 (Fig. 7) consists of the programmable controller 2 connected to load cell 4 and position sensor 5.
  • Programmable controller 2 receives signal from load cell 4 and position sensor 5 wirelessly.
  • Examples Nos. 2 to 7 mention possible alternatives of integration for the programming and control of the whole technological pumping process of oil and gas wells with regard to local conditions of the place of application.
  • the invention relates to extractive industry, mainly crude-oil and gas production, where the device for monitoring and controlling a rod pumped well is placed directly on the oil well system.

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  • Engineering & Computer Science (AREA)
  • Mining & Mineral Resources (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Geology (AREA)
  • Physics & Mathematics (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Fluid Mechanics (AREA)
  • Environmental & Geological Engineering (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Geophysics (AREA)
  • Control Of Positive-Displacement Pumps (AREA)
  • Earth Drilling (AREA)
  • Compressors, Vaccum Pumps And Other Relevant Systems (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)

Abstract

The method for obtaining diagnostics and control of the pumping process of rod pumped oil or gas wells where the diagnostics and control are implemented by means of the well simulation unit so that surface load values are gathered through utilization of a load cell mounted on the carrier bar and attaching to the top of the polished rod and surface position values are gathered through the use of a position sensor mounted on the polish rod and an inclinometer mounted on the pumping unit, or position sensors mounted to trigger during cycling of the pumping unit, further also estimated or indirectly measured position and load, while the data obtained are wirelessly and/or through cable transmitted to the well simulation unit. Subsequently, animation representing the entire pumping system is displayed instantaneously either on local display or by utilizing a HMI or a portable laptop, computer or other device connected to SCADA system, and also changes of well conditions and pumping system conditions are displayed real time utilizing a direct simulation. Devices for the method execution consists of the pumping unit connected with a subsurface pump and a rod string, characterized by the fact that it is equipped with a well simulation and control unit (1) comprising a programmable controller (2) and a common casing (3), in which is integrated / combined load cell 4 with a position sensor 5 and a microcontroller 6, digital interface module 7, voltage transducer 8 and the battery 9 while the casing (3) is wirelessly and/or via the cable (10) connected with the programmable controller (2), while load cell (4) and position sensor (5) can be installed separated and connected to programmable controller (2) wirelessly and / or via analog cable (10) and /or via digital cable (10). Alternative device is characterized by well simulation and control unit consisting of programmable controller (2) directly connected to the motor (11) of pumping unit via cable (12).

Description

A method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells and devices for the method execution.
Technical field
The invention is related to the method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells by using a well simulation and control unit while the unit's load and position sensors are mounted on the polished rod of the surface pump and the gathered data are processed real time utilizing programmable controller and transformed into output animation depicting behaviour and loading of the entire pumping system.
Technological background
Much study and many devices have been utilized to attempt to match pumping system run times to reservoir inflows in an effort to eliminate fluid pound. Fluid pound occurs when the subsurface positive displacement pump no longer fills with liquid because the reservoir has inadequate inflows to fill the casing. Throttling the carburettor of gas powered combustion engines was one of the first methods utilized. With the advent of electric motors, timers where utilized as a means to turn on and off pumping units in an effort to control severe over displacement and avoid fluid pound. The industry standard has become the utilization of the modern pump-off controller. The most popular of these devices involve the creation of a surface or down hole dynamometer card. US patent No. 3,306,210 describes one such method. The surface dynamometer card is merely a plot of the surface load and position of the polished rod. As the well pumps off, the pump load decreases due to incomplete pump fill. The result is a diminished load area on the surface dynamometer card. A set point of some type or another type of area loss is measured and the well is shut off for a predetermined downtime. During downtime the reservoir will replenish the casing. After downtime the well is restarted and the process repeated. US patent No. 3,951, 209 described a method to similar to No. 3,306,201 that measures area inside the surface dynamometer card. US patent No. 4,583,915 describes a device that measures the area outside of the surface dynamometer card. US patent No. 3,343,409 and US patent No. 5,252,031, describe a procedure whereby the surface load and position is utilized to calculate a plot of down hole load and position most times referred to as the down hole dynamometer card. This method is used to detect various conditions and is utilized to control for pump-off.
The short comings of the aforementioned prior art are related to the difficulty in understanding and interpreting the surface and down hole dynamometer cards. Many conditions exist that affect the shape and reliability of these devices that solely depend on dynamometer cards. One almost need be a trained dynamometer analyst to insure that these devices are setup properly and correctly interpreted because the created dynamometric card is at least one stroke behind the actual stroke of the pump. This delay is detrimental to the instant decision making that safeguards smoothness of the whole pumping system operation. Utilization of a direct simulation of the precise conditions of the well will aid the operator to quickly understand, interpret, and interface with the device, in addition to easily recognizing the pump-off. Obtaining real time well diagnostics and displaying the pumping system loads will alert the operator and will be programmed to shutdown when pumping system overloading occurs. Subject matter of the invention
Mentioned inadequacies are in fact removed by the method for obtaining diagnostics and control of the pumping process of rod pumped oil or gas wells characterized by the fact that the diagnostics and control are implemented by means of the well simulation unit so that surface load values are gathered through utilization of a load cell mounted on the carrier bar and attaching to the top of the polished rod and surface position values are gathered through the use of a position sensor mounted on the polish rod and an inclinometer mounted on the pumping unit, or position sensors mounted to trigger during cycling of the pumping unit, further also estimated or indirectly measured position and load, while the data obtained are wirelessly transmitted to the well simulation unit. Subsequently, animation representing the entire pumping system is displayed instantaneously either on local display or by utilizing a HMI or a portable laptop, or other device connected to SCADA system, and also changes of well conditions and pumping system conditions are displayed real time utilizing a direct simulation.
The diagnostics and control of the rod pump are implemented by means of the well simulation unit in those cases when a computer-generated two- and three-dimensional simulation or animation is used on the well site where position and load data are transmitted wirelessly from the end device, based on real time calculations of the pump function simulation where a rod string and the simulation of pump and the surface pumping unit are displayed on two- or three-dimensional graphical display, HMI, or laptop, computer or other device connected to SCADA system.
The diagnostics and control of the rod pump are implemented by means of the well simulation unit where diagnostic data and load values are displayed real time on a graphical display, HMI, or laptop, computer or other device connected to SCADA system; further the method for detection and control of pump-off or pump-fillage on a rod pumped well and the method for controlling the speed of a variable speed drive or variable frequency drive on the rod pump, and the method for monitoring and controlling a rod pumped well where the fluid level is displayed with casing and tubing, in all previous cases, by a computer-generated two- or three-dimensional simulation displayed on a graphical display, HMI, or laptop, computer or other device connected to SCADA system.
Devices for the method execution consists of the pumping unit with motor connected with a subsurface pump and a rod string, characterized by the fact that it is equipped with a well simulation and control unit comprising a programmable controller and a common casing , in which is integrated / combined load cell with a position sensor and a microcontroller , digital interface module, voltage transducer and the battery while the casing is wirelessly and/or via the cable connected with the programmable controller, while load cell and position sensor can be installed separated and connected to programmable controller wirelessly and / or via analog cable and /or via digital cable.
Alternative device is characterized by well simulation and control unit consisting of programmable controller directly connected to the motor of pumping unit via cable.
In addition to monitoring the contents of the subsurface pump and shutting down to prevent fluid pound, a live and dynamic presentation of entire system will be displayed. The fluid level of the well, the pump intake pressure, pump leakage, subsurface pump and pump system diagnostics, as well as gas, oil, and water production will all be calculated and represented on the live display.
Variable speed or variable frequency drives are commonly utilized as method to speed up or slow down a well as an alternative to shutting down, going through downtime and restarting. This invention will interface and control all available drive mechanisms available in the industry today and the real time simulator will control via speed up or slow down in addition to traditional start and stop.
The advantages of the present invention over prior art is the practical easy to understand nature of the invention, and the fact that it is presented real-time. Recent prior art has always utilized dynamometer cards for control and monitoring of the pumping system. The pump system simulator utilizes state of the art electronic processors and graphics, which allows the operator to instantly recognize pump-off and changing well conditions. Most prior art represents a dynamometer card that is at least one stroke behind the actual stroke. This delay is detrimental to the instant decision making that the new invention allows. Industry operators are trained to understand the pumping system as they view it on a daily basis including the pumping unit, rods, prime mover, and subsurface pump. Surface and down hole dynamometer cards where first utilized in the industry in 1937. Interpretation of dynamometer cards is an ancient art which requires specialized training and years of experience. The animation represented by the new invention will require no specialized training and only a basic understanding of the pumping system. Dynamometer cards are presented along with the real time simulation for viewing purposes by those that are skilled in the art and desire to view such plots.
In broad embodiment, the invention is a rod pumping system controller that will be located at the well-site of a rod pumped well. In multi well fields it is possible to have a controller on each and every rod pumped well. These controllers can operate as stand alone devices or can be connected to a central computer via radio, satellite or some means of remote communication. Remote access allows the ability to monitor and interrogate the controllers without having to travel to the well site. The controllers can be interrogated at the well site by utilizing a local keypad and display, HMI device, or by utilizing a laptop computer. The invention will utilize the most current state of the art electronics to insure speed, reliability, and user friendliness. The real time display of the entire rod pumping system with complete diagnostics will allow the field operators a quick overview of the health of the pumping system. The user friendliness of the invention will allow the operators to quickly access the system and will reduce the amount of man hours spent attempting to interpret the overall state of the system.
While the foregoing written description of the invention enables one of ordinary skill to make and use what is considered presently to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiment, method, and examples herein. The invention should therefore not be limited by the above described embodiment, method, and examples, but by all embodiments and methods within the scope and spirit of the invention.
Review of Figures in drawings
Fig. 1 represents a diagram of the well simulation and control unit during a wireless transmission. Fig. 2 represents overall flow diagram of the method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells. Fig. 3 represents a diagram of the well simulation and control unit during a digital cable connection. Fig. 4 represents a diagram of the well simulation and control unit during an analogue cable connection. Fig. 5 represents a diagram of the well simulation and control unit during a sensorless configuration. Fig. 6 represents a diagram of the well simulation and control unit during separately installed load cell and position sensor with analog and / or digital cable connection. Fig. 7 represents a diagram of the well simulation and control unit during separately installed load cell and position sensor with wireless connection.
Examples of the invention implementation
Implementation example No. 1
The flow diagram according to Fig. 2 represents an overall influence of the well simulation and control unit on the whole pumping process. Individual blocks are labelled with Arabic numerals with the following explanatory comments:
(A) position sensor - point of measurement of the position value
(B) load cell - point of measurement of the surface load
(C) auxiliary sensors (not necessarily used)
(D) estimated or indirectly measured position and load
(E) data obtaining and saving into the memory of programmable controller (R)
(F) detection of beginning and termination of the cycle. Check of setpoints against actual values (P) saved in the memory of programmable controller (R).
(G) emergency shutdown based on setpoints?
(H) if (G)„yes" - a command to stop the well / pump
(I) is the alarm counter exceeded?
(J) if (I)„yes" - waiting for the manual command from the SCADA system (supervisory control and data acquisition) connected to the programmable controller or from the operator using the graphical user interface (S)
(K) a command start the well / pump; (E) obtain data and save them into the memory
(L) if (I)„no" - leave the well stopped until external command received from SCADA system or graphical user interface - (K) a command start the well / pump; (E) obtain data and save them into the memory
(M) if (G)„no" modelling the change of well state and depiction of it together with surface and downhole dynagraph. Saving the well state into memory of the programmable controller (R) as data with a time marking (O).
(N) calculations of pump fillage, production and pump intake pressure in well simulator. Saving the data into the memory of the programmable controller (R) as data with a time marking
(0).
(Q) Shutdown on the basis of the well simulator parameters?
Implementation example No. 2
The well simulation and control unit 1 (Fig. 1) consists of the programmable controller 2 and a common casing 3, in which is integrated / combined load cell 4 with a position sensor 5 and a microcontroller 6, digital interface module 7, voltage transducer 8 and the battery 9. The battery 9 is connected to the voltage transducer 8 that changes voltage into the correct excitation voltage for the position sensor 5 and the load cell 4. The microcontroller 6 amplifies analogue signal from the sensors 4 and 5, converts it, and sends it wirelessly through the wireless digital interface module 7 with an aerial to the programmable controller 2. The programmable controller 2 receives the digital signal by means of its own wireless interface module. Implementation example No. 3
The well simulation and control unit 1 (Fig. 3) consists of the programmable controller 2 and a common casing 3, in which is integrated / combined load cell 4 with a position sensor 5 and a microcontroller 6, digital interface module 7, voltage transducer 8. Energy from the power supply is delivered through the cable into the casing 3 where the voltage transducer 8 changes voltage into the correct excitation voltage for the position sensor 5 and the load cell 4. The microcontroller 6 amplifies analogue signal from the sensors 4 and 5, converts it, and sends it using the digital interface module 7 via the cable 10 to the programmable controller 2.
Implementation example No. 4
The well simulation and control unit 1 (Fig. 4) consists of the programmable controller 2 and a common casing 3, in which is integrated / combined load cell 4 with a position sensor 5 and voltage transducer 8. Energy from the power supply is delivered into the casing 3 where the voltage transducer 8 changes voltage into the correct excitation voltage for the position sensor 5 and the load cell 4. The programmable controller 2 receives analogue signal from the sensors 4 and 5 via the cable 10.
Implementation example No. 5
The well simulation and control unit 1 (Fig. 5) consists of the programmable controller 2 . 3- phase voltage of pumping unit motor 11 is connected by wires 12 to inputs of the programmable controller 2 which estimates load and position using motor voltage and current.
Implementation example No. 6
The well simulation and control unit 1 (Fig. 6) consists of the programmable controller 2 connected to load cell 4 and position sensor 5. Programmable controller 2 receives signal from load cell 4 and position sensor 5 via analog and / or via digital cables 10.
Implementation example No. 7
The well simulation and control unit 1 (Fig. 7) consists of the programmable controller 2 connected to load cell 4 and position sensor 5. Programmable controller 2 receives signal from load cell 4 and position sensor 5 wirelessly.
Examples Nos. 2 to 7 mention possible alternatives of integration for the programming and control of the whole technological pumping process of oil and gas wells with regard to local conditions of the place of application.
Industrial applicability
The invention relates to extractive industry, mainly crude-oil and gas production, where the device for monitoring and controlling a rod pumped well is placed directly on the oil well system.

Claims

PATENT CLAIMS
1. The method for obtaining diagnostics and control of the pumping process of rod pumped oil or gas wells characterized by the fact that the diagnostics and control are implemented by means of the well simulation unit so that surface load values are gathered through utilization of a load cell mounted on the carrier bar and attaching to the top of the polished rod and surface position values are gathered through the use of a position sensor mounted on the polish rod and an inclinometer mounted on the pumping unit, or position sensors mounted to trigger during cycling of the pumping unit, further also estimated or indirectly measured position and load, while the data obtained are wirelessly and/or through cable transmitted to the well simulation unit. Subsequently, animation representing the entire pumping system is displayed instantaneously either on local display or by utilizing a HMI or a portable laptop or remote computer or other device connected to SCADA system, and also changes of well conditions and pumping system conditions are displayed real time utilizing a direct simulation.
2. The method according to the Claim 1 characterized by the fact that the diagnostics and control of the rod pump are implemented by means of the well simulation unit in those cases when a computer-generated two- and three-dimensional simulation or animation is used on the well site where position and load data are transmitted wirelessly from the end device, based on real time calculations of the pump function simulation where a rod string and the simulation of pump and the surface pumping unit are displayed on two- or three-dimensional graphical display, HMI, or laptop, computer or other device connected to SCADA system.
3. The method according to the Claims 1 and 2 characterized by the fact that the diagnostics and control of the rod pump are implemented by means of the well simulation unit where diagnostic data and load values are displayed real time on a graphical display, HMI, or laptop, computer or other device connected to SCADA system; further the method for detection and control of pump-off or pump-fillage on a rod pumped well and the method for controlling the speed of a variable speed drive or variable frequency drive on the rod pump, and the method for monitoring and controlling a rod pumped well where the fluid level is displayed with casing and tubing, in all previous cases, by a computer-generated two- or three-dimensional simulation displayed on a graphical display, HMI, or laptop, computer or other device connected to SCADA system.
4. Devices for the method execution according to the Claims 1 - 3 consisting of the pumping unit connected with a subsurface pump and a rod string, characterized by the fact that it is equipped with a well simulation and control unit (1) comprising a programmable controller (2) and a common casing (3), in which is integrated / combined load cell (4) with a position sensor (5) and a microcontroller (6), digital interface module (7), voltage transducer (8) and the battery (9) while the casing (3) is wirelessly and/or via the cable (10) connected with the programmable controller (2), while load cell (4) and position sensor (5) can be also installed separated and connected to programmable controller (2) wirelessly and / or via analog cable (10) and /or via digital cable (10).
5. Devices according to the Claim 4 characterized by well simulation and control unit consisting of programmable controller (2) directly connected to the motor (11) of pumping unit via cable (12).
PCT/SK2011/000007 2010-12-16 2011-03-09 A method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells and devices for the method execution. WO2012082081A2 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
EA201300676A EA201300676A1 (en) 2010-12-16 2011-03-09 METHOD OF DIAGNOSTICS AND CONTROL OF THE PROCESS OF THE OIL AND GAS DIPPING FROM WELLS EQUIPPED WITH ROD-DRIVE PUMPS AND EQUIPMENT FOR INTRODUCING THIS METHOD
CA2821914A CA2821914A1 (en) 2010-12-16 2011-03-09 A method for obtaining diagnostics and control of the pumping process of rod pumped oil and gas wells and devices for the method execution
US13/994,535 US20130333880A1 (en) 2010-12-16 2011-03-09 Method for Obtaining Diagnostics and Control of the Pumping Process of Rod Pumped Oil and Gas Wells and Devices for the Method Execution

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
SK169-2010A SK1692010A3 (en) 2010-12-16 2010-12-16 Method of diagnosis and management of pumping oil or gas wells and device there of
SKPP00169-2010 2010-12-16

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Publication Number Publication Date
WO2012082081A2 true WO2012082081A2 (en) 2012-06-21
WO2012082081A3 WO2012082081A3 (en) 2013-01-03

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SK1692010A3 (en) 2012-07-03
WO2012082081A3 (en) 2013-01-03
US20130333880A1 (en) 2013-12-19
EA201300676A1 (en) 2013-10-30
CA2821914A1 (en) 2012-06-21

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