1. Field of the Disclosure
This disclosure relates generally to oilfield operations and more particularly to an additive injection system and methods of employing same.
2. Background of the Art
During hydrocarbon recovery operations, production tubing, pipelines, valves and related equipment may be exposed to substances that corrode, degrade or otherwise reduce their efficiency or service life. Thus, it may be advantageous to treat such equipment with corrosion inhibitors, scale inhibitors, paraffin inhibitors, hydrate inhibitors, demulsifiers, and the like, and mixtures thereof. This disclosure provides, in part, enhanced additive injection systems and methods suitable for such uses.
In aspects, this disclosure is related to an apparatus and method for controlling the amount of an additive injected into a plurality of production zones, whereby the amount of additive may be dynamically adjusted between the different production zones. The apparatus includes one or more controllers to send operating commands to downhole regulating elements that may control the amount of additive being injected.
In one aspect, the invention is an apparatus for controlling an amount of an additive injected into a plurality of production zones or points within a single production zone, including: a plurality of additive injector assemblies, wherein each injector assembly comprises: an umbilical disposed in a wellbore intersecting a production zone, at least one injector device adapted to receive the additive from the umbilical and disposed within the production zone, and a regulating element associated with the at least one injector that is responsive to a control signal; and at least one controller configured to transmit a plurality of control signals to the plurality of regulating elements.
In another embodiment, the invention is A method for controlling an amount of an additive injected into a plurality of production zones, including: introducing a plurality of additive injection assemblies into a plurality of wellbore zones; wherein each of the plurality additive injection assemblies comprises: an umbilical disposed in a wellbore intersecting a production zone, at least one injector adapted to receive the additive from the umbilical and disposed within the production zone, and a regulating element associated with the at least one injector and responsive to a control signal, wherein the regulating element controls the amount of additive introduced to the wellbore zone, and activating at least one controller in communication with the plurality of regulating elements send at least one signal to at least one of the plurality of regulating elements.
In still another aspect, the invention is a a method for controlling an amount of an additive injected into a plurality of production zones, including: supplying the additive to a plurality of injectors; wherein each of the plurality of injectors is disposed within one of the plurality of production zones; transmitting a plurality of control signals from at least one controller to a plurality of regulating elements, wherein each of the plurality of regulating elements is associated with at least one of the plurality of injectors; and injecting the amount of additive into the plurality of production zones responsive to the associated control signal. The method of claim 13, wherein the amount of additive introduced to at least one of the plurality of production zones is dissimilar to the amount of additive introduced to another one of the plurality of production zones.
Examples of the more important features of the disclosure have been summarized rather broadly in order that the detailed description thereof that follows may be better understood and in order that the contributions they represent to the art may be appreciated. There are, of course, additional features of the disclosure that will be described hereinafter and which will form the subject of the claims appended hereto.
For a detailed understanding of this disclosure, reference should be made to the following detailed description of the one mode embodiments, taken in conjunction with the accompanying drawings, in which like elements have been given like numerals, wherein:
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The assembly 100 may be utilized to introduce or inject a variety of chemicals or additives into the production zone 190 to control, among other things, corrosion, scale, paraffin, emulsion, hydrates, hydrogen sulfide, asphaltenes, inorganics and other harmful substances. As used herein, the term “additive” generally refers to an engineered fluid that is formulated to perform a desired task. The additive(s) may be mixed with a base fluid such as water or oil to form what will hereafter be referred to as “injection fluid(s).” Injection fluid(s) may include liquids and/or gases. The assembly 100 may be configured to supply precise amounts of an additive or a mixture of additives to prevent, mitigate or otherwise lessen the harm caused by these substances. The assembly 100 may also be configured to periodically or continuously monitor the actual amount of the additives being dispensed, determine the effectiveness of the dispensed additives, and vary the amount of dispense additives as needed to maintain one or more parameters of interest within predetermined ranges or at specified values.
It should be understood that relatively small amounts of additives are injected into the production fluid during operation. Accordingly, considerations such as precision in dispensing additives may be more relevant than mere volumetric capacity. In embodiments, the flow rate for an additive injected using this disclosure may be at a rate such that the additive is present at a concentration of from about 1 parts per million (ppm) to about 10,000 ppm in the fluid being treated. In other embodiments, the flow rate for an additive injected using this disclosure may be at a rate such that the additive is present at a concentration of from about 1 ppm to about 500 ppm in the fluid being treated.
In one embodiment, the additive injector assembly 100 includes an additive reservoir 110, an umbilical 120, a regulating element 130, an injection device 140, and a communication link 150. Additive 105 stored in additive reservoir 110 may be supplied through umbilical 120 to injection device 140. Additive 105 may be supplied directly from umbilical 120 to injection device 140 or regulating element 130 may be interposed between umbilical 120 and injection device 140. The amount of additive supplied into production fluid 160 within the production zone 190 of well bore 170 may be regulated by regulating element 130. Regulation may be provided by limiting flow of additive 105 through regulating element 130 or by restricting the flow of additive 105 through injection device 140.
The well bore 170 may have one or more production zones 190 for draining hydrocarbons from the formation (“produced fluids” or “production fluid”). A production tubular 165 may be used to convey the fluid from the production zones to the wellhead (not shown). Wellhead equipment and production well equipment are well known and thus are not described in greater detail.
Regulating element 130 may receive a signal through communications link 150 that determines how much additive 105 may be injected into the production fluid 160. Outside the well bore 170, a controller 180 may be connected to multiple communication links 150 coming from multiple additive injector assemblies 100. Controller 180 may be adapted to provide instructions to the plurality of regulating elements 130 such that each well bore 170 receives the same, similar, or different amounts of additive 105 as other well bores 170.
Umbilical 120 may be disposed inside or outside production tubular 165. Regulating element 130 may include a valve to control the flow of additive flowing from the umbilical 120 to injection device 140. In another embodiment regulating element 130 may actuate valves or other devices that are part of the injection device 140 to control the flow of additive flowing from the umbilical 120 to the production fluid 160.
Injection device 140 may be a pump such as a positive displacement pump, a centrifugal pump, a piston-type pump, or other suitable device for pumping fluid. Injection device 140 may have one or more injectors, which may be controlled in common or separately by the regulating element 130.
In one embodiment, additive reservoir 110 may include multiple tanks for storing different chemicals and one or more pumps for pumping the additives. This supply of additives may be continuous or intermittent.
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For example, the controller 180 may receive data indicative of a parameter of interest which may relate to a characteristic of the produced fluid. The controller 180, may then send signals to several different well bores 170 instructing their respective regulating elements 130 to cause the corresponding injection unit 140 to inject different amounts of one or more additives into the production fluid 160 at each of the respective production zones 190.
The parameters of interest may relate, for example, to environmental conditions or the health of equipment. Representative parameters include but are not limited to temperature, pressure, flow rate, a measure of one or more of hydrate, asphaltene, corrosion, chemical composition, wax or emulsion, amount of water, and viscosity. Based on the data provided by the sensors, the controller 180 may determine the appropriate amount of one or more additives needed to maintain a desired or pre-determined flow rate or other desired condition.
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In this embodiment, electrical power may only be required for solenoids 620, 622 and not to actuate the piston 630, and this may reduce the amount of electrical energy required to operate the injection actuator valve 600. Reducing the electrical energy burden of actuating a piston electrically may reduce heat in the injection actuator valve 600. In some aspects, the injection actuator valve 600 may be part of the regulating unit 130 and/or part of injection unit 140. In some aspects, the reduction in electrical power requirements may allow a single Tubing Encapsulated Conductor to carry power for multiple additive injector systems and other downhole tools.
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While the foregoing disclosure is directed to the one mode embodiments of the disclosure, various modifications will be apparent to those skilled in the art. Especially the illustrated injection devices may be combined with the regulating elements in combinations differing from the drawings. It is intended that all variations within the scope of the appended claims be embraced by the foregoing disclosure.