Downhole operations often include a downhole string that extends from an uphole system into a formation. The uphole system may include a platform, pumps, and other systems that support resource exploration, development, and extraction. In some instances, fluids may be passed from the uphole system into the formation through the downhole string. In other instances, fluid may pass from the formation through the downhole string to the uphole system. The downhole string may include various sensors that detect downhole parameters including formation parameters and parameters associated with the downhole string.
It is desirable to communicate information from downhole sensors to the uphole system. Communication may take place through wired, optical, or acoustical systems. Acoustical systems rely upon passage of pressure pulses generated downhole to an uphole receiver. The pressure pulses are created by moving a piston through a hydraulic fluid. The uphole receiver converts the pressure pulses to data indicative of sensed parameters. The pressure pulses provide useful information to uphole operators. Therefore, advances in downhole communication systems would be well received by resource exploration and recovery companies.
A control valve assembly includes a body having a first mud flow passage defining a mud flow inlet and one or more second mud flow passage portions. A magnetic plunger is slidingly mounted within the body. The magnetic plunger includes one or more third mud flow passage portions each including an inlet section and an outlet section configured to selectively align with the one or more second mud flow passage portions. A solenoid is mounted at the body. The solenoid is selectively activated to shift the magnetic plunger between a first position wherein the third mud flow passage portion is misaligned with the one or more second mudflow passage portions and a second position wherein the third mud flow passage portion aligns with the one or more second mud flow passage portions allowing a pulse of mud to flow through the mud flow passage.
A resource exploration system includes an uphole system, and a downhole system having a downhole string operatively connected to the uphole system. The downhole string includes a pulser alternator generator having a main valve assembly, an alternator, and a control valve assembly operatively connected to the main valve assembly and the alternator. The control valve assembly includes a body having a first mud flow passage defining a mud flow inlet and one or more second mud flow passage portions. A magnetic plunger is slidingly mounted within the body. The magnetic plunger includes one or more third mud flow passage portions each including an inlet section and an outlet section configured to selectively align with the one or more second mud flow passage portions. A solenoid is mounted at the body. The solenoid is selectively activated to shift the magnetic plunger between a first position wherein the third mud flow passage portion is misaligned with the one or more second mudflow passage portions and a second position wherein the third mud flow passage portion aligns with the one or more second mud flow passage portions allowing a pulse of mud to flow through the mud flow passage.
Referring now to the drawings wherein like elements are numbered alike in the several Figures:
A resource exploration system, in accordance with an exemplary embodiment, is indicated generally at 2, in
Downhole system 6 may include a downhole string 20 that is extended into a wellbore 21 formed in formation 22. Downhole string 20 may include a number of connected downhole tools or tubulars 24. One of tubulars 24 may include a pulser alternator generator (PAG) assembly 28. PAG assembly 28 may receive signals from one or more sensors (not shown) indicating one or more of formation parameters, downhole fluid parameters, tool condition parameters and the like. PAG assembly 28 creates one or more pressure pulses that are received at uphole system 4. The one or more pressure pulses define a code that may contain information regarding data received by the sensors. In accordance with an exemplary embodiment, PAG assembly 28 creates pressure pulses by selectively stopping a flow of pressurized downhole fluid or mud as will be detailed more fully below.
In accordance with an exemplary embodiment illustrated in
As shown in
Second body portion 64 may also be formed from NiO3 and includes a solenoid support 108 having an axial end 110. A solenoid carrier 114 is supported on solenoid support 108. Solenoid carrier 114 may be formed from NiO3 and provides support for a solenoid 120. Solenoid 120 is operatively connected to alternator assembly 46 through a conductor (not shown) extending through a conductor passage 124 formed in second body portion 64. A pressure sleeve 128 is mounted in second body portion 64 about solenoid 120. Pressure sleeve 128 may be formed from NiO3 and provides protection to solenoid 120 from downhole fluids passing through CVA 48.
Sleeve member 66 includes a first end section 134 and a second end section 135. First end section 134 may include a plurality of threads 137 that engage first body portion 62. Second end section 135 may be mechanically linked to second body portion 64 through, for example, a press or interference fit, or a joining process such as welding. Sleeve member 66 includes an annular flange 140 extending radially inwardly from an inner surface (not separately labeled). Annular flange 140 together with pressure sleeve 128 may define a plunger support 144. Sleeve member 66 may be formed from 9Cr so as to withstand downhole fluids. Of course, it should be understood, that the particular materials employed for solenoid carrier 114, and sleeve member 66 may vary depending on desired operating parameters and downhole conditions.
In accordance with an aspect of an exemplary embodiment, CVA 48 includes a magnetic plunger assembly 160 having a valve portion 162 operatively connected with an actuator shaft 164. Valve portion 162 is formed from diamond coated 9Cr. The use of diamond coated 9Cr allows valve portion 162 to withstand high pressure corrosive downhole mud passing from MVA 50 as will be discussed more fully below. Valve portion 162 includes a central chamber 167 fluidically connected with first passage portion 72. A fifth passage portion 169 and a sixth passage portion 170 extend through valve portion 162. A spring 174 biases magnetic plunger assembly 160 in a first position as shown in
In accordance with an aspect of an exemplary embodiment, third and fourth passage portions 100, 101 and fifth and sixth passage portions 169,170 may extend at an angle of between about 20° and about 80° relative to a longitudinal axis (not separately labeled) of CVA 48. In accordance with another aspect, third and fourth passage portions 100, 101 and fifth and sixth passage portions 169,170 may extend at an angle of about 60° relative to the longitudinal axis. In this manner, shifting plunger assembly between the first position and the second position shears mud flow passing from first passage portion 72 through valve portion 162 into mud flow outlet chamber 86. In this manner, the amount of force necessary to shift magnetic plunger assembly is reduced over that which would be needed if third, fourth, fifth and sixth passage portions 100, 101, 169, and 170 projected substantially perpendicularly relative to the longitudinal axis. Further, second passage portion 74 may extend at an angle of between about 20° and about 80° relative to a longitudinal axis (not separately labeled) of CVA 48. In accordance with another aspect, second passage portion 74 may extend at an angle of about 60° relative to the longitudinal axis. The angle of second passage portion 74 reduces impact forces associated with pulses of mud passing from outlet ports 270 onto inner surface 40 may be reduced over those which would be realized if outlet ports 270 extended perpendicularly to the longitudinal axis.
In accordance with an aspect of an exemplary embodiment, alternator assembly 46 provides signals to selectively activate solenoid 120 causing magnetic plunger assembly 160 to shift from the first position (
Set forth below are some embodiments of the foregoing disclosure:
A control valve assembly comprising: a body including a first mud flow passage defining a mud flow inlet and one or more second mud flow passage portions; a magnetic plunger slidingly mounted within the body, the magnetic plunger including one or more third mud flow passage portions each including an inlet section and an outlet section configured to selectively align with the one or more second mud flow passage portions; and a solenoid mounted at the body, the solenoid being selectively activated to shift the magnetic plunger between a first position wherein the third mud flow passage portion is misaligned with the one or more second mudflow passage portions and a second position wherein the third mud flow passage portion aligns with the one or more second mud flow passage portions allowing a pulse of mud to flow through the mud flow passage.
The control valve assembly according to claim 1, wherein the body includes a first body portion mechanically linked to a second body portion by a sleeve member, the first body portion including a central passage receptive of the magnetic plunger.
The control valve assembly according to claim 2, further comprising: a mud flow sleeve arranged in the central passage, the one or more second passage portions being formed in the mud flow sleeve.
The control valve assembly according to claim 3, wherein the first body portion includes a fourth mud flow passage portion fluidically connected to the one or more second mud flow passage portions.
The control valve assembly according to claim 3, wherein the central passage includes an increased diameter portion defining a mud flow outlet chamber fluidically connected to the one or more second mud flow passage portions.
The control valve assembly according to claim 1, wherein the magnetic plunger is formed from diamond coated 9Cr.
The control valve assembly according to claim 1, wherein the second body portion includes a solenoid support and a solenoid carrier mounted to the solenoid support, the solenoid being carried by the solenoid carrier.
The control valve assembly according to claim 7, further comprising: a solenoid sleeve extending about the solenoid, the solenoid sleeve being formed from 9Cr.
The control valve assembly according to claim 7, wherein the magnetic plunger includes an actuating shaft slidably received by the solenoid carrier.
The control valve assembly according to claim 9, further comprising: a spring arranged between the actuating shaft and the solenoid support, the spring biasing the magnetic plunger toward one of the first and second positions.
The control valve assembly according to claim 1, wherein the one or more second mud flow passage portions includes at least two second mud flow passage portions and the one or more third mud flow passage portions includes at least two third mud flow passage portions.
A resource exploration system comprising: an uphole system; and a downhole system including a downhole string operatively connected to the uphole system, the downhole string including a pulser alternator generator having a main valve assembly, an alternator, and a control valve assembly operatively connected to the main valve assembly and the alternator, the control valve assembly comprising: a body including a first mud flow passage defining a mud flow inlet and one or more second mud flow passage portions; a magnetic plunger slidingly mounted within the body, the magnetic plunger including one or more third mud flow passage portions each including an inlet section and an outlet section configured to selectively align with the one or more second mud flow passage portions; and a solenoid mounted at the body, the solenoid being selectively activated to shift the magnetic plunger between a first position wherein the third mud flow passage portion is misaligned with the one or more second mudflow passage portions and a second position wherein the third mud flow passage portion aligns with the one or more second mud flow passage portions allowing a pulse of mud to flow through the mud flow passage.
The resource exploration system according to claim 12, wherein the body includes a first body portion mechanically linked to a second body portion by a sleeve member, the first body portion including a central passage receptive of the magnetic plunger.
The resource exploration system according to claim 13, further comprising: a mud flow sleeve arranged in the central passage, the one or more second passage portions being formed in the mud flow sleeve.
The resource exploration system according to claim 14, wherein the first body portion includes a fourth mud flow passage portion fluidically connected to the one or more second mud flow passage portions.
The resource exploration system according to claim 14, wherein the central passage includes an increased diameter portion defining a mud flow outlet chamber fluidically connected to the one or more second mud flow passage portions.
The resource exploration system according to claim 12, wherein the magnetic plunger is formed from diamond coated 9Cr.
The resource exploration system according to claim 12, wherein the second body portion includes a solenoid support and a solenoid carrier mounted to the solenoid support, the solenoid being carried by the solenoid carrier.
The resource exploration system according to claim 18, further comprising: a solenoid sleeve extending about the solenoid, the solenoid sleeve being formed from 9Cr.
The resource exploration system according to claim 18, wherein the magnetic plunger includes an actuating shaft slidably received by the solenoid carrier.
The resource exploration system according to claim 20, further comprising: a spring arranged between the actuating shaft and the solenoid support, the spring biasing the magnetic plunger toward one of the first and second positions.
The resource exploration system according to claim 13, wherein the one or more second mud flow passage portions includes at least two second mud flow passage portions and the one or more third mud flow passage portions includes at least two third mud flow passage portions.
The teachings of the present disclosure may be used in a variety of well operations. These operations may involve using one or more treatment agents to treat a formation, the fluids resident in a formation, a wellbore, and/or equipment in the wellbore, such as production tubing. The treatment agents may be in the form of liquids, gases, solids, semi-solids, and mixtures thereof. Illustrative treatment agents include, but are not limited to, fracturing fluids, acids, steam, water, brine, anti-corrosion agents, cement, permeability modifiers, drilling muds, emulsifiers, demulsifiers, tracers, flow improvers etc.
The term “about” is intended to include the degree of error associated with measurement of the particular quantity based upon the equipment available at the time of filing the application. For example, “about” can include a range of ±8% or 5%, or 2% of a given value.
While one or more embodiments have been shown and described, modifications and substitutions may be made thereto without departing from the spirit and scope of the invention. Accordingly, it is to be understood that the present invention has been described by way of illustrations and not limitation.
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