WO2005103540A1 - An actuator system - Google Patents

An actuator system Download PDF

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Publication number
WO2005103540A1
WO2005103540A1 PCT/IB2005/001102 IB2005001102W WO2005103540A1 WO 2005103540 A1 WO2005103540 A1 WO 2005103540A1 IB 2005001102 W IB2005001102 W IB 2005001102W WO 2005103540 A1 WO2005103540 A1 WO 2005103540A1
Authority
WO
WIPO (PCT)
Prior art keywords
actuator system
shaft
motors
actuator
spring
Prior art date
Application number
PCT/IB2005/001102
Other languages
French (fr)
Inventor
Klas Eriksson
Original Assignee
Vetco Aibel As
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 Vetco Aibel As filed Critical Vetco Aibel As
Priority to GB0621471A priority Critical patent/GB2429120B/en
Priority to AU2005236246A priority patent/AU2005236246B2/en
Priority to US11/587,307 priority patent/US7789370B2/en
Publication of WO2005103540A1 publication Critical patent/WO2005103540A1/en
Priority to NO20065257A priority patent/NO334377B1/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/04Actuating devices; Operating means; Releasing devices electric; magnetic using a motor
    • F16K31/047Actuating devices; Operating means; Releasing devices electric; magnetic using a motor characterised by mechanical means between the motor and the valve, e.g. lost motion means reducing backlash, clutches, brakes or return means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/04Actuating devices; Operating means; Releasing devices electric; magnetic using a motor
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/04Actuating devices; Operating means; Releasing devices electric; magnetic using a motor
    • F16K31/041Actuating devices; Operating means; Releasing devices electric; magnetic using a motor for rotating valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/04Actuating devices; Operating means; Releasing devices electric; magnetic using a motor
    • F16K31/046Actuating devices; Operating means; Releasing devices electric; magnetic using a motor with electric means, e.g. electric switches, to control the motor or to control a clutch between the valve and the motor
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/06Means for converting reciprocating motion into rotary motion or vice versa
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/10Structural association with clutches, brakes, gears, pulleys or mechanical starters
    • H02K7/116Structural association with clutches, brakes, gears, pulleys or mechanical starters with gears
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/14Structural association with mechanical loads, e.g. with hand-held machine tools or fans

Definitions

  • the present invention relates to an actuator system, comprising a shaft, a means arranged to power the shaft, and at least one actuated member actuated by the means to power the shaft .
  • the invention also relates to a method for actuating an actuated member by means of a shaft and a means for powering the shaft .
  • actuation systems are to be utilized to actuate elements such as valves in a variety of contexts.
  • One particular context is in subsea and topside oil and gas installations.
  • actuators may be utilized to operate valves linearly, rotary or otherwise.
  • the present invention could be used in any context where an electrical actuation system is utilized.
  • Other examples can include the chemical industry, pulp and paper industry and sewage treatment plants.
  • spring means, as used herein, should be regarded in a wide sense. It might include mechanical, pneumatic as well as hydraulic springs. However, in most cases, a mechanical spring is conceived.
  • known electrical actuators used for actuating valves in subsea oil and gas recovery systems are slow, with a delay time interval of about thirty seconds.
  • conventional electric motors are used for the purpose of driving a shaft that, in its turn, actuates a valve or the like. In certain situations, for example emergency situations, a more rapid action would be desirable.
  • the object of the invention is achieved by means of the actuator system as initially defined, characterized in that said means arranged to power the shaft comprises a plurality of transverse flux motors. Including a plurality of motors can provide the invention with a degree of redundancy.
  • the transversal flux motor is "pancake" shaped, thereby requiring less space in the longitudinal direction of the shaft.
  • transversal flux motors rotates slowly, has a large torque and low "rotational inertia” .
  • such a motor may have a rotation speed below about 5 rpm, with a torque on the order of about 20 Nm. Acceleration time from idle to full speed may be on the order of about 0.1 seconds.
  • Powering the shaft will mean to rotate the shaft, by means of a motor.
  • the system comprises three successively arranged motors.
  • Actuator systems should also provide a fail-safe function, guaranteeing a return of an actuated member, such as a valve, to a preset position in the event of a power failure or some other problem.
  • a cut cable could interrupt a flow of power to an electric motor of an actuator system.
  • the valve should then be returned to a closed position or to an open position in a fail-safe mode. Therefore, according to a preferred embodiment of the invention, the actuator system comprises at least one spring operative to return the system to a preset position upon power failure.
  • the at least one spring comprises a spiral spring.
  • Such springs are particularly useful both for rotary output, such as a ball valve, and for a linear output, such as for a globe valve .
  • the system comprises a plurality of spiral springs operative to return the system to a preset position upon power failure.
  • the at least one spring comprises a linear spring.
  • Linear springs such as “Bellevue Washers”, which is described in published European patent application 1 333 207, provide a lot of power in a small volume.
  • a spring is used for actuators with a linear output. If the actuator system produces a linear output actuator, then a “linear” type spring may be used for the failsafe action.
  • the actuator system comprises a plurality of motors and a plurality of springs, said springs being arranged alternatingly, in an interleaving arrangement, with regard to the motors.
  • spiral springs are often preferred, since they are well suited for the purpose of being interleaved between individual motors along a shaft .
  • the number of springs may be less than the number of motors .
  • the system comprises three motors and two springs, arranged alternatingly along a common shaft.
  • the system may comprise a rotary-to-linear converter operative to convert rotary motion of the shaft to linear output, to provide an optional linear output. It may also comprise a planetary gearing arranged between the motors and the rotary-to-linear converter, to compensate for differences in speed between the motor and the requirements of the rotary-to-linear converter. Accordingly, depending on the provision of a rotary-to-linear converter, the system will present a rotary output or a linear output. In case of a linear output, a linear return spring can, and most probably, will be used.
  • a control unit may be included in the actuator system to coordinate the motors.
  • the control unit may help to ensure that the motors rotate in the same direction and with the same speed.
  • the motors, springs and other elements of an actuator system according to the present invention may, preferably, be housed in a waterproof housing, preferably filled with oil.
  • the object of the invention is also achieved by means of the method initially defined, characterized in that it comprises the step of operating a plurality of transverse flux motors to power said shaft in order to drive the actuated member in a desired manner.
  • the method also comprises the step of actuating the actuated member to a preset position with at least one spring member upon power failure.
  • the present invention is particularly useful in subsea environments.
  • Some particular applications that the present invention may be utilized within this context can include for fast control valves for, for example, gas/liquid separator control, compressor antisurge control, and pump minimum flow control .
  • Fast control valves may also be employed in, for example pressure regulation, level regulation, speed regulation, antisurge regulation, minimum flow regulation, and flow regulation. These represent a few examples where the present invention may, preferably, be utilized.
  • Fig. 1 shows an embodiment of an actuator according to the present invention
  • Fig. 2 shows a second embodiment of an actuator according to the present invention
  • Fig. 3 shows a third embodiment of an actuator according to the present invention
  • Fig. 4 shows a fourth embodiment of an actuator according to the present invention.
  • Fig. 5 shows an embodiment of a control unit according to the present invention.
  • Fig. 1 illustrates one embodiment of an actuator system according to the present invention.
  • the embodiment shown in Fig. 1 includes an oil-filled, pressure compensated motor compartment 1 that houses the motors and springs, among other elements.
  • the motor compartment includes a remotely operated vehicle (ROV) interface 3.
  • ROV remotely operated vehicle
  • This embodiment of an actuator according to the present invention drives a ball or globe valve 5 arranged in a conduit 6.
  • An electronic capsule 7 is connected to the motor compartment through 220 V power interface 9.
  • the electronic capsule also includes a PROFIBUS DP interface 11 operative to receive position commands from a supervisory control system and to report status information back to the supervisory control system.
  • PROFIBUS DP is a known instrumentation field bus.
  • Fig. 2 illustrates an embodiment of a rotary configuration actuator system according to the present invention.
  • This embodiment includes an oil filled motor compartment/housing or capsule 15.
  • the motor capsule includes a remotely operated vehicle (ROV) interface 17 and a remotely operated vehicle (ROV) connector 19.
  • a pressure compensator 21 may be arranged in an opening in a wall of the motor capsule to address pressure differences between the interior of the motor capsule and the exterior environment.
  • Three independent motors 23 are arranged on a common shaft 25.
  • Two independent clock springs 27 are alternatingly arranged with the motors 23.
  • a position sensor 29 is included to sense the rotational position of the shaft.
  • a planetary gear 31 is connected to the shaft.
  • This embodiment includes an interface to turn valve 33.
  • Fig. 3 illustrates an embodiment of a linear configuration actuator system according to the present invention.
  • This embodiment includes an oil filled motor capsule 35.
  • the motor capsule includes a remotely operated vehicle interface 37 and a remotely operated vehicle connector 39.
  • a pressure compensator 41 is arranged in an opening in a wall of the motor capsule to address pressure differences between the interior of the motor capsule and the exterior environment .
  • Three independent motors 43 are arranged on a common shaft 45.
  • Two independent clock springs 47 are alternatingly arranged with the motors.
  • a position sensor 49 is included to sense the rotational position of the shaft.
  • a planetary gear 51 is connected to the shaft.
  • a rotary/linear converter 53 is operatively connected to the shaft to convert rotary motion produced by the motors to linear motion.
  • This embodiment includes an interface to a linear acting valve 55.
  • Fig. 4 illustrates an embodiment of another linear configuration actuator system according to the present invention.
  • This embodiment includes an oil filled motor capsule 57.
  • the motor capsule includes a remotely operated vehicle interface 59 and a remotely operated vehicle connector 61.
  • a pressure compensator 63 is arranged in an opening in a wall of the motor capsule to address pressure differences between the interior of the motor capsule and the exterior environment .
  • Three independent motors 65 are arranged on a common shaft 67.
  • a position sensor 69 is included to sense the rotational position of the shaft.
  • a planetary gear 71 is connected to the shaft.
  • a rotary/linear converter 73 is operatively connected to the shaft to convert rotary motion produced by the motors to linear motion.
  • Such a converter may include a threaded shaft and nut arrangement (see EP 1 333 207).
  • a linear spring and latch 75 is arranged on the shaft.
  • This embodiment includes an interface to linear acting valve 77.
  • the rotary/linear converter 73 that produces a linear motion, includes torque reaction means (not shown) which, in normal operation, is in an activated condition and provides a torque reaction path to enable the driven member to be reversibly moved between a first and a second position, the driven member being restrained from rotating, but which, in the event of a fault, is in a deactivated condition so that it no longer provides said torque reaction path and the spring 75 can move the driven member to said first position without disengaging the rotary motion means, i.e. the shaft.
  • torque reaction means not shown
  • the fail safe mechanism does not have to reversely drive the actuator through its relatively complicated mechanism, which includes the motor or motors, the gearbox, and the rotary/linear converter. Any jamming in such parts will, accordingly, not inhibit the operation of the fail-safe mechanism.
  • Fig. 5 illustrates an embodiment of a control unit according to the present invention.
  • This embodiment of a control unit includes controller electronics 79, three power supplies 81, and three power electronics 83.
  • an actuator system includes a plurality of transvers flux motors. Two, three or more motors may be utilized. One embodiment includes six of such motors. The motors may be arranged stacked along a common shaft. However any arrangement, particularly those that permit the additional motors to provide redundant power may be utilized .
  • the present invention can also include power electronics and power supplies operatively connected to the motors .
  • the actuator system may also include a number of electronics and power supplies to provide a degree of redundancy.
  • some embodiments of the invention may include one power electronics and one power supply per motor. According to one example, if four motors are required to provide power to the system, the system could include six motors such that two may fail and still permit the system to operate at full performance .
  • the present invention may also include a fail-safe system.
  • the fail-safe system may include one or more spring members operative to return the valve or other member being actuated to a preset or safe position.
  • the failsafe or preset position typically is the closed position, but may also be the open position.

Abstract

An actuator system, comprising a shaft (25), a means arranged to power the shaft (25) and at least one actuated member (33) actuated by the means to power the shaft (25). The means arranged to power the shaft (25) comprises a plurality of transverse flux motors (23).

Description

AN ACTUATOR SYSTEM
FIELD OP THE INVENTION
The present invention relates to an actuator system, comprising a shaft, a means arranged to power the shaft, and at least one actuated member actuated by the means to power the shaft .
The invention also relates to a method for actuating an actuated member by means of a shaft and a means for powering the shaft .
Generally, actuation systems according to the invention are to be utilized to actuate elements such as valves in a variety of contexts. One particular context is in subsea and topside oil and gas installations. In these contexts, actuators may be utilized to operate valves linearly, rotary or otherwise. The present invention could be used in any context where an electrical actuation system is utilized. Other examples can include the chemical industry, pulp and paper industry and sewage treatment plants.
The term spring means, as used herein, should be regarded in a wide sense. It might include mechanical, pneumatic as well as hydraulic springs. However, in most cases, a mechanical spring is conceived.
BACKGROUND OF THE INVENTION AND PRIOR ART
Particularly in the context of installations handling oil and gas, there is typically a need to quickly actuate valves. This is at least in part due to the nature of the material being handled in the installations. Along these lines, there is a need to maintain control over the flow of oil, gas or other materials that could potentially escape from the installations and thereby prevent any possible environmental damage. The desire to control movement of material in such installations may also manifest itself in a desire for redundancy of control mechanisms as well as fail-safe mechanisms.
Typically, known electrical actuators used for actuating valves in subsea oil and gas recovery systems are slow, with a delay time interval of about thirty seconds. Thereby, conventional electric motors are used for the purpose of driving a shaft that, in its turn, actuates a valve or the like. In certain situations, for example emergency situations, a more rapid action would be desirable.
OBJECTS OF THE INVENTION
It is an object of the present invention to present an actuator system that is well adapted for the purpose of actuating members such as valves, both rapidly and with a certain degree of redundancy .
SUMMARY OF THE INVENTION
The object of the invention is achieved by means of the actuator system as initially defined, characterized in that said means arranged to power the shaft comprises a plurality of transverse flux motors. Including a plurality of motors can provide the invention with a degree of redundancy. The transversal flux motor is "pancake" shaped, thereby requiring less space in the longitudinal direction of the shaft. Typically, transversal flux motors rotates slowly, has a large torque and low "rotational inertia" . According to preferred embodiments, such a motor may have a rotation speed below about 5 rpm, with a torque on the order of about 20 Nm. Acceleration time from idle to full speed may be on the order of about 0.1 seconds. This can permit the motor to accelerate from a standstill to full speed very fast. Also, if the motor hits an end stop at full speed, the impact is much smaller than for a high speed motor. Thus, the use of transverse flux motors will guarantee a rapid action of the actuator system.
Powering the shaft, as referred to herein, will mean to rotate the shaft, by means of a motor.
According to a preferred embodiment the system comprises three successively arranged motors.
Actuator systems should also provide a fail-safe function, guaranteeing a return of an actuated member, such as a valve, to a preset position in the event of a power failure or some other problem. For example, a cut cable could interrupt a flow of power to an electric motor of an actuator system. Typically, in the context of a valve, the valve should then be returned to a closed position or to an open position in a fail-safe mode. Therefore, according to a preferred embodiment of the invention, the actuator system comprises at least one spring operative to return the system to a preset position upon power failure.
According to one embodiment the at least one spring comprises a spiral spring. Such springs are particularly useful both for rotary output, such as a ball valve, and for a linear output, such as for a globe valve .
According to an alternative solution, the system comprises a plurality of spiral springs operative to return the system to a preset position upon power failure.
According to another embodiment, the at least one spring comprises a linear spring. Linear springs, such as "Bellevue Washers", which is described in published European patent application 1 333 207, provide a lot of power in a small volume. Typically, such a spring is used for actuators with a linear output. If the actuator system produces a linear output actuator, then a "linear" type spring may be used for the failsafe action.
Preferably, the actuator system comprises a plurality of motors and a plurality of springs, said springs being arranged alternatingly, in an interleaving arrangement, with regard to the motors. In such cases spiral springs are often preferred, since they are well suited for the purpose of being interleaved between individual motors along a shaft . The number of springs may be less than the number of motors . According to a preferred embodiment the system comprises three motors and two springs, arranged alternatingly along a common shaft.
Furthermore, the system may comprise a rotary-to-linear converter operative to convert rotary motion of the shaft to linear output, to provide an optional linear output. It may also comprise a planetary gearing arranged between the motors and the rotary-to-linear converter, to compensate for differences in speed between the motor and the requirements of the rotary-to-linear converter. Accordingly, depending on the provision of a rotary-to-linear converter, the system will present a rotary output or a linear output. In case of a linear output, a linear return spring can, and most probably, will be used.
A control unit may be included in the actuator system to coordinate the motors. For instance, the control unit may help to ensure that the motors rotate in the same direction and with the same speed.
The motors, springs and other elements of an actuator system according to the present invention may, preferably, be housed in a waterproof housing, preferably filled with oil.
The object of the invention is also achieved by means of the method initially defined, characterized in that it comprises the step of operating a plurality of transverse flux motors to power said shaft in order to drive the actuated member in a desired manner.
Preferably, the method also comprises the step of actuating the actuated member to a preset position with at least one spring member upon power failure.
As referred to above, the present invention is particularly useful in subsea environments. Some particular applications that the present invention may be utilized within this context can include for fast control valves for, for example, gas/liquid separator control, compressor antisurge control, and pump minimum flow control . Fast control valves may also be employed in, for example pressure regulation, level regulation, speed regulation, antisurge regulation, minimum flow regulation, and flow regulation. These represent a few examples where the present invention may, preferably, be utilized.
Further features and advantages of the present invention will be disclosed in the following detailed description as well as in the annexed patent claims.
BRIEF DESCRIPTION OF THE DRAWINGS
Objects and advantages of the present invention will be more clearly understood from the following specification when considered in conjunction with the accompanying drawings, in which:
Fig. 1 shows an embodiment of an actuator according to the present invention;
Fig. 2 shows a second embodiment of an actuator according to the present invention; Fig. 3 shows a third embodiment of an actuator according to the present invention;
Fig. 4 shows a fourth embodiment of an actuator according to the present invention; and
Fig. 5 shows an embodiment of a control unit according to the present invention.
DETAILED DESCRIPTION OF THE INVENTION
Fig. 1 illustrates one embodiment of an actuator system according to the present invention. The embodiment shown in Fig. 1 includes an oil-filled, pressure compensated motor compartment 1 that houses the motors and springs, among other elements. The motor compartment includes a remotely operated vehicle (ROV) interface 3. This embodiment of an actuator according to the present invention drives a ball or globe valve 5 arranged in a conduit 6. An electronic capsule 7 is connected to the motor compartment through 220 V power interface 9. According to this embodiment, the electronic capsule also includes a PROFIBUS DP interface 11 operative to receive position commands from a supervisory control system and to report status information back to the supervisory control system. PROFIBUS DP is a known instrumentation field bus.
Other, corresponding interfaces may alternatively be utilized.
Fig. 2 illustrates an embodiment of a rotary configuration actuator system according to the present invention. This embodiment includes an oil filled motor compartment/housing or capsule 15. The motor capsule includes a remotely operated vehicle (ROV) interface 17 and a remotely operated vehicle (ROV) connector 19. A pressure compensator 21 may be arranged in an opening in a wall of the motor capsule to address pressure differences between the interior of the motor capsule and the exterior environment. Three independent motors 23 are arranged on a common shaft 25. Two independent clock springs 27 are alternatingly arranged with the motors 23. A position sensor 29 is included to sense the rotational position of the shaft. A planetary gear 31 is connected to the shaft. This embodiment includes an interface to turn valve 33.
Fig. 3 illustrates an embodiment of a linear configuration actuator system according to the present invention. This embodiment includes an oil filled motor capsule 35. The motor capsule includes a remotely operated vehicle interface 37 and a remotely operated vehicle connector 39. A pressure compensator 41 is arranged in an opening in a wall of the motor capsule to address pressure differences between the interior of the motor capsule and the exterior environment . Three independent motors 43 are arranged on a common shaft 45. Two independent clock springs 47 are alternatingly arranged with the motors. A position sensor 49 is included to sense the rotational position of the shaft. A planetary gear 51 is connected to the shaft. A rotary/linear converter 53 is operatively connected to the shaft to convert rotary motion produced by the motors to linear motion. This embodiment includes an interface to a linear acting valve 55.
Fig. 4 illustrates an embodiment of another linear configuration actuator system according to the present invention. This embodiment includes an oil filled motor capsule 57. The motor capsule includes a remotely operated vehicle interface 59 and a remotely operated vehicle connector 61. A pressure compensator 63 is arranged in an opening in a wall of the motor capsule to address pressure differences between the interior of the motor capsule and the exterior environment . Three independent motors 65 are arranged on a common shaft 67. A position sensor 69 is included to sense the rotational position of the shaft. A planetary gear 71 is connected to the shaft. A rotary/linear converter 73 is operatively connected to the shaft to convert rotary motion produced by the motors to linear motion. Such a converter may include a threaded shaft and nut arrangement (see EP 1 333 207). A linear spring and latch 75 is arranged on the shaft. This embodiment includes an interface to linear acting valve 77.
As to the function of the linear spring and latch 77, it is preferred to be in accordance with what is disclosed in European patent application EP 1 333 207, the content of which is included herein by reference. More precisely, the rotary/linear converter 73, that produces a linear motion, includes torque reaction means (not shown) which, in normal operation, is in an activated condition and provides a torque reaction path to enable the driven member to be reversibly moved between a first and a second position, the driven member being restrained from rotating, but which, in the event of a fault, is in a deactivated condition so that it no longer provides said torque reaction path and the spring 75 can move the driven member to said first position without disengaging the rotary motion means, i.e. the shaft. As a result the fail safe mechanism does not have to reversely drive the actuator through its relatively complicated mechanism, which includes the motor or motors, the gearbox, and the rotary/linear converter. Any jamming in such parts will, accordingly, not inhibit the operation of the fail-safe mechanism.
Fig. 5 illustrates an embodiment of a control unit according to the present invention. This embodiment of a control unit includes controller electronics 79, three power supplies 81, and three power electronics 83.
Typically, an actuator system according to the present invention includes a plurality of transvers flux motors. Two, three or more motors may be utilized. One embodiment includes six of such motors. The motors may be arranged stacked along a common shaft. However any arrangement, particularly those that permit the additional motors to provide redundant power may be utilized .
The present invention can also include power electronics and power supplies operatively connected to the motors . The actuator system may also include a number of electronics and power supplies to provide a degree of redundancy. Along these lines, some embodiments of the invention may include one power electronics and one power supply per motor. According to one example, if four motors are required to provide power to the system, the system could include six motors such that two may fail and still permit the system to operate at full performance .
The present invention may also include a fail-safe system. The fail-safe system may include one or more spring members operative to return the valve or other member being actuated to a preset or safe position. In the case of a valve, the failsafe or preset position typically is the closed position, but may also be the open position.
It should be realised that the invention has been shown by way of example by means of the above described embodiments. A number of alternative embodiments will therefore be obvious for a person skilled in the art without going beyond the scope of the invention as described herein and illustrated in the annexed drawings .

Claims

PATENT CLAIMS
1. An actuator system, comprising: a shaft (25) ; a means arranged to power the shaft (25) ; and at least one actuated member (33) actuated by the means to power the shaft (25) , characterized in that said means arranged to power the shaft (25) comprises a plurality of transverse flux motors (23) .
2. The actuator system according to claim 1, characterized in that the system comprises three successively arranged motors (23) .
3. The actuator system according to any one of claims 1-2, characterized in that it comprises at least one spring means (27) operative to return the system to a preset position upon power failure.
4. The actuator system according to any one of claims 1-3, characterized in that the at least one spring (27) comprises a spiral spring (27) .
5. The actuator system according to any one of claims 1-4, characterized in that the system comprises a plurality of spiral springs (27) operative to return the system to a preset position upon power failure.
6. The actuator system according to any one of claims 1-3, characterized in that the at least one spring means comprises a linear spring.
7. The actuator system according to any one of claims 1-6, characterized in that the actuator system comprises a plurality of said motors (23) and a plurality of springs (27), said springs (27) being arranged alternatingly, in an interleaving arrangement, with regard to the motors (23) .
8. The actuator system according to any one of claims 1-7, characterized in that it further comprises : a rotary-to-linear converter (53) operative to convert rotary motion of the shaft (45)) to linear output.
9. The actuator system according to claim 8, characterized in that it further comprises a planetary gearing (51) arranged between the motors (43) and the rotary-to- linear converter (53) .
10. The actuator system according to any one of claims 10, characterized in that it further comprises : a control unit (79,81,83) operative to control operation of the actuator system.
11. The actuator system according to any one of claims 1-10, characterized in that it further comprises: a compartment (15) housing the motors (23) and the at least one spring (27) .
12. The actuator system according to claim 11, characterized in that the motor compartment (15) is oil filled.
13. The actuator system according to claim 11 or 12, characterized in that the motor compartment (15) comprises at least one remotely operated vehicle interface (17) and at least one remotely operated vehicle connector (19) .
14. The actuator system according to any one of claims 11-13, characterized in that the motor compartment (15) comprises a pressure compensator (21) .
15. The actuator system according to any one of claims 1-14, characterized in that it further comprises: an interface (9) operatively connected to the shaft (25) and the actuated member.
16. The actuator system according to any one of claims 1-15, characterized in that it further comprises : a position sensor (11) operative to determine a position of the shaft (25) .
17. The actuator system according to any one of claims 1-16, characterized in that the at least one actuated member (33) is a valve .
18. The actuator system according to claim 17, characterized in that, when the actuator is in the preset position, the valve (33) is closed.
19. The actuator system according to claim 17, characterized in that, when the actuator is in the preset position, the valve (33) is open.
20. A method for actuating an actuated member (33) by means of a shaft (25) and a means (23) for powering the shaft (25), characterized in that it comprises the step of operating a plurality of transverse flux motors (23) to power said shaft (25) in order to drive the actuated member (33) in a desired manner .
21. A method according to claim 20 characterized in that, upon power failure, it further comprises the step of actuating the actuated member (33) to a preset position by the aid of at least one spring member (27) .
PCT/IB2005/001102 2004-04-23 2005-04-25 An actuator system WO2005103540A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
GB0621471A GB2429120B (en) 2004-04-23 2005-04-25 An actuator system
AU2005236246A AU2005236246B2 (en) 2004-04-23 2005-04-25 An actuator system
US11/587,307 US7789370B2 (en) 2004-04-23 2005-04-25 Actuator system
NO20065257A NO334377B1 (en) 2004-04-23 2006-11-15 A trigger system

Applications Claiming Priority (2)

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US56461804P 2004-04-23 2004-04-23
US60/564,618 2004-04-23

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AU (1) AU2005236246B2 (en)
GB (1) GB2429120B (en)
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WO (1) WO2005103540A1 (en)

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Publication number Priority date Publication date Assignee Title
US20120210708A1 (en) * 2006-05-04 2012-08-23 Capstone Metering Llc Water meter
US20120305113A1 (en) * 2009-07-31 2012-12-06 Capstone Metering Llc Water meter

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2198766A (en) * 1986-12-20 1988-06-22 K E International Limited Electrically controlled valve
DE19811073A1 (en) * 1998-03-13 1999-09-16 Blum Gmbh Cylindrical, multiple phase transversal flux actuator, esp. for use with hexapod machines
DE10134428A1 (en) * 2001-07-19 2003-01-30 Abb Research Ltd Valve actuator drive for subsea oil pipeline, is installed on sea bed, with electrical supply, operation and monitoring from above sea level
US6595487B2 (en) * 2000-05-16 2003-07-22 Kongsberg Offshore A/S Electric actuator
US20030145667A1 (en) * 2002-02-01 2003-08-07 Donald Alistair Ross Linear actuators

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2198766A (en) * 1986-12-20 1988-06-22 K E International Limited Electrically controlled valve
DE19811073A1 (en) * 1998-03-13 1999-09-16 Blum Gmbh Cylindrical, multiple phase transversal flux actuator, esp. for use with hexapod machines
US6595487B2 (en) * 2000-05-16 2003-07-22 Kongsberg Offshore A/S Electric actuator
DE10134428A1 (en) * 2001-07-19 2003-01-30 Abb Research Ltd Valve actuator drive for subsea oil pipeline, is installed on sea bed, with electrical supply, operation and monitoring from above sea level
US20030145667A1 (en) * 2002-02-01 2003-08-07 Donald Alistair Ross Linear actuators

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20120210708A1 (en) * 2006-05-04 2012-08-23 Capstone Metering Llc Water meter
US8690117B2 (en) * 2006-05-04 2014-04-08 Capstone Metering Llc Water meter
US20120305113A1 (en) * 2009-07-31 2012-12-06 Capstone Metering Llc Water meter
US8602384B2 (en) * 2009-07-31 2013-12-10 Capstone Metering Llc Water meter

Also Published As

Publication number Publication date
NO20065257L (en) 2007-01-12
AU2005236246A1 (en) 2005-11-03
AU2005236246B2 (en) 2010-06-03
NO334377B1 (en) 2014-02-24
GB0621471D0 (en) 2006-12-13
GB2429120B (en) 2008-01-23
GB2429120A (en) 2007-02-14

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