FORCE LIMITED VALVE ACTUATOR AND METHOD THEREFOR
20180119841 ยท 2018-05-03
Inventors
Cpc classification
F16K31/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The force limited valve actuator operates on light-duty valves. The actuator includes signal controlled motor which drives a two piece threaded screw-nut drive. The nut connected to the motor and the screw connected to the valve stem. The nut has a spring loaded actuation surface/plate. The nut body has a positional indicator stem used as a valve-motor control. Operationally, the screw-nut-set moves between first, second and third positions. First: actuation plate at neutral and valve-stem at valve OPEN stop (example). Second: screw protrudes outboard of nut and valve-stem at CLOSE stop and actuation plate at neutral. Third: plate moves away from valve-stem (beyond neutral) while stem at CLOSE which third movement is a force sensor. First, second and third positions are all one way screw rotation. Force limited on stem by damper-shock absorber action. The positional indicator effects ON-OFF valve control.
Claims
1. A force limited valve actuator for a light duty valve adapted to be actuated with less than 1,100 N, said valve having a linearly actuated valve stem operative between a closed position and an open position, the valve actuator comprising: an electric motor controlled by a valve control signal providing a rotational output; a geared transmission coupled to said motor and providing a rotational drive based upon said rotational output; an actuator body; a two piece threaded drive having a first threaded body threadably interconnected to a complementary second threaded body, said first body having either a threaded nut element or a threaded screw element and the second body having either the complementary threaded screw element or the complementary threaded nut element, said threaded drive disposed within said actuator body; said first threaded body linearly coupled to said valve stem and adapted to operate between said open and closed valve positions; said second threaded body coupled to said geared transmission converting said rotational drive to a linear movement output and screwed rotation between said first and second threaded bodies; an actuation surface on said second threaded body; a spring interposed between said actuation surface and said actuator body; a positional stem on said second body indicating a position of said actuation surface with respect to said actuator body; said first and second threaded bodies moving between first, second and third linear positions with respect to said actuator body, in said first linear position said first threaded body linearly positioning said valve stem in a first predetermined position and said actuation surface disposed at a neutral position with respect to said actuator body; in said second linear position said first threaded body protruding outboard of said second threaded body and said valve stem being in a second predetermined position while said actuation surface is in said neutral position; and in said third linear position said actuation surface moved away from said valve stem to a control position while said valve stem is in said second predetermined position thereby providing a force sensor for said valve stem; said first and second threaded bodies moved between said first, second and third linear positions by one-way screw rotation between said first and second threaded bodies; whereby said positional stem indicates said actuation surface at said control position and indicates a force level on said valve stem thereby effecting said valve control signal.
2. A force limited valve actuator as claimed in claim 1 wherein between said second and third linear positions, said spring is one of a damper, a shock absorber and a force limiter between said valve stem and motor.
3. A force limited valve actuator as claimed in claim 1 wherein between said first and second linear positions, said spring is one of a damper and a shock absorber between said valve stem and motor.
4. A force limited valve actuator as claimed in claim 1 wherein said spring is a spring body which is one of a mechanical compression spring, a tension spring, a hydraulic spring action unit and a pneumatic spring action unit.
5. A force limited valve actuator as claimed in claim 1 wherein said spring, when in said third linear position consistent with said actuation surface in said control position, defines a force limiter between said valve stem and said motor.
6. A force limited valve actuator as claimed in claim 1 wherein: said first valve stem predetermined position is one of an open and a closed valve position and said second valve stem predetermined position is the other of said open and said closed valve position; said first threaded body has said screw element, said second threaded body has said nut element, and said two piece threaded drive and said screw and nut elements lie along a longitudinal centerline; said actuation surface includes a lateral actuation plate attached to said nut element, said spring being interposed between an internal spring stop on said actuator body and said lateral actuation plate; said screw element having a coupling element between said screw threads and said valve stem; said screw and nut elements, said positional stem and said coupling element moving along said longitudinal centerline and said screw element's linear position along said longitudinal centerline is adapted to operate said valve between said open and closed valve positions; and between said second and third linear positions, said lateral actuation plate coacting with said spring due to further screw rotation to effect said valve control signal.
7. A force limited valve actuator as claimed in claim 6 wherein between said first and second linear positions, said spring is one of a damper and a shock absorber between said valve stem and motor; and wherein between said second and third linear positions, said spring is a force limiter between said valve stem and motor.
8. A force limited valve actuator for a light duty valve adapted to be actuated with less than 1,100 N, said valve having a valve stem operative between a closed position and an open position and said valve controlled by a valve control signal supplied to said actuator, the valve actuator comprising: an electric motor controlled by said valve control signal; a transmission coupled to said motor; an actuator body; a two piece threaded drive having a first threaded body threadably interconnected to a complementary second threaded body, said first threaded body having either a threaded nut element or a threaded screw element and the second threaded body having either the complementary threaded screw element or the complementary threaded nut element, said threaded drive disposed within said actuator body; said first threaded body having a coupler coupled to said valve stem for operation between said open and closed valve positions; said second threaded body coupled to said transmission thereby establishing screw rotation between said first and second threaded bodies and linear displacement therebetween; an actuation surface on said second threaded body; a spring interposed between said actuation surface and said actuator body; a positional stem on said second threaded body indicating a plurality of control positions with respect to said actuator body; said first and second threaded bodies moving between first, second and third positions with respect to said actuator body, in said first linear position said first threaded body positioning said valve stem in a first predetermined position and said actuation surface disposed at a neutral position with respect to said actuator body, in said second linear position said first threaded body protruding outboard of said second threaded body and said valve stem being in a second predetermined position while said actuation surface is in said neutral position, and in said third linear position said actuation surface moved away from said valve stem while said valve stem is in said second predetermined position; in said third linear position while said actuation surface is moved away from said valve stem, said positional stem acting as a force sensor; said first and second threaded bodies moved between said first, second and third linear positions by one-way screw rotation therebetween; whereby said positional stem indicating a plurality of control positions between said second and third linear positions for said valve control signal.
9. A force limited valve actuator as claimed in claim 8 wherein between said first and second linear positions, said spring is one of a damper and a shock absorber between said valve stem and motor; and wherein between said second and third linear positions, said spring is one of a damper, a shock absorber and a force limiter between said valve stem and motor.
10. A force limited valve actuator as claimed in claim 9 wherein said spring is a spring body which is one of a mechanical compression spring, a tension spring, a hydraulic spring action unit and a pneumatic spring action unit.
11. A force limited valve actuator as claimed in claim 10 wherein: said first valve stem predetermined position is one of an open and a closed valve position and said second valve stem predetermined position is the other of said open and said closed valve position; said first threaded body has said screw element, said second threaded body has said nut element, and said two piece threaded drive and said screw and nut elements lie along a longitudinal centerline; said actuation surface includes a lateral actuation plate attached to said nut element, said spring being interposed between a stop on said actuator body and said lateral actuation plate; a screw element end opposite a threaded interface with said nut element coupled to said valve stem; said screw and nut elements, said positional stem and said screw element end moving longitudinally and acting on said valve stem to operate said valve between said open and closed valve positions; and between said second and third linear positions, said lateral actuation plate coacting with said spring due to further screw rotation to effect said valve control signal.
12. A method of limited force on a valve stem of a light duty valve actuated with less than 1,100 N operative between open and closed positions, said valve controlled by a valve control signal, comprising: providing a threaded drive with screw and nut elements disposed in an actuator housing; providing a spring between said nut element and said actuator housing linearly moving said valve stem in a first direction by screwed rotation of said nut element with respect to said screw element until reaching one or the other of said open and closed positions; thereafter linearly moving said nut element in a second direction, opposite said first direction, against said spring; sensing force on said valve stem during the linear movement of said nut element in said second direction; thereby establishing one of a damper action and a shock absorber action between said valve stem and motor via said spring and thereby establishing during movement in said second direction via said spring, one of a damper action, a shock absorber action and a force limiter action between said valve stem and motor.
13. A method of limited force on a valve stem of a light duty valve actuated with less than 1,100 N operative between open and closed positions, said valve controlled by a valve control signal, comprising: providing a threaded drive with screw and nut elements disposed in an actuator housing; providing a spring between said screw element and said actuator housing linearly moving said valve stem in a first direction by screwed rotation of said screw element with respect to said net element until reaching one or the other of said open and closed positions; thereafter linearly moving said screw element in a second direction, opposite said first direction, against said spring; sensing force on said valve stem during the linear movement of said screw element in said second direction; thereby establishing one of a damper action and a shock absorber action between said valve stem and motor via said spring and thereby establishing during movement in said second direction via said spring, one of a damper action, a shock absorber action and a force limiter action between said valve stem and motor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Further objects and advantages can be found in the detailed description of the preferred embodiments when taken in conjunction with the accompanying drawings.
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026] The present invention relates to a force limited valve actuator for a light duty valve adapted to be actuated with less than 1,100 N (Newtons) force. A method for operating a valve actuator is also discussed herein. Similar numerals designate similar items in the drawings.
[0027] A general description of one embodiment of the invention follows.
[0028]
[0029]
[0030] The function of the adapter 12 is to convert rotational motion provided by the combination of motor 18, transmission gear set 21 and drive gear 23 to linear motion to push the valve stem 22 up and down and to intermediate positions under the control of valve control commands or signals.
[0031] As explained earlier, these types of light duty valve actuators receive open and close and positional flow commands from a central controller 112. In general, these commands are applied to a valve motor control 110. The output of the motor control 110 is applied to a signal conditioner 114 and ultimately to motor 18.
[0032] The adapter bottom housing 24 (
[0033] Acme nut system 35 is turned by the driver cap 42 which is driven by a gear set transmission 21, 23 inside the actuator 24, 32. As the Acme nut system 35 turns, Acme screw set 34, 30 and 28 goes down and pushes on the valve stem 22. The gap in
[0034] The Acme screw assembly 34, 30 and 28 continues to push on valve stem 22 until the stem reaches the bottom or end point of the valve 14.
[0035]
[0036] While the compression spring 40 is being compressed as shown in
[0037] More specifically,
[0038]
[0039]
[0040] The screw set 61 includes screw threads along screw stem 67. These screw threads are complementary to the nut threads 72. Screw set 61 includes laterally extending guide arms 63A, 63B which co-act with longitudinally extending slots 64 in the housing 24, 32. Therefore when nut elements 70 rotate due to the transmitted rotational action of motor 18, interlocking threads 61, 72 initially cause screw system 61, 67, 65 (in
[0041] In operation, valve 14 can be positioned at intermediate locations and can be opened and closed between a full open stop and a full closed stop position based upon valve control signals generated by motor control 110 applied to motor 18. In this type of operation, the start and stop involves application of rotational force which is translated into linear force by the two-piece threaded drive and this linear force is mechanically conditioned or dampened by spring 40. A further analysis indicates that spring 40 provides shock absorber action when valve stem 22 hits the top or bottom stops in valve 14 signifying a fully open or fully closed position as dictated by the operator, the installation and the operator's operational conditions for the valve.
[0042] The damping action is provided by spring 40 because valve actuator motors have a force output that is variable motor to motor. Also, abrupt starts and stops develop spikes of force on the valve stem. Further, spring 40 acts as a shock absorber for the top stop and the bottom stop of valve 14. As explained later, spring 40 also acts as a force limiter for the actuator valve at these full stop positions.
[0043] Manufacturers of valves provide maximum force data which is the maximum force required to move the valve stem to full open/closed stop positions. The spring 40 ensures that the difference between the maximum force and the minimum force developed by the valve actuator is narrowed to typically 15-20 N, dependent upon the quality of the spring. Springs are inherently stable and provide repeatable, consistent mechanical responses to the application of force applied thereon. The spring 40 acts like a filter and accepts force variations generated by the motor and gear set and dampens these variations prior to application of force to the valve stem. These force variations from one actuator motor to another actuator motor may be +/100 N. Even within the actuator itself, the forces produced by the internal mechanisms can vary +/80 N, dependent upon the position of the actuator components. In this manner, the use of spring 40 provides not only damping action and also shock absorbing action and further provides a force limiter for the end stop positions of the actuator.
[0044] The force limited actuator moves between first, second and third linear positions diagrammatically illustrated in
[0045] In the neutral position, spring 40 acts as a damper to smooth out the force vectors caused by intermediate movement of the valve by the motor, that is, movement between open stop and close stop positions.
[0046]
[0047]
[0048] When the valve strikes the open stop or the close stop, spring 40 acts as a shock absorber to smooth out the motor force and motor force vectors. When the motor moves beyond these stops, spring 40 acts as a force limiter since the plate 74 moves upward.
[0049]
[0050] Other positional sensors 130 may be used. These position sensor may include an optical sensor at the top end of positional stem 78 of nut set 35, 70, a microswitch at that distal end stem point or other types of positional sensors. Types of positional sensors 130 include optical sensors, hall effect sensors, reed switch sensors, push-button, levers, etc.
[0051] Spring 40 may be a compression spring, tension spring, a hydraulic unit providing spring action or a new pneumatic unit providing spring action. If a tension spring is used, the spring would be pulled rather than compressed as shown in
[0052] The method of operation includes providing a threaded drive with screw and nut elements disposed in the actuator housing. A spring is provided between the nut element in the actuator housing. In a different embodiment, the spring is provided between the screw element and the actuator housing. The method linearly moves the valve stem in a first direction by screwed rotation of the nut element with respect to the screw element until the valve stem is at a stop, one or the other of the open or closed valve position. Thereafter, the limited force actuation method linearly moves the nut element in a second direction opposite the first direction against the spring. In this manner the spring provides a damper action and a shock absorber action to the first directional movement and a force limiter in the second directional movement. In the second directional movement, the valve stem is at the end stop and the nut element moves linearly against the spring and the spring provides a force limiter on the valve stem. Also, this second directional movement is used to positionally sense a stop motor control signal. The valve stem is at a stop in this second movement process.
[0053] The claims appended hereto are meant to cover modifications and changes within the scope and spirit of the present invention.