FOUR PISTON SCOTCH YOKE ACTUATOR
20230063294 · 2023-03-02
Assignee
Inventors
Cpc classification
F15B15/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/1635
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B9/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/52458
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A Scotch yoke actuator includes a housing formed with four piston bores spaced equally 90° from each other, a shaft with four yokes, each of the yokes having a slot, and four pistons including two pairs of 180° opposing pistons, one pair of the opposing pistons being orthogonal to the other pair of the opposing pistons. Each of the pistons is arranged for linear motion in one of the piston bores. Each of the pistons includes a piston rod which includes a piston pin which is slidable in the slot. Linear motion of the pistons in the piston bores causes rotation of the shaft.
Claims
1. A Scotch yoke actuator comprising: a housing formed with four piston bores spaced equally 90° from each other; a shaft with four yokes, each of said yokes having a slot; and four pistons comprising two pairs of 180° opposing pistons, one pair of the opposing pistons being orthogonal to the other pair of the opposing pistons, each of said pistons arranged for linear motion in one of said piston bores, wherein each of said pistons comprises a piston rod which comprises a piston pin which is slidable in said slot, wherein linear motion of said pistons in said piston bores causes rotation of said shaft.
2. The Scotch yoke actuator according to claim 1, wherein each of said piston rods is supported on one side thereof by one or more piston rod support members and on an opposite side thereof by one or more piston rod supports.
3. The Scotch yoke actuator according to claim 2, wherein said one or more piston rod supports are formed on said shaft.
4. The Scotch yoke actuator according to claim 1, wherein each of said pistons comprises a peripheral guide ring arranged to slide in each of said piston bores.
5. The Scotch yoke actuator according to claim 1, wherein each of said piston pins comprises an inner pin located in an outer sleeve.
6. The Scotch yoke actuator according to claim 5, wherein said outer sleeve is harder than said inner pin.
7. The Scotch yoke actuator according to claim 1, wherein each of said piston rods comprises two legs coupled to said piston, which are connected by a cross member, and two lugs to which said piston pin is coupled.
8. The Scotch yoke actuator according to claim 1, wherein a force actuator is arranged to apply a fluid force to a face of said piston.
9. The Scotch yoke actuator according to claim 1, wherein a biasing device is arranged to apply a force to a face of said piston.
10. The Scotch yoke actuator according to claim 1, wherein a base of the actuator comprises a valve interface member and regulating stop screws coupled to said valve interface member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present invention will be understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings in which:
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DETAILED DESCRIPTION OF EMBODIMENTS
[0034] Reference is now made to
[0035] The Scotch yoke actuator 10 includes a shaft (also called actuator shaft) 12 with four yokes 14. Each yoke 14 has a slot 16. Each of the four yokes 14 is coupled to a piston rod 18 of a piston 19 by means of a piston pin 20, also referred to as piston roller 20 or piston bearing shaft 20. The piston pin 20 may be constructed of an inner pin 23 located in an outer sleeve 24. The inner pin 23 and the outer sleeve 24 may be constructed of a steel alloy (the same or different alloy), with the inner pin 23 hardened and heat-treated to have no significant brittleness, and with a hardness less than that of the outer sleeve 24. The extra hardness of outer sleeve 24 may be useful in minimizing wear on piston pin 20 when the pin slides in slot 16. The inner pin 23 and the outer sleeve 24 may be constructed of different metals or materials.
[0036] The slot 16 may undergo nitride case hardening to provide a superior, smooth bearing surface with little friction and enhanced wear resistance for the piston pin 20 movement. Alternatively, the slot 16 could be coated with different coatings, such as but not limited to, nickel, chrome, or a hard metal.
[0037] The shaft 12, yoke 14, piston rod 18 and piston 19 may be made, without limitation, of a steel alloy or other suitable materials.
[0038] The piston rod 18 is supported by one or more piston rod support members 26, which are described further below. The piston 19 reciprocates linearly in a piston bore 27.
[0039] The piston rod 18, the piston pin 20 and the yoke 14 are subject to significant forces as shown in the force diagram of
[0040] The angle α is the turning angle of the centerline of slot 16 with respect to the vertical. The vertical component of the distance from the center of shaft 12 to the center of the piston pin 20 is designated x.
[0041] Reference is now made to
[0042] The actuator 10 includes a housing 28 formed with four piston bores 27 spaced equally 90° from each other. There are four pistons 19: two pairs of 180° opposing pistons, one pair of opposing pistons being orthogonal(90°) to the other pair of opposing pistons. The piston rod 18 may include two legs 30 coupled to piston 19, which are connected by a cross member 31. The piston rod 18 may further include two lugs 32 to which piston pin 20 is coupled. For example, without limitation, ends of piston pin 20 may be received in apertures formed in lugs 32 and one end of the piston pin 20 maybe secured by circlips. The face of piston 19 may be biased by a biasing device 34, such as a spring set for a spring return unit or a fluid force for a double acting unit, as is well known in the art. The other side of biasing 34 may be assembled against a support ring 36, which is sealed by a cover seal 38 against a cover 40, which is secured to housing 28 by cover bolts 42. As mentioned above, the invention can also be carried out as a double acting actuator, which would use a different cover 40DA, and not have the spring set of the SR version.
[0043] As is well known in the art, for pneumatic actuation, an air port block 44 coupled to housing 28, provides the pneumatic forces on the faces of the pistons 19 via passageways in the housing and via the cover 40 for each piston 19. The invention can be carried out for hydraulic actuation, too.
[0044] The shaft 12 is journaled in housing 28, such as by means of upper and lower bearings 46 and 48, respectively. The shaft 12 may be sealed by upper and lower seals 43 and 45, respectively. The upper end of shaft 12 may be secured by one or more spacers 41 and a circlip 47.
[0045] The shaft 12 may include upper and lower peripheral side load support surfaces 51 and 53, respectively, which support radial side loads imposed on the piston rod 18. Portions of the piston rod 18, which slide against upper and lower peripheral side load support surfaces 51 and 53 (also referred to as upper and lower piston rod supports 51 and 53), serve as rolling bearing surfaces for the piston rod 18.
[0046] Reference is now made to
[0047] Reference is now made to
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[0049] Reference is now made additionally to
[0050]
[0051] Reference is now made to
[0052] Regulating stop screws 70 with locking nuts 72 may be provided to allow rotational adjustment (without limitation, ±3°) of the valve interface member 64 so that it is aligned with the valve so that the actuator properly reaches the 0° and 90° closed and open positions of the valve.