Magnetic failsafe piston retention assembly, and related components, systems, and methods
10801529 ยท 2020-10-13
Assignee
Inventors
Cpc classification
F03B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/264
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F15B15/261
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B15/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A failsafe piston retention assembly, and related components, systems, and methods are disclosed. A failsafe piston retention assembly comprises a head comprising a head body having a first surface. The assembly also includes a piston having second surface, the piston slidably coupled with respect to the head. The piston has a retracted configuration and an unretracted configuration. In the retracted configuration, the second surface is fixed with respect to the first surface by a magnetic force. One advantage of this arrangement is that the piston is retained in its retracted configuration in the event of an operational failure of the piston mechanism. For example, for a hydraulically controlled piston, the magnetic force retains the piston in a retracted configuration even in the event of a loss of hydraulic pressure.
Claims
1. A failsafe piston retention assembly comprising: a head comprising a head body having a first surface; and a hydraulically controlled piston having a second surface, the hydraulically controlled piston being slidably coupled with respect to the head and having a retracted configuration and an unretracted configuration, wherein in the retracted configuration, the second surface being fixed with respect to the first surface by a magnetic force; wherein the head is configured to be fixed to a pedestal, and wherein the piston is configured to engage a base that forms a plurality of recesses, the base and the pedestal being rotatable with respect to one another when the piston is in the retracted configuration, wherein each recess of the plurality of recesses corresponds to a different rotational position of the pedestal with respect to the base, the piston being moveable from the retracted configuration to the unretracted configuration to engage a corresponding one of the plurality of recesses and thereby prevent the base and the pedestal from being rotatable with respect to one another.
2. The failsafe piston retention assembly of claim 1, further comprising a head extension member fixed with respect to the head body and extending substantially perpendicularly with respect to the first surface, wherein the piston is slidably coupled with respect to the head extension member.
3. The failsafe piston retention assembly of claim 2, further comprising a head flange connected to the head extension member at a distal end of the head, wherein a first end of the piston contacts and is restrained by the head flange when the piston is in the retracted configuration.
4. The failsafe piston retention assembly of claim 3, further comprising a piston flange at the first end of the piston, wherein the piston flange contacts and is restrained by the head flange when the piston is in the unretracted configuration.
5. The failsafe piston retention assembly of claim 4, wherein: the head extension member is substantially cylindrical and has a first diameter; and a portion of the piston is substantially annular and has a second external diameter larger than the first diameter, and a third internal diameter larger than the first diameter.
6. The failsafe piston retention assembly of claim 5, wherein: the piston flange extends radially inwardly from the piston and has a fourth internal diameter substantially equal to the first diameter of the head extension member.
7. The failsafe piston retention assembly of claim 6, wherein: the head flange extends radially outwardly from the head extension member and has a fifth diameter substantially equal to the third internal diameter of the piston.
8. The failsafe piston retention assembly of claim 1, wherein the piston is movable from the retracted configuration to the unretracted configuration by a first hydraulic force greater than the magnetic force.
9. The failsafe piston retention assembly of claim 8, wherein the piston is movable from the unretracted configuration to the retracted configuration by a second hydraulic force.
10. The failsafe piston retention assembly of claim 1, wherein the magnetic force is greater than a gravitational force exerted on the piston when the head is oriented above the piston, such that the magnetic force inhibits the piston from moving into the unretracted configuration when the piston is in the retracted configuration.
11. The failsafe piston retention assembly of claim 1, wherein the head body comprises at least one magnetic element configured to provide the magnetic force to fix the second surface of the piston with respect to the first surface of the head body when the piston is in the retracted configuration.
12. The failsafe piston retention assembly of claim 11, wherein the at least one magnetic element comprises an array of a plurality of magnetic elements.
13. The failsafe piston retention assembly of claim 11, wherein the head body forms at least one counterbore configured to receive the at least one magnetic element such that each magnetic element is substantially flush with the first surface of the head body.
14. The failsafe piston retention assembly of claim 13, wherein each magnetic element has at least one threaded fastener extending therethrough to secure each magnetic element to the head body.
15. The failsafe piston retention assembly of claim 14, wherein the magnetic element is a neodymium alloy.
16. The failsafe piston retention assembly of claim 11, wherein the piston comprises a ferrous material proximate to the second surface of the piston, such that the ferrous material is configured to be attracted to the magnetic force provided by the at least one magnetic element to fix the second surface of the piston to the first surface of the head body when the piston is in the retracted configuration.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawing figures incorporated in and forming a part of this specification illustrate several aspects of the disclosure, and together with the description serve to explain the principles of the disclosure.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) The embodiments set forth below represent the information to enable those skilled in the art to practice the embodiments and illustrate the best mode of practicing the embodiments. Upon reading the following description in light of the accompanying drawing figures, those skilled in the art will understand the concepts of the disclosure and will recognize applications of these concepts not particularly addressed herein. It should be understood that these concepts and applications fall within the scope of the disclosure and the accompanying claims.
(7) Any flowcharts discussed herein are necessarily discussed in some sequence for purposes of illustration, but unless otherwise explicitly indicated, the embodiments are not limited to any particular sequence of steps. The use herein of ordinals in conjunction with an element is solely for distinguishing what might otherwise be similar or identical labels, such as first surface and second surfaces, and does not imply a priority, a type, an importance, or other attribute, unless otherwise stated herein. The term substantially used herein in conjunction with a numeric value means any value that is within a range of five percent greater than or ten percent less than the numeric value.
(8) Embodiments include a failsafe piston retention assembly, and related components, systems, and methods. In one embodiment, a failsafe piston retention assembly comprises a head comprising a head body having a first surface. The assembly also includes a piston having second surface, the piston slidably coupled with respect to the head. The piston has a retracted configuration and an unretracted configuration. In the retracted configuration, the second surface is fixed with respect to the first surface by a magnetic force. One advantage of this arrangement is that the piston is retained in its retracted configuration in the event of an operational failure of the piston mechanism. For example, for a hydraulically controlled piston, the magnetic force retains the piston in a retracted configuration even in the event of a loss of the hydraulic pressure.
(9) In this regard,
(10) The piston 18 has a retracted configuration and an unretracted configuration. In the retracted configuration, the engagement surface 24 of the piston 18 is fixed with respect to the engagement surface 16 of the head body 14 by a magnetic force. In this embodiment, the magnetic force is provided by a plurality of magnets 28 arranged in an array in the head body 14.
(11) Referring now to
(12) Referring now to
(13) In this embodiment, the head extension member 26 is substantially cylindrical and has an external diameter D.sub.1, and a portion of the piston 18 at the first end 20 of the piston 18 is substantially annular and has an external diameter D.sub.2 larger than the first diameter D.sub.1, and an internal diameter D.sub.3 larger than the external diameter D.sub.1 of the head extension member 26, such that the head extension member 26 can be received therein. In this embodiment, the piston flange 32 extends radially inwardly and has an internal diameter D.sub.4 substantially equal to the external diameter D.sub.1 of the head extension member 26, such that the first space 34 in the piston 18 is hydraulically isolated from an exterior of the piston 18. Likewise, the head flange 30 extends radially outwardly from the head extension member 26 and has an external diameter D.sub.5 substantially equal to the internal diameter D.sub.4 of the piston 18, such that the second space 36 in the piston 18 is hydraulically isolated from the first space 34 of the piston 18, as well as from the exterior of the piston 18. In this manner, by applying the hydraulic pressure to one of the first and second spaces 34, 36, the piston 18 can be hydraulically moved between the respective unretracted and retracted configurations. In this embodiment, the hydraulic force applied to move the piston 18 into an unretracted configuration may be significantly larger than the passive magnetic force exerted by the magnets 28 on the piston 18. In this manner, the magnetic force of the magnets 28 is greater than a gravitational force exerted on the piston 18 when the head 12 is oriented above the piston 18, such that the magnetic force is greater than the gravitational force, thereby inhibiting the piston 18 from moving into the unretracted configuration when the piston 18 is in the retracted configuration in the event of a hydraulic failure. However, the magnets 28 in this embodiment are not so powerful that they would otherwise interfere with the operation of the hydraulic functions of the piston 18 and the head 12.
(14) As shown by
(15) Referring now to
(16) In this embodiment, the magnetic material 49 is formed from a nickel-plated neodymium alloy, but it should be understood that other types of magnetic material may be used. In this embodiment, the head body 14 comprises a rotor lock plate in which the counterbore 54 is formed. Each screw 52 is secured through the magnetic element 48 into the head body 14, thereby securing the magnet 28 within the head body 14 such that a magnetic field exists at the engagement surface 16 of the head body 14. In some embodiments, it may also be desirable to include additional components to prevent damage to the magnetic elements 48 during assembly. For example, neodymium is a relatively brittle material that may be damaged by overtorquing of a screw or other threaded fastener. In this regard,
(17) The failsafe piston retention assembly 10 of
(18)
(19) Those skilled in the art will recognize improvements and modifications to the preferred embodiments of the disclosure. All such improvements and modifications are considered within the scope of the concepts disclosed herein and the claims that follow.