A clevis for use in a toggle mechanism of a ram air turbine actuator is provided comprising a first side; a second side parallel to the first side; a first set of parallel pivot holes; second set of parallel pivot holes; a set of parallel through holes; and a helicoil blind hole. The second side rigidly connected to the first side via at least one brace perpendicular to the first side and the second side. The helicoil blind hole being located in the first side and extending into the at least one brace. The first side having a first hole of the first set of parallel pivot holes, a first hole of the second set of parallel pivot holes, and a first hole of the set of parallel through holes. The second side having the hole pattern reflective of the first side, composed of second holes.
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1. A clevis for use in a toggle mechanism of a ram air turbine actuator comprising:
a first side;
a second side parallel to the first side, the second side rigidly connected to the first side via at least one brace perpendicular to the first side and the second side;
a first set of parallel pivot holes, a first hole of the first set of parallel pivot holes being located in the first side and a second hole of the first set of parallel pivot holes being located in the second side;
a second set of parallel pivot holes, a first hole of the second set of parallel pivot holes being located in the first side and a second hole of the second set of parallel pivot holes being located in the second side;
a set of parallel through holes, a first hole of the set of parallel through holes being located in the first side and a second hole of the set of parallel through holes being located in the second side; and
a helicoil blind hole, the helicoil blind hole being located in the first side and extending into the at least one brace.
3. A toggle mechanism of a ram air turbine actuator comprising:
a clevis including:
a first side;
a second side parallel to the first side, the second side rigidly connected to the first side via at least one brace perpendicular to the first side and the second side;
a first set of parallel pivot holes, a first hole of the first set of parallel pivot holes being located in the first side and a second hole of the first set of parallel pivot holes being located in the second side;
a second set of parallel pivot holes, a first hole of the second set of parallel pivot holes being located in the first side and a second hole of the second set of parallel pivot holes being located in the second side;
a set of parallel through holes, a first hole of the set of parallel through holes being located in the first side and a second hole of the set of parallel through holes being located in the second side;
a helicoil blind hole, the helicoil blind hole being located in the first side and extending into the at least one brace;
a cross rod operably connected to the clevis and located in the set of parallel through holes; and
a cap screw located in the helicoil blind hole, the cap screw securing the cross rod to the clevis.
11. A method of manufacturing a toggle mechanism of a ram air turbine actuator comprising:
forming a first side of a clevis;
forming a second side of a clevis;
rigidly connecting the second side to the first side via at least one brace perpendicular to the first side and the second side, the first side being parallel to the second side;
forming a first set of parallel pivot holes, a first hole of the first set of parallel pivot holes being located in the first side and a second hole of the first set of parallel pivot holes being located in the second side;
forming a second set of parallel pivot holes, a first hole of the second set of parallel pivot holes being located in the first side and a second hole of the second set of parallel pivot holes being located in the second side;
forming a set of parallel through holes, a first hole of the set of parallel through holes being located in the first side and a second hole of the set of parallel through holes being located in the second side;
drilling a helicoil blind hole, the helicoil blind hole being located in the first side and extending into the at least one brace;
inserting a cross rod into the set of parallel through holes within the clevis; and
installing a cap screw in the helicoil blind hole, the cap screw securing the cross rod to the clevis.
2. The clevis of
the second hole of the first set of parallel pivot holes is a blind hole, wherein the blind hole opens towards the first side.
4. The toggle mechanism of
the second hole of the first set of parallel pivot holes is a blind hole, wherein the blind hole opens towards the first side.
5. The toggle mechanism of
the cross rod has a first section, a second section, and a midsection between the first section and the second section, the midsection includes a flange having a through hole.
6. The toggle mechanism of
the first section has a first diameter, the second section has a second diameter, and the midsection has a third diameter, the third diameter being larger than at least one of the first diameter and the second diameter.
8. The toggle mechanism of
a lock piston operably connected to the clevis through a link, the link being operably connected to the first set of parallel pivot holes via a pivot pin, wherein the pivot pin is secured in the first set of parallel pivot holes by the flange.
9. The toggle mechanism of
a bracket operably connected to the clevis at the second set of parallel pivot holes via a biasing mechanism.
10. The toggle mechanism of
the cap screw secures the cross rod to the clevis via the through hole.
12. The method of
the second hole of the first set of parallel pivot holes is a blind hole, wherein the blind hole opens towards the first side.
13. The method of
the cross rod has a first section, a second section, and a midsection between the first section and the second section, the midsection includes a flange having a through hole.
14. The method of
the first section has a first diameter, the second section has a second diameter, and the midsection has a third diameter, the third diameter being larger than at least one of the first diameter and the second diameter.
16. The method of
operably connecting a lock piston to the clevis through a link, the link being operably connected to the first set of parallel pivot holes via a pivot pin, wherein the pivot pin is secured in the first set of parallel pivot holes by the flange.
17. The method of
operably connecting a bracket to the clevis at the second set of parallel pivot holes via a biasing mechanism.
18. The method of
the cap screw secures the cross rod to the clevis via the through hole.
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The subject matter disclosed herein generally relates to ram air turbine actuators, and more specifically to devises for use in a toggle mechanism of a ram air turbine (RAT) actuator.
RATs are commonly used on modern aircraft to provide a secondary and/or emergency power source in the event the primary power source is insufficient or fails. A typical RAT includes a turbine that remains internal to the aircraft until needed. When additional power is required, a door in the aircraft's fuselage will open and the actuator will deploy the RAT's turbine into the freestream air. The turbine is rotated by the freestream air and the rotational torque from the turbine is transferred through a drivetrain to be converted into electrical power by a generator. A RAT may also be used to drive a hydraulic pump.
A toggle mechanism internal to a RAT actuator may act as an over center mechanism to initiate the actuation process. After receiving an electrical command, solenoids pull on a cross rod, which turns over a clevis to move the toggle mechanism past its over center position. This motion then allows the actuator to actuate and deploy the RAT. The cross rod and clevis experience loading from the solenoids and also back loading from internal components of the actuator. Accordingly, clevis and cross rod capable of withstanding the loading, while being easy to install and maintain would provide both cost and reliability benefits.
According to one embodiment, a clevis for use in a toggle mechanism of a ram air turbine actuator is provided. The clevis comprises a first side and a second side parallel to the first side. The second side rigidly connected to the first side via at least one brace perpendicular to the first side and the second side. The clevis also comprises a first set of parallel pivot holes. A first hole of the first set of parallel pivot holes being located in the first side and a second hole of the first set of parallel pivot holes being located in the second side. The clevis further comprises a second set of parallel pivot holes. A first hole of the second set of parallel pivot holes being located in the first side and a second hole of the second set of parallel pivot holes being located in the second side. The clevis yet further comprises a set of parallel through holes. A first hole of the set of parallel through holes being located in the first side and a second hole of the set of parallel through holes being located in the second side. The clevis also further comprises a helicoil blind hole. The helicoil blind hole being located in the first side and extending into the at least one brace.
In addition to one or more of the features described above, or as an alternative, further embodiments of the clevis may include that the second hole of the first set of parallel pivot holes is a blind hole, wherein the blind hole opens towards the first side.
According to another embodiment, a toggle mechanism of a ram air turbine actuator is presented. The toggle mechanism comprising a clevis. The clevis includes a first side and a second side parallel to the first side. The second side rigidly connected to the first side via at least one brace perpendicular to the first side and the second side. The clevis also includes a first set of parallel pivot holes. A first hole of the first set of parallel pivot holes being located in the first side and a second hole of the first set of parallel pivot holes being located in the second side. The clevis further includes a second set of parallel pivot holes. A first hole of the second set of parallel pivot holes being located in the first side and a second hole of the second set of parallel pivot holes being located in the second side. The clevis yet further includes a set of parallel through holes. A first hole of the set of parallel through holes being located in the first side and a second hole of the set of parallel through holes being located in the second side. The clevis also further includes a helicoil blind hole. The helicoil blind hole being located in the first side and extending into the at least one brace. The toggle mechanism also comprises a cross rod operably connected to the clevis and located in the set of parallel through holes. The toggle mechanism further comprises a cap screw located in the helicoil blind hole. The cap screw securing the cross rod to the clevis.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include that the second hole of the first set of parallel pivot holes is a blind hole, wherein the blind hole opens towards the first side.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include that the cross rod has a first section, a second section, and a midsection between the first section and the second section, the midsection includes a flange having a through hole.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include that the first section has a first diameter, the second section has a second diameter, and the midsection has a third diameter, the third diameter being larger than at least one of the first diameter and the second diameter.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include that the midsection includes a clearance notch.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include a lock piston operably connected to the clevis through a link, the link being operably connected to the first set of parallel pivot holes via a pivot pin, wherein the pivot pin is secured in the first set of parallel pivot holes by the flange.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include a bracket operably connected to the clevis at the second set of parallel pivot holes via a biasing mechanism.
In addition to one or more of the features described above, or as an alternative, further embodiments of the toggle mechanism may include that the cap screw secures the cross rod to the clevis via the through hole.
In another embodiment a method of manufacturing a toggle mechanism of a ram air turbine actuator is presented. The method comprises forming a first side of a clevis; forming a second side of a clevis; and rigidly connecting the second side to the first side via at least one brace perpendicular to the first side and the second side. The first side being parallel to the second side. The method also comprises forming a first set of parallel pivot holes. A first hole of the first set of parallel pivot holes being located in the first side and a second hole of the first set of parallel pivot holes being located in the second side. The method further comprises forming a second set of parallel pivot holes. A first hole of the second set of parallel pivot holes being located in the first side and a second hole of the second set of parallel pivot holes being located in the second side. The method yet further comprises forming a set of parallel through holes. The first hole of the set of parallel through holes being located in the first side and a second hole of the set of parallel through holes being located in the second side. The method also comprises drilling a helicoil blind hole. The helicoil blind hole being located in the first side and extending into the at least one brace. The method further comprises inserting a cross rod into the set of parallel through holes within the clevis and installing a cap screw in the helicoil blind hole. The cap screw securing the cross rod to the clevis.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include that the second hole of the first set of parallel pivot holes is a blind hole, wherein the blind hole opens towards the first side.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include that the cross rod has a first section, a second section, and a midsection between the first section and the second section, the midsection includes a flange having a through hole.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include that the first section has a first diameter, the second section has a second diameter, and the midsection has a third diameter, the third diameter being larger than at least one of the first diameter and the second diameter.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include that the midsection includes a clearance notch.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include operably connecting a lock piston to the clevis through a link, the link being operably connected to the first set of parallel pivot holes via a pivot pin, wherein the pivot pin is secured in the first set of parallel pivot holes by the flange.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include operably connecting a bracket to the clevis at the second set of parallel pivot holes via a biasing mechanism.
In addition to one or more of the features described above, or as an alternative, further embodiments of the method may include that the cap screw secures the cross rod to the clevis via the through hole.
The subject matter is particularly pointed out and distinctly claimed at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
The detailed description explains embodiments of the present disclosure, together with advantages and features, by way of example with reference to the drawings.
Referring now to
Aircraft 2 includes a ram air turbine (RAT) assembly 40 mounted within fuselage 4 or nose portion 6. When additional electrical and/or hydraulic power is required, a compartment door 54 in the fuselage 4 will open and an actuator 50 will actuate to deploy the RAT assembly 40 into the freestream air. As shown in
Referring now to
Referring now to
The clevis 200 includes a first side 200a, a second side 200b parallel to the first side 200a, the second side 200b rigidly connected to the first side 200a via at least one brace (e.g. 200c & 200d of
The toggle mechanism 100 may also include a bracket 140 operably connected to the clevis 200 at the second set of parallel pivot holes 220 via a biasing mechanism 130. The biasing mechanism 130 may include a pin 186. In an embodiment, the biasing mechanism 130 may be a spring.
In the illustrated embodiment, the toggle mechanism 100 also includes a cap screw 160 located in the through hole 350. The cap screw 160 secures the cross rod 300 to the set of parallel through holes 230 of the clevis 200. The cap screw 160 secures the cross rod 300 to the clevis 200 via the helicoil blind hole 240. The cap screw 160 prevents the cross rod 300 from rotating in the clevis 200. If the cross rod 300 had bent due to heavy loads, and then rotated in the clevis 200, the over center position may change for various cross rod 300 rotational positions. In order to prevent the cross rod from bending, various changes were incorporated into the cross rod 300 in
Referring now to also
Further difference in the cross rod 300 over the alternate cross rod 302 could be seen with the addition of the flange 340 on the cross rod 300. The flange 340 allows the pivot pin 184 connecting the link 120 to the clevis 200 to remain in the first set of parallel pivot holes 210 of the clevis 200. As mentioned above, the second hole 210b may be a blind hole and the blind hole opens towards the first side 200a. The pivot pin 184 may be pressed into the blind second hole 210b of the first set of parallel pivot holes 210 and then the flange 340 will cover up the pivot pin 184 on the first hole 210a. As seen in
Referring now to
While the present disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the present disclosure is not limited to such disclosed embodiments. Rather, the present disclosure can be modified to incorporate any number of variations, alterations, substitutions, combinations, sub-combinations, or equivalent arrangements not heretofore described, but which are commensurate with the scope of the present disclosure. Additionally, while various embodiments of the present disclosure have been described, it is to be understood that aspects of the present disclosure may include only some of the described embodiments. Accordingly, the present disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
Bortoli, Stephen Michael, Verstrate, Paul Henry
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Mar 11 2016 | Hamilton Sundstrand Corporation | (assignment on the face of the patent) | / | |||
Mar 11 2016 | BORTOLI, STEPHEN MICHAEL | Hamilton Sundstrand Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 037959 | /0610 | |
Mar 11 2016 | VERSTRATE, PAUL HENRY | Hamilton Sundstrand Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 037959 | /0610 |
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