Assembly for aiming an instrument
09676502 · 2017-06-13
Assignee
Inventors
- Yannick Baudassé (Cannes la Bocca, FR)
- Stéphane VÉZAIN (MANDELIEU, FR)
- Paul Mouille (Cannes la Bocca, FR)
- Didier Stanek (Cannes la Bocca, FR)
Cpc classification
B64G1/40
PERFORMING OPERATIONS; TRANSPORTING
F16M11/2014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B27/644
PHYSICS
F02K9/805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K9/84
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B64G1/40
PERFORMING OPERATIONS; TRANSPORTING
F02K9/84
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64G1/66
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An aiming assembly comprising an instrument and aiming device, the aiming device comprises: a frame, a mobile part comprising a plate, the instrument being fixed onto the plate, the mobile part and the instrument having a centre of gravity, the mobile part being rotationally mobile relative to the frame on a first axis of rotation, and comprising a support configured to cooperate with the plate to allow the plate to be rotationally mobile relative to the frame about a second axis of rotation at right angles to the first axis of rotation, and rotationally mobile relative to the frame on the first axis, the first and second axes of rotation intersecting at a point of intersection. The point of intersection coincides with the centre of gravity of the mobile part and of the instrument, and the support comprises a flexible part configured to compensate for the differential expansions on the second axis of rotation between the frame and the plate.
Claims
1. An aiming assembly comprising an instrument and an aiming device, the aiming device comprising: a frame, a mobile part comprising a plate, the instrument being fixed onto the plate, the mobile part and the instrument having a centre of gravity, the mobile part being rotationally mobile relative to the frame on a first axis of rotation and comprising a support configured to cooperate with the plate so as to allow the plate to be rotationally mobile relative to the frame about a second axis of rotation at right angles to the first axis of rotation, and rotationally mobile relative to the frame on the first axis, the first and second axes of rotation intersecting at a point of intersection, wherein the point of intersection coincides with the centre of gravity of the mobile part and of the instrument, and wherein the support comprises a flexible part configured to compensate for the differential expansions on the second axis of rotation between the frame and the plate.
2. The aiming assembly according to claim 1, wherein the plate is rotationally mobile relative to the frame about a third axis of rotation at right angles to the first and second axes of rotation, the third axis of rotation intersecting with the first and second axes of rotation at the point of intersection.
3. The aiming assembly according to claim 2, wherein the support is configured to cooperate with the plate so as to allow the plate to be rotationally mobile relative to the frame about the third axis of rotation.
4. The aiming assembly according to claim 2, wherein the plate is rotationally mobile relative to the frame about the third axis of rotation with an amplitude of 360.
5. The aiming assembly according to claim 1, wherein the support comprises a U-shaped arm, the arm having two ends and a central part, a first of the two ends being linked to the central part by a first branch and a second of the two ends being linked to the central part by a second branch, the central part being rotationally mobile relative to the frame on the first axis of rotation, wherein the plate is positioned between the two ends of the arm, wherein the two ends are configured to allow the rotation of the plate relative to the frame about the second axis of rotation, and wherein the second branch forms the flexible part of the support.
6. The aiming assembly according to claim 1, wherein the aiming device comprises a first actuator associated with the first axis of rotation and allowing the rotation of the mobile part relative to the frame.
7. The aiming assembly according to claim 1, wherein the aiming device comprises a second actuator associated with the second axis of rotation and allowing the rotation of the plate relative to the frame.
8. The aiming assembly according to claim 1, wherein the instrument is a jet.
9. The aiming assembly according to claim 8, wherein the aiming device comprises a conductor to supply the jet, the conductor linking the mobile part to the frame, wherein the conductor comprises a first part wound about the first axis of rotation between the frame and the mobile part.
10. The aiming assembly according to claim 8, wherein the aiming device comprises a conductor to supply the jet, the conductor linking the mobile part to the frame, wherein the conductor comprises a second part wound about the second axis of rotation at the level of the support.
11. A spacecraft comprising an aiming assembly according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood and other advantages will become apparent on reading the detailed description of an embodiment given by way of example, the description being illustrated by the attached drawing in which:
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DETAILED DESCRIPTION
(11) In the interests of clarity, the same elements will bear the same references in the different figures.
(12) In the description of the present application, the invention is described in the context of a space application. As cited previously, the invention can be applied to any other technical field requiring the implementation of a device for aiming any instrument.
(13)
(14) The aiming device 10 comprises a frame 12. The frame 12, in this satellite example, is fixed onto the satellite. The aiming device 10 comprises a mobile part 13 comprising a plate 14, the instrument 11 being fixed onto the plate 14. The mobile part 13 and the instrument have a centre of gravity G. The mobile part 13 is rotationally mobile relative to the frame 12 on a first axis of rotation Z. The plate 14, for its part, is rotationally mobile relative to the frame 12 about a second axis of rotation Y at right angles to the first axis of rotation Z. In other words, the mobile part 13 comprises two pivot links, a first pivot link being about the axis Z and a second pivot link being about the axis Y. The first and second axes of rotation Z, Y intersect at a point of intersection O. According to the invention, the point of intersection O of the axes of rotation Y, Z coincides with the centre of gravity G of the mobile part 13 and of the instrument. In other words, the mobile part 13 and the instrument 11 form an assembly whose centre of gravity G coincides with the point of intersection O of the two axes of rotation Y, Z.
(15) The mobile part 13 comprises a support 20. The support 20 is configured to cooperate with the plate 14 so as to allow the plate 14 to be rotationally mobile relative to the frame 12 on the first axis of rotation Z and to be rotationally mobile relative to the frame 12 about the second axis of rotation Y.
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(17) According to an advantageous embodiment, the support 20 can comprise a rigid part and a flexible part, the flexible part being configured to compensate for the differential expansions on the second axis of rotation Y between the frame 12 and the plate 14. As explained previously and as can be seen in
(18) The flexible part is generally obtained by a flexible blade 52, composed of a rigid base screwed onto a rigid support (the central part 29 of the arm 26 in
(19) It is also possible, when bulk permits, to produce a membrane composed of two rigid crown rings linked together by a thin disk that can be deformed on the axis of the crown rings. The materials used are usually stainless steel, copper alloys or titanium.
(20) The flexural capacity of the flexible blade is generally of the order of a few tenths of millimetres at the head of the blade at the level of the rolling bearings 16, 17. This flexural capacity can change to a millimetre in the case of parts used that are very long. For example, for a temperature differential of 50 to 70 C. and a distance between the rolling bearings of 200 to 300 mm, the flexible blade has a flexural capacity of approximately 0.3 mm.
(21) The support 20 comprises a U-shaped arm 26, the arm 26 having two ends 27, 28 and a central part 29, the central part 29 being rotationally mobile relative to the frame 12 on the first axis of rotation Z. The plate 14 is positioned between the two ends 27, 28 of the arm 26, and the two ends 27, 28 are configured to allow the rotation of the plate 14 relative to the frame 12 about the second axis of rotation Y. By virtue of its U shape, the arm 26 allows the instrument 11 to aim freely in the desired direction, with no obstacle in its aiming direction, independently of the rotations about the axes Y and Z of the plate 14. The arm 26 has a U shape. U shape should be understood to mean any shape similar to a U, that is to say any shape having a central part 29 extending in one direction and ending with two ends extending in another direction substantially at right angles to the direction of the central part 29. In the extreme case, the arm 26 can also be substantially semi-circular. The arm 26 is configured to allow the rotation of the plate 14 positioned between its two ends 27, 28.
(22) The support 20 adds extra rigidity to the aiming device 10. It also constitutes a support for the pivot links.
(23) The flexible part constitutes a flexibility which can be situated at various points on the stiffness path. The aim of this flexibility is to protect the rolling bearings which are brittle elements in the face of the thrusts caused by the expansion of the different guided elements. Thus, the central part 29 and the first branch can form the rigid part of the support 20 and the second branch can form the flexible part of the support 20.
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(26) In the embodiment of
(27) The plate 14 can be rotationally mobile relative to the frame 12 about the third axis of rotation X with an amplitude of 360. This is because the support 20 is configured to cooperate with the plate 14 so as to allow the plate 14 to be rotationally mobile relative to the frame 12 about the second axis of rotation Y and the third axis of rotation X and rotationally mobile relative to the frame 12 on the first axis of rotation Z. Also, the instrument 11 is configured to allow the rotation of the plate 14 and of the instrument 11 about the third axis of rotation X. This rotation can be complete but it can also be 90 or 120 depending on the desired aiming. As represented in
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(30) The actuators 18, 19 can comprise a gear motor with gear pairs (such as a planetary gear), called first reducing gear and a blade reducing gear, called second reducing gear or secondary reducing gear. The blade reducing gear offers the advantage of an offsetting of the gear motor relative to the heat source induced by the jet. It also offers the advantage of being able to reduce the angular plays of the first reducing gear thus ensuring a better accuracy. Finally, the secondary blade reducing gear can increase the motor drive torque and the irreversibility under load.
(31) The aiming device 10 also comprises mechanical abutments 30 making it possible to limit the rotations, respectively on the axes Y and Z.
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(33) The conductor 21 comprises a second part wound 23 around the second axis of rotation Y at the level of the support 20. The part of the conductor 21 situated between the first wound part 22 and the second wound part 23 of the conductor 21 is fixed to the support 20.
(34) It is also possible to provide other configurations for the positioning of the conductor 21 between the frame 12 and the jet. Nevertheless, the configuration described makes it possible to have a conductor in a very reduced volume and without affecting the rotational mobilities of the aiming device 10 of the jet.
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(36) Since the aiming device 10 is a compact device that can comprise a jet generating radiative and conductive thermal fluxes, the components of the aiming device 10 are exposed to these fluxes. To improve the life of these components, it is possible to protect them thermally by covering them with a thermal insulation layer.
(37) The invention relates also to any space equipment item comprising an aiming device 10 as described previously.