Deployable truss with orthogonally-hinged primary chords
09650781 ยท 2017-05-16
Inventors
Cpc classification
E01D15/124
FIXED CONSTRUCTIONS
E04C3/005
FIXED CONSTRUCTIONS
B64G1/2229
PERFORMING OPERATIONS; TRANSPORTING
B64G1/22
PERFORMING OPERATIONS; TRANSPORTING
E04C3/08
FIXED CONSTRUCTIONS
E04C3/02
FIXED CONSTRUCTIONS
E04B2001/1957
FIXED CONSTRUCTIONS
E04B5/02
FIXED CONSTRUCTIONS
E04B1/35
FIXED CONSTRUCTIONS
E04C2003/0491
FIXED CONSTRUCTIONS
E04B1/343
FIXED CONSTRUCTIONS
International classification
E04C3/00
FIXED CONSTRUCTIONS
E04B1/35
FIXED CONSTRUCTIONS
E04C3/02
FIXED CONSTRUCTIONS
B64G1/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A deployable truss with modified primary orthogonal joints. The construction of these joints causes the center-hinged primary chords on opposite sides of a truss bay to fold inward in a plane orthogonal to the folding planes of the side diagonals while the two secondary chords fold in planes orthogonal to the plane of the in-folding primary chords. This provides for stiffness and stability during deploy and retract. The unique joint configuration permits the truss to deploy one bay at a time in a stable manner while having lateral bending stiffness, and the truss thus can extend and retract in a sequential manner. It can deploy integral flat panels nested between the secondary folding chords, or use cross bracing in lieu of panels. The truss can be triangular, square or rectangular in cross-section. A powered support frame may be used in conjunction with the truss.
Claims
1. A deployable truss, comprising: at least two adjacent primary chords, said primary chords comprising a plurality of primary chordal members connected end-to-end by alternating primary orthogonal joints and primary chord center-hinge joints; at least one secondary chord, said secondary chord comprising a plurality of secondary chordal members connected end-to-end by alternating secondary orthogonal joints and secondary chord center hinge-joints; a plurality of fixed-length diagonal members, each with a first end and a second end, the first end jointedly connected to an primary orthogonal joint, and the second end jointedly connected to a secondary orthogonal joint; and a support frame with two parallel side rails, wherein said primary orthogonal joints are supported within said side rails; wherein the primary chordal members fold inward in the plane defined by the two side rails when the truss is retracted.
2. The truss of claim 1, wherein the diagonals are connected to the primary orthogonal joints and secondary orthogonal joints with end fittings having offset hinge axes allowing the diagonals to nest parallel to each other when folded.
3. The truss of claim 1, comprising two secondary chords, so that the truss has a rectangular or square cross-section when the truss is fully expanded.
4. The truss of claim 3, further comprising a plurality of panels extending between the secondary chords.
5. The truss of claim 4, wherein the panels are solar panels, heat radiation panels, floor panels, wall panels, LCD panels, display panels, or radar panels, or combinations thereof.
6. The truss of claim 1, wherein each primary orthogonal joint comprises a single two- or three-axis fitting connected to the first end of a diagonal member.
7. The truss of claim 6, wherein the fitting comprises a clevis fitting.
8. The truss of claim 1, comprising one secondary chord, so that the truss has a triangular cross-section when the truss is fully expanded.
9. The truss of claim 1, wherein each primary orthogonal joint comprises a 3-axis fitting whereby adjacent primary chordal members are connected directly to the primary orthogonal joint.
10. The truss of claim 1, further comprising a plurality of support struts extending between the primary orthogonal joints and the secondary chord center hinge-joints.
11. The truss of claim 10, further comprising power actuators connected to one or more of said support struts.
12. The truss of claim 10, wherein one or more of said support struts latch to the secondary chord center hinge joints when the truss is fully expanded.
13. The truss of claim 1, further comprising a plurality of support struts extending between the primary orthogonal joints and the secondary chord center hinge-joints.
14. The truss of claim 13, further comprising power actuators connected to one or more of said support struts.
15. A deployable truss, comprising: at least two primary chords, said primary chords comprising a plurality of primary chordal members connected end-to-end by alternating primary orthogonal joints and primary chord center-hinge joints; a secondary chord, said secondary chord comprising a plurality of secondary chordal members connected end-to-end by alternating secondary orthogonal joints and secondary chord center hinge-joints, wherein the truss has a triangular cross-section when the truss is fully expanded; a plurality of fixed-length diagonal members, each with a first end and a second end, the first end jointedly connected to an primary orthogonal joint, and the second end jointedly connected to a secondary orthogonal joint; and a support frame with two parallel side rails, wherein said primary orthogonal joints are supported within said side rails; wherein the diagonals are connected to the respective primary orthogonal joints and secondary orthogonal joints with angled end fittings that permit the diagonals to fold at a selected angle.
16. The truss of claim 15, wherein the angled end fittings comprise offset hinge axes that permit the diagonals to nest parallel to each other when the truss is retracted.
17. The truss of claim 15, wherein each primary orthogonal joint comprises a single two- or three-axis fitting connected to the first end of a diagonal member.
18. The truss of claim 15, further comprising a plurality of panels extending between the secondary chords.
19. The truss of claim 18, wherein the panels are solar panels, heat radiation panels, floor panels, wall panels, LCD panels, display panels, or radar panels, or combinations thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
(14) In one exemplary embodiment, as shown in
(15) As seen in
(16) The primary orthogonal joints of the prior art comprised two angled fittings to which the truss diagonals and folding chords were attached. The new joint disclosed herein, as shown in
(17) The joints connecting the diagonals at their respective ends in a z-fold manner, have an offset hinge pin to allow the diagonal members to fold parallel to each other as the truss retracts. The primary chords (and the secondary chords) have the same hinging, but the primary chords connect to the diagonals with the fitting 7, 7a, or 8 as described above, while the secondary chords connect with a single axis hinge pin 10 in the secondary orthogonal joint 30. This allows the secondary chords to fold orthogonally to the primary chords creating the stability and stiffness of the extending or retracting truss. The primary chords, which are center-hinged in the preferred embodiment, can optionally be replaced by flexible tension members.
(18) Referring to
(19) Although the truss can be readily deployed on a flat surface or in low gravity, in one exemplary embodiment an important method for powered truss deployment and retraction is the use of a support frame 16 with side rails into which rollers 18 fit to support and guide the deployment motion, as seen in
(20) In one embodiment of the rail-supported powered truss, a transverse bar 17 moves longitudinally up and down the rail structures, and can grasp or engage each of the primary orthogonal joints. The bar successively engages the joints and moves them until truss chords lock (or, conversely, unlock), thus forming or collapsing each truss bay in succession. The transverse bar and truss structure may be powered by a motor or other suitable means known in the art.
(21) With or without integral panels, the folded members and joints can form a rectangular or a square truss beam. With an alternate embodiment of the truss diagonals, it can be configured as a triangular beam using the same in-folding center-hinged chords and joints, but with a single chord of center-hinged secondary chordal members 4 at the apex of the resulting hinged triangular frames. In this triangular configuration pairs of opposite truss diagonals 14 are connected to the secondary (apex) chordal members 4, as seen in
(22) As shown in
(23) In all cases the trusses have at least one-axis symmetry. They can be retracted as shown in
(24) The primary and secondary truss joints, as well as the chordal center hinges can also be adapted to use flexible material hinges replacing certain or all of the pin/hole revolute joint hinges, with potential for spring-powered deployment using energy stored in the hinge material. The flexible material may comprise shape-memory alloy (SMA) or spring material.
(25) With further reference to
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(27) The basic truss of the present invention can also be configured in a system as a plurality of truss bays merged laterally.
(28) Thus, it should be understood that the embodiments and examples described herein have been chosen and described in order to best illustrate the principles of the invention and its practical applications to thereby enable one of ordinary skill in the art to best utilize the invention in various embodiments and with various modifications as are suited for particular uses contemplated. Even though specific embodiments of this invention have been described, they are not to be taken as exhaustive. There are several variations that will be apparent to those skilled in the art.