This application is based upon and claims the benefit of priority from Japanese patent application No. 2011-017529, filed on Jan. 31, 2011, the disclosure of which is incorporated herein in its entirety by reference.
1. Field of the Invention
This invention relates to a deployable antenna.
2. Description of the Related Art
The deployable antenna is transported in a folded state because of its limited stowage capacity during the transportation from ground to orbit. After transported to the orbit, the deployable antenna in the folded state is deployed as an antenna in the orbit.
The deployable antenna A0 is a large deployable antenna having an aperture diameter size exceeding 10 m. In the deployable antenna A0 illustrated in the figures, a plurality of deployable antenna modules A1 (
As described above, the module diameter size of each deployable antenna module A1 is smaller than the aperture diameter size of the deployable antenna A0. Therefore, in order to obtain the deployable antenna A0 having a large aperture diameter, a plurality of deployable antenna modules A1 need to be jointed to one another to increase the area of the antenna. However, in the method of jointing a plurality of deployable antenna modules A1 to one another to attain the deployable antenna A0, the number of the deployment driving mechanisms 30 to be used for the deployable antenna A0 increases, which leads to the disadvantage that the mass of the entire antenna increases.
Japanese Unexamined Patent Application Publication (JP-A) No. 2006-80577 discloses, in FIG. 3 and paragraphs [0024] and [0025], that each frame 2 is constructed of five planar links 3, and that the adjacent planar links 3 are jointed to each other in a mirror-image relationship.
Further, Japanese Unexamined Patent Application Publication (JP-A) No. 2006-80577 discloses, in FIG. 4 and paragraphs [0026], [0028] to [0031], and [0033], that the slide hinge 7 of each planar link 3 is moved by the wire driving device (extending means) 11 (corresponding to the deployment driving mechanism described above) to fold and unfold the frame 2.
However, as illustrated in FIG. 4 of Japanese Unexamined Patent Application Publication (JP-A) No. 2006-80577, the link member 4c of each planar link 3 is provided with the slide hinge 7, but the link member 4a opposed to the link member 4c is not provided with any slider for synchronized unfolding between the two adjacent planar links.
International Patent WO2005/027186A discloses, in FIG. 2 and lines 21 to 24 of page 7, that each frame 2 is constructed of five planar links 3, and that the adjacent planar links 3 are jointed to each other in a mirror-image relationship.
Further, International Patent WO2005/027186A discloses, in FIG. 3, lines 31 to 42 of page 7, and lines 48 to 50 of page 7, that the slide hinge 7 of each planar link 3 is moved by the wire driving device (extending means) 11 (corresponding to the deployment driving mechanism described above) to fold and unfold the frame 2.
However, as illustrated in FIG. 3 of International Patent WO2005/027186A, the link member 4c of each planar link 3 is provided with the slide hinge 7, but the link member 4a opposed to the link member 4c is not provided with any slider for synchronized unfolding between the two adjacent planar links.
Japanese Unexamined Patent Application Publication (JP-A) No. Hei 11-112228 discloses, in FIGS. 1 and 2 and paragraph [0025], the planar truss 1 in a state of being unfolded into a rectangular shape.
However, as illustrated in FIG. 2 of Japanese Unexamined Patent Application Publication (JP-A) No. Hei 11-112228, the central member 21 of the planar truss 1 is provided with the slider 27, but the peripheral member 22 opposed to the central member 21 is not provided with any slider similarly to Japanese Unexamined Patent Application Publication (JP-A) No. 2006-80577 and International Patent WO2005/027186A.
Japanese Unexamined Patent Application Publication (JP-A) No. 2003-95199 discloses, in FIGS. 1(a) and 1(b), FIG. 2, and paragraph [0019], the deployable antenna in which the bone members 14 each having two four-node links 12 and 13 continuously connected together are disposed around the central vertical beam member 11. As illustrated in FIG. 4 of Japanese Unexamined Patent Application Publication (JP-A) No. 2003-95199, in the disclosed deployable antenna, the synchronization mechanism 19 serving as unfolding synchronization means is provided to the central vertical beam member 11 so as to be movable in the axial direction thereof. One end of the synchronization cable 20 is fixed to the synchronization mechanism 19, and the other end of the synchronization cable 20 is fixed in the vicinity of the hinge of the inclined member 123 of the four-node link 12 of the bone member 14 under a state in which the synchronization cable 20 is looped around the guide pulley 201.
However, both the vertical beam member 122 opposed to the central vertical beam member 11 and the vertical beam member 132 opposed to the vertical beam member 122 are not provided with any slider similarly to Japanese Unexamined Patent Application Publication (JP-A) No. 2006-80577 and International Patent WO2005/027186A.
It is an object of this invention to provide a deployable antenna having a larger aperture diameter by four-side links provided in a plurality of stages.
According to this invention, it is possible to obtain a deployable antenna, including:
six deployment link mechanisms arranged radially from a central shaft of the deployable antenna so as to support an outer edge portion of a flexible reflector mirror surface of the deployable antenna; and
one deployment driving mechanism arranged at a lower portion of a center of arrangement of the six deployment link mechanisms, for unfolding the six deployment link mechanisms,
in which each of the six deployment link mechanisms includes a first four-side link, a second four-side link, and a third four-side link arranged in an order from a position of the central shaft, around which the six deployment link mechanisms are arranged, toward an outer side of the each of the six deployment link mechanisms so that the each of the six deployment link mechanisms is structured to be foldable in three stages,
in which a central vertical link member of the first four-side link, which serves as the central shaft, includes a first slider,
in which a common vertical link member between the first four-side link and the second four-side link includes a second slider,
in which another common vertical link member between the second four-side link and the third four-side link includes a third slider,
in which the one deployment driving mechanism causes the first slider to slide upwardly along the central vertical link member, to thereby unfold the first four-side link,
in which the unfolded first four-side link causes the second slider to slide upwardly along the common vertical link member, to thereby unfold the second four-side link, and
in which the unfolded second four-side link causes the third slider to slide upwardly along the another common vertical link member, to thereby unfold the third four-side link.
Further, according to this invention, it is possible to obtain a deployable antenna, including:
eight deployment link mechanisms arranged radially from a central shaft of the deployable antenna so as to support an outer edge portion of a flexible reflector mirror surface of the deployable antenna; and
one deployment driving mechanism arranged at a lower portion of a center of arrangement of the eight deployment link mechanisms, for unfolding the eight deployment link mechanisms,
in which each of the eight deployment link mechanisms includes a first four-side link, a second four-side link, and a third four-side link arranged in an order from a position of the central shaft, around which the eight deployment link mechanisms are arranged, toward an outer side of the each of the eight deployment link mechanisms so that the each of the eight deployment link mechanisms is structured to be foldable in three stages,
in which a central vertical link member of the first four-side link, which serves as the central shaft, includes a first slider,
in which a common vertical link member between the first four-side link and the second four-side link includes a second slider,
in which another common vertical link member between the second four-side link and the third four-side link includes a third slider,
in which the one deployment driving mechanism causes the first slider to slide upwardly along the central vertical link member, to thereby unfold the first four-side link,
in which the unfolded first four-side link causes the second slider to slide upwardly along the common vertical link member, to thereby unfold the second four-side link, and
in which the unfolded second four-side link causes the third slider to slide upwardly along the another common vertical link member, to thereby unfold the third four-side link.
According to this invention, it is possible to obtain the deployable antenna having a larger aperture diameter by the four-side links provided in the plurality of stages.
In the accompanying drawings:
Now, embodiments of this invention are described in detail.
The deployable antenna A1′ is stowed in a folded state inside a fairing of a launch vehicle, and is deployed in orbit to form an antenna reflector mirror surface (flexible reflector mirror surface 4), which is formed of a flexible film surface, into a predetermined parabolic shape.
The deployable antenna A1′ includes the flexible reflector mirror surface 4, an antenna deploying mechanism 1 that supports an outer edge portion of the flexible reflector mirror surface 4, and bands 3. The flexible reflector mirror surface 4 serves as a front surface of the deployable antenna A1′.
The antenna deploying mechanism 1 includes six deployment link mechanisms 20 arranged radially from a central shaft of the antenna deploying mechanism 1 so as to support the outer edge portion of the flexible reflector mirror surface 4 at six points, and one deployment driving mechanism 30 arranged at a lower portion of the center of arrangement of the six deployment link mechanisms 20. The deployment driving mechanism 30 is an actuator mechanism part for unfolding the six deployment link mechanisms 20.
The bands 3 illustrated in
The single deployment link mechanism 20 includes three four-side links 5, 6, and 7 arranged in an order from the position of the central shaft, around which the six deployment link mechanisms 20 are arranged, toward an outer side of the deployment link mechanism 20. Thus, the deployment link mechanism 20 is structured to be foldable in three stages. In
Each deployable antenna module A1 of the deployable antenna A0 illustrated as the related art in
In contrast, according to the first embodiment, as illustrated in
In
In the single deployment link mechanism 20 illustrated in
In a case where the large deployable antenna A0 illustrated in
The four-side link 5 is constructed of the link member 8 and link members 13, 14, and 15. To the four-side link 5, the slider 9, link members 10, 11, and 12, the slider 16, and a link member 17 are jointed through hinge mechanisms hg.
In
Now, an operation of the above-mentioned first embodiment is described.
In
The link members 11 and 12 in the extended state serve as a structure for stably maintaining the shape of the four-side link 5 in the unfolded state.
In
In
In the first embodiment, the deployment link mechanisms 20 foldable in three stages are used to provide a mechanism capable of folding and unfolding the deployable antenna A1′ having a large aperture diameter.
The first embodiment enables the single deployable antenna A1′ to serve as a large deployable antenna, to thereby reduce the weight of the large deployable antenna.
Note that, in order to obtain a deployable antenna having such a large aperture diameter size that cannot be attained by the single deployable antenna A1′ according to the first embodiment, similarly to the deployable antenna A0 of
As described above, the five-fold structure is employed to increase the aperture diameter size of the deployable antenna. Specifically, the deployable antenna is structured to have an aperture diameter size that is substantially five times as large as the module aperture diameter size of the deployable antenna module A1 (
Note that, in order to obtain a deployable antenna having such a large aperture diameter size that cannot be attained by the single deployable antenna according to the second embodiment, similarly to the deployable antenna A0 of
Now, referring to
(1) A deployable antenna, including:
six deployment link mechanisms 20 arranged radially from a central shaft of the deployable antenna so as to support an outer edge portion of a flexible reflector mirror surface 4 of the deployable antenna; and
one deployment driving mechanism 30 arranged at a lower portion of a center of arrangement of the six deployment link mechanisms 20, for unfolding the six deployment link mechanisms 20,
in which each of the six deployment link mechanisms 20 includes a first four-side link 5, a second four-side link 6, and a third four-side link 7 arranged in an order from a position of the central shaft, around which the six deployment link mechanisms 20 are arranged, toward an outer side of the each of the six deployment link mechanisms 20 so that the each of the six deployment link mechanisms 20 is structured to be foldable in three stages,
in which a central vertical link member 8 of the first four-side link 5, which serves as the central shaft, includes a first slider 9,
in which a common vertical link member 15 between the first four-side link 5 and the second four-side link 6 includes a second slider 16,
in which another common vertical link member 8 between the second four-side link 6 and the third four-side link 7 includes a third slider 9,
in which the one deployment driving mechanism 30 causes the first slider 9 to slide upwardly along the central vertical link member 8, to thereby unfold the first four-side link 5,
in which the unfolded first four-side link 5 causes the second slider 16 to slide upwardly along the common vertical link member 15, to thereby unfold the second four-side link 6, and
in which the unfolded second four-side link 6 causes the third slider 9 to slide upwardly along the another common vertical link member 8, to thereby unfold the third four-side link 7.
(2) A deployable antenna according to the above-mentioned item (1), in which the first four-side link 5 includes link mechanisms 10, 11, and 12 to be brought into an extended state when the one deployment driving mechanism 30 causes the first slider 9 to slide upwardly along the central vertical link member 8, to thereby unfold the first four-side link 5.
(3) A deployable antenna according to the above-mentioned item (1) or (2),
in which the first four-side link 5 further includes a first promoting link member 17 for promoting unfolding of the first four-side link 5 when the unfolded first four-side link 5 causes the second slider 16 to slide upwardly along the common vertical link member 15, and
in which the second four-side link 6 includes a second promoting link member 17 for promoting unfolding of the second four-side link 6 when the unfolded first four-side link 5 causes the second slider 16 to slide upwardly along the common vertical link member 15.
(4) A deployable antenna according to any one of the above-mentioned items (1) to (3), in which the third four-side link 7 includes link mechanisms 10, 11, and 12 to be brought into an extended state when the unfolded second four-side link 6 causes the third slider 9 to slide upwardly along the another common vertical link member 8, to thereby unfold the third four-side link 7.
(5) A jointed-type deployable antenna, including:
a plurality of the deployable antennas A1′ according to any one of the above-mentioned items (1) to (4); and
a plurality of joint members 40 (
(6) A deployable antenna according to the above-mentioned item (1),
in which the each of the six deployment link mechanisms 20′ further includes a fourth four-side link 5 and a fifth four-side link 6 arranged between the second four-side link 6 and the third four-side link 7 so that the each of the six deployment link mechanisms 20′ is structured to be foldable in five stages, and
in which the fourth four-side link 5 and the fifth four-side link 6 have substantially the same structures as the first four-side link 5 and the second four-side link 6.
(7) A jointed-type deployable antenna, including:
a plurality of the deployable antennas according to the above-mentioned item (6); and
a plurality of joint members 40 (
Note that, in the deployable antenna A1″ illustrated in
Now, referring to
(8) A deployable antenna A1″, including:
eight deployment link mechanisms 20 arranged radially from a central shaft of the deployable antenna so as to support an outer edge portion of a flexible reflector mirror surface 4 of the deployable antenna; and
one deployment driving mechanism 30 arranged at a lower portion of a center of arrangement of the eight deployment link mechanisms 20, for unfolding the eight deployment link mechanisms 20,
in which each of the eight deployment link mechanisms 20 includes a first four-side link 5, a second four-side link 6, and a third four-side link 7 arranged in an order from a position of the central shaft, around which the eight deployment link mechanisms 20 are arranged, toward an outer side of the each of the eight deployment link mechanisms 20 so that the each of the eight deployment link mechanisms 20 is structured to be foldable in three stages,
in which a central vertical link member 8 of the first four-side link 5, which serves as the central shaft, includes a first slider 9,
in which a common vertical link member 15 between the first four-side link 5 and the second four-side link 6 includes a second slider 16,
in which another common vertical link member 8 between the second four-side link 6 and the third four-side link 7 includes a third slider 9,
in which the one deployment driving mechanism 30 causes the first slider 9 to slide upwardly along the central vertical link member 8, to thereby unfold the first four-side link 5,
in which the unfolded first four-side link 5 causes the second slider 16 to slide upwardly along the common vertical link member 15, to thereby unfold the second four-side link 6, and
in which the unfolded second four-side link 6 causes the third slider 9 to slide upwardly along the another common vertical link member 8, to thereby unfold the third four-side link 7.
(9) A deployable antenna according to the above-mentioned item (8),
in which the each of the eight deployment link mechanisms 20 further includes a fourth four-side link 5 and a fifth four-side link 6 arranged between the second four-side link 6 and the third four-side link 7 so that the each of the eight deployment link mechanisms 20 is structured to be foldable in five stages, and
in which the fourth four-side link 5 and the fifth four-side link 6 have substantially the same structures as the first four-side link 5 and the second four-side link 6.
This invention is applicable to a folding mechanism of a deployable antenna, of the parabolic antennas to be mounted onto an artificial satellite or the like.
This invention has been described above in detail with reference to the embodiments, but this invention is not limited to the embodiments described above. Various modifications understandable for a person having ordinary skill in the art may be made to the structures and details of this invention within the scope of this invention.
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Communication dated Jul. 2, 2014, issued by the Japanese Patent Office, in counterpart Application No. 2011017529. |
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