APPARATUS AND METHOD FOR PACKAGING AND DEPLOYING LARGE STRUCTURES USING HEXAGONS
20180201393 ยท 2018-07-19
Inventors
Cpc classification
E05Y2999/00
FIXED CONSTRUCTIONS
International classification
Abstract
An apparatus and a method for packaging a large size flat structure into a hexagonal column, allowing higher packaging density without sacrificing the two-dimensional size of the flat structure, and for deploying and unstacking the hexagonal column.
Claims
1. An apparatus for packaging and deploying large structures comprising: a) a plurality of hexagon tiles; b) a plurality of connectors mounted to the sides of the tiles and having a power source; and c) a connecting sequence that connects the tiles permanently one by one using the connectors in a generally circular direction on a two-dimensional surface such that the apparatus takes the form of a flat configuration without any overlapping tiles and without noticeable gaps, wherein the tiles forming the flat configuration are then secured to adjacent tiles using the connectors for stability, wherein the apparatus forms a hexagonal column of stacked tiles by folding the tiles with alternating folding directions at the connectors by tracing the connecting sequence.
2. The apparatus of claim 1, wherein the flat configuration is fully tiled.
3. The apparatus of claim 1, wherein the flat configuration is partially tiled.
4. The apparatus of claim 1, further comprising an expandable member in each of the tiles for adjusting the thickness of the tiles.
5. The apparatus of claim 1, wherein the power source is electric.
6. The apparatus of claim 1, wherein the power source is elastic.
7. The apparatus of claim 1, wherein the power source is magnetic.
8. The apparatus of claim 1, wherein the power source is one or more chemical reactions.
9. An apparatus comprising: a) a plurality of hexagons, each side of the hexagons being mounted with either a hinge or a securing member, the hexagons having no more than two hinges, the hinges and the securing members are powered by a power source; and b) a connecting sequence for connecting the hexagons permanently one by one using the hinges and in a generally circular direction on a two-dimensional surface such that the apparatus takes the form of a flat configuration without any overlapping hexagons and without noticeable gaps, wherein each hexagon is then further connected to the adjacent hexagons using the securing members, wherein the apparatus forms a hexagonal column when the hexagons are all stacked by folding the hexagons in alternating folding directions at the hinges by tracing the connecting sequence.
10. The apparatus of claim 9, wherein each of the hinges folds only to one direction.
11. The apparatus of claim 9, wherein each of the hinges may fold to two opposite directions.
12. The apparatus of claim 9, further comprising an expandable member in each of the hexagons for adjusting the thickness of the hexagons.
13. The apparatus of claim 9, wherein the securing member is the hinge.
14. The apparatus of claim 9, wherein the power source is electric.
15. The apparatus of claim 9, wherein the power source is elastic.
16. The apparatus of claim 9, wherein the power source is magnetic.
17. The apparatus of claim 9, wherein the power source is one or more chemical reactions.
18. A method for launching and deploying to and in space large structures having a form of a substantially flat configuration, comprising: a) connecting a plurality of hexagons one by one permanently at the sides by: i) following a generally circular direction on a two-dimensional surface, and ii) having each hexagon connected to no more than two hexagons, wherein the form of the substantially flat configuration has no overlapping hexagons and no noticeable gaps; b) stacking the hexagons in an accordion-like fashion by folding them with alternating or opposite folding directions to form a hexagonal column; c) placing the hexagonal column into a space launching vehicle for launch; d) once in space and outside the launching vehicle, deploying the hexagonal column by unfolding the hexagons into the substantially flat configuration; and e) securing the adjacent hexagons to each other for stability.
19. The method of claim 18, in which the deploying the hexagonal column comprises unfolding more than one hexagon simultaneously without colliding any of the hexagons.
20. The method of claim 18, further comprising reducing the thickness of the hexagons after stacking the hexagons in an accordion-like fashion, such that the height of the hexagonal column is reduced.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0012] Embodiments of the invention is an apparatus and a method that use a unique sequence to connect hexagons for tiling the hexagons into a large flat configuration and by tracing the reverse direction of the connecting sequence, stacking the hexagons into a hexagonal column by folding the hexagons with alternating folding directions. The hexagonal column can be unstacked or unfolded to return the apparatus back to the form of a large flat configuration. When the apparatus is in the form of a flat configuration, the adjacent hexagons are secured with each other for the stability of the flat configuration.
[0013] The arrows in
[0014] Once launched into space and outside the launching vehicle, the apparatus in its hexagonal column shape (shown in
[0015] When deploying the hexagons, the hexagons may be deployed one by one. A more efficient way to deploy the hexagons is to deploy a number of hexagons simultaneously in a controlled manner to allow unfolding without colliding any hexagons. An example of simultaneously deploying a group of hexagons is shown in
[0016] The hinges for connecting the hexagons may fold both directions or only one direction. In the embodiment where the hinges fold only one direction, the hinges must be mounted in an alternating top and bottom manner on the hexagons that follow the trace of the connecting sequence to allow the alternating folding directions of the hexagons. In the embodiment where the hinges fold both directions, the mounting direction of the hinges is irrelevant, but the stacking direction of the hexagons must follow alternating folding directions.
[0017] In one embodiment of the invention, the securing members and the hinges are one and the same, both of which are connectors serving the function of connecting the hexagons permanently when constructing the apparatus and securing the hexagons permanently once the apparatus is fully deployed and tiled.
[0018] The hinges, securing members, or connectors are powered in order to fold and unfold the hexagons as needed. The power may be electric, elastic (for example, using springs), magnetic, created by using a shape-memory material, or by chemical reactions.
[0019] The preferred construction and use of the invented apparatus contain hexagons without limitation of number, because the purpose of the invention is to allow a giant flat structure to be collapsed into a compact hexagonal column that takes a minimal space (cylindrical or elongated shape) for launching. However, because the minimum number required to form a ring of hexagons is six, six is the preferred minimum number of hexagons to be used for purpose of this invention.
[0020] The applications of the invented apparatus and method can be in connection with mirrors and solar cell arrays in or with the hexagon tiles. The two exterior surfaces of each of the hexagons (not interior surfaces between layers inside a hexagon if a hexagon comprises layers) should be clear from obstruction to allow consistent and unobstructed stacking.
[0021] The height of a hexagonal column can be reduced by using hexagon tiles made of a material with the flexibility to be compressed and then restored when needed. Another embodiment of the invention uses an expandable member inside each hexagon tile for adjusting the thickness of the hexagon tiles. In this embodiment, the hexagon tiles comprises at least two layers and the expandable member is installed between the layers. The expandable member may use crossed bars along the hexagon sides as shown in
[0022] While it may be most useful to fully tile the flat configuration of the apparatus in one embodiment, for example, maximizing the area for collecting solar energy, it may be desirable to not fully tile the fiat configuration in another embodiment, for example, a ring of hexagons having only one complete circled layer of hexagons as shown in
[0023] It is noted that, as used in this specification and the appended claims, the singular forms a, an, and the, include plural referents unless expressly and unequivocally limited to one referent. As used herein, the term include and its grammatical variants are intended to be non-limiting, such that recitation of items in a list is not to the exclusion of other like items that can be substituted or other items that can be added to the listed items.
[0024] Upon studying the disclosure, it will be apparent to those skilled in the art that various modifications and variations can be made in the invention and methods of various embodiments of the invention. Other embodiments will be apparent to those skilled in the art from consideration of the specification and practice of the embodiments disclosed herein. It is intended that the specification be considered as examples only. The various embodiments are not necessarily mutually exclusive, as some embodiments can be combined with one or more other embodiments to form new embodiments.