The present disclosure relates generally to a method for producing a light covering. More particularly, the present disclosure relates to a method for producing a light covering that can be folded flat or is collapsible.
Origami is generally based on folding techniques where a 2D object (e.g., a paper) is transformed into a 3D shape. However, by this methodology, it can be difficult to control aspects of the 3D shape (dimensions, etc.) that results from folding. As such, artists, mathematicians, and computer engineers, among others, are interested in reverse engineering the folding process involved by converting the 3D shape back to the 2D object in order to better control future 3D shapes formed from the 2D objects (e.g., paper).
The present disclosure provides a method for producing light coverings that can take any arbitrary symmetrical volumetric forms and that can be flat-foldable or collapsible. The method can also be modified to produce other 3D structures that are collapsible by using other materials and assembly methods.
According to one embodiment, the present disclosure provides a method for forming a collapsible structure. The method comprises: generating fold lines on a plurality of flat objects; folding the plurality of flat objects along the fold lines to form a plurality of modules including a first module, a second module and a third module; coupling a first edge of the first module to a first edge of the second module; coupling a second edge of the second module to a first edge of the third module; and coupling a second edge of the third module to a second edge of the first module.
According to another embodiment of the present disclosure, the method further comprises truncating a portion of the plurality of flat objects. According to another embodiment, the plurality of flat objects are formed of at least one of cotton paper, Tyvek sheet, polypropylene, or tear-free Shoji paper. According to another embodiment, the method further comprises coupling the collapsible structure to a support ring, crossbar, and a light source. According to another embodiment, the collapsible structure is configured to transition from an expanded configuration to a folded configuration by folding the collapsible structure along the fold lines when the collapsible structure is in the expanded configuration. According to another embodiment, each of the plurality of modules is substantially pyramidal. According to another embodiment, the collapsible structure is substantially symmetrical.
According to another embodiment, the present disclosure provides a collapsible structure. The collapsible structure comprises: a plurality of flat objects upon which fold lines are imprinted, whereby when the flat objects are folded along the fold lines, a plurality of modules are formed; wherein the fold lines are generated by a mathematical algorithm or computer program; wherein the fold lines form a symmetrical pattern on the plurality of flat objects and the plurality of modules; the plurality of modules are coupled to each other to form the collapsible structure; and the collapsible structure having an expanded configuration in which the coupled plurality of modules each have a first edge spaced apart from a second edge of the module and a folded configuration in which the coupled plurality of modules are folded along the fold lines and the first and second edges of each of the plurality of modules are adjacent to each other.
According to another embodiment, a portion of the plurality of flat objects are truncated to form the plurality of modules. According to another embodiment, the plurality of flat objects are formed of at least one of cotton paper, Tyvek sheet, polypropylene, or tear-free Shoji paper.
According to yet another embodiment, the present disclosure provides a method of forming a collapsible structure. The method of forming a collapsible structure comprises: generating fold lines on a plurality of flat objects; truncating a portion of the plurality of flat objects; folding the plurality of flat objects along the fold lines to form a plurality of modules including at least a first module, a second module and a third module; forming a first row of modules including the first module coupled to the second module and the second module coupled to the third module; wherein the first module has a first end coupled to a first end of the second module, and the second module has a second end coupled to a first end of the third module; forming a second row of modules including a fourth module coupled to a fifth module and the fifth module coupled to a sixth module; wherein the fourth module has a first end coupled to a first end of the fifth module, and the fifth module has a second end coupled to a first end of the sixth module; forming a third row of modules including a seventh module coupled to an eighth module and the eighth module coupled to a ninth module; wherein the seventh module has a first end coupled to a first end of the eighth module, and the eighth module has a second end coupled to a first end of the ninth module; coupling a first edge of the first row of modules to a first edge of the second row of modules; coupling a second edge of the second row of modules to a first edge of the third row of modules; and coupling a second edge of the third row of modules to a second edge of the first row of modules.
According to another embodiment, each of the modules is symmetrical. According to another embodiment, the first row of modules, the second row of modules, and the third row of modules are configured to be offset from each other. According to another embodiment, the plurality of flat objects are formed of at least one of cotton paper, Tyvek sheet, polypropylene, or tear-free Shoji paper. According to another embodiment, the collapsible structure further includes: an expanded configuration in which each of the coupled plurality of modules has a first edge spaced apart from a second edge of the module and a folded configuration in which the coupled plurality of modules are folded along the fold lines and the first and second edges of the plurality of modules are adjacent to each other. According to another embodiment, wherein each of the plurality of modules is substantially pyramidal. According to another embodiment, the method further includes coupling the collapsible structure to a support ring, a crossbar, and a light source.
The features of this disclosure, and the manner of attaining them, will become more apparent and the disclosure itself will be better understood by reference to the following description of embodiments of the disclosure taken in conjunction with the accompanying drawings.
Corresponding reference characters indicate corresponding parts throughout the several views. Although the drawings represent embodiments of the present disclosure, the drawings are not necessarily to scale and certain features may be exaggerated in order to better illustrate and explain the present disclosure. The exemplifications set out herein illustrate an exemplary embodiment of the disclosure, in one form, and such exemplifications are not to be construed as limiting the scope of the disclosure in any manner.
The embodiments disclosed herein are not intended to be exhaustive or limit the disclosure to the precise form disclosed in the following detailed description. Rather, the embodiments are chosen and described so that others skilled in the art may utilize their teachings.
Referring first to
Module 30 begins as a two-dimensional sheet of material 31 as shown in
As shown throughout in
In one embodiment, each module 30 is constructed from material 31 (e.g.,
As mentioned previously, when material 31 is folded along fold lines 34, module 30 is formed. Similar to the imprinting techniques previously discussed, folding material 31 along fold lines 34 can be done by a hand tool or an automated device, such as a laser cutter.
As shown in
To form rows 36, 38, and 40, modules 30 are coupled to one another along the entirety of edge 35 of each module 30 such that fold lines 34 of one module 30 correspond to fold lines 34 of another module 30 as shown in
When coupling row 36 to row 38 and row 38 to row 40 to form configuration 88 as shown in
Once the requisite number of rows of modules are formed and coupled to each other, the first and last rows of modules 30 are coupled to each other such that exposed edges 37, 39 (formed by exposed edges 35 of modules 30) of the first row and the final row are coupled. Exposed edges 41 and 43 (formed by exposed edges 35 of modules 30) are also coupled to each other to form a light covering (e.g., light covering 50 as discussed further herein). For example, exposed edges 39 and 37 of rows 36 and 40, respectively, are coupled to each other and exposed edges 43 and 45 are coupled to each other to form a light covering 50. In this way, a sheet 42 with a greater number of modules 30 and rows 36, 38, and 40 is converted into a light covering 50 as shown in
Light covering 50 comprises a plurality of modules 30 that are coupled to one another to form a distinct shape. Light covering 50 can then be coupled with additional structural components when in use as discussed in greater detail below.
As shown in
Light covering 50, as shown in
The ability of light covering 50 to be foldable, i.e., to transition from the expanded configuration 88 (
As shown in
Crossbar 54 is coupled to support ring 56 at connecting joints 62A, 62B. As shown in
In one embodiment, support ring 56 and crossbar 54 are made of stainless steel and cap 55 is made of plastic. However, it is contemplated that in alternate embodiments, other suitable materials may be used for the apparatus.
Referring now to
Disassembly of light covering apparatus 60 involves decoupling of support ring halves 56A, 56B and crossbar 54 by removing screws 58. Once screws 58 are removed, support ring halves 56A, 56B can be decoupled from each other and from crossbar 54. Support ring halves 56A and 56B can then be removed from holes 64 of light covering 50, 70-81. In this way, any one of light coverings 50, 70-81 can be decoupled from support ring 56 and can then be disassembled such that light coverings 50, 70-81 can transition from expanded configuration 88 (
While this disclosure has been described as having an exemplary design, the present disclosure may be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the disclosure using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within the known or customary practice in the art to which this disclosure pertains.
This application claims the benefit under Title 35, U.S.C. § 119(e) of U.S. Provisional Patent Application Ser. No. 62/446,770, filed on Jan. 16, 2017, entitled Method For Producing Collapsible Structures, the disclosure of which is expressly incorporated herein in its entirety. This application is related to U.S. Design patent application Ser. No. 29/591,061, filed on Jan. 16, 2017, entitled Light Covering.
Number | Date | Country | |
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62446770 | Jan 2017 | US |