3-DIMENSIONAL PRINTED STRUCTURE AND A SYSTEM AND METHOD FOR THE 3-DIMENSIONAL PRINTING OF STRUCTURES
20230313520 · 2023-10-05
Inventors
Cpc classification
B29C64/236
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
E04G21/02
FIXED CONSTRUCTIONS
B29C64/232
PERFORMING OPERATIONS; TRANSPORTING
International classification
E04B1/16
FIXED CONSTRUCTIONS
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B29C64/232
PERFORMING OPERATIONS; TRANSPORTING
B29C64/236
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A 3-dimensional printed structure, and a system and method for the 3-dimensional printing of structures is disclosed, including a structure comprising a plurality of sides comprising the following: a bottom, a top, a left wall and a right wall each constructed using a 3D printing process. The structure is 3D printed by initially printing a continuous rear end surface associated with each of the bottom, the top, the left wall and the right wall and thereafter the 3D printing process additively depositing material in a continuous bead to build up the initially deposited material to further construct the bottom, the top, the left wall and the right wall to complete the 3-D printing of the structure. The 3-D printing process finally deposits the material to form a monolithic and continuous front end surface associated with each of the bottom, the top, the left wall, and the right wall, wherein the 3-D printed structure is rotated to rest on the bottom upon completion of the 3D printing process.
Claims
1. A 3D-printed structure, comprising: a structure comprising a plurality of sides including a bottom, a top, a left wall and a right wall each constructed using a 3D printing process, wherein the 3D printing process additively deposits material in a continuous bead to generate the plurality of sides by 1) initially depositing the material to form a monolithic and continuous rear end surface associated with each of the bottom, the top, the left wall and the right wall and thereafter 2) the 3D printing process additively depositing material in a continuous bead to build up the initially deposited material to further construct the bottom, the top, the left wall and the right wall to complete the 3-D printing of the structure, the 3-D printing process finally depositing the material to form a monolithic and continuous front end surface associated with each of the bottom, the top, the left wall and the right wall, wherein the 3-D printed structure is rotated to rest on the bottom upon completion of the 3D printing process.
2. The 3D-printed structure according to claim 1, wherein the deposited material is recycled plastic and the 3D-printing process includes the use of a 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material.
3. The 3D-printed structure according to claim 1, wherein the 3D-printing process includes the use of an anchored 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material, and a rotating platform to position the 3-D printed structure for additively depositing the material.
4. The 3D-printed structure according to claim 1, wherein the 3-D-printed structure includes a continuous exterior print bead and a continuous interior print bead, and the continuous interior print bead is printed to generate a plurality of channels extending between the continuous exterior print bead and the continuous interior print bead.
5. The 3D-printed structure according to claim 1, wherein a front wall and a rear wall are independently added to the 3D-printed structure after completion of the 3D-printing process, the front wall and rear wall operatively attached to the 3-D printed structure and the front wall and rear wall enclosing the 3-D printed structure.
6. The 3D-printed structure according to claim 1, wherein the plurality of sides are 3D-printed as a complete monolithic structure.
7. The 3D-printed structure according to claim 1, wherein each of the plurality of sides includes an interior surface and an exterior surface, and the interior surface and the exterior surface are separated by insulation.
8. The 3D-printed structure according to claim 1, wherein the interior surface includes at least one of the following: a wall covering, a flooring, a wall finishing, and a ceiling cladding.
9. The 3D-printed structure according to claim 1, wherein the exterior surface includes a UV protective layer.
10. A method of constructing a 3D-printed structure including a plurality of sides including a bottom, a top, a left wall and a right wall, the method comprising: a 3D printing process additively depositing material in a continuous bead to generate the plurality of sides by 1. initially depositing the material to form a monolithic and continuous rear end surface associated with each of the bottom, the top, the left wall and the right wall, and thereafter 2. the 3D printing process additively depositing material in a continuous bead to build up the initially deposited material to further construct the bottom, the top, the left wall and the right wall to complete the 3-D printing of the structure, the 3-D printing process finally depositing the material to form a monolithic and continuous front end surface associated with each of the bottom, the top, the left wall and the right wall, wherein the 3-D printed structure is rotated to rest on the bottom upon completion of the 3D printing process.
11. The method of constructing a 3D-printed structure according to claim 10, wherein the deposited material is recycled plastic and the 3D-printing process includes the use of a 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material.
12. The method of constructing a 3D-printed structure according to claim 10, wherein the 3D-printing process includes the use of an anchored 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material, and a rotating platform to position the 3-D printed structure for additively depositing the material.
13. The method of constructing a 3D-printed structure according to claim 10, wherein the 3-D-printed structure includes a continuous exterior print bead and a continuous interior print bead, and the continuous interior print bead is printed to generate a plurality of channels extending between the continuous exterior print bead and the continuous interior print bead.
14. The method of constructing a 3D-printed structure according to claim 10, wherein a front wall and a rear wall are independently added to the 3D-printed structure after completion of the 3D-printing process, the front wall and rear wall operatively attached to the 3-D printed structure and the front wall and rear wall enclosing the 3-D printed structure.
15. The method of constructing a 3D-printed structure according to claim 10, wherein the plurality of sides are 3D-printed as a complete monolithic structure.
16. The method of constructing a 3D-printed structure according to claim 10, wherein each of the plurality of sides includes an interior surface and an exterior surface, and the interior surface and the exterior surface are separated by insulation.
17. The method of constructing a 3D-printed structure according to claim 10, wherein the interior surface includes at least one of the following: a wall covering, a flooring, a wall finishing, and a ceiling cladding.
18. The method of constructing a 3D-printed structure according to claim 10, wherein the exterior surface includes a UV protective layer.
19. A six sided enclosed habitable structure comprising: a 3-D printed structure including a plurality of sides including a bottom, a top, a left wall and a right wall each constructed using a 3D printing process, wherein the 3D printing process additively deposits material in a continuous bead to generate the plurality of sides by 1) initially depositing the material to form a monolithic and continuous rear end surface associated with each of the bottom, the top, the left wall and the right wall and thereafter 2) the 3D printing process additively depositing material in a continuous bead to build up the initially deposited material to further construct the bottom, the top, the left wall and the right wall to complete the 3-D printing of the structure, the 3-D printing process finally depositing the material to form a monolithic and continuous front end surface associated with each of the bottom, the top, the left wall and the right wall, wherein the 3-D printed structure is rotated to rest on the bottom upon completion of the 3D printing process; and a front wall and a rear wall added to the 3D-printed structure after completion of the 3D-printing process, the front wall and rear wall operatively attached to the 3-D printed structure and the front wall and rear wall enclosing the 3-D printed structure.
20. The sided enclosed habitable structure according to claim 19, wherein the deposited material is recycled plastic and the 3D-printing process includes the use of a 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] For a more complete understanding of the present disclosure, reference is now made to the following descriptions taken in conjunction with the accompanying drawings.
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016] This disclosure and exemplary embodiments described herein provide method and systems for generating a 3D-printed structure, the structure comprising a plurality of sides including: a bottom, a top, a left side and a right side, each constructed using a 3D printing process. According to an exemplary embodiment of this disclosure, the structure is monolithically 3D printed by an additive process which results in a 4 sided structure resting on a platform and oriented with the top side as the most upper surface. The completed structure is then rotated onto the bottom external surface to provide a properly oriented structure. A front side/wall and rear side/wall, which are not 3D printed, are constructed and/or added using various construction techniques which attach the front and rear sides to the 3D printed structure. Some of the features associated with the front and rear sides may include, but are not limited to, windows, doors, electrical fixtures, etc.
[0017] The specific details of the single embodiment or variety of embodiments described herein are set forth in this application. Any specific details of the embodiments are used for demonstration purposes only, and no unnecessary limitation or inferences are to be understood therefrom.
[0018] Before describing in detail exemplary embodiments, it is noted that the embodiments reside primarily in combinations of components related to the system. Accordingly, the device components have been represented where appropriate by conventional symbols in the drawings, showing only those specific details that are pertinent to understanding the embodiments of the present disclosure so as not to obscure the disclosure with details that will be readily apparent to those of ordinary skill in the art having the benefit of the description herein.
[0019] In general, the embodiments described herein relate to a process for the 3-Dimensional (3D) printing of a structure. The structure is designed to be occupiable and/or habitable by at least one person and may include thermal insulation, and the ability for the inclusion of building utilities, while creating a means for interior and exterior customization. The structure is constructed of a 3D-printable material such as a polymer and/or recycled polymer and is printed on its side such that the structure is printed in a single monolithic print, thus reducing the time needed for production and simplifying the manufacturing process.
[0020] In some embodiments, the deposited material is comprised of recycled plastic or a glycol-modified polyethylene terephthalate (PETG) and is glass fiber filled.
[0021] With reference to
[0022] With reference to
[0023] In some embodiments, the front wall 109 and rear wall 111 may be constructed of a transparent material and are not 3D printed. Alternatively, the front wall 109 and rear wall 111 may be constructed of a combination of materials including, but not limited to, cement board, wood framing, drywall, paneling, widow(s), door(s), etc.
[0024] The 3D printing process is performed such that the structure 100 is 3D printed on its side. In such, the rear wall 111 or front wall 109 is positioned as the base (see
[0025] Prior to delivery, the structures foundation and utilities may be completed. The foundation ensures the structure has a suitable base to be positioned on, while utilities ensure the structure is habitable.
[0026] One skilled in the arts will readily understand that the size, dimensions, shape, and features of the structure may be modified without deterring from the embodiments described herein.
[0027] With reference to
[0028] As shown, during the 3D-printing process, a continuous exterior print bead 421 and a continuous interior print bead 422 are deposited to form the structure. Furthermore, continuous interior print bead 422 is printed to generate a plurality of channels extending between the continuous exterior print bead 421 and the continuous interior print bead 422. The cavities 403 resulting from these channels provide space for insulation, wire routing, plumbing, etc. In addition, as shown, the interior face of the continuous interior bead 422 is relatively linear/flat to provide an anchoring surface for wall/ceiling/floor substrate attachment, as well as other interior wall/ceiling/floor covering material.
[0029] When completed, the sides 400 include an interior surface 113 and an exterior surface 115. The interior 401 space between the interior surface 113 and an exterior surface 115 includes insulation 403. One or more light assemblies 405 and electrical wiring 407 are positioned such that the light assemblies 405 protrude through the interior surface 113 and substrate 409 thereof. The exterior surface 115 may include an ultraviolet light (UV) protective layer 411.
[0030] Various details of the disclosed 3-dimensional printed structure and system and method for the 3-dimensional printing of structures are now provided.
[0031] According to an exemplary embodiment of this disclosure, a 3D-printed structure and associated printing system and method includes a structure comprising a plurality of sides including a bottom, a top, a left wall and a right wall each constructed using a 3D printing process. The 3D printing process additively deposits material in a continuous bead to generate the plurality of sides by [0032] 1) initially depositing the material to form a monolithic and continuous rear end surface associated with each of the bottom, the top, the left wall and the right wall, and thereafter [0033] 2) the 3D printing process additively depositing material in a continuous bead to build up the initially deposited material to further construct the bottom, the top, the left wall and the right wall to complete the 3-D printing of the structure, the 3-D printing process finally depositing the material to form a monolithic and continuous front end surface associated with each of the bottom, the top, the left wall and the right wall, wherein the 3-D printed structure is rotated to rest on the bottom upon completion of the 3D printing process.
[0034] According to an exemplary embodiment, the deposited material is recycled plastic and the 3D-printing process includes the use of a 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material.
[0035] According to another exemplary embodiment, the 3D-printing process includes the use of an anchored 3-axis robotic arm operatively associated with the positioning of an extruder to additively deposit the material, and a rotating platform to position the 3-D printed structure for additively depositing the material.
[0036] According to another exemplary embodiment, the 3-D-printed structure includes a continuous exterior print bead and a continuous interior print bead, and the continuous interior print bead is printed to generate a plurality of channels extending between the continuous exterior print bead and the continuous interior print bead.
[0037] According to another exemplary embodiment, a front wall and a rear wall are independently added to the 3D-printed structure after completion of the 3D-printing process, the front wall and rear wall operatively attached to the 3-D printed structure and the front wall and rear wall enclosing the 3-D printed structure.
[0038] According to another exemplary embodiment, the plurality of sides are 3D-printed as a complete monolithic structure.
[0039] According to another exemplary embodiment, each of the plurality of sides includes an interior surface and an exterior surface, and the interior surface and the exterior surface are separated by insulation.
[0040] According to another exemplary embodiment, the interior surface includes at least one of the following: a wall covering, a flooring, a wall finishing, and a ceiling cladding.
[0041] According to another exemplary embodiment, the exterior surface includes a UV protective layer.
[0042] It should be understood, however, that all of these and similar terms are to be associated with the appropriate physical quantities and are merely convenient labels applied to these quantities. Unless specifically stated otherwise, as apparent from the discussion herein, it is appreciated that throughout the description, discussions utilizing terms such as “processing” or “computing” or “calculating” or “determining” or “displaying” or the like, refer to the action and processes of a computer system, or similar electronic computing device, that manipulates and transforms data represented as physical (electronic) quantities within the computer system's registers and memories into other data similarly represented as physical quantities within the computer system memories or registers or other such information storage, transmission or display devices.
[0043] It will be appreciated that variants of the above-disclosed and other features and functions, or alternatives thereof, may be combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.
[0044] The exemplary embodiment has been described with reference to the preferred embodiments. Obviously, modifications and alterations will occur to others upon reading and understanding the preceding detailed description. It is intended that the exemplary embodiment be construed as including all such modifications and alterations insofar as they come within the scope of the appended claims or the equivalents thereof.