IP Library › Granted Patent US 10,384,416
Granted Patent B2
US 10,384,416 · App. 15/432,757 · Granted Aug 20, 2019

Digital flexural materials

Inventors: Kenneth C. Cheung (Boston, MA); Neil Adam Gershenfeld (Somerville, MA)
Assignee: Massachusetts Institute of Technology
B32B3/06B64C1/00B64C1/06B64C3/48B64C3/52E04B1/02E04B1/1903E04B1/34384E04C3/02E04C5/0627B64C2001/0072B64C2003/445E04B1/35E04B5/43E04B2001/1957E04B2001/1981E04C5/0645Y02T50/14Y10T29/49826Y10T428/13Y10T428/24008
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Quick Facts
Patent No.
US 10,384,416
App. No.
15/432,757
Granted
Aug 20, 2019
Kind
B2
Abstract

Digital flexural materials are discrete parts that can be assembled into a lattice structure to produce functionally useful assemblies. An automated process for constructing a structure from digital flexural materials includes assembling a set of discrete units into the structure by reversibly connecting a majority of the set of discrete units to each other, each of the units being reversibly connected or connectable to at least two other units in the set according to a lattice geometry, and then assembling the reversibly connected discrete units into the structure according to the lattice geometry, wherein the structure has the property that a reversible deformation of at least part of the structure occurs in response to loading of the structure. The units in the set of discrete units may be of at least two types or may together comprise a stretch-bend coupled material when assembled according to the lattice geometry.

Claims (26)

1. An automated process for constructing a structure, comprising:

assembling a set of discrete units into the structure by:

reversibly connecting a majority of the set of discrete units to each other, each of the discrete units being reversibly connected, or reversibly connectable, to at least two other units in the set according to a lattice geometry; and

assembling the reversibly connected discrete units into the structure according to the lattice geometry, wherein the assembled reversibly connected set of discrete units forms the structure, wherein the units, when assembled according to the lattice geometry, together comprise a stretch-bend coupled material, and wherein the structure has a mechanical property that, in response to loading of the structure, a reversible deformation of at least part of the structure occurs.

2. The automated process of claim 1 , wherein the automated process is controlled by a specially adapted processor implementing a computer algorithm.

3. The automated process of claim 2 , wherein one or more mechanical properties of the structure produced by the process may be tuned by changing one or more of the following: the ratio of different types of the discrete units used to assemble the structure, the shape of the different types of the discrete units used to assemble the structure, the mechanical properties of the different types of the discrete units used to assemble the structure, and the lattice geometry of the structure.

4. The automated process of claim 1 , wherein at least some of the discrete units are reversibly connected to others of the discrete units by connections that are adapted to transfer force between connected units.

5. The automated process of claim 4 , wherein some of the connections are elastic connections.

6. The automated process of claim 1 , wherein the units in the set of discrete units are identical.

7. The automated process of claim 1 , wherein the units in the set of discrete units are of at least two types.

8. The automated process of claim 7 , wherein at least one of the at least two types of units differs in material composition or property from at least another of the at least two types of units.

9. The automated process of claim 7 , wherein at least one of the at least two types of units is a connector unit.

10. The automated process of claim 1 , wherein at least some of the units comprise composite material.

11. The automated process of claim 1 , wherein some of the units include electrical conductors and others of the units do not include electrical conductors.

12. The automated process of claim 1 , wherein the units are reversibly connected, or are reversibly connectible, to the other units in the set by connections that are flexural locking mechanisms, pinned locking mechanisms, or compression clips.

13. An automated process for constructing a structure, comprising:

assembling a set of discrete units into the structure by:

reversibly connecting a majority of the set of discrete units to each other, each of the discrete units being reversibly connected, or reversibly connectable, to at least two other units in the set according to a lattice geometry; and

assembling the reversibly connected discrete units into the structure according to the lattice geometry, wherein the assembled reversibly connected set of discrete units forms the structure, wherein the units in the set of discrete units are of at least two types, and wherein the structure has a mechanical property that, in response to loading of the structure, a reversible deformation of at least part of the structure occurs.

14. The automated process of claim 13 , wherein the automated process is controlled by a specially adapted processor implementing a computer algorithm.

15. The automated process of claim 14 , wherein one or more mechanical properties of the structure produced by the process may be tuned by changing one or more of the following: the ratio of different types of the discrete units used to assemble the structure, the shape of the different types of the discrete units used to assemble the structure, the mechanical properties of the different types of the discrete units used to assemble the structure, and the lattice geometry of the structure.

16. The automated process of claim 13 , wherein at least some of the discrete units are reversibly connected to others of the discrete units by connections that are adapted to transfer force between connected units.

17. The automated process of claim 13 , wherein some of the connections are elastic connections.

18. The automated process of claim 13 , wherein at least one of the at least two types of units differs in material composition or property from at least another of the at least two types of units.

19. The automated process of claim 13 , wherein at least one of the at least two types of units is a connector unit.

20. The automated process of claim 13 , wherein at least some of the units comprise composite material.

Continuity (7)
Division 13961880 · Aug 7, 2013
Continuation In Part 13924530 · Jun 21, 2013
Continuation In Part 13277103 · Oct 19, 2011
Provisional Application 61680275 · Aug 7, 2012
Provisional Application 61662358 · Jun 21, 2012
Provisional Application 61394713 · Oct 19, 2010
Related Publication 20170183870A1 · Jun 29, 2017
Cited By (30)
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