Method for discrete assembly of cuboctahedron lattice materials
A method for the design, manufacture, and assembly of modular lattice structures composed of cuboctahedron unit cells.
1. A method of producing a cuboctahedral lattice structure comprising:
molding a plurality of cuboctahedron cells faces using a two-piece mold, each face composed of a plurality of beams that form a substantially closed polygon substantially in a single plane to form an empty area in said plane encircled by the plurality of beams, each said face comprising joints in the single plane offset from polygon corners;
assembling the cuboctahedron cell faces into cuboctahedron cell voxels;
choosing a lattice pitch;
attaching a sufficient number of said cuboctahedron cell voxels according to the lattice pitch to form a cellular lattice structure, by connecting said voxels together through attachment of corner-offset joints in adjacent voxels.
2. The method of claim 1 wherein the cuboctahedron cells faces and voxels are attached using a method chosen from the group consisting of welding, gluing, bolting and riveting.
3. The method of claim 1 wherein the molding is injection molding.
4. The method of claim 1 , wherein the cuboctahedron cell voxels are glass fiber, carbon fiber or reinforced polymer.
5. The method of claim 1 , wherein the lattice pitch is 75 mm.
6. The method of claim 1 , wherein each of the plurality of cuboctahedron cell faces is square in shape, and has two types of joints at each vertex: a voxel-corner joint and a neighbor joint.
7. The method of claim 6 , wherein the voxel corner joint is at a 45-degree angle out of plane from the square face, and is used to join square faces together to form a full voxel.
8. The method of claim 7 , wherein each neighbor joint is offset from the voxel corner and is in a plane with the square face, and is used to join a single voxel to another voxel.
9. A method of producing a cuboctahedral lattice structure comprising:
injection molding a plurality of cuboctahedron cells faces using a two-piece injection mold, each face composed of a plurality of beams that form a substantially closed polygon substantially in a single plane to form an empty area in said plane encircled by the plurality of beams, each said face comprising joints in the single plane offset from polygon corners;
assembling the cuboctahedron cell faces into cuboctahedron cell voxels by gluing, welding or riveting;
choosing a lattice pitch;
attaching a sufficient number of said cuboctahedron cell voxels according to the lattice pitch to form a cellular lattice structure by connecting said voxels together through attachment of corner-offset joints in adjacent voxels.
10. The method of claim 9 , wherein the cuboctahedron cell voxels are glass fiber, carbon fiber or reinforced polymer.
11. The method of claim 9 , wherein the lattice pitch is 75 mm.
12. The method of claim 9 , wherein each of the plurality of cuboctahedron cell faces is square in shape, and has two types of joints at each vertex: a voxel-corner joint and a neighbor joint.
13. The method of claim 12 , wherein the voxel corner joint is at a 45-degree angle out of plane from the square face, and is used to join square faces together to form a full voxel.
14. The method of claim 13 , wherein each neighbor joint is offset from the voxel corner and is in a plane with the square face, and is used to join a single voxel to another voxel.
15. The method of claim 9 , wherein the injection molding uses a two-part mold tooling comprising a mold cavity and mold core.
16. A method of producing a lattice structure comprising:
molding a plurality of cell faces, each face composed of a plurality of beams that form a substantially closed polygon substantially in a single plane to form an empty area in said plane encircled by the plurality of beams, each said face comprising joints in the single plane offset from polygon corners;
assembling the cell faces into cell voxels;
face attaching a sufficient number of said voxels to form a cellular lattice structure by connecting said voxels together through attachment of corner-offset joints in adjacent voxels.