Claims
- 1. A family of periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided singly-concave polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angle between adjacent said edges on the interior of said tile where said edges are composed of m/2 pairs of parallel edges and wherein
- said plurality comprises at least one said tile with m greater than 6, and at least one tile without mirror-symmetry,
- said tiles are engaged together to fill space,
- said edges comprise two sets of contiguous edges, first said set having convex interior angles and second set having concave interior angles
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 2. A family of non-periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided singly-concave polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angle between adjacent said edges on the interior of said tile, where said edges are composed of m/2 pairs of parallel edges and wherein
- said plurality comprises at least one said tile without mirror symmetry,
- said tiles are engaged together to fill space, and
- said edges comprise two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 3. A family of periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges,
- said tiles are engaged together to fill space,
- said plurality comprises a combination of convex zonogons with m greater than 2 and singly-concave polygons comprising at least one said singly-concave polygon with m greater than 6, wherein at least one said tile is without mirror-symmetry, and wherein
- said singly-concave is composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 4. A family of non-periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges and wherein,
- said tiles are engaged together to fill space,
- said plurality comprises a combination of convex zonogons with m greater than 2 and singly-concave polygons with m greater than 4, each said tile having mirror-symmetry, wherein
- said singly concave polygons are composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 5. A family of non-periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges and wherein
- said tiles are engaged together to fill space,
- said plurality comprises a combination of convex zonogons with m greater than 2 and singly-concave polygons with m greater than 4, at least one said tile being without mirror-symmetry, wherein
- said singly concave polygons are composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 6. A family of periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges and wherein
- said tiles are engaged together to fill space,
- said plurality comprises a combination of singly-concave polygons and doubly-concave polygons, each said polygon having mirror-symmetry and m greater than 4, wherein
- said singly concave polygons are composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said doubly-concave polygons are composed of two sets of contiguous edges, each said set of edges having concave interior angles, where said sets are joined to each other by additional edges which meet said sets of edges at convex interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 7. A family of periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges and wherein
- said tiles are engaged together to fill space,
- said plurality comprises a combination of singly-concave polygons and doubly-concave polygons, each said polygon having m greater than 4 and at least one said polygon being without mirror-symmetry, wherein
- said singly concave polygons are composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said doubly-concave polygons are composed of two sets of contiguous edges, each said set of edges having concave interior angles, where said sets are joined to each other by additional edges which meet said sets of edges at convex interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 8. A family of non-periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges and wherein
- said tiles are engaged together to fill space,
- said plurality comprises a combination of singly-concave polygons and doubly-concave polygons, each said polygon having mirror-symmetry and m greater than 4, wherein
- said singly concave polygons are composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said doubly-concave polygons are composed of two sets of contiguous edges, each said set of edges having concave interior angles, where said sets are joined to each other by additional edges which meet said sets of edges at convex interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 9. A family of non-periodic space structure configurations for design applications, the combination comprising:
- a plurality of substantially planar, even-sided polygonal tiles having a thickness and arranged in layers, each said tile having m edges which meet at m vertices at interior angles defined by the angles between adjacent said edges on the interior of said tile and where said edges are composed of m/2 pairs of parallel edges and wherein
- said tiles are engaged together to fill space,
- said plurality comprises a combination of singly-concave polygons and doubly-concave polygons, each said polygon having m greater than 4 and at least one said polygon being without mirror-symmetry, wherein
- said singly concave polygons are composed of two sets of contiguous edges, first said set having convex interior angles and second said set having concave interior angles,
- said doubly-concave polygons are composed of two sets of contiguous edges, each said set of edges having concave interior angles, where said sets are joined to each other by additional edges which meet said sets of edges at convex interior angles,
- said edges are substantially equal in length and said interior angles are whole number multiples of 360.degree./p, and
- where p is any number greater than 4.
- 10. Configurations, as per claims 1, 2, 3, 4, 5, 6, 7, 8 or 9 wherein:
- said tiles are upright or inclined prisms of any height, wherein said prisms make space-filling 3-dimensional polyhedral blocks.
- 11. Space structure configurations as per claim 10, wherein
- the said polyhedral blocks are hollow spaces usable for architectural and other functions.
- 12. Configurations as per claims 1, 2, 3, 4, 5, 6, 7, 8, or 9 wherein
- the said tiles are modified by dissections of said tiles into two or more parts.
- 13. Configurations as per claims 1, 2, 3, 4, 5, 6, 7, 8, or 9 wherein
- the said tiles in the said plurality are modified by replacing the edges of the tiles by curved line segments such that the area of the tile remains unchanged.
- 14. Configurations as per claims in 1, 2, 3, 4, 5, 6, 7, 8, or 9 wherein
- the said tiles in the said plurality are modified by elongating or shrinking the tile in one or more directions.
- 15. Configurations as per claims 1, 2, 3, 4, 5, 6, 7, 8, or 9 wherein
- the said tiles are modified by decomposition of said tiles into rhombii with interior angles which are also integer multiples of A, and
- where the sum of the interior angles of each rhombus equals p multiplied by A.
- 16. Configurations as per claims 1, 2, 3, 4, 5, 6, 7, 8, or 9 wherein
- the said tiles are modified by decomposition into convex and non-convex polygonal tiles with interior angles which are also integer multiples of A.
- 17. Configurations as per claims 2, 4, 5, 8 or 9 selected from the group comprising:
- configurations which are periodic in one direction and non-periodic in another direction,
- configurations which have an overall p-fold symmetry around a center,
- configurations which have no translational symmetry in any direction.
- 18. Configurations as per claims 1 or 2, selected from the group comprising:
- configurations wherein all said singly-concave polygons are identical,
- configurations wherein said singly-concave polygons have the same number of sides but different said interior angles,
- configurations wherein said singly-concave polygons have different number of sides.
- 19. Configurations as per claim 3, 4 or 5 selected from the group comprising the following:
- configurations wherein said convex zonogons are rhombii,
- Configurations wherein said convex zonogons have the same number of sides, each with m greater than four
- configurations wherein said convex zonogons have different number of sides
- configurations wherein said singly-concave polygons have the same number of sides,
- configurations wherein said singly-concave polygons have different number of sides.
- 20. Configurations per as claims 6, 7, 8 or 9 selected from the group comprising the following:
- configurations wherein said singly-concave polygons have the same number of sides,
- configurations wherein said singly-concave polygons have different number of sides,
- configurations wherein said doubly-concave polygons have the same number of sides,
- configurations wherein said doubly-concave polygons have different number of sides.
- 21. Configurations as per claim 13, wherein
- the said rhombii are dissected into two parts of equal area by a line joining the opposite pairs of vertices or edges, wherein
- the said line is straight or curved,
- the said parts are a pair of isoceles triangles with apex angles equal to the interior face angles of the rhombii,
- wherein p is greater than 5.
- 22. Configurations as per claim 13, wherein
- the said rhombii are dissected into four parts of equal area by a pair of lines joining the opposite pairs of vertices or edges, wherein
- the said lines are straight or curved, and
- the said four parts are right-angled triangles.
Parent Case Info
This application is a Continuation-in-Part of the application Ser. No. 07/282,991, filed Dec. 2, 1988, now U.S. Pat. No. 5,007,220, which is a Continuation of Ser. No. 07/036,395, filed Apr. 9, 1987, now patented and entitled `Non-periodic and Periodic Layered Space Frames Havign Prismatic Nodes` (hereafter referred to as the "parent" application).
US Referenced Citations (8)
Non-Patent Literature Citations (1)
Entry |
Lalvani, Haresh; Non-Periodic Space Structures; Jan. 1987. |
Continuations (1)
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36395 |
Apr 1987 |
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Continuation in Parts (1)
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282991 |
Dec 1988 |
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