Claims
- 1. A stress steering structure comprising:
- a substance having a first set of voids, each member of said first set of voids encompassing one of a first set of predetermined points within said substance,
- said first set of predetermined points defining a first matrix wherein each of said points in said first matrix is spaced an equal distance from twelve and only twelve adjacent ones of said points in said first matrix,
- the volume of said first set of voids being substantially between approximately one percent and approximately fifty percent of the volume of said substance.
- 2. The stress steering structure of claim 1 wherein:
- substantially all of said first matrix points are encompassed by a separate member of said first set of voids.
- 3. The stress steering structure of claim 2 wherein:
- each member of said first set of voids is substantially cubic.
- 4. The stress steering structure of claim 3 wherein:
- the volume of said first set of voids is approximately 6.25 percent.
- 5. The stress steering structure of claim 3 wherein:
- said first set of voids are filled with a material that substantially transmits no force.
- 6. The stress steering structure of claim 5 having a predetermined load bearing surface wherein:
- each of said cubic voids is oriented so that one of its corner to corner axes is substantially perpendicular to said load bearing surface.
- 7. The stress steering structure of claim 1 wherein:
- said first set of points define the four-edge vertices of a closely packed set of rhombic dodecahedra.
- 8. The stress steering structure of claim 7 wherein said voids are defined by voids in a closely packed set of truncated rhombic docecahedra.
- 9. The stress steering structure of claim 8 wherein:
- the volume of said first set of voids is approximately 6.25 percent.
- 10. The stress steering structure of claim 8 wherein:
- said first set of voids are filled with a material that substantially transmits no force.
- 11. The stress steering structure of claim 10 having a predetermined load bearing surface wherein:
- each of said cubic voids is oriented so that one of its corner to corner axes is substantially perpendicular to said load bearing surface.
- 12. The stress steering structure of claim 1 wherein said voids are defined by voids in a closely packed set of truncated rhombic docecahedra.
- 13. The stress steering structure of claim 1 wherein:
- the volume of said first set of voids is approximately 6.25 percent.
- 14. The stress steering structure of claim 1 further comprising:
- a second set of voids,
- each member of said second set of voids encompassing one of a subset of points in a second set of predetermined points within said substance,
- said second set of predetermined points defining a second matrix wherein each of said points in said second matrix is spaced an equal distance from twelve and only twelve adjacent ones of said points in said second matrix,
- the distance between adjacent points in said second matrix being the same as the distance between the adjacent points of said first matrix,
- said subset of points being one-fourth of said second set of points, the members of said subset being equally spaced from one another,
- each member of said second set of voids being in communication with adjacent members of said first set of voids.
- 15. The stress steering structure of claim 14 wherein:
- said first and second sets of voids constitutes a continuous void in that each member of said first and second sets are in communication with adjacent voids.
- 16. The stress steering structure of claim 14 wherein:
- said first and second sets of voids are filled with a material that substantially transmits no force.
- 17. The stress steering structure of claim 14 wherein:
- said second set of points define the center points of a closely packed set of rhombic dodecahedra.
- 18. The stress steering structure of claim 14 wherein:
- each member of said first set of voids is substantially cubic, and
- each member of said second set of voids is substantially a truncated rhombic do decahedron.
- 19. The stress steering structure of claim 14 wherein:
- substantially all of said second matrix points are encompassed by a separate member of said second set of voids.
- 20. The stress steering structure of claim 19 wherein:
- substantially all of said first matrix points are encompassed by a separate member of said first set of voids.
- 21. The stress steering structure of claim 20 wherein:
- each member of said first set of voids is substantially cubic, and
- each member of said second set of voids is substantially a truncated rhombic dodecahedron.
- 22. The stress steering structure of claim 18 having a predetermined load bearing surface wherein:
- each of said cubic voids is oriented so that one of its corner to corner axes is substantially perpendicular to said load bearing surface.
- 23. The stress steering structure of claim 21 having a predetermined load bearing surface wherein:
- each of said cubic voids is oriented so that one of its corner to corner axes is substantially perpendicular to said load bearing surface.
- 24. The stress steering structure of claim 8 wherein:
- the combined volume of said first set of voids and said second set of voids is approximately 30 percent.
- 25. A preform for manufacturing a stress steering structure having a predetermined set of voids, comprising:
- a three dimensional set of interconnected elements,
- each of said elements having a predetermined volume substantially equal to the volume of the void to be created in the stress steering structure manufactured with said preform,
- each of said elements encompassing a separate one of a set of predetermined points,
- each member of said set of points being spaced an equal distance from twelve and only twelve adjacent ones of said points in said set of points.
- 26. The preform of claim 25 wherein the material of said elements is substantially less stiff than is the material of the stress steering structure that is to be made employing said preform.
- 27. The preform of claim 25 wherein: the material of said set of elements can be volatilized upon manufacture of said stress steering structure using said preform.
- 28. The method manufacturing a stress steering structure in which the development of tension in response to loading is minimized, comprising the steps of:
- selecting an appropriate structural substance,
- creating a first set of voids within said substance, each member of said first set of voids encompassing one of a first set of predetermined points of a first three dimensional matrix,
- each of said points in said first matrix being spaced an equal distance from twelve and only twelve adjacent ones of said points in said first matrix.
- 29. The method of manufacturing a stress steering structure of claim 28 further comprising the step of:
- creating a second set of voids within said substance, each member of said second set of voids encompassing one of a predetermined subset of points in a second set of predetermined points,
- said second set of predetermined points defining a second three dimensional matrix wherein each of said points in said second matrix is spaced an equal distance from twelve and only twelve adjacent ones of said points in said second matrix,
- the distance between adjacent points in said second matrix being the same as the distance between the adjacent points of said first matrix,
- said points of said first and second matrices being separate from one another,
- said subset of points being one-fourth of said second set of points, the members of said subset being equally spaced from one another,
- each member of said second set of voids being in communication with adjacent members of said first set of voids.
- 30. The method of manufacturing a stress steering structure of claim 29 comprising the step of:
- filling said voids with a material that is substantially less stiff than is said substance of said structure.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. patent application Ser. No. 08/338,408 filed Nov. 14, 1994, now U.S. Pat. No. 5,615,528.
US Referenced Citations (23)
Foreign Referenced Citations (3)
Number |
Date |
Country |
816814 |
Aug 1937 |
FRX |
2135806 |
Dec 1972 |
FRX |
2155495 |
May 1973 |
FRX |
Non-Patent Literature Citations (3)
Entry |
PT Bouwtechniek, vol. 37, No. 3, Mar. 1982 Rijswijk NL, pp. 21-25 Pieter Huybers `Polyedrisch bouwen` -see Figs. 4, 23. |
Bauwelt, No. 50, Dec. 1968 Berlin DE. pp. 1601-1607, Walter Kuhn `Raumliches Bauen mit Elementen aus der Konkretisierung geometrischer Gitter` see p. 1602; FIG 3, see p. 1606; FIG. 6. |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
338408 |
Nov 1994 |
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