Claims
- 1. A triad shock isolator for simultaneously isolating shocks and for supporting a static load in an axial offset compression mode comprising:
a first elastomer leg, said first leg having a first support surface on a first end and a second support surface on a second end with said first leg angularly positioned therebetween, said first support surface laterally positioned from said second support surface so that a force normal to said first support surface is cantileverly transmitted to said second support surface through said leg; a second elastomer leg, said second leg having a first support surface on a first end and a second support surface on a second end with said second leg angularly positioned therebetween, said first support surface on said second leg laterally positioned from said second support surface on said second leg so that a force normal to said first support surface on said first leg is cantileverly transmitted to said second support surface on said second leg; and a third elastomer leg, said third leg having a first support surface on a first end and a second support surface on a second end with said third leg angularly positioned therebetween, said first support surface on said third leg laterally positioned from said second support surface on said third leg so that a force normal to said first support surface on said first support surface on said third leg is cantileverly transmitted to said second support surface on said third leg so that when said first support surface, said second support surface and said third support surface are placed proximate one another said first leg, said second leg and said third leg extend angularly outwardly from their respective first support surfaces to thereby simultaneously provide axial offset support and shock and vibration attenuation.
- 2. The shock isolator of claim 1 wherein each of the first and second support surfaces comprise parallel, spaced-apart surfaces.
- 3. The shock isolator of claim 2 wherein each of the first and second support surfaces are bonded to a mounting member.
- 4. The shock isolator of claim 3 wherein each of the first support surfaces are bonded to a first rigid mounting member and each of the second support surfaces are bonded to a second mounting member.
- 5. The shock isolator of claim 1 wherein said first elastomer leg, said second elastomer leg and said third elastomer leg comprise one-piece shock isolator.
- 6. The shock isolator of claim 1 including a fourth elastomer leg, a fifth elastomer leg and a sixth elastomer leg each having a mounting surface secured to at least two of said first mounting surfaces of said first elastomer leg, said second elastomer leg and said third elastomer leg with each of said fourth elastomer leg, said fifth elastomer leg and said third elastomer leg extending outwardly from their respective first mounting surfaces.
- 7. The shock isolator of claim 6 wherein each of said first elastomer leg, said second elastomer leg, said third elastomer leg, said fourth elastomer leg and said fifth elastomer leg extend outwardly in a different radial direction.
- 8. The shock isolator of claim 7 wherein each of said first elastomer leg, said second elastomer leg, said third elastomer leg, said fourth elastomer leg, said fifth elastomer leg and said sixth elastomer leg are equally angularly spaced from each other.
- 9. The shock isolator of claim 8 wherein said first elastomer leg, said second elastomer leg and said third elastomer leg first support surfaces extend over an arc of 120 degrees so that when each of said first support surface of said first elastomer leg, said second elastomer leg and said third elastomer leg provide 360 degree support
- 10. A shock isolation system comprising:
a housing; a first elastomer triad, said elastomer triad normally supporting said housing in a fixed position in response to static forces said elastomer triad having cantilevered legs so that a shock to the housing results in the cantilevered legs of said triad providing shock isolation to the housing while statically supporting the housing.
- 11. The shock isolation system of claim 10 including:
a second elastomer triad, said second elastomer triad affixed to said first elastomer triad so that said first elastomer triad and said second elastomer triad provide serial supporting to said housing to maintain said housing in a fixed position in response to static forces with said first elastomer triad and said second elastomer triad providing serial shock isolation to the housing.
- 12. A method of isolating a shock or a vibration while providing compressive static support comprising:
forming a first elastomer triad having a top mounting surface and a bottom mounting surface with said top mounting surface laterally spaced inwardly from said bottom mounting surface to provide cantileverly support therebetween; and securing the top mounting surface to a first member and securing the bottom mounting surface to another member to thereby provide shock isolation between first member and said other member.
- 13. The method of claim 12 including the step of securing the first elastomer triad bottom mounting surface to a bottom member of a second triad to provide end to end support therebetween.
- 14. A shock isolator for simultaneously isolating shocks and for supporting a static load comprising:
an elastomer material, said elastomer material having a set of side walls forming a tetrahedron isolator with a cavity therein, said tetrahedron shock isolator having a central axis and an apex end for forming a first support surface and a base end for forming a second support surface with said first support surface and said second support surface laterally positioned with respect to each other so that a line parallel to said axis and extending through said first support surface does not extend through said second support surface and vice versa.
- 15. The shock isolator of claim 14 wherein a portion of said apex end first support surface extends parallel to said second support surface.
- 16. The shock isolator of claim 14 including a second tetrahedron isolator with a cavity therein, said second tetrahedron isolator having an apex end and a base end with said apex end of said second tetrahedron isolator secured to said apex end of said first tetrahedron isolator to thereby provide serially axial support
- 17. The shock isolator of claim 16 wherein the second tetrahedron isolator is identical to said first tetrahedron isolator.
- 18. The shock isolator of claim 14 wherein the first tetrahedron isolator and the second tetrahedron isolator comprise one-piece.
- 19. The shock isolator of claim 16 wherein the base support surface of said first tetrahedron isolator and said second tetrahedron isolator are substantially parallel to each other so that a compressive force on said base support surface causes said set of sidewall to bulge outwardly in response to compressive forces on either of said base support surface or said apex support surface.
- 20. The shock isolator of claim 14 wherein the cavity in said first tetrahedron isolator comprises a tetrahedron shaped cavity.
- 21. The shock isolator of claim 16 wherein the cavity in said second tetrahedron isolator comprises a tetrahedron shaped cavity.
- 22. The shock isolator of claim 20 wherein said tetrahedron shaped cavity includes a damping material.
- 23. The shock isolator of claim 16 wherein the tetrahedron shaped cavity of said first tetrahedron isolator is isolated from the tetrahedron shaped cavity of said second tetrahedron isolator.
- 24. The method of making a shock isolator to simultaneously provide compression support and shock isolation comprising:
molding an elastomer into a shape of a first tetrahedron having an internal cavity and a second tetrahedron having an internal cavity with an apex end of said first tetrahedron integrally molded to said apex end of said second tetrahedron to form a one-piece shock isolator.
- 25. The method of claim 24 including the step of rotationally positioning the first tetrahedron with respect to the second tetrahedron so that an apex of said base member of said first tetrahedron is rotationally positioned with respect to an apex of said base member of said second tetrahedron.
- 26. The method of claim 24 including the step of placing a damping material in a cavity or the elastomeric shock cell.
- 27. The method of claim 29 wherein the step of placing a damping material comprises placing particles of tungsten carbide in the cavity of the elastomeric shock cells.
DESCRIPTION OF THE PRIOR ART
[0001] U.S. Pat. No. 4,059,254 shows an energy absorbing unit comprising an elastomeric member arranged in a trapezoidal configuration. A sliding piston is incorporated in the unit which has limited displacement due to a pin that slides within a elongated slot.