Claims
- 1. A flexible pad for supporting a load above an underlying surface, the pad having an upper surface a lower surface, a first horizontal axis, a second horizontal axis perpendicular to the first axis, and a vertical axis,
- a. said pad being characterized in that it is thermoformed from a workpiece of a closed cell foam material which comprises a plurality of closed cells, having an initial cellular configuration, said cells being elongated from said initial configuration in a direction of elongation and being compressed from said initial configuration in a direction substantially perpendicular to the direction of elongation of said cells, with this being accomplished by application of compressive forces against upper and lower surfaces of said workpiece;
- b. said upper surface being formed with a plurality of elongate upper ribs and valleys with each rib having first and second upper side surface portions which slant upwardly in directions of slant toward one another to a peak area of said rib, and with each valley being defined by the first upper side surface portion of one rib and by the second upper side surface portion of another rib adjacent to said one rib and meeting the side surface portion of said one rib at an upper valley line area, with cells beneath to said first and second upper side surface portions being elongated generally parallel to said directions of slant of said first and second upper side surface portions;
- c. the first and second side surface portions of each rib being characterized in that first and second planes occupied by the first and second side surface portions of each rib meet at a pad angle which is between the 60 degrees and 130 degrees;
- d. said pad being further characterized in that there is an upper peak to peak distance which is measured from a center line of one peak area of one rib to a center line of another peak area of said other rib which is adjacent to said one rib, each rib having an upper rib depth dimension which is a vertical distance between a peak area of he upper rib to the valley line area of an adjacent upper valley, with a ratio of said upper peak to peak distance to said upper rib depth dimension being between about 0.9 and 4.3.
- 2. The pad as recited in claim 1 wherein
- a. said lower surface has a plurality of lower ribs and lower valleys, with each lower rib having first and second lower side surface portions which slant downwardly toward one another in directions of slant to a lower peak area of said lower rib, and with each lower valley being formed by the first lower side surface portion of one lower rib and the second lower side surface portion of another lower rib adjacent to said one lower rib and meeting said one lower rib at a lower valley line area, with cells above said lower side surface portions being elongated generally parallel to said directions of slant of said first and second lower side surface portions,
- b. the first and second lower surface portions of each lower rib being characterized in that first and second planes occupied by the first and second surface portions of each lower rib meet at a lower pad angle which is between about 60 degrees and 130 degrees;
- c. said pad being further characterized in that there is a lower peak to peak distance which is measured to a center line of one peak area of said one lower rib to a center line of another peak area of said other lower rib which is adjacent to said one lower rib, each lower rib having a lower rib depth dimension which is a vertical distance between a lower peak area of the lower rib to the valley line area of an adjacent lower valley, with a ratio of said lower peak to peak distance to said lower rib depth dimension being between about 0.9 and 4.3.
- 3. The pad as recited in claim 2 wherein each of the upper pad angles and each of the lower pad angles is between about 65 and 105 degrees.
- 4. The pad as recited in claim 3 wherein the ratio of the upper peak to peak distance to the upper rib depth dimension and also the ratio of lower peak to peak distance to the lower rib depth dimension are between about 1.3 and 2.7.
- 5. The pad as recited in claim 3, wherein the lower pad angle and the upper pad angle are each between about 70 and 90 degrees.
- 6. The pad as recited in claim 5, wherein the ratio of the upper peak to peak distance to the upper rib depth dimension and the ratio of the lower peak to peak distance to the lower rib depth dimension are each between about 1.4 and 2.5.
- 7. The pad as recited in claim 1, wherein said pad angle is between about 65 and 105 degrees.
- 8. The pad as recited in claim 7, wherein the ratio of peak to peak distance to the rib depth dimension is between about 1.3 and 2.7.
- 9. The pad as recited in claim 7, wherein the rib angle is between about 70 and 90 degrees.
- 10. The pad as recited in claim 9, wherein the ratio of the peak to peak distance to the rib depth dimension is between about 1.4 and 2.5.
- 11. The pad as recited in claim 1, wherein said lower surface is substantially planar, and said pad has a total depth dimension which is equal to a distance from a plane passing through said peak areas to said lower surface, with a ratio of said rib depth dimension to said total thickness dimension being between about 0.3 and 0.8.
- 12. The pad as recited in claim 11, wherein the ratio of the rib depth dimension to the total thickness dimension is between about 0.4 and 0.7.
- 13. The pad as recited in claim 11, wherein the pad angle is between about 65 and 105 degrees.
- 14. The pad as recited in claim 13, wherein the ratio of the peak to peak distance to said rib depth dimension is between about 1.3 and 2.7.
- 15. The pad as recited in claim 12, wherein said rib dimension is between about 0.2 and 1.1 inches.
- 16. The pad as recited in claim 15, wherein the ratio of peak to peak distance to the rib depth dimension is between about 1.4 and 2.5.
- 17. A flexible pad for supporting a load above an underlying surface, the pad having an upper surface, a lower surface, a first horizontal axis a second horizontal axis perpendicular to the first axis, and a vertical axis,
- a. each of said upper and lower surfaces being formed with a plurality of upper and lower ribs respectively, and with upper and lower valleys, respectively, and with the upper ribs being offset from the lower ribs in a manner that the upper ribs are vertically aligned with the lower valleys and the lower ribs are vertically aligned with the upper valleys, each of the upper ribs having upper side surface portions which slant in directions of upward slant upwardly toward one another to an upper peak area of said upper rib, each of said lower ribs having lower side surface portions which slant downwardly toward one another in directions of downward slant to a lower peak area of said lower rib, each upper valley being formed by adjacent side surface portions of adjacent upper ribs which meet a related upper valley line area, each lower valley being formed by adjacent side surface portions of adjacent lower ribs which meet at a related lower valley line area;
- b. each upper side surface portion being generally aligned with an adjacent lower side surface portion to form a related wall segment of said pad with each wall segment having a material thickness dimension between its upper and lower side surface portions, each wall segment joining at upper and lower edges thereof to upper and lower edges, respectively, of adjacent wall segments, with each wall segment having an alignment plane centered between the upper and lower surfaces defining that wall segment, the alignment planes of adjacent wall segments meeting each other at a pad angle;
- c. said pad having a total thickness dimension which is equal to a vertical distance between a horizontal plane defined by the upper peak areas and a horizontal plane defined by the lower peak areas;
- d. said pad having a peak o peak distance which is equal to a distance between center lines of adjacent upper peak areas or between center lines of adjacent lower peak areas;
- e. said pad having a rib depth dimension which is equal to a vertical distance between the plane defined by the upper rib peak areas to a plane defined by the upper valley line areas or a vertical distance between the plane defined by the lower rib peak areas and a plane defined by the lower valley line areas;
- f. said pad having a total unit cross-sectional area which is equal to a value obtained by multiplying the peak to peak dimension times the total depth dimension, and having a normalized unit area equal to a total cross-sectional area of a unit of the pad measured from a vertical plane passing through the center line of the upper peak area to a vertical plane passing through the center line of an adjacent peak area, along a vertical plane perpendicular to the center lines of the peak areas of the said one peak and said adjacent peak, the pad having a normalized area ratio which is the ratio between the normalized unit area to the total unit cross-sectional area;
- g. said pad being characterized in that it is thermoformed from a workpiece of closed cell polymer foam material having an initial cellular configuration, and having an initial forming axis along which said workpiece is stretched by thermoforming, said pad having a material elongation axis which follows a zig zag line generally parallel to the directions of upward slant of the upper side surface portion and also parallel to the directions of downward slant of said lower side surface portions and which is generally aligned with said forming axis, said pad having a material elongation ratio which is the ratio of the length of the material elongation axis extending through an area of the pad having the ribs and valleys to the length of the forming axis of the workpiece through an area of the workpiece formed with the ribs and valleys, said pad being characterized in that the cells of the pad are elongated in directions of elongation generally parallel to said material elongation axis, and the cells are compressed in directions substantially perpendicular to said material elongation axis, with compression and elongation of the cells being accomplished by application of compressive forces against upper and lower surface of said workpiece.
- 18. The pad as recited in claim 17, wherein said pad angle is between about 60 to 130 degrees.
- 19. The pad as recited in claim 18, wherein said pad angle is between about 65 to 105 degrees.
- 20. The pad as recited in claim 18, Wherein said pad angle is between about 70 and 90 degrees.
- 21. The pad as recited in claim 17, wherein the ratio of the material thickness dimension to the total thickness dimension is between about 0.2 and 0.7.
- 22. The pad as recited in claim 21 wherein the ratio of the material thickness dimension to the total thickness dimension is between about 0.3 and 0.6.
- 23. The pad as recited in claim 21, wherein the ratio of the material thickness dimension to the total thickness dimension is about 0.35 and 0.5.
- 24. The pad as recited in claim 17, wherein the ratio of the peak to peak dimension to the rib depth dimension is between about 0.9 and 4.3.
- 25. The pad as recited in claim 24, wherein the ratio of the peak to peak dimension to the rib depth dimension is between about 1.3 and 2.7.
- 26. The pad as recited in claim 24, wherein the ratio of the peak to peak dimension to the rib depth dimension is between about 1.4 and 2.5.
- 27. The pad as recited in claim 17, wherein the normalized area ratio is between about 0.3 and 0.8.
- 28. The pad as recited in claim 27, wherein the normalized area ratio is between about 0.5 and 0.75.
- 29. The pad as recited in claim 27, wherein the normalized ratio is between about 0.6 and 0.7.
- 30. The pad as recited in claim 17 wherein the material elongation ratio is between about 1.05 and 2.2.
- 31. The pad as recited in claim 30, wherein the material elongation ratio is between about 1.1 and 1.6.
- 32. The pad as recited in claim 30, wherein the material elongation ratio is about 1.3.
- 33. The pad as recited in claim 17, wherein
- a. the pad angle is between about 60 degrees and 130 degrees;
- b. the ratio of the material thickness dimension to the total thickness dimension is about 0.2 and 0.7.
- 34. The pad as recited in claim 33, wherein
- a. the pad angle is between about 65 and 105 degrees;
- b. the ratio of the material thickness dimension to the total thickness dimension is about 0.3 and 0.6.
- 35. The pad as recited in claim 33, wherein
- a. the pad angle is between about 70 and 90 degrees;
- b. the ratio of the material thickness dimension to the total thickness dimension is about 0.35 and 0.5.
- 36. The pad as recited in claim 17, wherein
- a. the ratio of the peak to peak dimension to the rib depth dimension is about 0.9 and 4.3;
- b. the normalized area ratio is between about 0.3 and 0.8;
- c. the material elongation ratio is between about 1.05 and 2.2.
- 37. The pad as recited in claim 36, wherein
- a. the ratio of the peak to peak dimension to the rib depth dimension is about 1.3 and 2.7;
- b. the normalized area ratio is between about 0.5 and 0.75;
- c. the material elongation ratio is between about 1.1 and 1.6.
- 38. The pad as recited in claim 36, wherein
- a. the ratio of the peak to peak dimension to the rib depth dimension is between about 1.4 and 2.5;
- b. the normalized area ratio is between about 0.6 and 0.7;
- c. the material elongation ratio is about 1.3.
- 39. The pad as recited in claim 17, wherein
- a. the pad angle is between about 60 to 130 degrees;
- b. the ratio of the material thickness dimension to the total thickness dimension is between about 0.2 and 0.7;
- c. the ratio of the peak to peak dimension to the rib depth dimension is between about 0.9 and 4.3;
- d. the normalized area ratio is between about 0.3 and 0.8;
- e. the material elongation ratio is between about 1.05 and 2.2.
- 40. The pad as recited in claim 39, wherein
- a. the pad angle is between about 65 and 105 degrees;
- b. the ratio of the material thickness dimension to the total thickness dimension is between about 0.3 and 0.6;
- c. the ratio of the peak to peak dimension to the rib depth dimension is between about 1.3 and 2.7;
- d. the normalized area ratio is about 0.5 and 0.75;
- e. the material elongation ratio is between about 1.1 and 1.6.
- 41. The pad as recited in claim 39, wherein
- a. the pad angle is between about 70 and 90 degrees;
- b. the ratio of the material thickness dimension to the total thickness dimension is about 0.35 and 0.5;
- c. the ratio of the peak to peak dimension to the rib depth dimension is about 1.4 and 2.5;
- d. the normalized area ratio is between about 0.6 and 0.7;
- e. the material elongation ratio is about 1.3.
- 42. A flexible pad for supporting a load above an underlying surface, the pad having an upper surface a lower surface, a first horizontal axis a second horizontal axis perpendicular to the first axis and a vertical axis;
- a. said upper and lower surfaces being formed with a plurality of upper and lower outwardly extending protrusions, respectively, and with upper and lower recesses positioned between their respective protrusions, the upper protrusions being horizontally offset relative to the lower protrusions, in a manner that the upper protrusions are vertically aligned with the lower recesses, and the lower protrusions are vertically aligned with the upper recesses, each of said upper protrusions having an upper side surface which slopes upwardly and convergently toward an upper peak area, and each of said lower protrusions having a lower side surface which slopes downwardly and convergently toward a related lower peak area;
- b. said pad being characterized in that it is thermoformed from a workpiece of a closed cell foam material which comprises a plurality of closed cells having an initial cellular configuration, in a direction generally perpendicular to adjacent surface portions of the upper and lower surface, and with the cells being elongated by being compressed from said initial configuration in a direction generally parallel to adjacent surface areas of the upper and lower surfaces with axis of elongation of the cells being generally parallel to directions in which the material is stretched during a thermoforming operation by which the pad is made;
- c. said pad has a total thickness dimension which is equal to a vertical distance between a horizontal plane defined by the upper peak areas and a horizontal plane defined by the lower peak areas;
- d. said pad has a peak to peak distance which is equal to a distance between center locations of adjacent upper peak areas or between center locations of adjacent lower peak areas;
- e. said pad has a total unit cross-sectional area which is equal to a value obtained by multiplying the peak to peak dimension times the total depth dimension, and having a normalized unit area equal to a total cross-sectional area if a unit of the pad measured from a first vertical line passing through the center location of one peak area to a second vertical line of a center location of an adjacent peak area, with the cross-sectional area being taken on a plane defined by said first and second vertical lines, the pad having a normalized area ratio which is the ratio between the normalized unit area to the total unit cross-sectional area.
- 43. The pad as recited in claim 42, wherein said normalized area ratio is between about 0.3 and 0.8.
- 44. The pad as recited in claim 43, wherein said normalized area ratio is between about 0.5 and 0.75.
- 45. The pad as recited in claim 42, wherein said upper side surfaces which define said upper protrusions slant upwardly relative to said vertical axis at a pad angle between about 60 and 130 degrees.
- 46. The pad as recited in claim 45, wherein said pad angle is between about 65 and 105 degrees.
- 47. The pad as recited in claim 42, wherein the ratio of said total thickness dimension to said peak to peak spacing distance is between about 0.4 and 2.
- 48. The pad as recited in claim 47, wherein said ratio of the total thickness dimension to the peak to peak spacing distance is between about 2/3 and 4/3.
- 49. The pad as recited in claim 42, wherein
- a. the normalized area ratio is between about 0.3 and 0.8.
- b. said upper side surfaces which define said upper protrusions slant upwardly relative to said vertical axis at a pad angle between about 60 and 130;
- c. peak areas of adjacent protrusions have a peak to peak spacing distance, with a ratio of said total thickness dimension to said peak to peak spacing distance being between about 0.4 and 2.
- 50. The pad as recited in claim 49, wherein
- a. said normalized area ratio is between about 0.5 and 0.75;
- b. said pad angle is about 65 and 105 degrees;
- c. said ratio of the total thickness dimension to the peak to peak spacing distance is between about 2/3 and 4/3.
- 51. A flexible pad for supporting a load above an underlying surface, the pad having an upper surface, a lower surface, a first horizontal axis a second horizontal axis perpendicular to the first axis, and a vertical axis,
- a. said upper surface being formed with a plurality of upper upwardly extending protrusions, separated by upper recesses positioned between their respective protrusions, each of said upper protrusions having an upper side surface which slopes upwardly and convergently toward an upper peak area, opposite surface portions of each of said side surfaces extending upwardly toward one another at a pad angle between about 10 degrees and 130 degrees;
- b. said pad being characterized in that it is thermoformed from a workpiece of a closed cell foam material which comprises a plurality of closed cells having an initial cellular configuration, said cells compressed by thermoforming in a direction generally perpendicular to adjacent upper surface portions of the upper surface, and with the cells being elongated in a direction generally parallel to adjacent surface portions of the upper and lower surfaces with axes of elongation of the cells being generally parallel to directions in which the material is stretched during said thermoforming by which the pad is made.
- 52. The pad as recited in claim 51, wherein said pad angle is between about 30 degrees and 90 degrees.
- 53. The pad as recited in claim 31, wherein said pad has a total thickness dimension which is measured from a plane occupied by said upper peak areas to a lower plane defined by lower most portions of said lower surface of the pad, said pad also having a peak to peak dimension which is equal to a distance between center locations of adjacent peak areas of adjacent upper protrusions, said pad having a total thickness dimension to peak to peak ratio of between about 0.4 and 2.
- 54. The pad as recited in claim 52, wherein said total thickness dimension to peak to peak ratio is about 2 to 3 and 4 to 3.
- 55. The pad as recited in claim 51, wherein said pad has a material thickness dimension which is equal to a minimum distance between said upper and lower surfaces, said pad also having a total thickness dimension which is measured from an upper plane defined by said upper peak areas to a lower plane defined by lowermost portions of said lower surface, said pad having a material thickness dimension to total thickness dimension ratio which is between about 0.2 and 0.7.
- 56. The pad as recited in claim 55, wherein the ratio of the material thickness dimension to the total thickness dimension is between about 0.3 and 0.6.
- 57. The pad as recited in claim 55, wherein said ratio of the material thickness dimension to the total thickness dimension is between about 0.35 and 0.5.
- 58. The pad as recited in claim 51, wherein
- a. said pad has a total thickness dimension which is measured from a plane occupied by said upper peak areas to a lower plane defined by lower most portions of said lower surface of the pad, said pad also having a peak to peak dimension which is equal to a distance between center locations of adjacent peak areas of adjacent upper protrusions, said pad having a total thickness dimension to peak to peak ratio of between about 0.4 and 2;
- b. said pad has a material thickness dimension which is equal to a minimum distance between said upper and lower surfaces, said pad also having a total thickness dimension which is measured from an upper plane defined by said upper peak areas to a lower plane defined by lowermost portions of said lower surface, said pad having a material thickness dimension to total thickness dimension ratio which is between about 0.2 and 0.7.
- 59. The pad as recited in claim 58, wherein
- a. said pad angle is between about 30 degrees and 90 degrees;
- b. said total thickness dimension to peak to peak ratio is between about 2 to 3 and 4 to 3;
- c. the ratio of the material thickness dimension to the total thickness dimension is between about 0.3 and 0.6.
- 60. The pad as recited in claim 51, wherein said lower surface is formed with a plurality of lower downwardly extending protrusions, separated by lower recesses positioned between their respective lower protrusions, each of said lower protrusions having a lower side surface which slopes downwardly and convergently toward a lower peak area, opposite surface portions of each of said side surfaces extending downwardly toward one another at a pad angle between about 10 degrees and 130 degrees.
- 61. The pad as recited in claim 60, wherein the pad angles are between about 30 degrees and 90 degrees.
- 62. The pad as recited in claim 60, wherein said pad has a total thickness dimension which is measured from a plane occupied by said upper peak areas to a lower plane defined by the lower peak areas, said pad also having a peak to peak dimension which is equal to a distance between center locations of adjacent peak areas of adjacent upper protrusions or equal to a distance between center locations of adjacent peak areas of lower protrusions, said pad having a total thickness dimension to peak-to-peak ratio of between about 0.4 and 2.
- 63. The pad as recited in claim 62, wherein said total thickness dimension to peak-to-peak ratio is between about 2 to 3 and 4 to 3.
- 64. The pad as recited in claim 60, wherein said pad has a material thickness dimension which is equal to a minimum distance between said upper and lower surfaces, said pad also having a total thickness dimension which is measured from an upper plane defined by said upper peak areas to a lower plane defined by the lower peak areas, said pad having a material thickness dimension to total thickness dimension ratio which is between about 0.2 and 0.7.
- 65. The pad as recited in claim 64, wherein the ratio of the material thickness dimension to the total thickness dimension is between about 0.3 to 0.6.
- 66. The pad as recited in claim 64, wherein the ratio of the material thickness dimension to the total thickness dimension is between about 0.35 and 0.5.
- 67. The pad as recited in claim 60, wherein
- a. said pad has a total thickness dimension which is measured from a plane occupied by said upper peak areas to a lower plane defined by the lower peak areas, said pad also having a peak-to-peak dimension which is equal to a distance between center locations of adjacent peak areas of adjacent upper protrusions or equal to a distance between center locations of adjacent peak areas of adjacent lower protrusions, said pad having a total thickness dimension to peak-to-peak ratio of between about 0.4 and 2;
- b. said pad has a material thickness dimension which is equal to a minimum distance between said upper and lower surfaces, said pad also having a total thickness dimension which is measured from an upper plane defined by said upper peak areas to a lower plane defined by lowermost portions of said lower surface, said pad having a material thickness dimension to total thickness dimension ratio which is between about 0.2 and 0.7.
- 68. The pad as recited in claim 67, wherein
- a. the pad angles are between about 30 degrees and 90 degrees;
- b. said total thickness dimension to peak-to-eak ratio is between about 2 to 3 and 4 to 3;
- c. the ratio of the material thickness dimension to the total thickness dimension is between about 0.3 to 0.6.
Parent Case Info
This is a continuation-in-part of application Ser. No. 904054, now abandoned.
US Referenced Citations (4)
Foreign Referenced Citations (5)
Number |
Date |
Country |
241050 |
Jun 1965 |
ATX |
526407 |
May 1955 |
ITX |
307755 |
Mar 1929 |
GBX |
434550 |
Jul 1935 |
GBX |
804093 |
Nov 1958 |
GBX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
904054 |
Sep 1986 |
|