Claims
- 1. A spacer article comprising:
(i) a laminate having a through hole therein, the laminate comprising:
an upper substrate layer and a lower substrate layer; a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material layer; and (ii) a substrate component having a through hole, wherein the storage modulus of the substrate component is greater than that of the viscoelastic material in the vibration damping material layer, wherein one of (I) or (II) is true:
(I) the laminate is positioned within the through hole of the substrate component and is press fit into the substrate component; (II) the substrate component is positioned within the through hole of the laminate and is press fit into the laminate; wherein for both (I) and (II) the laminate has an upper surface and a lower surface and the substrate component has an upper surface and a lower surface, wherein the laminate has a thickness and the substrate component has a thickness, and the thickness and position of the laminate is such that the laminate upper surface ranges from being about 10 percent of the height of the substrate component below the upper surface of the substrate component to about 10 percent of the height of the substrate component above the substrate component and such that the laminate lower surface ranges from being about 10 percent of the height of the substrate component above the lower surface of the substrate component to about 10 percent of the height of the substrate component below the lower surface of the substrate component, and wherein the spacer article has a through hole.
- 2. The spacer article of claim 1 wherein the thickness and position of the laminate is such that the laminate upper surface ranges from being about 5 percent of the height of the substrate component below the upper surface of the substrate component to about 5 percent of the height of the substrate component above the substrate component and such that the laminate lower surface ranges from being about 5 percent of the height of the substrate component above the lower surface of the substrate component to about 5 percent of the height of the substrate component below the lower surface of the substrate component.
- 3. The spacer article of claim 1 wherein the thickness and position of the laminate is such that the laminate upper surface ranges from being about 2 percent of the height of the substrate component below the upper surface of the substrate component to about 2 percent of the height of the substrate component above the substrate component and such that the laminate lower surface ranges from being about 2 percent of the height of the substrate component above the lower surface of the substrate component to about 2 percent of the height of the substrate component below the lower surface of the substrate component.
- 4. The spacer article of claim 1 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 5. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the spacer article of claim 1, wherein the spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) a means for securing the rotatable storage article and spacer article onto the spindle.
- 6. A spacer article comprising:
(a) a first substrate having a through hole therein, the first substrate having an upper surface and a lower surface, an inner side and an outer side, wherein the inner side has a groove therein; (b) a second substrate having a through hole therein, the second substrate having an upper surface and a lower surface, an inner side and an outer side, wherein the outer side has a groove therein; wherein the second substrate is positioned within the through hole of the first substrate, wherein the inner side of the first substrate having a groove therein faces the outer side of the second substrate having a groove therein; wherein the first substrate and second substrate each have a height such that the height of the first substrate is within a range of about 90 percent of the height of the second substrate to about 110 percent of the height of the second substrate; (c) a vibration damping material component having a through hole therein, the vibration damping material component comprising a viscoelastic material, the vibration damping material component having a surface area, wherein the vibration damping material component is positioned within the through hole of the first substrate between the first substrate and the second substrate, wherein at least about 10 percent of the surface area of the vibration damping material component is in contact with the grooves; wherein the storage modulus of both the first substrate and the second substrate is greater than that of the viscoelastic material in the vibration damping material component; wherein the spacer article has a through hole therein; wherein the vibration damping material component is at least about 5 percent of the height of the first substrate beneath the upper surface of the first substrate and at least about 5 percent of the height of the first substrate above the lower surface of the first substrate; and wherein the vibration damping material component is at least about 5 percent of the height of the second substrate beneath the upper surface of the second substrate and at least about 5 percent of the height of the second substrate above the lower surface of the second substrate.
- 7. The spacer article of claim 6 wherein the vibration damping material component is at least about 10 percent of the height of the first substrate beneath the upper surface of the first substrate and at least about 10 percent of the height of the first substrate above the lower surface of the first substrate; and
wherein the vibration damping material component is at least about 10 percent of the height of the second substrate beneath the upper surface of the second substrate and at least about 10 percent of the height of the second substrate above the lower surface of the second substrate.
- 8. The spacer article of claim 6 wherein the vibration damping material component is at least about 15 percent of the height of the first substrate beneath the upper surface of the first substrate and at least about 15 percent of the height of the first substrate above the lower surface of the first substrate; and
wherein the vibration damping material component is at least about 15 percent of the height of the second substrate beneath the upper surface of the second substrate and at least about 15 percent of the height of the second substrate above the lower surface of the second substrate.
- 9. The spacer article of claim 6 wherein the first substrate, vibration damping material component, and second substrate are positioned such that the first substrate and second substrate are offset from each other.
- 10. The spacer article of claim 9 wherein the upper surface of the first substrate and the upper surface of the second substrate are offset from each other by about 0.025 to about 0.5 mm and wherein the lower surface of the first substrate and the lower surface of the second substrate are offset from each other by about 0.025 to about 0.5 mm.
- 11. The spacer article of claim 9 wherein the upper surface of the first substrate and the upper surface of the second substrate are offset from each other by about 0.025 to about 0.2 mm and wherein the lower surface of the first substrate and the lower surface of the second substrate are offset from each other by about 0.025 to about 0.2 mm.
- 12. The spacer article of claim 6 wherein the first substrate is substantially ring-shaped, the second substrate is substantially ring-shaped, and the vibration damping material is substantially ring-shaped.
- 13. The spacer article of claim 6 wherein the height of the first substrate is within a range of about 95 percent of the height of the second substrate to about 105 percent of the height of the second substrate.
- 14. The spacer article of claim 6 wherein the first substrate and second substrate are about the same height.
- 15. The spacer article of claim 6 wherein at least about 25 percent of the surface area of the vibration damping material component is in contact with the grooves.
- 16. The spacer article of claim 6 wherein at least about 50 percent of the surface area of the vibration damping material component is in contact with the grooves.
- 17. The spacer article of claim 6 wherein at least about 70 percent of the surface area of the vibration damping material component is in contact with the grooves.
- 18. The spacer article of claim 6 wherein the first substrate and second substrate are within at least about 0.254 mm of each and at least about 85% of the surface area of the vibration damping material component fits entirely within a cavity defined by the groove in the first substrate and the groove in the second substrate.
- 19. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) a spacer article, wherein the spacer article is positioned such that the spindle extends through a through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; wherein the spacer article comprises: a laminate having a through hole, the laminate comprising:
(i) an upper substrate layer and a lower substrate layer; (ii) a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material layer; wherein at least one deformation area is present in said spacer wherein a deformation area is an area of the spacer article wherein at least one substrate layer is plastically deformed such that the upper and lower substrate layers are touching or positioned closer to each other than in an area of the spacer article in which none of the substrates are plastically deformed; and wherein in at least 1 vibration damping material layer, within at least a 0.5% area of the deformation area, the vibration damping material is non-existent or, if present, has a mass that is 90% or less than the average mass of the vibration damping material layer of an equal area in an area of the spacer article which is not in a deformation area.
- 20. The disk drive assembly of claim 19 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 21. The disk drive assembly of claim 19 wherein the spacer article is substantially in the shape of a ring.
- 22. The disk drive assembly of claim 19 wherein at least one substrate layer selected from the group consisting of the first and second substrate layers has at least one of the following features selected from the group consisting of protrusions, recessions, bevels, indentations, ledges, coins, ridges and notches in at least one deformation area.
- 23. The disk drive assembly of claim 19 wherein at least one substrate layer has a variable thickness in a deformation area.
- 24. The disk drive assembly of claim 19 wherein the vibration damping material layer within at least a 0.5% area of the deformation area, is nonexistent or, if present, has a mass that is 50% or less than the average mass of the vibration damping material layer in an equal area of the spacer article which is not a deformation area.
- 25. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) a spacer article, wherein the spacer article is positioned such that the spindle extends through a through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; wherein the spacer article comprises: a laminate having a through hole, the laminate comprising:
(i) an upper substrate layer and a lower substrate layer; (ii) a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers, wherein the viscoelastic material has a loss modulus of less than about 500,000 Pascals, a storage modulus greater than about 200,000 Pascals and a loss factor of less than about 0.5 when measured at 1 Hertz and between 25 and 80° C.; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material layer; and (d) a means for securing the rotatable storage article and spacer article onto the spindle, wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 26. The disk drive assembly of claim 25 wherein the spacer article has a force retention of at least about 95 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 27. The disk drive assembly of claim 25 wherein the loss factor of the viscoelastic material is less than 0.4, the loss modulus is less than about 400,000 Pascals, and the storage modulus is greater than about 200,000 Pascals when measured at 1 Hertz and between 25 and 80° C.
- 28. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) a spacer article, wherein the spacer article is positioned such that the spindle extends through a through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; wherein the spacer article comprises: a laminate, the laminate having a through hole therein, wherein the laminate comprises:
(i) an upper substrate layer and a lower substrate layer; (ii) a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material layer; and wherein the spacer article is welded such that the upper substrate is welded to the lower substrate; and
wherein when the rotatable storage article and spacer article are positioned on the spindle, a force applied onto the spacer article by virtue of an attachment device is less than the Young's modulus of the vibration damping material.
- 29. The disk drive assembly of claim 28 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2.0 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 30. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) a spacer article, wherein the damped spacer article is positioned such that the spindle extends through a through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; wherein the spacer article comprises: an upper substrate layer and a lower substrate layer; a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in any vibration damping material layer with which it is in contact; wherein the vibration damping material layer of the spacer article further comprises an additive selected from the group consisting of fibers, particulates, and mixtures thereof; wherein the total amount of additive is about 1 to about 95 weight percent based upon the total weight of the vibration damping material; wherein the particulate size ranges from about 0.05 to about 125% of the average thickness of the vibration damping material layer in which the particulate is present; wherein the fiber diameter ranges from about 0.05 to about 125% of the average thickness of the vibration damping layer in which the fiber is present; wherein the load bearing capacity of the additive is at least about 700,000 Pascals; and (d) a means for securing the rotatable storage article and spacer article onto the spindle, wherein a force applied onto the spacer article by virtue of the attachment device is less than the Young's modulus of the vibration damping material.
- 31. The disk drive assembly of claim 30 wherein the spacer article is substantially in the shape of a ring.
- 32. The disk drive assembly of claim 30 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 33. A spacer article comprising:
two spacer sections, each spacer section having a through hole, each spacer section independently comprising:
(a) a substrate wherein the substrate comprises (i) a base, the base having two opposing major surfaces which are a first surface and a second surface; and (ii) at least one side, each side having a height, wherein the side(s) are joined to the first surface of the base; (b) a vibration damping material comprising a viscoelastic material, wherein the substrate has a higher storage modulus than the viscoelastic material in the vibration damping material, wherein the vibration damping material is bonded to the first surface of the base, wherein the vibration damping material has a height great enough such that it is about 90 to about 300 percent of the height of a highest substrate side; wherein the spacer article has a through hole therein; and wherein the second surface of the base of one spacer section is positioned against the second surface of the base of the other spacer section.
- 34. The spacer article of claim 33 wherein the vibration damping material has a height great enough such that it is about 100 to about 200 percent of the height of the highest substrate side.
- 35. The spacer article of claim 33 wherein the vibration damping material has a height great enough such that it is about 102 to about 150 percent of the height of the highest substrate side.
- 36. The spacer article of claim 33 wherein the vibration damping material has a height great enough such that it is about 102 to about 120 percent of the height of the highest substrate side.
- 37. The spacer article of claim 33 wherein for each spacer section the base is substantially in the shape of a ring, the ring having an inner edge and an outer edge, and wherein the substrate has two sides, wherein one side is in the form of a ring and is joined to the first surface of the base at about the inner edge of the base and the second side is in the form of a ring and is joined to the first surface of the base at about the outer edge of the ring in order to from a channel and the vibration damping material is at least partially contained within the channel.
- 38. The spacer article of claim 1 wherein each substrate section is substantially in the shape of a ring.
- 39. The disk drive assembly of claim 33 wherein the second surfaces of the bases of both spacer sections are interlocking.
- 40. The spacer article of claim 33 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 41. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the spacer article of claim 33, wherein the spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) an attachment device securing the rotatable storage article and spacer article onto the spindle.
- 42. A spacer article comprising:
(a) two substrate sections which are identified as a first substrate section and a second substrate section,
wherein the first substrate section has a through hole, wherein the first substrate section comprises a base and a side joined to the base which extends above and below the base, wherein the side has a height and wherein the side has an upper surface and a lower surface, wherein the side defines an outer perimeter of the first substrate section and the base defines an inner perimeter of the first substrate section, wherein the second substrate section has a through hole, wherein the second substrate section comprises a base and a side joined to the base which side extends above and below the base, wherein the side has a height and wherein the side has an upper surface and a lower surface, wherein the base defines an outer perimeter of the substrate section and the side defines an inner perimeter of the substrate section, wherein the second substrate section fits within the through hole of the first substrate section, wherein the side of the first substrate section has a height which falls within a range of about 90 percent of the height of the side of the second substrate to a height about 110 percent of the height of the side of the second substrate; (b) a vibration damping material comprising viscoelastic material;
wherein the storage modulus of the substrate sections are greater than the viscoelastic material in the vibration damping material; wherein the two substrate sections are joined together via the vibration damping material laminated between the bases of the two substrate sections, wherein the substrate sections are joined such that upper surface of the side of the first substrate section is not greater than about 10 percent of the height of the side of the second substrate section above the upper surface of the side of the second substrate section nor greater than about 10 percent of the height of the side of the second substrate section below the upper surface of the side of the second substrate; wherein the substrate sections are joined such that lower surface of the first substrate section is not greater than about 10 percent of the height of the side of the second substrate section above the lower surface of the side of the second substrate section nor greater than 10 percent of the height of the side of the second substrate below the lower surface of the side of the second substrate; and wherein the spacer article has a through hole therein.
- 43. The spacer article of claim 42 having a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 44. The spacer article of claim 42 wherein the substrate sections are joined such that upper surface of the side of the first substrate section is not greater than about 5 percent of the height of the side of the second substrate section above the upper surface of the side of the second substrate section nor greater than about 5 percent of the height of the side of the second substrate section below the upper surface of the side of the second substrate; and
wherein the substrate sections are joined such that lower surface of the first substrate section is not greater than about 5 percent of the height of the side of the second substrate section above the lower surface of the side of the second substrate section nor greater than 5 percent of the height of the side of the second substrate below the lower surface of the side of the second substrate.
- 45. The spacer article of claim 42 wherein the upper surface of the side of the first substrate section is level with the upper surface of the side of the second substrate section and wherein the lower surface of the side of the first substrate section is level with the lower surface of the side of the second substrate section.
- 46. The spacer article of claim 42 wherein each spacer section is substantially ring shaped and the spacer article is substantially ring shaped.
- 47. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the spacer article of claim 42, wherein the spacer article is positioned such that the spindle extends through a through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) a means for securing the rotatable storage article and spacer article onto the spindle.
- 48. A spacer article comprising
(a) a substrate, the substrate comprising (i) a base the base having two major opposing surfaces, an upper surface and a lower surface, and (ii) at least one side joined to the upper surface of the base, each side having a height; and (b) a first constrained layer damper attached to the upper surface of the base wherein the first constrained layer damper has a height such that it ranges from being about 90 to about 300 percent of the height of the side having a greatest height on the upper surface of the base; wherein each constrained layer damper independently comprises:
(i) a constraining layer; (ii) a layer of vibration damping material bonded to the constraining layer, wherein the vibration damping material comprises viscoelastic material; wherein the storage modulus of the constraining layer is greater than that of the viscoelastic material in the vibration damping material; wherein each constrained layer damper is attached to the base via its vibration damping material layer;
and wherein the spacer article has a through hole therein.
- 49. The spacer article of claim 48 which further comprises (iii) at least one side joined to the lower surface of the base, each side having a height; and
(c) a second constrained layer damper attached to the lower surface of the base wherein the second constrained layer damper has a height such that it ranges from being about 90 to about 300 percent of the height of the side having a greatest height on the lower surface of the base, wherein the second constrained layer damper independently comprises:
(i) a constraining layer; (ii) a layer of vibration damping material bonded to the constraining layer, wherein the vibration damping material comprises viscoelastic material, wherein the storage modulus of the constraining layer is greater than that of the viscoelastic material in the vibration damping material; and wherein the storage modulus of the constraining layer is greater than that of the viscoelastic material in the vibration damping material; wherein each constrained layer damper is attached to the base via its vibration damping material layer.
- 50. The spacer article of claim 48 wherein said constrained layer damper has a height such that it ranges from being about 95 to about 200 percent of the height of the side having a greatest height on the lower surface of the base.
- 51. The spacer article of claim 49 wherein said constrained layer damper has a height such that it ranges from being about 95 to about 200 percent of the height of the side having a greatest height on the lower surface of the base.
- 52. The spacer article of claim 58 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 53. The spacer article of claim 49 wherein the first constrained layer damper has a height about 0.01 to about 0.5 mm greater than the height of the side having the greatest height on the upper surface of the base and wherein the second constrained layer damper has a height about 0.01 to about 0.5 mm greater than the height of the side having the greatest height on the lower surface of the base.
- 54. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the damped spacer article of claim 48, wherein the damped spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) a means for securing the rotatable storage article and spacer article onto the spindle.
- 55. A spacer article comprising:
a laminate, wherein the laminate comprises:
(a) two substrate layers; (b) a layer of vibration damping material comprising viscoelastic material, wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material; wherein the layer of vibration damping material is laminated between the two substrate layers within the laminate; wherein the laminate has a configuration in partial cross-section which is U shaped; and wherein the spacer article has a through hole therein.
- 56. The spacer article of claim 55 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 57. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the damped spacer article of claim 55, wherein the damped spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) a means for securing the rotatable storage article and spacer article onto the spindle.
- 58. A spacer article comprising:
(a) a substrate, the substrate having a through hole, the substrate having a sideways U-shape in partial cross-section, the substrate comprising an upper base, a lower base, and a side joining the upper base and the lower base, the substrate having an internal cavity; and (b) vibration damping material comprising viscoelastic material, wherein the storage modulus of the substrate is greater than that of the viscoelastic material in the vibration damping material, wherein the vibration damping material is positioned within the cavity of the substrate such that it is contact with at least both the upper base and the lower base of the substrate, wherein the spacer article has a through hole therein.
- 59. The spacer article of claim 58 wherein the vibration damping material in the cavity is compressed and/or elongated such that its height within the cavity is reduced by about 0.05 to about 75% of its initial uncompressed and/or unelongated height.
- 60. The spacer article of claim 58 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 61. The spacer article of claim 58 wherein the substrate is substantially ring shaped and the vibration damping material is substantially ring-shaped.
- 62. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; and (c) the damped spacer article of claim 58, wherein the damped spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article.
- 63. A spacer article comprising:
a laminate having a through hole, the laminate comprising:
(i) an upper substrate layer and a lower substrate layer; (ii) a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material layer; wherein at least one deformation area is present in said spacer wherein a deformation area is an area of the spacer article wherein at least one substrate layer is plastically deformed such that the upper and lower substrate layers are touching or positioned closer to each other than in an area of the spacer article in which none of the substrates are plastically deformed; and wherein in at least 1 vibration damping material layer, within at least a 0.5% area of the deformation area, the vibration damping material is non-existent or, if present, has a mass that is 90% or less than the average mass of the vibration damping material layer of an equal area in an area of the spacer article which is not in a deformation area.
- 64. A spacer article comprising:
a laminate, the laminate having a through hole therein, wherein the laminate comprises:
(i) an upper substrate layer and a lower substrate layer; (ii) a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in the vibration damping material layer; and wherein the spacer article is welded such that the upper substrate is welded to the lower substrate.
- 65. A spacer article comprising:
an upper substrate layer and a lower substrate layer; a layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers; wherein the storage modulus of each substrate layer is greater than that of the viscoelastic material in any vibration damping material layer with which it is in contact; wherein the vibration damping material layer of the spacer article further comprises an additive selected from the group consisting of fibers, particulates, and mixtures thereof; wherein the total amount of additive is about 1 to about 95 weight percent based upon the total weight of the vibration damping material; wherein the particulate size ranges from about 0.05 to about 125% of the average thickness of the vibration damping material layer in which the particulate is present; wherein the fiber diameter ranges from about 0.05 to about 125% of the average thickness of the vibration damping layer in which the fiber is present; wherein the load bearing capacity of the additive is at least about 700,000 Pascals.
- 66. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the spacer article of claim 6, wherein the spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) a means for securing the rotatable storage article and spacer article onto the spindle.
- 67. The disk drive assembly of claim 25 wherein
wherein with respect to the laminate, the layer of vibration damping material comprising a viscoelastic material positioned between said upper and lower substrate layers, wherein the viscoelastic material has a loss modulus of less than about 400,000 Pascals, a storage modulus greater than about 200,000 Pascals and a loss factor of between about 0.1 and about 0.45 when measured at 1 Hertz and between 25 and 80° C.
- 68. The spacer article of claim 33 wherein the vibration damping material has a constraining layer attached to a surface of the vibration damping material not directly bonded to the first surface of the base.
- 69. The spacer article of claim 50 wherein said constrained layer damper has a height such that it ranges from being about 102 to about 120 percent of the height of the side having a greatest height on the lower surface of the base.
- 70. The spacer article of claim 51 wherein said constrained layer damper has a height such that it ranges from being about 102 to about 120 percent of the height of the side having a greatest height on the lower surface of the base.
- 71. The spacer article of claim 49 wherein the spacer article has a force retention of at least about 92 percent of an initial compression force of 1.4×106 Pascals applied to the spacer article for about 0.2 to about 2 seconds at about 25° C. at about 15 minutes after the application of the initial compression force.
- 72. The spacer article of claim 49 wherein the first constrained layer damper has a height about 0.02 to about 0.1 mm greater than the height of the side having the greatest height on the upper surface of the base and wherein the second constrained layer damper has a height about 0.02 to about 0.1 mm greater than the height of the side having the greatest height on the lower surface of the base.
- 73. A disk drive assembly comprising:
(a) a disk drive, the disk drive having a spindle; (b) a rotatable storage article positioned such that the spindle extends through a through hole in the rotatable storage article; (c) the damped spacer article of claim 49, wherein the damped spacer article is positioned such that the spindle extends through the through hole in the spacer article, wherein the spacer article is positioned adjacent to and in contact with the rotatable storage article; and (d) a means for securing the rotatable storage article and spacer article onto the spindle.
- 74. The spacer article of claim 59 wherein the vibration damping material in the cavity is compressed and/or elongated such that its height within the cavity is reduced by about 1 to about 5% of its initial uncompressed and/or unelongated height.
- 75. The spacer article of claim 48 wherein the constrained layer damper is segmented
- 76. The spacer article of claim 49 wherein the first constrained layer damper has a height about 0.02 to about 0.1 mm greater than the height of the side having the greatest height on the upper surface of the base and wherein the second constrained layer damper has a height about 0.02 to about 0.1 mm greater than the height of the side having the greatest height on the lower surface of the base.
- 77. The spacer article of claim 49 wherein the constrained layer dampers are segmented.
- 78. The spacer article of claim 19 wherein the vibration damping material further comprises an effective amount of an electrically conductive material so that the resistance between substrate layers is less than 100 ohms.
- 79. The spacer article of claim 25 wherein the vibration damping material further comprises an effective amount of an electrically conductive material so that the resistance between substrate layers is less than 100 ohms.
- 80. The spacer article of claim 28 wherein the vibration damping material further comprises an effective amount of an electrically conductive material so that the resistance between substrate layers is less than 100 ohms.
- 81. The spacer article of claim 42 wherein the vibration damping material further comprises an effective amount of an electrically conductive material so that the resistance between substrate layers is less than 100 ohms.
- 82. The spacer article of claim 63 wherein the vibration damping material further comprises an effective amount of an electrically conductive material so that the resistance between substrate layers is less than 100 ohms.
- 83. The spacer article of claim 65 wherein the vibration damping material further comprises an effective amount of an electrically conductive material so that the resistance between substrate layers is less than 100 ohms.
Parent Case Info
[0001] This application is a divisional application of co-pending U.S. patent application Ser. No. 09/108,981, filed Jul. 1, 1998, the entirety of which is incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09108981 |
Jul 1998 |
US |
Child |
09864603 |
May 2001 |
US |