Claims
- 1. A shock absorber for use in a printing process where compression is desired but displacement is not, situated between a printing plate and a plate cylinder surface to compensate for variations in thickness, height, and centricity of the cylinder and plate, the shock absorber comprising:
an elastomeric body for attachment to the surface of a plate cylinder; said elastomeric body being made of a predetermined durometer; said elastomeric body including a support base and a plurality of raised protrusions formed of said elastomeric material; said protrusions having a predetermined height and cross-sectional shape and spaced apart a predetermined distance such that a compression between the printing plate and the plate cylinder surface on said elastomeric body will result in a predetermined displacement of said protrusions to compensate for variations in the plate cylinder and plate operation to improve printing quality; and each said protrusion being continuous along said support base, and having substantially the same length as said support base, each said protrusion adapted to surround and adapted to be continuous around said cylinder leaving the path of least resistance lateral to the side of the geometric shape of each protrusion during compression.
- 2. The shock absorber as in claim 1 wherein each said protrusion is continuous around said cylinder in the cylinder's rotational direction.
- 3. The shock absorber as in claim 1, wherein said longitudinally disposed protrusions of said elastomeric material constitute displacement zones of a predetermined area and volume adapted to provide desired resilient response to pressure applied between said plate cylinder and said plate on said elastomeric body.
- 4. The shock absorber as in claim 1, wherein said elastomeric body includes a controlled displaceable plurality of protrusions that includes an open displacement cross-sectional area in excess of 5 to 95 percent.
- 5. The shock absorber as in claim 1, including:
said elastomeric body including an array of protrusions of a particular geometric shape that are continuous or near continuous in length around the cylinder in the print direction leaving the path of least resistance lateral to the side of the geometric shape of each protrusion during compression.
- 6. The shock absorber as in claim 1, wherein each said protrusion comprises:
a substantially flat top surface substantially parallel to the top surface of said support base; a pair of tapered sidewalls converging at said top surface; and a bottom surface.
- 7. The shock absorber in claim 1, wherein said plurality of protrusions may contain one or more predetermined breaks.
- 8. The shock absorber in claim 1, wherein each said protrusion is disposed in a parallel relationship with each other said protrusion.
- 9. The shock absorber in claim 1, wherein said protrusions are disposed in a random, non-linear manner along said support base.
- 10. The shock absorber in claim 1, wherein said support base is comprised of a stable layer of flexible material.
- 11. The shock absorber in claim 10, wherein said flexible material is vinyl.
- 12. The shock absorber in claim 10, wherein said stable layer of flexible material is paper.
- 13. The shock absorber in claim 10, wherein said stable layer of flexible material is cellophane.
- 14. The shock absorber in claim 1, wherein said support base is comprised of a dimensionally stable layer of flexible material.
- 15. The shock absorber in claim 14, wherein said dimensionally stable layer of flexible material is any polyester material.
- 16. The shock absorber in claim 14, wherein said dimensionally stable layer of flexible material is any metallic material.
- 17. The shock absorber in claim 14, wherein said dimensionally stable layer of flexible material is MYLAR®.
- 18. The shock absorber in claim 1, wherein said protrusions are comprised of a plurality of layered materials, each of a different durometer, resilience or modulus.
- 19. The shock absorber in claim 1, wherein each said protrusion is comprised of a different durometer, resilience or modulus.
- 20. The shock absorber in claim 1, wherein each said protrusion is comprised of the same durometer, resilience or modulus.
- 21. The shock absorber in claim 6, wherein said top surface of each said protrusion is adapted to engage said plate cylinder surface via plate cylinder engagement means and said support base is adapted to engage said printing plate via printing plate engagement means.
- 22. The shock absorber of claim 21 wherein said plate cylinder engagement means and said printing plate engagement means is an adhesive substance.
- 23. The shock absorber of claim 22 wherein said adhesive substance is glue.
- 24. The shock absorber of claim 22 wherein said adhesive substance is double-sided adhesive tape.
- 25. The shock absorber of claim 22, wherein said top surface of each said protrusion is adapted to engage said printing plate and said support base is adapted to engage said plate cylinder.
- 26. The shock absorber of claim 1, wherein said protrusions are photographically imaged from a solid sheet of material and subsequently processed thereby separating the unexposed material from the exposed material leaving said protrusions having a desired geometric shape.
- 27. The shock absorber of claim 1, wherein said shock absorber is adapted to be manufactured on or adhered to the back of said printing plate so that said shock absorber becomes integral with said printing plate.
- 28. The shock absorber of claim 1, wherein said shock absorber is adaptable to be manufactured as a layer of a sleeve or said cylinder and becomes an intricate part of said cylinder or said sleeve on which said printing plate is attached by various methods.
- 29. The shock absorber of claim 1, wherein said protrusions and said support base are both extruded from a single piece of said elastomeric material.
- 30. The shock absorber of claim 1, wherein said protrusions are created from a mold and adapted to adhere to said support base.
- 31. The shock absorber of claim 1, wherein said support base is exposed between said protrusions when said protrusions are less than 0.020 inches in height.
- 32. The shock absorber of claim 1, wherein when the height of said protrusions are 0.020 inches or greater, a measure of additional elastomeric material may be desirable to create a foundation layer covering said support base under and/or surrounding the protrusions, thereby preventing the support base from being exposed between said protrusions and altering the characteristics of said shock absorber.
- 33. The shock absorber of claim 32, wherein said foundation layer has the same durometer as said attached support base.
- 34. The shock absorber of claim 32, wherein said foundation layer has a different durometer then said attached support base.
- 35. A method of enhancing the image quality and efficiency of a printing process without substantially increasing printing pressure comprising the steps of:
providing an elastomeric body for attachment to the surface of a plate cylinder, said elastomeric body being made of a predetermined durometer, said elastomeric body including a support base and a plurality of raised protrusions formed of said elastomeric material, said protrusions having a predetermined height and cross-sectional shape adapted to be longitudinally disposed in the rotational direction of the plate cylinder and spaced apart a predetermined distance such that a compression between a printing plate and the plate cylinder surface on said elastomeric body will result in a predetermined displacement of said protrusions to compensate for variations in the plate cylinder and plate operation to improve printing quality, each said protrusion being continuous along said support base, and having substantially the same length as said support base, each said protrusion adapted to surround and adapted to be continuous around the plate cylinder in the plate cylinder's rotational direction leaving the path of least resistance lateral to the side of the geometric shape of each protrusion during compression.
- 36. A shock absorbent cushion adapted to be used where compression is desired but surface displacement is not, said cushion comprising:
an elastomeric body for attachment to a surface of a substantially cylindrical and rotatable first body, said elastomeric body being made of a predetermined durometer and comprised of a support base and a plurality of raised protrusions formed of said elastomeric material; said protrusions having a predetermined height and cross-sectional shape and spaced apart a predetermined distance such that a compression between a second body and the first body surface on said elastomeric body will result in a predetermined displacement of said protrusions to compensate for variations in the first body surface; and each said protrusion being continuous along and having substantially the same length as said support base, each said protrusion adapted to be continuous around said substantially cylindrical first body in the first body's rotational direction leaving the path of least resistance lateral to the side of the geometric shape of each protrusion during compression.
Parent Case Info
[0001] This application is a continuation-in part of U.S. patent application Ser. No. 09/334,847, filed Jun. 16, 1999.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09334847 |
Jun 1999 |
US |
Child |
09883878 |
Jun 2001 |
US |