Claims
- 1. A friction damper comprising:
a channel member including a friction channel extending along a friction axis, said friction channel having a pair of internal sidewalls connected by an internal transverse wall, at least one of said pair of internal sidewalls forming an obtuse angle with said transverse wall; and a wedge member including a friction wedge received by said friction channel, said friction wedge including a pair of external sidewalls movable into respective surface-to-surface engagement with said pair of internal sidewalls of said friction channel by adjusting depth of receipt of said friction wedge in said friction channel.
- 2. The friction damper according to claim 1, further comprising biasing means for applying a normal force urging said friction wedge deeper into said friction channel.
- 3. The friction damper according to claim 2, wherein said normal force applied by said biasing means is adjustable.
- 4. The friction damper according to claim 1, wherein said channel member includes a plurality of said friction channels extending along parallel friction axes, and said wedge member includes a plurality of said friction wedges respectively received by said plurality of friction channels.
- 5. The friction damper according to claim 1, wherein said channel member includes a first friction channel and a second friction channel, and said friction damper comprises a first wedge member having a friction wedge received by said first friction channel and a second wedge member having a friction wedge received by said second friction channel.
- 6. The friction damper according to claim 5, wherein said first friction channel extends along an X-axis direction and said second friction channel extends along another direction non-parallel to said X-axis direction.
- 7. The friction damper according to claim 6, wherein said another direction is a Y-axis direction orthogonal to said X-axis direction.
- 8. The friction damper according to claim 1, wherein said friction damper comprises first and second channel members each having a corresponding respective friction channel, and said wedge member includes a first friction wedge received by said friction channel of said first channel member and a second friction wedge received by said friction channel of said second channel member.
- 9. The friction damper according to claim 8, wherein said friction channel of said first channel member extends along an X-axis direction and said friction channel of said second channel member extends along a Y-axis direction orthogonal to said X-axis direction.
- 10. The friction damper according to claim 1, further comprising a plurality of shear keys for maintaining said pair of external sidewalls of said friction wedge away from surface-to-surface engagement with said pair of internal sidewalls defining said friction channel, wherein said plurality of shear keys is designed to fail under predetermined loading conditions on said friction damper.
- 11. A friction damper comprising:
a first member and a second member, each of said first and second members including an elongated friction channel and a friction wedge extending parallel to said friction channel, said friction channel having a pair of internal sidewalls connected by an internal transverse wall, at least one of said pair of internal sidewalls forming an obtuse angle with said transverse wall; said friction wedge of said first member being received by said friction channel of said second member and said friction wedge of said second member being received by said friction channel of said first member; wherein each of said friction wedges includes a pair of external sidewalls movable into respective surface-to-surface engagement with said pair of internal sidewalls of said friction channel in which said friction wedge is received by adjusting depth of receipt of said friction wedge in said friction channel.
- 12. The friction damper according to claim 11, further comprising biasing means for applying a normal force urging said friction wedge deeper into said friction channel.
- 13. The friction damper according to claim 12, wherein said normal force applied by said biasing means is adjustable.
- 14. An isolation bearing for supporting a superstructure relative to a base, said isolation bearing comprising:
a lower plate adapted for attachment to said base, said lower plate having an upwardly facing bearing surface; an upper plate adapted for attachment to said superstructure, said upper plate having a downwardly facing bearing surface; and a roller situated between and in rolling contact with said upwardly facing bearing surface of said lower plate and said downwardly facing bearing surface of said upper plate; wherein at least one of said upwardly facing bearing surface and said downwardly facing bearing surface is a cylindrical surface.
- 15. The isolation bearing according to claim 14, wherein one of said upwardly facing bearing surface and said downwardly facing bearing surface is a cylindrical surface, and the other of said upwardly facing bearing surface and said downwardly facing bearing surface has a generally V-shaped profile.
- 16. The isolation bearing according to claim 15, wherein said generally V-shaped profile is characterized by a smoothly curved transition zone across an imaginary vertex of said generally V-shaped profile, wherein said transition zone has a radius of curvature that is greater than a radius of said roller.
- 17. The isolation bearing according to claim 16, wherein said transition zone is defined by a non-metallic damping insert.
- 18. The isolation bearing according to claim 17, wherein said damping insert is formed of rubber or viscoelastic material.
- 19. An isolation bearing for supporting a superstructure relative to a base, said isolation bearing comprising:
a lower plate adapted for attachment to said base, said lower plate having an upwardly facing bearing surface; an upper plate adapted for attachment to said superstructure, said upper plate having a downwardly facing bearing surface; and a roller situated between and in rolling contact with said upwardly facing bearing surface of said lower plate and said downwardly facing bearing surface of said upper plate; wherein at least one of said upwardly facing bearing surface and said downwardly facing bearing surface has a generally V-shaped profile characterized by a smoothly curved transition zone across an imaginary vertex of said generally V-shaped profile, said transition zone having a radius of curvature that is greater than a radius of said roller.
- 20. The isolation bearing according to claim 19, wherein said transition zone is defined by a non-metallic damping insert.
- 21. The isolation bearing according to claim 20, wherein said damping insert is formed of rubber or viscoelastic material.
- 22. The isolation bearing according to claim 19, wherein one of said upwardly facing bearing surface and said downwardly facing bearing surface has said generally V-shaped profile, and the other of said upwardly facing bearing surface and said downwardly facing bearing surface has a flat profile.
- 23. The isolation bearing according to claim 20, wherein one of said upwardly facing bearing surface and said downwardly facing bearing surface has said generally V-shaped profile, and the other of said upwardly facing bearing surface and said downwardly facing bearing surface has a flat profile.
- 24. The isolation bearing according to claim 19, wherein both of said upwardly facing bearing surface and said downwardly facing bearing surface have a generally V-shaped profile characterized by a smoothly curved transition zone across an imaginary vertex thereof, said transition zone having a radius of curvature that is greater than a radius of said roller.
- 25. The isolation bearing according to claim 24, wherein each said transition zone is defined by a non-metallic damping insert.
- 26. The isolation bearing according to claim 25, wherein each said damping insert is formed of rubber or viscoelastic material.
- 27. The isolation bearing according to claim 22, wherein said upwardly facing bearing surface is coated by a layer of damping material.
- 28. The isolation bearing according to claim 22, wherein said downwardly facing bearing surface is coated by a layer of damping material.
- 29. The isolation bearing according to claim 19, wherein an external surface of said roller is coated by a layer of damping material.
- 30. The isolation bearing according to claim 27, wherein an external surface of said roller is coated by a layer of damping material.
- 31. The isolation bearing according to claim 28, wherein an external surface of said roller is coated by a layer of damping material.
- 32. The isolation bearing according to claim 31, wherein said upwardly facing bearing surface is coated by a layer of damping material.
- 33. A structural system comprising:
a first structural element; a second structural element intended to be displaced relative to said first structural element during seismic excitation; a channel member coupled to said first structural element for movement therewith, said channel member including a friction channel extending along a friction axis, said friction channel having a pair of internal sidewalls connected by an internal transverse wall, at least one of said pair of internal sidewalls forming an obtuse angle with said transverse wall; and a wedge member coupled to said second structural element for movement therewith, said wedge member including a friction wedge received by said friction channel for sliding motion along said friction axis, said friction wedge having a pair of external sidewalls movable into respective surface-to-surface engagement with said pair of internal sidewalls of said friction channel.
- 34. The structural system according to claim 33, further comprising a clutch mechanism for coupling said channel member to said first structural element, said clutch mechanism allowing limited relative displacement along said friction axis between said channel member and said first structural element before coupling said channel member to said first structural element, whereby thermal expansion and contraction is accommodated.
- 35. The structural system according to claim 33, further comprising a clutch mechanism for coupling said wedge member to said second structural element, said clutch mechanism allowing limited relative displacement along said friction axis between said wedge member and said second structural element before coupling said wedge member to said second structural element, whereby thermal expansion and contraction is accommodated.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/994,148, now U.S. Patent No. ________, which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09994148 |
Nov 2001 |
US |
Child |
10455857 |
Jun 2003 |
US |