Claims
- 1. A method for designing a seismic frame structure including a reinforced concrete rigid frame having a pair of spaced pillars and a beam extending between ends of the pillars, a V-shaped brace disposed in a structural plane of the reinforced concrete rigid frame and having two leg portions arranged in a V shape with an end of each leg portion being connected to a respective one of the pillars, and a damper interposed between the beam and other ends of the two leg portions, said method comprising:providing a first model for the reinforced concrete rigid frame, wherein the pair of spaced pillars is represented by a pair of spaced pillars that are each provided with a rotational spring at both ends thereof, and the beam is represented by a beam that is connected to ends of the pair of spaced pillars via the rotational spring at one of the ends of each of the spaced pillars; providing a second model for the seismic frame structure, wherein the pair of spaced pillars is represented by a pair of virtually rigid spaced pillars and the beam is represented by a virtually rigid beam, with the pair of virtually rigid spaced pillars being connected to the virtually rigid beam at ends of the pair of virtually rigid spaced pillars, wherein the V-shaped brace is represented by a V-shaped brace having two leg portions arranged in a V shape with an end of each leg portion being connected to a respective one of the virtually rigid spaced pillars, and wherein the damper is represented by a damper that is disposed between the virtually rigid beam and other ends of the two leg portions; obtaining a burden Pdb for said second model from the equation Pdb=(h′/h)Hb, wherein h corresponds to a distance from an end of said virtually rigid spaced pillars to said virtually rigid beam, h′ corresponds to a distance from said virtually rigid beam to the location at which said two leg portions are connected to said virtually rigid spaced pillars, and Hb corresponds to a damper load displacement characteristic; obtaining a burden Prc for said first model from the equation Prc=P−Pdb, wherein P corresponds to an external force that is to be applied to the seismic frame structure; applying Pdb to said second model to perform an elasto-plastic analysis thereof; applying Prc to said first model to perform an elasto-plastic analysis thereof; and performing a section design of the seismic frame structure according to the elasto-plastic analyses.
- 2. The method according to claim 1, wherein the pair of spaced pillars of the seismic frame structure comprises a pair of vertically disposed pillars such that in said first model the pair of spaced pillars is represented by a pair of vertically disposed spaced pillars, and such that in said second model the pair of spaced pillars is represented by a pair of vertically disposed virtually rigid spaced pillars.
- 3. The method according to claim 2, wherein the beam of the seismic frame structure extends between top ends of the pair of vertically disposed spaced pillars such that in said first model the beam is represented by a beam that is connected to top ends of the pair of vertically disposed spaced pillars via the rotational spring at a top end of each of the vertically disposed spaced pillars, and such that in said second model the beam is represented by a virtually rigid beam that is connected to top ends of the pair of vertically disposed virtually rigid spaced pillars.
- 4. The method according to claim 3, wherein the V-shaped brace of the seismic frame structure comprises an inverse V-shaped brace such that in said second model the V-shaped brace is represented by an inverse V-shaped brace having two leg portions arranged in a V shape with an end of each leg portion being connected to a respective one of the virtually rigid spaced pillars.
- 5. The method according to claim 4, wherein the two leg portions of the V-shaped brace of the seismic structure frame are each connected to the respective one of the pillars near a mid-portion of the respective one of the pillars such that in said second model the V-shaped brace is represented by a V-shaped brace having two leg portions arranged in a V shape with the end of each leg portion being connected to the respective one of the virtually rigid spaced pillars near a mid-portion thereof.
- 6. The method according to claim 5, wherein the two leg portions of the V-shaped brace of the seismic frame structure are each pin-connected to the respective one of the pillars such that in said second model the V-shaped brace is represented by a V-shaped brace having two leg portions arranged in a V shape with the end of each leg portion being pin-connected to the respective one of the virtually rigid spaced pillars near a mid-portion thereof.
- 7. The method according to claim 6, wherein the damper of the seismic frame structure is interposed between the beam and upper ends of the two leg portions such that in said second model the damper is represented by a damper that is interposed between the virtually rigid beam and upper ends of the two leg portions.
- 8. The method according to claim 7, wherein the inverse V-shaped brace of the seismic frame structure comprises an inverse V-shaped eccentric brace such that in said second model the V-shaped brace is represented by an inverse V-shaped eccentric brace having two leg portions arranged in a V shape with an end of each leg portion being connected to a respective one of the virtually rigid spaced pillars.
- 9. The method according to claim 8, wherein in said second model the pair of virtually rigid spaced pillars is pin-connected to the virtually rigid beam at the ends of the pair of virtually rigid spaced pillars.
- 10. The method according to claim 9, wherein h corresponds to a distance from an end of said virtually rigid spaced pillars to said virtually rigid beam as measured perpendicularly from the virtually rigid beam, and h′ corresponds to a distance from said virtually rigid beam to the location at which said two leg portions are connected to said virtually rigid spaced pillars as measured perpendicularly from the virtually rigid beam.
- 11. The method according to claim 1, wherein the beam of the seismic frame structure extends between top ends of the pair of spaced pillars such that in said first model the beam is represented by a beam that is connected to top ends of the pair of spaced pillars via the rotational spring at a top end of each of the spaced pillars, and such that in said second model the beam is represented by a virtually rigid beam that is connected to top ends of the pair of virtually rigid spaced pillars.
- 12. The method according to claim 1, wherein the V-shaped brace of the seismic frame structure comprises an inverse V-shaped brace such that in said second model the V-shaped brace is represented by an inverse V-shaped brace having two leg portions arranged in a V shape with an end of each leg portion being connected to a respective one of the virtually rigid spaced pillars.
- 13. The method according to claim 1, wherein the two leg portions of the V-shaped brace of the seismic frame structure are each connected to the respective one of the pillars near a mid-portion of the respective one of the pillars such that in said second model the V-shaped brace is represented by a V-shaped brace having two leg portions arranged in a V shape with the end of each leg portion being connected to the respective one of the virtually rigid spaced pillars near a mid-portion thereof.
- 14. The method according to claim 1, wherein the two leg portions of the V-shaped brace of the seismic frame are each pin-connected to the respective one of the pillars such that in said second model the V-shaped brace is represented by a V-shaped brace having two leg portions arranged in a V shape with the end of each leg portion being pin-connected to the respective one of the virtually rigid spaced pillars.
- 15. The method according to claim 1, wherein the damper of the seismic frame structure is interposed between the beam and upper ends of the two leg portions such that in said second model the damper is represented by a damper that is interposed between the virtually rigid beam and upper ends of the two leg portions.
- 16. The method according to claim 1, wherein the V-shaped brace of the seismic frame structure comprises an inverse V-shaped eccentric brace such that in said second model the V-shaped brace is represented by an inverse V-shaped eccentric brace having two leg portions arranged in a V shape with an end of each leg portion being connected to a respective one of the virtually rigid spaced pillars.
- 17. The method according to claim 1, wherein in said second model the pair of virtually rigid spaced pillars is pin-connected to the virtually rigid beam at the ends of the pair of virtually rigid spaced pillars.
- 18. The method according to claim 1, wherein h corresponds to a distance from an end of said virtually rigid spaced pillars to said virtually rigid beam as measured perpendicularly from the virtually rigid beam, and h′ corresponds to a distance from said virtually rigid beam to the location at which said two leg portions are connected to said virtually rigid spaced pillars as measured perpendicularly from the virtually rigid beam.
Priority Claims (3)
Number |
Date |
Country |
Kind |
11-153740 |
Jun 1999 |
JP |
|
11-197162 |
Jul 1999 |
JP |
|
2000-031700 |
Feb 2000 |
JP |
|
Parent Case Info
This application is a divisional of U.S. application Ser. No. 09/584,143, filed May 31, 2000, now U.S. Pat. No. 6,425,157.
US Referenced Citations (16)
Foreign Referenced Citations (3)
Number |
Date |
Country |
9-170353 |
Jun 1997 |
JP |
9-235892 |
Sep 1997 |
JP |
10-298196 |
Nov 1998 |
JP |