The present invention relates to a seismic isolation device used in an exhibition case or exhibition stand of a museum or art gallery, a server rack, a warehouse having article shelves, a production line of a factory, and the like, and in particular, relates to a seismic isolation device that does not easily operate when a minor earthquake or mechanical vibration occurs and achieves a seismic isolation effect only when a major earthquake or the like occurs.
A seismic isolation device that combines a tabular base board including a plurality of curved convex protrusions and a smooth hard sliding plate made to be in contact with each other with a low friction coefficient due to mutual point contact has been known (see Patent Literature 1).
Patent Literature 1: Japanese Patent Application Laid-Open No. 2008-116039
In a conventional seismic isolation device, the point contact is maintained to always act as a seismic isolation device. Thus, even in a minor to medium-sized earthquake (for example, about 1 to 4 according to the Japan Meteorological Agency seismic intensity scale) that frequently occurs, the seismic isolation device may be actuated without returning to the original position automatically, so that the work to return to the original position needs to be done each time. If partial base isolation is applied inside a room, a seismic isolation device may be shifted after people or devices rush to the room so that the work to return to the original position needs to be done each time. Moreover, a building may be swayed at a low frequency for a long period due to an influence of wind or a vibration of automobiles or machines and a seismic isolation device may be actuated without returning to the original position automatically, so that the work to return to the original position needs to be done each time. In the description that follows, the “seismic intensity” in the present application means a seismic intensity based on the Japan Meteorological Agency seismic intensity scale.
To solve such problems, a seismic isolation device according to the present invention is invented to avert a major disaster by being actuated only in a major earthquake (for example, the seismic intensity of 5 or more) without being actuated in a minor to medium-sized earthquake (for example, the seismic intensity of 1 to 4) that frequently occurs without hindrance of daily work.
A seismic isolation device including a tabular base board having a plurality of curved convex protrusions formed thereon and a sliding plate having a sliding contact surface that is slidingly in contact with the plurality of curved convex protrusions and placed on a side of the curved convex protrusions of the base board, wherein the sliding contact surface of the sliding plate includes a plurality of high-friction portions arranged corresponding to the plurality of curved convex protrusions and enabling stable rest in a contact state with the curved convex protrusions and a sliding surface other than the high-friction portions that has a lower apparent friction coefficient than the high-friction portions. That is, the seismic isolation device is configured in such a way that the sliding contact plate of the sliding plate includes the plurality of high-friction portions arranged corresponding to the curved convex protrusions and the sliding surface other than the high-friction portions and the high-friction portion has a high apparent friction coefficient enabling stable rest in a contact state with the curved convex protrusion and the sliding surface has a lower apparent friction coefficient than the high-friction portion.
Preferably, the high-friction portion on the sliding contact surface of the sliding plate is a curved concave portion formed so as to have a curved concave surface in a same shape as a curved surface of the curved convex protrusion of the base board and have a depth smaller than a height of the curved convex protrusion.
Only the sliding surface on the sliding contact surface of the sliding plate is uniformly coated with a lubricant and thereby, as a result, the apparent friction coefficient of the uncoated high-friction portion may have a higher apparent friction coefficient than the coated sliding surface. Further, the high-friction portions on the sliding contact surface of the sliding plate is preferably sandblasted.
The high-friction portion on the sliding contact surface of the sliding plate is a through hole formed so as to have a smaller diameter than the diameter of the curved convex protrusion, thereby fitting only a portion of the curved convex protrusion into the through hole.
Incidentally, the apparent friction coefficient of the high-friction portion when the base board and the sliding plate according to the present invention are at rest is preferably 0.1, which is a friction coefficient at which the base board and the sliding plate do not start to slide when the seismic intensity based on the Japan Meteorological Agency seismic intensity scale is 4 or less and the base board and the sliding plate start to slide when the seismic intensity is weak 5 or more.
According to a seismic isolation device in the present invention, by setting the apparent friction coefficient of the plurality of high-friction portions in contact with the curved convex protrusions of the base board at rest to be larger than the apparent friction coefficient of the sliding surface, the above sliding plate does not easily move even when a small vibration occurs so that daily work around or on the seismic isolation device will not be hindered.
Because a recess as the high-friction portion of the sliding plate is formed in the same shape and the same arrangement as the curved convex protrusion of the base board and the depth thereof is shallower than the height of the curved convex protrusion of the base board in the sliding plate to create the high friction, the high-friction portion of the sliding plate can be manufactured at low cost. In addition, the high-friction portion of the sliding plate can be manufactured at low cost also by making the high-friction portion as a through hole. Further, the high-friction portion on the sliding contact surface of the sliding plate can be manufactured at low cost by sandblasting. If the sliding surface of the sliding plate is coated with a lubricant or coated with a lubricant mixed with powder uniformly, once the sliding plate starts to move, the sliding plate moves with less friction and therefore, an excellent seismic isolation effect can be achieved.
Further, by adopting the above configuration, for example, the thickness of the base board can be set to 1 mm and the height from the base board including the thickness of the sliding plate when the sliding plate is put on the base board can be set to about 1 to 3 mm and therefore, the seismic isolation device can be made a basic unit of 4 mm in thickness constituted of the base board and the sliding plate. This enables a bogie, forklift and the like to get on to and off from a seismic isolation device smoothly from or to a periphery where no seismic isolation device is installed.
A seismic isolation device 1 according to the present invention is configured to achieve a base isolation effect by, as shown in
The seismic isolation device 1 according to the first embodiment of the present invention is a pair of the base board 2, as shown in
As shown in
Various structures are proposed to realize the high friction coefficient. In the first embodiment, as shown in
As shown in
As shown in
In the second embodiment, as shown in
When a major earthquake occurs, the sliding plate 5 of a device according to the second embodiment gets out of a fitting state with the base board 2 due to acceleration a with the high friction coefficient μ2 and moves in the horizontal direction relative to the base board 2 to act as a seismic isolation device by suppressing almost all swaying motion of exhibited things. Then, as shown in
In the third embodiment, as shown in
In the fourth embodiment, as shown in
As shown in
A seismic isolation device according to the present invention and an installation method thereof can easily be applied to all base isolation objects such as furniture, decorative objects, computers, independent houses and the like.
1 Seismic isolation device according to the first embodiment
1
a Seismic isolation device according to the second embodiment
1
b Seismic isolation device according to the third embodiment
1
c Seismic isolation device according to the fourth embodiment
2 Base board
2
a Curved convex protrusion
H Height of the curved convex protrusion of the base board
R Radius of the curved convex protrusion
3 Sliding plate
3
a High-friction portion
3
b Sliding contact surface of the sliding plate
d Depth of the recess of the sliding plate
4 Lubricant
5 Sliding plate according to the second embodiment
5
a Through hole
r Diameter of the through hole
6 Sliding plate according to the third embodiment
6
a High-friction portion
7 Sliding plate according to the fourth embodiment
7
a Sandblasted surface
10 Installation floor
a Metallic plate
μ Apparent friction coefficient
μ1 Static friction coefficient of the conventional seismic isolation device
μ2 Static friction coefficient of the seismic isolation device according to the present invention
δ Moving displacement
p Punching tool
Number | Date | Country | Kind |
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2010-097729 | Apr 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2011/059606 | 4/19/2011 | WO | 00 | 8/14/2012 |