The present invention relates to a base isolation supporting device of an eccentric rolling pendulum type.
A sliding base isolation supporting device using a sliding plate or a sliding surface, a rolling base isolation supporting device using a rolling member, or the like is used to support a fixture such as a display rack, a bookshelf, or the like in a base-isolated manner.
Patent Document 1: JP-A-7-310459
Incidentally, the sliding base isolation supporting device and the rolling base isolation supporting device do not possess a restoring force, so that, after the tremor, a returning operation is required for returning the fixture, the bookshelf, or the like to its original position by pushing it manually.
A base isolation device of a pendulum type disclosed in, for example, Patent document 1 has been proposed to perform the returning operation which is troublesome and requires a force. In this proposed base isolation device, a peripheral portion around a concave central portion is formed with a gentler curvature than the curved surface of a lower surface of a rotating body, and the period of the base isolation device is determined by the radius of curvature of the curved surface of this lower surface.
However, with the pendulum-type base isolation device disclosed in Patent Document 1, since a supporting base having a concave portion is required, a building floor or the like where a fixture such as a display rack, a bookshelf, or the like is installed is difficult to be directly used for the base isolation device, and a large supporting base is required to attain a long period of the pendulum-type base isolation device so as to cope with long-period earthquakes, with the result that objects to be installed are limited.
The present invention has been devised in view of the above-described aspects, and its object is to provide a base isolation supporting device which can be installed by using as it is the building floor or the like where a base isolation support object, including a fixture such as a display rack, a bookshelf, or the like, is installed, and which is capable of easily attaining a long period thereof.
A base isolation supporting device in accordance with the present invention comprises: a support which is adapted to be affixed to one of a foundation or a base and a base isolation support object so as to receive a load of the base isolation support object to be supported on the foundation or the base, and which has a cross-sectionally circular arc-shaped outer surface; and a rotating body which has a cross-sectionally circular arc-shaped outer surface with a shape complementary to the cross-sectionally circular arc-shaped outer surface of the support, and which, at the cross-sectionally circular arc-shaped outer surface with the shape complementary to the cross-sectionally circular arc-shaped outer surface of the support, is adapted to be brought into slidable contact with the cross-sectionally circular arc-shaped outer surface of the support, while, at a cross-sectionally circular arc-shaped convex outer surface thereof, coming into rollable contact with a flat surface of another one of the foundation or the base and the base isolation support object, so as to receive the load of the base isolation support object together with the support, wherein the cross-sectionally circular arc-shaped convex outer surface of the rotating body has a greater radius of curvature than a radius of curvature of the cross-sectionally circular arc-shaped outer surface of the rotating body, and, in a stationary state, a center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body is positioned eccentrically with respect to a center of curvature of the cross-sectionally circular arc-shaped outer surface of the rotating body toward a side of one of the foundation or the base and the base isolation support object in a vertical direction.
According to the base isolation supporting device in accordance with the present invention, since the rotating body is adapted to come into rollable contact with the flat surface of another one of the foundation or the base and the base isolation support object on the cross-sectionally circular arc-shaped convex outer surface thereof, and, in a stationary state, the center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body is positioned eccentrically with respect to the center of curvature of the cross-sectionally circular arc-shaped outer surface of the rotating body toward the side of one of the foundation or the base and the base isolation support object in a vertical direction. As a result, the base isolation supporting device can be installed by using as it is the building floor or the like where a fixture such as a display rack, a bookshelf, or the like, is installed, and since the period of vibration can be determined by the amount of eccentricity in the vertical direction between the center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body and the center of curvature of the cross-sectionally circular arc-shaped outer surface of the rotating body in the stationary state, it is possible to easily attain a long period.
In the present invention, the cross-sectionally circular arc-shaped outer surface of the support may be a cross-sectionally circular arc-shaped convex surface, and the cross-sectionally circular arc-shaped outer surface of the rotating body may be a cross-sectionally circular arc-shaped concave surface. Alternatively, the cross-sectionally circular arc-shaped outer surface of the support may be a cross-sectionally circular arc-shaped concave surface, and the cross-sectionally circular arc-shaped outer surface of the rotating body may be a cross-sectionally circular arc-shaped convex surface.
In the present invention, the rotating body may be rotatable about a center of curvature of the cross-sectionally circular arc-shaped outer surface of the support. In this case, in the stationary state (the state in which the base isolation support object to be supported is not vibrating in the horizontal direction relative to the foundation or the base, and the base isolation supporting device is not exhibiting a base insulation function), the center of curvature of the cross-sectionally circular arc-shaped outer surface of the support and the center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body may be positioned on an identical vertical line.
The rotating body in its entirety may be constituted by a rigid member, but the rotating body may include a rigid body having a cross-sectionally circular arc-shaped outer surface and an elastic body secured to the rigid body and having a cross-sectionally circular arc-shaped convex outer surface, or may conversely include an elastic body having a cross-sectionally circular arc-shaped outer surface and a rigid body secured to the elastic body and having a cross-sectionally circular arc-shaped convex outer surface. If an elastic body is interposed between the support and the flat surface, it is possible to absorb vibrations in the vertical direction of the foundation or the base by means of the elastic body, and trigger action can be obtained due to the slight elastic deformation of the elastic body in the stationary state of the base isolation supporting device. Furthermore, in the case where the rotating body has an elastic body having a cross-sectionally circular arc-shaped convex outer surface, it is possible to prevent unexpected slippage with respect to the flat surface at the cross-sectionally circular arc-shaped convex outer surface coming into contact with the flat surface, making it possible to effect the rotation and rolling of the rotating body reliably. In addition, by applying the elastic body to the support, the vibrations in the vertical direction of the foundation or the base may be absorbed by the elastic deformation of the elastic body of the support.
In the present invention, the support may be adapted to be affixed to the base isolation support object, in which case the rotating body at the cross-sectionally circular arc-shaped convex outer surface may be adapted to be brought into rollable contact with the flat surface of the foundation or the base, and the center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body may be positioned eccentrically upwardly in the vertical direction with respect to the center of curvature of the cross-sectionally circular arc-shaped outer surface of the rotating body. Conversely, the support may be adapted to be affixed to the foundation or the base, in which case the rotating body at the cross-sectionally circular arc-shaped convex outer surface may be adapted to be brought into rollable contact with the flat surface of the base isolation support object, and the center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body may be positioned eccentrically downwardly in the vertical direction with respect to the center of curvature of the cross-sectionally circular arc-shaped outer surface of the rotating body.
A base isolation supporting device in accordance with another aspect of the present invention comprises: a support which is adapted to be affixed to one of a foundation or a base and a base isolation support object so as to receive a load of the base isolation support object to be supported on the foundation or the base, and which has a first cross-sectionally circular arc-shaped convex outer surface; and a rotating body which has a cross-sectionally circular arc-shaped concave outer surface which is brought into slidable contact with the first cross-sectionally circular arc-shaped convex outer surface of the support, and which, at a second cross-sectionally circular arc-shaped convex outer surface thereof, is adapted to be brought into rollable contact with a flat surface of another one of the foundation or the base and the base isolation support object, so as to receive the load of the base isolation support object together with the support, wherein the rotating body is rotatable with respect to the support about a center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body, the second cross-sectionally circular arc-shaped convex outer surface of the rotating body has a greater radius of curvature than a radius of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body, and, in a stationary state, a center of curvature of the second cross-sectionally circular arc-shaped convex outer surface of the rotating body is positioned eccentrically with respect to the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body toward a side of one of the foundation or the base and the base isolation support object in a vertical direction.
According to the base isolation supporting device in accordance with the aspect of the present invention, the rotating body has a cross-sectionally circular arc-shaped convex outer surface which is adapted to be brought into rollable contact with the flat surface of another one of the foundation or the base and the base isolation support object; the rotating body is rotatable with respect to the support about the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body; the second cross-sectionally circular arc-shaped convex outer surface of the rotating body has a greater radius of curvature than the radius of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body; and, in a stationary state, the center of curvature of the second cross-sectionally circular arc-shaped convex outer surface of the rotating body is positioned eccentrically with respect to the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body toward the side of one of the foundation or the base and the base isolation support object in the vertical direction. As a result, the base isolation supporting device can be installed by using as it is the building floor or the like where a fixture such as a display rack, a bookshelf, or the like, is installed, and since the period of vibration can be determined by the amount of eccentricity in the vertical direction between the center of curvature of the cross-sectionally circular arc-shaped convex outer surface of the rotating body and the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body in the stationary state, it is possible to easily attain a long period.
In a preferred example of the base isolation supporting device in accordance with still another aspect of the present invention, the first cross-sectionally circular arc-shaped convex outer surface of the support has an identical radius of curvature to the radius of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body, in which case centers of curvature of the first cross-sectionally circular arc-shaped convex outer surface of the support and the cross-sectionally circular arc-shaped concave outer surface of the rotating body are positioned at an identical position. In another example, the first cross-sectionally circular arc-shaped convex outer surface of the support has a smaller radius of curvature than the radius of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body.
In the base isolation supporting device in accordance with the aspect of the present invention, in the stationary state, the centers of curvature of the first cross-sectionally circular arc-shaped convex outer surface of the support and the cross-sectionally circular arc-shaped concave outer surface and the second cross-sectionally circular arc-shaped convex outer surface of the rotating body are positioned on an identical vertical line.
In the base isolation supporting device in accordance with a further aspect of the present invention, the rotating body in its entirety may be constituted by a rigid member, but the rotating body may include a rigid body having a cross-sectionally circular arc-shaped concave outer surface and an elastic body secured to the rigid body and having the second cross-sectionally circular arc-shaped convex outer surface, or may conversely include an elastic body having a cross-sectionally circular arc-shaped concave outer surface and a rigid body secured to the elastic body and having the second cross-sectionally circular arc-shaped convex outer surface. If an elastic body is interposed between the support and the flat surface, it is possible to absorb vibrations in the vertical direction of the foundation or the base by means of the elastic body, and trigger action can be obtained due to the slight elastic deformation of the elastic body in the stationary state. Furthermore, in the case where the rotating body has an elastic body having the second cross-sectionally circular arc-shaped convex outer surface, it is possible to prevent unexpected slippage with respect to the flat surface at the second cross-sectionally circular arc-shaped convex outer surface coming into contact with the flat surface, making it possible to effect the rotation and rolling of the rotating body reliably. In addition, by applying the elastic body to at least one of a main body and a sliding portion of the support, the vibrations in the vertical direction of the foundation or the base may be absorbed by the elastic deformation of the elastic body of the support.
In the base isolation supporting device in accordance with a further aspect of the present invention, the support may be adapted to be affixed to the base isolation support object, in which case the rotating body at the second cross-sectionally circular arc-shaped convex outer surface may be adapted to be brought into rollable contact with the flat surface of the foundation or the base, and the center of curvature of the second cross-sectionally circular arc-shaped convex outer surface of the rotating body may be positioned eccentrically upwardly in the vertical direction with respect to the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body. Alternatively, the support may be adapted to be affixed to the foundation or the base, in which case the rotating body at the second cross-sectionally circular arc-shaped convex outer surface may be adapted to be brought into rotatable contact with the flat surface of the base isolation support object, and the center of curvature of the second cross-sectionally circular arc-shaped convex outer surface of the rotating body may be positioned eccentrically downwardly in the vertical direction with respect to the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body.
In the present invention, as the base isolation support object to be supported, it is possible to cite a fixture such as a display rack of a store or the like, a bookshelf of an office, a library, a general dwelling house, or the like, office equipment, machinery of a plant and a bed with machinery mounted thereon, inspection and diagnostic equipment of a hospital, a compact warehouse, and the like. However, the present invention is not limited to the same. As the base, it is possible to cite a foundation floor structured on the ground, a floor of a structure such as a store, an office, a library, a general dwelling house, a hospital, and a warehouse, but the present invention is not limited to the same.
In cases where the trigger function (function in which sliding does not occur at vibration acceleration of a fixed level or below, and sliding occurs at vibration acceleration exceeding the fixed level) and a vibration damping function (function in which vibrational energy causing sliding is absorbed through the dissipation of the vibration as heat in sliding) are not required, the cross-sectionally circular arc-shaped outer surface of the support, the cross-sectionally circular arc-shaped outer surface or the first cross-sectionally circular arc-shaped convex outer surface of the rotating body, and the cross-sectionally circular arc-shaped concave outer surface of the rotating body, which serve as sliding surfaces, may be constituted by surfaces whose coefficient of friction is extremely small. In contrast, in cases where the trigger function and the vibration damping function are required, such outer surfaces may be constituted by surfaces having a coefficient of friction of an appropriate level. If the trigger function is provided, it is possible to avoid unnecessary and oversensitive relative vibration of the base isolation support object by imparting a small vibration acceleration to the foundation or the base and a small vibration acceleration to the base isolation support object, and if the vibration damping function is provided, it becomes possible to return the base isolation support object which once vibrated relative to the foundation or the base to the stationary state in an early stage.
On the other hand, the cross-sectionally circular arc-shaped convex outer surface of the rotating body serving as a rolling surface should preferably have a coefficient of friction of an appropriate level so as not to slide easily but to roll on the flat surface of the foundation or the base or the base isolation support object in the vibration of an earthquake in the horizontal direction.
The cross-sectionally circular arc-shaped outer surface of the support and the cross-sectionally circular arc-shaped outer surface and the cross-sectionally circular arc-shaped convex outer surface of the rotating body, or the first cross-sectionally circular arc-shaped convex outer surface of the support and the cross-sectionally circular arc-shaped concave outer surface and the second cross-sectionally circular arc-shaped convex outer surface of the rotating body, may be each constituted by a portion of a cylindrical surface or may be constituted by a portion of a spherical surface. In the case where the outer surface is constituted by a portion of a cylindrical surface, it is possible to impart directionality to the base isolation effect, and in the case where it is constituted by a portion of a spherical surface, it is possible to exhibit the base isolation effect in the vibration of the horizontal surface in all directions. In the case where directionality is imparted to the base isolation effect, all of the cross-sectionally circular arc-shaped outer surface of the support and the cross-sectionally circular arc-shaped outer surface and the cross-sectionally circular arc-shaped convex outer surface of the rotating body, or all of the first cross-sectionally circular arc-shaped convex outer surface of the support and the cross-sectionally circular arc-shaped concave outer surface and the second cross-sectionally circular arc-shaped convex outer surface of the rotating body need not be formed by a portion of a cylindrical surface, and it suffices if any one of them is formed by a portion of a cylindrical surface.
Each elastic body may be formed of a natural rubber, a synthetic rubber, or a synthetic resin material having elasticity, and the elastic body, if formed of a natural rubber or a synthetic rubber, may be secured to the rigid body by vulcanization bonding, or may be secured to the rigid body by using another adhesive agent.
The base isolation supporting device in accordance with the present invention may further comprise a disengagement prevention mechanism for preventing the disengagement of the rotating body from the support by inhibiting the rotation of the rotating body more than a fixed degree as the rotating body collides against the disengagement prevention mechanism in the rotation of the rotating body about the center of curvature of the cross-sectionally circular arc-shaped outer surface of the support, or in the rotation of the rotating body about the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body with respect to the support. The disengagement prevention mechanism may have an enclosure body which is mounted to the support and encloses the rotating body, in which case the enclosure body may have an inner surface which the rotating body contacts in the rotation of the rotating body more than a fixed degree about the center of curvature of the cross-sectionally circular arc-shaped outer surface of the support, or in the rotation of the rotating body more than a fixed degree about the center of curvature of the cross-sectionally circular arc-shaped concave outer surface of the rotating body with respect to the support.
With the base isolation supporting device having the disengagement prevention mechanism, even if the rotating body tends to be rotated largely by an unexpected large tremor, the disengagement of the rotating body from the support can be prevented by inhibiting the rotation of the rotating body more than a fixed degree, with the result that it is possible to prevent the fall or the like of the base isolation support object, making it possible to minimize the damage caused by an earthquake.
According to the present invention, it is possible to provide a base isolation supporting device which can be installed by using as it is the building floor or the like where a base isolation support object, including a fixture such as a display rack, a bookshelf, or the like, is installed, and which is capable of easily attaining a long period thereof.
Next, a more detailed description will be given of the invention on the basis of the preferred embodiments illustrated in the drawings. It should be noted that the invention is not limited to these embodiments.
In
The support 8 has a columnar main body 23 with a threaded portion 21 provided at an upper portion thereof and a constricted portion 22 provided at a lower portion thereof and a partially spherical portion 24 provided integrally on the constricted portion 22 of the main body 23, and the support 8 is fixed to the fitting 6 at the threaded portion 21 positionally adjustably in the vertical direction V by a pair of nuts 25 which are threadedly engaged with the threaded portion 21. The cross-sectionally circular arc-shaped convex outer surface 7 is constituted by a partially spherical convex surface 26 of the partially spherical portion 24 as a portion of a spherical surface.
The rotating body 12 includes the cross-sectionally circular arc-shaped concave outer surface 9 constituted by a partially spherical concave surface 31 as a portion of a spherical surface, the cross-sectionally circular arc-shaped convex outer surface 11 constituted by a partially spherical convex surface 32 as a portion of a spherical surface, and a truncated conical outer surface or a truncated polygonal conical outer surface including a truncated quadrangular conical outer surface or the like, which is continuously connected to the cross-sectionally circular arc-shaped concave outer surface 9 on one side and to the cross-sectionally circular arc-shaped convex outer surface 11 on the other side, i.e., a truncated conical outer surface 33 in this embodiment. The rotating body 12 is rotatable with respect to the cross-sectionally circular arc-shaped convex outer surface 7 of the support 8 in the R direction about the center O1, which is the center of curvature of the cross-sectionally circular arc-shaped convex outer surface 7 of the support 8 and is also the center of curvature of the cross-sectionally circular arc-shaped concave outer surface 9 of the rotating body 12. In a stationary state (the state shown in
In the case where a tremor in a horizontal direction H due to an earthquake is not applied to the floor 2, each of a plurality of, at least three, base isolation supporting devices 1 disposed at the lower portion of the outer casing 4 of the fixture 3 is in the stationary state shown in
The period T of the pendular movement of the rotating body 12 is expressed by the formula (1), and in the case where θ is small, θ/sin θ≈1, with the result that the period T is expressed by the formula (2), and the smaller the amount of eccentricity δ(=r2−d), which is the difference between the distance d and the radius of curvature r2 of the cross-sectionally circular arc-shaped convex outer surface 11, the longer the period T becomes, whereas, to the contrary, the greater the amount of eccentricity δ (=r2−d), the shorter the period T becomes.
where, g is the acceleration of gravity.
With above-described base isolation supporting device 1, the rotating body 12 at the cross-sectionally circular arc-shaped convex outer surface 11 thereof is adapted to be brought into contact with the flat surface 10 of the floor 2 rollably and rotatably, and, in the stationary state, the center O2, which is the center of curvature of the cross-sectionally circular arc-shaped convex outer surface 11, is offset from the center O1, which is the center of curvature of the cross-sectionally circular arc-shaped concave outer surface 9, upwardly in the vertical direction V with the amount of eccentricity δ, with the result that the base isolation supporting device 1 can be installed by using as it is the flat surface 10 of the floor 2. Moreover, since the period T of the pendular movement of the rotating body 12 can be determined by the amount of eccentricity δ which is the difference between the distance d and the radius of curvature r2 of the cross-sectionally circular arc-shaped convex outer surface 11, it is possible to easily attain a long period. Moreover, since the cross-sectionally circular arc-shaped convex outer surface 7 is constituted by the partially spherical convex surface 26, the cross-sectionally circular arc-shaped concave outer surface 9 is constituted by the partially spherical concave surface 31, and the cross-sectionally circular arc-shaped convex outer surface 11 is constituted by the partially spherical convex surface 32, namely, since the respective surfaces are constituted by spherical surfaces, the fixture 3 can be supported in a base-isolated manner with respect to the tremors of an earthquake in all directions in the horizontal direction H. In addition, since the position for mounting the support 8 to the fitting 6 is adapted to be adjustable by means of the threaded portion 21 and the nuts 25, the fixture 3 can be supported in a base-isolated manner at an arbitrary position in the vertical direction V.
Incidentally, with the base isolation supporting device 1 shown in
In the base isolation supporting devices 1 shown in
The enclosure body 52 includes a disk-shaped ceiling portion 55 secured to the threaded portion 21 of the support 8 by being sandwiched between the fitting 6 and the nuts 25; a cylindrical portion 56 formed integrally at an upper end thereof with an outer peripheral edge of the ceiling portion 55 in such a manner as to surround the rotating body 12 from around; an annular outer collar portion 58 formed integrally with a lower end of the cylindrical portion 56 in such a manner as to project outwardly in the horizontal direction H from the lower end of the cylindrical portion 56, an annular lower surface 57 of the annular outer collar portion 58 being in contact with the flat surface 10 of the floor 2; and an annular inner collar portion 62 which is formed integrally with the cylindrical portion 56 above at a position higher than the annular outer collar portion 58 in such a manner as to project inwardly in the horizontal direction H from a cylindrical inner surface 59 of the cylindrical portion 56, and which has a cylindrical inner peripheral surface 61 defining an opening 60 in which the rotating body 12 is capable of rotating.
With the base isolation supporting device 1 having the disengagement prevention mechanism 51, as shown in
According to the base isolation supporting device 1 having the disengagement prevention mechanism 51, even if the rotating body 12 tends to be rotated largely by an unexpected large tremor in the horizontal direction H, the disengagement of the rotating body 12 from the support 8 can be prevented by inhibiting the rotation of the rotating body 12 more than a fixed degree, with the result that it is possible to prevent the fall or the like of the fixture 3, making it possible to minimize the damage caused by an earthquake.
With the disengagement prevention mechanism 51 having the enclosure body 52, since the annular outer collar portion 58 is provided which is in contact with the flat surface 10 at the annular lower surface 57 thereof in the stationary state of the base isolation supporting device 1, an interior 65 of the enclosure body 52 in the stationary state of the base isolation supporting device 1 can be sealed with respect to the outside, so that it is possible to prevent ingress of dust into that interior 65 and avoid faulty operation of the base isolation supporting device 1 due to the dust. It should be noted that the function of the elastic body 43 of the rotating body 12 shown in
In the above-described base isolation supporting device 1, the support 8 is affixed to the outer casing 4 of the fixture 3, and the rotating body 12 at its cross-sectionally circular arc-shaped convex outer surface 11 is rollably brought into contact with the flat surface 10 of the floor 2. Alternatively, however, the support 8 at the threaded portion 21 may be affixed to the floor 2, and the cross-sectionally circular arc-shaped convex outer surface 11 of the rotating body 12 may be rotatably brought into contact with a flat surface 71 which is the lower surface of the outer casing 4 of the fixture 3. In other words, a combination assembly of the support 8 and the rotating body 12 may be set such that the top and the bottom thereof are in reverse. In the base isolation supporting device having a top-bottom inverted arrangement, it suffices if the center O2, which is the center of curvature of the cross-sectionally circular arc-shaped convex outer surface 11 of the rotating body 12, is positioned eccentrically with the amount of eccentricity δ downwardly toward the floor 2 side in the vertical direction V with respect to the center O1, which is the center of curvature of the cross-sectionally circular arc-shaped concave outer surface 9 of the rotating body 12, in the stationary state of the base isolation supporting device.
In a base isolation supporting device 1a in accordance with a further embodiment shown in
The support 8a has a columnar main body 23a having a threaded portion 21a at an upper portion thereof and a sliding portion 27a which is formed integrally with a lower portion of the main body 23a in such a manner as to be disposed between the main body 23a and the rotating body 12a and has the cross-sectionally circular arc-shaped convex outer surface 7a constituted by a partially spherical convex surface 26a as a portion of a spherical surface. The main body 23a is fixed to the fitting 6 at the threaded portion 21a positionally adjustably in the vertical direction V by the pair of nuts 25 which are threadedly engaged with the threaded portion 21a. The main body 23a is adapted to be affixed to the lower portion of the outer casing 4 of the fixture 3 by means of the fitting 6. The sliding portion 27a has a disk portion 22a formed integrally with the lower portion of the main body 23a and a partial spherical portion 24a formed integrally with the disk portion 22a and having the partially spherical convex surface 26a.
The rotating body 12a includes the cross-sectionally circular arc-shaped concave outer surface 9a constituted by the partially spherical concave surface 31a as a portion of a spherical surface, the cross-sectionally circular arc-shaped convex outer surface 11a constituted by a partially spherical convex surface 32a as a portion of a spherical surface, and an annular end face 33 whose inner peripheral edge is continuously connected to the cross-sectionally circular arc-shaped concave outer surface 9a and whose outer peripheral edge is continuously connected to the cross-sectionally circular arc-shaped convex outer surface 11a. The rotating body 12a is slidingly rotatable with respect to the cross-sectionally circular arc-shaped convex outer surface 7a of the support 8a in the R direction about the center O1, which is the center of curvature of the cross-sectionally circular arc-shaped concave outer surface 9a of the rotating body 12a. The cross-sectionally circular arc-shaped convex outer surface 11a has a radius of curvature r2 which is greater than a radius of curvature r1 of the cross-sectionally circular arc-shaped concave outer surface 9a of the rotating body 12a. In the stationary state (the state shown in
In the case where a tremor in the horizontal direction H due to an earthquake is not applied to the floor 2, each of a plurality of, at least three, base isolation supporting devices 1a disposed at the lower portion of the outer casing 4 of the fixture 3 is in the stationary state shown in
The period T of the pendular movement of the rotating body 12a is expressed by the formula (1), and in the case where θ is small, θ/sin θ≈1, with the result that the period T is expressed by the formula (2), and the smaller the amount of eccentricity δ (=r2−r1), which is the difference between the radius of curvature r2 of the cross-sectionally circular arc-shaped convex outer surface 11a and the radius of curvature r1 of the cross-sectionally circular arc-shaped concave outer surface 9a, the longer the period T becomes, whereas, to the contrary, the greater the amount of eccentricity δ (=r2−r1), the shorter the period T becomes.
With above-described base isolation supporting device 1a as well, the rotating body 12a has the cross-sectionally circular arc-shaped convex outer surface 11a which is adapted to be brought into contact with the flat surface 10 of the floor 2 rollably and rotatably, and, in the stationary state, the center O2, which is the center of curvature of the cross-sectionally circular arc-shaped convex outer surface 11a, is offset from the center O1, which is the center of curvature of the cross-sectionally circular arc-shaped concave outer surface 9a, upwardly in the vertical direction V with the amount of eccentricity δ, with the result that the base isolation supporting device 1a can be installed by using as it is the flat surface 10 of the floor 2. Moreover, since the period T of the pendular movement of the rotating body 12a can be determined by the amount of eccentricity δ which is the difference between radius of curvature r1 of the cross-sectionally circular arc-shaped concave outer surface 9a and the radius of curvature r2 of the cross-sectionally circular arc-shaped convex outer surface 11a, it is possible to easily attain a long period. Moreover, since the cross-sectionally circular arc-shaped convex outer surface 7a is constituted by the partially spherical convex surface 26a, the cross-sectionally circular arc-shaped concave outer surface 9a is constituted by the partially spherical concave surface 31a, and the cross-sectionally circular arc-shaped convex outer surface 11a is constituted by the partially spherical convex surface 32a, namely, since the respective surfaces are constituted by spherical surfaces, the fixture 3 can be supported in a base-isolated manner with respect to the tremors of an earthquake in all directions in the horizontal direction H. In addition, since the position for mounting the support 8 to the fitting 6 is adapted to be adjustable by means of the threaded portion 21a and the nuts 25, the fixture 3 can be supported in a base-isolated manner at an arbitrary position in the vertical direction V.
Incidentally, with the base isolation supporting device 1a shown in
In the base isolation supporting devices 1 shown in
With the above-described base isolation supporting device 1a, the possibility of the rotating body 12a coming off the support 8a occurs in the tremor of an earthquake accompanying the large rotational angle θ of the rotating body 12a. However, as shown in
With the base isolation supporting device 1a having the disengagement prevention mechanism 51, as shown in
According to the base isolation supporting device 1a having the disengagement prevention mechanism 51, in the same way as described above, even if the rotating body 12a tends to be rotated largely by an unexpected large tremor in the horizontal direction H, the disengagement of the rotating body 12a from the support 8a can be prevented by inhibiting the rotation of the rotating body 12a more than a fixed degree, with the result that it is possible to prevent the fall or the like of the fixture 3, making it possible to minimize the damage caused by an earthquake.
Also with the disengagement prevention mechanism 51 for the base isolation supporting device 1a, since there is provided the annular outer collar portion 58 which is in contact with the flat surface 10 at the annular lower surface 57 thereof in the stationary state of the base isolation supporting device 1a, the interior 65 of the enclosure body 52 in the stationary state of the base isolation supporting device 1a can be sealed with respect to the outside, so that it is possible to prevent ingress of dust into that interior 65 and avoid faulty operation of the base isolation supporting device 1a due to the dust. Also in the base isolation supporting device 1a in accordance with this embodiment, an elastic plate may be provided on the annular lower surface 57, or a clearance gap may be provided between the annular lower surface 57 and the flat surface 10.
In the above-described base isolation supporting device 1a, the support 8a is affixed to the outer casing 4 of the fixture 3, and cross-sectionally circular arc-shaped convex outer surface 11a of the rotating body 12 is rollably brought into contact with the flat surface 10 of the floor 2. Alternatively, however, in the same way as the base isolation supporting device 1, the support 8a at the threaded portion 21a may be affixed to the floor 2, and the cross-sectionally circular arc-shaped convex outer surface 11a of the rotating body 12a may be rotatably brought into the flat surface 71 which is the lower surface of the outer casing 4 of the fixture 3. In other words, a combination assembly of the support 8a and the rotating body 12a may be set such that the top and the bottom thereof are in reverse. In the base isolation supporting device having a top-bottom inverted arrangement, it suffices if the center O2, which is the center of curvature of the cross-sectionally circular arc-shaped convex outer surface 11a of the rotating body 12a, is positioned eccentrically with the amount of eccentricity δ downwardly toward the floor 2 side in the vertical direction V with respect to the center O1, which is the center of curvature of the cross-sectionally circular arc-shaped concave outer surface 9a of the rotating body 12a, in the stationary state of the base isolation supporting device.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/006375 | 12/22/2014 | WO | 00 |