Damping device for structure
10948043 ยท 2021-03-16
Assignee
- Kurabayashi; Hiroshi (Tokyo, JP)
- SANSEI AIR DANSHIN SYSTEM, LTD. (Tokyo, JP)
- OHMOTO GUMI CO., LTD. (Okayama, JP)
- Konkuk University Industrial Cooperation Corp (Seoul, KR)
- GRADIENT WIND ENGINEERING INC. (Ottawa, CA)
Inventors
Cpc classification
F16F2230/0052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/112
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04H9/0215
FIXED CONSTRUCTIONS
F16F2238/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16F2222/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/116
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2238/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/1028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/112
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A damping device for structure includes a base frame installed on a target place, an air floating mass disposed on the base frame to blow off air, a TMD mass disposed above the base frame to float with an air pressure, one pair of guiderail units disposed on X-direction both sides of the base frame along the X direction respectively, slider units disposed to be slidable in the X direction relative to the guiderail units, coupled to each X-direction side face of the TMD mass and each including a slider moving up/down mechanism part which moves down a slider when the TMD mass floats, an oil damper attached to the base frame to exert an attenuation action on the TMD mass and a coil spring attached to the base frame to exert a restoration action on the TMD mass.
Claims
1. A damping device for structure comprising: four installation bases which are installed on a target place in a state of being arranged into a square shape; an air floating mass which is disposed on a target place which occupies a central position of the four installation bases and blows off air; a TMD mass which is disposed above the air floating mass, is framed with an H-shaped frame material which floats with a pressure of air sent from the air floating mass, wherein the TMD mass is a square shape in a planar view; two cross guide bodies which are installed on one set of the two diagonally-arranged installation bases in the four installation bases and upper parts of which are coupled to lower surfaces of one set of diagonally arranged both corners of the TMD mass respectively; and two slide bearings which are installed on the other set of the two diagonally arranged installation bases in the four installation bases and come into sliding contact with the other set of diagonally arranged both corners of the TMD mass.
2. The damping device for structure according to claim 1, further comprising: elastic shock absorbing tools fixedly arranged in a state of respectively confronting Y-direction side faces of the TMD mass.
3. The damping device for structure according to claim 1, further comprising: an air leak prevention mechanism unit which is disposed over an entire inner side of a lower-surface outer peripheral part of the TMD mass to prevent air leakage through a lower surface of the TMD mass when the TMD mass floats.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(14) The present invention achieves an aim to provide a damping device for structure which is able to achieve suppression of relative displacement and diversification of adjustment of a device natural period in generation of vibrations such as a ground motion and so forth and is able to achieve also reductions in size and price of the device by a configuration which includes a base frame which is installed on a target place, an air floating mass which is disposed on the base frame and blows off air, a TMD mass which is disposed above the base frame and floats with a pressure of air sent from the air floating mass, one pair of guiderail units which are disposed on X-direction both sides of the base frame along the X direction respectively, a required number of slider units which are disposed to be slidable in the X direction relative to the one pair of guiderail units and are coupled to each X-direction side face of the TMD mass and each of which includes a slider moving up/down mechanism part which moves down a slider when the TMD mass floats, an oil damper which is attached to the base frame to be disposed in the X direction and exerts an attenuation action on the TMD mass when the TMD mass vibrates and a coil spring which is attached to the base frame to be disposed in the X direction and exerts a restoration action on the TMD mass when the TMD mass vibrates.
EMBODIMENTS
(15) In the following, damping devices for structures according to preferred embodiments of the present invention will be described in detail with reference to the drawings.
First Embodiment
(16) A damping device for structure 1 according to the first embodiment of the present invention is a floating-type damping device which is configured to perform damping in one axial direction (an X direction).
(17) That is, as illustrated in
(18) Next, the guide rail unit 10 and the slider unit 11 which includes the slider moving-up/down mechanism part 11A will be described with reference to
(19) As illustrated in
(20) As illustrated in
(21) In addition, the guiderail unit 10 and the slider unit 11 are configured in such a manner that a disc spring 25a is interposed between a lower surface of the coupling piece 23 and an upper surface of the slider holder 24, a knock pin 26 is disposed ranging from an inner part of the coupling piece 23 to an inner part of the slider holder 24 to be disposed concentrically with the disc spring 25a and thereby positional control is conducted in such a manner that in a normal state (for example, a state where no seismic motion occurs) illustrated on the left column in
(22) Further, the guiderail unit 20 and the slider unit 11 are configured in such a manner that in damping (for example, a state where a seismic motion occurs and the TMD mass 7 is made to float upward), the knock pin 26 is operated to release the positional control on the disc spring 25a, to move the slider holder 24 and the slider 25 downward by a predetermined dimension with the aid of elastic force of the disc spring 25a and thereby to bring the slider 25 into sliding contact with the guiderail 10b as illustrated on the right column in
(23) That is, the slider moving up/down mechanism part 11A is configured by the slider holder 24, the disc spring 25a and the knock pin 26 thereby to configure to make it possible to accurately execute an X-direction damping operation by the TMD mass 7 which enters a floating state in damping.
(24) Next, the air leakage prevention mechanism unit 12 will be described with reference to
(25) As illustrated in
(26) Then, the air leakage prevention mechanism unit 12 is configured in such a manner that in the normal state (for example, in the case where no seismic motion occurs), the auto-bulging tube 28 is housed in the concave groove part 27 of the air floating mass 6 in a crushed state as illustrated on the left column in
(27) Next, an air supply system for the air floating mass 6 and a drive system for the knock pin 26 will be described with reference to
(28) The damping structure for structure 1 according to the first embodiment includes a vibration sensor 31 which detects vibrations such as the seismic motion and so forth, a control unit 32 which generates an air drive signal for the air floating mass 6 and a drive signal for the knock pin 26 on the basis of a detection signal from the vibration sensor 31, an air supply source 33, a flow rate control valve 34 and an air supply pipeline 35 which configure the air supply system for the air floating mass 6 and an actuator 36 which operates the knock pin 26 on the basis of the drive signal for the knock pin 26, in addition to the above-described constitutional elements.
(29) Then, the damping device for structure 1 is configured in such a manner that the air supply source 33 is operated on the basis of the air drive signal to feed predetermined pressure air to the air floating mass 6 via the flow rate control valve 34 and the air supply pipeline 35, to blow off the air to the lower surface of the air floating mass 6 and thereby to float the air floating mass 6 and the TMD mass 7 and the knock pin 26 is operated on the basis of the drive signal to release the positional control on the disc spring 25a by the knock pin 26.
(30) The damping device for structure 1 according to the first embodiment is a vibration control (seismic isolation, damping (seismic control)) device for the building, civil engineering and mechanical structures and so forth which is adapted to prevent the structure concerned from greatly shaking in a horizontal direction when vibrational external force which is generated from an earthquake, a typhoon, equipment and machinery and so forth is applied to the structure concerned from the outside by installing one system or a plurality of systems using the damping device for structure 1 on the structure concerned or on the floor surface and is adapted to reduce relative displacement and an absolute acceleration of the structure concerned in order to ensure safety and habitability of the structure.
(31) In the damping device for structure 1 according to the first embodiment, the TMD mass 7 whose mass is optionally set is constructed to float with air sent from the air floating mass 6 to be movable (actively and passively) in one horizontal direction (the X direction). In addition, the damping device for structure 1 also includes the guiderail unit 10 which has a rotation prevention function and a load support function, the coil spring 16 which configures a restoring force application mechanism, the oil damper 15 which configures an attenuation mechanism and so forth.
(32) Incidentally, use of the damping device for structure 1 together with a friction plate and so forth is also possible for special uses.
(33) In the damping device for structure 1 according to the first embodiment, it is also possible to configure the restoring force application mechanism by a leaf spring, laminated rubber and so forth having a period adjustment function, in addition to the coil spring 16.
(34) In addition, it is also possible to configure the attenuation mechanism by attenuation mechanisms of an elastoplastic system, a friction system and so forth, in addition to the oil damper 15 of a viscous system.
(35) In the damping device for structure 1 according to the first embodiment, the air supply source 33 is configured in such a manner that an air compressor is installed near the damping device for structure 1 and it is made possible to freely set an air pressure and a floating height by the flow rate control valve 34 and so forth.
(36) In the following, the damping device for structure 1 according to the first embodiment will be described in more detail.
(37) The damping device for structure 1 according to the first embodiment includes the air leakage prevention mechanism unit 12 to prevent air leakage to the outside through the lower part of the air floating mass 6 when the air floating mass 6 floats and thereby to upgrade a floating function of the air floating mass 6.
(38) Selection is possible among a method of making use of air, a mechanical sealing method and so forth as a sealing method for prevention of air leakage around the air floating mass 6 and there are various options depending on the use application of a structure to be controlled and so forth.
(39) In addition, the air floating mass 6 is generally placed on the floor and includes triggers such as the vibration sensor 31, the control unit 32 and so forth used for floating when an external vibration is input and a trigger level in this case is made to be freely settable.
(40) Next, for example, the guiderail unit 10 which is used together with the TMD mass 7 also has the function of preventing rotation of the TMD mass 7 in addition to the function of supporting a load which is about 0% to 30% of the entire mass of the TMD mass 7.
(41) Further, for example, improvement of workability, a reduction in amplitude and a reduction in price of the system are achieved by using a friction plate together with the damping device for structure 1.
(42) In the damping device for structure 1 according to the first embodiment, although the number and the kind of spring elements used are freely selectable depending on the use application of the damping device for structure 1 and it is possible to use one (kind of) spring element and/or the plurality of (kinds of) the spring elements in a combined state as the restoration mechanism, it is possible to select specifications of the magnitude of a deformation volume, a spring constant and so forth in a variety of ways.
(43) The attenuation mechanism is configured in such a manner that the number and the kind thereof are freely selectable depending on the use application of the damping device for structure 1 and, mainly in a viscous damper, a viscoelastic damper and the elastoplastic damper, one (kind of) damper is used and/or the plurality of (kinds of) dampers are used in the combined state.
(44) In the damping device for structure 1 according to the first embodiment, it is necessary for the guiderail unit 10 which supports some mass of the TMD mass 7 to be used together with a mechanism which is able to freely move the TMD mass 7 in an up-down direction when the TMD mass 7 floats and the slider moving up/down mechanism 11A is adopted in the first embodiment for this reason.
(45) The guiderail unit 10 exhibits a function of making it possible to support the total mass of the TMD mass 7 in a case where a trouble occurs in the air floating mass 6 as a rare possibility when the TMD mass 7 floats with air.
(46) In further summary, in the damping device for structure 1 according to the first embodiment, since the TMD mass 7 is configured as the floating-system mass, a sliding resistance in execution of the damping operation is small and therefore it becomes possible to reduce the vibration in response to a small input from the outside.
(47) In the damping device for structure 1 so configured, optimum attenuation force is applied in order to ensure performance of each piece of control equipment. For this purpose, the basic attenuation force which is small makes adjustment easy and therefore the point that the sliding resistance is small becomes a major advantage. At the same time, the damping device for structure 1 also has such an advantage that abrasion and generation of heat are reduced.
(48) In the damping device for structure 1 according to the first embodiment, the noise generated in execution of the damping operation is reduced by configuring the TMD mass 7 as the floating-system mass.
(49) The rotation prevention function and vibration control performance become important factors from the viewpoints of suppression of the vibration displacement of the TMD mass 7 and deformation suppression and safety of a piping system. In this respect, in the damping device for structure 1 according to the first embodiment, it becomes possible to exhibit the rotation prevention function and the vibration control performance by the guiderail unit 10.
(50) Further, the damping device for structure 1 according to the first embodiment is manufactured by using the optimum restoring force application mechanism and attenuation mechanism and therefore period adjustment is easy and adjustment of the restoring force is also easy.
(51) As described above, according to the damping device for structure 1 according to the first embodiment, it becomes possible to achieve the suppression of relative displacement and the diversification of adjustment of the device natural period in generation of the vibrations such as the seismic motion and so forth and to reduce the relative displacement and the absolute acceleration of the structure in order to ensure the safety and the habitability of the structure and further the reductions in size and price of the damping device for structure 1 itself become also possible.
(52) In addition to the above, also activation of the damping device for structure 1 becomes possible by being equipped with a control panel (for example, the control unit 32), a vibration sensor (for example, the vibration sensor 31), a driving device (for example, the actuator 36) and so forth.
(53) The damping device for structure 1 according to the first embodiment is highly useful in the points of maintenance and insurance of the safety, the habitability and so forth mainly against the external vibrations such as, for example, vibrations including the long-period ground motion which are generated when an earthquake occurs, when a gale blows in a typhoon and so forth and when resonance occurs by being induced by a vortex-induced vibration which are natural external force and further a traffic-induced vibration, a construction-induced vibration, equipment/machinery-induced vibrations and so forth which are environmental vibrations.
Second Embodiment
(54) Next, a damping device for structure 1A according to the second embodiment of the present invention will be described with reference to
(55) The damping device for structure 1A according to the second embodiment is configured to perform damping in one axial direction (the X direction) by a rail system and includes, as illustrated in
(56) As illustrated in
(57) According to the uniaxial damping type damping device for structure 1A according to the second embodiment, the TMD mass 43 is configured to slidingly move by being guided by the guiderail unit 42. Thereby, it becomes possible to accurately exhibit an attenuation action by the oil damper 47 and a restoration action by the coil spring 46, to achieve the suppression of relative displacement and the diversification of adjustment of the device natural period in generation of the vibrations such as the seismic motion and so forth and to achieve also the reductions in size and price of the damping device for structure 1A.
Third Embodiment
(58) Next, a damping device for structure 1B according to the third embodiment of the present invention will be described with reference to
(59) The damping device for structure 1B according to the third embodiment is configured to perform one axial direction (the X direction) damping by the rail system and includes, as illustrated in
(60) According to the uniaxial damping type damping device for structure 1B according to the third embodiment, the TMD mass 66 is configured to slidingly move by being guided by the guiderail unit 63 and thereby it becomes possible to accurately exhibit the attenuation action by the oil damper 69 and the restoration action by the coil spring 68. Thereby, it becomes possible to achieve the uniaxial damping type damping device for structure 1B which is able to achieve the suppression of restriction on relative displacement and the diversification of adjustment of the device natural period in generation of the vibrations such as the seismic motion and so forth and is able to achieve also the reductions in size and price of the damping device for structure 1B.
Fourth Embodiment
(61) Next, a damping device for structure 1C according to the fourth embodiment of the present invention will be described with reference to
(62) The damping device for structure 1C according to the fourth embodiment is a floating-system device which is configured to perform damping in two axial directions (the X direction and the Y direction) similarly to the damping device for structure 1 according to the first embodiment and includes, as illustrated in
(63) The cross-guide bodies 87, 87 are configured by additionally attaching lower surfaces of respective lower-side Y-direction guide parts 87a, 87a to one set of the two diagonally arranged installation bases 81, 81 in the Y-direction respectively and additionally attaching upper surfaces of upper-side x-direction guide parts 87b, 87b which are arranged orthogonally to the Y-direction guide parts 87a, 87a respectively to lower surfaces of upper base plates 84a which have the same shapes as the installation bases 81 which are affixed to one set of diagonally arranged corners of the H-shaped frame material (the H-shaped steel material) 84 of the TMD mass 86.
(64) One slide bearing 88 in the two slide bearings 88, 88 includes a slide plate 89 which is placed on one installation base 81 in the other set of the diagonally arranged two installation bases 81, 81 and is small in frictional resistance and a columnar slide body 90 which is disposed on a central part of the slide plate 89 and slidingly moves on the slide plate 89 and whose upper surface is additionally attached to the lower surface of the upper base plate 84a which has the same shape as the installation base 81 which is affixed to one corner of the other set of diagonally arranged corners of the H-shaped frame material (the H-shaped steel material) 84 of the TMD mass 86.
(65) The other slide bearing 88 is configured in the same manner as the above-described slide bearing 88.
(66) Although detailed description is omitted, the Y-direction guide part 87a is configured by a combination of a Y-direction rail and a Y-direction slider and it becomes possible to cause no trouble in the Y-direction damping operation by the damping device for structure 1C according to the fourth embodiment by constructing that engagement of the Y-direction rail with the Y-direction slider is not released also when the TMD mass 86 floats.
(67) Likewise, although detailed description is omitted, also the X-direction guide part 87a is configured by a combination of an X-direction rail and an X-direction slider and it becomes possible to cause no trouble in the X-direction damping operation by the damping device for structure 1C according to the fourth embodiment by constructing that engagement of the X-direction rail with the X-direction slider is not released also when the TMD mass 86 floats.
(68) Incidentally, also in the damping device for structure 1C according to the fourth embodiment, it is also possible to have a configuration that an air leakage prevention mechanism unit 85 which is similar to the air leakage prevention mechanism unit 12 according to the first embodiment is added.
(69) Furthermore, also in the damping device for structure 1C according to the fourth embodiment, it is also possible to have a configuration that elastic shock absorbing tools which are similar to the elastic shock absorbing tools 18, 49, 71 according to the first to third embodiment is added.
(70) According to the biaxial damping type damping device for structure 1C according to the fourth embodiment, the TMD mass 86 is configured to accurately float with air and to slidingly move in two axial directions by being guided by the cross guide bodies 87 in generation of the vibration and thereby it becomes possible to execute the damping operation in a state where the sliding resistance is small and the noise is low in execution of the damping operation by the TMD mass 86 and while promoting rotation prevention and it becomes possible to accurately exhibit also the attenuation action by the slide bearing 88. Thereby, it is possible to achieve the biaxial damping type damping device for structure 1C which is able to achieve the suppression of relative displacement and the diversification of adjustment of the device natural period in generation of the vibrations such as the seismic motion and so forth and to achieve also the reductions in size and price of the damping device for structure 1C.
(71) Incidentally, in the above-described damping devices for structure 1 to 1C according to the first to fourth embodiments, it is possible to promote performance improvement for vibration control and functional improvement for safety insurance by combining the air-floating system configuration of each of the damping devices for structures 1 to 1C with a generally used vibration control device. In addition, it is possible to freely adjust the friction force when each of the TMD masses 7, 43, 66 and 86 in the aforementioned damping devices for structure 1 to 1C vibrates in accordance with the use application of each of these damping devices 1 to 1C.
(72) The damping device for structure according to each of the embodiments of the present invention is widely applicable as a damping device for structure or a seismic isolation device for structure relating to the building, civil engineering and mechanical structures, towering structures such as a wind turbine generator, a steel tower, an antenna tower, a bridge main tower, a sightseeing tower and so forth, various structures such as material handling laser equipment and so forth and further electric and electronic structures such as computer equipment such as a server and so forth, the control panel, semiconductor equipment and so forth, large-scale mechanical structures such as a rotary compressor and so forth and structures such as a yawing device and so forth.