WO2001092753A1 - Dispositif d'amortissement - Google Patents
Dispositif d'amortissement Download PDFInfo
- Publication number
- WO2001092753A1 WO2001092753A1 PCT/JP2001/004488 JP0104488W WO0192753A1 WO 2001092753 A1 WO2001092753 A1 WO 2001092753A1 JP 0104488 W JP0104488 W JP 0104488W WO 0192753 A1 WO0192753 A1 WO 0192753A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- rotating body
- damping
- motion
- damping device
- peripheral side
- Prior art date
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16F—SPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
- F16F9/00—Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
- F16F9/10—Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using liquid only; using a fluid of which the nature is immaterial
- F16F9/103—Devices with one or more members moving linearly to and fro in chambers, any throttling effect being immaterial, i.e. damping by viscous shear effect only
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16F—SPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
- F16F15/00—Suppression of vibrations in systems; Means or arrangements for avoiding or reducing out-of-balance forces, e.g. due to motion
- F16F15/02—Suppression of vibrations of non-rotating, e.g. reciprocating systems; Suppression of vibrations of rotating systems by use of members not moving with the rotating systems
- F16F15/023—Suppression of vibrations of non-rotating, e.g. reciprocating systems; Suppression of vibrations of rotating systems by use of members not moving with the rotating systems using fluid means
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16F—SPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
- F16F9/00—Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
- F16F9/10—Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using liquid only; using a fluid of which the nature is immaterial
- F16F9/12—Devices with one or more rotary vanes turning in the fluid any throttling effect being immaterial, i.e. damping by viscous shear effect only
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16F—SPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
- F16F2232/00—Nature of movement
- F16F2232/06—Translation-to-rotary conversion
Definitions
- the present invention relates to a seismic isolation device that prevents vibration from being transmitted from a foundation to a building during an earthquake, and a damping device used for a vibration damping device that suppresses shaking of a high-rise building itself during an earthquake.
- a damping device 1 for a vibration isolator or a vibration damping device
- a damping device 1 Japanese Patent Application Laid-Open No. H10-184457
- the damping device 1 is disposed between the target portions 2a and 2b of a building or the like, and attenuates the vibration of the target portions 2a and 2b.
- the damping device 1 shown in FIG. 6 includes a casing 3, a poll screw mechanism 5 that converts a relative linear motion between the target portions 2 a and 2 b into a rotary motion of the rotary body 4, and a rotation of the rotary body 4. And a damping portion 6 that resists rolling motion.
- the nut 7 of the poll screw mechanism 5 is rotatably supported by the casing 3 and connected to the rotating body 4.
- the base end 3b of the casing 3 is fixed to one side 2b of the target part.
- the screw shaft 8 of the ball screw mechanism 5 projects from the tip 3a of the casing 3 and is fixed to the other 2a of the target portion.
- the damping part 6 has a viscous fluid 9 sealed between the inner periphery of the casing 3 and the outer periphery of the rotating body 4.
- the ball screw mechanism 5 converts the relative linear motion between the target portions 2a and 2b into the rotary motion of the rotator 4, and the damping portion 6 resists the rotary motion of the rotator 4.
- this publication describes a modification 11 of the damping device 1 shown in FIG.
- This modified example 11 is a pole screw mechanism 1 that converts the relative linear motion between the casing 13 and the target portions 2a and 2b into the rotary motion of the rotating body 14 similarly to the above-described damping device 1. 5 and an attenuating section 16 adapted to rotate the rotating body 14.
- a gap W is provided between the tip of the cylindrical rotating body 14 and the bottom surface of the casing 13 and if only the outside of the rotating body 14 is provided.
- the inside is also filled with viscous fluid 19. Then, the viscous fluid 19 inside the rotating body 14 and the viscous fluid outside The fluid 19 communicates with the lower part of the rotating body 14.
- the contact area can be increased.
- the viscous fluid 19 inside the rotating body 14 rotates together with the rotating body 14, and the viscous fluid inside the rotating body 14 cannot be sufficiently sheared. That is, the viscous fluid 19 inside the rotator 14 cannot make ffi ⁇ the rotational motion of the rotator, and as a result, the damping force per unit length in the axial direction of the rotator 14 must be increased. The problem is that it cannot be done. Disclosure of the invention
- the present invention has been made in view of the above circumstances, and an object of the present invention is to provide a damping device capable of increasing a damping force per unit length in an axial direction.
- the present inventor has provided an enclosing layer in which a viscous fluid is enclosed, inside and outside the rotating body, and each of the enclosing layers resists the rotational movement of the rotating body.
- the present invention provides a motion converting means (2 1) for converting a relative linear motion between target portions into a rotary motion of a rotating body (30), and a rotary motion of the rotating body (30).
- a damping device (20, 50) comprising: a damping means (22); wherein the damping means (22) includes a rotating body (30) and a rotating body (30).
- the above-mentioned problem is solved by a damping device characterized in that each of the inner peripheral side encapsulation layer (34) and the outer peripheral side encapsulation layer (33) resists the rotational movement of the rotating body (30).
- the motion converting means various mechanisms can be used as long as they convert linear motion into rotary motion, and examples thereof include a pole screw mechanism, a screw mechanism having a lead, a rack and a pinion, and the like. Can be used.
- each of the inner encapsulation layer and the outer encapsulation layer comes into contact with the rotating body, and each of the encapsulating layers resists the rotating motion of the rotating body.
- the damping force per length can be increased. If it is desired to obtain the same level of damping force as a conventional damping device, the length of the rotating body in the axial direction can be reduced to approximately half, so that the rotating body and thus the damping device can be reduced in size, and furthermore, its manufacture can be reduced. It will be easier.
- the present invention also provides an outer cylinder (31) in which the damping means (22) is provided outside the rotating body (30); and an outer cylinder (31) provided inside the rotating body (30).
- the inner peripheral side sealing layer (34) is provided between the inner cylinder (32) and the rotating body (30), the inner sealing layer (34) and the outer sealing layer (33) are separated from each other.
- the enclosing layer on the inner peripheral side and the encapsulating layer on the outer peripheral side are sheared by the rotating body, so that the rotating body surely resists the rotational movement. Therefore, the damping force per unit length in the axial direction of the rotating body can be increased. If the inner encapsulation layer and the outer encapsulation layer communicate with each other, the inner encapsulation layer and the outer encapsulation layer adversely affect each other to weaken the damping force applied to the rotating body. There is a risk.
- the rotating body (30) is rotatably supported by the outer cylinder (31) and the inner cylinder (32) via supporting means (37, 37, 38, 38). It is characterized by that.
- a bearing such as a bearing or a slide bearing can be used as the support means.
- Factors that affect the damping force include the contact area between the above-mentioned rotating body and viscous fluid.
- the gap can be easily managed, and the thickness of the encapsulating layer can be reduced so as to increase the damping force per unit length in the axial direction of the rotating body.
- the present invention provides a nut, wherein the motion converting means (21) is rotatably supported by a casing (24) connected to the outer cylinder (31) and a casing (24). (25) and a screw shaft (26) screwed to the nut (25), wherein the rotating body (30) is connected to the nut (25). .
- the damping device tends to be longer in the axial direction due to the screw shaft.
- the length of the rotating body in the axial direction can be shortened, so that even in the case of a damping device using a screw mechanism, it is possible to prevent the damping device from being lengthened in the axial direction.
- FIG. 1 is a side view (including a partial cross-sectional view) of a damping device according to a first embodiment of the present invention.
- FIG. 2 is an enlarged view of a portion A of FIG.
- FIG. 3 is an enlarged view of a portion B in FIG. 1 described above.
- FIG. 4 is a cross-sectional view illustrating the damping device according to the second embodiment of the present invention.
- FIG. 5 is an enlarged view of a portion C in FIG.
- FIG. 6 is a cross-sectional view showing a conventional damping device.
- FIG. 7 is a cross-sectional view showing a modification of the conventional damping device.
- FIG. 1 shows a damping device 20 according to a first embodiment of the present invention.
- the damping device 20 is used for a seismic isolation device that prevents vibrations from transmitting from a foundation to a building key in the event of an earthquake, and a vibration damping device that suppresses a high-rise building itself from shaking during an earthquake.
- the damping device 20 It is placed between buildings to prevent the vibration of the foundation from transmitting to the building.
- the damping device 20 is arranged at a diagonal position of a building as a target portion, for example, a frame-like structure, and attenuates shaking of the building itself, that is, bending vibration.
- the damping device 20 includes a motion conversion unit 21 as a motion conversion unit that converts a relative linear motion between the target parts into a rotary motion of the rotating body, and a damping unit as a damping unit that converts the rotary motion of the rotating body.
- Part 22 is provided.
- the motion converting section 21 and the damping section 22 are connected via the connecting section 23 with their axes aligned.
- the motion converter 21 includes a cylindrical casing 24, a nut 25 supported by the casing 24 in a rotating manner, and a screw shaft 26 screwed to the nut 25. Have. A plurality of poles are interposed between the nut 25 and the screw shaft 26. The plurality of pawls roll around the outer periphery of the screw shaft 26 with the rotation of the nut 25 relative to the screw shaft 26.
- a spiral pole rolling groove is formed on the outer peripheral surface 26 a of the screw shaft 26, and key grooves 26 b, 26 b for mounting portions are formed at both ends of the screw shaft 26. .
- a disk-shaped mounting portion 26c (see FIG. 4) for mounting to one of the target portions is mounted.
- the screw shaft 26 has a length that penetrates the damping device 20, it may be set to a length that does not penetrate the damping device 20 depending on the stroke between the target portions.
- the key grooves 26 b and 26 b for the mounting portion may be formed only at one end of the screw shaft 26.
- a helical load rolling groove is formed on the inner peripheral surface of the nut 25 to face the helical ball rolling groove.
- the nut 25 is rotatably supported by the casing 24 via a pair of thrust bearings 27, 27 and a radial bearing 28 as support means.
- the thrust bearings 27, 27 receive this axial force.
- the radial bearing 28 receives a radial force acting between the casing 24 and the nut 25.
- Each bearing 27, 27, 28 is fixed to the casing 24 by holding members 29, 29.
- the damping part 22 includes a cylindrical rotating body 30 and an outer cylinder 3 1 provided outside the rotating body 30. And an inner cylinder 32 provided inside the rotating body 30 and fixed to the outer cylinder 31; and an outer peripheral side provided between the outer cylinder 31 and the rotating body 30 and in which the viscous fluid is sealed. And an inner sealing layer 34 provided between the inner cylinder 32 and the rotating body 30 and filled with a viscous fluid.
- the encapsulation layer 33 and the encapsulation layer 34 are separated. Then, each of the encapsulation layers 33 and 34 resists the rotational movement of the rotating body 30.
- the outer cylinder 31 has a cylindrical shape whose outer diameter is substantially equal to that of the casing 24, and one end thereof is a connecting portion.
- the casing 23 is connected to the casing 24 through the connecting cylinder 35 of the connecting pipe 23.
- a disk-shaped mounting portion 36 for mounting to the other of the target portions is mounted.
- the damping device 20 of the present embodiment is configured such that when the target portions are relatively displaced and one of the target portions moves linearly relative to the other target portion, the outer cylinder 31 and the casing 24 are moved relative to each other.
- the screw shaft 26 linearly moves relatively in the axial direction, and a damping force is generated by the linear movement of the screw shaft 26 with respect to the outer cylinder 31.
- the rotating body 30 disposed inside the outer cylinder 31 has a cylindrical shape, and the axial center coincides with the outer cylinder 31.
- 2 and 3 show a combination of the outer cylinder 31, the rotating body 30 and the inner cylinder.
- One end 30 a of the rotating body 30 on the side of the motion conversion section 21 is connected to the nut 25.
- This connection is performed, for example, as follows.
- a convex portion is formed at a position in the circumferential direction of one end 30 a of the rotating body 30, a concave portion is formed on the nut 25 to engage with the convex portion, and by the engagement between the convex portion and the concave portion,
- the rotating body 30 and the nut 25 are removably connected to each other so that rotation can be transmitted.
- the rotating body 30 has a pair of radial bearings 37 at both ends thereof as supporting means.
- the radial bearing 37 located on the side of the connecting portion 23 is pressed by the connecting tube 35.
- the radial bearing 37 located on the opposite side of the connecting portion 23 is held down by an annular mounting portion 36.
- a pair of mechanical seals 39, 39 as sealing means for sealing a viscous fluid are provided inside the pair of radial bearings 37, 37.
- the mechanical seals 39, 39 are disposed between the rotating body 30 and the seal receiving member 40 fixed to the outer cylinder 31, and are attached to the outer cylinder 31 while maintaining the viscous fluid seal. The rotation of the rotating body 30 is allowed.
- a viscous fluid is also called a viscous body, and includes a viscous fluid (viscoelastic material) and a non-viscous fluid.
- An example of the viscous fluid is, for example, polyisobutylene.
- the inner cylinder 32 arranged inside the rotating body 30 has a cylindrical shape and is fixed to the outer cylinder 31.
- the mounting part 36 presses the inner cylinder 32, and the inner cylinder 32 is fixed to the outer cylinder 31.
- the rotating body 30 is rotatably supported at its both ends by the inner cylinder 32 via a pair of radial bearings 42, 42 as supporting means.
- the radial bearing 42 located on the side of the connecting portion 23 is pressed by a part of the connecting portion 23 (not shown).
- the radial bearing 42 located on the opposite side of the connecting portion 23 is held down by an annular mounting portion 36.
- a pair of mechanical seals 38, 38 as sealing means for sealing a viscous fluid are provided inside the pair of radial bearings 42, 42.
- the mechanical seals 38, 38 are disposed between the inner cylinder 32 and the seal receiving members 43, 43 fixed to the rotating body 30, and the inner cylinder 32, while maintaining the viscous fluid seal.
- the rotation of the rotating body 30 with respect to is allowed.
- O-rings 44, 44 for preventing the viscous fluid from leaking are provided between the seal receiving members 43, 43 and the rotating body 30.
- a slight gap is formed between the inner peripheral surface of the rotating body 30 and the outer peripheral surface of the inner cylinder 32, and the viscous fluid forming the inner peripheral sealing layer 34 is sealed in this gap.
- the inner sealing layer 34 and the outer sealing layer 33 are partitioned without being communicated by the mechanical seals 38 and 39 and the O-rings 41 and 44.
- a method of assembling the above-described damping device 20 will be described.
- the motion converting section 21 and the damping section 22 are separately assembled, and in the final step, the motion converting section 21 and the damping section 22 are connected via the connecting section 23.
- the convex part of the rotating body 30 of the damping part 22 fits into the concave part of the nut 25.
- the nut 25 and the rotating body 30 are coaxially connected so as to be able to transmit rotation.
- the damping device 20 having the above configuration, one end of the screw shaft 26 of the motion converter 21 is targeted.
- the mounting portion 36 of the outer cylinder 31 is mounted on the other of the target portions.
- the motion converter 21 converts the relative linear motion between the target portions into the rotary motion of the rotating body 30. Since the rotating body 30 rotates relative to the outer cylinder 31 and the inner cylinder 32 fixed to the outer cylinder 31, the damping portion 22 is proportional to the rotation speed of the rotating body 30 due to viscous friction. A pit is created. Due to this resistance, the energy of the rotational motion of the rotating body 30 is converted into heat energy or the like, and the damping device 20 generates a damping force. In addition, by using the pole screw mechanism, the rotation speed of the rotating body 30 can be remarkably increased as compared with the speed of the linear motion between the target portions, and a large damping force can be obtained.
- the encapsulation layers 33, 34 in which the viscous fluid is enclosed are provided inside and outside the rotating body 30, and the respective encapsulating layers 33, 34 are provided on the rotating body 30. Since the contact is made so as to resist the rotational movement of the rotating body 30, the damping force per unit length in the axial direction of the rotating body 30 can be increased. If it is desired to obtain the same damping force as the conventional damping device, the length of the rotating body 30 in the axial direction can be reduced to approximately half, so that the rotating body 30 and thus the damping device 20 can be reduced in size. And it is easy to manufacture.
- the factors that affect the damping force include, in addition to the above-described area of contact between the rotating body 30 and the viscous fluid, the gap between the rotating body 30 and the outer cylinder 31 or the rotating body 30. There is a gap between the inner cylinder 32 and the encapsulation layers 33 and 34. Since the damping force is inversely proportional to the thickness of the encapsulation layers 33, 34, it is necessary to reduce the thickness of the encapsulation layers 33, 34 in order to increase the damping force. According to the present invention, since the rotating body 30 is rotatably supported by the outer cylinder 31 and the inner cylinder 32 via the radial bearings 37, 42, respectively, the outer cylinder 31 and the rotating body 30 are supported.
- the gap between the rotating body 30 and the inner cylinder 32 and the rotating body 30 is reduced, there is no possibility that the rotating body 30 and the outer cylinder 31 or the inner cylinder 32 will collide.
- the gap can be easily managed, and the thickness of the encapsulation layers 33, 34 can be reduced so as to increase the damping force per unit length in the axial direction of the rotating body 30.
- the damping device 20 tends to be longer in the axial direction due to the screw shaft 26. According to the present invention, since the length of the rotating body 30 in the axial direction can be shortened, it is possible to prevent the damping device 20 using the screw mechanism from being lengthened in the axial direction.
- damping device 50 includes a motion conversion unit 21 and a damping unit, similarly to the damping device 20 of the first embodiment. Since the configuration of the motion conversion unit 21 is substantially the same as that of the motion conversion unit 21 of the first embodiment, the same reference numerals are given and the description thereof is omitted.
- the damping unit 22 includes a cylindrical rotating body 30, an outer cylinder 31 provided outside the rotating body 30, and the rotating body 30. And an inner cylinder 32 fixed to the outer cylinder 31 and an outer encapsulation layer 3 provided between the outer cylinder 31 and the rotating body 30 and filled with a viscous fluid.
- the rotating body 30 of the damping part 22 is provided with a disk part 30b protruding outward near the center in the axial direction.
- a disk portion 31b surrounding the disk portion 30b is also formed in the outer cylinder 31 corresponding to the disk portion 30b.
- the viscous fluid is also filled between the disk portions 3Ob and 31a.
- the contact area between the rotating body 30 and the encapsulating layer 33 on the outer peripheral side can be increased in the radial direction, and a large damping force is obtained. be able to. Therefore, when it is desired to obtain the same damping force as the conventional damping device, the length of the rotating body 30 in the axial direction can be further reduced.
- a pole screw mechanism is used for the motion conversion unit.
- the pole screw mechanism is limited to the pole screw mechanism.
- a screw mechanism having a lead, a pinion and rack mechanism, or the like may be used.
- the outer cylinder 31, the rotating body 30 and the inner cylinder 32 have a cylindrical shape, but the encapsulating layer 34 on the inner peripheral side of the rotating body 30 and the encapsulating layer on the outer peripheral side of the rotating body 30. If each of 3 3 can resist the rotational movement of the rotating body 30, the outer cylinder 31, the rotating body 30 and the inner cylinder 32 are not limited to cylindrical shapes, but adopt various shapes. obtain.
- the encapsulation layers 33 and 34 are provided only on the inner and outer peripheral sides of the cylindrical rotating body 30.
- Multiple cylinders with diameter The plurality of cylinders may be provided with a plurality of encapsulation layers on the inner circumferential side and z or outer circumferential side of the plurality of cylinders that resist the rotational movement of the rotating body.
- the damping device converts the relative linear motion between the target portions into the rotational motion of the rotating body, and the damping resistance against the rotational motion of the rotating body.
- the damping means is provided on the rotating body, on the inner circumferential side of the rotating body, on an inner circumferential side sealing layer in which the viscous fluid is sealed, and on the outer circumferential side of the rotating body, on the outer circumferential side in which the viscous fluid is sealed.
- an encapsulation layer Since the inner encapsulation layer and the outer encapsulation layer each cause the rotary body to rotate, the damping force per unit length in the axial direction of the rotary body can be increased.
Description
Claims
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP01934385A EP1201960B1 (en) | 2000-05-31 | 2001-05-29 | Damping device |
US09/926,539 US6499573B1 (en) | 2000-05-31 | 2001-05-29 | Damping device |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2000162057A JP4633229B2 (ja) | 2000-05-31 | 2000-05-31 | 減衰装置 |
JP2000-162057 | 2000-05-31 |
Publications (1)
Publication Number | Publication Date |
---|---|
WO2001092753A1 true WO2001092753A1 (fr) | 2001-12-06 |
Family
ID=18665997
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/JP2001/004488 WO2001092753A1 (fr) | 2000-05-31 | 2001-05-29 | Dispositif d'amortissement |
Country Status (5)
Country | Link |
---|---|
US (1) | US6499573B1 (ja) |
EP (1) | EP1201960B1 (ja) |
JP (1) | JP4633229B2 (ja) |
TW (1) | TWI239375B (ja) |
WO (1) | WO2001092753A1 (ja) |
Families Citing this family (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP4959483B2 (ja) * | 2007-09-12 | 2012-06-20 | カヤバ工業株式会社 | 磁気粘性流体緩衝器 |
JP5648821B2 (ja) * | 2008-01-28 | 2015-01-07 | 清水建設株式会社 | 制振機構 |
DE102009000501A1 (de) * | 2009-01-30 | 2010-08-05 | Biotronik Vi Patent Ag | Degradations- und Integritätsmessgerät für absorbierbare Metallimplantate |
JP5016086B2 (ja) * | 2010-06-07 | 2012-09-05 | Thk株式会社 | ボールねじを用いた減衰装置 |
WO2013057797A1 (ja) | 2011-10-19 | 2013-04-25 | Thk株式会社 | 減衰装置 |
TWI558932B (zh) * | 2011-10-19 | 2016-11-21 | Thk Co Ltd | Attenuating device |
CN104963992A (zh) * | 2015-07-01 | 2015-10-07 | 上海萨克斯动力总成部件系统有限公司 | 集成三个减振器的汽车离合器从动盘 |
JP6580457B2 (ja) * | 2015-10-29 | 2019-09-25 | Thk株式会社 | 回転慣性質量ダンパ |
Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0341919A (ja) * | 1989-07-10 | 1991-02-22 | Sugatsune Ind Co Ltd | 便座等のヒンジの制動力制御方法 |
US5497863A (en) * | 1993-09-03 | 1996-03-12 | Itw-Ateco Gmbh | Rotary damper |
JPH09264492A (ja) * | 1996-03-28 | 1997-10-07 | Sanwa Tekki Corp | 電気粘性流体制振装置 |
WO1998029625A1 (fr) * | 1996-12-27 | 1998-07-09 | Sumitomo Construction Co., Ltd. | Partie terminale d'amortissement, tige d'amortissement, et dispositif d'amortissement comprenant ces elements |
JPH10184757A (ja) | 1996-12-27 | 1998-07-14 | Sumitomo Constr Co Ltd | 減衰棒およびこの減衰棒を使用する減衰装置 |
Family Cites Families (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CA1078884A (en) * | 1977-03-16 | 1980-06-03 | Jean Masclet | Mechanical -hydraulic damper for a load subject to shocks and vibrations |
JP3818476B2 (ja) * | 1998-07-01 | 2006-09-06 | 三井住友建設株式会社 | 減衰装置 |
-
2000
- 2000-05-31 JP JP2000162057A patent/JP4633229B2/ja not_active Expired - Lifetime
-
2001
- 2001-05-29 WO PCT/JP2001/004488 patent/WO2001092753A1/ja active IP Right Grant
- 2001-05-29 US US09/926,539 patent/US6499573B1/en not_active Expired - Lifetime
- 2001-05-29 EP EP01934385A patent/EP1201960B1/en not_active Expired - Lifetime
- 2001-05-31 TW TW090113178A patent/TWI239375B/zh not_active IP Right Cessation
Patent Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0341919A (ja) * | 1989-07-10 | 1991-02-22 | Sugatsune Ind Co Ltd | 便座等のヒンジの制動力制御方法 |
US5497863A (en) * | 1993-09-03 | 1996-03-12 | Itw-Ateco Gmbh | Rotary damper |
JPH09264492A (ja) * | 1996-03-28 | 1997-10-07 | Sanwa Tekki Corp | 電気粘性流体制振装置 |
WO1998029625A1 (fr) * | 1996-12-27 | 1998-07-09 | Sumitomo Construction Co., Ltd. | Partie terminale d'amortissement, tige d'amortissement, et dispositif d'amortissement comprenant ces elements |
JPH10184757A (ja) | 1996-12-27 | 1998-07-14 | Sumitomo Constr Co Ltd | 減衰棒およびこの減衰棒を使用する減衰装置 |
Non-Patent Citations (1)
Title |
---|
See also references of EP1201960A4 * |
Also Published As
Publication number | Publication date |
---|---|
US6499573B1 (en) | 2002-12-31 |
JP4633229B2 (ja) | 2011-02-16 |
EP1201960A4 (en) | 2005-06-29 |
JP2001336570A (ja) | 2001-12-07 |
TWI239375B (en) | 2005-09-11 |
EP1201960A1 (en) | 2002-05-02 |
EP1201960B1 (en) | 2006-10-04 |
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