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CN106401000A - Vertical initial rigidity adjustable three-dimensional shock insulation device - Google Patents

Vertical initial rigidity adjustable three-dimensional shock insulation device Download PDF

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Publication number
CN106401000A
CN106401000A CN201610906006.4A CN201610906006A CN106401000A CN 106401000 A CN106401000 A CN 106401000A CN 201610906006 A CN201610906006 A CN 201610906006A CN 106401000 A CN106401000 A CN 106401000A
Authority
CN
China
Prior art keywords
steel wire
wire rope
back pressure
prepressing
compression spring
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN201610906006.4A
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Chinese (zh)
Inventor
谢韩涛
刘汶津
韩磊
张少华
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nanjing Dade Damping Technology Co Ltd
Original Assignee
Nanjing Dade Damping Technology Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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Publication date
Application filed by Nanjing Dade Damping Technology Co Ltd filed Critical Nanjing Dade Damping Technology Co Ltd
Priority to CN201610906006.4A priority Critical patent/CN106401000A/en
Publication of CN106401000A publication Critical patent/CN106401000A/en
Pending legal-status Critical Current

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Classifications

    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/36Bearings or like supports allowing movement
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04HBUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
    • E04H9/00Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
    • E04H9/02Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate withstanding earthquake or sinking of ground
    • E04H9/021Bearing, supporting or connecting constructions specially adapted for such buildings
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04HBUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
    • E04H9/00Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
    • E04H9/02Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate withstanding earthquake or sinking of ground
    • E04H9/021Bearing, supporting or connecting constructions specially adapted for such buildings
    • E04H9/022Bearing, supporting or connecting constructions specially adapted for such buildings and comprising laminated structures of alternating elastomeric and rigid layers
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04HBUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
    • E04H9/00Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
    • E04H9/02Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate withstanding earthquake or sinking of ground
    • E04H9/021Bearing, supporting or connecting constructions specially adapted for such buildings
    • E04H9/023Bearing, supporting or connecting constructions specially adapted for such buildings and comprising rolling elements, e.g. balls, pins

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Business, Economics & Management (AREA)
  • Emergency Management (AREA)
  • Environmental & Geological Engineering (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Buildings Adapted To Withstand Abnormal External Influences (AREA)

Abstract

The invention relates to a vertical initial rigidity adjustable three-dimensional shock insulation device. The three-dimensional shock insulation device comprises a vertical shock insulation support seat and laminated rubber shock insulation support seats, wherein the vertical shock insulation support seat and the laminated rubber shock insulation support seats are mutually connected in series. The three-dimensional shock insulation device is characterized in that a back pressure device is further arranged in a guide sleeve of the vertical shock insulation support seat, the back pressure device comprises more than three prepressing steel wire ropes, steel wire rope turning elements, steel wire rope self-locking tensioning anchors and a floating back pressure steel plate, wherein the number of the steel wire rope turning elements is equal to that of the prepressing steel wire ropes, the number of the steel wire rope self-locking tensioning anchors is equal to that of the prepressing steel wire ropes, the prepressing steel wire ropes are in the state of broken lines, one end of each prepressing steel wire rope is symmetrically fixed to the floating back pressure steel plate around the axis of the guide sleeve, the other end of each prepressing steel wire rope bypasses one opposite steel wire rope turning element, then turns back and then passes through the floating back pressure steel plate so as to be anchored to a base by one steel wire rope self-locking tensioning anchor, and the prepressing steel wire ropes are tensioned to tension required by preset initial rigidity, so that a cylindrical helical compression spring is clamped between a driving pressing plate and the floating back pressure steel plate all the time.

Description

Three-dimensional shock isolation device capable of adjusting vertical initial rigidity
Technical Field
The invention relates to a building anti-vibration (or shock) device, in particular to a three-dimensional shock isolation device formed by connecting an interlayer steel plate rubber pad and a vertical shock isolation support in series.
Background
The shock isolation device is a shock isolation device arranged between a building and a foundation. The early seismic isolation devices were mainly two-dimensional seismic isolation bearings (laminated rubber seismic isolation bearings) constructed by alternately laminating rubber and thin steel plates, which could only isolate the horizontal component of seismic waves. With the improvement of the knowledge of the multidimensional characteristics of the earthquake, the three-dimensional shock isolation device is gradually paid more attention by researchers in the field. The most common three-dimensional shock isolation device is formed by connecting a laminated rubber shock isolation support and an existing vertical shock isolation support in series.
The invention patent application with publication number CN 102409777A discloses a three-dimensional shock-insulation and anti-overturning device, the main body mechanism of the device is formed by connecting a laminated rubber shock-insulation support 14 and a spring shock-insulation support 15 in series, the upper side and the lower side of the main body structure are respectively provided with an upper connecting plate 1 and a lower connecting plate 18, and the device is characterized in that: tensile steel wire ropes 16 which are uniformly distributed around the main body structure in a staggered mode are arranged between the upper connecting plate 1 and the lower connecting plate 18, and the ultimate deformation of the tensile steel wire ropes 16 in the horizontal direction is larger than the horizontal shearing elastic deformation of the main body structure. Although the proposal of the patent application can improve the tensile strength of the three-dimensional seismic isolation device to resist the great tensile force generated by the swinging and even overturning of high-rise buildings in the earthquake, the proposal still has the following defects: 1. the spring shock insulation support can only compress energy dissipation and shock absorption, and cannot stretch the energy dissipation and shock absorption; 2. the spring shock insulation support can not preset initial rigidity, and is not convenient for presetting seismic intensity and reducing shock insulation cost.
The invention patent application with the publication number of CN1932324A discloses an adjustable disc spring mechanical shock absorption damper, which comprises a shell, a load connecting rod and two groups of disc springs, wherein the load connecting rod and the two groups of disc springs are arranged in the shell, the middle part of the load connecting rod is provided with an adjusting gear fixedly connected with the load connecting rod, the load connecting rods on the two sides of the adjusting gear are respectively provided with a left-handed nut and a right-handed nut which are in threaded fit with the load connecting rod, and the two groups of disc springs are respectively arranged on the outer sides of the left-handed nut and the right-handed nut and are respectively clamped between the left-handed nut or the right-handed nut and a sealing plate at the. The damping coefficient of the damper can be adjusted by only turning the adjusting gear on the load connecting rod to enable the left-handed nut and the right-handed nut to be close to or far away from each other, so that the pretightening force of the two groups of disk springs can be adjusted, and the use requirements of different frequencies and different amplitudes are met. However, the invention still has the following disadvantages: 1. the load connecting rod is kept in balance under the combined action of the two groups of disc springs, although the pretightening force of the two groups of disc springs can be adjusted, no matter how the pretightening force is adjusted, the acting forces of the two groups of disc springs on the load connecting rod are equal in one group, and opposite in direction, and the balance can be damaged only by applying any external force on the load connecting rod, so that the two groups of disc springs deform, and the damper cannot preset initial rigidity; 2. two groups of disc springs are matched to provide damping when the damper is under pressure or tension load, so that certain waste is caused, and the length of the damper is greatly increased.
The invention patent application with the publication number of CN101457553A discloses a tuned mass damper with adjustable spring stiffness, which is a composite damper, the characteristic frequency of the damper is changed by changing the thickness of a mass block, the damping ratio of the damper is changed by changing the flow of a working medium of the viscous damper, and the stiffness of the damper is changed by changing the effective working length of a spring, wherein three means are adopted for changing the effective working length of the spring, firstly, a section of the spring positioned in a curing cylinder is cured by adopting a curing material, secondly, a constraint block is inserted into the center of a spiral spring and is in interference fit with the spring, so that a section of the spring contacted with the constraint block fails, thirdly, a spiral bulge is arranged on the surface of the constraint block, and the spiral bulge is clamped between spring wires, so that a section of the spring clamped with the spiral bulge between the spring wires fails. It can be seen that although the spring in the patent application can change the stiffness, the effective working length of the spring is obviously shortened, and the spring can only compress energy consumption and reduce vibration but cannot stretch the energy consumption and reduce vibration.
Disclosure of Invention
The invention aims to solve the technical problem of providing a three-dimensional shock isolation device capable of adjusting vertical initial stiffness, wherein the three-dimensional shock isolation device not only can compress energy consumption and shock absorption, but also can stretch energy consumption and shock absorption, and also keeps the effective working length of a cylindrical spiral compression spring in a vertical shock isolation support.
The technical scheme for solving the technical problems is as follows:
a three-dimensional shock isolation device capable of adjusting vertical initial rigidity comprises a laminated rubber shock isolation support and a vertical shock isolation support which are sequentially connected in series from top to bottom; wherein,
the laminated rubber shock-insulation support comprises an upper connecting plate, a lower connecting plate, a laminated rubber pad clamped between the upper connecting plate and the lower connecting plate and at least three tensile steel wire ropes uniformly distributed around the laminated rubber pad; one end of the tensile steel wire rope is fixed on the upper connecting plate, the other end of the tensile steel wire rope is fixed on the lower connecting plate, and the connecting line of the upper fixing point and the lower fixing point is parallel to the central axis of the laminated rubber pad;
the vertical shock insulation support comprises a base, and a guide sleeve extending upwards is arranged on the upper surface of the base; a cylindrical spiral compression spring is coaxially arranged inside the guide sleeve, and a driving pressing plate is arranged at the upper head of the cylindrical spiral compression spring; the middle part of the lower surface of the lower connecting plate of the laminated rubber shock-insulation support extends into the guide sleeve to form a bulge which is fixedly connected with the driving pressure plate;
it is characterized in that the preparation method is characterized in that,
a back pressure device is also arranged in the guide sleeve of the vertical shock insulation support and comprises more than three pre-pressed steel wire ropes, steel wire rope turning elements with the same number as the pre-pressed steel wire ropes, steel wire rope self-locking tensioning anchors with the same number as the pre-pressed steel wire ropes and a floating back pressure steel plate, wherein,
the floating back pressure steel plate is arranged between the cylindrical spiral compression spring and the base;
the steel wire rope turning element is symmetrically fixed on the driving pressing plate around the axis of the guide sleeve;
wire rope auto-lock tensioning ground tackle constitute by first self-centering locking clamp, the self-centering locking clamp of second, prevent turning round compression spring and plane bearing, wherein:
A) the first self-centering locking clamp is provided with a connecting seat, the middle part of one end of the connecting seat is provided with an axially extending cylindrical boss, a first conical clamping jaw consisting of 3-5 claw sheets is arranged in the boss along the axial lead, and a tensioning screw sleeve is sleeved on the outer peripheral surface of the boss; the small end of the first conical clamp points to the connecting seat, and the outer peripheral surface of the tensioning screw sleeve is in a regular hexagon shape;
B) the second self-centering locking clamp is provided with a taper sleeve, a second tapered clamping jaw and a hollow bolt which are composed of 3-5 jaw pieces are sequentially arranged in the taper sleeve along the axis, the head of the hollow bolt is opposite to the big end of the second tapered clamping jaw, and the peripheral surface of the taper sleeve is regular hexagon;
C) the plane bearing is composed of a ball-retainer assembly and annular roller paths respectively arranged on the end surfaces of the tensioning screw sleeve opposite to the taper sleeve, wherein the annular roller paths are matched with the balls in the ball-retainer assembly;
D) the second self-centering locking clamp is positioned on the outer side of the head of the tensioning threaded sleeve, and the small head of the second conical clamping jaw and the small head of the first conical clamping jaw point to the same direction; the plane bearing is positioned between the tensioning threaded sleeve and the taper sleeve, and the anti-torsion compression spring is arranged in an inner hole of the tensioning threaded sleeve; after the prepressing steel wire rope penetrates out of the space between the claw sheets of the first conical clamping jaw and the center hole of the plane bearing and the claw sheets of the second conical clamping jaw through the anti-torsion compression spring, under the tension action of the prepressing steel wire rope, one end of the anti-torsion compression spring acts on the first conical clamping jaw, and the other end of the anti-torsion compression spring acts on the conical sleeve;
the prepressing steel wire ropes are distributed in the central hole of the cylindrical spiral compression spring in a broken line state, one end of each prepressing steel wire rope is symmetrically fixed on the floating back pressure steel plate around the axis of the guide sleeve, the other end of each prepressing steel wire rope passes through the opposite steel wire rope turning element and then turns back, and then the prepressing steel wire rope passes through the floating back pressure steel plate from the side of the fixed point of the prepressing steel wire rope on the floating back pressure steel plate and is anchored on the base by a steel wire rope self-locking tensioning anchorage; on the floating back pressure steel plate, a through hole for penetrating the pre-pressed steel wire rope is arranged at the penetrating position of each pre-pressed steel wire rope, and the aperture of the through hole is larger than the diameter of the pre-pressed steel wire rope;
tensioning the pre-pressed steel wire rope to a tension required by setting vertical initial rigidity, so that the cylindrical spiral compression spring is always clamped between the driving pressing plate and the floating back-pressure steel plate;
and tensioning the tensile steel wire rope to provide a pre-pressure equal to the designed static load for the laminated rubber pad.
The working principle of the vertical shock insulation of the three-dimensional shock insulation device is as follows: when the vertical dynamic load is relatively acted along the axis of the guide sleeve, the pressure is transmitted to the driving pressure plate through the laminated rubber shock-insulation support, so that the cylindrical helical compression spring is compressed by downward movement; when the dynamic load acts along the axis of the guide sleeve in the opposite direction, the tensile force is transmitted to the driving pressure plate through the tensile steel wire rope, the driving pressure plate moves upwards, and the prepressing steel wire rope reversely hoists the floating counter-pressure steel plate through the steel wire rope turning element to compress the cylindrical spiral compression spring. Therefore, no matter the axial dynamic load is oppositely or reversely acted on the three-dimensional shock isolation device, the cylindrical spiral compression spring can be compressed, and the cylindrical spiral compression spring is elastically deformed to consume energy.
According to the working principle, the prepressing steel wire rope and the hole wall of the through hole in the floating back pressure steel plate cannot generate friction in the working process, otherwise, the up-and-down movement of the floating back pressure steel plate is interfered, so that the diameter of the through hole is larger than that of the prepressing steel wire rope, and the up-and-down movement of the floating back pressure steel plate is preferably not interfered and influenced.
In the above scheme, the wire rope direction changing element is a common fixed pulley or a hoisting ring-shaped member with a direction changing function similar to that of the common fixed pulley, such as a hoisting ring screw, a U-shaped member and the like.
According to the three-dimensional shock isolation device capable of adjusting the vertical initial rigidity, one end of the prepressing steel wire rope fixed on the floating back pressure steel plate can be fixed by welding, and can also be fastened and fixed by similar lifting ring screws.
Compared with the prior art, the three-dimensional shock isolation device capable of adjusting the vertical initial rigidity has the following effects:
(1) in the vertical direction, the energy dissipation and the shock absorption can be compressed and stretched; the huge pulling force of the high-rise building on the building foundation due to swinging can be effectively reduced; and only one spring is needed, the vertical length is small, and the stability is good.
(2) When the vertical dynamic load is larger than the preset resisting capacity of the vertical initial rigidity, the two-way elastic deformation of the vertical shock insulation support is symmetrical, so that the compression deformation energy consumption effect of the vertical shock insulation support is not influenced by the change of the positive direction and the negative direction of the vertical load;
(3) the vertical initial rigidity of the whole device can be changed by changing the length of the prepressing steel wire rope, the shock insulation device cannot generate vertical deformation by external force before the vertical initial rigidity is overcome, the shaking of the building under the action of small earthquake and weak wind vibration is effectively inhibited, the wind and shock resistance grade of the building can be preset, and the wind and shock resistance cost is obviously reduced;
(4) in the process of presetting the initial stiffness, the effective working length of the cylindrical spiral compression spring is unchanged, and the original characteristic parameters of the cylindrical spiral compression spring cannot be changed.
(5) The characteristics of the belleville springs can be utilized to reasonably select the preset initial stiffness, and then the characteristic frequency domain range of the shock isolation device is selected, so that the inherent frequency domain range of a building structure and the frequency domain range of vertical seismic waves are avoided, and resonance is prevented.
(6) The tension and compression impact on the building foundation caused by the building shaking trend of the building can be effectively buffered, and the risk of overturning of the building is further reduced.
Drawings
Fig. 1 to 7 are schematic structural views of a specific embodiment of a three-dimensional seismic isolation device according to the present invention, where fig. 1 is a front view (D-D rotation section of fig. 3), fig. 2 is a sectional view a-a (with pre-stressed steel wire rope omitted) of fig. 1, fig. 3 is a sectional view B-B (with pre-stressed steel wire rope omitted) of fig. 1, fig. 4 is a sectional view C-C (with tensile steel wire rope omitted) of fig. 1, fig. 5 is a bottom view, fig. 6 is an enlarged structural view of a part i of fig. 1, and fig. 7 is an enlarged structural view of a part ii of fig..
Fig. 8 to 12 are schematic structural views of the self-locking tensioning anchor of the steel wire rope in the embodiments shown in fig. 1 to 7, wherein fig. 8 is a front view (sectional view), a broken line in the drawings indicates a pre-stressed steel wire rope, fig. 9 is a bottom view, fig. 10 is a sectional view of fig. 8 from E to E, fig. 11 is a sectional view of fig. 8 from F to F, and fig. 12 is a sectional view of fig. 8 from G to G.
Fig. 13 to 17 are schematic structural views of a third embodiment of the three-dimensional vibration isolating device according to the present invention, in which fig. 13 is a front view (cross-sectional view), fig. 14 is a cross-sectional view H-H (with the pre-stressed wire rope omitted) of fig. 13, fig. 15 is a cross-sectional view I-I (with the pre-stressed wire rope omitted) of fig. 13, fig. 16 is a bottom view, and fig. 17 is an enlarged cross-sectional view J-J of fig. 14.
Fig. 18 to 22 are schematic structural views of a third embodiment of the three-dimensional vibration isolating device according to the present invention, in which fig. 18 is a front view (cross section), fig. 19 is a K-K cross section (with the pre-stressed wire rope omitted) of fig. 18, fig. 20 is a L-L cross section (with the pre-stressed wire rope omitted) of fig. 18, fig. 21 is an enlarged structural view of a part iii of fig. 18, and fig. 22 is an enlarged structural view of a part iv of fig. 18.
Detailed Description
Example 1
Referring to fig. 1, the three-dimensional isolation bearing in this example is composed of a laminated rubber isolation bearing and a vertical isolation bearing which are connected in series up and down.
Referring to fig. 1 and 4, the laminated rubber vibration-isolating support comprises an upper connecting plate 15, a lower connecting plate 8, a laminated rubber pad 17 clamped between the upper connecting plate and the lower connecting plate, and six tensile steel wire ropes 16; the upper connecting plate 15 and the lower connecting plate 8 are both disc-shaped, and the edge of the upper connecting plate 15 is provided with a mounting hole 6; the main body of the laminated rubber pad 17 is formed by alternately laminating a layer of rubber 17-1 and a layer of steel plate 17-2 and then performing mould pressing vulcanization, and a rubber protective layer 17-3 is naturally formed on the periphery of the laminated rubber pad in the mould pressing vulcanization process. The upper end face and the lower end face of the laminated rubber pad 17 main body are respectively provided with a connecting steel plate 17-4, and the two connecting steel plates 17-4 are respectively welded and fixed with the upper connecting plate 15 and the lower connecting plate 8. The six tensile steel wire ropes 16 are symmetrically distributed around the central axis of the laminated rubber pad 17, one end of each tensile steel wire rope 16 is fixed on the upper connecting plate 15 through a lifting bolt 10, and the other end of each tensile steel wire rope is fixed on the lower connecting plate 8 through the lifting bolt 10. Each tensile steel wire rope 16 is tensioned, so that the sum of the tensions of the six tensile steel wire ropes 16 is equal to the designed vertical static load of the three-dimensional vibration isolation device in the embodiment, and after tensioning, each tensile steel wire rope 16 is parallel to the central axis of the laminated rubber pad 17.
Referring to fig. 1-7, the vertical shock insulation support comprises a guide sleeve 1, a base 3, a cylindrical spiral compression spring 4 and a back pressure device.
Referring to fig. 1-3, the guide sleeve 1 is in a circular tube shape, the upper end of the guide sleeve contracts inwards and radially to form an annular flange 2 for limiting and guiding, and the lower end of the guide sleeve extends outwards and radially to form a flange 5. The middle part of the base 3 is upwards bulged to form an inverted basin shape, the edges of the periphery of the base are provided with mounting holes 6, and the guide sleeve 1 is fixed on the upper surface of the bulged middle part of the base through a flange 5 arranged at the lower end of the guide sleeve.
Referring to fig. 1 to 3, the cylindrical helical compression spring 4 is arranged in the guide sleeve 1, a driving pressure plate 7 in movable fit with the guide sleeve 1 is arranged at the upper end of the cylindrical helical compression spring 4, a cylindrical protrusion extends into the guide sleeve 1 from the middle of the lower surface of the lower connecting plate 8, and the protrusion and the driving pressure plate 7 are fixedly connected together through screws. Referring to fig. 1, a gap 14 larger than the amplitude is formed between the lower connecting plate 8 and the annular flange 2; in order to avoid the impact between the driving pressure plate 7 and the annular flange 2 during the vibration process, an anti-collision gap 13 is arranged between the driving pressure plate 7 and the annular flange 2.
Referring to fig. 1-3, the back pressure device is arranged in the guide sleeve 1, and the specific scheme is as follows:
referring to fig. 1-7, the back pressure device comprises three pre-pressed steel wire ropes 9, three lifting ring screws 10 serving as steel wire rope turning elements, a floating back pressure steel plate 11, another three lifting ring screws 10 fixing one end of the pre-pressed steel wire ropes 9 and three steel wire rope self-locking tensioning anchors 18. Wherein,
the floating back pressure steel plate 11 is arranged between the cylindrical spiral compression spring 4 and the base 3;
the three lifting bolts 10 as steel wire rope direction changing elements are symmetrically fixed on the driving pressing plate 7 around the axis of the guide sleeve 1.
Referring to fig. 8-12, each steel wire rope self-locking tensioning anchor 18 is composed of a first self-centering locking clamp, a second self-centering locking clamp, an anti-torsion compression spring 18-1 and a planar bearing 18-2, wherein:
the first self-centering locking clamp is provided with a connecting seat 18-3, the edge of the connecting seat 18-3 is provided with a mounting hole 18-12, the middle part of the lower end of the connecting seat is provided with an axially extending cylindrical boss 18-4, the inside of the boss 18-4 is provided with a first taper hole 18-5 along the axial lead, the taper hole is internally provided with a first tapered clamping jaw 18-7 consisting of 3 claw pieces, the peripheral surface of the boss 18-4 is sleeved with a tensioning screw sleeve 18-6, and the first tapered clamping jaw are in threaded connection; the small end of the first tapered clamp 18-7 points to the connecting seat 18-3, and the outer peripheral surface of the tensioning screw sleeve 18-6 is in a regular hexagon shape;
the second self-centering locking clamp is provided with a taper sleeve 18-8, and a section of second taper hole 18-13 and a section of threaded hole are sequentially arranged in the taper sleeve 18-8 along the axis; the second taper clamping jaw 18-9 consisting of 3 jaw pieces is arranged in the second taper hole 18-13, the threaded hole is internally provided with a hollow bolt 18-10, the head of the hollow bolt 18-10 is opposite to the big end of the second taper clamping jaw 18-9, and the peripheral surface of the taper sleeve 18-8 is in a regular hexagon shape;
the plane bearing 18-2 is composed of a ball-retainer assembly 18-11 and annular raceways which are respectively arranged on the end surfaces of the tensioning screw sleeve 18-6 opposite to the taper sleeve 18-8, wherein the annular raceways are matched with the balls in the ball-retainer assembly 18-11;
the second self-centering locking clamp is positioned on the outer side of the head of the tensioning screw sleeve 18-6, and the small head of the second conical clamping jaw 18-9 and the small head of the first conical clamping jaw 18-7 are in the same direction; the plane bearing 18-2 is positioned between the tensioning screw sleeve 18-6 and the taper sleeve 18-8, and the anti-torsion compression spring 18-1 is arranged in an inner hole of the tensioning screw sleeve 18-6. After the pre-pressing steel wire rope 9 penetrates out from the space between the claws of the first conical clamping jaw 18-7 through the center hole of the anti-torsion compression spring 18-1 and the plane bearing 18-2 and the space between the claws of the second conical clamping jaw 18-9, under the action of the tension of the pre-pressing steel wire rope 9, one end of the anti-torsion compression spring 18-1 acts on the first conical clamping jaw 18-7, and the other end acts on the taper sleeve 18-8.
Referring to fig. 1, 4 and 7, the connecting seat 18-3 of the steel wire rope self-locking tensioning anchor 18 is fixed on the lower surface of the raised middle part of the base 3 by a screw, and the distance between the lower surface of the raised middle part of the base 3 and the bottom surface of the base 3 is greater than the height of the steel wire rope self-locking tensioning anchor 18.
Referring to fig. 1-7, three lifting ring screws 10 are symmetrically arranged on the floating back pressure steel plate 11 around the axis of the guide sleeve 1; three steel wire rope self-locking tensioning anchors 18 are correspondingly arranged at the outer side of the base 3 beside the opposite positions of the three lifting ring screws 10 arranged on the floating back pressure steel plate 11; three pre-pressing steel wire ropes 9 are distributed in the central hole of the cylindrical spiral compression spring 4 in a broken line state, one end of each pre-pressing steel wire rope 9 is tied and fixed on a lifting ring screw 10 arranged on a floating counter-pressure steel plate 11, the other end of each pre-pressing steel wire rope 9 passes through a lifting ring screw 10 which is used as a steel wire rope turning element and turns back after passing around the opposite lifting ring screw 10, then the pre-pressing steel wire rope 9 passes through the floating counter-pressure steel plate 11 from the position beside the fixed point of the floating counter-pressure steel plate 11 corresponding to a steel wire rope self-locking tensioning anchorage 18 arranged on the base 3; on the floating back pressure steel plate 11, a through hole 12 penetrating through the pre-pressing steel wire rope 9 is arranged at the penetrating position of each pre-pressing steel wire rope 9, and the aperture of the through hole 12 is larger than the diameter of the pre-pressing steel wire rope 9; on the base 3, an anchoring hole 3-1 for anchoring the pre-pressed steel wire rope 9 is arranged at the position where each pre-pressed steel wire rope 9 passes through.
Referring to fig. 1 to 7 in combination with fig. 8 to 12, in order to achieve the purpose of presetting the vertical initial stiffness, the installation and tensioning methods of the three pre-pressed steel wire ropes 9 are as follows: (1) firstly, calculating the tension of a pre-pressed steel wire rope 9 meeting the preset vertical initial stiffness according to the vertical initial stiffness required to be preset and the characteristic parameters of the cylindrical spiral compression spring 4; (2) assembling the vertical shock insulation support according to the figure 1, and enabling the other end of each prepressing steel wire rope 9 to penetrate out of central holes of a first conical clamping jaw 18-7, a second conical clamping jaw 18-9 and a hollow bolt 18-10 of a corresponding steel wire rope self-locking tensioning anchorage 18; then, (3) tying the rope head of the exposed prepressing steel wire rope 9 on a traction tensioning machine, and monitoring the tension of the prepressing steel wire rope 9 by adopting a tension detector while traction tensioning; when the pre-pressing steel wire rope 9 is tensioned to the tension required by the preset vertical initial stiffness, the second self-centering locking clamp is moved forwards, meanwhile, the tightening screw sleeve 18-6 is adjusted and screwed, so that the plane bearing 18-2 is tightly clamped between the tightening screw sleeve 18-6 and the taper sleeve 18-8, the anti-twisting compression spring 18-1 is compressed, the generated tension pushes the first tapered clamping jaw 18-7 to move forwards to clamp the pre-pressing steel wire rope 9, and then the hollow bolt 18-10 is screwed to clamp the pre-pressing steel wire rope 9 in the second tapered clamping jaw 18-9; removing the traction tensioning machine, cutting off the redundant prepressing steel wire rope 9, and clamping the cylindrical spiral compression spring 4 between the driving pressing plate 7 and the floating back pressure steel plate 11 all the time; (4) and finally, installing the laminated rubber vibration isolation support above the driving pressing plate 7 according to the figures 1 and 4 to obtain the three-dimensional vibration isolation device.
Referring to fig. 1 and 8-12, in the construction process or daily maintenance process of installing the seismic isolation support, if the tension of a certain pre-pressed steel wire rope 9 is insufficient, a tensioning threaded sleeve 18-6 in a steel wire rope self-locking tensioning anchorage 18 can be screwed for adjustment.
When the vertical initial stiffness is preset, the sum of the tensions of the three pre-pressed steel wire ropes 9 is more than or equal to the vertical static load borne by the three-dimensional shock isolation device.
Under ideal conditions, the building should not displace when the vertical waves of the earthquake are transmitted to the building through the shock isolation device. Based on this, the working principle of the three-dimensional vibration isolation device of the embodiment for vertical vibration isolation is as follows: referring to fig. 1, when the dynamic load generated by the vertical wave of the earthquake overcomes the vertical initial stiffness, if the dynamic load pushes up the base 3 along the axis of the guide sleeve 1, the reaction force of the driving platen 7 compresses the cylindrical helical compression spring 4 downward, and the base 3 moves upward along with the ground without the building moving; if the base 3 is pulled down along the axis of the guide sleeve 1 by the dynamic load, the prepressing steel wire rope 9 reversely lifts the floating counter-pressure steel plate 11 by the lifting bolt 10 as a steel wire rope turning element, the cylindrical spiral compression spring 4 is compressed upwards, the base 3 moves downwards along with the ground, but the building is still motionless. Therefore, when the ground vibrates up and down due to the longitudinal seismic wave, the cylindrical spiral compression spring can be compressed to generate elastic deformation so as to consume energy. Similarly, when the building shakes under the action of wind vibration or horizontal seismic waves, the cylindrical spiral compression spring can be compressed to generate elastic deformation and consume energy no matter whether the dynamic load on the three-dimensional shock isolation device is tensile force or pressure.
Example 2
Referring to fig. 13 to 17, the present example is mainly improved based on example 1 in the following points: (1) increasing the number of the pre-pressed steel wire ropes 9 from three to six; (2) replacing the lifting eye screw 10 as a wire rope direction changing element with a U-shaped member 19; (3) increasing the number of the steel wire rope self-locking tensioning anchors 18 for fixing the other end of the prepressing steel wire rope 9 to six; (4) the counter-pressure device is correspondingly changed to:
the back pressure device consists of six pre-pressed steel wire ropes 9, six U-shaped members 19 serving as steel wire rope turning elements, a floating back pressure steel plate 11, six lifting ring screws 10 for fixing one ends of the pre-pressed steel wire ropes 9 and six steel wire rope self-locking tensioning anchors 18 for fixing the other ends of the pre-pressed steel wire ropes 9; wherein,
the floating back pressure steel plate 11 is arranged between the cylindrical spiral compression spring 4 and the base 3;
six U-shaped members 19 as steel wire rope direction changing elements symmetrically fix the lower surface of the driving pressure plate 7 in the central hole of the cylindrical spiral compression spring 4 around the axis of the guide sleeve 1; referring to fig. 17, the U-shaped member 19 is formed by bending round steel, and round holes matched with two side edges of the U-shaped member 19 are formed in the corresponding positions of the driving platen 7 where the U-shaped member 19 is arranged, the U-shaped member 19 is inserted into the round holes, and the two are welded and fixed together;
six lifting ring screws 10 are symmetrically arranged on the floating back pressure steel plate 11 around the axis of the guide sleeve 1; six steel wire rope self-locking tensioning anchors 18 are correspondingly arranged at the outer sides of the bases 3 beside the opposite positions of the six lifting ring screws 10 arranged on the floating back pressure steel plate 11; six pre-pressing steel wire ropes 9 are distributed in the central hole of the cylindrical spiral compression spring 4 in a broken line state, one end of each pre-pressing steel wire rope 9 is tied and fixed on a lifting ring screw 10 arranged on a floating counter-pressure steel plate 11, the other end of each pre-pressing steel wire rope 9 passes through an opposite U-shaped member 19 serving as a steel wire rope turning element and then turns back, then the pre-pressing steel wire rope 9 passes through the floating counter-pressure steel plate 11 from the position beside a fixed point on the floating counter-pressure steel plate 11 corresponding to a steel wire rope self-locking tensioning anchorage 18 arranged on the base 3, and the steel wire rope self-locking tensioning anchorage; on the floating back pressure steel plate 11, a through hole 12 penetrating through the pre-pressing steel wire rope 9 is arranged at the penetrating position of each pre-pressing steel wire rope 9, and the aperture of the through hole 12 is larger than the diameter of the pre-pressing steel wire rope 9; on the base 3, an anchoring hole 3-1 for anchoring the pre-pressed steel wire rope 9 is arranged at the position where each pre-pressed steel wire rope 9 passes through.
The other embodiments other than the above-described embodiment are the same as those of embodiment 1.
The working principle of the seismic isolation device for the earthquake resistance of the building in the embodiment is the same as that in the embodiment 1, and the public can analyze the seismic isolation device by referring to the embodiment 1.
Example 3
Referring to fig. 18 to 22, the present example is mainly improved in the following points based on example 1: (1) replacing a lifting eye screw 10 as a steel wire rope turning element with a fixed pulley 20; (2) the counter-pressure device is correspondingly changed to:
the back pressure device consists of four pre-pressed steel wire ropes 9, four fixed pulleys 20 serving as steel wire rope turning elements, a floating back pressure steel plate 11, four lifting ring screws 10 for fixing one end of the pre-pressed steel wire ropes 9 and four steel wire rope self-locking tensioning anchors for fixing the other end of the pre-pressed steel wire ropes 9; wherein,
the floating back pressure steel plate 11 is arranged between the cylindrical spiral compression spring 4 and the base 3;
four fixed pulleys 20 which are used as steel wire rope turning elements symmetrically fix the lower surface of the driving pressure plate 7 in the central hole of the cylindrical spiral compression spring 4 around the axis of the guide sleeve 1; wherein, the fixed pulley 20 is hinged on a bracket which is welded on the driving pressure plate 7;
four lifting ring screws 10 are symmetrically arranged on the floating back pressure steel plate 11 around the axis of the guide sleeve 1; four steel wire rope self-locking tensioning anchors 18 are correspondingly arranged at the outer sides of the bases 3 beside the opposite positions of the four lifting ring screws 10 arranged on the floating back pressure steel plate 11; four pre-pressing steel wire ropes 9 are distributed in the central hole of the cylindrical spiral compression spring 4 in a broken line state, one end of each pre-pressing steel wire rope 9 is tied and fixed on a lifting ring screw 10 arranged on a floating counter-pressure steel plate 11, the other end of each pre-pressing steel wire rope 9 passes through a fixed pulley 20 which is used as a steel wire rope turning element and turns back after passing around the opposite fixed pulley, then the pre-pressing steel wire rope 9 passes through the floating counter-pressure steel plate 11 from the position which is near the fixed point on the floating counter-pressure steel plate 11 and corresponds to a steel wire rope self-locking tensioning anchorage 18 arranged on the base 3; on the floating back pressure steel plate 11, a through hole 12 penetrating through the pre-pressing steel wire rope 9 is arranged at the penetrating position of each pre-pressing steel wire rope 9, and the aperture of the through hole 12 is larger than the diameter of the pre-pressing steel wire rope 9; on the base 3, an anchoring hole 3-1 for anchoring the pre-pressed steel wire rope 9 is arranged at the position where each pre-pressed steel wire rope 9 passes through.
The other embodiments other than the above-described embodiment are the same as those of embodiment 1.
The working principle of the seismic isolation device for the earthquake resistance of the building in the embodiment is the same as that in the embodiment 1, and the public can analyze the seismic isolation device by referring to the embodiment 1.

Claims (2)

1. A three-dimensional shock isolation device capable of adjusting vertical initial rigidity comprises a laminated rubber shock isolation support and a vertical shock isolation support which are sequentially connected in series from top to bottom; wherein,
the laminated rubber shock-insulation support comprises an upper connecting plate, a lower connecting plate, a laminated rubber pad clamped between the upper connecting plate and the lower connecting plate and at least three tensile steel wire ropes uniformly distributed around the laminated rubber pad; one end of the tensile steel wire rope is fixed on the upper connecting plate, the other end of the tensile steel wire rope is fixed on the lower connecting plate, and the connecting line of the upper fixing point and the lower fixing point is parallel to the central axis of the laminated rubber pad;
the vertical shock insulation support comprises a base, and a guide sleeve extending upwards is arranged on the upper surface of the base; a cylindrical spiral compression spring is coaxially arranged inside the guide sleeve, and a driving pressing plate is arranged at the upper head of the cylindrical spiral compression spring; the middle part of the lower surface of the lower connecting plate of the laminated rubber shock-insulation support extends into the guide sleeve to form a bulge which is fixedly connected with the driving pressure plate;
it is characterized in that the preparation method is characterized in that,
a back pressure device is also arranged in the guide sleeve of the vertical shock insulation support and comprises more than three pre-pressed steel wire ropes, steel wire rope turning elements with the same number as the pre-pressed steel wire ropes, steel wire rope self-locking tensioning anchors with the same number as the pre-pressed steel wire ropes and a floating back pressure steel plate, wherein,
the floating back pressure steel plate is arranged between the cylindrical spiral compression spring and the base;
the steel wire rope turning element is symmetrically fixed on the driving pressing plate around the axis of the guide sleeve;
wire rope auto-lock tensioning ground tackle constitute by first self-centering locking clamp, the self-centering locking clamp of second, prevent turning round compression spring and plane bearing, wherein:
A) the first self-centering locking clamp is provided with a connecting seat, the middle part of one end of the connecting seat is provided with an axially extending cylindrical boss, a first conical clamping jaw consisting of 3-5 claw sheets is arranged in the boss along the axial lead, and a tensioning screw sleeve is sleeved on the outer peripheral surface of the boss; the small end of the first conical clamp points to the connecting seat, and the outer peripheral surface of the tensioning screw sleeve is in a regular hexagon shape;
B) the second self-centering locking clamp is provided with a taper sleeve, a second tapered clamping jaw and a hollow bolt which are composed of 3-5 jaw pieces are sequentially arranged in the taper sleeve along the axis, the head of the hollow bolt is opposite to the big end of the second tapered clamping jaw, and the peripheral surface of the taper sleeve is regular hexagon;
C) the plane bearing is composed of a ball-retainer assembly and annular roller paths respectively arranged on the end surfaces of the tensioning screw sleeve opposite to the taper sleeve, wherein the annular roller paths are matched with the balls in the ball-retainer assembly;
D) the second self-centering locking clamp is positioned on the outer side of the head of the tensioning threaded sleeve, and the small head of the second conical clamping jaw and the small head of the first conical clamping jaw point to the same direction; the plane bearing is positioned between the tensioning threaded sleeve and the taper sleeve, and the anti-torsion compression spring is arranged in an inner hole of the tensioning threaded sleeve; after the prepressing steel wire rope penetrates out of the space between the claw sheets of the first conical clamping jaw and the center hole of the plane bearing and the claw sheets of the second conical clamping jaw through the anti-torsion compression spring, under the tension action of the prepressing steel wire rope, one end of the anti-torsion compression spring acts on the first conical clamping jaw, and the other end of the anti-torsion compression spring acts on the conical sleeve;
the prepressing steel wire ropes are distributed in the central hole of the cylindrical spiral compression spring in a broken line state, one end of each prepressing steel wire rope is symmetrically fixed on the floating back pressure steel plate around the axis of the guide sleeve, the other end of each prepressing steel wire rope passes through the opposite steel wire rope turning element and then turns back, and then the prepressing steel wire rope passes through the floating back pressure steel plate from the side of the fixed point of the prepressing steel wire rope on the floating back pressure steel plate and is anchored on the base by a steel wire rope self-locking tensioning anchorage; on the floating back pressure steel plate, a through hole for penetrating the pre-pressed steel wire rope is arranged at the penetrating position of each pre-pressed steel wire rope, and the aperture of the through hole is larger than the diameter of the pre-pressed steel wire rope;
tensioning the pre-pressed steel wire rope to a tension required by setting vertical initial rigidity, so that the cylindrical spiral compression spring is always clamped between the driving pressing plate and the floating back-pressure steel plate;
and tensioning the tensile steel wire rope to provide a pre-pressure equal to the designed static load for the laminated rubber pad.
2. The three-dimensional seismic isolation device capable of adjusting the initial vertical stiffness as claimed in claim 1, wherein the wire rope direction changing element is a fixed pulley, a lifting bolt or a U-shaped member.
CN201610906006.4A 2016-10-17 2016-10-17 Vertical initial rigidity adjustable three-dimensional shock insulation device Pending CN106401000A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201610906006.4A CN106401000A (en) 2016-10-17 2016-10-17 Vertical initial rigidity adjustable three-dimensional shock insulation device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201610906006.4A CN106401000A (en) 2016-10-17 2016-10-17 Vertical initial rigidity adjustable three-dimensional shock insulation device

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113216432A (en) * 2021-04-16 2021-08-06 哈尔滨工业大学(深圳) Combined three-dimensional shock insulation layer
CN117885022A (en) * 2024-03-18 2024-04-16 扬中市天成密封科技有限公司 Dust-free type machine tool for piston ring machining

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Publication number Priority date Publication date Assignee Title
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CN102409777A (en) * 2011-09-30 2012-04-11 福州大学 A structural three-dimensional seismic isolation and anti-overturning device
CN103343593A (en) * 2013-07-25 2013-10-09 长沙理工大学 Prestressed tendon anchorage device capable of being freely regulated and controlled at high precision
US20140041320A1 (en) * 2011-09-22 2014-02-13 Tongji University Seismic-incurred-rupture-resistant deformation-recordable buckling-restrained brace and fabricating method thereof

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Publication number Priority date Publication date Assignee Title
CN201136517Y (en) * 2007-12-18 2008-10-22 中国北车集团四方车辆研究所 Bidirectional buffer for pulling-pressing conversion of elastic body
US20140041320A1 (en) * 2011-09-22 2014-02-13 Tongji University Seismic-incurred-rupture-resistant deformation-recordable buckling-restrained brace and fabricating method thereof
CN102409777A (en) * 2011-09-30 2012-04-11 福州大学 A structural three-dimensional seismic isolation and anti-overturning device
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Publication number Priority date Publication date Assignee Title
CN113216432A (en) * 2021-04-16 2021-08-06 哈尔滨工业大学(深圳) Combined three-dimensional shock insulation layer
CN117885022A (en) * 2024-03-18 2024-04-16 扬中市天成密封科技有限公司 Dust-free type machine tool for piston ring machining
CN117885022B (en) * 2024-03-18 2024-05-24 扬中市天成密封科技有限公司 Dust-free type machine tool for piston ring machining

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