CN223373871U - High strength anti-seismic supporting structure for building - Google Patents

High strength anti-seismic supporting structure for building

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Publication number
CN223373871U
CN223373871U CN202422308602.5U CN202422308602U CN223373871U CN 223373871 U CN223373871 U CN 223373871U CN 202422308602 U CN202422308602 U CN 202422308602U CN 223373871 U CN223373871 U CN 223373871U
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China
Prior art keywords
cross beam
horizontal cross
box body
plates
shaped plates
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CN202422308602.5U
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Chinese (zh)
Inventor
苏焕
李玉宏
刘衍武
张李男
惠凯飞
张立曈
梁雨松
孙丽欣
杨祎龙
尹家欢
李洋
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Second Engineering Co Ltd of China Railway First Engineering Group Co Ltd
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Second Engineering Co Ltd of China Railway First Engineering Group Co Ltd
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Priority to CN202422308602.5U priority Critical patent/CN223373871U/en
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Abstract

The application discloses a high-strength anti-seismic support structure for a building, which relates to the technical field of building anti-seismic support structures and comprises two vertical support rods, a horizontal cross beam and a box body, wherein L-shaped plates are fixedly arranged at one ends of the tops of the two vertical support rods, the horizontal cross beam is positioned on the two L-shaped plates, and a high-strength connecting piece for fixedly connecting the horizontal cross beam with the vertical support rods is arranged on the horizontal cross beam. According to the application, under the cooperation of the mounting plates and the like, the output end of the motor drives the screw rod to rotate by controlling the starting motor, the screw rod rotates and drives the two driving blocks to mutually approach, and drives the two corresponding rotating plates to rotate, and the two rotating plates rotate and push the two first U-shaped plates and the two mounting plates to move upwards, so that the height can be finely adjusted, the earthquake energy can be effectively absorbed and dispersed by the arrangement of the energy-consuming shock absorber, and the damage of the earthquake to the supporting structure and the building is reduced.

Description

High strength anti-seismic supporting structure for building
Technical Field
The application relates to the technical field of building anti-seismic support structures, in particular to a high-strength anti-seismic support structure for a building.
Background
In the construction industry, anti-seismic support structures are critical components to ensure that a building remains stable during an earthquake.
Conventional seismic support structures are typically comprised of vertical support bars, horizontal beams, and the like, and are secured to the structural frame of the building by welding or bolting.
However, when the earthquake-resistant supporting structure faces high-strength earthquakes, the welding points or the connecting parts are easy to break or loose, so that the supporting structure is invalid, meanwhile, the existing structure lacks flexibility, and is difficult to adapt to multi-direction dynamic loads generated by different earthquake waves.
Disclosure of utility model
The utility model aims to solve or at least alleviate the problems of the prior art that the traditional anti-seismic support structure is vulnerable to structural damage and insufficient stability when facing high-strength earthquakes.
The high-strength anti-seismic supporting structure for the building comprises two vertical supporting rods, a horizontal beam and a box body, wherein L-shaped plates are fixedly arranged at one ends of the tops of the two vertical supporting rods, the horizontal beam is positioned on the two L-shaped plates, a high-strength connecting piece for fixedly connecting the horizontal beam with the vertical supporting rods is arranged on the horizontal beam, an energy-consuming damper is arranged at the joint of the horizontal beam and the vertical supporting rods, mounting plates are fixedly arranged at one ends of the bottoms of the two vertical supporting rods, and an adjusting mechanism is arranged in the box body;
The adjusting mechanism comprises two first U-shaped plates fixedly installed on the outer walls of the bottoms of the two mounting plates, two second U-shaped plates are symmetrically and fixedly installed on the inner walls of the bottoms of the boxes, rotating plates are rotatably installed on one side outer walls of the first U-shaped plates and the two second U-shaped plates, the two rotating plates are rotatably connected with each other, driving blocks are fixedly installed on one side outer wall of each rotating plate, screws are fixedly connected in the driving blocks, and one end of each screw is provided with a driving mechanism.
By adopting the technical scheme, the screw rod rotates and drives the two driving blocks to approach each other, and drives the two corresponding rotating plates to rotate, so that the two rotating plates rotate and push the two first U-shaped plates and the two mounting plates to move upwards.
Optionally, the actuating mechanism is including being located the motor of box, the output of motor and the one end fixed connection of screw rod, and the screw rod is two-way screw rod, one side inner wall fixed mounting of box has the backup pad, the one end rotation of screw rod is installed in the backup pad.
By adopting the technical scheme, the screw rod can be rotatably arranged on the support plate through the support plate, and then the auxiliary installation function can be achieved.
Optionally, a backing plate is fixedly installed on the inner wall of one side of the box body, and the motor is fixedly installed on the backing plate.
By adopting the technical scheme, the motor can be fixedly arranged on the base plate through arranging the base plate.
Optionally, the energy-consuming damper is provided with a mounting bolt, and the mounting bolt is in threaded connection with the horizontal beam.
By adopting the technical scheme, the energy-consuming shock absorber can be fixedly installed by arranging the mounting bolts, and the energy-consuming shock absorber is also convenient to disassemble and maintain in the later stage.
Optionally, the bottom outer wall fixed mounting of box has the link, fixed mounting has articulated pole and cylinder on the link respectively, the output of articulated pole is articulated with the bottom outer wall of box, the output of cylinder is fixed connection with the box.
By adopting the technical scheme, the box body can be pushed to move upwards through the output end of the air cylinder, and the box body can incline under the action of the hinging rod, so that the angle can be finely adjusted.
Optionally, both ends of the horizontal beam are provided with prestress adjusting bolts.
By adopting the technical scheme, the prestress adjusting bolt is used for carrying out prestress adjustment on the supporting structure after the installation is completed, so that the overall stability and the anti-seismic performance of the prestress adjusting bolt are further improved.
Optionally, a plurality of strengthening ribs are fixedly installed in the vertical support rod, and a filling layer is filled between the vertical support rod and the strengthening ribs.
By adopting the technical scheme, the whole performance and the shock resistance of the supporting structure are occasionally further improved by arranging the reinforcing ribs and the filling layers, so that the supporting structure can adapt to multi-directional dynamic loads generated by different earthquake waves.
Optionally, the filling layer is EVA damping material, the top outer wall of box is equipped with the case groove.
By adopting the technical scheme, the filling layer is made of EVA damping material, so that the damping effect can be achieved.
In summary, the beneficial effects of the application are as follows:
1. According to the application, under the cooperation of the mounting plates and the like, the output end of the motor can drive the screw to rotate by controlling the starting motor, the screw rotates and can drive the two driving blocks to be close to each other and drive the two corresponding rotating plates to rotate, the two rotating plates rotate and can push the two first U-shaped plates and the two mounting plates to move upwards, so that the height can be finely adjusted, the earthquake energy can be effectively absorbed and dispersed by the arrangement of the energy-consuming shock absorber, and the damage of the earthquake to the supporting structure and the building is reduced.
2. According to the application, under the cooperation of the reinforcing ribs and the like, the arrangement of the prestress adjusting bolts and the reinforcing ribs further improves the overall performance and the shock resistance of the supporting structure, so that the supporting structure can adapt to multi-directional dynamic loads generated by different earthquake waves.
Drawings
FIG. 1 is a schematic overall view of the present application;
FIG. 2 is an exploded pictorial view of the reinforcing structure of the present application;
FIG. 3 is an exploded view of the tuning structure of the present application;
fig. 4 is a partially expanded schematic illustration of the present application.
The reference numerals are used for describing the figures, namely, 1, a vertical supporting rod, 2, a horizontal cross beam, 3, an L-shaped plate, 4, a high-strength connecting piece, 5, a prestress adjusting bolt, 6, an energy-consuming damper, 7, an installation bolt, 8, a mounting plate, 9, a box body, 10, a hinging rod, 11, an air cylinder, 12, a reinforcing rib, 13, a filling layer, 14, a box groove, 15, a first U-shaped plate, 16, a rotating plate, 17, a second U-shaped plate, 18, a driving block, 19, a screw, 20, a supporting plate, 21, a motor, 22, a backing plate, 23 and a connecting frame.
Detailed Description
The application is described in further detail below with reference to fig. 1-4.
Referring to fig. 1-3, a high-strength anti-seismic support structure for a building comprises a support mechanism, an adjusting mechanism and a reinforcing mechanism;
the supporting mechanism comprises two vertical supporting rods 1, two L-shaped plates 3 fixedly installed on the two vertical supporting rods 1, two horizontal beams 2 arranged on the two L-shaped plates 3, a high-strength connecting piece 4 arranged on the horizontal beams 2 and used for fixedly connecting the horizontal beams 2 with the vertical supporting rods 1, an energy consumption damper 6 arranged at the joint of the horizontal beams 2 and the vertical supporting rods 1, a mounting bolt 7 arranged on the energy consumption damper 6, two mounting plates 8 fixedly installed at one ends of the bottoms of the two vertical supporting rods 1, wherein the energy consumption damper 6 adopts a hydraulic buffer, high-viscosity fluid is filled in the hydraulic buffer, and seismic energy is absorbed and dispersed through viscous resistance of the fluid, so that the anti-seismic effect of the supporting structure is improved.
When the earthquake energy absorber is used, the high-strength alloy steel material and the specially-made high-strength connecting piece 4 are adopted, so that the supporting structure has higher structural strength and stability, can bear larger earthquake force, and the energy-consuming shock absorber 6 can effectively absorb and disperse earthquake energy, so that the damage of the earthquake to the supporting structure and a building is reduced.
Referring to fig. 1, 2 and 4, the adjusting mechanism comprises two first U-shaped plates 15 fixedly mounted on the outer walls of the bottoms of the two mounting plates 8, two second U-shaped plates 17 fixedly mounted on the inner walls of the bottoms of the boxes 9, a rotating plate 16 rotatably mounted on the outer walls of one sides of the two first U-shaped plates 15 and the two second U-shaped plates 17, a driving block 18 fixedly mounted on the outer walls of one sides of the two rotating plates 16, a bidirectional screw 19 screwed into the two driving blocks 18, a backing plate 22 fixedly mounted on the inner walls of one side of the boxes 9, a motor 21 fixedly mounted on the backing plate 22, a screw 19 fixedly connected with the output end of the motor 21, a connecting frame 23 fixedly mounted on the outer walls of the bottoms of the boxes 9, a hinge rod 10 and a cylinder 11 respectively fixedly mounted on the connecting frame 23, wherein the output end of the hinge rod 10 is hinged with the outer walls of the bottoms of the boxes 9, and the output end of the cylinder 11 is fixedly connected with the boxes 9;
During the use, thereby through control starter motor 21 and cylinder 11, the output of motor 21 can drive screw rod 19 and rotate, screw rod 19 rotates and can drive two drive blocks 18 and be close to each other to drive two corresponding rotating plates 16 and rotate, two rotating plates 16 rotate and can promote two first U template 15 and two mounting panels 8 and upwards move, thereby can promote box 9 upwards to remove through the output of cylinder 11, and under the effect through articulated rod 10, thereby make box 9 can incline, and then can finely tune height and angle.
Referring to fig. 1 and 2, both ends of the horizontal beam 2 are provided with prestress adjusting bolts 5, a plurality of reinforcing ribs 12 are fixedly installed in the vertical support rod 1, and a filling layer 13 is filled between the vertical support rod 1 and the reinforcing ribs 12. The arrangement of the prestress adjusting bolts 5 and the reinforcing ribs 12 further improves the overall performance and the shock resistance of the supporting structure, so that the prestress adjusting bolts can adapt to multidirectional dynamic loads generated by different earthquake waves.
Referring to fig. 2, the filling layer 13 is an EVA shock absorbing material, and a tank 14 is provided on the top outer wall of the tank 9. The filling layer 13 is made of EVA damping material, so that the damping effect is achieved.
When the application is used, firstly, the installation position is determined, the fixed points of the vertical support rod 1 and the horizontal cross beam 2 are marked, then an adjusting structure is installed, a starting motor 21 and an air cylinder 11 are controlled according to the requirement, the output end of the motor 21 can drive a screw 19 to rotate, the screw 19 rotates and can drive two driving blocks 18 to approach each other and drive two corresponding rotating plates 16 to rotate, and the two rotating plates 16 rotate and can push two first U-shaped plates 15 and two mounting plates 8 to move upwards;
The box body 9 can be pushed to move upwards through the output end of the air cylinder 11, and the box body 9 can be inclined under the action of the hinging rod 10, so that the height and the angle can be finely adjusted; then fixing the vertical supporting rod 1 on an adjusting structure and ensuring the verticality of the vertical supporting rod, connecting the horizontal cross beam 2 with the vertical supporting rod 1 by utilizing a high-strength connecting piece 4 to form a stable supporting frame, and installing an energy-consumption shock absorber 6 at the connecting position to ensure the normal work of the energy-consumption shock absorber;
Through adopting high strength alloy steel material and purpose-made high strength connecting piece 4 for bearing structure has higher structural strength and stability, can bear bigger earthquake power, and the setting of power consumption bumper shock absorber 6 can effectively absorb and disperse seismic energy, reduces the destruction effect of earthquake to bearing structure and building, and the use of adjustment structure makes the mounting process nimble more convenient to can ensure bearing structure's accuracy and steadiness, the setting of prestressing force adjusting bolt 5 and strengthening rib 12 has further improved bearing structure's wholeness ability and shock resistance, makes can adapt to the multidirectional dynamic load that different earthquake waves produced.
The above embodiments are not intended to limit the scope of the application, so that the equivalent changes of the structure, shape and principle of the application are covered by the scope of the application.

Claims (8)

1. The high-strength anti-seismic supporting structure for the building comprises two vertical supporting rods (1), a horizontal cross beam (2) and a box body (9), and is characterized in that L-shaped plates (3) are fixedly installed at one ends of the tops of the two vertical supporting rods (1), the horizontal cross beam (2) is located on the two L-shaped plates (3), a high-strength connecting piece (4) used for fixedly connecting the horizontal cross beam (2) with the vertical supporting rods (1) is arranged on the horizontal cross beam (2), an energy consumption shock absorber (6) is arranged at the joint of the horizontal cross beam (2) and the vertical supporting rods (1), mounting plates (8) are fixedly installed at one ends of the bottoms of the two vertical supporting rods (1), and adjusting mechanisms are arranged in the box body (9);
The adjusting mechanism comprises two first U-shaped plates (15) fixedly mounted on the outer walls of the bottoms of the two mounting plates (8), two second U-shaped plates (17) are symmetrically and fixedly mounted on the inner wall of the bottom of the box body (9), a rotating plate (16) is rotatably mounted on one side outer wall of each of the first U-shaped plates (15) and the two second U-shaped plates (17), the two rotating plates (16) are rotatably connected with each other, a driving block (18) is fixedly mounted on one side outer wall of each of the two rotating plates (16), a screw (19) is fixedly mounted in each of the two driving blocks (18), and one end of each screw (19) is provided with a driving mechanism.
2. The high-strength anti-seismic support structure for building according to claim 1, wherein the driving mechanism comprises a motor (21) positioned in the box body (9), the output end of the motor (21) is fixedly connected with one end of a screw rod (19), the screw rod (19) is a bidirectional screw rod, a support plate (20) is fixedly arranged on the inner wall of one side of the box body (9), and one end of the screw rod (19) is rotatably arranged on the support plate (20).
3. The high-strength anti-seismic support structure for building according to claim 2, wherein a base plate (22) is fixedly arranged on one side inner wall of the box body (9), and the motor (21) is fixedly arranged on the base plate (22).
4. The high-strength anti-seismic support structure for building according to claim 1, wherein the energy-consuming damper (6) is provided with a mounting bolt (7), and the mounting bolt (7) is in threaded connection with the horizontal cross beam (2).
5. The high-strength anti-seismic support structure for buildings according to claim 1, wherein a connecting frame (23) is fixedly arranged on the outer wall of the bottom of the box body (9), a hinging rod (10) and an air cylinder (11) are fixedly arranged on the connecting frame (23) respectively, the output end of the hinging rod (10) is hinged with the outer wall of the bottom of the box body (9), and the output end of the air cylinder (11) is fixedly connected with the box body (9).
6. The high-strength anti-seismic support structure for building according to claim 1, wherein the two ends of the horizontal cross beam (2) are provided with prestress adjusting bolts (5).
7. The high-strength anti-seismic support structure for building according to claim 6, wherein a plurality of reinforcing ribs (12) are fixedly arranged in the vertical support rod (1), and a filling layer (13) is filled between the vertical support rod (1) and the reinforcing ribs (12).
8. The high-strength anti-seismic support structure for building according to claim 7, wherein the filling layer (13) is made of EVA damping material, and a tank groove (14) is formed in the top outer wall of the tank body (9).
CN202422308602.5U 2024-09-20 2024-09-20 High strength anti-seismic supporting structure for building Active CN223373871U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202422308602.5U CN223373871U (en) 2024-09-20 2024-09-20 High strength anti-seismic supporting structure for building

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202422308602.5U CN223373871U (en) 2024-09-20 2024-09-20 High strength anti-seismic supporting structure for building

Publications (1)

Publication Number Publication Date
CN223373871U true CN223373871U (en) 2025-09-23

Family

ID=97099914

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202422308602.5U Active CN223373871U (en) 2024-09-20 2024-09-20 High strength anti-seismic supporting structure for building

Country Status (1)

Country Link
CN (1) CN223373871U (en)

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