BIM-based public building anti-seismic composite beam and construction method
By using a BIM-based seismic composite beam structure, which provides additional axial damping through support plates and damping components, and combined with the support and warning functions of anti-tipping components, the seismic resistance problem of public buildings under vertical seismic action is solved, and the stability and safety of the buildings are improved.
Patent Information
- Application Number
- CN202411498891.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2044-10-25
AI Technical Summary
The seismic performance of existing public buildings under vertical seismic loads has not been effectively improved, and no measures have been taken to reduce the impact of vertical seismic loads.
The seismic composite beam structure based on BIM is adopted, including frame components, damping components and anti-tipping components. Through the combined use of support plates, damping components and anti-tipping components, additional axial damping and support are provided to reduce the vertical seismic response of the structure, and to provide support and warning when tilting.
It effectively reduces the structural response of public buildings under vertical seismic action, improves the seismic performance and safety of buildings, ensures the stable operation of buildings during vibration, and reminds people to pay attention to safety.
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Figure CN119332991B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of seismic resistance technology for public buildings, specifically a BIM-based seismic-resistant composite beam for public buildings and its construction method. Background Technology
[0002] BIM uses various relevant information and data of a building project as the basis for building model creation, and simulates the real information of the building through digital information.
[0003] Earthquake resistance of public buildings refers to the building's ability to effectively resist seismic forces during an earthquake, reducing structural damage and casualties. To improve a building's seismic performance, appropriate materials, structural design, and technical measures must be considered during design and construction to ensure the building's safe and stable operation during an earthquake. Based on BIM (Building Information Modeling), structural designers can comprehensively consider multiple factors such as material properties, component dimensions and shapes, and connection methods to ensure the structure has sufficient strength and stability during earthquakes.
[0004] Chinese Patent No. CN216517073U discloses a reinforcement structure for concrete beams in public buildings, including a horizontal beam, a longitudinal beam at the bottom of the horizontal beam, a first fixing plate and a second fixing plate respectively between the two sides of the horizontal beam and the longitudinal beam, a support mechanism between the first fixing plate and the second fixing plate, a load-bearing frame snapped onto the bottom of the longitudinal beam, and a set of identical first bolts screwed between the two sides of the load-bearing frame and the bottom inner wall of the load-bearing frame. A reinforcing mechanism is provided between the longitudinal beam and the bottom inner wall of the load-bearing frame. This novel structure improves the stability of the concrete beam structure and is suitable for widespread application.
[0005] The aforementioned public buildings did not take into account the vertical seismic response of the structure. Therefore, from the perspective of ensuring the sustainable function of the building and protecting the safety of people inside the building, it is necessary to take measures to reduce the adverse effects of vertical seismic action. Summary of the Invention
[0006] The purpose of this invention is to provide a BIM-based seismic-resistant composite beam for public buildings and its construction method, in order to solve the problem that existing technologies for public buildings do not take measures to reduce vertical seismic forces.
[0007] To achieve the above objectives, the present invention provides the following technical solution:
[0008] A BIM-based seismic-resistant composite beam for public buildings, comprising:
[0009] A frame assembly includes a first support member, a limiting member located on the first support member, and a second support member connected to the limiting member;
[0010] The shock absorption assembly includes a support plate located within the limiting member, and a shock absorber located in the middle of the support plate;
[0011] The anti-tipping assembly includes a first pillar connector located outside the first pillar member and a second pillar connector located outside the second pillar member.
[0012] Preferably, the first support member includes a first support body, on which a first support fixing plate is provided; the limiting member includes a shear rib, on which a first connecting plate is provided; the first connecting plate is fixed to the first support fixing plate by bolts.
[0013] Preferably, the second support member includes a second support body, on which a second support fixing plate is provided; the shear rib is further provided with a second connecting plate; the second support body is limited by a plurality of second connecting plates, and the plurality of second connecting plates are fixedly connected by bolts.
[0014] Preferably, the support plate includes a first support plate and a second support plate; the shock absorber includes a plurality of rigid spacers and rubber pads; the rigid spacers and rubber pads are indirectly disposed at the middle position of the first support plate and the second support plate.
[0015] Preferably, the first support plate and the second pillar fixing plate are fixedly connected by bolts.
[0016] Preferably, the first support member includes a first support member body, and the first support member body and the first support member are fixedly connected.
[0017] Preferably, the second support member includes a second support member body, and the second support member body and the second support member are fixedly connected.
[0018] Preferably, the anti-tipping assembly further includes a plurality of reinforcing rods located between the first pillar connector and the second pillar connector.
[0019] Preferably, the reinforcing rod includes a reinforcing threaded rod, with a frustum-shaped column on the outer side of the reinforcing threaded rod and a plurality of nuts on the outer side of the reinforcing threaded rod; the outer side of the first support member body is also provided with a plurality of support arms, with support blocks on the support arms; the outer side of the second support member body is also provided with a plurality of warning rods; the support arms are also provided with movable holes, and the warning rods can move arbitrarily within the movable holes, with the portion of the warning rods located within the movable holes coated with paint.
[0020] A construction method for seismic-resistant composite beams in public buildings based on BIM includes the following steps:
[0021] Step 1: Preliminary Preparations
[0022] Prepare the necessary materials, including shock absorber 202, support plate 201, first support column 101, second support column 103, limiter 102, bolts, and anti-tipping assembly 300; check the quality of all materials to ensure there is no damage or defect, and perform pretreatment as needed, such as cleaning and rust prevention;
[0023] Step 2: Install shock absorbers and support plates:
[0024] Fix the shock absorber 202 to the middle position of the support plate 201, ensuring that it is firmly fixed and without loosening; insert the shock absorber 202 and the support plate 201 into the middle position of the first support member 101 and the second support member 103, ensuring that the insertion is stable and without shaking.
[0025] Step 3: Install the limiting components:
[0026] Several limiting members 102 are fixed to the first support member 101 with bolts to ensure that the bolts are tightened and the limiting members are stable; several limiting members 102 are connected to each other in sequence with bolts to form a stable limiting system, so that the second support member 103 is effectively limited.
[0027] Step 4: Install the anti-tipping components:
[0028] Check the verticality of the first support member 101 and the second support member 103. If there is any tilting, adjust it in time. Install the anti-tipping component 300 in an appropriate position to ensure that it provides effective support for the second support member 103.
[0029] Step 5: Inspection and Debugging
[0030] After installation, a comprehensive inspection of the entire structure is conducted to ensure that all components are installed correctly and without omission.
[0031] Compared with the prior art, the present invention has the following beneficial effects:
[0032] This invention uses a first support plate and a second support plate to fix the rigid spacer block and rubber pad, which are then installed between the first and second support pillars. This provides additional axial damping to the first and second support pillars, reducing the vertical seismic response or vertical environmental vibration response of the structure. When the connection between the second and first support pillars tilts severely during vibration, the support arm and support block can provide support, while the painted part of the warning pole is exposed to alert personnel. Attached Figure Description
[0033] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0034] Figure 2 This is an exploded structural diagram of the composite beam of the present invention;
[0035] Figure 3 This is a schematic diagram of the frame component structure of the present invention;
[0036] Figure 4 This is a schematic diagram of the shock absorption component structure of the present invention;
[0037] Figure 5 This is a schematic diagram of the anti-tipping component structure of the present invention.
[0038] In the diagram: 100, frame assembly; 101, first support member; 101a, first support body; 101a-1, first support fixing plate; 102, limiting member; 102a, shear rib; 102a-1, first connecting plate; 102a-2, second connecting plate; 103, second support member; 103a, second support body; 103a-1, second support fixing plate; 200, damping assembly; 201, support plate; 201a, first support plate; 201b, second support plate; 202. Shock absorber; 202a, rigid spacer block; 202b, rubber pad; 300, anti-tipping assembly; 301, first support member connector; 301a, first support member connector body; 301a-1, support arm; 301a-2, support block; 301a-3, movable hole; 302, second support member connector; 302a, second support member connector body; 302a-1, warning bar; 303, reinforcing bar; 303a, reinforcing threaded bar; 303a-1, frustum column; 303a-2, nut. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] Please see Figure 1-5This invention provides a BIM-based seismic composite beam for public buildings, comprising a frame assembly 100, including a first support member 101, a limiting member 102 located on the first support member 101, and a second support member 103 connected to the limiting member 102; a damping assembly 200, including a support plate 201 located within the limiting member 102, and a damping member 202 located in the middle of the support plate 201; and an anti-tipping assembly 300, including a first support member connector 301 located outside the first support member 101, and a second support member connector 302 located outside the second support member 103. The damping component 202 is fixed to the middle position of the support plate 201. The damping component 202 and the support plate 201 are then snapped into the middle position of the first support member 101 and the second support member 103. Several limiting components 102 are fixed to the first support member 101 with bolts. At the same time, several limiting components 102 are connected to each other in sequence with bolts, thereby limiting the second support member 103. The damping component 202 and the support plate 201 can provide additional axial damping for the first support member 101 and the second support member 103 to reduce the vertical seismic response or vertical environmental excitation response of the structure. If the first support member 101 and the second support member 103 tilt, the anti-tipping component 300 can provide a certain support for the second support member 103.
[0041] Specifically, the first support member 101 includes a first support body 101a, on which a first support fixing plate 101a-1 is provided; the limiting member 102 includes a shear rib 102a, on which a first connecting plate 102a-1 is provided; the first connecting plate 102a-1 is fixed to the first support fixing plate 101a-1 by bolts, and the connection between the first support fixing plate 101a-1 and the first support body 101a is reinforced by pre-welded stiffening ribs, thereby enhancing local stiffness.
[0042] Specifically, the second support member 103 includes a second support body 103a, on which a second support fixing plate 103a-1 is provided; a second connecting plate 102a-2 is also provided on the shear rib 102a; the second support body 103a is limited by a number of second connecting plates 102a-2, and the number of second connecting plates 102a-2 are fixedly connected by bolts. The number of adjacent second connecting plates 102a-2 are fixedly connected by bolts in sequence. The connected number of second connecting plates 102a-2 can just restrain the second support body 103a so that the second support body 103a can only move up and down.
[0043] Specifically, the support plate 201 includes a first support plate 201a and a second support plate 201b; the damping component 202 includes a plurality of rigid spacer blocks 202a and rubber pads 202b; the rigid spacer blocks 202a and rubber pads 202b are indirectly disposed in the middle position of the first support plate 201a and the second support plate 201b, and the rubber pads 202b are made of thick rubber with a small shape factor, that is, the ratio of the constrained area to the free surface area is small, so as to provide sufficient vertical flexibility and additional damping.
[0044] Specifically, the first support plate 201a and the second pillar fixing plate 103a-1 are fixedly connected by bolts, and the second support plate 201b and the first pillar fixing plate 101a-1 are fixedly connected by bolts.
[0045] As can be seen from the above, the rigid spacer 202a and the rubber pad 202b are indirectly set in the middle position of the first support plate 201a and the second support plate 201b. The first support plate 201a and the second pillar fixing plate 103a-1 are then fixedly connected by bolts. The second support plate 201b and the first pillar fixing plate 101a-1 are also fixedly connected by bolts. Several first connecting plates 102a-1 are fixed to the first pillar fixing plate 101a-1 by bolts. A thin layer of lubricating oil is pre-applied to the position of several second connecting plates 102a-2 near the second pillar body 103a. Then, several adjacent second connecting plates 102a-2 are sequentially fixedly connected by bolts.
[0046] The first support connector 301 includes a first support connector body 301a, which is fixedly connected to the first support member 101; wherein, the first support connector body 301a has a through hole that matches the reinforcing threaded rod 303a, thereby limiting the reinforcing threaded rod 303a.
[0047] Specifically, the second support connector 302 includes a second support connector body 302a, which is fixedly connected to the second support member 103; wherein, the second support connector body 302a has a through hole that matches the reinforcing threaded rod 303a, thereby limiting the reinforcing threaded rod 303a.
[0048] Specifically, the anti-tipping component 300 also includes a number of reinforcing rods 303 located between the first pillar connector 301 and the second pillar connector 302, which can strengthen the support capacity between the second pillar body 103a and the first pillar body 101a.
[0049] Specifically, the reinforcing rod 303 includes a reinforcing threaded rod 303a, with a frustum 303a-1 on the outer side of the reinforcing threaded rod 303a and several nuts 303a-2 on the outer side of the reinforcing threaded rod 303a; wherein, when the reinforcing threaded rod 303a is fixed to the first support connector body 301a and the second support connector body 302a, the frustum 303a-1 on the reinforcing threaded rod 303a is partially embedded in the upper side of the first support connector body 301a.
[0050] Specifically, the outer side of the first pillar connector body 301a is provided with several support arms 301a-1, and support blocks 301a-2 are provided on the support arms 301a-1; the outer side of the second pillar connector body 302a is provided with several warning rods 302a-1; the support arms 301a-1 are also provided with movable holes 301a-3, and the warning rods 302a-1 can move freely within the movable holes 301a-3. The part of the warning rods 302a-1 located within the movable holes 301a-3 is coated with paint; among them, several support arms 301a-1 are snap-fit shaped, and the movable holes 301a-3 located on the support arms 301a-1 are elliptical, and the warning rods 302a-1 can move flexibly up, down, left, and right within the movable holes 301a-3.
[0051] As can be seen from the above, the reinforcing threaded rod 303a is fixed to the first support connector body 301a and the second support connector body 302a by a number of nuts 303a-2. The frustum column 303a-1 abuts against the first support connector body 301a. When the second support body 103a and the first support body 101a are relatively offset, the second support connector body 302a located on the second support body 103a will also be offset. At this time, the reinforcing threaded rod 303a and the frustum column 303a-1 can play the role of strengthening support and assisting connection. When the connection between the second support body 103a and the first support body 101a tilts severely during vibration, the reinforcing threaded rod 303a and the second support connector body 302a both move along the tilt direction of the second support body 103a, while the first support connector body 301a outside the second support body 103a does not move. When the second support connector body 302a moves and abuts against the support arm 301a-1, the support arm 301a-1 and the support block 301a-2 can provide support, and at the same time, the part of the warning rod 302a-1 with paint is exposed to remind personnel.
[0052] A construction method for seismic-resistant composite beams in public buildings based on BIM includes the following steps:
[0053] Step 1: Preliminary Preparations
[0054] Prepare the necessary materials, including shock absorber 202, support plate 201, first support column 101, second support column 103, limiter 102, bolts, and anti-tipping assembly 300; check the quality of all materials to ensure there is no damage or defect, and perform pretreatment as needed, such as cleaning and rust prevention;
[0055] Step 2: Install shock absorbers and support plates:
[0056] Fix the shock absorber 202 to the middle position of the support plate 201, ensuring that it is firmly fixed and without loosening; insert the shock absorber 202 and the support plate 201 into the middle position of the first support member 101 and the second support member 103, ensuring that the insertion is stable and without shaking.
[0057] Step 3: Install the limiting components:
[0058] Several limiting members 102 are fixed to the first support member 101 with bolts to ensure that the bolts are tightened and the limiting members are stable; several limiting members 102 are connected to each other in sequence with bolts to form a stable limiting system, so that the second support member 103 is effectively limited.
[0059] Step 4: Install the anti-tipping components:
[0060] Check the verticality of the first support member 101 and the second support member 103. If there is any tilting, adjust it in time. Install the anti-tipping component 300 in an appropriate position to ensure that it provides effective support for the second support member 103.
[0061] Step 5: Inspection and Debugging
[0062] After installation, a comprehensive inspection of the entire structure is conducted to ensure that all components are installed correctly and without omission.
[0063] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A BIM-based public building seismic composite beam, characterized by: The application relates to a frame assembly (100) comprising a first support member (101), a limiting member (102) arranged on the first support member (101), and a second support member (103) connected with the limiting member (102); a shock absorption assembly (200) comprising a support plate member (201) arranged in the limiting member (102), and a shock absorption member (202) arranged in the middle of the support plate member (201); and an anti-falling assembly (300) comprising a first support connecting member (301) arranged outside the first support member (101), and a second support connecting member (302) arranged outside the second support member (103). The first support member (101) comprises a first support body (101a) provided with a first support fixing plate (101a-1); the limiting member (102) comprises a shear rib (102a) provided with a first connecting plate (102a-1); and the first connecting plate (102a-1) is fixed on the first support fixing plate (101a-1) through bolts. The second support member (103) comprises a second support body (103a) provided with a second support fixing plate (103a-1); the shear rib (102a) is further provided with a second connecting plate (102a-2); and the second support body (103a) is limited by the second connecting plates (102a-2), and the second connecting plates (102a-2) are fixedly connected through bolts. The support plate member (201) comprises a first support plate (201a) and a second support plate (201b); the shock absorption member (202) comprises a plurality of partition rigid pads (202a) and rubber pads (202b); and the partition rigid pads (202a) and the rubber pads (202b) are indirectly arranged at the middle positions of the first support plate (201a) and the second support plate (201b). The first support plate (201a) and the second support fixing plate (103a-1) are fixedly connected through bolts, and the second support plate (201b) and the first support fixing plate (101a-1) are fixedly connected through bolts.
2. A BIM-based public building seismic composite beam according to claim 1, characterized in that: The first support connecting member (301) comprises a first support connecting member body (301a) fixedly connected with the first support member (101).
3. A BIM-based public building seismic composite beam according to claim 2, characterized in that: The second support connecting member (302) comprises a second support connecting member body (302a) fixedly connected with the second support member (103).
4. A BIM-based public building seismic composite beam as claimed in claim 3, characterized in that: The anti-falling assembly (300) further comprises a plurality of reinforcing rod members (303) arranged between the first support connecting member (301) and the second support connecting member (302).
5. A BIM-based public building seismic composite beam as claimed in claim 3, characterized in that: 6. A BIM-based public building seismic composite beam as claimed in claim 5, characterized by: 7. A BIM-based public building seismic composite beam as claimed in claim 6, characterized by: 8. A BIM-based public building seismic composite beam as claimed in claim 7, characterized by: The reinforcing rod (303) comprises a reinforcing threaded rod (303a), the outer side of the reinforcing threaded rod (303a) is provided with a circular truncated cone column (303a-1), and the outer side of the reinforcing threaded rod (303a) is provided with a plurality of nuts (303a-2); the outer side of the first support connecting piece body (301a) is also provided with a plurality of support arms (301a-1), and the support arms (301a-1) are provided with support blocks (301a-2); the outer side of the second support connecting piece body (302a) is also provided with a plurality of warning rods (302a-1); the support arms (301a-1) are also provided with movable holes (301a-3), the warning rods (302a-1) are arbitrarily moved in the movable holes (301a-3), and the part of the warning rods (302a-1) in the movable holes (301a-3) is coated with paint. 9.A construction method of a BIM-based public building seismic composite beam, comprising the BIM-based public building seismic composite beam according to any one of claims 1-8, characterized in that: The method comprises the following steps: Step one: preliminary preparation: Prepare the required materials, including shock-absorbing parts (202), support plate parts (201), first support parts (101), second support parts (103), limiting parts (102), bolts and anti-falling assemblies (300); check the quality of all materials to ensure that there is no damage or defect, and pretreat as needed, such as cleaning and rust prevention; Step two: install shock-absorbing parts and support plate parts: Fix the shock-absorbing parts (202) in the middle position of the support plate parts (201) to ensure firm fixation without looseness; embed the overall structure of the shock-absorbing parts (202) and the support plate parts (201) in the middle position of the first support parts (101) and the second support parts (103) to ensure stable embedding without shaking; Step three: install limiting parts: Use bolts to fix a plurality of limiting parts (102) on the first support parts (101) to ensure that the bolts are tightened and the limiting parts are stable; use bolts to sequentially connect a plurality of limiting parts (102) to each other to form a stable limiting system, so that the second support parts (103) are effectively limited; Step four: install anti-falling assemblies: Check the perpendicularity of the first support parts (101) and the second support parts (103), and adjust in time if there is inclination; install the anti-falling assemblies (300) at appropriate positions to ensure that they effectively support the second support parts (103); Step five: check and debug: After completing the installation, comprehensively check the entire structure to ensure that all components are installed correctly and there is no omission.
Citation Information
Patent Citations
Concrete beam reinforcing structure for public building
CN216517073U
Damping type steel structure assembling stand column
CN217630614U
Vibration-proofing device
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