Climbing frame embedded part
Through the combined structure of climbing cone, anchor and stress bolt, the problem of cutting embedded anchors after the climbing frame is fixed is solved, and the stable support and efficient reuse of the climbing frame are achieved, reducing costs.
Patent Information
- Application Number
- CN202422580108.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-24
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-10-24
AI Technical Summary
The existing climbing frame fixing method requires manual cutting of the embedded anchor after upgrading, resulting in high cost and low efficiency.
The combined structure of crawling cone, anchor and stress bolt is adopted. The crawling cone is pre-buried in the concrete structure and is anchored by the anchor. The stress bolt is connected to the connecting seat to improve stability and does not require cutting during disassembly, realizing reuse.
It reduces the cost of fixing the climbing frame support, improves construction efficiency and convenience, and reduces material waste.
Smart Images

Figure CN223241061U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of climbing frame construction, and in particular to a climbing frame embedded component. Background Art
[0002] Climbing frames, also known as lifting frames, are a new type of scaffolding system developed in recent years. Primarily used in high-rise shear-wall buildings, they can be raised or lowered along the structure. This system has revolutionized scaffolding technology, significantly saving manpower and materials, and possesses significant advantages in high-rise construction. However, securing the climbing frame to the wall is crucial to its installation, directly impacting construction safety.
[0003] Currently, the most common method for securing climbing frames is to use pre-embedded anchors in the concrete structure to support and secure the climbing frame. However, with this method, the pre-embedded anchors remain anchored to the concrete structure after the climbing frame is raised, requiring manual cutting. This is not only time-consuming and labor-intensive, but also requires a large number of pre-embedded anchors, resulting in high costs for supporting and securing the climbing frame. Utility Model Content
[0004] In order to reduce the cost of supporting and fixing the climbing frame, the present application provides a climbing frame embedded part.
[0005] The present application provides a climbing frame embedded part adopting the following technical solution:
[0006] A climbing frame embedded part includes a climbing cone, an anchor, a stress bolt and a connecting seat. The climbing cone is pre-embedded in a concrete structure, and the diameter of the climbing cone gradually increases from close to the concrete structure to away from the concrete structure. The anchor is detachably arranged on the climbing cone and is used to anchor the climbing cone in the concrete structure; the stress bolt thread is arranged on the inner wall of the climbing cone, and the connecting seat is arranged on the stress bolt and is used to connect with the climbing frame.
[0007] By adopting the above technical solution, the construction workers anchor the climbing cone in the concrete structure and anchor the climbing cone in the concrete structure through the anchor, thereby improving the stability of the climbing cone in the concrete structure. The stress bolt is then threaded through the inner wall of the climbing cone and the climbing frame is installed on the connecting seat to provide a stable support for the climbing frame. After the climbing frame is lifted, the construction workers unscrew the stress bolt from the climbing cone, release the anchoring of the climbing cone by the anchor, and then pull the climbing cone out of the concrete structure. The stress bolt, climbing cone and connecting seat can be reused without cutting, effectively reducing the cost of supporting and fixing the climbing frame.
[0008] Optionally, the anchoring piece includes an embedded plate and a high-strength screw, the embedded plate is pre-embedded in the concrete structure, and the high-strength screw is arranged on the embedded plate and threadedly penetrates the inner wall of the climbing cone.
[0009] By adopting the above technical solution, construction workers pre-embed the embedded plate and high-strength screw in the concrete structure, and then screw the climbing cone onto the high-strength screw. The high-strength screw can limit the climbing cone from moving away from the concrete structure. Subsequent construction workers can rotate the climbing cone and easily remove it from the high-strength screw.
[0010] Optionally, the connecting seat includes a wall-mounted seat, a hanging seat and a positioning piece. The wall-mounted seat is slidably mounted on the stress bolt, and the hanging seat is detachably mounted on the wall-mounted seat. The hanging seat is provided with a plurality of reserved holes for connecting with the climbing frame. The positioning piece is arranged on the stress bolt and is used to position the wall-mounted seat on the stress bolt.
[0011] By adopting the above technical solution, the construction workers put the wall-mounted seat on the stress bolt, position the wall-mounted seat on the stress bolt through the positioning piece, and then install the hanging seat on the wall-mounted seat. It can be conveniently connected to the climbing frame through the reserved holes on the hanging seat, and the wall-mounted seat and the hanging seat are split into a structure, which is convenient for construction workers to install, dismantle and transfer.
[0012] Optionally, the hanging seat is slidably arranged on the wall-mounted seat in a direction perpendicular to the force-bearing bolt, the wall-mounted seat is provided with an anti-slip ring, and the hanging seat is provided with a slot for the anti-slip ring to be inserted into.
[0013] By adopting the above technical solution, the construction workers set the hanging bracket sliding sleeve on the wall mounting bracket from the side of the wall mounting bracket, and the anti-slip ring abuts against the side wall of the card slot, so that the hanging bracket can be locked in the length direction of the force-bearing bolt, and the hanging bracket can be installed on the wall mounting bracket conveniently and quickly.
[0014] Optionally, a safety pin is slidably inserted into the hanging seat, and the safety pin is slidably inserted into the wall-mounted seat.
[0015] By adopting the above technical solution, the construction workers insert the safety pin into the mounting bracket and pass the safety pin into the wall mounting bracket. The safety pin can lock the mounting bracket on the wall mounting bracket, thereby improving the stability of the mounting bracket on the wall mounting bracket.
[0016] Optionally, the positioning member includes a clamping nut, and the clamping nut is threadedly disposed on the stress-bearing bolt and is pressed against the wall mounting base.
[0017] By adopting the above technical solution, the construction workers put the wall mount on the stress bolt and then screw the clamping nut onto the stress bolt so that the clamping nut presses the wall mount tightly, thereby locking the wall mount on the stress bolt for fixation.
[0018] Optionally, a positioning groove is provided on a side of the climbing cone away from the concrete structure, a dismantling rod is slidably inserted on the climbing cone, and a positioning block for being clamped into the positioning groove is provided on the dismantling rod.
[0019] By adopting the above technical solution, when the climbing cone needs to be removed, the construction worker unscrews the load-bearing bolt from the climbing cone, then inserts the insertion rod into the climbing cone, and makes the positioning block fit into the positioning groove. The construction worker rotates the insertion rod to drive the climbing cone to rotate, thereby making the climbing cone detachable from the high-strength screw and removed, thereby improving the convenience of the construction worker in removing the climbing cone.
[0020] Optionally, a mounting bolt is threaded on the climbing cone.
[0021] By adopting the above technical solution, before pouring concrete, the construction workers will thread the mounting bolts into the formwork, and then install the climbing cone thread onto the mounting bolts to position the climbing cone on the formwork. After the subsequent pouring of concrete, the construction workers will unscrew the mounting bolts from the climbing cone, and the climbing cone can be conveniently embedded in the concrete structure.
[0022] In summary, this application includes at least one of the following beneficial technical effects:
[0023] 1. Construction workers unscrew the load-bearing bolts from the climbing cone, release the anchoring of the climbing cone by the anchor, and then pull the climbing cone out of the concrete structure. The load-bearing bolts, climbing cone and connecting seat can be reused without cutting, effectively reducing the cost of supporting and fixing the climbing frame;
[0024] 2. The anti-drop ring abuts against the side wall of the slot, locking the bracket in the length direction of the force-bearing bolt, allowing the bracket to be quickly and easily installed on the wall mount.
[0025] 3. Construction workers rotate the plug rod to drive the climbing cone to rotate, so that the climbing cone can be separated from the high-strength screw and removed, which improves the convenience of construction workers in removing the climbing cone. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a structural diagram of the embedded parts of the climbing frame of an embodiment of the present application.
[0027] Figure 2 It is a structural schematic diagram of the climbing cone and anchoring piece in an embodiment of the present application before being anchored in a concrete structure.
[0028] Figure 3 It is a structural schematic diagram of the rod dismantling and cone climbing embodiment of the present application.
[0029] Figure 4 It is an exploded schematic diagram of an embodiment of the present application.
[0030] Figure numerals: 1. Climbing cone; 11. Positioning groove; 2. Anchor; 21. Embedded plate; 22. High-strength screw; 3. Load-bearing bolt; 4. Connecting seat; 41. Wall mount; 42. Hanging seat; 421. Slot; 43. Positioning piece; 431. Pressing nut; 5. Anti-slip ring; 6. Safety pin; 7. Dismantling rod; 8. Positioning block; 9. Mounting bolt. DETAILED DESCRIPTION
[0031] The following is combined with Figure 1-4 This application is described in further detail.
[0032] An embodiment of the present application discloses a climbing frame embedded component.
[0033] Reference Figure 1 The embedded parts of the climbing frame include a climbing cone 1, an anchor 2, a stress bolt 3 and a connecting seat 4.
[0034] Reference Figure 1 、 Figure 2 The climbing cone 1 is pre-embedded and installed in the concrete structure. The climbing cone 1 is hollow inside and open at both ends. The inner wall of the climbing cone 1 is threaded, and the diameter of the climbing cone 1 gradually increases from close to the concrete structure to away from the concrete structure; the anchor 2 is detachably installed on the climbing cone 1, and the anchor 2 is used to anchor the climbing cone 1 in the concrete structure. The anchor 2 includes an embedded plate 21 and a high-strength screw 22. The embedded plate 21 is pre-embedded and installed in the concrete structure, and the high-strength screw 22 is installed on the embedded plate 21, and the high-strength screw 22 is threadedly passed through the end of the climbing cone 1 with a smaller diameter; a mounting bolt 9 is threadedly installed on the climbing cone 1.
[0035] Before pouring concrete, the construction workers will pass the mounting bolts 9 through the formwork, and then screw the climbing cone 1 onto the mounting bolts 9 to position the climbing cone 1 on the side of the formwork where concrete is poured. The high-strength screw 22 is then screwed onto the climbing cone 1. After pouring concrete, the mounting bolts 9 are unscrewed, and the climbing cone 1, the high-strength screw 22 and the embedded plate 21 can be conveniently embedded in the concrete structure. At this time, the embedded plate 21 and the high-strength screw 22 tighten the climbing cone 1, limiting the climbing cone 1 from sliding out in the direction away from the concrete structure, thereby improving the stability of the climbing cone 1 in the concrete structure.
[0036] Reference Figure 1 、 Figure 3 A positioning groove 11 is provided on the side of the climbing cone 1 away from the high-strength screw 22 , and a dismantling rod 7 is slidably inserted on the climbing cone 1 , and a positioning block 8 is installed on the dismantling rod 7 , which is used to be stuck in the positioning groove 11 .
[0037] When the construction workers need to remove the climbing cone 1 from the concrete structure, they insert the insertion rod into the climbing cone 1 so that the positioning block 8 is stuck in the positioning groove 11, and then rotate the removal rod 7. The removal rod 7 drives the climbing cone 1 to rotate, and the climbing cone 1 can be unscrewed from the high-strength screw 22, thereby conveniently and quickly removing the climbing cone 1 from the concrete structure.
[0038] Reference Figure 1 、 Figure 4 The clamping nut 431 is used to position the wall-mounted bracket 41 on the stress bolt 3. The clamping nut 431 is used to tighten the wall-mounted bracket 41. The clamping nut 431 is used to tighten the wall-mounted bracket 41.
[0039] After the construction workers have screwed their hands onto the climbing cone 1, they put the wall mount 41 onto the stressed bolt 3, and then screwed the clamping nut 431 onto the stressed bolt 3, so that the clamping nut 431 presses the wall mount 41 against the concrete structure, and then install the hanging seat 42 on the wall mount 41 from a direction perpendicular to the stressed bolt 3, so that the anti-slip ring 5 is stuck in the slot 421, and the anti-slip ring 5 is abutted against the side wall of the slot 421 to limit the hanging seat 42 from moving away from the stressed bolt 3, and then By locking the movement of the hanging seat 42 in the length direction of the force-bearing bolt 3, the installation of the connecting seat 4 can be completed quickly and squarely. Subsequently, the climbing frame can be conveniently connected to the hanging seat 42 through the reserved holes on the hanging seat 42 to provide stable support for the climbing frame. After the climbing frame is lifted, the construction personnel will disassemble the hanging seat 42, the tightening nut 431, the wall mounting seat 41, the force-bearing bolt 3, and the climbing cone 1 for next use. In addition, each structure can be disassembled, which is convenient for the construction personnel to install and transfer.
[0040] Reference Figure 1 、 Figure 4 A safety pin 6 is slidably inserted into the hanger 42, and the safety pin 6 is slidably inserted into the wall mount 41. After the construction personnel install the hanger 42 on the wall mount 41, they insert the safety pin 6 into the hanger 42 and make the safety pin 6 pass through the wall mount 41. The safety pin 6 can lock the hanger 42 on the wall mount 41, restricting the sliding of the hanger 42 and improving the stability of the hanger 42 on the wall mount 41.
[0041] The implementation principle of the embedded parts of the climbing frame of the embodiment of the present application is as follows: the construction personnel install the installation bolts 9 on the template, then screw the climbing cone 1 onto the installation bolts 9, and then screw the high-strength screw 22 onto the climbing cone 1. After pouring concrete, the climbing cone 1, the high-strength screw 22 and the embedded plate 21 can be anchored in the concrete structure. Then the construction personnel unscrew the installation bolts 9 from the climbing cone 1, screw the stress bolts 3 into the climbing cone 1, and then install the connecting seat 4 onto the stress bolts 3. By connecting the connecting seat 4 with the climbing frame, the climbing frame can be firmly supported. After the climbing frame is disassembled and lifted, the connecting seat 4 is removed from the stress bolts 3, and the stress bolts 3 are unscrewed from the climbing cone 1. Then, the climbing cone 1 is removed from the concrete structure through the disassembly rod 7, and the climbing cone 1, the stress bolts 3 and the connecting seat 4 can be removed for reuse next time without the need for cutting, which effectively reduces the cost of supporting and fixing the climbing frame.
[0042] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A climbing frame embedded part, characterized by: The invention comprises a climbing cone (1), an anchor (2), a stress bolt (3) and a connecting seat (4); the climbing cone (1) is pre-embedded in a concrete structure; the diameter of the climbing cone (1) gradually increases from close to the concrete structure to far away from the concrete structure; the anchor (2) is detachably arranged on the climbing cone (1) and is used to anchor the climbing cone (1) in the concrete structure; the stress bolt (3) is threadedly arranged on the inner wall of the climbing cone (1); the connecting seat (4) is arranged on the stress bolt (3) and is used to be connected to the climbing frame.
2. A climbing frame embedded part according to claim 1, characterized in that: The anchoring member (2) comprises an embedded plate (21) and a high-strength screw (22); the embedded plate (21) is pre-embedded in the concrete structure; the high-strength screw (22) is arranged on the embedded plate (21) and is threadedly threaded on the inner wall of the climbing cone (1).
3. The embedded climbing frame according to claim 1, characterized in that: The connecting seat (4) includes a wall-attached seat (41), a hanging seat (42) and a positioning member (43); the wall-attached seat (41) is slidably sleeved on the stressed bolt (3); the hanging seat (42) is detachably arranged on the wall-attached seat (41); the hanging seat (42) is provided with a plurality of reserved holes for connection with the climbing frame; the positioning member (43) is arranged on the stressed bolt (3) and is used to position the wall-attached seat (41) on the stressed bolt (3).
4. A climbing frame embedded part according to claim 3, characterized in that: The hanging seat (42) is slidably arranged on the wall-attached seat (41) in a direction perpendicular to the stressed bolt (3); an anti-slip ring (5) is provided on the wall-attached seat (41); and a slot (421) for the anti-slip ring (5) to be inserted is provided on the hanging seat (42).
5. The embedded climbing frame according to claim 4, characterized in that: A safety pin (6) is slidably inserted into the hanging seat (42), and the safety pin (6) is slidably inserted into the wall-mounted seat (41).
6. The climbing frame embedded part according to claim 3, characterized in that: The positioning member (43) includes a clamping nut (431), wherein the clamping nut (431) is threadedly disposed on the stressed bolt (3) and is pressed against the wall-mounted base (41).
7. The embedded climbing frame component according to claim 1, characterized in that: A positioning groove (11) is provided on a side of the climbing cone (1) away from the concrete structure, a dismantling rod (7) is slidably inserted on the climbing cone (1), and a positioning block (8) for engaging with the positioning groove (11) is provided on the dismantling rod (7).
8. The embedded climbing frame component according to claim 1, characterized in that: The climbing cone (1) is threadedly provided with a mounting bolt (9).