Adjustable titanium alloy reinforcing part
By using adjustable titanium alloy reinforcement components and rotating the butterfly screw and limit screw, the problem of poor adaptability of existing formwork fixing methods to beam and column formwork of different sizes and shapes is solved, achieving stable formwork fixing and improving construction quality and appearance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2026-03-31
AI Technical Summary
Existing formwork fixing methods are mostly simple mechanical clamps, which cannot be flexibly adjusted, resulting in poor adaptability to beam and column formwork of different sizes and shapes, weak fixing, and easy occurrence of problems such as formwork bulging and grout leakage.
The adjustable titanium alloy reinforcement components include support members, sliding sleeves, wing screws, square blocks, rotating shafts, fasteners, and limiting components. By rotating and adjusting the wing screws and limiting screws, the template can be clamped and fixed in multiple directions, adapting to beam and column templates of different shapes and sizes.
This method achieves stable fixation of beam and column formwork, avoids bulging and grout leakage, and improves construction quality and appearance.
Smart Images

Figure CN224063928U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a reinforcement component, and more particularly to an adjustable titanium alloy reinforcement component. Background Technology
[0002] In the field of building construction, beams and columns are key load-bearing components of a building structure, and their construction quality directly affects the stability and safety of the entire building. Formwork engineering is a crucial step in the beam and column construction process. By erecting formwork, it provides shape and dimensional constraints for concrete pouring, ensuring that the beams and columns meet design requirements. However, existing formwork fixing and reinforcement methods have many shortcomings and are difficult to meet the increasingly complex and high-standard demands of building construction.
[0003] Common formwork fixing methods mainly rely on traditional clamps and support systems. When fixing the outer formwork of beams and columns, commonly used reinforcements are mostly simple mechanical clamps, which often only provide clamping force in one direction and have poor adaptability to beam and column formwork of different sizes and shapes. When encountering beams and columns of special sizes or situations where the formwork specifications on the construction site are not uniform, these clamps cannot be adjusted flexibly, resulting in unstable formwork fixing. During concrete pouring, problems such as formwork bulging and grout leakage are prone to occur, seriously affecting the forming quality and appearance of beams and columns.
[0004] Therefore, an adjustable titanium alloy reinforcement is needed to strengthen beams and columns under different working conditions. Utility Model Content
[0005] To overcome the shortcomings of commonly used reinforcement components, which are mostly simple mechanical clamps that can only provide clamping force in one direction, have poor adaptability to beam and column formwork of different sizes and shapes, and cannot be flexibly adjusted, resulting in unstable formwork fixation, the technical problem to be solved is to provide an adjustable titanium alloy reinforcement component.
[0006] The technical solution is as follows: An adjustable titanium alloy reinforcement includes a support, a sliding sleeve, a wing screw, a square block, a rotating shaft, a fixing component, and a limiting component. The sliding sleeve is slidably arranged on one side of the support, and the wing screw is screwed into the center of the top of the sliding sleeve. A square block is arranged on the side wall of the sliding sleeve, and a square block is fixedly arranged on the side wall of the support. A rotating shaft is arranged in the middle of the square block, and a fixing component is rotatably arranged on the rotating shaft. A limiting component is arranged between the fixing component and the square block.
[0007] Furthermore, the limiting component includes a locking rod and a moving rod. The square block has symmetrically opened locking grooves on its side wall. The fixed part has symmetrically opened sliding grooves near the side wall of the square block. The locking rod is slidably installed in the sliding groove of the fixed part. The locking rod cooperates with the locking groove of the square block. The square block has symmetrically opened square grooves on its side wall. The directional groove is connected to the sliding groove. The moving rod is installed between the tops of the two locking rods.
[0008] Furthermore, it also includes an elastic element; an elastic element is provided between the square groove sidewall of the fastener and the locking rod.
[0009] Furthermore, the support has insertion holes on both the top and bottom left and right sides.
[0010] Furthermore, it also includes a limiting screw, and the side wall of the support has threaded holes spaced apart, with the limiting screw engaged in the threaded holes inside the support.
[0011] Furthermore, it also includes rubber strips, with rubber strips provided on the straight sides of the fasteners.
[0012] Compared with existing technologies, this utility model has the following advantages: When clamping the templates on both sides of a beam and column facing each other, rotating the wing screw allows the sliding sleeve to move along the support member. After the fixing part engages with the template, the wing screw is used to press against the top of the support member to lock the sliding sleeve and the support member. Simultaneously, rotating the limiting screw can reinforce the template. After using multiple devices for reinforcement, the overall fixation is completed by inserting the connecting rod into the insertion hole of the adjacent support member. For reinforcing the inner template of a concave beam and column, pulling the moving rod compresses the elastic element to disengage the locking rod from the slot. After the fixing part rotates 180° around the pivot, the moving rod is released, the locking rod resets and engages with the slot, and the straight sides of the fixing parts rotate away from each other. Rotating the wing screw can then engage and fix the template. Overall, this device has a simple structure and is easy to adjust, effectively meeting the reinforcement needs of different beam and column templates. Attached Figure Description
[0013] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0014] Figure 2 This is a partial exploded structural diagram of the present invention.
[0015] Figure 3 This is a partial three-dimensional structural diagram of the present invention.
[0016] Figure 4 This is a schematic diagram of the installation structure of the limiting screw of this utility model.
[0017] The following are the labels in the diagram: 1. Support component, 2. Sliding sleeve, 21. Wing screw, 3. Square block, 31. Rotating shaft, 4. Fixed component, 5. Limiting component, 51. Slot, 52. Square groove, 53. Locking rod, 54. Moving rod, 6. Elastic component, 7. Insertion hole, 8. Threaded hole, 9. Limiting screw, 10. Rubber strip. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0019] Example: An adjustable titanium alloy reinforcement, such as Figure 1-4 As shown, the assembly includes a support 1, a sliding sleeve 2, a wing screw 21, a square block 3, a rotating shaft 31, a fixing component 4, a limiting component 5, an elastic element 6, a limiting screw 9, and a rubber strip 10. A sliding sleeve 2 is slidably mounted on one side of the support 1. A wing screw 21 is screwed into the center of the top of the sliding sleeve 2. A square block 3 is mounted on the side wall of the sliding sleeve 2. A square block 3 is fixedly mounted on the side wall of the support 1. A rotating shaft 31 is located in the middle of the square block 3. A fixing component 4 is rotatably mounted on the rotating shaft 31. The fixing component 4 is a right-angled triangle with one side being a bevel and the other side being a straight surface. The straight surface is a clamping and reinforcing surface. A limiting component 5 is provided between the fixing component 4 and the square block 3. The limiting component 5 includes a locking rod 53 and a moving rod 54. The side walls of the square block 3 are symmetrically opened. The fastener 4 has a slot 51, and a sliding groove is symmetrically opened near the side wall of the square block 3. A locking rod 53 is slidably installed in the sliding groove of the fastener 4. The locking rod 53 cooperates with the slot 51 of the square block 3. A square groove 52 is symmetrically opened on the side wall of the square block 3. The directional groove is connected to the sliding groove. A moving rod 54 is set between the top of the two locking rods 53. An elastic element 6 is set between the side wall of the square groove 52 of the fastener 4 and the locking rod 53. The elastic element 6 is a compression spring. Insert holes 7 are opened on the top and bottom left and right sides of the support member 1. Threaded holes 8 are spaced apart on the side wall of the support member 1. The threaded holes 8 in the support member 1 are screwed with limit screws 9. Rubber strips 10 are set on the straight sides of the fastener 4 to increase the friction between the fastener 4 and the template on the beam and column.
[0020] When it is necessary to clamp the formwork on both sides of the beam and column facing each other, simply rotate the wing screw 21 to allow the sliding sleeve 2 to move along the support member 1. Then, the two straight edges of the fastener 4 are engaged with the formwork on both sides of the beam and column. The wing screw 21 is then rotated to press against the top of the support member 1, thus locking the sliding sleeve 2 and the support member 1. Alternatively, the limiting screw 9 can be rotated to press against the front formwork, thus reinforcing the formwork on the beam and column. After reinforcing with multiple of these devices, connecting rods can be inserted into the insertion holes 7 of two adjacent support members 1 to complete the overall fixation. When reinforcement of the formwork inside the concave beam-column is required, the worker pulls the moving rod 54 outward, compressing the elastic element 6. The moving rod 54 causes the locking rod 53 to disengage from the slot 51. Then, the fixing accessory 4 is rotated 180° around the pivot 31. The moving rod 54 is then released, and the elastic element 6 causes the locking rod 53 to reset, locking it into the slot 51 of the square block 3. The two straight sides of the fixing accessory 4 then rotate away from each other. At this point, by rotating the wing screw 21, the straight sides of the fixing accessory 4 are engaged with the formwork inside the concave beam-column, and then fixed by rotating the wing screw 21. This device has a simple structure and is easy to adjust.
[0021] The above embodiments are provided for those skilled in the art to implement or use the present invention. Those skilled in the art can make various modifications or changes to the above embodiments without departing from the inventive concept of the present invention. Therefore, the protection scope of the present invention is not limited to the above embodiments, but should be the maximum scope that conforms to the innovative features mentioned in the claims.
Claims
1. An adjustable titanium alloy reinforcement, characterized by, Include: Support (1), sliding sleeve (2), sliding sleeve (2) is provided with a sliding sleeve (2) on one side of support (1); Butterfly screw (21), butterfly screw (21) is screwed into the top center of sliding sleeve (2); Square block (3), square block (3) is arranged on the side wall of sliding sleeve (2), and square block (3) is fixedly arranged on the side wall of support (1); Shaft (31), shaft (31) is arranged in the middle of square block (3); Solid accessories (4), solid accessories (4) are rotatably arranged on the shaft (31); Limiting assembly (5), limiting assembly (5) is arranged between solid accessories (4) and square block (3).
2. The adjustable titanium alloy reinforcement of claim 1, wherein, The limiting assembly (5) comprises: Clamping rod (53), square block (3) side wall is symmetrically provided with clamping groove (51), solid accessories (4) is symmetrically provided with sliding slot near the square block (3) side wall, clamping rod (53) is slidably arranged in the sliding slot of solid accessories (4), and clamping rod (53) is matched with clamping groove (51) of square block (3); Moving rod (54), square groove (52) is symmetrically opened on the side wall of square block (3), and the direction groove is through the sliding slot, and the moving rod (54) is arranged between the top of the two clamping rods (53).
3. The adjustable titanium alloy reinforcement of claim 2, wherein, Also includes: Elastic member (6), elastic member (6) is arranged between the square groove (52) side wall of solid accessories (4) and clamping rod (53).
4. The adjustable titanium alloy reinforcement of claim 3, wherein, The top and bottom of support (1) are provided with insertion hole (7) on the left and right sides.
5. The adjustable titanium alloy reinforcement of claim 4, wherein, Also includes: Limiting screw (9), screw hole (8) is arranged on the side wall of support (1) at intervals, and limiting screw (9) is screwed into screw hole (8) in support (1).
6. The adjustable titanium alloy reinforcement of claim 5, wherein, Also includes: Rubber strip (10), rubber strip (10) is arranged on the straight side of solid accessories (4).