Detection device for building construction

Through the servo motor-driven conversion plate and loading box structure, the problem of continuous low working efficiency of concrete detection devices in the prior art is solved, and rapid unloading and efficient detection are achieved.

CN223065019UActive Publication Date: 2025-07-04SHANDONG LU MINING & ZHUGANG SUPPLY CHAIN MANAGEMENT CO LTD
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Patent Information

Application Number
CN202421599575.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-08
Publication Date
2025-07-04
Estimated Expiration
2034-07-08

AI Technical Summary

Technical Problem

The existing concrete inspection device for construction is less efficient when working continuously, and it is necessary to wait for the push plate to push away the tested concrete before the next batch of inspections can be carried out, resulting in wasted time.

Method used

The servo motor drives the conversion plate and loading box structure are adopted, and the position of the loading box is exchanged through the rotation of the servo motor drives the conversion plate, and combined with the efficiency-enhancing structures such as sliding grooves, limit grooves, and pull rods to achieve rapid unloading of concrete.

Benefits of technology

Through positional exchange of loading boxes and rapid unloading, the working efficiency of the detection device is improved, the waiting time is reduced, and the continuous working ability is improved.

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Abstract

The utility model relates to the technical field of house building construction, and discloses a detection device for building construction, which comprises a rack, the bottom of the rack is fixedly connected with a servo motor, and the servo motor is fixedly connected to the central position of the bottom of the rack; the detection chamber is fixedly connected to one side wall face of the top of the rack, the detection chamber is a hollow rectangular box with the front wall face and the bottom open, a hydraulic cylinder is fixedly connected to the top in a cavity of the detection chamber, and a pressure detector is fixedly connected to the bottom of the hydraulic cylinder; the work efficiency of the device can be improved through the synergistic structure, the synergistic structure comprises a conversion plate and loading boxes, the conversion plate is rotationally connected to the top of the rack, the loading boxes are symmetrically and fixedly connected to the top of the conversion plate, the loading boxes are hollow rectangular boxes with the tops open, and a distance is formed between the bottom of one side of the detection chamber and the top of the rack; and the loading box and the conversion plate can pass through the space at the bottom of the detection chamber.
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Description

Technical Field

[0001] The utility model belongs to the technical field of building construction, and specifically relates to a detection device for building construction. Background Art

[0002] Building construction refers to the production activities in the implementation stage of project construction, which is the construction process of various buildings. It can also be said to be the process of turning the various lines on the design drawings into physical objects at the designated location.

[0003] The prior art (publication number: CN221038464U) discloses a concrete detection device for building construction, which relates to the technical field of detection devices. The concrete detection device for building construction includes a concrete detection base, and a waste collection box is fixedly connected to the front surface of the concrete detection base.

[0004] In the prior art, the concrete to be detected is poured onto the detection bottom plate, and after the detection is completed, the concrete that has been detected on the top is pushed away by the push plate on the detection bottom plate, and then the detection of the next batch of concrete is carried out. Although the prior art can detect concrete, it still needs to wait for the push plate to push away the concrete before the next batch of detection can be carried out after each detection. This waiting process will consume a lot of time, resulting in low working efficiency of the prior art during continuous operation.

[0005] In view of this, the present utility model is specifically proposed. Content of the Utility Model

[0006] In order to solve the technical problem of low efficiency of the above prior art during continuous operation, the basic concept of the technical solution adopted by the present utility model is as follows:

[0007] A detection device for building construction includes:

[0008] A frame, a servo motor is fixedly connected to the bottom of the frame, and the servo motor is fixedly connected to the center position of the bottom of the frame;

[0009] A detection chamber, the detection chamber is fixedly connected to a side wall surface at the top of the frame. The detection chamber is a hollow rectangular box with an open front wall surface and bottom. A hydraulic cylinder is fixedly connected to the top of the cavity of the detection chamber, and a pressure detector is fixedly connected to the bottom of the hydraulic cylinder;

[0010] An efficiency-enhancing structure, which can improve the working efficiency of the device. The efficiency-enhancing structure includes: a conversion plate and a loading box. The conversion plate is rotatably connected to the top of the frame, and the loading boxes are symmetrically fixedly connected to the top of the conversion plate. The loading boxes are hollow rectangular boxes with an open top. There is a spacing between the bottom of one side of the detection chamber and the top of the frame, and the loading boxes and the conversion plate can pass through the spacing at the bottom of the detection chamber.

[0011] As a preferred embodiment of the utility model, the servo motor can drive the conversion plate to rotate, the top opening of the loading box can adapt to the size of the pressure detector, and the loading box will be at the vertical bottom of the pressure detector when in the detection chamber.

[0012] As a preferred embodiment of the utility model, the efficiency-enhancing structure also includes a slide groove, a limit groove, a slide plate, a limit column and a pull rod. The slide groove is symmetrically opened on the top of the conversion plate, the limit groove is symmetrically opened in each slide groove, the slide plate is slidably connected in the slide groove, the limit column is symmetrically fixedly connected on both sides of the slide plate, and the pull rod is rotatably connected to the front wall surface of the slide plate.

[0013] As a preferred embodiment of the utility model, the slide groove can adapt to the sliding of the pull rod and the slide plate, the pull rod is a U-shaped rod, the opening of the pull rod faces the front wall of the slide plate, the top of the pull rod is fixedly connected to the top of the loading box, the limit groove can adapt to the sliding of the limit column, the limit column is cylindrical, the limit groove, the slide plate, the limit column and the pull rod are symmetrically arranged on the top of the conversion plate, and the symmetrical tops of the pull rods are fixedly connected to the bottom of the loading box at the corresponding position.

[0014] As a preferred embodiment of the utility model, the efficiency-enhancing structure also includes a pull groove, a base block, a clamping block, a handle, a clamping groove and a discharge chute. The pull groove is opened at the top of the pull rod, the base block is fixedly connected to the pull rod wall on one side of the pull groove, the clamping block is rotatably connected to the wall of the base block, the handle is fixedly connected to the top of the handle, the clamping groove passes through the wall of the conversion plate opened at the bottom of the slide groove, and the discharge chute is opened on the side wall of the frame symmetrical to the detection room.

[0015] As a preferred embodiment of the utility model, the clamping block can rotate in the pull groove, the base block is a semicircular block, the clamping block can rotate along the arc surface of the base block, and the clamping block is an L-shaped block.

[0016] As a preferred embodiment of the utility model, the positioning groove can adapt to the size of the card block, the card block can enter the positioning groove by rotation, the position of the unloading groove is at the vertical bottom of the pull rod on the corresponding side, and the pull groove, base block, card block, handle and positioning groove are symmetrically arranged on the top of the conversion plate.

[0017] Compared with the prior art, the utility model has the following beneficial effects:

[0018] 1. The synergistic structure can save the time of unloading the device, because the synergistic structure can use the symmetrical loading boxes that can be rotated to load concrete in one loading box while the next batch of concrete to be tested is loaded in another loading box, and when the loading box unloads the tested concrete in the cavity, the other loading box will load concrete at the bottom of the detection chamber cavity for testing. Therefore, compared with the prior art, this solution has higher working efficiency during continuous operation.

[0019] 2. By setting up a movable pull rod, it can be quickly unloaded when it is necessary to unload the concrete that has been detected from the loading box. Because when pulling the pull rod, it will drive the loading box to move and flip with the flipping of the pull rod, so as to directly pour out the concrete in the loading box cavity from the device, thus achieving the quick unloading of the concrete, and further improving the working efficiency of the device.

[0020] The following further describes in detail the specific implementation manners of the present utility model with reference to the accompanying drawings. Description of the Drawings

[0021] In the drawings:

[0022] Figure 1 is the perspective view of the present utility model;

[0023] Figure 2 is the bottom perspective view of the present utility model;

[0024] Figure 3 is the perspective view of the top structure of the conversion plate of the present utility model;

[0025] Figure 4 is the disassembly view of the conversion plate and the sliding plate of the present utility model;

[0026] Figure 5 is the exploded view of the wall surface structure of the pull rod of the present utility model.

[0027] In the figure: 20, frame; 21, servo motor; 22, detection chamber; 23, hydraulic cylinder; 24, pressure detector; 30, conversion plate; 31, loading box; 32, chute; 33, limit groove; 34, sliding plate; 36, limit post; 37, pull rod; 40, dial groove; 41, base block; 42, clamping block; 43, handle; 44, clamping groove; 45, discharge chute. Specific Embodiments

[0028] To make the objectives, technical solutions, and advantages of the embodiments of the present utility model clearer, the following will clearly and completely describe the technical solutions in the embodiments with reference to the accompanying drawings in the embodiments of the present utility model. The following embodiments are used to illustrate the present utility model.

[0029] As Figure 1 and Figure 2 shown, a detection device for building construction includes: a frame 20, a servo motor 21 is fixedly connected to the bottom of the frame 20, the servo motor 21 is fixedly connected to the center position of the bottom of the frame 20, and the servo motor 21 is electrically connected to the corresponding power supply;

[0030] The detection chamber 22 is fixedly connected to a side wall surface at the top of the frame 20. The detection chamber 22 is a hollow rectangular box with an open front wall surface and bottom. A hydraulic cylinder 23 is fixedly connected to the top inside the detection chamber 22. A pressure detector 24 is fixedly connected to the bottom of the hydraulic cylinder 23. The model of the pressure detector 24 is the same as that of the pressure detector in the prior art with the publication number: CN221038464U. The hydraulic cylinder 23 is electrically connected to the pressure detector 24 and the corresponding power supply. This is the prior art, so it will not be elaborated here.

[0031] As Figure 1 , Figure 2 , Figure 3 and Figure 4 shown, the efficiency - enhancing structure can improve the working efficiency of the device. The efficiency - enhancing structure includes: a conversion plate 30 and a loading box 31. The conversion plate 30 is rotatably connected to the top of the frame 20. The loading boxes 31 are symmetrically and fixedly connected to the top of the conversion plate 30. The loading box 31 is a hollow rectangular box with an open top. There is a gap between the bottom of one side of the detection chamber 22 and the top of the frame 20. The loading box 31 and the conversion plate 30 can pass through the gap at the bottom of the detection chamber 22.

[0032] As Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 shown, the servo - motor 21 can drive the conversion plate 30 to rotate. The top opening of the loading box 31 can adapt to the size of the pressure detector 24. When the loading box 31 is inside the detection chamber 22, it will be at the vertical bottom of the pressure detector 24. The efficiency - enhancing structure further includes a chute 32, a limiting groove 33, a sliding plate 34, a limiting post 36 and a pull rod 37. The chutes 32 are symmetrically opened on the top of the conversion plate 30. The limiting grooves 33 are symmetrically opened in each chute 32. The sliding plate 34 is slidably connected in the chute 32. The limiting posts 36 are symmetrically and fixedly connected to both sides of the sliding plate 34. The pull rod 37 is rotatably connected to the front wall surface of the sliding plate 34. The chute 32 can adapt to the sliding of the pull rod 37 and the sliding plate 34. The pull rod 37 is a U - shaped rod, and the opening of the pull rod 37 faces the front wall surface of the sliding plate 34. The top of the pull rod 37 is fixedly connected to the top of the loading box 31. The limiting groove 33 can adapt to the sliding of the limiting post 36. The limiting post 36 is a cylindrical shape. The limiting grooves 33, the sliding plate 34, the limiting posts 36 and the pull rods 37 are symmetrically arranged on the top of the conversion plate 30. The tops of the symmetric pull rods 37 are fixedly connected to the bottoms of the corresponding loading boxes 31;

[0033] During specific use, first pour the concrete to be detected into the loading box 31 at the bottom of the cavity of the detection chamber 22. After the pouring of the concrete is completed, turn on the power supplies of the hydraulic cylinder 23 and the pressure detector 24. The pressure detector 24 will contact the concrete in the cavity of the loading box 31 from the top of the loading box 31 through the contraction of the hydraulic cylinder 23. After the pressure detector 24 contacts the concrete, the pressure detector 24 will detect the concrete. After the detection is completed, turn on the power supply of the servo motor 21. The servo motor 21 will drive the conversion plate 30 to rotate 180 degrees on the top of the frame 20. The conversion plate 30 will drive all the structures on its top to rotate when rotating. After the conversion plate 30 rotates, the symmetrical loading boxes 31 on the top of the conversion plate 30 will exchange positions. At this time, the concrete in the loading box 31 that has completed the detection will not be at the bottom of the cavity of the detection chamber 22. At this time, pull the pull rod 37 forward. The pull rod 37 will drive the loading box 31 and the sliding plate 34 to move simultaneously. The sliding plate 34 and the pull rod 37 will slide in the chute 32. The sliding plate 34 can drive the limit post 36 to slide in the limit groove 33. After the pull rod 37 slides out of the chute 32, at this time the pull rod 37 will turn downward due to the weight of the loading box 31. The loading box 31 will be overturned due to the turning of the pull rod 37, so as to pour out the detected concrete in the cavity of the loading box 31 from the discharge chute 45. During the period when one of the loading boxes 31 is loading concrete for detection, the next batch of concrete to be detected can be poured into another idle loading box 31 for waiting for detection;

[0034] In summary, by setting the efficiency-enhancing structure, the unloading time of the device can be saved. Because the efficiency-enhancing structure can achieve loading the next batch of concrete to be detected into another loading box 31 when one of the loading boxes 31 is loading concrete through the rotatable symmetrical loading boxes 31. And when the loading box 31 unloads the detected concrete in the cavity, another loading box 31 will load concrete for detection at the bottom of the cavity of the detection chamber 22. Therefore, compared with the prior art, the working efficiency of this solution is higher during continuous operation.

[0035] Such as Figure 1 、 Figure 3 、 Figure 4 and Figure 5As shown in the figure, the efficiency-enhancing structure further includes a dial groove 40, a base block 41, a clamping block 42, a handle 43, a clamping position groove 44, and a discharge groove 45. The dial groove 40 is opened at the top of the pull rod 37. The base block 41 is fixedly connected to the wall surface of the pull rod 37 on one side inside the dial groove 40. The clamping block 42 is rotatably connected to the wall surface of the base block 41. The handle 43 is fixedly connected to the top of the handle 43. The clamping position groove 44 is penetrated and opened on the wall surface of the conversion plate 30 at the bottom of the sliding groove 32. The discharge groove 45 is opened on the side wall surface of the frame 20 symmetric to the detection chamber 22. The clamping block 42 can rotate within the dial groove 40. The base block 41 is in the shape of a semi-circular block. The clamping block 42 can rotate along the arc surface of the base block 41. The clamping block 42 is in the shape of an L-shaped block. The clamping position groove 44 can adapt to the size of the clamping block 42. The clamping block 42 can enter the clamping position groove 44 by rotating. The position of the discharge groove 45 is at the vertical bottom of the corresponding pull rod 37 on one side. The dial groove 40, the base block 41, the clamping block 42, the handle 43, and the clamping position groove 44 are symmetrically arranged on the top of the conversion plate 30;

[0036] During specific use, after the loading box 31 is tilted, the pull rod 37 is pushed towards its original position and the pull rod 37 re-enters the sliding groove 32. After the pull rod 37 returns to its original position, the clamping block 42 is toggled downward so that the handle 43 changes from the original horizontal state to the vertical state. At this time, the bottom of the clamping block 42 will be in the clamping position groove 44 to fix the position of the pull rod 37. When it is necessary to tilt the loading box 31, the handle 43 is toggled back to the horizontal state to unlock the position of the pull rod 37;

[0037] In summary, by setting the movable pull rod 37, when it is necessary to unload the concrete that has been detected from the loading box 31, it can be quickly unloaded. Because when the pull rod 37 is pulled, it will drive the loading box 31 to move and flip as the pull rod 37 flips, so as to directly pour the concrete in the cavity of the loading box 31 out of the device, thus achieving the quick unloading of the concrete, and further improving the working efficiency of the device.

[0038] Working principle: First, pour the concrete to be detected into the loading box 31 at the bottom of the cavity of the detection chamber 22. After the pouring of the concrete is completed, turn on the power supplies of the hydraulic cylinder 23 and the pressure detector 24. The pressure detector 24 will contact the concrete in the cavity of the loading box 31 from the top of the loading box 31 through the contraction of the hydraulic cylinder 23. After the pressure detector 24 contacts the concrete, the pressure detector 24 will detect the concrete. After the detection is completed, turn on the power supply of the servo motor 21. The servo motor 21 will drive the conversion plate 30 to rotate 180 degrees on the top of the frame 20. The conversion plate 30 will drive all the structures on its top to rotate when rotating. After the conversion plate 30 rotates, the symmetric loading boxes 31 on the top of the conversion plate 30 will exchange positions. At this time, the concrete in the loading box 31 that has been detected is not at the bottom of the cavity of the detection chamber 22. At this time, pull the pull rod 37 forward. The pull rod 37 will drive the loading box 31 and the slide plate 34 to move simultaneously. The slide plate 34 and the pull rod 37 will slide in the chute 32. The slide plate 34 can drive the limit post 36 to slide in the limit groove 33. After the pull rod 37 slides out of the chute 32, at this time the pull rod 37 will turn downward due to the weight of the loading box 31. The loading box 31 will tilt due to the turning of the pull rod 37, so as to pour the detected concrete in the cavity of the loading box 31 out from the discharge chute 45. During the period when one of the loading boxes 31 is loading concrete for detection, the next batch of concrete to be detected can be poured into another idle loading box 31 for waiting for detection.

[0039] It can be understood that the present utility model is described through some embodiments. As is known to those skilled in the art, without departing from the spirit and scope of the present utility model, various changes or equivalent replacements can be made to these features and embodiments. In addition, under the teaching of the present utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application belong to the scope protected by the present utility model.

Claims

1. A detection device for building construction, characterized in that, include: A frame (20), the bottom of which is fixedly connected to a servo motor (21), the servo motor (21) being fixedly connected at the center of the bottom of the frame (20); A detection chamber (22), the detection chamber (22) is fixedly connected to a side wall surface of the top of the frame (20), the detection chamber (22) is a hollow rectangular box with an open front wall surface and a bottom, a hydraulic cylinder (23) is fixedly connected to the top of the cavity of the detection chamber (22), and a pressure detector (24) is fixedly connected to the bottom of the hydraulic cylinder (23); The synergy-enhancing structure can improve the working efficiency of the device. The synergy-enhancing structure comprises: a conversion plate (30) and a loading box (31). The conversion plate (30) is rotatably connected to the top of the frame (20). The loading box (31) is symmetrically fixedly connected to the top of the conversion plate (30). The loading box (31) is a hollow rectangular box with an open top. There is a gap between the bottom of one side of the detection chamber (22) and the top of the frame (20). The loading box (31) and the conversion plate (30) can pass through the gap at the bottom of the detection chamber (22).

2. The detection device for building construction according to claim 1, characterized in that, The servo motor (21) can drive the conversion plate (30) to rotate, and the top opening of the loading box (31) can adapt to the size of the pressure detector (24). When the loading box (31) is in the detection chamber (22), it will be located at the vertical bottom of the pressure detector (24).

3. The detection device for building construction according to claim 1, wherein, The efficiency-enhancing structure also includes a slide groove (32), a limit groove (33), a slide plate (34), a limit column (36) and a pull rod (37). The slide groove (32) is symmetrically arranged on the top of the conversion plate (30), the limit groove (33) is symmetrically arranged in each slide groove (32), the slide plate (34) is slidably connected in the slide groove (32), the limit column (36) is symmetrically fixedly connected on both sides of the slide plate (34), and the pull rod (37) is rotatably connected to the front wall surface of the slide plate (34).

4. The detection device for building construction according to claim 3, characterized in that, The slide groove (32) can adapt to the sliding of the pull rod (37) and the slide plate (34); the pull rod (37) is a U-shaped rod, the opening of the pull rod (37) faces the front wall of the slide plate (34), the top of the pull rod (37) is fixedly connected to the top of the loading box (31), the limiting groove (33) can adapt to the sliding of the limiting column (36), the limiting column (36) is cylindrical, the limiting groove (33), the slide plate (34), the limiting column (36) and the pull rod (37) are symmetrically arranged on the top of the conversion plate (30), and the symmetrical top of the pull rod (37) is fixedly connected to the bottom of the loading box (31) at the corresponding position.

5. The detection device for building construction according to claim 3, wherein, The efficiency-enhancing structure also includes a pull groove (40), a base block (41), a clamping block (42), a handle (43), a clamping groove (44) and a discharge groove (45); the pull groove (40) is arranged at the top of the pull rod (37); the base block (41) is fixedly connected to the wall of the pull rod (37) on one side of the pull groove (40); the clamping block (42) is rotatably connected to the wall of the base block (41); the handle (43) is fixedly connected to the top of the handle (43); the clamping groove (44) penetrates the wall of the conversion plate (30) arranged at the bottom of the slide groove (32); and the discharge groove (45) is arranged on the side wall of the frame (20) symmetrical to the detection chamber (22).

6. The detection device for building construction according to claim 5, characterized in that, The clamping block (42) can rotate within the dialing groove (40). The base block (41) is in the shape of a semi-circular block. The clamping block (42) can rotate along the arc surface of the base block (41). The clamping block (42) is in the shape of an L-shaped block.

7. The inspection device for building construction according to claim 5, wherein, The clamping position groove (44) can adapt to the size of the clamping block (42). The clamping block (42) can enter the clamping position groove (44) by rotation. The position of the unloading groove (45) is at the bottom perpendicular to the corresponding side pull rod (37). The dialing groove (40), the base block (41), the clamping block (42), the handle (43) and the clamping position groove (44) are symmetrically arranged on the top of the conversion plate (30).

Citation Information

Patent Citations

  • A concrete detection device for building construction

    CN221038464U