Perpendicularity detection equipment for engineering supervision
By designing a verticality detection device for engineering supervision, using components such as mounting frames, sliding grooves, return springs, etc., the problem of inconvenience in testing items with a certain height in the prior art is solved, and the accurate detection of the verticality of items is achieved.
Patent Information
- Application Number
- CN202422009823.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-08-19
AI Technical Summary
The prior art is difficult to conveniently test the verticality of items at a certain height, which leads to inconvenience among staff during the inspection process.
A verticality detection device for engineering supervision is designed, including a handheld mechanism, an installation mechanism and a testing mechanism. The verticality of the item is detected through components such as mounting frame, sliding groove, fixing buckle, return spring, sliding block, rotating shaft, roller, test table, elastic rope, synchronizer and display table.
Through the cooperation of the roller and the slider, the equipment can drive the roller of the mounting frame to tilt, and the slider will pull the elastic rope and rotate the test table pointer to achieve accurate detection of the perpendicularity of the item, making it convenient for staff to test.
Smart Images

Figure CN222938501U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of detection equipment, in particular to a perpendicularity detection equipment for engineering supervision. Background Technique
[0002] Engineering detection is to test the foundation, building materials, construction technology, and building structure related to buildings throughout the construction process to ensure the safety of existing, under-construction, and to-be-built construction projects. For building materials, samples need to be extracted for testing, and the detection scope includes perpendicularity detection, that is, to detect whether the dimensions of building materials meet the requirements. Therefore, a perpendicularity detection equipment is needed.
[0003] As disclosed in the patent document with the authorization announcement number CN218156095U, a perpendicularity detection equipment for engineering supervision includes a bottom plate. A plurality of clamping mechanisms are arranged on the outer wall of the top of the bottom plate, and the clamping mechanisms are distributed in a ring on the surface of the bottom plate. A support adjustment mechanism is arranged at the center of the outer wall of the top of the bottom plate, and the support adjustment mechanism is used to support the building material to be tested and adjust the turning direction. A plurality of support columns are fixed on the outer wall of the top of the bottom plate by bolts, and the same top plate is fixed on the outer wall of the top of the support columns by bolts. A measuring mechanism is arranged on the outer walls of the opposite sides of the bottom plate and the top plate; in the utility model, the building material to be tested is placed on the surface of the marble flat plate, and then the clamping plate is driven to move by a certain electric slide rail on the outside, and the building material to be tested is clamped and fixed by the clamping plate. When it is necessary to adjust the turning direction of the building material to be tested, the clamping plate is loosened, and the turning motor is started to adjust the facing angle of the building material to be tested, which is convenient for subsequent detection. However, it does not solve the problem of facilitating the staff to test the perpendicularity of items at a certain height. For this reason, we propose a perpendicularity detection equipment for engineering supervision. Content of the Utility Model
[0004] The purpose of the utility model is to provide a perpendicularity detection equipment for engineering supervision to solve at least to some extent the problems raised in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solutions:
[0006] A perpendicularity detection equipment for engineering supervision includes a handheld mechanism, a mounting mechanism, and a detection mechanism. The handheld mechanism is movably arranged on one side of the mounting mechanism, and the detection mechanism is fixedly arranged on the inner wall of the mounting mechanism. The mounting mechanism includes a mounting frame, a sliding groove, and a fixing buckle. The mounting frame is a rectangular shell with a hollow inner wall. Sliding grooves are opened at both ends of the two sides of the inner wall of the mounting frame, and a fixing buckle with a semi-circular side that shrinks the inner wall of the mounting frame is opened at the center of the other surface of the mounting frame.
[0007] Preferably, the handheld mechanism includes a mounting buckle, a rotating groove, a telescopic rod, and an auxiliary spring. The mounting buckle is a hollow conical shell with an inner wall. On both sides of the inner wall of the mounting buckle, circular rotating grooves are provided. The rotating grooves are sleeved on the fixed buckle and can rotate along the fixed buckle. On the other side of the mounting buckle, a telescopic rod is fixedly provided. One side of the telescopic rod penetrates through the mounting buckle and is engaged with the rotating groove. A number of auxiliary springs are movably arranged on the inner wall of the rotating groove. The auxiliary springs are adjacent to both sides where the telescopic rod penetrates through the mounting buckle and is engaged with the rotating groove. The other side of the auxiliary spring fits against both ends of the semi-circular fixed buckle to support the side where the telescopic rod penetrates through the mounting buckle and is engaged with the rotating groove.
[0008] Preferably, the detection mechanism includes a return spring, a sliding block, a rotating shaft, a roller, a mounting shaft, a test meter, an elastic cord, a synchronizer, and a spring shaft. On one side of the inner wall of the sliding groove, a return spring is movably arranged. On the other side of the inner wall of the sliding groove, a sliding block is movably arranged. Between the sliding grooves on the inner wall of the sliding groove, a rotating shaft is fixedly provided. A roller is sleeved on the surface of the rotating shaft. The other side of the sliding block fits against the return spring. The other side of the roller penetrates through the mounting frame. The sliding block can slide along the sliding groove. The return spring can push the sliding groove to reset to the other side of the sliding groove.
[0009] Preferably, on one side of the inner wall of the mounting frame, a mounting shaft is fixedly provided. A spring shaft is sleeved on the surface of the mounting shaft. On the other side of the mounting, a test meter is fixedly provided. The spring shaft should penetrate through the inner wall of the test meter and be connected to the pointer of the test meter. When the spring shaft rotates, it should drive the pointer of the test meter to rotate.
[0010] Preferably, on the other side of the sliding groove, an elastic cord is fixedly provided. The elastic cord penetrates through the sliding groove and is connected to one side of the spring shaft. The sliding blocks in the sliding grooves opened at both ends of both sides of the inner wall of the mounting frame should be parallel and perpendicular to each other. The elastic cords connected to the sliding blocks at both ends should be connected to both sides of the spring shaft and can drive the spring shaft to rotate in two directions.
[0011] Preferably, a synchronizer is fixedly provided on one side of the test meter. A display meter is fixedly provided on the other side of the telescopic rod. The synchronizer should be electrically connected to the test meter. The display meter is used to display the actual reading of the test meter.
[0012] Compared with the prior art, the beneficial effects of the present utility model are:
[0013] 1. A verticality detection device for engineering supervision. By attaching the roller side of the mounting frame to the object whose verticality needs to be tested, at this time, under the pressing force of the telescopic rod, the roller drives the sliding block to be extruded along the sliding groove because it fits the surface of the object, causing the two rollers of the mounting frame to tilt. During the process of the sliding block contracting inward, it drives the elastic cord to pull the spring shaft to rotate, driving the pointer of the test meter to tilt for indication.
[0014] 2. A verticality detection device for engineering supervision. By rotating the telescopic rod through the mounting buckle on one side of the mounting frame, at this time, because a number of auxiliary springs apply directional forces to the fixed buckle and the part of the telescopic rod passing through the rotating groove on the inner wall of the rotating groove, an effect of pressing on the overall mounting frame is formed, and it is convenient for the staff to test the verticality of objects at a certain height. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0016] Figure 2 is a schematic diagram of the side sectional structure of the present invention;
[0017] Figure 3 is the present invention Figure 2 is an enlarged schematic diagram of part A in the present invention;
[0018] Figure 4 is a schematic diagram of the rotating shaft and roller of the present invention.
[0019] In the figure: 100, mounting frame; 101, sliding groove; 102, fixed buckle; 200, mounting buckle; 201, rotating groove; 202, telescopic rod; 203, auxiliary spring; 301, return spring; 302, sliding block; 303, rotating shaft; 304, roller; 305, mounting shaft; 306, test meter; 307, elastic cord; 308, synchronizer; 309, spring shaft; 310, display meter. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0021] Please refer to Figures 1-4 As shown, a technical solution provided by the present invention:
[0022] A verticality detection device for engineering supervision, including a handheld mechanism, a mounting mechanism, and a detection mechanism. The handheld mechanism is movably arranged on one side of the mounting mechanism, and the detection mechanism is fixedly arranged on the inner wall of the mounting mechanism. The mounting mechanism includes a mounting frame 100, a sliding groove 101, and a fixing buckle 102. The mounting frame 100 is a rectangular shell with a hollow inner wall. Sliding grooves 101 are opened at both ends of both sides of the inner wall of the mounting frame 100. A fixing buckle 102 with a semi-circular side that contracts the inner wall of the mounting frame 100 is opened at the center of the other surface of the mounting frame 100.
[0023] In this embodiment, preferably, the handheld mechanism includes a mounting buckle 200, a rotating groove 201, a telescopic rod 202, and an auxiliary spring 203. The mounting buckle 200 is a conical shell with a hollow inner wall. Circular rotating grooves 201 are opened on both sides of the inner wall of the mounting buckle 200. The rotating groove 201 sleeved on the fixing buckle 102 can rotate along the fixing buckle 102. A telescopic rod 202 is fixedly arranged on the other side of the mounting buckle 200. One side of the telescopic rod 202 penetrates through the mounting buckle 200 and is snap-connected to the rotating groove 201. A number of auxiliary springs 203 are movably arranged on the inner wall of the rotating groove 201. The adjacent telescopic rod 202 of the auxiliary spring 203 penetrates through the mounting buckle 200 and both sides of the snap-connection with the rotating groove 201. The other side of the auxiliary spring 203 fits against both ends of the semi-circular fixing buckle 102 to form a support for the side where the telescopic rod 202 penetrates through the mounting buckle 200 and is snap-connected to the rotating groove 201.
[0024] In this embodiment, preferably, the detection mechanism includes a return spring 301, a sliding block 302, a rotating shaft 303, a roller 304, a mounting shaft 305, a test meter 306, an elastic cord 307, a synchronizer 308, a spring shaft 309, and a display meter 310. A return spring 301 is movably arranged on one side of the inner wall of the sliding groove 101. A sliding block 302 is movably arranged on the other side of the inner wall of the sliding groove 101. A rotating shaft 303 is fixedly arranged between the sliding grooves 101 on the inner wall of the sliding groove 101. A roller 304 is sleeved on the surface of the rotating shaft 303. The other side of the sliding block 302 fits against the return spring 301. The other side of the roller 304 penetrates through the mounting frame 100. The sliding block 302 can slide along the sliding groove 101. The return spring 301 can push the sliding groove 101 to reset to the other side of the sliding groove 101.
[0025] In this embodiment, preferably, a mounting shaft 305 is fixedly arranged on one side of the inner wall of the mounting frame 100. A spring shaft 309 is sleeved on the surface of the mounting shaft 305. A test meter 306 is fixedly arranged on the other side of the mounting. The spring shaft 309 should penetrate through the inner wall of the test meter 306 and be connected to the pointer of the test meter 306. The rotation of the spring shaft 309 should drive the pointer of the test meter 306 to rotate.
[0026] In this embodiment, preferably, an elastic cord 307 is fixedly arranged on the other side of the sliding groove 101. The elastic cord 307 passes through the sliding groove 101 and is connected to one side of the spring shaft 309. The sliding blocks 302 in the sliding groove 101 opened at both ends of both sides of the inner wall of the mounting frame 100 should be parallel and perpendicular to each other. The elastic cords 307 connected to the sliding blocks 302 at both ends should be connected to both sides of the spring shaft 309 and can drive the spring shaft 309 to rotate in two directions.
[0027] In this embodiment, preferably, a synchronizer 308 is fixedly arranged on one side of the test meter 306, and a display meter 310 is fixedly arranged on the other side of the telescopic rod 202. The synchronizer 308 should be electrically connected to the test meter 306, and the display meter 310 should have the function of displaying the actual reading of the test meter 306.
[0028] When the verticality detection device for project supervision in this embodiment is in use, by attaching the side of the mounting frame 100 with the rollers 304 to the item whose verticality needs to be tested. At this time, under the pressing force of the telescopic rod 202, the rollers 304 drive the sliding blocks 302 to be extruded along the sliding groove 101 because they are attached to the surface of the item, causing the two rollers 304 of the mounting frame 100 to tilt. During the process of the sliding blocks 302 contracting inward, they drive the elastic cord 307 to pull the spring shaft 309 to rotate, driving the pointer of the test meter 306 to tilt for indexing. By rotating the telescopic rod 202 through the mounting buckle 200 on one side of the mounting frame 100, at this time, because a number of auxiliary springs 203 apply a directional force to the fixed buckle 102 and the part of the telescopic rod 202 passing through the rotation groove 201 along the inner wall of the rotation groove 201, an effect of pressing on the overall mounting frame 100 is formed, and it is convenient for the staff to test the verticality of items at a certain height.
[0029] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A verticality detection device for engineering supervision, comprising a handheld mechanism, a mounting mechanism, and a detection mechanism, characterized in that: A hand-held mechanism is movably arranged on one side of the mounting mechanism, a detection mechanism is fixedly arranged on the inner wall of the mounting mechanism, the mounting mechanism comprises a mounting frame (100), a sliding groove (101), and a fixing buckle (102), the mounting frame (100) is a rectangular shell with a hollow inner wall, sliding grooves (101) are provided at both ends of the inner wall of the mounting frame (100), and a fixing buckle (102) with a semicircular side surface that contracts with the inner wall of the mounting frame (100) is provided at the center of the other surface of the mounting frame (100).
2. The verticality detection device according to claim 1, characterized in that: The hand-held mechanism comprises a mounting buckle (200), a rotation groove (201), a telescopic rod (202), and an auxiliary spring (203); the mounting buckle (200) is a shell with a hollow conical inner wall; circular rotation grooves (201) are provided on both sides of the inner wall of the mounting buckle (200); the rotation groove (201) is sleeved with a fixed buckle (102) and can rotate along the fixed buckle (102); the other side of the mounting buckle (200) is fixedly provided with a telescopic rod (202); the telescopic rod (202) is ) one side passes through the mounting buckle (200) and is engaged with the rotating groove (201); a plurality of auxiliary springs (203) are movably arranged on the inner wall of the rotating groove (201); the auxiliary springs (203) are adjacent to the telescopic rod (202) and pass through the mounting buckle (200) and the engaging side of the rotating groove (201); the other side of the auxiliary spring (203) is in contact with the two ends of the semicircular fixing buckle (102) to form support for the telescopic rod (202) passing through the mounting buckle (200) and the engaging side of the rotating groove (201).
3. The verticality detection device according to claim 2, characterized in that: The detection mechanism comprises a reset spring (301), a sliding block (302), a rotating shaft (303), a roller (304), a mounting shaft (305), a test meter (306), an elastic rope (307), a synchronizer (308), a spring shaft (309), and a display meter (310). The reset spring (301) is movably arranged on one side of the inner wall of the sliding groove (101), and the sliding block (302) is movably arranged on the other side of the inner wall of the sliding groove (101). ) is fixedly provided between the sliding groove (101) on the inner wall thereof, a rotating shaft (303) is sleeved with a roller (304) on the surface of the rotating shaft (303), the other side of the sliding block (302) is in contact with a reset spring (301), the other side of the roller (304) passes through the mounting frame (100), the sliding block (302) can slide along the sliding groove (101), and the reset spring (301) can push the sliding groove (101) to reset to the other side of the sliding groove (101).
4. The verticality detection device according to claim 3, characterized in that: A synchronizer (308) is fixedly arranged on one side of the test meter (306), and the synchronizer (308) should be electrically connected to the test meter (306).
5. The verticality detection device according to claim 3, characterized in that: A display meter (310) is fixedly arranged on the other side of the telescopic rod (202), and the display meter (310) is used to display the actual reading of the test meter (306).
6. The verticality detection device according to claim 1, characterized in that: A mounting shaft (305) is fixedly arranged on one side of the inner wall of the mounting frame (100), a spring shaft (309) is sleeved on the surface of the mounting shaft (305), and a test gauge (306) is fixedly arranged on the other side of the mounting frame, the spring shaft (309) should penetrate the inner wall of the test gauge (306) and be connected to the pointer of the test gauge (306), and the rotation of the spring shaft (309) should drive the pointer of the test gauge (306) to rotate.
7. The verticality detection device according to claim 1, characterized in that: An elastic rope (307) is fixedly arranged on the other side of the sliding groove (101), and the elastic rope (307) passes through the sliding groove (101) and is connected to one side of the spring shaft (309). The sliding blocks (302) in the sliding groove (101) are provided at both ends of the inner wall of the mounting frame (100) and should be parallel and perpendicular to each other. The elastic ropes (307) connected to the sliding blocks (302) at both ends should be connected to both sides of the spring shaft (309) and can drive the spring shaft (309) to rotate in two directions.
Citation Information
Patent Citations
Perpendicularity detection equipment
CN218156095U