Automatic concrete strength detector
By setting up a transmission structure in the concrete strength detector, automatic detection of multiple concrete samples is achieved, and the problems of long detection time and low testing rate in the prior art are solved, which significantly improves the detection efficiency.
Patent Information
- Application Number
- CN202421317323.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-11
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-06-11
AI Technical Summary
The existing concrete strength detector can only detect a single concrete sample, which results in the need to reload multiple times when testing multiple samples to be tested, wasting measurement time and affecting the test rate.
By providing a transmission structure on the main body of the detection device, including an electric guide rail, a moving block and an electric telescopic rod, multiple concrete samples can be placed at the same time, and the main body of the detector is driven to move to each sample through the transmission structure, and the detection is automatically carried out.
The simultaneous inspection of multiple concrete samples is realized, saving detection time and improving the test rate.
Smart Images

Figure CN222850409U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to an automatic concrete strength tester, in particular to an automatic concrete strength tester, and belongs to the technical field of concrete strength testing. Background Art
[0002] The strength of concrete is closely related to its density. If the density of concrete does not meet the corresponding requirements, the compressive strength will be greatly reduced, which will seriously affect the quality and safety of the project. Therefore, it is necessary to use detection equipment to detect it.
[0003] Existing concrete strength testers can only test a single concrete sample, which means that when testing the compressive strength of multiple concrete samples to be tested, it is often necessary to repeatedly load different concrete samples, thereby wasting a lot of measurement time and seriously affecting the test rate.
[0004] Therefore, there is an urgent need to improve an automated concrete strength tester to solve the above-mentioned problems. Utility Model Content
[0005] The utility model aims to provide an automated concrete strength tester. Through the setting of a transmission structure, multiple concrete samples can be placed at the same time when testing multiple types of concrete. After different concrete samples are placed on a placement table, an electric guide rail is started to drive a main body of the tester to move to the top of the sample through a moving block, and a first electric telescopic rod is started to drive the main body of the tester to descend to start testing the concrete sample. After the test is completed, the main body of the tester is driven by the moving block to the next concrete sample for testing, thereby saving testing time and improving the test rate.
[0006] In order to achieve the above-mentioned purpose, the main technical solutions adopted by the utility model include:
[0007] An automated concrete strength tester comprises a test device body and a test device body, wherein the test device body is provided with a transmission structure, wherein the transmission structure comprises an electric guide rail installed on the inner wall of the test device body, wherein two moving blocks are installed on the electric guide rail, wherein a first electric telescopic rod connected to the test device body is fixedly installed at the bottom of the moving block, and a plurality of placement tables are fixedly installed inside the test device body.
[0008] Preferably, a plurality of fixing blocks are fixedly mounted on the placement table, a second electric telescopic rod is fixedly mounted on one side of the fixing block, and a clamping plate is fixedly mounted on the output end of the second electric telescopic rod.
[0009] Preferably, the splint is provided with anti-slip grooves.
[0010] Preferably, a dust box is fixedly installed on the back of the detection device body, a fan is fixedly installed on the back of the dust box, a filter is arranged between the dust box and the fan, a plurality of hoses extending to the interior of the detection device body are arranged on the dust box, and a dust inlet connected to the hoses is fixedly installed on the placement table.
[0011] Preferably, a dust collecting box is arranged inside the dust collecting box, a plurality of slide grooves are provided on the dust collecting box, a plurality of sliding blocks are fixedly mounted on the bottom of the dust collecting box, and the slide grooves are slidably connected to the sliding blocks.
[0012] Preferably, a safety door is installed on the front of the detection device body, and an observation window is provided on the safety door.
[0013] Preferably, a connecting block is fixedly installed on one side of the safety door, a supporting block is fixedly installed on the main body of the detection device, a cross opening is opened on the connecting block, an insertion rod is movably installed on the connecting block and the supporting block, a buckle is movably installed on one end of the insertion rod, and a spring connected to the support block is wound on the insertion rod.
[0014] The utility model has at least the following beneficial effects:
[0015] Through the setting of the transmission structure, when testing multiple types of concrete, multiple concrete samples can be placed at the same time. After the different concrete samples are placed on the placement table, the electric guide rail is started to drive the detector body to move to the top of the sample through the moving block, and the first electric telescopic rod is started to drive the detector body to descend to start testing the concrete sample. After the test is completed, the moving block moves the detector body to the next concrete sample for testing, which saves testing time and improves the test rate. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The drawings described herein are used to provide a further understanding of the present application and constitute a part of the present application. The illustrative embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation on the present application. In the drawings:
[0017] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0018] Figure 2 This is a schematic diagram of the main body of the detector of the utility model;
[0019] Figure 3 This is a schematic diagram of the internal structure of the detection device of the utility model;
[0020] Figure 4 This is a schematic diagram of a dust collection box of the present utility model;
[0021] Figure 5It is a schematic diagram of the dust collection box of the utility model;
[0022] Figure 6 It is a schematic diagram of a spring of the present utility model.
[0023] In the figure, 1. detection device body; 2. detection instrument body; 3. transmission structure; 4. electric guide rail; 5. moving block; 6. first electric telescopic rod; 7. placing table; 8. fixed block; 9. second electric telescopic rod; 10. clamping plate; 11. dust suction box; 12. hose; 13. dust inlet; 14. dust collecting box; 15. slide groove; 16. slider; 17. safety door; 18. observation window; 19. connecting block; 20. supporting block; 21. cross mouth; 22. plug rod; 23. buckle; 24. spring; 25. fan. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the utility model will be clearly and completely described below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the utility model.
[0025] like Figure 1-Figure 6 As shown, an embodiment of an automated concrete strength tester is provided in this embodiment. An automated concrete strength tester comprises a tester body 1 and a tester body 2. The tester body 1 is provided with a transmission structure 3. The transmission structure 3 comprises an electric guide rail 4 installed on the inner wall of the tester body 1. Two moving blocks 5 are installed on the electric guide rail 4. The bottom of the moving block 5 is fixedly provided with a first electric telescopic rod 6 connected to the tester body 2. A plurality of placement tables 7 are fixedly provided inside the tester body 1. Through the setting of the transmission structure 3, when testing a variety of concretes, a plurality of concrete samples can be placed at the same time. After different concrete samples are placed on the placement table 7, the electric guide rail 4 is started to drive the tester body 2 to move to the top of the sample through the moving block 5. The first electric telescopic rod 6 is started to drive the tester body 2 to descend and start testing the concrete sample. After the test is completed, the moving block 5 is used to move the tester body 2 to the next concrete sample for testing, thereby saving the testing time and improving the testing rate.
[0026] A plurality of fixed blocks 8 are fixedly installed on the placement table 7, a second electric telescopic rod 9 is fixedly installed on one side of the fixed block 8, and a clamping plate 10 is fixedly installed on the output end of the second electric telescopic rod 9. Through the arrangement of the fixed block 8, the second electric telescopic rod 9 and the clamping plate 10, starting the plurality of second electric telescopic rods 9 can drive the clamping plate 10 to move, and can clamp concrete of different sizes, so that the concrete is fixed on the placement table 7 to prevent sliding during detection and affecting the detection result.
[0027] The clamping plate 10 is provided with anti-skid patterns. The anti-skid patterns on the clamping plate 10 can increase the friction force on the surface of the clamping plate 10, so that the clamping plate 10 can clamp the concrete more firmly.
[0028] A dust box 11 is fixedly installed on the back of the detection device body 1, and a fan 25 is fixedly installed on the back of the dust box 11. A filter is arranged between the dust box 11 and the fan 25. A plurality of hoses 12 extending to the inside of the detection device body 1 are arranged on the dust box 11. A dust inlet 13 connected with the hose 12 is fixedly installed on the placement table 7. Through the arrangement of the dust box 11, the hose 12, the dust inlet 13 and the fan 25, the dust and cement residue remaining after the detection is completed can be absorbed and processed. After the large blocks of concrete to be detected are taken out, the fan 25 is started to absorb the dust residue remaining on the placement table 7 through the hose 12 and the dust inlet 13, and the cleaning is relatively simple and quick.
[0029] A dust box 14 is provided inside the dust box 11. A plurality of slide grooves 15 are provided on the dust box 11. A plurality of sliders 16 are fixedly installed at the bottom of the dust box 14. The slide grooves 15 and the sliders 16 are slidably connected. Through the arrangement of the dust box 14, the slide grooves 15 and the sliders 16, the dust box 14 can collect the dust and cement residue intercepted by the filter. The collected dust and cement residue can be cleaned by pulling out the dust box 14. The arrangement of the slide grooves 15 and the sliders 16 can reduce the friction between the dust box 14 and the dust box 11, making it easier to pull out the dust box 14.
[0030] A safety door 17 is installed on the front of the detection device body 1, and an observation window 18 is arranged on the safety door 17. Through the arrangement of the safety door 17 and the observation window 18, a closed environment can be provided for concrete detection, thereby preventing small concrete blocks from splashing and injuring people during concrete detection.
[0031] A connecting block 19 is fixedly installed on one side of the safety door 17, and a supporting block 20 is fixedly installed on the detection device body 1. A cross opening 21 is opened on the connecting block 19, and an insert rod 22 is movably installed on the connecting block 19 and the supporting block 20. A buckle 23 is movably installed on one end of the insert rod 22, and a spring 24 connected to the support block 20 is wound around the insert rod 22. Through the arrangement of the connecting block 19, the support block 20, the cross opening 21, the insert rod 22, the buckle 23 and the spring 24, the buckle 23 is rotated to be perpendicular to the cross opening 21. Under the elastic action of the spring 24, the buckle 23 has a certain pulling force on the connecting block 19, thereby limiting the safety door 17 to prevent the safety door 17 from loosening and opening. The buckle 23 is rotated to be horizontal with the cross opening 21, and the spring 24 is pulled to disengage it from the connecting block 19, so that the safety door 17 can be opened.
[0032] In this embodiment, if Figure 1-Figure 6 As shown, the working process of an automated concrete strength tester provided in this embodiment is as follows:
[0033] After different concrete samples are placed on the placement table 7, the electric guide rail 4 is started to drive the detector body 2 to move to the top of the sample through the moving block 5, and the first electric telescopic rod 6 is started to drive the detector body 2 to descend and start to detect the concrete sample. After the detection is completed, the moving block 5 is used to move the detector body 2 to the next concrete sample for detection, which saves detection time and improves the test rate. Starting multiple second electric telescopic rods 9 can drive the clamping plate 10 to move, so that concrete of different sizes can be clamped, so that the concrete is fixed on the placement table 7 to prevent sliding during detection and affecting the detection result. The anti-slip grooves on the clamping plate 10 can increase the friction force on the surface of the clamping plate 10, so that the clamping force of the clamping plate 10 on the concrete is more firm, and the dust and cement slag remaining after the detection can be absorbed and processed. After the large block of concrete to be detected is taken out, the fan 25 is started and the dust is discharged through the hose 12 and the dust inlet 13. The dust and slag remaining on the placement table 7 can be sucked up, and the cleaning is relatively simple and quick. The dust collecting box 14 can collect the dust and cement slag intercepted by the filter screen. Pulling out the dust collecting box 14 can clean the collected dust and cement slag. The arrangement of the slide groove 15 and the slider 16 can reduce the friction between the dust collecting box 14 and the dust suction box 11, making it easier to pull out the dust collecting box 14, and can provide a closed environment for concrete testing, thereby preventing small concrete blocks from splashing and injuring people during concrete testing. The buckle 23 is rotated to make it perpendicular to the cross-opening 21. Under the elastic action of the spring 24, the buckle 23 has a certain pulling force on the connecting block 19, thereby limiting the safety door 17 to prevent the safety door 17 from loosening and opening. The buckle 23 is rotated to be horizontal with the cross-opening 21, and the spring 24 is pulled to make it detached from the connecting block 19, so that the safety door 17 can be opened.
[0034] In summary, in the present embodiment, according to an automated concrete strength tester of the present embodiment, by setting the fixed block 8, the second electric telescopic rod 9 and the clamping plate 10, starting the plurality of second electric telescopic rods 9 can drive the clamping plate 10 to move, and can clamp concrete of different sizes, so that the concrete is fixed on the placement table 7 to prevent sliding during detection and affecting the detection result. By setting the anti-slip grooves on the clamping plate 10, the friction force on the surface of the clamping plate 10 can be increased, so that the clamping of the clamping plate 10 on the concrete is more firmly. By setting the dust collection box 11, the hose 12, the dust inlet 13 and the fan 25, the dust and cement slag remaining after the detection is completed can be absorbed and processed. After the large block of concrete to be tested is taken out, the fan 25 is started to absorb the dust and slag remaining on the placement table 7 through the hose 12 and the dust inlet 13. The cleaning is relatively simple and quick. By setting the dust collection box 14, the chute 15 and the slider 16, the dust collection box 14 can intercept the filter screen. The dust and cement slag can be collected, and the dust box 14 can be pulled out to clean the collected dust and cement slag. The arrangement of the chute 15 and the slider 16 can reduce the friction between the dust box 14 and the dust suction box 11, making it easier to pull out the dust box 14. The arrangement of the safety door 17 and the observation window 18 can provide a closed environment for concrete detection, thereby preventing small concrete blocks from splashing and injuring people during concrete detection. The arrangement of the connecting block 19, the supporting block 20, the cross 21, the insert rod 22, the buckle 23 and the spring 24 can rotate the buckle 23 to make it perpendicular to the cross 21. Under the elastic action of the spring 24, the buckle 23 has a certain pulling force on the connecting block 19, thereby limiting the safety door 17 and preventing the safety door 17 from loosening and opening. The buckle 23 is rotated to be horizontal with the cross 21, and the spring 24 is pulled to make it detached from the connecting block 19, so that the safety door 17 can be opened.
[0035] For example, certain words are used in the specification and claims to refer to specific components. Those skilled in the art should understand that hardware manufacturers may use different terms to refer to the same component. This specification and claims do not use differences in names as a way to distinguish components, but use differences in the functions of components as the criteria for distinction. For example, "including" mentioned throughout the specification and claims is an open term, so it should be interpreted as "including but not limited to". "Approximately" means that within an acceptable error range, those skilled in the art can solve technical problems within a certain error range and basically achieve technical effects.
[0036] It should be noted that the terms "include", "comprises" or any other variations thereof are intended to cover non-exclusive inclusion, so that a product or system including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such product or system. In the absence of more restrictions, the elements defined by the sentence "comprises a ..." do not exclude the existence of other identical elements in the product or system including the elements.
[0037] The above description shows and describes several preferred embodiments of the utility model, but as mentioned above, it should be understood that the utility model is not limited to the form disclosed herein, and should not be regarded as excluding other embodiments, but can be used in various other combinations, modifications and environments, and can be modified within the scope of the utility model concept described herein through the above teachings or the technology or knowledge of the relevant field. The changes and modifications made by those skilled in the art do not deviate from the spirit and scope of the utility model, and should be within the scope of protection of the claims attached to the utility model.
Claims
1. An automated concrete strength tester, comprising a test device body (1) and a tester body (2), characterized in that: The detection device body (1) is provided with a transmission structure (3), the transmission structure (3) comprising an electric guide rail (4) mounted on the inner wall of the detection device body (1), two moving blocks (5) being mounted on the electric guide rail (4), a first electric telescopic rod (6) connected to the detection device body (2) being fixedly mounted at the bottom of the moving block (5), and a plurality of placement tables (7) being fixedly mounted inside the detection device body (1).
2. An automated concrete strength tester according to claim 1, characterized in that: A plurality of fixing blocks (8) are fixedly mounted on the placement table (7), a second electric telescopic rod (9) is fixedly mounted on one side of the fixing block (8), and a clamping plate (10) is fixedly mounted on the output end of the second electric telescopic rod (9).
3. An automated concrete strength tester according to claim 2, characterized in that: The clamping plate (10) is provided with anti-slip grooves.
4. The automated concrete strength tester according to claim 1, characterized in that: A dust collection box (11) is fixedly mounted on the back of the detection device body (1), a fan (25) is fixedly mounted on the back of the dust collection box (11), a filter is arranged between the dust collection box (11) and the fan (25), a plurality of hoses (12) extending into the interior of the detection device body (1) are arranged on the dust collection box (11), and a dust inlet (13) connected to the hose (12) is fixedly mounted on the placement table (7).
5. An automated concrete strength tester according to claim 4, characterized in that: A dust collecting box (14) is arranged inside the dust collecting box (11), a plurality of slide grooves (15) are provided on the dust collecting box (11), a plurality of sliding blocks (16) are fixedly mounted on the bottom of the dust collecting box (14), and the slide grooves (15) and the sliding blocks (16) are slidably connected.
6. The automated concrete strength tester according to claim 1, characterized in that: A safety door (17) is installed on the front of the detection device body (1), and an observation window (18) is provided on the safety door (17).
7. An automated concrete strength tester according to claim 6, characterized in that: A connecting block (19) is fixedly mounted on one side of the safety door (17); a supporting block (20) is fixedly mounted on the detection device body (1); a cross opening (21) is provided on the connecting block (19); an insert rod (22) is movably mounted on the connecting block (19) and the supporting block (20); a buckle (23) is movably mounted on one end of the insert rod (22); and a spring (24) connected to the supporting block (20) is wound around the insert rod (22).