Mortar strength detection device for hydraulic engineering
By designing a mobile mortar strength testing device for water conservancy projects, and utilizing a combination of a mobile base, lifting platform, and rotating platform, the device achieves efficient testing of mortar strength at multiple locations. This solves the problems of high labor intensity and low efficiency in moving testing instruments and also has the function of displaying test results.
Patent Information
- Application Number
- CN202423229924.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-12-26
AI Technical Summary
In existing technologies, when testing the strength of mortar in water conservancy projects, the labor intensity of moving the testing instrument is high, the testing efficiency is low, and it is difficult to efficiently test the strength of mortar at multiple locations.
A detection device comprising a movable base, a control console, a lifting platform, and a detection instrument body is designed. The three-dimensional position adjustment of the detection instrument is achieved by adjusting the degrees of freedom of the movable base, the vertical movement of the lifting platform, and the circumferential adjustment of the rotating platform. Combined with photovoltaic power supply components, manual operation is reduced.
It enables efficient testing of mortar strength at multiple locations, reduces manual labor intensity, improves testing efficiency, and displays the test results on a monitor.
Smart Images

Figure CN223692157U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of mortar strength testing technology, and more specifically, it relates to a mortar strength testing device for water conservancy projects. Background Technology
[0002] Mortar used in water conservancy projects is made by mixing sand and binding materials (cement, lime paste, and clay, etc.) with water in a certain proportion. It is also called mortar or cement paste. Common types of mortar include cement mortar, mixed mortar, lime mortar, and clay mortar. Mortar is indispensable in water conservancy projects. To ensure the strength and connection of water conservancy structures, the strength of the mortar needs to be tested using a testing instrument. Mortar strength testing is used to test and evaluate the compressive strength of mortar. By applying pressure to the mortar and measuring the degree of deformation under stress, the strength index of the mortar can be calculated for subsequent evaluation of its strength.
[0003] However, existing testing instruments employ two methods: one is to collect mortar samples from the water conservancy project and transfer them to a laboratory for testing; the other is to transport the testing instrument to the construction site for direct testing of the mortar. However, when testing mortar at multiple locations, the instrument still needs to be manually moved. Both methods require specialized personnel, leading to low testing efficiency and high labor intensity when testing mortar strength at multiple locations on a water conservancy construction site. Summary of the Invention
[0004] The purpose of this utility model is to provide a mortar strength testing device for water conservancy projects, which aims to solve the technical problem of high labor intensity and low testing efficiency when moving the testing instrument to test the mortar strength at multiple different locations.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is: to provide a mortar strength testing device for water conservancy projects, comprising:
[0006] The mobile base has the freedom to move in any direction.
[0007] A console is connected to the upper end of the movable base, which is adapted to support the movement of the console;
[0008] A lifting platform is connected to the upper end of the control console. The lifting platform has a slider with a vertical degree of freedom of movement, and the position of the slider after sliding can be defined.
[0009] The detector body is located at the side of the lifting platform, and one end is connected to the sliding block. The detector body can move vertically along with the sliding block to adjust the detection height. The moving base can adjust the detection position of the detector body. The detector body is used for strength detection towards the mortar.
[0010] The control console is electrically connected to the moving base, the lifting platform and the detector body, respectively. The control console has a control module suitable for controlling the operation of the moving base, the lifting platform and the detector body, respectively.
[0011] As another embodiment of the present application, the mortar strength detection device for water conservancy projects further comprises a display detachably connected to the side of the lifting platform. The display is electrically connected to the detector body and is suitable for displaying the strength information detected by the detector body.
[0012] As another embodiment of the present application, the moving base comprises a plurality of moving legs. The moving legs are provided with rollers at the bottom. The rollers can roll in any direction to adjust the position of the moving base. The moving legs have vertical telescopic freedom. The height of the moving legs is adjusted to adjust the height of the detector body. The moving legs are electrically connected to the control console and the telescopic operation is controlled by the control console.
[0013] As another embodiment of the present application, the lifting platform comprises:
[0014] The slide rail is vertically arranged, and the lower end is connected to the upper end of the control console. The sliding block is slidingly connected to the slide rail.
[0015] The pusher is connected to the top of the slide rail and has a push end with vertical telescopic movement freedom. The push end is connected to the sliding block. The pusher is used to push the sliding block to slide. The pusher is electrically connected to the control console and the operation is controlled by the control console.
[0016] As another embodiment of the present application, the sliding block is connected with a sliding rod away from one side of the slide rail. The sliding rod is arranged in the horizontal direction. The sliding rod is sleeved with a sleeve ring. The sleeve ring has axial sliding freedom along the sliding rod and the position after sliding can be limited. The sleeve ring is connected with an arc plate. The convex direction of the arc plate is away from the side of the lifting platform. One end of the detector body is slidingly connected to the arc plate and can be limited on the arc plate.
[0017] As another embodiment of the present application, the sleeve ring is provided with a jack screw. The inner end of the jack screw can abut against the sliding rod, so that the sleeve ring is limited on the sliding rod.
[0018] As another embodiment of the present application, the collar is fixedly connected to one end of a tripod, one side of the tripod is connected to two ends of the arc-shaped plate, and the tripod is used for supporting the arc-shaped plate.
[0019] As another embodiment of the present application, a rotating table is connected to the upper end of the console, the upper end of the rotating table has a circumferential rotation degree of freedom and is connected to the bottom end of the lifting table, the lower end of the rotating table is connected to the upper end of the console, and the rotating table is suitable for driving the lifting table to rotate circumferentially to adjust the detection direction of the detector body.
[0020] As another embodiment of the present application, the rotating table is an electric rotating table and is electrically connected to the console, and the operation of the rotating table is controlled by the console.
[0021] As another embodiment of the present application, a photovoltaic power supply assembly is connected to the side of the lifting table, and the power output ends of the photovoltaic power supply assembly are electrically connected to the mobile base, the console, the lifting table and the detector body respectively and are used for supplying power respectively.
[0022] The mortar strength detection device for water conservancy projects has the advantages that compared with the prior art, the mortar strength detection device for water conservancy projects comprises a mobile base, a console, a lifting table and a detector body, the mobile base has a moving degree of freedom in any direction; the console is connected to the upper end of the mobile base, and the mobile base is suitable for supporting the console to move; the lifting table is connected to the upper end of the console, the lifting table has a slider with a moving degree of freedom in the vertical direction, and the position of the slider after sliding can be limited; the detector body is located at the side of the lifting table, one end of the detector body is connected to the slider, the detector body can move vertically by means of the slider to adjust the detection height, the mobile base can adjust the detection position of the detector body, and the detector body is used for detecting the strength of the mortar; the console is electrically connected to the mobile base, the lifting table and the detector body respectively, the console has a control module suitable for controlling the operation of the mobile base, the lifting table and the detector body respectively, the technical problem of high labor intensity and low detection efficiency when detecting the strength of the mortar at multiple different positions is solved, the strength of the mortar at multiple positions can be detected, the labor intensity is reduced, and the detection efficiency is improved. BRIEF DESCRIPTION OF DRAWINGS
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creating labor under the premise of the drawings.
[0024] Figure 1 A structural schematic view of a mortar strength detection device for water conservancy projects is provided for the embodiments of the utility model;
[0025] Figure 2 A mobile base, a control console, a lifting platform and a display structure schematic view of a mortar strength detection device for water conservancy projects are provided for the embodiments of the utility model;
[0026] Figure 3 A detection instrument body of a mortar strength detection device for water conservancy projects and a structure schematic view connected therewith are provided for the embodiments of the utility model;
[0027] Figure 4 A detection instrument body structure schematic view of a mortar strength detection device for water conservancy projects is provided for the embodiments of the utility model.
[0028] In the drawing: 1, mobile base; 11, mobile leg; 12, roller; 2, control console; 3, lifting platform; 31, sliding block; 32, sliding rail; 33, push top; 4, detection instrument body; 41, arc-shaped slide plate; 5, display; 6, limiting piece; 7, sliding rod; 8, collar; 81, jackscrew; 9, arc-shaped plate; 10, tripod; 110, rotating table; 120, photovoltaic power supply assembly. DETAILED DESCRIPTION
[0029] In order to make the technical problems, technical solutions and beneficial effects to be solved by the utility model more clearly understood, the utility model will be further described in detail below in combination with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the utility model and not to limit the utility model.
[0030] Please refer to Figures 1 to 4 , now a mortar strength detection device for water conservancy projects provided by the utility model will be described. The mortar strength detection device for water conservancy projects comprises a mobile base 1, a control console 2, a lifting platform 3 and a detection instrument body 4, the mobile base 1 has a moving degree of freedom in any direction; the control console 2 is connected to the upper end of the mobile base 1, and the mobile base 1 is suitable for supporting the control console 2 to move; the lifting platform 3 is connected to the upper end of the control console 2, and the lifting platform 3 has a sliding block 31 with a moving degree of freedom in the vertical direction, and the position after the sliding block 31 slides can be limited; the detection instrument body 4 is located at the side of the lifting platform 3, one end is connected to the sliding block 31, and the detection instrument body 4 can move vertically by means of the sliding block 31 to adjust the detection height thereof; the mobile base 1 can move to adjust the detection position of the detection instrument body 4, and the detection instrument body 4 is used for strength detection towards the mortar; wherein the control console 2 is electrically connected to the mobile base 1, the lifting platform 3 and the detection instrument body 4 respectively, and the control console 2 has a control module suitable for controlling the operation of the mobile base 1, the lifting platform 3 and the detection instrument body 4 respectively.
[0031] The mortar strength detection device for water conservancy projects has the technical effects that the mortar at multiple positions can be detected, the labor intensity is reduced, and the detection efficiency is improved.
[0032] The detector body 4 in the embodiment is a product in the prior art, and can be a detector specially applied to detect the strength of mortar, such as a mortar strength detector. The detector body 4 detects the mortar on the water conservancy project. The detection principle can be referred to the prior art, and will not be described here. The mobile base 1 and the lifting platform 3 are used in cooperation with each other to adjust the detection position in three-dimensional directions, so that the mortar at different positions can be detected. In the specific operation process, the worker can only control the console 2, and the detection results of the mortar strength at different positions can be recorded and saved.
[0033] In order to display the results after detection, facilitate the staff to check and record, as a specific embodiment of the mortar strength detection device for water conservancy projects, please refer to Figures 1 to 4 The mortar strength detection device for water conservancy projects further comprises a display 5 detachably connected to the side of the lifting platform 3. The display 5 is electrically connected to the detector body 4 and is adapted to display the strength information detected by the detector body 4. When the detection of the detector body 4 is completed, the display 5 can display the detection results.
[0034] Specifically, a limiting piece 6 is connected to the side of the lifting platform 3, and the display 5 is clamped and limited on the limiting piece 6. At the same time, the display 5 can also be taken out from the limiting piece 6, so as to realize the detachable connection with the limiting piece 6.
[0035] In order to facilitate the movement of the mobile base 1 and the adjustment of the height of the mobile base 1 itself, as a specific embodiment of the mortar strength detection device for water conservancy projects, please refer to Figures 1 to 4The mobile base 1 comprises a plurality of mobile legs 11, the bottom of the mobile legs 11 is provided with a rolling wheel 12, the rolling wheel 12 can roll towards any direction to adjust the position of the mobile base 1, the mobile legs 11 have a vertical telescopic freedom degree, the height of the mobile legs 11 is adjusted to adjust the height of the detector body 4, the mobile legs 11 are electrically connected with the control console 2 and the telescopic operation is controlled by the control console 2. The mobile legs 11 are four, are evenly arranged at the bottom end of the control console 2, can be adjusted along the vertical telescopic direction, and can be limited in length after adjustment, the mobile legs 11 are a kind of electric telescopic column, the telescopic length can be controlled by the control console 2, and then the height of the detector body 4 can be adjusted. The rolling wheel 12 is arranged at the bottom end of the electric telescopic column, the rolling wheel 12 can roll on the ground, so that the movement of the mobile base 1 is realized, to adjust the detection position of the detector body 4.
[0036] As a kind of concrete implementation of the mortar strength detection device for water conservancy project provided by the utility model, please refer to Figures 1 to 4 The lifting platform 3 comprises a sliding rail 32 and a pusher 33, the sliding rail 32 is vertically arranged, the lower end is connected to the upper end of the control console 2, and the sliding block 31 is slidably connected to the sliding rail 32; the pusher 33 is connected to the top of the sliding rail 32 and has a push end with a vertical telescopic movement freedom degree, the push end is connected to the sliding block 31, and the pusher 33 is used to push the sliding block 31 to slide, the pusher 33 is electrically connected with the control console 2 and the operation is controlled by the control console 2. The sliding rail 32 is in U shape in plan view, the lower end is connected to the upper end of the control console 2, and the display 5 is located at the side of the sliding rail 32, the sliding block 31 is slidably connected in the sliding rail 32, and the pusher 33 is an electric push rod, which can be controlled to operate on the control console 2, so as to adjust the position of the sliding block 31 and the detection height of the detector body 4. The side of the pusher 33 is fixedly connected with the top of the sliding rail 32 through a support, and the push end is a telescopic rod, one end of the telescopic rod away from the pusher 33 is used to connect the upper end of the sliding block 31, so as to push the sliding block 31 to slide.
[0037] In order to facilitate the installation of the detector body 4, as a kind of concrete implementation of the mortar strength detection device for water conservancy project provided by the utility model, please refer to Figures 1 to 4The sliding block 31 is connected with a sliding rod 7 on the side away from the slide rail 32, the sliding rod 7 is arranged in the horizontal direction, a sleeve ring 8 is sleeved on the sliding rod 7, the sleeve ring 8 has the axial sliding freedom along the sliding rod 7 and the position after sliding can be limited; the sleeve ring 8 is connected with an arc-shaped plate 9, the convex direction of the arc-shaped plate 9 is towards the side away from the lifting platform 3, one end of the detector body 4 is slidingly connected to the arc-shaped plate 9 and can be limited on the arc-shaped plate 9. One end of the sliding rod 7 is fixedly connected with the sliding block 31, and the other end is a free end, the sleeve ring 8 is slidingly sleeved on the sliding rod 7, so that the position of the detector body 4 can be adjusted. The arc-shaped plate 9 can provide the sliding of the detector body 4 in the arc-shaped direction, so that the strength of the mortar structure of the water conservancy project in the arc-shaped direction can be detected, when the mortar strength in the obliquely upward direction (such as 45° direction) needs to be detected, the detector body 4 can be used to slide on the arc-shaped plate 9, and the detection direction of the detector body 4 can be adjusted, so that the mortar strength in different positions and different directions can be detected.
[0038] One end of the detector body 4 is provided with an arc-shaped sliding plate 41, and the arc-shaped sliding plate 41 is slidingly connected to the arc-shaped plate 9 and can be limited on the arc-shaped plate 9.
[0039] In order to realize the sliding adjustment and limiting of the sleeve ring 8, as a specific embodiment of the mortar strength detection device for water conservancy projects provided by the utility model, please refer to Figures 1 to 4 A jackscrew 81 is arranged on the sleeve ring 8, and the inner end of the jackscrew 81 can abut against the sliding rod 7, so that the sleeve ring 8 is limited on the sliding rod 7. By rotating the jackscrew 81 clockwise, the inner end of the jackscrew 81 abuts against the sliding rod 7, so that the limiting can be realized, on the contrary, the jackscrew 81 is rotated reversely, so that the limiting can be released, that is, the sleeve ring 8 can slide again.
[0040] As a specific embodiment of the mortar strength detection device for water conservancy projects provided by the utility model, please refer to Figures 1 to 4 One end of the sleeve ring 8 is fixedly connected with a tripod 10, two ends of the arc-shaped plate 9 are connected with one side of the tripod 10, and the tripod 10 is used for supporting the arc-shaped plate 9. The tripod 10 is triangular, one end corner of the tripod 10 is connected with the sleeve ring 8, and the arc-shaped plate 9 is arranged on one side away from the slide rail 32, and the side is vertically arranged.
[0041] In order to realize the circumferential adjustment of the detection position of the detector body 4 or make the detector body 4 rotate, as a specific embodiment of the mortar strength detection device for water conservancy projects provided by the utility model, please refer to Figures 1 to 4The upper end of the console 2 is connected with a rotating table 110, the upper end of the rotating table 110 has a circumferential rotation degree of freedom and is connected with the bottom end of the lifting table 3, the lower end of the rotating table 110 is connected with the upper end of the console 2, and the rotating table 110 is suitable for driving the circumferential rotation of the lifting table 3 so as to adjust the detection direction of the detector body 4. The rotating table 110 can rotate circumferentially, and the slide rail 32 can be driven to rotate simultaneously through the rotation, so that the detection direction of the detector body 4 can be adjusted, and the strength of mortar at different positions and in different directions can be detected. When the position needs to be locked after rotation, the rotating table 110 can be locked.
[0042] As a specific embodiment of the mortar strength detection device for water conservancy projects provided by the utility model, please refer to Figures 1 to 4 The rotating table 110 is an electric rotating table and is electrically connected with the console 2, and the operation of the rotating table 110 is controlled by the console 2. The electric rotating table is a prior art product, the bottom end is located on the upper end of the console 2, and the detection direction or angle of the detector body 4 can be adjusted by controlling the console 2, so that the strength of mortar in different directions or at different positions can be detected.
[0043] As a specific embodiment of the mortar strength detection device for water conservancy projects provided by the utility model, please refer to Figures 1 to 4 The lifting table 3 is connected with a photovoltaic power supply assembly 120, and the power output ends of the photovoltaic power supply assembly 120 are electrically connected with the mobile base 1, the console 2, the lifting table 3 and the detector body 4 respectively and are used for power supply. The photovoltaic power supply assembly 120 is a prior art product, can collect solar energy and charge or supply power, so that the use of commercial power can be reduced, and the device is convenient to use in the field. The photovoltaic power supply assembly 120 is arranged on the side of the slide rail 32.
[0044] The above only describes preferred embodiments of the utility model, and is not used to limit the utility model, and any modification, equivalent replacement and improvement within the spirit and principle of the utility model should be included in the protection scope of the utility model.
Claims
1. A device for detecting the strength of hydraulic engineering mortar, characterized by, The application relates to a mortar strength detection device, which comprises the following parts: a mobile base with the freedom of moving in any direction; a control console connected to the upper end of the mobile base, which is suitable for supporting the movement of the control console; a lifting platform connected to the upper end of the control console, which has a slider with the freedom of moving in the vertical direction, and the position of the slider after sliding can be limited; a detector body located on the side of the lifting platform, one end of which is connected to the slider, the detector body can move in the vertical direction by means of the slider to adjust the detection height, and the mobile base can adjust the detection position of the detector body, the detector body is used for mortar strength detection; wherein the control console is electrically connected to the mobile base, the lifting platform and the detector body respectively, and the control console has a control module suitable for controlling the operation of the mobile base, the lifting platform and the detector body respectively.
2. The device for detecting the strength of mortar for hydraulic engineering according to claim 1, characterized in that, The device further comprises a display which is detachably connected to the side of the lifting platform, the display is electrically connected to the detector body and is suitable for displaying the strength information detected by the detector body.
3. The device for detecting the strength of mortar for hydraulic engineering according to claim 1, characterized in that, The mobile base comprises a plurality of mobile legs, the bottom of the mobile leg is provided with a roller which can roll in any direction to adjust the position of the mobile base, the mobile leg has the freedom of extending and retracting in the vertical direction, the height of the mobile leg is adjusted to adjust the height of the detector body, and the mobile leg is electrically connected to the control console and the extension and retraction operation is controlled by the control console.
4. The device for detecting the strength of mortar for hydraulic engineering according to claim 1, characterized in that, The lifting platform comprises: a slide rail arranged in a vertical manner, the lower end of the slide rail is connected to the upper end of the control console, and the slider is slidably connected to the slide rail; a pusher connected to the top of the slide rail, the pusher has a push end with the freedom of extending and retracting in the vertical direction, the push end is connected to the slider, and the pusher is used for pushing the slider to slide, the pusher is electrically connected to the control console and the operation is controlled by the control console.
5. The device for detecting the strength of mortar for hydraulic engineering according to claim 4, characterized in that, The slider is connected with a sliding rod on the side away from the slide rail, the sliding rod is arranged in the horizontal direction, a sleeve ring is sleeved on the sliding rod, the sleeve ring has the freedom of sliding in the axial direction of the sliding rod and the position after sliding can be limited, the sleeve ring is connected with an arc-shaped plate, the convex direction of the arc-shaped plate is away from the lifting platform, one end of the detector body is slidably connected to the arc-shaped plate and can be limited on the arc-shaped plate.
6. The device for detecting the strength of mortar for hydraulic engineering according to claim 5, wherein A jack screw is arranged in the sleeve ring, the inner end of the jack screw can abut against the sliding rod to limit the sleeve ring on the sliding rod.
7. The device for detecting the strength of mortar for hydraulic engineering according to claim 5, characterized in that, One end of the sleeve ring is fixedly connected with a tripod, one side of the tripod is connected with two ends of the arc-shaped plate, and the tripod is used for supporting the arc-shaped plate.
8. The device for detecting the strength of mortar for hydraulic engineering according to claim 1, wherein A rotating table is connected to the upper end of the control console, the upper end of the rotating table has the freedom of rotating in the circumferential direction and is connected with the bottom end of the lifting platform, the lower end of the rotating table is connected to the upper end of the control console, and the rotating table is suitable for driving the lifting platform to rotate in the circumferential direction to adjust the detection direction of the detector body.
9. The device for detecting the strength of mortar for hydraulic engineering according to claim 8, wherein The rotating table is an electric rotating table and is electrically connected to the control console, and the operation of the rotating table is controlled by the control console.
10. The device for detecting the strength of mortar for hydraulic engineering according to claim 1, wherein The lifting platform side is connected with a photovoltaic power supply assembly, and the power output ends of the photovoltaic power supply assembly are electrically connected with the mobile base, the control console, the lifting platform and the detector body respectively and are used for power supply.