Polymer-doped anti-crack flexible base layer monitoring device
By designing a polymer-resistant flexible base layer monitoring device for detection components and rotating components, the problem of inconvenience of pouring out mortar inside the barrel is solved, the cleaning process is simplified, and the labor intensity of the inspectors is reduced.
Patent Information
- Application Number
- CN202422278679.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-09-19
AI Technical Summary
In the prior art, it is inconvenient to pour out the mortar inside the barrel after testing, resulting in a greater labor intensity for the inspector.
A crack-resistant flexible base monitoring device including a polymer doped with detection components and a rotating components is designed to drive the test barrel to flip through a adjusting member to simplify the mortar pouring process.
It reduces the labor intensity of the inspectors, improves the cleaning efficiency, and simplifies the barrel cleaning process.
Smart Images

Figure CN223284070U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of construction detection equipment, and in particular to a polymer-doped anti-cracking flexible base monitoring device. Background Art
[0002] The working performance of mortar depends on its rheological properties. Rheological properties refer to the properties of a substance flowing and deforming under the action of external forces. The quality of rheological properties directly affects the difficulty of mortar construction operation, construction quality, and the mechanical properties and durability of the mortar after hardening. Therefore, the fluidity of mortar is crucial. Therefore, polymers are added to the mortar to change the rheological properties. When testing its fluidity, a rheometer is usually used to measure the rheological properties of the mortar, which helps users to inspect raw materials and predict product performance. The use of a concrete rheometer can better determine workability, improve concrete quality and performance, and improve worker production efficiency.
[0003] For example, a polymer anti-cracking mortar monitoring device disclosed in China with publication number CN216350721U uses two arc-shaped clamping blocks to fix the barrel, and anti-slip strips are installed on the outside of the arc-shaped clamping blocks to clamp the barrel more firmly. However, after the inspection, the mortar inside the barrel needs to be moved and poured out, which is inconvenient and consumes a lot of labor for the inspectors. Utility Model Content
[0004] In order to make up for the above shortcomings, the present application provides a polymer-doped crack-resistant flexible base monitoring device, which aims to improve the problem that after the inspection, the mortar inside the barrel needs to be moved and poured out, which is inconvenient and consumes a lot of labor of the inspectors.
[0005] An embodiment of the present application provides a monitoring device for a polymer-doped crack-resistant flexible substrate, comprising a detection component and a rotation component.
[0006] The detection assembly includes a mounting frame and a test barrel, wherein the test barrel is arranged on the mounting frame, a lifting member is installed on the top of the mounting frame, a detection member is installed on the lifting end of the lifting member, and the stirring end of the detection member is located inside the test barrel;
[0007] The rotating assembly includes a fixed plate, which is installed at the bottom of the mounting frame. The test barrel is rotatably connected to the side of the fixed plate. An adjusting member is installed on the side of the mounting frame away from the fixed plate. The adjusting member is connected to the side of the test barrel and drives the test barrel to rotate.
[0008] In a specific embodiment, a driving shaft is connected to the side of the test barrel, and the other end of the driving shaft is connected to the adjusting member.
[0009] In a specific embodiment, the outside of the mounting frame is fixedly connected to a mounting box, and the adjusting member is installed inside the mounting box.
[0010] In a specific embodiment, the adjusting member includes a handwheel, a worm and a turbine, the other end of the active shaft is rotatably connected to the side wall of the installation box and extends to the interior of the installation box, and the turbine is fixedly connected to the active shaft, the handwheel is fixedly connected to the worm, the other end of the worm is rotatably set inside the installation box, and the worm is meshed with the turbine.
[0011] In a specific embodiment, a driven rotating shaft is rotatably provided on the fixed plate, and the other end of the driven rotating shaft is connected to the side surface of the test barrel.
[0012] In a specific embodiment, an outer side wall of the test barrel is connected to a curved connecting plate, and the driving rotating shaft and the driven rotating shaft are fixedly connected to two sides of the curved connecting plate respectively.
[0013] In a specific embodiment, the detection component includes a rheometer main unit and a bracket, the rheometer main unit is installed on the bracket, the bracket is arranged on the top of the test barrel, the rheometer main unit is installed with a stirring impeller, and the stirring impeller is located inside the test barrel, and the lifting end of the lifting component is connected to the bracket.
[0014] In a specific embodiment, the lifting member includes a cylinder and a connecting frame, the cylinder is installed on the top of the mounting frame, the cylinder rod end of the cylinder movably passes through the top wall of the mounting frame and is fixedly connected to the connecting frame, and the connecting frame is fixedly connected to the bracket.
[0015] Beneficial effect: By setting the adjusting piece, the test barrel can be turned over, making it convenient to pour out the mortar inside the test barrel and facilitate cleaning of the test barrel, thereby reducing the labor intensity of the test personnel. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions of the implementation methods of the present application, the following is a brief introduction to the drawings required for use in the implementation methods. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0017] Figure 1 This is a schematic structural diagram of a polymer-doped anti-crack flexible base monitoring device provided in an embodiment of the present application;
[0018] Figure 2A schematic diagram of the internal structure of the polymer-doped anti-crack flexible base monitoring device provided in an embodiment of the present application;
[0019] Figure 3 A schematic diagram of the structure of a rotating assembly provided in an embodiment of the present application;
[0020] Figure 4 A schematic diagram of the structure of the regulating member provided in an embodiment of the present application.
[0021] In the figure: 10-detection component; 110-mounting frame; 120-test barrel; 130-detection part; 131-rheometer main unit; 132-stirring impeller; 133-bracket; 140-lifting part; 141-cylinder; 142-connecting frame; 20-rotating component; 210-fixing plate; 220-mounting box; 230-driving shaft; 240-adjusting part; 241-handwheel; 242-worm; 243-turbine; 250-driven shaft; 260-arc-shaped connecting plate. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the present application will be described below in conjunction with the drawings in the embodiments of the present application.
[0023] See also Figure 1-Figure 4 The present application provides a polymer-doped crack-resistant flexible base monitoring device, including a detection component 10 and a rotation component 20.
[0024] See also Figure 1 、 Figure 2 and Figure 3The detection assembly 10 includes a mounting frame 110 and a test barrel 120. The test barrel 120 is arranged on the mounting frame 110. Specifically, the bottom of the test barrel 120 does not contact the bottom of the mounting frame 110 to facilitate the flipping of the test barrel 120. A lifting member 140 is installed on the top of the mounting frame 110. The lifting end of the lifting member 140 is installed with a detection member 130, and the stirring end of the detection member 130 is located inside the test barrel 120; the detection member 130 includes a rheometer main unit 131 and a bracket 133. Specifically, the specific use method of the rheometer main unit 131 is the existing technology and will not be described in detail here. The rheometer main unit 131 is installed on the bracket 133, and the bracket 133 is arranged on the top of the test barrel 120. A stirring impeller 132 is installed on the rheometer main unit 131, and the stirring impeller 132 is located inside the test barrel 120. The lifting end of the lifting member 140 is connected to the bracket 133. The lifting member 140 includes a cylinder 141 and a connecting frame 142. The cylinder 141 is installed on the top of the mounting frame 110. The cylinder rod end of the cylinder 141 is movable through the top wall of the mounting frame 110 and is fixedly connected to the connecting frame 142. The connecting frame 142 is fixedly connected to the bracket 133. The test barrel 120 is filled with mortar containing polymer, and then the cylinder 141 is started so that the bracket 133 contacts the top of the test barrel 120, thereby ensuring that the stirring impeller 132 is located inside the test barrel 120. Then the rheometer host 131 is started so that the stirring impeller 132 rotates, and then the rheometer host 131 is electrically connected to the computer terminal to record the test data. The present application can detect the addition of different amounts of compounds in the mortar, thereby determining the optimal amount of compound to be added.
[0025] See also Figure 1 、 Figure 2 、 Figure 3 and Figure 4 The rotating assembly 20 includes a fixed plate 210, which is mounted on the bottom of the mounting frame 110. The test barrel 120 is rotatably connected to the side of the fixed plate 210. An adjusting member 240 is installed on the side of the mounting frame 110 away from the fixed plate 210. The adjusting member 240 is connected to the side of the test barrel 120 and drives the test barrel 120 to rotate. After a mortar test is completed, the rheometer main unit 131 is first turned off, and then the cylinder 141 is activated to move the stirring impeller 132 out of the interior of the test barrel 120. The adjusting member 240 is then rotated to rotate the test barrel 120, thereby causing the top of the test barrel 120 to slowly tilt downward, thereby allowing the mortar inside the test barrel 120 to be poured out for cleaning. The setting of the adjusting member 240 allows the test barrel 120 to be flipped, making it easier to pour out the mortar inside the test barrel 120 and facilitate cleaning of the test barrel 120, reducing the labor intensity of the test personnel.
[0026] In this embodiment, a driving shaft 230 is connected to the side of the test barrel 120, and the other end of the driving shaft 230 is connected to an adjustment member 240. A mounting box 220 is fixedly connected to the outside of the mounting frame 110, and the adjustment member 240 is installed inside the mounting box 220. The adjustment member 240 includes a handwheel 241, a worm 242, and a turbine 243. The other end of the driving shaft 230 is rotatably connected to the side wall of the mounting box 220 and extends into the interior of the mounting box 220. Specifically, the other end of the driving shaft 230 movably penetrates the side wall of the mounting frame 110 and the side wall of the mounting box 220. The turbine 243 is fixedly connected to the driving shaft 230, and the handwheel 241 is fixedly connected to the worm 242. The other end of the worm 242 is rotatably disposed inside the mounting box 220. Specifically, the other end of the worm 242 movably penetrates the side wall of the mounting box 220 and is rotatably connected to the other side wall. The worm 242 is meshed with the turbine 243. A driven shaft 250 is rotatably provided on the fixed plate 210, and the other end of the driven shaft 250 is connected to the side of the test barrel 120. When the test barrel 120 needs to be flipped, the hand wheel 241 is turned to rotate the worm 242, thereby rotating the turbine 243. When the turbine 243 rotates, it drives the driving shaft 230 to rotate. Since the driven shaft 250 is rotatably connected to the fixed plate 210, when the driving shaft 230 rotates, it drives the test barrel 120 to flip and pour out the mortar inside, thereby facilitating its cleaning. In addition, due to the cooperation between the worm 242 and the turbine 243, the test barrel 120 will be more stable when flipped for cleaning, without shaking, and no human support is required, thereby improving cleaning efficiency.
[0027] In this embodiment, the outer wall of the test barrel 120 is connected to a curved connecting plate 260. Specifically, the curved connecting plate 260 comprises two curved mounting plates. The driving shaft 230 and the driven shaft 250 are fixedly connected to the two curved mounting plates, respectively. The two curved mounting plates are connected by bolts to facilitate disassembly. The driving shaft 230 and the driven shaft 250 are fixedly connected to the two sides of the curved connecting plate 260, respectively. The provision of the curved connecting plate 260 facilitates disassembly of the test barrel 120.
[0028] The working principle of the polymer-doped anti-cracking flexible base monitoring device:
[0029] After a mortar test is completed, the rheometer main unit 131 is first turned off, and then the cylinder 141 is activated to move the stirring impeller 132 out of the test barrel 120. The adjustment member 240 is then rotated to rotate the test barrel 120, thereby slowly tilting the top of the test barrel 120 downward, so that the mortar inside the test barrel 120 can be poured out for cleaning. The setting of the adjustment member 240 allows the test barrel 120 to be flipped, making it easier to pour out the mortar inside the test barrel 120 and facilitate cleaning of the test barrel 120, reducing the labor intensity of the test personnel.
[0030] It should be noted that the specific models and specifications of the rheometer main unit 131 and the cylinder 141 need to be selected and determined according to the actual specifications of the device. The specific selection calculation method adopts the existing technology in this field, so it will not be described in detail.
[0031] The power supply and principle of the rheometer main unit 131 and the cylinder 141 are clear to those skilled in the art and will not be described in detail here.
[0032] The foregoing is merely an embodiment of the present application and is not intended to limit the scope of protection of the present application. Various modifications and variations are possible for those skilled in the art. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present application shall be included within the scope of protection of the present application. It should be noted that similar reference numerals and letters represent similar items in the following figures. Therefore, once an item is defined in one figure, it does not need to be further defined or explained in subsequent figures.
Claims
1. A polymer-doped crack-resistant flexible base monitoring device, characterized in that: include A detection assembly (10) comprises a mounting frame (110) and a test barrel (120), wherein the test barrel (120) is arranged on the mounting frame (110), a lifting member (140) is installed on the top of the mounting frame (110), a detection member (130) is installed at the lifting end of the lifting member (140), and a stirring end of the detection member (130) is located inside the test barrel (120); The rotating assembly (20) includes a fixed plate (210), the fixed plate (210) is mounted on the bottom of the mounting frame (110), the test barrel (120) is rotatably connected to the side of the fixed plate (210), an adjusting member (240) is installed on the side of the mounting frame (110) away from the fixed plate (210), the adjusting member (240) is connected to the side of the test barrel (120), and the adjusting member (240) drives the test barrel (120) to rotate.
2. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 1, characterized in that: A driving shaft (230) is connected to the side of the test barrel (120), and the other end of the driving shaft (230) is connected to the adjusting member (240).
3. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 2, characterized in that: The outside of the mounting frame (110) is fixedly connected to a mounting box (220), and the adjusting member (240) is installed inside the mounting box (220).
4. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 3, characterized in that: The adjusting member (240) comprises a hand wheel (241), a worm (242) and a turbine (243); the other end of the active rotating shaft (230) is rotatably connected to the side wall of the installation box (220) and extends into the interior of the installation box (220); the turbine (243) is fixedly connected to the active rotating shaft (230); the hand wheel (241) is fixedly connected to the worm (242); the other end of the worm (242) is rotatably arranged in the interior of the installation box (220); and the worm (242) is meshed with the turbine (243).
5. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 4, characterized in that: A driven rotating shaft (250) is rotatably provided on the fixed plate (210), and the other end of the driven rotating shaft (250) is connected to the side surface of the test barrel (120).
6. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 5, characterized in that: The outer side wall of the test barrel (120) is connected to an arc-shaped connecting plate (260), and the driving rotating shaft (230) and the driven rotating shaft (250) are respectively fixedly connected to two sides of the arc-shaped connecting plate (260).
7. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 1, characterized in that: The detection component (130) includes a rheometer main unit (131) and a bracket (133), wherein the rheometer main unit (131) is mounted on the bracket (133), and the bracket (133) is arranged on the top of the test barrel (120). A stirring impeller (132) is mounted on the rheometer main unit (131), and the stirring impeller (132) is located inside the test barrel (120), and the lifting end of the lifting component (140) is connected to the bracket (133).
8. The monitoring device for crack-resistant flexible base layer of a polymer-doped material according to claim 7, characterized in that: The lifting member (140) includes a cylinder (141) and a connecting frame (142). The cylinder (141) is installed on the top of the mounting frame (110). The cylinder rod end of the cylinder (141) movably passes through the top wall of the mounting frame (110) and is fixedly connected to the connecting frame (142). The connecting frame (142) is fixedly connected to the bracket (133).
Citation Information
Patent Citations
Polymer anti-crack mortar monitoring device
CN216350721U