Mortar consistency measuring device
By combining support components, clamping components, and displacement sensors, the mortar consistency measurement process is simplified, solving the problems of cumbersome operation and low accuracy of existing devices, and achieving efficient and accurate mortar consistency measurement.
Patent Information
- Application Number
- CN202520262381.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2035-02-19
AI Technical Summary
Existing mortar consistency measuring devices are complex in structure, cumbersome in operation, have low measurement efficiency, and are susceptible to human error, making it difficult to meet accuracy requirements.
By employing support components, clamping components, and measuring components, and utilizing displacement sensors to measure mortar consistency, the operation steps are simplified and human reading errors are reduced.
It improves the efficiency and accuracy of mortar consistency measurement, reduces the workload of workers, and lowers human error in readings.
Smart Images

Figure CN223581683U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to mortar consistency measurement technical field especially, relate to a mortar consistency measurement device. BACKGROUND
[0002] In the field of construction engineering, mortar as indispensable building material is widely used in wall building, plastering and other construction links. As a key indicator to measure the working performance of mortar, accurate measurement of mortar consistency is of great significance to ensure the smooth progress of construction and improve the stability and durability of building structure.
[0003] The mortar consistency is represented by the millimeter number of the depth of the cone falling into the mortar. The device for measuring the mortar consistency in the prior art has a complex structure and is cumbersome to operate. A large amount of manpower and time is required during the measurement process, resulting in low measurement efficiency. Moreover, most of the existing measurement devices are equipped with a scale, which needs to be read manually, resulting in a large human error and failing to meet the measurement accuracy requirement. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a mortar consistency measurement device for accurately measuring the mortar consistency, simplifying the operation steps, reducing the labor burden of workers and improving the measurement efficiency of the mortar consistency.
[0005] To achieve this purpose, the utility model adopts the following technical solutions:
[0006] A mortar consistency measurement device, comprising:
[0007] A support assembly, including a support base, a support column and a guide piece, the support column is connected to the support base vertically, the guide piece is fixedly connected to the support column, and a guide through hole is formed in the guide piece in the vertical direction;
[0008] A clamping assembly, which is arranged on the guide piece;
[0009] A measurement assembly, including a measurement piece, a storage container and a displacement sensor, the measurement piece is slidably arranged in the guide through hole and can be clamped by the clamping assembly, the storage container is connected to the support base and located below the measurement piece, and the displacement sensor is fixedly connected to the support column and located above the measurement piece, and the displacement sensor can measure the distance between itself and the top of the measurement piece.
[0010] The above-mentioned mortar consistency measurement device, wherein the clamping assembly includes a driving piece and two clamping pieces, the driving piece can drive the two clamping pieces to approach each other to clamp the measurement piece, and the driving piece can drive the two clamping pieces to move away from each other to release the measurement piece.
[0011] The mortar consistency measuring device, wherein the clamping assembly further comprises a limiting piece and a bidirectional screw rod, two clamping pieces are slidingly connected to the limiting piece and are screwed to two ends of the bidirectional screw rod respectively, and the driving piece can drive the bidirectional screw rod to rotate to drive the two clamping pieces to approach or move away from each other.
[0012] The mortar consistency measuring device, wherein the clamping assembly further comprises a limiting piece and a sliding rod, one clamping piece is fixedly connected to the limiting piece, the other clamping piece is slidingly connected to the limiting piece and is fixedly connected to the sliding rod, and the driving piece drives the sliding rod to slide to drive the two clamping pieces to approach or move away from each other.
[0013] The mortar consistency measuring device, wherein the measuring piece comprises a connecting part and a measuring part, the measuring part is located at the bottom end of the connecting part, the connecting part is arranged in the guide through hole and can be clamped by the clamping assembly, and the measuring part can extend into the storage container.
[0014] The mortar consistency measuring device, wherein the connecting part is in a cylindrical shape, and the measuring part is in an inverted pyramid shape.
[0015] The mortar consistency measuring device, wherein the supporting base comprises a supporting plane for supporting the storage container, a plurality of leveling bolts are arranged in the supporting base in a vertical direction, and the plurality of leveling bolts can adjust the levelness of the supporting plane.
[0016] The mortar consistency measuring device, wherein the supporting plane is in a rectangular shape, and four leveling bolts are arranged at four corner points of the supporting plane respectively.
[0017] The mortar consistency measuring device, wherein two levels are arranged on the supporting plane, and the two levels are arranged vertically to detect the levelness of the supporting plane.
[0018] The mortar consistency measuring device, wherein the storage container has an upside-down conical storage space with an opening, and the storage space is used for storing a mortar sample.
[0019] The mortar consistency measuring device has the following beneficial effects:
[0020] The mortar consistency measuring device provided by this utility model involves placing the support base horizontally, inserting the measuring element through the guide hole (which guides the element), adjusting the element to a suitable height, clamping the element with the clamping assembly, injecting a mortar sample into the storage container, and placing the container on the support base below the element. The clamping assembly is then released, the element is adjusted to contact the mortar sample surface, and then clamped again. Finally, the element is released, allowing it to fall freely. The displacement sensor measures the distance from itself to the top of the element, thus calculating the depth to which the element sinks into the mortar, i.e., the mortar consistency. This mortar consistency measuring device is simple to operate, reduces labor, and improves measurement efficiency. Simultaneously, the displacement sensor measures the depth to which the element sinks into the mortar, reducing human error and improving measurement accuracy. Attached Figure Description
[0021] Figure 1 This is a first structural schematic diagram of the mortar consistency measuring device provided in this embodiment of the utility model;
[0022] Figure 2 This is a schematic diagram of the second structure of the mortar consistency measuring device provided in this embodiment of the utility model;
[0023] Figure 3 This is a schematic diagram of the clamping assembly provided in an embodiment of the present invention.
[0024] In the picture:
[0025] 1. Support assembly; 11. Support base; 111. Support plane; 12. Support column; 13. Guide component;
[0026] 2. Clamping assembly; 21. Driving component; 22. Clamping plate; 23. Limiting component; 24. Bidirectional screw;
[0027] 3. Measuring assembly; 31. Measuring component; 311. Connecting part; 312. Measuring part; 32. Storage container; 321. Storage part; 322. Placement part; 33. Displacement sensor;
[0028] 4. Leveling bolts;
[0029] 5. Level;
[0030] 6. Controller. Detailed Implementation
[0031] The embodiments of the present application are described below in detail, examples of the embodiments are shown in the drawings, wherein the same or similar notations represent the same or similar components or components having the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary, and are intended to explain the present application, and cannot be understood as a limitation of the present application.
[0032] In the description of the present application, unless explicitly defined and limited otherwise, the terms "connected", "connected", "fixed" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, it can be mechanically connected, or it can be electrically connected, it can be directly connected, or it can be indirectly connected through an intermediate medium, it can be the internal communication of two elements or the interaction relationship between two elements. For ordinary skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0033] In the description of the present application, unless explicitly defined and limited otherwise, the first feature "on" or "below" the second feature can include that the first feature and the second feature are in direct contact, or the first feature and the second feature are not in direct contact but are in contact through another feature between them. Moreover, the first feature "on", "above" and "above" the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "below" and "below" the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.
[0034] The technical scheme of the present application is further illustrated below by combining the drawings and through specific embodiments.
[0035] The present application provides a kind of mortar consistency measuring device, for accurately measuring mortar consistency, simplify operation step, reduce the labor burden of worker, improve the measurement efficiency of mortar consistency.
[0036] As Figures 1 to 3As shown, the mortar consistency measuring device comprises a supporting assembly 1, a clamping assembly 2 and a measuring assembly 3. The supporting assembly 1 comprises a supporting base 11, a supporting column 12 connected to the supporting base 11 vertically, and a guide 13 fixedly connected to the supporting column 12 and having a guide through hole formed in a vertical direction; the clamping assembly 2 is arranged on the guide 13; the measuring assembly 3 comprises a measuring piece 31, a storage container 32 and a displacement sensor 33, the measuring piece 31 is slidably arranged in the guide through hole and can be clamped by the clamping assembly 2, the storage container 32 is connected to the supporting base 11 and located below the measuring piece 31, and the displacement sensor 33 is fixedly connected to the supporting column 12 and located above the measuring piece 31, and the displacement sensor 33 can measure the distance between itself and the top end of the measuring piece 31.
[0037] The mortar consistency measuring device provided by the utility model has the advantages that during use, the supporting base 11 is horizontally placed, the measuring piece 31 is arranged in the guide through hole, the guide through hole has a guiding effect on the measuring piece 31, after the measuring piece 31 is adjusted to a proper height, the clamping assembly 2 clamps the measuring piece 31, mortar samples are injected into the storage container 32, the storage container 32 containing the mortar samples is installed on the supporting base 11 below the measuring piece 31, the clamping assembly 2 releases the measuring piece 31, after the measuring piece 31 is adjusted to contact the surface of the mortar samples, the clamping assembly 2 clamps the measuring piece 31 again, then the measuring piece 31 is released to freely fall, the displacement sensor 33 measures the distance between itself and the top end of the measuring piece 31, and then the mortar depth value of the measuring piece 31 sinking into the mortar, i.e. the mortar consistency, is calculated, the mortar consistency measuring device is simple to operate, reduces the labor of workers, improves the measuring efficiency, the distance between the displacement sensor 33 and the top end of the measuring piece 31 is measured, human reading error is reduced, and the measuring accuracy is improved.
[0038] The supporting assembly 1 is used for supporting the clamping assembly 2 and the measuring assembly 3. The supporting base 11 and the supporting column 12 can be integrally processed or detachably connected. Exemplarily, the supporting base 11 and the supporting column 12 are detachably connected, thereby facilitating transportation. The shape of the supporting base 11 and the supporting column 12 is not limited in the embodiment. Alternatively, the supporting base 11 is plate-shaped, which can reduce the weight, save the cost, and the supporting column 12 is cylindrical, and the edge is smoothly transitioned, thereby avoiding scratching the measurer.
[0039] The supporting base 11 further comprises a supporting plane 111 for supporting the storage container 32, and a plurality of leveling bolts 4 are arranged in a vertical direction through the supporting base 11, and the plurality of leveling bolts 4 can adjust the levelness of the supporting plane 111. The leveling bolts 4 are adjusted to adjust the levelness of the supporting plane 111, the storage container 32 on the supporting plane 111 is ensured to be horizontally placed, and the accuracy of the mortar consistency measurement is improved.
[0040] Specifically, referring to Figure 1 and Figure 2 , the support plane 111 is rectangular, and four leveling bolts 4 are respectively arranged at four corner points of the support plane 111. The rectangular support plane 111 is convenient to process, the leveling bolts 4 are distributed at the four corner points of the support plane 111, can uniformly bear the load, improve the load bearing capacity of the support base 11, and each leveling bolt 4 can be adjusted individually, which is convenient for adjusting the levelness of the support base 11.
[0041] For the convenience of description, the four leveling bolts 4 are respectively a first leveling bolt, a second leveling bolt, a third leveling bolt and a fourth leveling bolt. The first leveling bolt and the second leveling bolt are distributed along the length direction of the support plane 111, the first leveling bolt and the third leveling bolt are distributed along the width direction of the support plane 111, and the first leveling bolt and the fourth leveling bolt are distributed at two opposite corner points of the support plane 111. In use, if the support plane 111 is inclined along the length direction, the first leveling bolt and the second leveling bolt or the third leveling bolt and the fourth leveling bolt can be adjusted to make the support plane 111 horizontal along the length direction; if the support plane 111 is inclined along the width direction, the first leveling bolt and the third leveling bolt or the second leveling bolt and the fourth leveling bolt can be adjusted to make the support plane 111 horizontal along the width direction.
[0042] In other embodiments, the support plane 111 can be circular, and a plurality of leveling bolts 4 are uniformly distributed around the circumference of the support plane 111. The leveling bolts 4 can be four, five or more. Exemplarily, five leveling bolts 4 are distributed around the center of the support plane 111 with an interval of 72° between adjacent leveling bolts 4, which is convenient for adjusting the levelness of the support plane 111.
[0043] In this embodiment, referring to Figure 2 , two levels 5 are arranged on the support plane 111, and the two levels 5 are arranged vertically to detect the levelness of the support plane 111. The level 5 is widely available and easy to obtain.
[0044] The two levels 5 are arranged vertically, one of which can detect whether the support plane 111 is horizontal along its length direction, and the other can detect whether the support plane 111 is horizontal along its width direction. The inclination direction of the support plane 111 is determined by the level 5, and then the leveling bolt 4 is adjusted to make the support plane 111 horizontal, so as to ensure that the storage container 32 on the support plane 111 is placed horizontally and improve the accuracy of the mortar consistency measurement.
[0045] The guide 13 provides a guide function for the measuring element 31, avoids the measuring element 31 from tilting when freely falling, and improves the measurement accuracy of the mortar consistency. The shape of the guide 13 is not limited in the embodiment, and the guide 13 is a rectangular block, which is convenient for processing. The edges of the guide 13 are smoothly transitioned to avoid scratching the tester.
[0046] The guide 13 and the support column 12 can be designed integrally or detachably connected. In an example, the guide 13 and the support column 12 are detachably connected, and the guide 13 and the support column 12 are connected by existing bolts, which is convenient and firm.
[0047] The storage container 32 has an upside-down conical storage space, which is used for storing the mortar sample. The upside-down conical storage space can save the amount of mortar and reduce the cost. At the same time, the mortar flows in the upside-down conical storage space more in line with the flow characteristics of the mortar in the natural state, which can better simulate the flow of the mortar in the natural state and improve the measurement accuracy of the mortar consistency.
[0048] In the embodiment, the storage container 32 further includes a storage part 321 and a placement part 322. The storage part 321 is provided with an upside-down conical storage space, and the storage part 321 is located above the placement part 322. The placement part 322 has a placement plane, which is lapped on the support plane 111 to support the storage container 32. In an example, the placement plane is a rectangular plane, and the size of the placement plane is greater than the size of the upside-down conical storage space, which can improve the stability of the storage container 32 placed on the support base 11.
[0049] The storage part 321 and the placement part 322 can be integrally formed or detachably connected. In an example, the storage part 321 and the placement part 322 are detachably connected. The storage part 321 is located in the central region of the top surface of the placement part 322. The top surface of the placement part 322 is provided with two clamping grooves in a relative manner. The bottom end of the storage part 321 is provided with a connecting rod. The two ends of the connecting rod are respectively rotated into the two clamping grooves by rotating the storage part 312, so as to fix the placement part 322 and the storage part 321. The fixing is firm and convenient for disassembly and assembly.
[0050] The placement part 322 is installed on the support plane 111 of the support base 11. In the embodiment, the placement part 322 can be directly placed on the support plane 111. Since the support plane 111 is a horizontal plane, the placement part 322 has a large contact area with the support plane 111, and the placement part 322 can be stably placed on the support base 11.
[0051] The clamping assembly 2 is used for clamping the measuring piece 31, and comprises a driving member 21 and two clamping pieces 22. The driving member 21 can drive the two clamping pieces 22 to move close to each other to clamp the measuring piece 31, and can drive the two clamping pieces 22 to move away from each other to release the measuring piece 31. The two clamping pieces 22 clamp the measuring piece 31, and the storage container 32 can be placed on the support base 11. The two clamping pieces 22 release the measuring piece 31, and the measuring piece 31 can freely fall into the storage container 32.
[0052] Optionally, referring to Figure 3 The clamping assembly 2 further comprises a limiting member 23 and a bidirectional screw rod 24. The two clamping pieces 22 are slidingly connected to the limiting member 23, and are respectively screwed to two ends of the bidirectional screw rod 24. The driving member 21 can drive the bidirectional screw rod 24 to rotate to drive the two clamping pieces 22 to move close to or away from each other, so as to clamp or release the measuring piece 31.
[0053] The limiting member 23 can be provided with one or two. Optionally, the limiting member 23 is provided with two, and is in the shape of a rod. Each clamping piece 22 is provided with two limiting holes for penetrating the limiting member 23. Threaded holes are formed between the two limiting holes on each clamping piece 22 for screwing the bidirectional screw rod 24. The driving member 21 can be an existing motor, and is connected to the bidirectional screw rod 24 through a shaft coupling. Since the rotation directions of the threads at the two ends of the bidirectional screw rod 24 are opposite, when the bidirectional screw rod 24 rotates, the two clamping pieces 22 move in opposite directions. Illustratively, when the driving member 21 rotates forward, the two clamping pieces 22 move towards each other to clamp the measuring piece 31. When the driving member 21 reverses, the two clamping pieces 22 move away from each other to release the measuring piece 31.
[0054] In other embodiments, the clamping assembly 2 further comprises a limiting member 23 and a sliding rod. One of the two clamping pieces 22 is fixedly connected to the limiting member 23, and the other clamping piece 22 is slidingly connected to the limiting member 23 and fixedly connected to the sliding rod. The driving member 21 drives the sliding rod to slide to drive the two clamping pieces 22 to move close to or away from each other, so as to clamp or release the measuring piece 31.
[0055] For ease of description, the clamping piece 22 fixedly connected to the limiting member 23 is a first clamping piece, and the clamping piece 22 fixedly connected to the sliding rod is a second clamping piece. The first clamping piece can be welded to the limiting member 23, which is simple to operate. The second clamping piece is provided with two sliding holes, and the limiting member 23 penetrates the sliding holes. The driving member 21 can be an existing air cylinder. The piston rod of the air cylinder is fixedly connected to the sliding rod. When the piston rod moves linearly, it can drive the sliding rod to move linearly, and in turn drive the second clamping piece to move close to or away from the first clamping piece to clamp or release the measuring piece 31.
[0056] The measuring piece 31 is used for measuring the mortar consistency. The mortar consistency refers to the performance of the mortar flowing under the action of gravity or external force, and is usually represented by a consistency value. Specifically, the mortar consistency is measured by the depth (mm) of the cone sinking into the mortar. The greater the depth of the cone sinking, the greater the fluidity of the mortar.
[0057] In the embodiment, the measuring piece 31 comprises a connecting part 311 and a measuring part 312, the measuring part 312 is located at the bottom end of the connecting part 311, the connecting part 311 is arranged in the guide through hole and can be clamped by the clamping assembly 2, and the measuring part 312 can extend into the storage container 32. The clamping assembly 2 clamps the connecting part 311, the storage container 32 can be installed below the measuring part 312, the clamping assembly 2 releases the connecting part 311, the measuring piece 31 freely falls due to the action of gravity, and the measuring part 312 sinks into the mortar sample in the storage container 32.
[0058] Specifically, referring to Figure 2 , the connecting part 311 is in a cylindrical shape, the measuring part 312 is in an inverted conical shape, the edge of the cylindrical connecting part 311 is smoothly transitioned, the wear of the wall of the guide through hole during falling is reduced, the service life is improved, the inverted conical measuring part 312 is more easily sunk into the mortar, and the falling process is not easily shaken, so that the accuracy of the measurement result can be improved.
[0059] The mortar consistency measuring device provided by the utility model further comprises a controller 6, the controller 6 is detachably connected to the supporting column 12, the controller 6 is electrically connected with the displacement sensor 33, and the controller 6 is electrically connected with the clamping assembly 2. The data measured by the displacement sensor 33 can be transmitted to the controller 6, and the controller 6 judges the displacement of the measuring piece 31 moving along the vertical direction according to the data.
[0060] Specifically, the controller 6 comprises a display screen, which is used for displaying the distance between the displacement sensor 33 and the top end of the measuring piece 31 measured by the displacement sensor 33. The controller 6 further comprises operation buttons, which are used for controlling the displacement sensor 33 and the clamping assembly 2. The operation buttons are respectively "save", "cancel", "determine", "switch", "release", "clamp", "final reading" and "initial reading". The displacement sensor 33 can be an existing laser displacement sensor, which has high measurement accuracy and fast measurement speed. It should be noted that the laser displacement sensor belongs to mature technology in the field, and of course, other displacement sensors 33 can also be selected in the utility model.
[0061] The mortar consistency measuring device provided by the utility model comprises the following steps when in use:
[0062] S1: Check whether the mortar consistency measuring device is normal, check whether the clamping assembly 2 can work normally, check whether the measuring piece 31 can slide smoothly in the guide through hole, and check whether the bubble in the level 5 is centered. If not, adjust the leveling bolt 4 to make the bubble in the level 5 centered, and ensure that the support base 11 is in a horizontal state.
[0063] S2: Press the "on-off" operation button on the controller 6. After the controller 6 is turned on, hold the measuring piece 31, press the "loosen" operation button, manually adjust the position of the measuring piece 31, install the storage container 32 below the measuring piece 31, and then press the "clamping" operation button to make the clamping assembly 2 clamp the measuring piece 31.
[0064] S3: First, fill the mortar sample into the storage container 32, so that the surface of the mortar sample is 8-12 cm, for example, 8 cm, 9 cm, 10 cm, 11 cm or 12 cm, below the opening 8 of the storage container 32, preferably 10 cm below the opening 8 of the storage container 32; then, insert the stirring rod into the storage container 32 from the center to the edge for 20-30 times, for example, 20 times, 25 times or 30 times, to crush the fixed blocks in the mortar sample and discharge the bubbles, preferably 25 times; then, gently tap the outer surface of the storage container 32 at four equal intervals for 5-6 times with a wooden hammer, so that the mortar sample in the storage container 32 is more evenly distributed, and the surface of the mortar sample is more flat; finally, install the storage container 32 containing the mortar sample on the support base 11 and below the measuring piece 31.
[0065] S4: Hold the measuring piece 31, press the "loosen" operation button, adjust the bottom end of the measuring piece 31 to a position flush with the surface of the mortar sample, press the "clamping" operation button to clamp the measuring piece 31, and then press the "initial reading" operation button to collect the distance h1 between the displacement sensor 33 and the top end of the measuring piece 31.
[0066] S5: Press the "loosen" operation button, and the measuring piece 31 is free to sink, while the controller 6 enters a timing state, and the clamping assembly 2 automatically clamps the measuring piece 31 after 10 seconds. After the clamping assembly 2 clamps the measuring piece 31, press the "final reading" operation button to collect the distance h2 between the displacement sensor 33 and the top end of the measuring piece 31, and h2-h1 is the mortar consistency.
[0067] S6: press the "confirm" operation button, record the test data and enter the next mortar consistency measurement test, calculate the difference of the two tests, if the difference of the two tests is greater than 10 cm, press the "cancel" operation button, the controller 6 does not record the test data, and the mortar consistency measurement test is performed again, if the difference of the two tests is less than 10 cm, press the "save" operation button, the arithmetic mean of the two test results is taken as the test result and stored in the cloud.
[0068] Obviously, the above embodiments of the present application are only examples for clearly illustrating the present application, and are not intended to limit the embodiments of the present application. For those skilled in the art, other different forms of changes or variations can be made on the basis of the above description. Here, all the embodiments are not required to be exhausted. Any modification, equivalent replacement and improvement made within the spirit and principle of the present application shall be included in the protection scope of the claims of the present application.
Claims
1. A mortar consistency measuring device, characterized in that, include: The support assembly (1) includes a support base (11), a support column (12) and a guide (13). The support column (12) is vertically connected to the support base (11), and the guide (13) is fixedly connected to the support column (12). The guide (13) has a guide through hole in the vertical direction. A clamping assembly (2) is disposed on the guide member (13); The measuring component (3) includes a measuring element (31), a storage container (32), and a displacement sensor (33). The measuring element (31) is slidably inserted through the guide hole and can be clamped by the clamping component (2). The storage container (32) is connected to the support base (11) and located below the measuring element (31). The displacement sensor (33) is fixedly connected to the support column (12) and located above the measuring element (31). The displacement sensor (33) can measure the distance between itself and the top of the measuring element (31).
2. The mortar consistency measuring device according to claim 1, characterized in that, The clamping assembly (2) includes a drive member (21) and two clamping plates (22). The drive member (21) can drive the two clamping plates (22) to move closer to each other to clamp the measuring member (31), and the drive member (21) can drive the two clamping plates (22) to move further apart to release the measuring member (31).
3. The mortar consistency measuring device according to claim 2, characterized in that, The clamping assembly (2) further includes a limiting member (23) and a bidirectional screw (24). The two clamping pieces (22) are slidably connected to the limiting member (23) and screwed to both ends of the bidirectional screw (24). The driving member (21) can drive the bidirectional screw (24) to rotate so that the two clamping pieces (22) move closer to each other or further away.
4. The mortar consistency measuring device according to claim 2, characterized in that, The clamping assembly (2) further includes a limiting member (23) and a sliding rod. One of the clamping pieces (22) is fixedly connected to the limiting member (23), and the other clamping piece (22) is slidably connected to the limiting member (23) and fixedly connected to the sliding rod. The driving member (21) drives the sliding rod to slide so that the two clamping pieces (22) move closer to each other or further apart.
5. The mortar consistency measuring device according to claim 1, characterized in that, The measuring component (31) includes a connecting part (311) and a measuring part (312). The measuring part (312) is located at the bottom end of the connecting part (311). The connecting part (311) passes through the guide hole and can be clamped by the clamping assembly (2). The measuring part (312) can extend into the storage container (32).
6. The mortar consistency measuring device according to claim 5, characterized in that, The connecting part (311) is cylindrical in shape, and the measuring part (312) is inverted cone in shape.
7. The mortar consistency measuring device according to claim 1, characterized in that, The support base (11) includes a support plane (111) for supporting the storage container (32). Multiple leveling bolts (4) are provided through the support base (11) in the vertical direction, and the multiple leveling bolts (4) can adjust the levelness of the support plane (111).
8. The mortar consistency measuring device according to claim 7, characterized in that, The supporting plane (111) is rectangular, and the four leveling bolts (4) are respectively located at the four corners of the supporting plane (111).
9. The mortar consistency measuring device according to claim 7, characterized in that, Two levels (5) are provided on the support plane (111), and the two levels (5) are set vertically to detect the levelness of the support plane (111).
10. The mortar consistency measuring device according to any one of claims 1-9, characterized in that, The storage container (32) has an inverted cone-shaped storage space with the opening facing upwards, the storage space being used to store mortar samples.