Device for measuring fluidity of grouting material

By designing an automatic control device for measuring the fluidity of grouting material, the problem of low accuracy and efficiency caused by manual control in existing technologies has been solved, achieving more efficient and accurate fluidity measurement.

CN223581679UActive Publication Date: 2025-11-21陕西路桥集团有限公司 +1
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Patent Information

Application Number
CN202423094613.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-13
Publication Date
2025-11-21
Estimated Expiration
2034-12-13

AI Technical Summary

Technical Problem

In existing technologies, the flowability of grouting materials needs to be measured manually by staff, which affects the accuracy of the measurement and is inefficient.

Method used

A device for measuring the flowability of grouting material was designed, comprising a support assembly, a first measuring assembly, and a timing device. By automatically controlling and recording the outflow and complete flow time of the grouting material, manual operation steps are reduced.

Benefits of technology

It improves the accuracy and efficiency of grout flowability measurement and reduces the labor intensity of operators.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a grouting material fluidity measuring device and belongs to the technical field of cement detection. The grouting material fluidity measuring device comprises a supporting assembly, a first measuring assembly, a second measuring assembly and a timing piece, wherein the supporting assembly is provided with a hopper, and the grouting material is arranged in the hopper; the first measuring assembly is arranged at the position, corresponding to the hopper, of the supporting assembly, and the grouting material is controlled to flow out of the hopper through the first measuring assembly; the second measuring assembly is arranged on the hopper at a position corresponding to the grouting material; when the grouting material in the hopper completely flows out, part of the structure in the second measuring assembly is triggered; the first measuring assembly and the second measuring assembly are electrically connected with the timing piece so as to record the time required for all the grouting materials to flow out of the hopper, and therefore the fluidity of the grouting materials is measured. The grouting material fluidity measuring device provided by the utility model is used for detecting the fluidity of the grouting material.
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Description

TECHNICAL FIELD

[0001] The utility model relates to cement detection technical field especially relates to a pressure slurry flow degree measuring device. BACKGROUND

[0002] Pressure slurry is mainly applied to various railways, highways and bridges, and the performance of pressure slurry is related to the safety performance of building structure, and the flow degree test of pressure slurry is a more key performance index.

[0003] However, in the prior art, when the flow degree of pressure slurry is measured, the staff needs to manually control the flow of pressure slurry at the same time, which affects the accuracy of the measurement and the work efficiency is low. UTILITY MODEL CONTENT

[0004] The utility model provides a pressure slurry flow degree measuring device, without staff performing multiple work at the same time, improve the accuracy of the measurement, improve work efficiency.

[0005] The pressure slurry flow degree measuring device provided by the application comprises a supporting assembly, a first measuring assembly, a second measuring assembly and a timing piece, wherein the supporting assembly is provided with a hopper, and the pressure slurry is placed in the hopper; the first measuring assembly is arranged at a position corresponding to the hopper on the supporting assembly, and the flow of the pressure slurry from the hopper is controlled through the first measuring assembly; the second measuring assembly is arranged at a position corresponding to the pressure slurry on the hopper; when the pressure slurry in the hopper flows out completely, part of the structure in the second measuring assembly is triggered; the first measuring assembly, the second measuring assembly and the timing piece are electrically connected to record the time required for the complete flow of the pressure slurry from the hopper, so as to measure the flow degree of the pressure slurry.

[0006] The pressure slurry flow degree measuring device provided by the application is supported by the supporting assembly, the first measuring assembly and the timing piece, which can record the time when the pressure slurry starts to flow, and the second measuring assembly and the timing piece, which can record the time when the pressure slurry stops flowing. By setting up in this way, the staff can record the time required for the complete flow of the pressure slurry from the hopper by simple operation, without the staff performing multiple different operations at the same time, and the steps are simple; meanwhile, the accuracy of the flow degree measurement of the pressure slurry can be improved, and the work efficiency can be improved.

[0007] In a possible implementation of the application, the supporting assembly comprises a bottom plate and a top plate, a telescopic rod is arranged between the bottom plate and the top plate, the telescopic rod is fixed to the bottom plate at one end and connected to the top plate at the other end; the bottom plate is provided with a collection box for receiving the pressure slurry flowing out of the hopper.

[0008] In a possible implementation manner of the application, the first measuring assembly comprises a blocking plate, the hopper is provided with an opening close to one end of the bottom plate, and the grouting material flows out through the opening; the blocking plate is arranged at the position of the opening and controls the opening and closing of the opening; the blocking plate is connected with a connecting plate, and the connecting plate is slidingly connected with the top plate; a sensitive switch is installed on the top plate, and the connecting plate triggers the sensitive switch when moving away from the hopper; and the sensitive switch is electrically connected with the timing piece.

[0009] In a possible implementation manner of the application, the second measuring assembly comprises a floating ball, the floating ball is suspended on the surface of the grouting material in the hopper, the floating ball is connected with a supporting rod, the outer wall of the hopper is provided with a sliding groove, and the supporting rod slides in the sliding groove; a sensor is installed on the hopper and at a position corresponding to the supporting rod, and the sensor is electrically connected with the timing piece; and the supporting rod triggers the sensor when the grouting material flows out from the hopper completely.

[0010] In a possible implementation manner of the application, the bottom plate is provided with a balancing piece to keep the bottom plate in a horizontal state; and the bottom plate is provided with a horizontal detection piece.

[0011] In a possible implementation manner of the application, the top plate is provided with a support frame, the support frame is movably connected with a connecting rod, and one end of the connecting rod away from the support frame is connected with a point gauge.

[0012] The one or more technical solutions provided in the embodiments of the application have at least the following technical effects or advantages:

[0013] (1) The first measuring assembly and the second measuring assembly are arranged, so that the operator only needs to perform simple operation to record the time required for the grouting material to flow out from the hopper completely, the labor intensity of the operator is reduced, and the accuracy of the measuring structure is improved.

[0014] (2) The balancing piece and the horizontal detection piece are arranged, so that the measuring device can be adjusted to be in a horizontal state, and the accuracy of the measuring result is further improved.

[0015] (3) The support piece, the connecting rod and the point gauge are arranged, so that the operator can conveniently pour the quantitative grouting material into the hopper. DRAWINGS

[0016] In order to more clearly illustrate the technical solutions of the application or the prior art, 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 some embodiments of the application, and other drawings can be obtained by those skilled in the art without creative labor.

[0017] Figure 1The utility model discloses a whole structure schematic diagram of a grout flowability measuring device.

[0018] Figure 2 For Figure 1 Second angle structure schematic diagram.

[0019] Figure 3 For second measuring assembly structure schematic diagram.

[0020] Figure 4 For Figure 3 Second angle structure schematic diagram.

[0021] Icon: 1-support assembly;101-bottom plate;102-top plate;103-telescopic rod;2-first measuring assembly;21-plugging plate;22-connection plate;23-guide rail;24-sensitivity switch;3-second measuring assembly;31-suspension ball;32-supporting rod;33-supporting block;34-slotted guide;35-sensor;4-timing piece;5-hopper;6-collecting box;7-balance piece;8-horizontal detection piece;9-support frame;10-connecting rod;11-point gauge. DETAILED DESCRIPTION

[0022] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments of the utility model will be clearly and completely explained in combination with the drawings in the embodiments of the utility model, obviously, the described embodiments are a part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without making creative labor belong to the range of protection of the utility model.

[0023] It should be noted that when a component is referred to as "fixed to" or "disposed on" another component, it can be directly on the other component or there can be a middle component. When a component is referred to as "connected to" another component, it can be directly connected to the other component or there can be a middle component. The terms "vertical", "horizontal", "up", "down", "left", "right" and similar expressions used in the specification of the utility model are only for the purpose of illustration, and do not indicate the only implementation.

[0024] In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Therefore, the features defined with "first", "second" can explicitly or implicitly include at least one of the features. In the description of the utility model, the meaning of "multiple" is at least two, such as two, three, etc., unless otherwise specifically limited.

[0025] In the utility model, unless another definite provision and limitation, first feature is on second feature "on", "under" can be first feature direct and second feature contact, or first feature and second feature indirectly contact through intermediate medium. Moreover, first feature is on second feature "on", "above" and "upper surface" can be first feature is directly above or obliquely above second feature, or only indicate that the horizontal height of first feature is higher than second feature. First feature is on second feature "under", "below" and "under" can be first feature is directly below or obliquely below second feature, or only indicate that the horizontal height of first feature is less than second feature.

[0026] Unless otherwise defined, all technical and scientific terms used in the specification of the utility model belong to the same meaning as that understood by the person skilled in the art of the technology belonging to the utility model. The terms used in the specification of the utility model are only for the purpose of describing the specific embodiment, and are not intended to limit the utility model. The term "and / or" used in the specification of the utility model includes any and all combinations of one or more related listed items.

[0027] The embodiment of the application provides a kind of pressure slurry flow degree measuring device, refer to Figures 1-4 , Figure 1 The front view of the pressure slurry flow degree measuring device is shown, Figure 2 The top view of the pressure slurry flow degree measuring device is shown. Figure 3 And Figure 4 The structure of the second measuring assembly 3 is shown. The pressure slurry flow degree measuring device comprises a support assembly 1, a first measuring assembly 2, a second measuring assembly 3 and a timing piece 4; wherein the support assembly 1 is installed with a hopper 5, and the pressure slurry is placed in the hopper 5; the first measuring assembly 2 is arranged on the support assembly 1 and at a position corresponding to the hopper 5, and the pressure slurry is controlled to flow out of the hopper 5 through the first measuring assembly 2; the second measuring assembly 3 is arranged on the hopper 5 and at a position corresponding to the pressure slurry; when the pressure slurry in the hopper 5 flows out completely, part of the structure in the second measuring assembly 3 is triggered; the first measuring assembly 2, the second measuring assembly 3 and the timing piece 4 are electrically connected to record the time required for the pressure slurry to flow out completely from the hopper 5, so as to measure the flow degree of the pressure slurry

[0028] For example, the support assembly 1 can be installed with the hopper 5, and the hopper 5 can be arranged in a reverse conical shape, i.e. the inlet diameter of the hopper 5 is larger than the outlet diameter of the hopper 5, and the inlet is arranged above the outlet; the pressure slurry can be placed in the containing space of the hopper 5.

[0029] In another example, the first measuring assembly 2 can be arranged on the support assembly 1, and a part or structure capable of controlling the opening and closing of the outlet of the hopper 5, such as a baffle, is arranged on the first measuring assembly 2.

[0030] In another example, the second measuring assembly 3 can be arranged on the hopper 5, and the second measuring assembly 3 can be arranged with a structure matching the hopper 5 to facilitate the connection of the second measuring assembly 3 and the hopper 5. In addition, the second measuring assembly 3 can be further arranged with a sensing element, and part of the components in the second measuring assembly 3 can move towards the bottom plate 101 when the pressure slurry flows out, and the sensing element can be triggered when the pressure slurry flows out completely to record the time when the pressure slurry flows out completely.

[0031] It can be understood that the timing element 4 can be an electronic timer, and part of the components in the first measuring assembly 2 and the second measuring assembly 3 can be electrically connected with the electronic timer to record the time when the pressure slurry starts to flow out and the time when the pressure slurry flows out completely.

[0032] In the above embodiment, the support assembly 1 is arranged to support the hopper 5 and other structures, the first measuring assembly 2 and the timing element 4 are arranged to record the time when the pressure slurry starts to flow out, and the second measuring assembly 3 and the timing element 4 are arranged to record the time when the pressure slurry flows out completely. In this way, the worker can record the time required for the pressure slurry to flow out completely from the hopper 5 by simple operation, and the worker does not need to perform multiple different operations at the same time, and the steps are simple. At the same time, the accuracy of the determination of the flowability of the pressure slurry can be improved, and the work efficiency can be improved.

[0033] In some embodiments of the present application, as shown in Figure 1 The support assembly 1 includes a bottom plate 101 and a top plate 102, and a telescopic rod 103 is arranged between the bottom plate 101 and the top plate 102. The fixed end of the telescopic rod 103 is connected with the bottom plate 101, and the telescopic end of the telescopic rod 103 is connected with the top plate 102. The bottom plate 101 is arranged with a collection box 6 for receiving the pressure slurry flowing out from the hopper 5.

[0034] For example, the support assembly 1 can be arranged in the form of a structure including a bottom plate 101 and a top plate 102, and a telescopic rod 103 can be arranged between the bottom plate 101 and the top plate 102 to support the top plate 102 through the telescopic rod 103.

[0035] The fixed end of the telescopic rod 103 can be arranged with a base, which is not marked in the figure. The base is used to install the telescopic rod 103 on the bottom plate 101, and the base can move on the bottom plate 101, for example, rotate, etc. The top plate 102 is arranged with a threaded hole at a position corresponding to the telescopic end of the telescopic rod 103, and the telescopic end of the telescopic rod 103 is detachably connected with the top plate 102 through the threaded hole.

[0036] In another example, the collection box 6 can be placed on the bottom plate 101, and the collection box 6 is arranged at a position directly below the hopper 5, and the pressure slurry in the hopper 5 can flow into the collection box 6.

[0037] In the above embodiment, the telescopic rod 103 is arranged, the distance between the top plate 102 and the bottom plate 101 can be adjusted by the telescopic rod 103, so that the height of the top plate 102 is adjusted, and the user is facilitated to operate; the collecting box 6 is arranged, the flowing pressure grouting material is collected by the collecting box 6, and flexibility and convenience are achieved.

[0038] In some embodiments of the present application, as shown in Figure 1 and Figure 2 The first measuring assembly 2 includes a blocking plate 21, and the hopper 5 is provided with an opening at one end close to the bottom plate 101, and the pressure grouting material flows out of the opening; the blocking plate 21 is arranged at the position of the opening, and the opening is controlled to be opened or closed by the blocking plate 21. The blocking plate 21 is connected with a connecting plate 22, and the connecting plate 22 is slidingly connected with the top plate 102; a sensitive switch 24 is installed on the top plate 102, and when the connecting plate 22 moves away from the hopper 5, the connecting plate 22 will trigger the sensitive switch 24; the sensitive switch 24 is electrically connected with the timing piece 4.

[0039] For example, the first measuring assembly 2 can be arranged in a structure form including the blocking plate 21, and the hopper 5 can be provided with an opening at one end close to the bottom plate 101, and the pressure grouting material in the hopper 5 flows out of the opening into the collecting box 6. The blocking plate 21 can be attached to the opening, and the size of the blocking plate 21 can be greater than the size of the opening, so as to close the opening by the blocking plate 21.

[0040] Further, the blocking plate 21 is connected with the connecting plate 22, the top plate 102 is provided with a guide rail 23, and the connecting plate 22 slides in the guide rail 23 along the horizontal direction through a connecting block.

[0041] For the convenience of understanding, the connecting plate 22 can be arranged in a structure form including a connecting block and an “L” shaped rod, wherein the “L” shaped rod and the blocking plate 21 are connected with the connecting block, and the “L” shaped rod and the blocking plate 21 are connected through the connecting block. The “L” shaped rod can slide in the guide rail 23, so that the connecting plate 22 can move in the horizontal direction along the guide rail 23. Further, a threaded hole can be arranged on the “L” shaped rod, and the connecting plate 22 is installed on the top plate 102 through bolt connection, so as to reduce the probability of falling or sliding of the connecting plate 22.

[0042] In another example, the sensitive switch 24, i.e. a touch switch, is installed on the top plate 102. The sensitive switch 24 can be arranged close to the connecting plate 22. Taking the timing piece 4 as an electronic timer, the sensitive switch 24 can be electrically connected with the electronic timer, and when the sensitive switch 24 is triggered, the sensitive switch 24 starts the electronic timer to time.

[0043] In the above embodiment, the opening and closing of the hopper 5 is controlled by the blocking plate 21, the blocking plate 21 is driven to move by the connecting plate 22, and the sensitive switch 24 is electrically connected with the timing device 4, so that the sensitive switch 24 is triggered when the hopper 5 is opened, and the timing device 4 starts timing at the same time. The worker does not need to perform multiple different steps at the same time, and the timing accuracy is improved.

[0044] In some embodiments of the present application, as shown in Figure 3 and Figure 4 The second measuring assembly 3 includes a floating ball 31 suspended on the surface of the grouting material in the hopper 5, the floating ball 31 is connected with a support rod 32, the outer wall of the hopper 5 is provided with a sliding groove 34, and the support rod 32 slides in the sliding groove 34. The bottom of the hopper 5 is provided with a sensor 35, and the sensor 35 is electrically connected with the timing device 4. When the grouting material flows out of the hopper 5, the support rod 32 triggers the sensor 35.

[0045] For example, the second measuring assembly 3 can be provided in the form of a structure including a floating ball 31. The grouting material is poured into the hopper 5, and the floating ball 31 is suspended on the surface of the grouting material. The diameter of the floating ball 31 is slightly larger than the diameter of the opening of the hopper 5, so that when the grouting material flows out, the floating ball 31 does not fall out of the hopper 5.

[0046] In another example, the support rod 32 is detachably connected to the floating ball 31, for example, by screwing. In this way, the floating ball 31 can be replaced or cleaned. The other end of the support rod 32 is detachably connected to a support block 33, and the outer wall of the hopper 5 is provided with a sliding groove 34 extending in the vertical direction, and the support block 33 can slide in the sliding groove 34. In addition, the position of the sliding groove 34 on the hopper 5 is also provided with an embedding groove, so that the support block 33 can only move in the vertical direction with the support rod 32 and the floating ball 31, and the support block 33 is prevented from being separated from the sliding groove 34 due to the shaking of the floating ball 31.

[0047] In another example, the sensor 35 is provided at a position corresponding to the support block 33 on the hopper 5. Taking an electronic timer as an example of the timing device 4, the sensor 35 can be electrically connected with the electronic timer.

[0048] In the above embodiment, the floating ball 31 is provided, and the floating ball 31 can move with the flow of the grouting material; the support rod 32 and the sliding groove 34 are provided to support the floating ball 31 and facilitate the taking out or putting into the hopper 5 of the floating ball 31; the sensor 35 is provided to transmit a signal to the timing device 4 when the grouting material flows out, so that the timing device 4 starts timing. Manual operation is not required, and the timing accuracy is improved.

[0049] In some embodiments of the present application, as shown in Figure 1 The bottom plate 101 is provided with a balancing member 7 to keep the bottom plate 101 in a horizontal state, and a level detection member 8 is arranged on the bottom plate 101.

[0050] For example, the balancing member 7 can be a balancing knob, which can be arranged at the bottom of the bottom plate 101, and the number of balancing knobs can be three or four, etc., which are arranged uniformly at the edge position of the bottom of the bottom plate 101 in the circumferential direction. The number and installation position of the balancing knob are not limited in the embodiments of the present application, which are set according to the actual situation.

[0051] Alternatively, the balancing member 7 can be a bolt assembly or other parts. When the position is uneven, the bolt is adjusted so that the bottom plate 101 can be kept in a horizontal state, thereby improving the stability of the overall structure.

[0052] In another example, the level detection member 8 can be a level or other parts that can detect the level. The level detection member 8 can be detachably installed on the bottom plate 101 by screw connection or other means; it can also be placed on the bottom plate 101 without affecting normal work.

[0053] In the above embodiments, the balancing member 7 is arranged to adjust the bottom plate 101 and the measuring device to a balanced state, thereby improving the accuracy of the measurement. The level detection member 8 is arranged to detect whether the adjusted bottom plate 101 is in a horizontal state, thereby facilitating the timely adjustment of the staff.

[0054] In some embodiments of the present application, as shown in Figure 1 The top plate 102 is provided with a support frame 9, the support frame 9 is movably connected with a connecting rod 10, and the connecting rod 10 is connected with a point gauge 11 at the end away from the support frame 9.

[0055] For example, the top plate 102 is provided with a support frame 9, and the top plate 102 provides support for the support frame 9. The support frame 9 can be detachably installed on the top plate 102 by bolt connection or other connection means. The support frame 9 is rotatably connected with the connecting rod 10, the connecting rod 10 can swing in the horizontal direction, and the connecting rod 10 is movably connected with the point gauge 11 at the end away from the support frame 9.

[0056] The point gauge 11 can slide in the vertical direction on the connecting rod 10, which can reduce the probability of collision between the point gauge 11 and the edge of the hopper 5 during movement.

[0057] In the above embodiment, the support frame 9 is arranged to support other parts, the connecting rod 10 is arranged to support the point gauge 11 and drive the point gauge 11 to rotate on the support frame 9, and the point gauge 11 is arranged to quantitatively control the addition of the grouting material into the hopper 5, thereby improving the measurement accuracy.

[0058] The use process of the grouting material flowability measuring device provided in the application is described below.

[0059] S100: First, the connecting rod 10 is rotated to drive the point gauge 11 to move, the point gauge 11 is rotated to the center position of the hopper 5 by the connecting rod 10, a certain amount of water is added into the hopper 5, and then the position of the point gauge 11 is adjusted in the vertical direction. After the point gauge 11 is adjusted to the appropriate position, the water in the hopper 5 is discharged, and then a certain amount of grouting material is added into the hopper 5 according to the position of the point gauge 11.

[0060] S200: After the grouting material is added, the support block 33 is inserted into the sliding groove 34, and the floating ball 31 is suspended on the surface of the grouting material; the worker manually controls the connecting plate 22 to move away from the hopper 5, the connecting plate 22 drives the blocking plate 21 to move, the blocking plate 21 opens the opening of the hopper 5, the grouting material in the hopper 5 flows into the collection box 6, the connecting plate 22 moves to trigger the sensitive switch 24, the sensitive switch 24 starts the timing piece 4, and the timing piece 4 records the time when the grouting material starts to flow. The floating ball 31 moves towards the bottom plate 101 as the grouting material flows out, the floating ball 31 drives the support rod 32 to move, the support rod 32 drives the support block 33 to slide in the sliding groove 34, when the grouting material flows out from the hopper 5, the support block 33 touches the sensor 35 to trigger the sensor 35, the sensor 35 transmits a signal to the timing piece 4, the timing piece 4 records the time when the grouting material flows out, and then the initial time is recorded, the time required for the grouting material to flow out from the hopper 5 is recorded, and the flowability of the grouting material is measured.

[0061] It is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting; it is not intended to exclude myriad other embodiments of the present application that other inventors can develop based on the same general inventive concepts embodied by the described embodiments. That is, although the present application is described in terms of particular embodiments and implementations, it is to be understood that the terminology used is for the purpose of descriptive clarity and that it is intended to be limited only by the words recited in the appended claims. The scope of the present application shall be limited only by the claims.

[0062] While the embodiments of the present application have been shown and described with respect to particular embodiments thereof, it will be understood by those skilled in the art that various changes in form and details can be made therein without departing from the spirit and scope of the application. Therefore, the scope of the application should not be limited by the embodiments, but should be defined only in accordance with the following claims and their equivalents.

Claims

1. A press slurry flowability measuring device characterized by, The utility model provides a kind of slurry flowability measuring device, including: Supporting assembly (1), the hopper (5) is installed with supporting assembly (1), and slurry is placed in the hopper (5); First measuring assembly (2), first measuring assembly (2) is arranged on the corresponding position of supporting assembly (1) and the hopper (5), and the slurry is controlled to flow out from the hopper (5) by first measuring assembly (2); Second measuring assembly (3), second measuring assembly (3) is arranged on the corresponding position of the hopper (5) and slurry;When the slurry in the hopper (5) is all flowed out, part structure in second measuring assembly (3) is triggered; Timing piece (4), first measuring assembly (2), second measuring assembly (3) and timing piece (4) are electrically connected to record the time required for the slurry to flow out from the hopper (5) completely, to measure the flowability of slurry.

2. The press slurry flowability measuring device according to claim 1, wherein The supporting assembly (1) includes a bottom plate (101) and a top plate (102), a telescopic rod (103) is arranged between the bottom plate (101) and the top plate (102), the fixed end of the telescopic rod (103) is connected with the bottom plate (101), and the telescopic end of the telescopic rod (103) is connected with the top plate (102); The bottom plate (101) is provided with a collection box (6), and the collection box (6) is used for receiving the slurry flowing out from the hopper (5).

3. The press slurry flowability measuring device according to claim 2, wherein The first measuring assembly (2) includes a blocking plate (21), one end of the hopper (5) close to the bottom plate (101) is provided with an opening, and the slurry flows out through the opening; The blocking plate (21) is arranged at the opening position, and the opening is controlled to open and close by the blocking plate (21); The blocking plate (21) is connected with a connecting plate (22), the connecting plate (22) is slidably connected with the top plate (102); A sensitive switch (24) is installed on the top plate (102), when the connecting plate (22) moves away from the hopper (5), the connecting plate (22) will trigger the sensitive switch (24); The sensitive switch (24) is electrically connected with the timing piece (4).

4. The press slurry flowability measuring device according to claim 2, wherein The second measuring assembly (3) includes a floating ball (31), the floating ball (31) is suspended on the surface of the slurry in the hopper (5), the floating ball (31) is connected with a supporting rod (32), the outer wall of the hopper (5) is provided with a chute (34), and the supporting rod (32) slides in the chute (34); A sensor (35) is installed on the hopper (5) and the corresponding position of the supporting rod (32), the sensor (35) is electrically connected with the timing piece (4), when the slurry flows out from the hopper (5) completely, the supporting rod (32) will trigger the sensor (35).

5. The press slurry flowability measuring device according to claim 2, wherein The bottom plate (101) is provided with a balancing piece (7) to keep the bottom plate (101) in a horizontal state; A horizontal detection piece (8) is arranged on the bottom plate (101).

6. The press slurry flowability measuring device according to claim 2, wherein The top plate (102) is provided with a support frame (9), a connecting rod (10) is movably connected to the support frame (9), and a point gauge (11) is connected to one end of the connecting rod (10) away from the support frame (9).