Bending and pressing resistant conveying device for cement mortar curing
By designing a flexural and compressive-resistant conveying device for cement mortar curing, the problems of large equipment space occupation and difficulty in adjusting the posture of test subjects were solved, realizing efficient transfer and testing of test subjects in a larger curing space, and improving equipment utilization and testing efficiency.
Patent Information
- Application Number
- CN202410075377.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-18
- Publication Date
- 2026-04-24
AI Technical Summary
Existing bending and compression resistance equipment occupies a large space, requires manual handling during transportation, and is difficult to adjust the posture of the test specimens in a large curing space, resulting in low testing efficiency and low equipment utilization.
A pressure-resistant conveying device for cement mortar curing was designed, comprising a curing component, a first conveying component, a second conveying component, and a third conveying component. These components integrate the functions of long-distance transport, attitude adjustment, and testing of test subjects, making it suitable for testing operations in a large curing space.
It enables the transfer and testing of test specimens within a larger curing space, improves the utilization rate of test blocks, reduces the space occupied by equipment, and enhances testing efficiency through automated transfer.
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Figure CN121913253A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of testing machine transmission equipment technology, and in particular to a flexural and compressive strength conveying device for cement mortar curing. Background Technology
[0002] The flexural and compressive strength conveying device for cement mortar curing is a piece of equipment used for curing cement mortar specimens. Its main function is to provide a constant temperature and humidity curing environment and to perform automated flexural and compressive strength tests. This device typically consists of the following main parts: Curing chamber: This is the main part of the equipment, used to simulate the curing environment of the cement mortar specimens. Flexural strength testing device: After a certain curing time, the cement mortar specimens need to undergo flexural strength tests to evaluate their mechanical properties. Compressive strength testing device: Similar to the flexural test, the compressive strength test is also an important means of evaluating the mechanical properties of cement mortar specimens. Conveying device: This device is used to transport the cement mortar specimens from the curing chamber to the flexural and compressive strength testing device for testing. The conveying device usually consists of a conveyor belt or conveyor frame, which can automatically transport the specimens to the designated position. Control device: This device is used to control the operation of the entire equipment. Control devices typically include a microprocessor or controller, which can control the operation of various parts of the equipment according to preset programs or instructions. However, existing flexural and compressive strength testing equipment are separate devices that occupy a large space. Furthermore, when transferring samples from a large curing area to the compressive and flexural strength testing equipment, manual handling would consume a significant amount of manpower, especially in large curing rooms. Even with automatic transfer, the posture of the test specimen needs to be adjusted to accommodate the flexural and compressive strength tests. Direct transfer is not conducive to positioning and adjusting the posture of the test specimen. Summary of the Invention
[0003] (a) Technical problems to be solved
[0004] To address the shortcomings of existing technologies, this invention provides a flexural and compressive strength conveying device for cement mortar curing. This device is capable of transporting test blocks over long distances, is suitable for transporting test specimens in a large curing space, and allows for flexural and compressive strength tests to be conducted in a relatively compact space. This improves the utilization rate of test blocks and reduces the space occupied by the equipment.
[0005] (II) Technical Solution
[0006] To achieve the above objectives, the present invention provides the following technical solution: a cement mortar curing flexural and compressive strength conveying device, comprising a curing component for curing test specimens, a first transmission component for conveying test specimens, a second transmission component for transferring test specimens, a third transmission component capable of adjusting the position of the test specimens, and a test component for performing flexural and compressive strength tests on the test specimens. The first transmission component is used for conveying between the curing component and the second transmission component. The second transmission component is capable of rotating and laterally moving the test specimens. The third transmission component is capable of conveying the test specimens between the second transmission component and the test component. The test component has the function of performing flexural and compressive strength tests on the test specimens. The test component is provided with several test positions. The third transmission component is capable of conveying test blocks between different test positions of the test component.
[0007] Preferably, the first transmission component includes a second guide rail, a lift, and a telescopic component. The lift is driven to move on the second guide rail, and the telescopic component is installed on the lift.
[0008] Preferably, the second transmission component includes a fixed base, a first rotary drive unit, a first linear module, and an adapter box. The first rotary drive unit is mounted on the fixed base, the first linear module is mounted on the output end of the first rotary drive unit, and the adapter box is mounted on the output end of the first linear module.
[0009] Preferably, the transmission component three includes a robotic arm, a clamping part, a brush, and a clamping plate. The clamping part and the brush are installed at the output end of the robotic arm, and clamping plates are installed at the two output ends of the clamping part.
[0010] Preferably, the test assembly includes a support frame, a first pressing assembly, a second pressing assembly, a second linear module, and a positioning plate. Several first pressing assemblies and several second pressing assemblies are mounted on the support frame. The second pressing assemblies are mounted on both sides of the first pressing assembly. The second linear module is mounted at the pressing point of the first pressing assembly. The second linear module is used to transport the test body. The output end of the second linear module is equipped with a positioning plate. The second linear module has the function of supporting the stamped test body under pressure.
[0011] Preferably, the pressing assembly includes a telescopic drive unit, a pressure head, a pressure sensor, and a pressure rod. The telescopic drive unit is mounted on the support frame, and a pressure sensor is mounted on the output end of the telescopic drive unit. A pressure head is mounted on the pressure sensor, and the pressure rod is mounted on the pressure head.
[0012] Preferably, the second pressing component includes a second telescopic drive unit, a second pressure sensor, a pressure plate, a support body, and a protrusion. The second telescopic drive unit is mounted on the support frame. The second pressure sensor is mounted on the output end of the second telescopic drive unit. The pressure plate is mounted on the second pressure sensor. The protrusion is disposed on the support frame. The protrusion and the pressure plate are disposed opposite to each other. The support body is disposed at the end of the protrusion facing the pressure plate.
[0013] Preferably, the test assembly further includes a protective plate, a guide plate one, a guide plate two, and a stop block. The protective plate is installed at the protrusion, and protrusions are provided on both sides of the protective plate. The guide plate one and the guide plate two are respectively installed at both ends of the protective plate.
[0014] Preferably, the test assembly further includes an aluminum profile frame, and the aluminum profile frame is mounted on the support frame.
[0015] Preferably, the telescopic assembly includes a guide rail, a support wheel, a slider, a support plate, and a rotary drive unit. Several guide rails are installed at the output end of the elevator, and a slider is slidably connected to each guide rail. The slider is connected to the support plate, and the support wheel is rotatably connected to the elevator. The rotary drive unit is installed on the elevator, and the output end of the rotary drive unit is connected to the support plate via a transmission belt. The support wheel is used to support the transmission belt connecting the rotary drive unit and the support plate.
[0016] (III) Beneficial Effects
[0017] Compared with the prior art, the present invention provides a flexurally resistant conveying device for cement mortar curing, which has the following beneficial effects:
[0018] This cement mortar curing flexural and compressive strength conveying device uses a curing component to hold the test specimens for regular curing. Through the arrangement of three conveyor components, the test specimens can be transported over a large area. After curing, the test specimens are transferred from conveyor component one to conveyor component two, where they are held and can be left stationary to facilitate the movement of each specimen to the test assembly by conveyor component three. Conveyor component two makes it easier for conveyor component three to grasp and move the test specimens, and is suitable for transporting them to appropriate locations. The test assembly is equipped with different functional areas for flexural and compressive strength tests. After the flexural test, the test specimens are transferred to the compressive strength test area via conveyor component three, allowing for both tests to be conducted in a relatively compact space. After the flexural test, the test specimen is split into two pieces, and the remaining material is then subjected to a compressive strength test, improving the utilization rate of the test blocks. Furthermore, the integrated design reduces the space occupied by the equipment. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the structure of the present invention;
[0020] Figure 2 For the present invention Figure 1 A magnified schematic diagram of the local structure at point A;
[0021] Figure 3 For the present invention Figure 1 A magnified view of the structure at point B in the middle;
[0022] Figure 4 For the present invention Figure 1 A magnified schematic diagram of the structure at point C in the middle;
[0023] Figure 5 For the present invention Figure 1 A magnified schematic diagram of the local structure at point D;
[0024] Figure 6 This is a schematic diagram of the main structure of the present invention;
[0025] Figure 7 For the present invention Figure 6 A magnified schematic diagram of the local structure at point E;
[0026] Figure 8 This is a three-dimensional structural diagram of the present invention;
[0027] Figure 9 For the present invention Figure 8 A magnified schematic diagram of the local structure at point F;
[0028] Figure 10 This is a schematic diagram of the structure of the experimental component in this invention;
[0029] Figure 11 This is a three-dimensional structural diagram of the experimental component in this invention.
[0030] Reference numerals: 1. Maintenance bracket; 2. Maintenance water tank; 3. Guide rail two; 4. Lifting platform; 5. Guide rail one; 6. Support wheel; 7. Slider; 8. Support plate; 9. Rotary drive unit two; 10. Fixed seat; 11. Rotary drive unit one; 12. Linear module one; 13. Adapter box; 14. Robotic arm; 15. Support frame; 16. Telescopic drive unit one; 17. Pressure head; 18. Pressure sensor one; 19. Pressure rod; 20. Linear module two; 21. Positioning plate; 22. Telescopic drive unit two; 23. Pressure sensor two; 24. Pressure plate; 25. Support body; 26. Protrusion; 27. Protective plate; 28. Guide plate one; 29. Guide plate two; 30. Aluminum profile frame; 31. Clamping part; 32. Brush; 33. Clamping plate; 34. Stop block. Detailed Implementation
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0032] Example:
[0033] Please see Figure 1-11A cement mortar curing and flexural / compression-resistant conveying device includes a curing component for curing test specimens, a first conveying component for transporting test specimens, a second conveying component for transferring test specimens, a third conveying component capable of adjusting the position of the test specimens, and a test component for performing flexural / compression tests on the test specimens. The first conveying component is used to transport specimens between the curing component and the second conveying component. The second conveying component is capable of rotating and laterally moving the test specimens. The third conveying component is capable of transporting test specimens between the second conveying component and the test component. The test component has the function of performing flexural and compressive tests on the test specimens. Several test positions are provided on the test component. The third conveying component is capable of transporting test blocks between different test positions on the test component. The test specimens are cement mortar blocks used for testing. The curing component holds the test specimens for curing, allowing for periodic curing of the test specimens. The device is connected via the first conveying component and the second conveying component. The setup of the second and third transmission components allows for the transfer of test specimens over a wider range. After curing, the test specimens are transferred from the first to the second transmission component, where they are held and can be left stationary. This facilitates the third transmission component's movement of the specimens one by one to the test assembly. The second transmission component makes it easier for the third transmission component to grasp and move the test specimens, and it is suitable for transferring the specimens to more appropriate locations. The test assembly is equipped with different functional areas for flexural and compressive testing. After the flexural test, the test specimens are transferred to the compressive testing area via the third transmission component, allowing for both tests to be conducted in a more compact space. After the flexural test, the test specimen is split into two pieces, and the tested material is then subjected to a compressive test, improving the utilization rate of the test blocks. Furthermore, the integrated design reduces the space occupied by the equipment.
[0034] Reference Figure 1 The transmission component includes a guide rail 2 3, a lifting platform 4, and a telescopic component. The lifting platform 4 is driven to move on the guide rail 2 3. The telescopic component is installed on the lifting platform 4. A rack is provided on the guide rail 2 3. A servo motor is installed on the lifting platform 4. The output end of the servo motor on the lifting platform 4 is equipped with a gear that matches the guide rail 2 3. In use, the lifting platform 4 drives the gear on the lifting platform 4 to move at the rack on the guide rail 2 3, thereby effectively adjusting the position of the lifting platform 4. The lifting platform 4 is an outsourced component or a lifting structure developed by our company. It has the function of adjusting the position of the support plate 8 by a servo motor and a lead screw that drives the support plate 8 to rise and fall. The lifting platform 4 is supported by the guide rail 2 3. The motor on the lifting platform 4 drives the gear on the lifting platform 4 to rotate. The gear on the lifting platform 4 and the rack on the guide rail 2 3 cooperate to effectively drive the lifting platform 4 to move laterally. Rollers are provided on the lifting platform 4 to roll on the guide rail 2 3, thereby providing a better relative movement structure between the lifting platform 4 and the guide rail 2 3.
[0035] Reference Figure 1The transmission component 2 includes a fixed base 10, a rotary drive unit 11, a linear module 12, and an adapter box 13. The rotary drive unit 11 is mounted on the fixed base 10. The linear module 12 is mounted on the output end of the rotary drive unit 11, and the adapter box 13 is mounted on the output end of the linear module 12. The rotary drive unit 11 is preferably a type with a servo motor and a reducer. The rotary drive unit 11 drives the linear module 12 to rotate, and the test block is transmitted to the adapter box 13 through the adapter box 13 on the linear module 12. The rotary drive unit 11 and the linear module 12 jointly adjust the position of the adapter box 13 and the cement block, thereby making it easier to adjust the test body to adapt to the transmission component 3 to transmit the test body in a more suitable position.
[0036] Reference Figure 1 , 6 In component 7, the transmission assembly includes a robotic arm 14, a clamping part 31, a brush 32, and a clamping plate 33. The clamping part 31 and the brush 32 are installed at the output end of the robotic arm 14. The clamping plate 33 is installed at both output ends of the clamping part 31. The robotic arm 14 is an outsourced component and is a common robotic arm device, preferably a six-axis robotic arm. The clamping part 31 is one of a cylinder, a hydraulic cylinder, or an electric cylinder, preferably a centering clamping cylinder. The robotic arm 14 provides greater freedom of transmission, which is more conducive to transferring the test subject to... The test body can be transferred at different positions, heights, and postures. A clamping part 31 and a clamping plate 33 are installed at the output end of the robotic arm 14. The clamping part 31 drives the clamping plate 33 to clamp the test body, thereby effectively clamping and transferring the test body. When transferring the test body, the robotic arm 14 drives the brush 32 to clean the machine body that can be reached, thereby making it easier to clean the machine body and ensuring the overall cleanliness. The brush 32 can also push the test block to facilitate the disassembly and assembly of the test block.
[0037] Reference Figure 3The test assembly includes a support frame 15, a first pressing assembly, a second pressing assembly, a second linear module 20, and a positioning plate 21. Several first pressing assemblies and several second pressing assemblies are mounted on the support frame 15. The second pressing assemblies are mounted on both sides of the first pressing assembly. The second linear module 20 is mounted at the pressing point of the first pressing assembly. The second linear module 20 is used to transport the test specimen. The output end of the second linear module 20 is equipped with the positioning plate 21. The second linear module 20 has the function of supporting the stamped test specimen under pressure. The second linear module 20 is a linear module with heavy-duty roller guides. The module type has an internal transmission component that drives the output end to move. The transmission component can be a motor with a lead screw and nut, or a motor driving a synchronous belt for transmission. The support frame 15 supports the first and second pressing components, so that bending and compression tests can be carried out in two different areas. The linear module 20 can be set to transfer the test body to the pressing point of the first pressing component. The linear module 20 supports the test body and conveys the test body raw material and the stamped material at the pressing point of the first pressing component and the transmission point, so as to facilitate the movement of the transmission point.
[0038] Reference Figure 1 and 2 The pressing assembly includes a telescopic drive unit 16, a pressure head 17, a pressure sensor 18, and a pressure rod 19. The telescopic drive unit 16 is mounted on the support frame 15. The pressure sensor 18 is installed at the output end of the telescopic drive unit 16. The pressure head 17 is installed on the pressure sensor 18, and the pressure rod 19 is installed on the pressure head 17. The telescopic drive unit 16 is selected from hydraulic cylinders, pneumatic cylinders, and electric cylinders, preferably electric cylinders. The pressure sensor 18 is connected to the overall controller. The controller is a device such as a PLC or computer that can process electrical signals and convert them into data, and has AD conversion function. The telescopic drive unit 16 in the pressing assembly drives the pressure sensor 18, the pressure head 17, and the pressure rod 19 to descend, thereby driving the pressure rod 19 to apply pressure to the test object. The pressure sensor 18 detects the pressure signal and transmits it to the controller. The controller detects and processes the signal generated by the pressure sensor 18, further facilitating the detection of the test block's resistance to bending and compression.
[0039] Reference Figure 1 and 4The second pressing component includes a telescopic drive unit 22, a pressure sensor 23, a pressure plate 24, a support body 25, and a protrusion 26. The telescopic drive unit 22 is mounted on the support frame 15. The pressure sensor 23 is installed at the output end of the telescopic drive unit 22. The pressure plate 24 is installed on the pressure sensor 23. The protrusion 26 is set on the support frame 15, and the protrusion 26 and the pressure plate 24 are arranged opposite to each other. The support body 25 is set at the end of the protrusion 26 facing the pressure plate 24. The telescopic drive unit 22 can be a hydraulic cylinder, a pneumatic cylinder, or an electric cylinder. The support body 25 can be a support block for supporting the test block, or the support body 25 can be a pressure sensor type, making it suitable for pressure detection at the support. The telescopic drive unit 22 drives the pressure sensor 23 and the pressure plate 24 to descend, applying pressure to the test block, effectively supporting the test block's flexural strength. The protrusion 26 increases the height of the support, reducing the influence of external objects on the support of the test block.
[0040] Reference Figure 1 The test assembly also includes a protective plate 27, a guide plate 28, a guide plate 29, and a stop block 34. The protective plate 27 is installed at the protrusion 26, and protrusions are provided on both sides of the protective plate 27. The guide plate 28 and the guide plate 29 are respectively installed at both ends of the protective plate 27. The guide plate 29 is inclined. The protective plate 27 protects the pressure point, and the stop block 34 supports and restricts the position of the test body. In use, the robotic arm 14 or the linear module 20 moves the test body to the stop block 34 to straighten the posture of the test body. It can effectively position the test body before and after bending and pressing, and facilitate the adjustment of the posture of the test body.
[0041] Reference Figure 1 The test assembly also includes an aluminum profile frame 30, which is mounted on the support frame 15. The aluminum profile frame 30 can be used to install a shield to protect the test assembly, or other components for support and sensing can be installed on the aluminum profile frame 30 to adapt to more application scenarios.
[0042] Reference Figure 1 and 5The telescopic assembly includes guide rail 1 5, support wheel 6, slider 7, support plate 8, and rotary drive unit 2 9. Several guide rails 1 5 are installed at the output end of the elevator 4. Each guide rail 1 5 is slidably connected to a slider 7, which is connected to the support plate 8. The support wheel 6 is rotatably connected to the elevator 4. Rotary drive unit 2 9 is installed on the elevator 4. The output end of rotary drive unit 2 9 is connected to the support plate 8 via a transmission belt. The support wheel 6 is used to support the transmission belt connecting rotary drive unit 2 9 and support plate 8. The transmission belt is either a synchronous belt or a chain. The output end of rotary drive unit 2 9 is equipped with a synchronous pulley or sprocket that matches the transmission belt. Rotary drive unit 2 9 is a servo motor, which may be equipped with a reducer. Rotation of rotary drive unit 2 9 causes the transmission belt to move, and the support wheel 6 supports the edge, reducing wear on the transmission belt. Through this transmission method, the support plate 8 can be effectively moved on the guide rail 1 5, and the slider 7 and support plate 8 are effectively guided by their cooperation.
[0043] During use, the test specimen is placed inside the curing water tank 2 for curing. After curing for a certain period of time, it is moved on the guide rail 2 3 by the lifting machine 4. The lifting machine 4 drives the support plate 8 to move to the corresponding height. The rotating drive unit 2 9 drives the support plate 8 to move to the corresponding height. Components for forking or clamping the curing water tank 2 are installed on the support plate 8, thereby driving the curing water tank 2 to move.
[0044] It should be noted that the terms "one embodiment," "embodiment," "exemplary embodiment," "some embodiments," etc., mentioned in the specification indicate that the described embodiment may include a specific feature, structure, or characteristic, but not every embodiment necessarily includes that specific feature, structure, or characteristic. Furthermore, such phrases do not necessarily refer to the same embodiment. Moreover, when a specific feature, structure, or characteristic is described in connection with an embodiment, implementing such a feature, structure, or characteristic in conjunction with other embodiments, whether explicitly described or not, is within the knowledge scope of those skilled in the art.
[0045] It should be readily understood that the terms “on,” “above,” and “on top of” in this disclosure should be interpreted in the broadest possible sense, such that “on” means not only “directly on something” but also “on something” with an intermediate feature or layer therebetween, and that “above” or “on top of” means not only “on top of something” but also “on top of something” without an intermediate feature or layer therebetween (i.e., directly on something).
[0046] Furthermore, for ease of explanation, spatially relative terms such as "below," "below," "under," "above," and "above" may be used to describe the relationship of one element or feature relative to other elements or features as shown in the figures. Spatially relative terms are intended to encompass different orientations of the device in use or operation other than those shown in the figures. The device may have other orientations (rotated 90 degrees or in other orientations), and the spatially relative descriptive terms used herein may be interpreted accordingly.
[0047] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0048] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A flexurally and compressively resistant conveying device for cement mortar curing, comprising, characterized in that: It includes a curing component for curing test specimens, a first transmission component for transporting test specimens, a second transmission component for transferring test specimens, a third transmission component for adjusting the position of test specimens, and a test component for performing flexural and compressive tests on test specimens. The first transmission component is used to transfer between the curing component and the second transmission component. The second transmission component can rotate and move the test specimen laterally. The third transmission component can transfer the test specimen between the second transmission component and the test component. The test component has the function of performing flexural and compressive tests on test specimens. The test component is provided with several test positions. The third transmission component can transfer test blocks between different test positions of the test component.
2. The anti-bending and pressure conveying device for cement mortar curing according to claim 1, characterized in that: The transmission component includes a second guide rail (3), a lift (4), and a telescopic component. The lift (4) is driven to move on the second guide rail (3), and the telescopic component is installed on the lift (4).
3. The anti-bending and pressure conveying device for cement mortar curing according to claim 1, characterized in that: The second transmission component includes a fixed base (10), a first rotary drive unit (11), a first linear module (12), and an adapter box (13). The first rotary drive unit (11) is mounted on the fixed base (10), the first linear module (12) is mounted on the output end of the first rotary drive unit (11), and the adapter box (13) is mounted on the output end of the first linear module (12).
4. The anti-bending and pressure conveying device for cement mortar curing according to claim 1, characterized in that: The transmission assembly includes a robotic arm (14), a clamping part (31), a brush (32), and a clamping plate (33). The clamping part (31) and the brush (32) are installed at the output end of the robotic arm (14), and the clamping plate (33) is installed at the two output ends of the clamping part (31).
5. The anti-bending and pressure conveying device for cement mortar curing according to claim 1, characterized in that: The test assembly includes a support frame (15), a pressing assembly one, a pressing assembly two, a linear module two (20), and a positioning plate (21). Several pressing assemblies one and several pressing assemblies two are installed on the support frame (15). The pressing assembly two is installed on both sides of the pressing assembly one. The linear module two (20) is installed at the pressing position of the pressing assembly one. The linear module two (20) is used to transmit the test body. The output end of the linear module two (20) is equipped with a positioning plate (21). The linear module two (20) has the function of supporting the stamping test body under pressure.
6. The anti-bending and compressive conveying device for cement mortar curing according to claim 5, characterized in that: The pressing assembly includes a telescopic drive unit (16), a pressure head (17), a pressure sensor (18), and a pressure rod (19). The telescopic drive unit (16) is mounted on the support frame (15). The pressure sensor (18) is mounted on the output end of the telescopic drive unit (16). The pressure head (17) is mounted on the pressure sensor (18), and the pressure rod (19) is mounted on the pressure head (17).
7. The anti-bending and compressive conveying device for cement mortar curing according to claim 5, characterized in that: The second pressing component includes a second telescopic drive unit (22), a second pressure sensor (23), a pressure plate (24), a support body (25), and a protrusion (26). The second telescopic drive unit (22) is mounted on the support frame (15). The output end of the second telescopic drive unit (22) is equipped with the second pressure sensor (23). The pressure sensor (24) is mounted on the second pressure sensor (23). The protrusion (26) is set on the support frame (15). The protrusion (26) and the pressure plate (24) are arranged opposite to each other. The support body (25) is set at the end of the protrusion (26) facing the pressure plate (24).
8. The anti-bending and compressive conveying device for cement mortar curing according to claim 7, characterized in that: The test assembly also includes a protective plate (27), a guide plate one (28), a guide plate two (29), and a stop block (34). The protective plate (27) is installed at the protrusion (26), and protrusions are provided on both sides of the protective plate (27). The two ends of the protective plate (27) are respectively equipped with guide plate one (28) and guide plate two (29).
9. The anti-bending and compressive conveying device for cement mortar curing according to claim 5, characterized in that: The test assembly also includes an aluminum profile frame (30), which is mounted on the support frame (15).
10. A cement mortar curing anti-bending and compression conveying device according to claim 2, characterized in that: The telescopic assembly includes a guide rail (5), a support wheel (6), a slider (7), a support plate (8), and a rotary drive unit (9). Several guide rails (5) are installed at the output end of the elevator (4). Each guide rail (5) is slidably connected to a slider (7). The slider (7) is connected to the support plate (8). The support wheel (6) is rotatably connected to the elevator (4). The rotary drive unit (9) is installed on the elevator (4). The output end of the rotary drive unit (9) is connected to the support plate (8) via a transmission belt. The support wheel (6) is used to support the transmission belt connecting the rotary drive unit (9) and the support plate (8).