Deformation resistance detection device for special equipment
By designing an anti-deformation detection device for special equipment with integrated multi-mode detection functions, the problems of limited detection range, high cost and low efficiency in the existing technology are solved, and efficient and multi-functional detection effects are achieved, and the device has environmental simulation capabilities.
Patent Information
- Application Number
- CN202510903165.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-01
- Publication Date
- 2025-09-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing anti-deformation detection devices for special equipment have problems such as limited detection range, high cost, low efficiency, and uncontrollable detection environment.
An anti-deformation detection device for special equipment is designed, which includes components such as a box, a guide gantry, a truss, a turntable, a servo motor, a pressure sensor and a high-speed camera. Through the integration of multi-mode detection functions, multi-directional detection of special equipment can be achieved.
The device can realize multiple detection modes in one device, reducing detection costs and improving detection efficiency. Moreover, through the temperature control function, it can simulate detection requirements under different environmental conditions.
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Figure CN120668468A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of detection device status, in particular to an anti-deformation detection device for special equipment. Background Art
[0002] The anti-deformation detection device for special equipment is a safety detection device that simulates or monitors the stress state of the equipment under service conditions in real time, quantifies its deformation and determines whether it exceeds the allowable limit. It is a device that simulates or monitors the stress state of the equipment under service conditions in real time, quantifies its deformation and determines whether it exceeds the allowable deformation limit.
[0003] Most of the existing anti-deformation detection devices for special equipment can only perform a single anti-deformation test on the material. The use environment of special equipment is relatively complex, and multiple devices are required to perform detection in different directions. The use cost is high and the efficiency is low. When performing material testing, most of the materials need to be cut into predetermined sizes, and the operation steps are complicated. In addition, most of the existing anti-deformation detection devices are open devices, which cannot control the temperature and are not easy to test the material at a specific temperature. There are certain limitations. Summary of the Invention
[0004] The object of the present invention is to provide an anti-deformation detection device for special equipment to solve the problems raised in the above background technology.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an anti-deformation detection device for special equipment, comprising a box body, a base is provided at the bottom end of the box body, guide gantries are provided at the top ends of the bases on both sides of the box body, a truss is movably connected to the guide gantries, a rear extension frame is provided at the rear end of the truss, a rotating shaft is provided at the bottom of the rear extension frame, the bottom of the rotating shaft extends to the inside of the box body, a turntable is provided at the extended end of the rotating shaft, a lower pressure plate is provided at the edge of one side of the bottom end of the turntable, a servo motor is provided at the edge of the other side of the bottom end of the turntable, and the servo A torque sensor is provided at the output end of the servo motor, and a positioning piece is provided at the bottom end of the servo motor. The bottom of the positioning piece is slidably connected to two clamping blocks, and a conical pressing piece is provided at the rear edge of the bottom end of the turntable. A bearing platform is provided inside the box below the turntable, and four first pressure sensors are provided at the top of the bearing platform. The tops of the four first pressure sensors are commonly connected to a protective shell, and the top of the protective shell is slidably connected to two sliding blocks. The tops of the two sliding blocks are respectively detachably mounted with wedge blocks, and the tops of the two wedge blocks are commonly connected to a tray.
[0006] Preferably, the front end of the box is hingedly installed with a glass door, which is made of explosion-proof glass and can seal the front end of the box to prevent material debris from splashing out during inspection. Two guide rails are provided inside the box near the position of the supporting platform. The guide rails are 310S stainless steel electric slide rails, which are heat-resistant and high-temperature resistant. High-speed cameras are detachably installed at the opposite ends of the two guide rails. The guide rails can drive the high-speed camera to perform vertical linear movement, which is convenient for collecting images when the material is deformed and fractured during the inspection process. Copper tubes are provided inside both sides of the box, and resistance wires are provided inside the box at the front ends of the two copper tubes. The bottom ends of the two copper tubes are jointly connected to a low-temperature circulation box. The low-temperature circulation box is used in conjunction with the copper tube to make low-temperature liquid flow in the copper tube, which can cool the inside of the box. Battery assemblies are provided at the bottom ends of the two resistance wires. The battery assemblies can transmit electricity to the resistance wire, so that the resistance wire generates heat, and the temperature inside the box increases. A temperature sensor is provided inside the box to detect the temperature inside the box.
[0007] Preferably, extension tubes are provided on both sides of the top of the two sliding blocks, and two auxiliary positioning blocks are provided on the top of the sliding block. A spring is commonly connected between the outer side of the bottom of the two auxiliary positioning blocks and the inner wall of the extension tube. When performing pressure deformation resistance test on plate-like materials, the two ends of the plate-like material are placed on the top of the two sliding blocks, and the two auxiliary positioning blocks slide inside the sliding blocks and the extension tube. The spring applies a centripetal force to clamp the two sides of the material to prevent the material from displacement.
[0008] Preferably, an organism is provided at the top of the box near the guide gantry, a signal processing module is integrated inside the organism, and a display screen is provided at the front end of the organism. The signal processing module receives data information from various sensors and high-speed cameras, processes the information into digital information and displays it on the display screen, which is a commonly used technology in anti-deformation detection devices.
[0009] Preferably, two protrusions are provided on the outer sides of the two sliding blocks, and two slots are provided on the opposite ends of the bottom of the two wedge blocks, which match the slots and the protrusions. The outer sides of the bottoms of the two sliding blocks are provided with protrusions. When the wedge block is installed on the top of the sliding block, the protrusions on the outer sides of the bottom of the sliding block limit the wedge block, so that the wedge block cannot move downward, and the slots and the protrusions prevent the wedge block from moving laterally.
[0010] Preferably, the bottoms of the two sliding blocks extend to the interior of the protective shell, the extended ends of the two sliding blocks are commonly connected to the first bidirectional screw rod, the tops of the two clamping blocks extend to the interior of the positioning member, the extended ends of the two clamping blocks are commonly connected to the second bidirectional screw rod, and one end of the first bidirectional screw rod and the second bidirectional screw rod are both equipped with a driving machine. When the first bidirectional screw rod rotates, it drives the two sliding blocks to perform relative linear motion, which can clamp the bottom end of the plate. When the second bidirectional screw rod rotates, it drives the two clamping blocks to perform relative linear motion, which can clamp the top end of the plate.
[0011] Preferably, a second thermal insulation shell is provided at the bottom of the turntable outside the servo motor, and a first thermal insulation shell is detachably installed on one side of the second thermal insulation shell. The first thermal insulation shell and the second thermal insulation shell are used together to wrap the servo motor to prevent high temperature from affecting the servo motor during testing.
[0012] Preferably, a second pressure sensor is provided at the middle position of the bottom end of the lower pressure plate. When the lower pressure plate is pressed downward, the second pressure sensor can record the pressure value generated by the downward pressure.
[0013] Preferably, a rear extension frame is extended from the top of the rotating shaft, and a stepper motor is installed at the extended end of the rotating shaft. The stepper motor is installed at the top of the rear extension frame. The lower pressure plate, conical lower pressure piece and servo motor are arranged at equal intervals along the circumference of the bottom end of the turntable. When a reducer is provided inside the stepper motor, the stepper motor drives the rotation to rotate one hundred and twenty degrees, so that different detection structures are located directly above the two sliding blocks.
[0014] Compared with the prior art, the present invention has the following beneficial effects:
[0015] 1. This anti-deformation detection device for special equipment is arranged by arranging a lower pressure plate, a conical lower pressure piece and a servo motor at equal intervals along the circumference of the bottom end of the turntable, and is used in conjunction with two sliding blocks provided inside the box. When performing anti-deformation detection for special equipment, the lower pressure plate and the tray on which the sliding blocks are detachably mounted are used in conjunction with each other to perform a uniform compression test, and the conical lower pressure piece is used in conjunction with the two sliding blocks to perform a three-point bending test. Two clamping blocks are provided at the bottom end of the servo motor, which are used in conjunction with the sliding blocks to perform torsional anti-deformation detection of materials. The integration of multi-mode detection functions makes the detection range of the anti-deformation detection device for special equipment wider, and multiple detection effects can be achieved without the use of multiple devices in conjunction, thereby reducing costs.
[0016] 2. This anti-deformation detection device for special equipment has two wedge blocks installed by plugging on the top of the slider. A tray is provided on the top of the wedge block, which does not require screws for fixing. The installation and disassembly operations are simpler and more efficient. At the same time, the slider can perform relative linear motion, which is convenient for supporting materials of different lengths inside the box. The anti-deformation detection device for special equipment is convenient for detecting equipment of different sizes, without the need to cut the material into predetermined specifications, thereby improving detection efficiency.
[0017] 3. This anti-deformation detection device for special equipment wraps the detection area in a box. At the same time, the box can be heated and cooled through copper tubes and resistance wires. When conducting material testing, the testing environment can be adjusted, so that the anti-deformation detection device for special equipment can detect the deformation behavior of materials in a variable temperature environment, which is convenient for specific testing of materials in different usage environments. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0019] Figure 2 This is a schematic diagram of the internal structure of the box of the present invention;
[0020] Figure 3 It is a partial cross-sectional schematic diagram of the box structure of the present invention;
[0021] Figure 4 It is a partial cross-sectional schematic diagram of the protective shell structure of the present invention;
[0022] Figure 5 It is a schematic diagram of the turntable structure of the present invention;
[0023] Figure 6 It is a partial cross-sectional schematic diagram of the sliding block structure of the present invention.
[0024] In the figure: 1. Box body; 2. Guide gantry; 3. Truss; 4. Extension frame; 5. Stepper motor; 6. Machine body; 7. Base; 8. Glass door; 9. Rotating shaft; 10. Turntable; 11. Carrying platform; 12. High-speed camera; 13. Guide rail; 14. Copper tube; 15. Low-temperature circulation box; 16. Battery assembly; 17. Resistance wire; 18. First pressure sensor; 19. Protective shell; 20. Sliding block; 21. Bump; 22. First bidirectional screw rod; 23. Slot; 24. Wedge block; 25. Tray; 26. Lower pressure plate; 27. Second pressure sensor; 28. Conical lower pressure piece; 29. Torque sensor; 30. Clamp; 31. Positioning piece; 32. Second bidirectional screw rod; 33. First thermal insulation shell; 34. Servo motor; 35. Second thermal insulation shell; 36. Auxiliary positioning block; 37. Spring; 38. Extension tube. DETAILED DESCRIPTION
[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0026] In the description of the present invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," "the other end," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limiting the present invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0027] like Figures 1 to 6As shown, the anti-deformation detection device for special equipment in this embodiment includes a box body 1, a base 7 is provided at the bottom end of the box body 1, and the base 7 is used to support the parts on the top to make the device more stable. Guide gantry frames 2 are provided on the top of the bases 7 on both sides of the box body 1. The internal movability of the guide gantry frames 2 is connected with a truss 3. The two sides of the truss 3 are connected to the guide gantry frames 2 through hydraulic rods, so that the truss 3 can perform vertical linear movement, which is a common technology in anti-deformation detection devices. A rear extension frame 4 is provided at the rear end of the truss 3, and a rotating shaft 9 is provided at the bottom of the rear extension frame 4. The rotating shaft 9 can perform rotational movement, and the bottom of the rotating shaft 9 extends to the inside of the box body 1. A turntable 10 is provided at the extended end of the rotating shaft 9, and a lower pressure plate 26 is provided at the edge of one side of the bottom end of the turntable 10. A servo motor 34 is provided at the edge of the other side of the bottom end of the disk 10, and a torque sensor 29 is provided at the output end of the servo motor 34. The torque sensor 29 can detect the rotation angle of the output end of the servo motor 34. A positioning member 31 is provided at the bottom end of the servo motor 34. The bottom of the positioning member 31 is slidably connected to two clamping blocks 30. The two clamping blocks 30 can perform relative linear operation, and can clamp the top of the vertically placed sample to be tested and twist it through the servo motor 34. A conical pressing member 28 is provided at the rear edge of the bottom end of the turntable 10. When the bottom end of the conical pressing member 28 is lowered, pressure can be applied to the top of the sample to be tested. The pressing plate 26, the conical pressing member 28 and the servo motor 34 are equidistant along the circumference of the bottom end of the turntable 10. The rotating shaft 9 is arranged at a distance from each other. When the rotating shaft 9 rotates, it can drive the corresponding mechanism to rotate to a predetermined position. A bearing platform 11 is provided inside the box 1 below the turntable 10. Four first pressure sensors 18 are provided on the top of the bearing platform. The tops of the four first pressure sensors 18 are commonly connected to a protective shell 19. The top of the protective shell 19 is slidably connected to two sliding blocks 20. The two sliding blocks 20 can perform relative linear motion. If the sample to be tested needs to be tested for torsional deformation resistance, the sample is placed vertically between the two sliding blocks 20. The bottom of the sample is clamped by the two sliding blocks 20, and the top of the sample is clamped by two clamping blocks 30. The sample is twisted by the servo motor 34 for testing. If the sample needs to be tested for three-point bending test, When measuring the bending strength of the sample, first move the two sliding blocks 20 to place the two ends of the sample on the top of the sliding blocks 20 respectively, and then apply downward pressure to the sample through the conical pressing piece 28 until the sample bends or breaks. The tops of the two sliding blocks 20 are detachably installed with wedge blocks 24, and the tops of the two wedge blocks 24 are commonly connected to the tray 25. When the sample needs to be evenly compressed, first adjust the two sliding blocks 20 to positions that match the two wedge blocks 24, place the wedge blocks 24 on the top of the sliding blocks 20, and then place the sample in the middle position of the top of the tray 25. Apply downward pressure through the lower pressing plate 26 to compress the sample as a whole, and observe the axial compression deformation state of the sample to achieve the detection effect.
[0028] Specifically, the front end of the box body 1 is hingedly installed with a glass door 8, which is made of explosion-proof glass. It can seal the front end of the box body 1 to prevent material debris from splashing out during testing. Two guide rails 13 are provided inside the box body 1 near the position of the carrier platform 11. The guide rails 13 are 310S stainless steel electric slide rails, which are heat-resistant and high-temperature resistant. High-speed cameras 12 are detachably installed at the opposite ends of the two guide rails 13. The guide rails 13 can drive the high-speed camera 12 to perform vertical linear motion, which is convenient for collecting images of materials when they are deformed and broken during the testing process. Copper tube 14, the front end of the two copper tubes 14 is provided with a resistance wire 17 inside the box 1, the bottom ends of the two copper tubes 14 are connected to a low-temperature circulation box 15, the low-temperature circulation box 15 is used in conjunction with the copper tube 14 to allow low-temperature liquid to flow in the copper tube 14, which can cool the inside of the box 1, and the bottom ends of the two resistance wires 17 are provided with a battery assembly 16, which can transmit electricity to the resistance wire 17, so that the resistance wire 17 generates heat, and the temperature inside the box 1 increases, and a temperature sensor is provided inside the box 1 to detect the temperature inside the box 1.
[0029] Furthermore, extension tubes 38 are provided on both sides of the top of the two sliding blocks 20, and two auxiliary positioning blocks 36 are provided on the top of the sliding block 20. A spring 37 is commonly connected between the bottom outer side of the two auxiliary positioning blocks 36 and the inner wall of the extension tube 38. When performing pressure deformation resistance test on plate-like materials, the two ends of the plate-like material are placed on the top of the two sliding blocks 20, and the two auxiliary positioning blocks 36 slide inside the sliding block 20 and the extension tube 38. The spring 37 applies a centripetal force to clamp the two sides of the material to prevent the material from displacement.
[0030] Furthermore, an organism 6 is provided at the top of the box 1 near the guide gantry 2, a signal processing module is integrated inside the organism 6, and a display screen is provided at the front end of the organism 6. The signal processing module receives data information from various sensors and high-speed cameras 12, processes the data into digital information and displays it on the display screen, which is a commonly used technology in anti-deformation detection devices.
[0031] Furthermore, two protrusions 21 are provided on the outer sides of the two sliding blocks 20, and two slots 23 are provided at the opposite ends of the bottom of the two wedge blocks 24. The slots 23 match the protrusions 21. The outer sides of the bottoms of the two sliding blocks 20 are provided with protrusions. When the wedge block 24 is installed on the top of the sliding block 20, the protrusions on the outer sides of the bottom of the sliding block 20 limit the wedge block 24, so that the wedge block 24 cannot move downward. The slots 23 and the protrusions 21 prevent the wedge block 24 from moving laterally.
[0032] Furthermore, the bottoms of the two sliding blocks 20 extend to the interior of the protective shell 19, and the extended ends of the two sliding blocks 20 are commonly connected to the first bidirectional screw rod 22. The tops of the two clamping blocks 30 extend to the interior of the positioning member 31, and the extended ends of the two clamping blocks 30 are commonly connected to the second bidirectional screw rod 32. One end of the first bidirectional screw rod 22 and the second bidirectional screw rod is equipped with a driving machine. When the first bidirectional screw rod 22 rotates, it drives the two sliding blocks 20 to perform relative linear motion, which can clamp the bottom end of the plate. When the second bidirectional screw rod rotates, it drives the two clamping blocks 30 to perform relative linear motion, clamping the top end of the plate.
[0033] Furthermore, a second insulation shell 35 is provided at the bottom end of the turntable 10 outside the servo motor 34, and a first insulation shell 33 is detachably installed on one side of the second insulation shell 35. The first insulation shell 33 and the second insulation shell 35 are used together to wrap the servo motor 34 to prevent high temperature from affecting the servo motor 34 during testing.
[0034] Furthermore, a second pressure sensor 27 is provided at the middle position of the bottom end of the lower pressing plate 26. When the lower pressing plate 26 is pressed downward, the second pressure sensor 27 can record the pressure value generated by the downward pressure.
[0035] Furthermore, a rear extension frame 4 extends from the top of the rotating shaft 9, and a stepper motor 5 is installed at the extended end of the rotating shaft 9. The stepper motor 5 is installed at the top of the rear extension frame 4. The lower pressure plate 26, the conical lower pressure piece 28 and the servo motor 34 are arranged at equal intervals along the circumference of the bottom end of the turntable 10. When a reducer is provided inside the stepper motor 5, the stepper motor 5 is driven to rotate one hundred and twenty degrees, so that different detection structures are located directly above the two sliding blocks 20.
[0036] The method of using this embodiment is as follows: when using the anti-deformation detection device for special equipment, it can be selected according to the use environment of the sample to be tested. If the sample to be tested needs to be subjected to torsional anti-deformation testing, the sample is placed vertically between the two sliding blocks 20, and the bottom of the sample is clamped by the two sliding blocks 20, and the top of the sample is clamped by two clamping blocks 30. The sample is twisted by the servo motor 34 for testing. If the sample needs to be subjected to a three-point bending test to test the bending strength of the sample, the two sliding blocks 20 are first moved to facilitate placing the two ends of the sample on the top of the sliding blocks 20 respectively, and then a downward pressure is applied to the sample by the conical pressing piece 28 until the sample bends or breaks. If the sample needs a uniform compression test, the two sliding blocks 20 are first adjusted to a position matching the two wedge blocks 24, and the wedge block 24 is placed on the top of the sliding block 20, and then Place the sample in the middle position of the top of the tray 25, apply downward pressure through the lower pressure plate 26, so that the sample is compressed as a whole, and observe the axial compression deformation state of the sample to achieve the detection effect. If the application environment of the sample is a low-temperature environment, the low-temperature circulation box 15 can be used in conjunction with the copper tube 14 to make the low-temperature liquid flow in the copper tube 14, so that the internal temperature of the box 1 is reduced, and the corresponding detection is carried out in a low-temperature environment. If the application environment of the sample is a high-temperature environment, the battery assembly 16 can be used to supply electricity to the resistance wire 17 to make the resistance wire 17 generate heat, so that the internal temperature of the box 1 is increased, and the corresponding detection is carried out in a high-temperature environment. During the detection, the guide rail 13 drives the high-speed camera 12 to perform vertical linear movement, so that the camera of the high-speed camera 12 is aimed at the material, and the image of the material when it is deformed and broken during the detection process is collected, and analyzed in conjunction with the applied pressure.
[0037] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalent features for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. An anti-deformation detection device for special equipment, comprising a box (1), characterized in that: The bottom end of the box (1) is provided with a base (7), the top ends of the bases (7) on both sides of the box (1) are provided with guide gantry frames (2), the inside of the guide gantry frames (2) are movably connected with a truss (3), the rear end of the truss (3) is provided with a rear extension frame (4), the bottom of the rear extension frame (4) is provided with a rotating shaft (9), the bottom of the rotating shaft (9) extends to the inside of the box (1), the extended end of the rotating shaft (9) is provided with a turntable (10), a lower pressure plate (26) is provided at the edge of one side of the bottom end of the turntable (10), a servo motor (34) is provided at the edge of the other side of the bottom end of the turntable (10), the output end of the servo motor (34) is provided with a torque sensor (29), the servo motor ( A positioning member (31) is provided at the bottom end of the rotating disk (10), and two clamping blocks (30) are slidably connected to the bottom of the positioning member (31). A conical pressing member (28) is provided at the rear edge of the bottom end of the rotating disk (10). A supporting platform (11) is provided inside the box (1) below the rotating disk (10). Four first pressure sensors (18) are provided at the top of the supporting platform (11), and the tops of the four first pressure sensors (18) are commonly connected to a protective shell (19). The top of the protective shell (19) is slidably connected to two sliding blocks (20), and the tops of the two sliding blocks (20) are respectively detachably mounted with wedge blocks (24), and the tops of the two wedge blocks (24) are commonly connected to a tray (25).
2. The anti-deformation detection device for special equipment according to claim 1, characterized in that: A glass door (8) is hingedly installed at the front end of the box (1), two guide rails (13) are provided inside the box (1) near the supporting platform (11), and high-speed cameras (12) are detachably installed at the opposite ends of the two guide rails (13). Copper tubes (14) are provided inside the box (1) on both sides, and resistance wires (17) are provided inside the box (1) at the front ends of the two copper tubes (14). The bottom ends of the two copper tubes (14) are connected to a low-temperature circulation box (15), and the bottom ends of the two resistance wires (17) are provided with a battery assembly (16).
3. The anti-deformation detection device for special equipment according to claim 1, characterized in that: Extension tubes (38) are provided on both sides of the top of the two sliding blocks (20), two auxiliary positioning blocks (36) are provided on the top of the sliding block (20), and a spring (37) is commonly connected between the outer sides of the bottoms of the two auxiliary positioning blocks (36) and the inner walls of the extension tubes (38).
4. The anti-deformation detection device for special equipment according to claim 1, characterized in that: An organic body (6) is provided at the top end of the box (1) near the guide gantry (2).
5. The anti-deformation detection device for special equipment according to claim 1, characterized in that: Two protrusions (21) are provided on the outer sides of the two sliding blocks (20), and two clamping grooves (23) are provided at the opposite ends of the bottoms of the two wedge-shaped blocks (24).
6. The anti-deformation detection device for special equipment according to claim 1, characterized in that: The bottoms of the two sliding blocks (20) extend to the interior of the protective shell (19), and the extended ends of the two sliding blocks (20) are commonly connected to a first bidirectional screw rod (22). The tops of the two clamping blocks (30) extend to the interior of the positioning member (31), and the extended ends of the two clamping blocks (30) are commonly connected to a second bidirectional screw rod (32).
7. The anti-deformation detection device for special equipment according to claim 1, characterized in that: A second heat-insulating shell (35) is provided at the bottom end of the turntable (10) outside the servo motor (34), and a first heat-insulating shell (33) is detachably mounted on one side of the second heat-insulating shell (35).
8. The anti-deformation detection device for special equipment according to claim 1, characterized in that: A second pressure sensor (27) is provided at the middle position of the bottom end of the lower pressure plate (26).
9. The anti-deformation detection device for special equipment according to claim 1, characterized in that: The top of the rotating shaft (9) extends out from the rear extension frame (4), and a stepper motor (5) is installed at the extended end of the rotating shaft (9). The stepper motor (5) is installed at the top of the rear extension frame (4). The lower pressure plate (26), the conical lower pressure piece (28) and the servo motor (34) are arranged at equal intervals along the circumference of the bottom end of the rotating disk (10).
Citation Information
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