High-precision detection table for intelligent instruments and meters

The instrument is stably clamped and its position is adjusted by a motor-driven lead screw and gear meshing mechanism, and the control area is protected by a protective cover. This solves the problems of unstable placement and data disorder in existing testing stations, and improves the accuracy and safety of testing.

CN121804553APending Publication Date: 2026-04-07CHONGQING HANGUO INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-03
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

The existing instrumentation testing station lacks stability, leading to data errors during testing. Furthermore, the exposed control area is easily touched by unauthorized personnel, causing data corruption.

Method used

A high-precision testing stage for intelligent instruments and meters was designed. It uses a motor-driven lead screw and gear meshing mechanism for stable clamping, combined with a protective cover and an electric telescopic rod to protect the control area, so as to achieve stable clamping and position adjustment of instruments and meters, and protect the control buttons when not in use.

Benefits of technology

This improves the accuracy and stability of the detection, avoids data corruption caused by unauthorized personnel touching the control buttons, and enhances the convenience and safety of the detection process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a high-precision detection platform for intelligent instruments and meters, and relates to the technical field of intelligent instrument and meter detection equipment. The intelligent instrument and meter high-precision detection table comprises a detection table body, a first motor is fixedly arranged in the middle, close to the upper end, of one side wall of the detection table body, the output end of the first motor is fixedly connected with a first lead screw, and the outer wall of the first lead screw is sleeved with a first sliding seat in a threaded mode; third mounting plates are fixedly arranged on the two sides of the upper end of the first sliding seat correspondingly, and a first base is fixedly mounted between the two third mounting plates through bolts. The detection table can stably clamp instruments and meters, meanwhile, free position adjustment can be conducted on the clamped instruments and meters, meanwhile, a multi-position adjusting mechanism is additionally arranged on the detection table for the detection mechanism, the detection accuracy is relatively improved, and the detection efficiency is improved. The problems that the detection position of an existing detection table is too single, and the detection accuracy is deviated are solved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of intelligent instrument detection equipment, in particular to a high-precision detection table for intelligent instruments. BACKGROUND

[0002] In recent years, due to the rapid development of science and technology, more and more fields in production and life have begun to use intelligent machines, especially in high-tech fields. In order to improve the accuracy of digitization, some measuring instruments have gradually become more sophisticated. As one of the important components of intelligent instruments, instruments play a very crucial role in data reading and reference. Therefore, the performance detection of instruments is particularly important, and a high-precision detection table for intelligent instruments is needed.

[0003] However, the current instrument structure is too simple, and the stability of the instrument during detection is insufficient, resulting in data errors during detection, affecting the final detection structure. At the same time, the control area of the existing detection table is basically exposed, and when the detection table is not in use, unrelated personnel may touch the control button, causing data disorder and inconvenience. Therefore, the technical personnel in the field provide a high-precision detection table for intelligent instruments to solve the problems in the background technology. SUMMARY

[0004] (I) Technical problems to be solved

[0005] In view of the shortcomings of the prior art, the present application provides a high-precision detection table for intelligent instruments, which can stably clamp the instruments, and can freely adjust the position of the clamped instruments. The detection table can be more convenient to adjust during instrument detection. At the same time, the detection table is provided with a multi-position adjusting mechanism for the detection mechanism, which can arbitrarily adjust the specific detection position of the instrument. The detection accuracy is relatively increased, and the detection table is provided with a structure for safety protection of the control mechanism, which can be easily protected when the control mechanism is not in use, avoiding unrelated personnel from touching the control button and causing data disorder. At the same time, during use, no operation interference is caused, solving the problems of single detection position and detection accuracy deviation of the existing detection table.

[0006] (II) Technical solutions

[0007] To achieve the above object, the present application is implemented by the following technical solutions: a kind of intelligent instrument high-precision detection platform, including detection platform main body, first motor is fixedly arranged in the middle of the upper end of the side wall of detection platform main body, the output end of first motor is fixedly connected with first screw rod, first screw rod outer wall is threadedly sleeved with first sliding seat, the upper end of first sliding seat is fixedly provided with third mounting plate on both sides, first base is fixedly installed between the two third mounting plates by bolt, second motor is fixedly arranged in the side wall of first base, the output end of second motor is fixedly connected with first bevel gear, first bevel gear is meshed with second bevel gear, second bevel gear inner side wall is fixedly sleeved with bidirectional screw rod, the outer wall of bidirectional screw rod is threadedly sleeved with second sliding seat on both sides, the upper end of two second sliding seats is fixedly provided with mounting head on one side, two mounting heads are fixedly provided with two first mounting plates on one side wall, adjacent two of a plurality of first mounting plates are a group, clamping head is fixedly installed between two groups of first mounting plates by bolt;

[0008] The side wall of the detection platform main body is fixedly provided with a control seat, a placing groove is formed in one side of the upper end surface of the control seat, a protective cover is arranged in the placing groove, and fixed platforms are fixedly arranged on the two side walls of the control seat.

[0009] The above technical solution comprises a first motor, a first lead screw, a first sliding seat, a third mounting plate, a first base, a second motor, a first bevel gear, a second bevel gear, a bidirectional lead screw, a second sliding seat, a mounting head, a first mounting plate, and a clamping head. The first motor drives the first lead screw to rotate, thereby causing the first sliding seat to move and adjust. Simultaneously, the two third mounting plates, along with pre-fabricated bolts, secure the first base. The second motor, mounted on the first base, drives the second bevel gear to rotate via gear meshing, which in turn causes the bidirectional lead screw to rotate. This rotation of the bidirectional lead screw leads to relative movement between the two second sliding seats. Therefore, the clamping head, mounted on the first mounting plate and pre-fabricated bolts, can move relative to the instrument. When clamping instruments, this relative movement allows the clamping head to effectively hold the instrument. The system provides stable clamping, ensuring both stability and freedom of movement during instrument testing. This guarantees convenience and accuracy during testing. The system comprises a control base, placement slot, protective cover, fixed platform, second electric telescopic rod, and connector. The placement slot determines the position of the protective cover. When using the testing platform, the protective cover can be stored inside the placement slot via the second electric telescopic rod, preventing interference with operator work. When the testing platform is not in use, to prevent unauthorized access to the control area, the protective cover can be raised by activating the second electric telescopic rod. Once it reaches a certain height, the protective cover can be rotated using the connector and its rotatable connection. When the protective cover is rotated to the appropriate angle, it effectively covers and protects the control base.

[0010] Preferably, a support base is fixedly provided on one side of the upper end of the main body of the testing platform, a third motor is fixedly provided in the middle of the upper end of the support base, a second lead screw is fixedly connected to the output end of the third motor, a third sliding seat is threaded on the outer wall of the second lead screw, and two sliding grooves are opened on one side wall of the support base, and a first slider is slidably provided in both sliding grooves;

[0011] The above technical solution, by setting up a support base, a third motor, a second lead screw, a third sliding seat, a slide groove, and a first slider, determines the installation position of the detection mechanism. During this process, the third motor drives the second lead screw to rotate, thereby allowing the third sliding seat to move up and down. During this up-and-down movement, the slide groove and the first slider sliding inside the groove, along with the limiting mechanism, ensure the stability of the movement when the second base moves up and down. This improves the stability of the movement of the detection mechanism and, consequently, enhances the stability of the detection.

[0012] Preferably, the third sliding seat and the two first sliders are fixedly connected to a second base on one side wall. A fourth motor is fixedly installed in the middle of one side wall of the second base. A third lead screw is fixedly connected to the output end of the fourth motor. The fourth sliding seat is threaded on the outer wall of the third lead screw. Two second mounting plates are fixedly installed on one side wall of the fourth sliding seat. A connecting column is fixedly installed between the two second mounting plates by bolts. A first electric telescopic rod is embedded inside the connecting column. A detection mechanism is fixedly connected to one end of the first electric telescopic rod.

[0013] The above technical solution, by incorporating a fourth motor, a third lead screw, a fourth sliding seat, a second mounting plate, a connecting column, a first electric telescopic rod, and a detection mechanism, determines the specific detection position of the detection mechanism. The fourth motor drives the third lead screw to rotate, allowing the fourth sliding seat to move freely. Simultaneously, the second mounting plate, in conjunction with pre-fabricated bolts, securely mounts the connecting column. The first electric telescopic rod, located inside the connecting column, enhances the installation stability. During operation, the position of the detection mechanism can be adjusted via the first electric telescopic rod. Thus, with position adjustments possible in both the clamping and detection areas, the detection accuracy can be maximized, resulting in strong practicality.

[0014] Preferably, two fixing plates are fixedly installed on the upper ends of both sides of the main body of the testing platform. The fixing plates are arranged in pairs, and a sliding rod is fixedly connected between the two groups of fixing plates. A second slider is slidably sleeved on the outer wall of each of the two sliding rods.

[0015] Through the above technical solution, by setting a fixed plate, a sliding rod, and a second slider, when the first base moves through the first sliding seat, the second slider, which is slidably sleeved on the outer wall of the sliding rod, can maintain the stability of the first base's movement and avoid deviation. Thus, the movement stability of the entire clamping mechanism can be maximized during position adjustment, further improving the accuracy of detection.

[0016] Preferably, both sides of the first base are fixedly connected to the second slider by bolts;

[0017] The above technical solution determines the connection method between the first base and the second slider. The use of prefabricated bolts can improve the connection stability between the first base and the second slider, ensuring that the first base and the second slider will not fall apart when the first base moves.

[0018] Preferably, two first limiting rods are provided through one side of the two second sliding seats;

[0019] By using the above technical solution, and by setting a first limiting rod, the limiting mechanism can prevent the second sliding seat from rotating when the bidirectional lead screw rotates, thus ensuring the stable movement of the second sliding seat.

[0020] Preferably, the control base includes a display screen and control buttons;

[0021] The above technical solution includes a display screen and control buttons. The display screen can show some detection data, making it convenient for staff to understand and record. The control buttons can operate some mechanisms, making it more convenient.

[0022] Preferably, the protective cover can cover the display screen and control buttons when in operation;

[0023] The above technical solution determines the working state of the protective cover and its specific placement when it is not in operation, so as to protect the control area and avoid the protective cover interfering with the operation during operation.

[0024] Working Principle: When this intelligent high-precision instrument testing platform is put into use, the instrument is first placed in the clamping area. Then, the second motor is started to drive the first bevel gear to rotate. Through the gear meshing principle, the first bevel gear drives the second bevel gear to rotate, which in turn causes the bidirectional lead screw to rotate. Through the rotation principle of the bidirectional lead screw, the two second sliding seats will move relative to each other. Therefore, the clamping head installed by the first mounting plate and pre-made bolts can move relative to each other. The instrument is stably clamped within the clamping space where the clamping head moves. When testing begins, the first motor is started to drive the first lead screw to rotate, which causes the first sliding seat to move and adjust until the first base moves to the designated testing area. During the movement of the first base, the second slider is slidably sleeved on the outer wall of the slide rod, which can maintain the stability of the movement of the first base and avoid deviation. Thus, the stability of the movement of the entire clamping mechanism can be maximized during position adjustment. When adjusting the position of the testing mechanism, the third motor is started to drive the second lead screw to rotate, which in turn causes the third sliding seat to move relative to the second sliding seat. The device can move up and down. During this movement, a sliding groove and a first slider inside the groove, along with a limiting mechanism, ensure stability as the second base moves. A fourth motor drives a third lead screw, allowing the fourth sliding seat to move freely. A second mounting plate, along with pre-fabricated bolts, secures the connecting column. A first electric telescopic rod inside the connecting column improves stability. The position of the testing mechanism can be adjusted using the first electric telescopic rod until a suitable position is reached for testing. During use, the protective cover can be stored in the placement slot using the second electric telescopic rod, preventing interference with operator work. When not in use, to prevent unauthorized access to the control area, the protective cover can be raised by activating the second electric telescopic rod. At a certain height, the protective cover can rotate using a connector and its rotatable connection. When the cover rotates to a suitable angle, it effectively covers and protects the control base.

[0025] (III) Beneficial Effects

[0026] This invention provides a high-precision testing platform for intelligent instruments and meters. It has the following beneficial effects:

[0027] 1. This invention provides a high-precision testing platform for intelligent instruments and meters. Compared with existing testing platforms, it utilizes a first motor to drive a first lead screw to rotate, thereby causing the first sliding seat to move and adjust. Simultaneously, two third mounting plates are used to fix the first base in conjunction with pre-made bolts. A second motor is installed on the first base. Through the gear meshing principle, the first bevel gear drives the second bevel gear to rotate, which in turn causes the bidirectional lead screw to rotate. Through the rotation principle of the bidirectional lead screw, the two second sliding seats move relative to each other. Therefore, the clamping head installed by the first mounting plate and the pre-made bolts can move relative to each other. When clamping instruments and meters, the clamping head can stably clamp the instruments and meters through the principle of relative movement, maintaining stable clamping and free movement characteristics during instrument and meter testing, thus ensuring a certain degree of convenience and testing accuracy.

[0028] 2. This invention provides a high-precision testing platform for intelligent instruments and meters. Compared with existing testing platforms, the placement slot determines the position of the protective cover. When using the testing platform, the protective cover can be stored inside the placement slot via a second electric telescopic rod, ensuring that it does not interfere with the operator's work during testing. When the testing platform is not in use, to prevent unauthorized personnel from touching the control area, the platform can lift the protective cover by activating the second electric telescopic rod. When it reaches a certain height, the protective cover can be rotated using the provided connector and the rotatably connected connector. When the protective cover rotates to a suitable angle, it can cover and protect the control seat, achieving the function of safety protection.

[0029] 3. This invention provides a high-precision testing platform for intelligent instruments and meters. Compared with existing testing platforms, a third motor drives a second lead screw to rotate, allowing the third sliding seat to move up and down. During this up-and-down movement, a sliding groove and a first slider slidably disposed within the groove, along with a limiting mechanism, ensure the stability of the movement of the second base. This improves the stability of the movement and enhances the stability of the testing mechanism. Furthermore, a fourth motor drives the third lead screw to rotate, allowing the fourth sliding seat to move freely. A second mounting plate, along with pre-made bolts, secures the connecting column. A first electric telescopic rod inside the connecting column further improves the installation stability. The position of the testing mechanism can be adjusted via the first electric telescopic rod. With position adjustments possible in both the clamping and testing areas, the testing accuracy can be maximized, making this invention highly practical. Attached Figure Description

[0030] Figure 1 This is an isometric view of a high-precision testing platform for intelligent instruments and meters according to the present invention;

[0031] Figure 2 This is a specific embodiment of the protective cover for a high-precision testing platform for intelligent instruments and meters according to the present invention;

[0032] Figure 3 This is a schematic diagram of the structure of a high-precision testing platform placement slot for intelligent instruments and meters according to the present invention;

[0033] Figure 4 This is a schematic diagram of the structure of the first base of a high-precision testing platform for intelligent instruments and meters according to the present invention;

[0034] Figure 5 This is a schematic diagram of the structure of a high-precision testing platform support for intelligent instruments and meters according to the present invention;

[0035] Figure 6 This is a schematic diagram of the structure of the second base of a high-precision testing platform for intelligent instruments and meters according to the present invention;

[0036] Figure 7 This is a schematic diagram of the bevel gear meshing structure of a high-precision testing platform for intelligent instruments and meters according to the present invention;

[0037] Figure 8 This is a schematic diagram of the connection structure of a protective cover for a high-precision testing platform of an intelligent instrument and meter according to the present invention.

[0038] Figure 9 This is a schematic diagram of the connection structure of the second slider of a high-precision testing stage for intelligent instruments and meters according to the present invention.

[0039] Figure 10 This is a schematic diagram of the structure of a high-precision testing table clamping head for intelligent instruments and meters according to the present invention.

[0040] The components include: 1. Testing table body; 2. First motor; 3. First lead screw; 4. First sliding seat; 5. First base; 6. Slide rod; 7. Control seat; 8. Display screen; 9. Control button; 10. Fixed platform; 11. Protective cover; 12. Support seat; 13. Second base; 14. Placement slot; 15. Second motor; 16. Bidirectional lead screw; 17. Second sliding seat; 18. First limit rod; 19. Mounting head; 20. First mounting plate; 21. Clamping head; 2. Third motor; 23. Second lead screw; 24. Third sliding seat; 25. Slide groove; 26. First slider; 27. Fourth motor; 28. Third lead screw; 29. ​​Fourth sliding seat; 30. Second mounting plate; 31. Connecting column; 32. First electric telescopic rod; 33. Detection mechanism; 34. First bevel gear; 35. Second bevel gear; 36. Second electric telescopic rod; 37. Connector; 38. Fixing plate; 39. Second slider; 40. Third mounting plate. Detailed Implementation

[0041] 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.

[0042] Example 1:

[0043] like Figures 1-10 As shown, this embodiment of the invention provides a high-precision testing platform for intelligent instruments and meters, including a testing platform body 1. A first motor 2 is fixedly installed on the upper middle of one side wall of the testing platform body 1. A first lead screw 3 is fixedly connected to the output end of the first motor 2. A first sliding seat 4 is threaded onto the outer wall of the first lead screw 3. Third mounting plates 40 are fixedly installed on both sides of the upper end of the first sliding seat 4. A first base 5 is fixedly installed between the two third mounting plates 40 by bolts. A second motor 15 is fixedly installed on one side wall of the first base 5. The output end of the second motor 15 is fixedly connected to... A first bevel gear 34 is connected to a second bevel gear 35. A bidirectional lead screw 16 is fixedly sleeved on the inner wall of the second bevel gear 35. Second sliding seats 17 are threaded onto both sides of the outer wall of the bidirectional lead screw 16. Mounting heads 19 are fixedly installed on one side of the upper end of each of the two second sliding seats 17. Two first mounting plates 20 are fixedly installed on one side wall of each of the two mounting heads 19. Two adjacent first mounting plates 20 form a group. Clamping heads 21 are bolted between each group of first mounting plates 20. A first motor 2 and a first… The system comprises a lead screw 3, a first sliding seat 4, a third mounting plate 40, a first base 5, a second motor 15, a first bevel gear 34, a second bevel gear 35, a bidirectional lead screw 16, a second sliding seat 17, a mounting head 19, a first mounting plate 20, and a clamping head 21. The first motor 2 drives the first lead screw 3 to rotate, thereby causing the first sliding seat 4 to move and adjust. Simultaneously, the two third mounting plates 40, together with pre-fabricated bolts, can fix the first base 5 in place. The second motor 15 is installed on the first base 5; through the gear meshing principle, the first bevel gear 34 drives... When the second bevel gear 35 rotates, the double-acting screw 16 will start to rotate. Through the rotation principle of the double-acting screw 16, the two second sliding seats 17 will move relative to each other. Therefore, the clamping head 21 installed by the first mounting plate 20 and the pre-made bolts can move relative to each other. When clamping the instrument, the clamping head 21 can stably clamp the instrument through the principle of relative movement, so that it can maintain stable clamping and free movement when testing the instrument, which can ensure that it can provide a certain degree of convenience and testing accuracy during testing.

[0044] A control base 7 is fixedly installed on one side wall of the main body 1 of the testing station. A placement groove 14 is opened on one side of the upper end face of the control base 7. A protective cover 11 is installed inside the placement groove 14. Fixed platforms 10 are fixedly installed on both side walls of the control base 7. A second electric telescopic rod 36 is fixedly installed at the bottom of each of the two fixed platforms 10. A connector 37 is fixedly installed at the upper end of each of the two second electric telescopic rods 36. The two connectors 37 are rotatably connected to the protective cover 11. The control base 7, placement groove 14, protective cover 11, fixed platform 10, second electric telescopic rod 36, and connector 37 are arranged, and the placement groove 14 is defined. The placement of the protective cover 11 is specified. When using the testing station, the protective cover 11 can be stored inside the placement slot 14 via the second electric telescopic rod 36, so that it will not interfere with the operation of the staff during testing. When the testing station is not in use, in order to prevent the control area from being touched by unauthorized personnel, the testing station can lift the protective cover 11 by activating the second electric telescopic rod 36. When it reaches a certain height, it can be rotated using the provided connector 37 and the protective cover 11 which is rotatably connected to the connector 37. When the protective cover 11 is rotated to a suitable angle, it can cover and protect the control seat 7.

[0045] A support base 12 is fixedly installed on one side of the upper end of the main body 1 of the testing table. A third motor 22 is fixedly installed in the middle of the upper end of the support base 12. A second lead screw 23 is fixedly connected to the output end of the third motor 22. A third sliding seat 24 is threaded onto the outer wall of the second lead screw 23. Two sliding grooves 25 are opened on one side wall of the support base 12. A first slider 26 is slidably installed inside each of the two sliding grooves 25. The installation position of the testing mechanism 33 is determined by the arrangement of the support base 12, the third motor 22, the second lead screw 23, the third sliding seat 24, the sliding grooves 25, and the first sliders 26. During the process, the third motor 22 drives the second lead screw 23 to rotate, thereby allowing the third sliding seat 24 to move up and down. During the up and down movement, the sliding grooves 25 and the sliding... The first slider 26, which is movably installed inside the slide groove 25, maintains stability when the second base 13 moves up and down using a limiting mechanism. This improves the stability of the movement of the detection mechanism 33 and enhances the stability of the detection. The third sliding seat 24 and the two first sliders 26 are fixedly connected to the second base 13 on one side wall. A fourth motor 27 is fixedly installed in the middle of one side wall of the second base 13. The output end of the fourth motor 27 is fixedly connected to a third lead screw 28. A fourth sliding seat 29 is threaded onto the outer wall of the third lead screw 28. Two second mounting plates 30 are fixedly installed on one side wall of the fourth sliding seat 29. A connecting column 31 is fixedly installed between the two second mounting plates 30 by bolts. The connecting column 31 is embedded with a... The first electric telescopic rod 32 has a detection mechanism 33 fixedly connected to one end. The detection mechanism 33 is positioned by a fourth motor 27, a third lead screw 28, a fourth sliding seat 29, a second mounting plate 30, a connecting column 31, and the first electric telescopic rod 32. The fourth motor 27 drives the third lead screw 28 to rotate, allowing the fourth sliding seat 29 to move freely. The second mounting plate 30, along with pre-fabricated bolts, secures the connecting column 31. The first electric telescopic rod 32, located inside the connecting column 31, improves the installation stability. During installation, the position of the detection mechanism 33 can be monitored via the first electric telescopic rod 32. The position can be adjusted, thus maximizing detection accuracy during detection while allowing for position adjustment in both the clamping and detection areas. This design is highly practical. Two fixed plates 38 are fixedly installed on the upper ends of both side walls of the detection table body 1. Multiple fixed plates 38 are grouped in pairs, and slide rods 6 are fixedly connected between the two groups of fixed plates 38. Second sliders 39 are slidably fitted onto the outer walls of both slide rods 6. By using the fixed plates 38, slide rods 6, and second sliders 39, when the first base 5 moves via the first sliding seat 4, the sliding characteristic of the second sliders 39 on the outer walls of the slide rods 6 ensures the stability of the first base 5's movement, preventing deviation. This allows for precise position adjustment of the entire clamping mechanism.This design maximizes movement stability and further improves detection accuracy. Both sides of the first base 5 are fixedly connected to the second slider 39 via bolts, defining the connection method between the first base 5 and the second slider 39. The use of pre-fabricated bolts enhances the connection stability between the first base 5 and the second slider 39, preventing the first base 5 from disintegrating during movement. Two first limiting rods 18 are connected to one side of both second sliding seats 17. These first limiting rods 18, through a limiting mechanism, prevent the bidirectional lead screw 16 from rotating during the movement of the second sliding seats 17. The second sliding seat 17 is rotated, ensuring stable movement. The control seat 7 includes a display screen 8 and control buttons 9. The display screen 8 shows detection data for easy monitoring and recording by staff, while the control buttons 9 allow for convenient operation of various mechanisms. When in operation, the protective cover 11 covers the display screen 8 and control buttons 9, defining its working state and placement when not in operation. This protects the control area and prevents interference with operation.

[0046] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A high-precision testing platform for intelligent instruments and meters, comprising a testing platform body (1), characterized in that: A first motor (2) is fixedly installed on the upper middle of one side wall of the main body (1) of the testing platform. A first lead screw (3) is fixedly connected to the output end of the first motor (2). A first sliding seat (4) is threaded onto the outer wall of the first lead screw (3). A third mounting plate (40) is fixedly installed on both sides of the upper end of the first sliding seat (4). A first base (5) is fixedly installed between the two third mounting plates (40) by bolts. A second motor (15) is fixedly installed on one side wall of the first base (5). A first bevel gear (34) is fixedly connected to the output end of the second motor (15). The first bevel gear (34) is meshed with a second bevel gear (35). A double-acting screw (16) is fixedly sleeved on the inner side wall of the second bevel gear (35). A second sliding seat (17) is threaded on both sides of the outer wall of the double-acting screw (16). An installation head (19) is fixedly installed on one side of the upper end of each of the two second sliding seats (17). Two first mounting plates (20) are fixedly installed on one side wall of each of the two mounting heads (19). Two adjacent first mounting plates (20) are grouped together. A clamping head (21) is fixedly installed between the two groups of first mounting plates (20) by bolts. A control seat (7) is fixedly installed on one side wall of the main body (1) of the testing station. A placement groove (14) is opened on one side of the upper surface of the control seat (7). A protective cover (11) is installed inside the placement groove (14). Fixed platforms (10) are fixedly installed on both sides of the control seat (7). A second electric telescopic rod (36) is fixedly installed at the bottom of each of the two fixed platforms (10). A connector (37) is fixedly installed at the upper end of each of the two second electric telescopic rods (36). The two connectors (37) are rotatably connected to the protective cover (11).

2. The intelligent instrument and meter high-precision testing platform according to claim 1, characterized in that: A support base (12) is fixedly installed on one side of the upper end of the main body (1) of the testing platform. A third motor (22) is fixedly installed in the middle of the upper end of the support base (12). A second lead screw (23) is fixedly connected to the output end of the third motor (22). A third sliding seat (24) is threaded on the outer wall of the second lead screw (23). Two sliding grooves (25) are opened on one side wall of the support base (12). A first slider (26) is slidably installed inside each of the two sliding grooves (25).

3. The intelligent instrument and meter high-precision testing platform according to claim 2, characterized in that: The third sliding seat (24) and the two first sliders (26) are fixedly connected to a second base (13) on one side wall. A fourth motor (27) is fixedly installed in the middle of one side wall of the second base (13). The output end of the fourth motor (27) is fixedly connected to a third lead screw (28). The outer wall of the third lead screw (28) is threaded with a fourth sliding seat (29). Two second mounting plates (30) are fixedly installed on one side wall of the fourth sliding seat (29). A connecting column (31) is fixedly installed between the two second mounting plates (30) by bolts. A first electric telescopic rod (32) is embedded inside the connecting column (31). A detection mechanism (33) is fixedly connected to one end of the first electric telescopic rod (32).

4. The intelligent instrument and meter high-precision testing platform according to claim 1, characterized in that: The main body (1) of the testing platform has two fixed plates (38) fixedly installed on the upper side of both sides. The multiple fixed plates (38) are arranged in pairs of opposite groups. A sliding rod (6) is fixedly connected between the two groups of fixed plates (38). A second slider (39) is slidably sleeved on the outer wall of each of the two sliding rods (6).

5. The intelligent instrument and meter high-precision testing platform according to claim 1, characterized in that: Both sides of the first base (5) are fixedly connected to the second slider (39) by bolts.

6. The intelligent instrument and meter high-precision testing platform according to claim 1, characterized in that: Two first limiting rods (18) are provided through one side of the two second sliding seats (17).

7. The intelligent instrument and meter high-precision testing platform according to claim 1, characterized in that: The control base (7) includes a display screen (8) and control buttons (9).

8. The intelligent instrument and meter high-precision testing platform according to claim 1, characterized in that: When the protective cover (11) is in operation, it can cover the display screen (8) and control buttons (9).