Sensor mounting structure for equipment instrument

By designing a sensor mounting structure and utilizing a flip-plate and roller system, the problems of limited sensor installation and non-adjustable position were solved, enabling flexible installation and position adjustment, and improving the convenience and applicability of sensor installation in the instrument.

CN224151744UActive Publication Date: 2026-04-21BEIJING HUAYI JIAXIN TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING HUAYI JIAXIN TECHNOLOGY CO LTD
Filing Date
2025-06-11
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Sensors are limited in their installation within instruments due to limitations in interface and wiring paths, resulting in fewer available installation locations and the inability to adjust their position after installation, leading to poor applicability.

Method used

A sensor mounting structure was designed, including a device base, a fixing plate, a flip plate, and a roller system. The combination of the flip plate and rollers enables flexible installation and position adjustment, making use of the internal space of the device and increasing the convenience and applicability of installation.

Benefits of technology

This allows for flexible sensor installation within the instrument, avoiding interfaces and wiring paths, increasing the flexibility of installation location selection and adjustment, and improving installation convenience and applicability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a sensor mounting structure for equipment instrument, which relates to the field of sensor mounting devices and comprises an equipment base, fixing plates are mounted on the upper surface of the equipment base, a through groove is formed in each fixing plate, a second roller groove is formed in each through groove, a turning plate is mounted between the fixing plates, and a second roller groove is formed in each turning plate. A mounting cavity is formed between the turning plates, screw holes are formed in the turning plates, turning plate grooves are formed in the surfaces of the two sides of the turning plates, first rolling wheels are mounted in the turning plate grooves, connecting columns are mounted on the first rolling wheels, second rolling wheels are mounted on the connecting columns, side plates are mounted on the turning plate grooves, and the turning plates are connected with the screw holes. And side plate grooves are formed in the side plates. By means of the through groove and the turning plate, when the sensor is installed, avoiding installation can be conducted in an instrument through the turning plate, meanwhile, the position of the sensor can be adjusted according to the actual situation, and the applicability of the device is improved.
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Description

Technical Field

[0001] This utility model relates to the field of sensor mounting devices, and in particular to a sensor mounting structure for equipment and instruments. Background Technology

[0002] Instruments refer to scientific and technological tools or devices used for experiments, measurement, observation, inspection, drawing, etc. They are usually a set of devices or machines prepared for a specific purpose. Instruments are usually used for scientific research or technical measurement, industrial automation process control, production, etc. Generally speaking, they are equipment or devices dedicated to a single purpose. Instruments have a relatively complex structure and belong to high-tech products. They are composed of multiple parts. Instruments vary in size, weight, and shape. The smallest can be held in the hand and operated directly, while larger instruments are generally called devices or equipment.

[0003] During the use of instruments, sensors are required. A sensor is a detection device that can sense the information being measured and transform the sensed information into an electrical signal or other required form of information output according to a certain rule, so as to meet the requirements of information transmission, processing, storage, display, recording and control. Existing sensors are generally installed by bolts.

[0004] Currently, sensors are generally installed using clamping or bolts. This means that the ends of the sensor are clamped on both sides using clamping devices or locked on one side using bolts, so that the sensor can only be installed and removed from one direction. However, when the sensor is used in an instrument, the installation of the sensor is limited by the instrument interface and wiring path, resulting in fewer installation positions to choose from. Furthermore, the sensor's installation and removal path in the installation and removal direction can easily be blocked by other components, making the sensor installation and removal inconvenient. At the same time, once the sensor is fixed, its position cannot be adjusted according to the actual situation, resulting in poor applicability.

[0005] Therefore, it is necessary to propose a sensor mounting structure for equipment and instruments to solve the above problems. Utility Model Content

[0006] The purpose of this utility model is to provide a sensor mounting structure for equipment and instruments, so as to solve the problems mentioned in the background art, that the installation of sensors is limited by instrument interfaces and wiring paths, resulting in a limited number of selectable installation positions and poor applicability of sensors that cannot be adjusted according to actual conditions after being fixed.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a sensor mounting structure for equipment and instruments, including an equipment base, a fixing plate mounted on the upper surface of the equipment base, and two sets of fixing plates, each set having two plates, which are axially symmetrically distributed on the upper surface of the equipment base;

[0008] The fixed plate has a through groove, and a second roller groove is formed in the through groove;

[0009] A flap is installed between the fixed plates, and an installation cavity is formed between the flaps. A rubber strip is installed on the upper surface of the flap, and there are multiple rubber strips evenly distributed on the upper surface of the flap. Screw holes are opened on the flap, and there are five screw holes.

[0010] The flip plate has flip plate grooves on both sides, a first roller is installed in the flip plate groove, a connecting column is installed on the first roller, a second roller is installed on the connecting column, a side plate is installed on the flip plate groove, and a side plate groove is opened on the side plate.

[0011] The first roller is located inside the flip plate groove, and there is a gap between the first roller and the flip plate groove. The connecting column passes through the through groove, and the second roller is located inside the second roller groove.

[0012] The base of the device has sliding grooves on both sides, and fixing holes are provided above and below the sliding grooves.

[0013] Preferably, a third roller is slidably installed in the groove, a rotating shaft is installed on the third roller, a connecting block is installed on the rotating shaft, an upper clamping block is installed on the connecting block, a lower clamping block is installed below the upper clamping block, a bolt is spirally installed on the connecting block, a torsion cap is installed on the upper end of the bolt, and the bolt passes through the connecting block.

[0014] Preferably, fixing blocks are fixedly installed on both the upper and lower surfaces of the connecting block, and fixing posts are inserted through the fixing blocks, with the fixing posts located inside the fixing holes.

[0015] Preferably, an mounting plate is installed inside the connecting block, and bolt holes are provided on the mounting plate, with the bolts passing through the bolt holes.

[0016] Preferably, the diameter of the first roller is smaller than that of the second roller.

[0017] Preferably, a sensor is mounted on the mounting plate.

[0018] The technical effects and advantages of this utility model are as follows:

[0019] 1. The flap and through slot provided in this utility model can flexibly install the sensor during the installation process, and avoid the internal interface and wiring of the instrument. It can be installed on one side by one flap or clamped by two flaps. This solves the problem that the sensor is limited by the instrument interface and wiring path when it is installed, and the number of installation positions is limited, thus improving the convenience of installation.

[0020] 2. The No. 3 roller and fixing column set in this utility model can adjust the position of the sensor after installation. At the same time, two sensors can be installed on the device to maximize the use of the internal space of the instrument and adjust their positions respectively. This solves the problem that the traditional installation device cannot be adjusted after installation, and increases the applicability of the device. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of a sensor mounting structure for equipment and instruments according to the present invention;

[0022] Figure 2 This is an exploded view of the fixing plate of a sensor mounting structure for equipment and instruments according to the present invention.

[0023] Figure 3 This is a split view of the connecting block of a sensor mounting structure for equipment and instruments according to the present invention.

[0024] Figure 4 This utility model relates to a sensor mounting structure for equipment and instruments. Figure 3 Enlarged view of point A in the middle;

[0025] Figure 5 This is a top view of a sensor mounting structure for equipment and instruments according to the present invention;

[0026] Figure 6 This is a schematic diagram of the first use of a sensor mounting structure for equipment and instruments according to the present invention;

[0027] Figure 7 This is a second schematic diagram of the sensor mounting structure for equipment and instruments according to the present invention;

[0028] In the diagram: 1. Equipment base; 2. Fixing hole; 3. Slide groove; 4. Sensor; 5. Mounting plate; 6. Fixing plate; 7. Flip plate; 8. Rubber strip; 9. Mounting cavity; 10. Screw hole; 11. Side plate; 12. Side plate groove; 13. Flip plate groove; 14. Roller No. 1; 15. Connecting column; 16. Roller No. 2; 17. Through groove; 18. Roller No. 2 groove; 19. Roller No. 3; 20. Connecting block; 21. Torque cap; 22. Upper clamping block; 23. Bolt; 24. Lower clamping block; 25. Bolt hole; 26. Fixing column; 27. Fixing block; 28. Rotating shaft. Detailed Implementation

[0029] This utility model provides, for example Figures 1-7 The sensor mounting structure for equipment and instruments shown includes an equipment base 1, a fixing plate 6 mounted on the upper surface of the equipment base 1, and two sets of fixing plates 6, two in each set, which are axially symmetrically distributed on the upper surface of the equipment base 1.

[0030] The fixed plate 6 has a through groove 17, and the through groove 17 has a second roller groove 18. There are multiple second roller grooves 18, which are evenly distributed on the through groove 17. The function of the second roller groove 18 is to limit the second roller 16.

[0031] A flap 7 is installed between the fixed plates 6, and an installation cavity 9 is formed between the flap 7. The installation cavity 9 allows the device to be clamped and installed. Only a thin plate or support point is needed to stably install the device. Rubber strips 8 are installed on the upper surface of the flap 7. The functions of the rubber strips 8 are to increase friction and ensure the installation effect, and to buffer and reduce the impact of vibration on the sensor 4 during instrument operation. There are multiple rubber strips 8, which are evenly distributed on the upper surface of the flap 7. Five screw holes 10 are opened on the flap 7.

[0032] Flip plate 7 has flip plate grooves 13 on both sides, a first roller 14 is installed in the flip plate groove 13, a connecting column 15 is installed on the first roller 14, a second roller 16 is installed on the connecting column 15, a side plate 11 is installed on the flip plate groove 13, and a side plate groove 12 is opened on the side plate 11.

[0033] The first roller 14 is located inside the flip plate groove 13. There is a gap between the first roller 14 and the flip plate groove 13. The gap between the first roller 14 and the flip plate groove 13 allows the second roller 16 to be pulled outward, thereby adjusting the position of the flip plate 7. The connecting column 15 passes through the through groove 17, and the second roller 16 is located inside the second roller groove 18.

[0034] The equipment base 1 has sliding grooves 3 on both sides of its surface, and fixing holes 2 are provided above and below the sliding grooves 3. There are multiple fixing holes 2.

[0035] Furthermore, a third roller 19 is slidably installed in the chute 3, a rotating shaft 28 is installed on the third roller 19, a connecting block 20 is installed on the rotating shaft 28, an upper clamping block 22 is installed on the connecting block 20, a lower clamping block 24 is installed below the upper clamping block 22, a bolt 23 is spirally installed on the connecting block 20, a torsion cap 21 is installed on the upper end of the bolt 23, and the bolt 23 passes through the connecting block 20.

[0036] Furthermore, fixing blocks 27 are fixedly installed on both the upper and lower surfaces of the connecting block 20, and fixing posts 26 are inserted through the fixing blocks 27, with the fixing posts 26 located inside the fixing holes 2.

[0037] Furthermore, a mounting plate 5 is installed inside the connecting block 20, and bolt holes 25 are opened on the mounting plate 5, through which bolts 23 pass.

[0038] Furthermore, the diameter of roller 14 is smaller than that of roller 16.

[0039] Furthermore, sensor 4 is mounted on mounting plate 5.

[0040] In use, the flip plate 7 first needs to be adjusted to a suitable installation position. This is done by pulling out the second roller 16 and then placing it into the appropriate second roller groove 18 to limit the flip plate 7. The flip plate 7 is then lifted to a vertical position and secured using the screw holes 10 on it. It is important to ensure that the upper surface of the flip plate 7, i.e., the surface where the rubber strip 8 is located, always faces the inner wall of the instrument. This is to increase the friction between the device and the instrument, ensuring installation stability and reducing the impact of vibrations on the sensor 4 during instrument operation. This is important considering that the instrument has many internal interfaces and... Therefore, by adjusting the distance between the flaps 7, the size of the mounting cavity 9 can be adjusted to avoid the interface and wiring during installation. At the same time, only one flap 7 can be used for single-sided fixed installation. The installation method is flexible and diverse, which increases the applicability and portability of the device. Considering the limited internal space of the instrument, in order to maximize the space utilization, sliding grooves 3 are provided on both sides of the device. The purpose is to allow the device to carry two sensors 4. After the sensors 4 are installed, the position of the sensors 4 can be adjusted through the sliding grooves 3 and the fixing holes 2 to meet the detection needs of different instruments during operation.

Claims

1. A sensor mounting structure for a device instrument comprising a device base (1), characterised in that: The upper surface of the equipment base (1) is equipped with a fixing plate (6). There are two sets of fixing plates (6), two in each set, which are symmetrically distributed on the upper surface of the equipment base (1). The fixing plate (6) is provided with a through groove (17), and the through groove (17) is provided with a second roller groove (18); A flap (7) is installed between the fixed plates (6), and an installation cavity (9) is formed between the flaps (7). A rubber strip (8) is installed on the upper surface of the flap (7). There are multiple rubber strips (8) evenly distributed on the upper surface of the flap (7). A screw hole (10) is opened on the flap (7). There are five screw holes (10). The flip plate (7) has flip plate grooves (13) on both sides. A first roller (14) is installed in the flip plate groove (13). A connecting column (15) is installed on the first roller (14). A second roller (16) is installed on the connecting column (15). A side plate (11) is installed on the flip plate groove (13). A side plate groove (12) is opened on the side plate (11). The first roller (14) is located inside the flip plate groove (13), and there is a gap between the first roller (14) and the flip plate groove (13). The connecting column (15) passes through the through groove (17), and the second roller (16) is located inside the second roller groove (18). The equipment base (1) has sliding grooves (3) on both sides of its surface, and fixing holes (2) are provided above and below the sliding grooves (3).

2. A sensor mounting structure for an apparatus instrument according to claim 1, characterized in that: A third roller (19) is slidably installed in the groove (3). A rotating shaft (28) is installed on the third roller (19). A connecting block (20) is installed on the rotating shaft (28). An upper clamping block (22) is installed on the connecting block (20). A lower clamping block (24) is installed below the upper clamping block (22). A bolt (23) is spirally installed on the connecting block (20). A torsion cap (21) is installed on the upper end of the bolt (23). The bolt (23) passes through the connecting block (20).

3. A sensor mounting structure for an apparatus instrument according to claim 2, characterized in that: The upper and lower surfaces of the connecting block (20) are fixedly installed with fixing blocks (27), and fixing posts (26) are inserted through the fixing blocks (27). The fixing posts (26) are located inside the fixing holes (2).

4. A sensor mounting structure for an apparatus instrument according to claim 3, characterized in that: An mounting plate (5) is installed inside the connecting block (20), and bolt holes (25) are provided on the mounting plate (5), and bolts (23) pass through the bolt holes (25).

5. A sensor mounting structure for an apparatus instrument according to claim 4, characterized in that: The diameter of the first roller (14) is smaller than that of the second roller (16).

6. A sensor mounting structure for an apparatus instrument according to claim 5, characterized in that: The mounting plate (5) is equipped with a sensor (4).