Precision detection device for glass micro-melting pressure sensor
By designing a glass micro-melting pressure sensor accuracy detection device that includes a base, detection head, rotating rod, and clamping plate, the problem of inconvenient positioning caused by small size is solved, and efficient detection and convenient material unloading are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2026-03-20
AI Technical Summary
The small size of the glass micro-melting pressure sensor makes it inconvenient to limit the movement, which affects the detection efficiency and the convenience of the material feeding operation.
A precision testing device was designed, comprising a base, a detection head, a telescopic rod, a rotating rod, a positioning platform, and a clamping plate. The sensor is limited and rotated by the positioning platform and clamping plate on the rotating rod, and automatic feeding is achieved by combining a buffer platform and a transmission belt.
This improves the detection accuracy and material handling convenience of the glass micro-melting pressure sensor, thereby enhancing operational efficiency.
Smart Images

Figure CN224019210U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to sensor detection technical field especially relates to a kind of precision detection device for glass microfusion pressure sensor. BACKGROUND
[0002] Glass microfusion pressure sensor is through the deformation degree of glass microsoluble film when being pressed to determine pressure size, glass microfusion pressure sensor industry, mainly involves using glass material as sensitive element, through microfusion technology manufactured pressure sensor.
[0003] After pressure sensor production and processing, glass microfusion pressure sensor is placed on workbench to be detected, and because of the use range of glass microfusion pressure sensor, the volume of glass microfusion pressure sensor is small, and the volume of glass microfusion pressure sensor leads to the inconvenience of workbench when limiting glass microfusion pressure sensor, so that glass microfusion pressure sensor is placed in the detection position needing manual adjustment;Glass microfusion pressure sensor needs to be discharged after detection, and because the volume of glass microfusion pressure sensor leads to the inconvenience of operator when taking, thereby affecting the efficiency of glass microfusion pressure sensor discharging. UTILITY MODEL CONTENT
[0004] The utility model aims at solving the problem of the volume of glass microfusion pressure sensor in prior art being small and leading to inconvenient limiting, and provides a kind of precision detection device for glass microfusion pressure sensor.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme:
[0006] A kind of precision detection device for glass microfusion pressure sensor, including base, and the base is equipped with detection head for detecting glass microfusion pressure sensor, the base is fixedly installed with the controller and telescopic rod one matched with detection head, the base is fixedly installed with the vertical plate of symmetrical arrangement, and connecting has rotary rod between two vertical plates, the rotary rod is fixedly installed with the positioning table of uniform distribution, and positioning table is equipped with the clamp plate for clamping glass microfusion pressure sensor by moving piece, the vertical plate is provided with rotation structure for driving rotary rod rotation and discharging glass microfusion pressure sensor.
[0007] Preferably, the detection head is arranged on the output end of the first telescopic rod, the vertical plate is vertically arranged on both sides of the base, the rotary rod is horizontally arranged above the base, the buffer table for receiving the glass microfusion pressure sensor is fixedly installed on the base, the transmission belt for conveying the glass microfusion pressure sensor is installed on the base, the second telescopic rod is fixedly installed on the base, and the push plate for pushing the glass microfusion pressure sensor is fixedly connected to the output end of the second telescopic rod.
[0008] Preferably, the moving piece comprises a notch provided on the positioning table and used for placing the glass micro-fusion pressure sensor, symmetrically arranged guide plates are fixedly installed on the positioning table, a moving rod is slidably sleeved on the guide plates, the clamp plate is arranged on the moving rod, a moving plate is fixedly installed on the moving rod, springs matched with the moving rod are welded between the moving plate and the positioning table, and a pressing structure for pressing the moving plate is arranged on the positioning table.
[0009] Preferably, the moving plate is of a concave structure, the moving plate and the moving rod extend to both sides of the positioning table, the moving rod is horizontally arranged at the both sides of the positioning table, the clamp plate is of an arc structure matched with the glass micro-fusion pressure sensor, soft pads movably abutting against the glass micro-fusion pressure sensor are arranged on the inner wall of the clamp plate, and a flange movably abutting against the glass micro-fusion pressure sensor is arranged on the top end of the clamp plate.
[0010] Preferably, the pressing structure comprises a second motor fixedly installed on the positioning table, a rotating shaft one is fixedly connected to the output end of the second motor, a rotating shaft two is rotatably installed on the positioning table and in transmission connection with the rotating shaft one, gear three and gear four in meshing connection are fixedly installed on the rotating shaft one and the rotating shaft two respectively, and a pressing rod movably abutting against the moving plate is fixedly installed on the rotating shaft one and the rotating shaft two.
[0011] Preferably, the rotating structure comprises a first motor fixedly installed on the vertical plate, a driving rod in transmission connection with the rotating rod is fixedly connected to the output end of the first motor, the driving rod is horizontally arranged below the rotating rod, and gear one and gear two in meshing connection are fixedly installed on the driving rod and the rotating rod respectively.
[0012] Compared with the prior art, the utility model possess following advantages:
[0013] 1. The utility model discloses a plurality of positioning tables are arranged on the rotating rod, and the clamp plate is pressed from both sides positions to the glass micro-fusion pressure sensor by two moving rods, so that the plurality of positioning tables arranged on the rotating rod can clamp the glass micro-fusion pressure sensor simultaneously, and the precision of detecting the glass micro-fusion pressure sensor is improved.
[0014] 2. The utility model discloses the rotation of the rotating rod and the positioning table, drives the glass micro-fusion pressure sensor to overturn with the positioning table, and the glass micro-fusion pressure sensor is discharged with the buffer table and the transmission belt, and the glass micro-fusion pressure sensor is convenient when discharging. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 The structure diagram of the precision detection device for the glass micro-fusion pressure sensor is provided for the utility model.
[0016] Figure 2 A rear view of the precision detection device for the glass micro-fusion pressure sensor is provided in the utility model.
[0017] Figure 3 A positioning table schematic view of the precision detection device for the glass micro-fusion pressure sensor is provided in the utility model.
[0018] Figure 4 A positioning table sectional view of the precision detection device for the glass micro-fusion pressure sensor is provided in the utility model.
[0019] In the figure: 1, base; 2, vertical plate; 3, rotating rod; 4, positioning table; 5, telescopic rod one; 6, detection head; 7, controller; 8, motor one; 9, driving rod; 10, gear one; 11, gear two; 12, notch; 13, guide plate; 14, moving rod; 15, clamp plate; 16, moving plate; 17, spring; 18, motor two; 19, rotating shaft one; 20, rotating shaft two; 21, gear three; 22, gear four; 23, pressure applying rod. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments.
[0021] Reference Figures 1-4 A precision detection device for a glass micro-fusion pressure sensor includes a base 1, and the base 1 is provided with a detection head 6 for detecting the glass micro-fusion pressure sensor. The base 1 is fixedly installed with a controller 7 and a telescopic rod one 5 matched with the detection head 6. The output end of the telescopic rod one 5 drives the detection head 6 to detect the glass micro-fusion pressure sensor. This technical solution is prior art, which will not be described in detail.
[0022] The base 1 is fixedly installed with symmetrically arranged vertical plates 2, and the two vertical plates 2 are connected with a rotating rod 3. The detection head 6 is arranged on the output end of the telescopic rod one 5. The vertical plates 2 are vertically arranged on both sides of the base 1. The rotating rod 3 is horizontally arranged above the base 1.
[0023] The base 1 is fixedly provided with a buffer table for receiving the glass micro-fusion pressure sensor, and the base 1 is provided with a transmission belt for conveying the glass micro-fusion pressure sensor, and the base 1 is fixedly provided with an extension rod two, and the extension rod two is fixedly connected with a pushing plate for pushing the glass micro-fusion pressure sensor, the buffer table can receive the falling glass micro-fusion pressure sensor, and the extension rod two drives the pushing plate to push the glass micro-fusion pressure sensor on the buffer table to the transmission belt, thereby realizing the automatic discharging of the glass micro-fusion pressure sensor.
[0024] The rotating rod 3 is fixedly provided with uniformly distributed positioning tables 4, and the positioning tables 4 are provided with clamping plates 15 for clamping the glass micro-fusion pressure sensor through moving pieces, and it is supplemented that the number of the positioning tables 4 is controlled according to the specification of the rotating rod 3, so that the base 1 can simultaneously detect multiple glass micro-fusion pressure sensors, and the accuracy of the glass micro-fusion pressure sensor detection can be improved by simultaneously detecting the glass micro-fusion pressure sensor and comparing multiple detection results.
[0025] The moving piece includes a notch 12 opened on the positioning table 4 and used for placing the glass micro-fusion pressure sensor, the positioning table 4 is fixedly provided with symmetrically arranged guide plates 13, the guide plates 13 are slidably sleeved with moving rods 14, the clamping plates 15 are arranged on the moving rods 14, and the guide plates 13 guide the moving rods 14 to stably pull the moving plates 16 and the clamping plates 15 when the moving rods 14 move.
[0026] The moving rod 14 is fixedly provided with a moving plate 16, and the moving plate 16 and the positioning table 4 are welded with springs 17 matched with the moving rod 14, the moving plate 16 is of a concave structure, and the moving plate 16 and the moving rod 14 extend to both sides of the positioning table 4, the moving rod 14 is horizontally arranged at both sides of the positioning table 4, and the spring 17 resets the moving plate 16 and the clamping plate 15, so that when the moving plate 16 is in an idle state, the spring 17 can drive the clamping plate 15 and the moving plate 16 to return to the initial position, and the moving speed of the moving rod 14 can be prevented from being too fast to cause excessive impact on the glass micro-fusion pressure sensor.
[0027] The clamping plate 15 is of an arc structure matched with the glass micro-fusion pressure sensor, the inner wall of the clamping plate 15 is provided with a soft pad movably abutting against the glass micro-fusion pressure sensor, and the top end of the clamping plate 15 is provided with a flange movably abutting against the glass micro-fusion pressure sensor, the clamping plate 15 is arranged as an arc structure matched with the glass micro-fusion pressure sensor, so as to increase the contact area of the clamping plate 15 and the glass micro-fusion pressure sensor, the soft pad arranged on the clamping plate 15 can protect the glass micro-fusion pressure sensor, and the flange on the clamping plate 15 can press the edge of the glass micro-fusion pressure sensor from the top position.
[0028] The positioning table 4 is provided with a pressing structure for pressing the moving plate 16.
[0029] The pressing structure comprises a motor two 18 fixedly installed on the positioning table 4, and the output end of the motor two 18 is fixedly connected with a rotating shaft one 19, the rotating shaft two 20 in transmission connection with the rotating shaft one 19 is rotatably installed on the positioning table 4, and the rotating shaft one 19 and the rotating shaft two 20 are respectively fixedly installed with the gear three 21 and the gear four 22 in meshing connection, the rotating shaft one 19 and the rotating shaft two 20 are fixedly installed with the pressure rod 23 in active abutment with the moving plate 16, the gear three 21 and the gear four 22 adopt the same number of straight gears, so that the rotating shaft one 19 and the rotating shaft two 20 can be driven in opposite directions at the same speed.
[0030] The vertical plate 2 is provided with a rotating structure for driving the rotating rod 3 to rotate and discharging the glass micro-fusion pressure sensor.
[0031] The rotating structure comprises a motor one 8 fixedly installed on the vertical plate 2, and the output end of the motor one 8 is fixedly connected with a driving rod 9 in transmission connection with the rotating rod 3, the driving rod 9 is horizontally arranged below the rotating rod 3, and the driving rod 9 and the rotating rod 3 are respectively fixedly installed with the gear one 10 and the gear two 11 in meshing connection, the gear one 10 and the gear two 11 adopt straight gears, and through the driving of the motor one 8, the rotating rod 3 discharges the glass micro-fusion pressure sensor in the rotating process, so that the glass micro-fusion pressure sensor is more convenient in the discharging process.
[0032] It should be noted that the specific type and specification of the telescopic rod one 5, the motor one 8 and the motor two 18 need to be determined according to the actual specification of the device, and the specific selection calculation method adopts the existing technology in the art, so it is not described here.
[0033] The utility model can be described by the following operation mode to explain its function principle:
[0034] The glass micro-fusion pressure sensor is placed in the notch 12;
[0035] The motor two 18 drives the rotating shaft one 19 to rotate, the rotating shaft one 19 drives the rotating shaft two 20 to rotate through the meshing connection of the gear three 21 and the gear four 22 when rotating, the rotating shaft one 19 and the rotating shaft two 20 drive the pressure rod 23 to press the moving plate 16 when rotating, the moving plate 16 drives the moving rod 14 to slide on the guide plate 13, the spring 17 is stressed, the moving rod 14 drives the clamp plate 15 to press the glass micro-fusion pressure sensor from both sides, and the flange on the clamp plate 15 can press the glass micro-fusion pressure sensor from the top;
[0036] The controller 7 sends a signal to the telescopic rod 5, so that the output end of the telescopic rod 5 is telescoped to drive the detection head 6 to detect the glass micro-fusion pressure sensor; when the glass micro-fusion pressure sensor is detected, if the detection result is up to the standard, a closing signal is immediately sent to the output end of the motor 2 18, so that the clamping plate 15 is disconnected with the glass micro-fusion pressure sensor;
[0037] The motor 1 8 drives the driving rod 9 to rotate, and the driving rod 9 drives the rotating rod 3 to rotate through the meshing connection of the gear 1 0 and the gear 2 11 when rotating, so that the rotating rod 3 drives the positioning table 4 and the glass micro-fusion pressure sensor to overturn, the glass micro-fusion pressure sensor falls on the buffer table, the output end of the telescopic rod 2 is telescoped to drive the pushing plate to push the glass micro-fusion pressure sensor to the conveying belt for conveying, the controller 7 sends a signal to the motor 2 18, so that the glass micro-fusion pressure sensor with a detection result not up to the standard falls on the buffer table, and the operator collects the glass micro-fusion pressure sensor.
[0038] The above is only a preferred specific embodiment of the present application, but the protection scope of the present application is not limited to this, any skilled person in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.
Claims
1. A precision detection device for a glass micro-melting pressure sensor, comprising a base (1), and a detection head (6) for detecting the glass micro-melting pressure sensor is provided on the base (1), wherein a controller (7) and a telescopic rod (5) cooperating with the detection head (6) are fixedly installed on the base (1), characterized in that, The base (1) is fixedly installed with symmetrically arranged upright plates (2), and a rotating rod (3) is connected between the two upright plates (2). The rotating rod (3) is fixedly installed with evenly distributed positioning platforms (4), and the positioning platforms (4) are provided with a clamping plate (15) for clamping the glass micro-melting pressure sensor through a moving part. The upright plate (2) is provided with a rotating structure that drives the rotating rod (3) to rotate and feeds the glass micro-melting pressure sensor.
2. The accuracy detection device for a glass micro-fusion pressure sensor according to claim 1, characterized in that, The detection head (6) is located on the output end of the telescopic rod (5), the upright plate (2) is vertically located on both sides of the base (1), the rotating rod (3) is horizontally located above the base (1), a buffer platform for receiving the glass micro-melting pressure sensor is fixedly installed on the base (1), a transmission belt for conveying the glass micro-melting pressure sensor is installed on the base (1), a telescopic rod (2) is fixedly installed on the base (1), and a push plate for pushing the glass micro-melting pressure sensor is fixedly connected to the output end of the telescopic rod (2).
3. The accuracy detection device for a glass micro-fusion pressure sensor according to claim 1, characterized in that, The movable component includes a notch (12) formed on the positioning platform (4) for placing the glass micro-melting pressure sensor. A guide plate (13) is fixedly installed on the positioning platform (4). A moving rod (14) is slidably sleeved on the guide plate (13). A clamp plate (15) is provided on the moving rod (14). A moving plate (16) is fixedly installed on the moving rod (14). A spring (17) that cooperates with the moving rod (14) is welded between the moving plate (16) and the positioning platform (4). A pressing structure is provided on the positioning platform (4) for pressing the moving plate (16).
4. The accuracy detection device for a glass micro-fusion pressure sensor according to claim 3, characterized in that, The movable plate (16) has a concave structure, and the movable plate (16) and the movable rod (14) extend to both sides outside the positioning platform (4). The movable rod (14) is horizontally set on both sides of the positioning platform (4). The clamp plate (15) is an arc-shaped structure that cooperates with the glass micro-melting pressure sensor. The inner wall of the clamp plate (15) is provided with a soft pad that moves against the glass micro-melting pressure sensor. The top of the clamp plate (15) is provided with a flange that moves against the glass micro-melting pressure sensor.
5. The accuracy detection device for a glass micro-fusion pressure sensor according to claim 3, characterized in that, The pressing structure includes a second motor (18) fixedly installed on the positioning platform (4), and a first rotating shaft (19) fixedly connected to the output end of the second motor (18). A second rotating shaft (20) rotatably installed on the positioning platform (4) and drivenly connected to the first rotating shaft (19) is also installed on the first rotating shaft (19) and the second rotating shaft (20). A third gear (21) and a fourth gear (22) are respectively fixedly installed on the first rotating shaft (19) and the second rotating shaft (20). A pressure rod (23) is fixedly installed on the first rotating shaft (19) and the second rotating shaft (20) and moves against the moving plate (16).
6. The accuracy detection device for a glass micro-fusion pressure sensor according to claim 1, characterized in that, The rotating structure includes a motor (8) fixedly installed on the upright plate (2), and the output end of the motor (8) is fixedly connected to a drive rod (9) that is connected to the rotating rod (3). The drive rod (9) is horizontally positioned below the rotating rod (3), and gears (10) and (11) are fixedly installed on the drive rod (9) and the rotating rod (3) respectively.