Optical analysis and detection mechanism
By using a motor-driven rotating wheel and linkage system, along with a push plate and electric push rod, the problems of unstable transfer and inconvenient separation and storage of test pieces in optical analysis and testing equipment are solved, thereby improving testing efficiency and process continuity.
Patent Information
- Application Number
- CN202520421715.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-03-12
AI Technical Summary
In existing optical analysis and inspection equipment, the positional shift and stacking of the test piece during transport lead to low inspection efficiency. The lack of efficient separation and storage mechanisms also affects the continuity of the inspection process.
The system uses a motor-driven rotating wheel to drive a connecting rod, which in turn moves the first and second push plates up and down via a U-shaped pusher block. In conjunction with an auxiliary push plate, it enables efficient cyclic feeding of the test parts from the storage tank to the conveyor belt. The system also uses an electric push rod to automatically separate and collect the defective parts.
It improves testing efficiency, ensures that the test piece moves stably under the testing equipment, reduces manual intervention, and achieves efficient separation and storage of the test piece.
Smart Images

Figure CN223897345U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to optical detection equipment technical field, specifically, relate to a kind of optical analysis detection mechanism. BACKGROUND
[0002] In the current optical analysis detection industry, there are many bottlenecks in the processing flow of the existing equipment to the measured piece. On the one hand, the traditional conveying device is difficult to accurately and stably convey the measured piece to the detection equipment below, and the measured piece is prone to position deviation, accumulation and other problems during the conveying process, which leads to low detection efficiency and difficulty in ensuring accuracy. On the other hand, when the measured piece with problems is detected, there is a lack of efficient and reasonable separation and storage mechanism, which often needs manual handling, which not only consumes manpower, but also easily affects the coherence of the overall detection process. In order to solve at least part of the above problems, an optical analysis detection mechanism is proposed. SUMMARY
[0003] The utility model provides a kind of optical analysis detection mechanism, the utility model is driven by motor and is moved to the first push plate and the second push plate by connecting rod and U-shaped push block, the first auxiliary push plate and the second auxiliary push plate are moved up and down, realize the efficient circulation feeding of measured piece from storage groove to conveying belt, improve detection efficiency.
[0004] An optical analysis detection mechanism includes a conveying belt assembly, characterized in that one end of the conveying belt assembly is fixedly provided with a support leg, and the other end is fixedly provided on one side of a support seat. The end of the conveying belt assembly corresponding to the support seat is the feeding end, and the other side of the support seat is fixedly provided with a storage groove.
[0005] The bottom of the storage groove is a slope surface, and the end of the slope surface away from the support seat is higher than the end close to the support seat. A second auxiliary push plate is fixedly connected to the bottom end position of the slope surface in the support seat. A first auxiliary push plate is fixedly connected to the position of the conveying belt assembly in the support seat. The upper side of the first auxiliary push plate and the second auxiliary push plate is a slope surface.
[0006] As a further limitation of the technical solution, a first push plate is provided between the first auxiliary push plate and the second auxiliary push plate. A second push plate is provided on the other side of the second auxiliary push plate. The first push plate and the second push plate are respectively fixed on the upper ends of the two sides of a U-shaped push block. The side of the U-shaped push block fixedly connected to the first push plate is higher than the side fixedly connected to the second push plate.
[0007] As a further limitation of this technical solution, one side of the U-shaped push block is rotatably connected to one end of the connecting rod, the other end of the connecting rod is rotatably connected to one edge of the rotating wheel, the central axis of the rotating wheel is rotatably connected to the mounting plate, the mounting plate is fixedly connected to the support base, a motor is fixedly installed on one side of the mounting plate, and the output shaft of the motor is fixedly connected to the central axis of the rotating wheel.
[0008] As a further limitation of this technical solution, limit plates are fixedly provided on both sides of the upper part of one end of the outer shell of the conveyor belt assembly. The limit plates are arranged in a figure-eight shape, and the distance between the ends of the limit plates corresponding to the support base is greater than the distance between the other ends.
[0009] As a further limitation of this technical solution, a support groove is fixedly provided on one side of the outer shell of the conveyor belt assembly corresponding to the narrow end of the limiting plate, the support groove is fixedly connected to the ejection channel on one side of the conveyor belt assembly, and an ejection component is fixedly provided on the other side of the outer shell of the conveyor belt assembly corresponding to the position of the ejection channel.
[0010] As a further limitation of this technical solution, the ejection assembly includes an electric push rod and a push plate, the push plate fixing the telescopic rod of the electric push rod, and the housing of the electric push rod fixing the housing of the conveyor belt assembly.
[0011] As a further limitation of this technical solution, the outer shell of the conveyor belt assembly is also fixedly connected to a bracket, the bracket is fixedly connected to a detection device, and the detection device is disposed above the push plate and the ejection channel.
[0012] As a further limitation of this technical solution, the upper sides of the first push plate and the second push plate are both inclined surfaces, the upper sides of the first push plate, the second push plate, the first auxiliary push plate and the second auxiliary push plate have the same angle with the horizontal plane, the first auxiliary push plate is higher than the second auxiliary push plate, the upper sides of the first auxiliary push plate and the first push plate can be on the same inclined surface, and the upper sides of the second auxiliary push plate and the second push plate can be on the same inclined surface.
[0013] Compared with the prior art, the advantages and positive effects of this utility model are:
[0014] The conveyor belt assembly, in conjunction with the figure-eight limiting plate, can gather the workpiece to be tested into the middle of the conveyor belt, allowing it to move stably under the testing equipment;
[0015] The motor drives the rotating wheel, which in turn drives the U-shaped push block via a connecting rod, causing the first and second push plates to move up and down. In conjunction with the first and second auxiliary push plates, the test piece is efficiently fed from the storage tank to the conveyor belt, thus improving the testing efficiency.
[0016] When a faulty component is detected, the electric push rod of the ejector assembly drives the push plate, which can quickly push the faulty component from the ejection channel into the support slot, realizing the automatic separation and storage of the faulty component and reducing manual intervention;
[0017] The sloping surface at the bottom of the storage tank facilitates the gathering of the test pieces. The upper slope angles of the first auxiliary push plate, the second auxiliary push plate, the first push plate, and the second push plate are the same, and they can be aligned during movement, ensuring smooth transfer of the test pieces between the components. Attached Figure Description
[0018] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. Obviously, the drawings described below are merely some embodiments of this utility model, and those skilled in the art can obtain other drawings based on these drawings without creative effort. In the drawings:
[0019] Figure 1 The three-dimensional representation of this utility model Figure One ;
[0020] Figure 2 The three-dimensional representation of this utility model Figure Two ;
[0021] Figure 3 The three-dimensional representation of this utility model Figure Three ;
[0022] Figure 4 This is a partial side view of the present invention;
[0023] Figure 5 The three-dimensional representation of this utility model Figure Four .
[0024] In the diagram: 1. Conveyor belt assembly; 101. Support base; 102. Support leg; 2. Bracket; 3. Detection equipment; 4. Push-out channel; 5. Support groove; 6. Limiting plate; 7. Storage groove; 701. Sloping surface; 702. First auxiliary push plate; 703. Second auxiliary push plate; 8. Push plate; 9. Electric push rod; 11. Mounting plate; 12. Rotary wheel; 13. Motor; 14. Connecting rod; 15. U-shaped push block; 151. First push plate; 152. Second push plate. Detailed Implementation
[0025] The following is in conjunction with the appendix Figures 1-5 The present invention will be further described in terms of the embodiments and implementation methods.
[0026] The specific embodiments of this utility model are as follows:
[0027] An optical analysis and testing mechanism includes a conveyor belt assembly 1, characterized in that a support leg 102 is fixedly provided at one end of the conveyor belt assembly 1, and a support seat 101 is fixedly provided on one side of the other end. The end of the conveyor belt assembly 1 corresponding to the support seat 101 is the feeding end, and a storage groove 7 is fixedly provided on the other side of the support seat 101.
[0028] The bottom of the storage slot 7 is a sloping surface 701. The end of the sloping surface 701 away from the support base 101 is higher than the end close to the support base 101. A second auxiliary push plate 703 is fixedly connected inside the support base 101 at the position corresponding to the bottom of the sloping surface 701. A first auxiliary push plate 702 is fixedly connected inside the support base 101 at the position corresponding to the conveyor belt assembly 1. The upper sides of both the first auxiliary push plate 702 and the second auxiliary push plate 703 are sloping surfaces.
[0029] In this embodiment, the storage slot 7 is used to place the test piece. The bottom slope 701 of the storage slot 7 can effectively gather the test piece, causing it to accumulate at the bottom of the slope 701. The conveyor belt assembly 1 adopts existing technology, which will not be described in detail here. The conveyor belt assembly 1 is used to transport the test piece.
[0030] A first push plate 151 is provided between the first auxiliary push plate 702 and the second auxiliary push plate 703, and a second push plate 152 is provided on the other side of the second auxiliary push plate 703. The first push plate 151 and the second push plate 152 are respectively fixed to the upper ends of the two sides of the U-shaped push block 15. The side of the U-shaped push block 15 that is fixedly connected to the first push plate 151 is higher than the side that is fixedly connected to the second push plate 152.
[0031] In this embodiment, the first push plate 151 and the second push plate 152 can push the test piece to move. The upper side of the second auxiliary push plate 703 is an inclined surface. When the second auxiliary push plate 703 and the inclined surface 701 are in the same inclined surface position, the test piece slides down under the action of gravity. The highest point of the upper side of the second auxiliary push plate 703 connects to the lowest point of the inclined surface 701. The test piece slides from the second auxiliary push plate 703 onto the second push plate 152. The second push plate 152 pushes the test piece up to the first auxiliary push plate 702 and slides down onto the first push plate 151. The first push plate 151 moves up, and the test piece slides from the first push plate 151 onto the conveyor belt of the conveyor belt assembly 1.
[0032] One side of the U-shaped push block 15 is rotatably connected to one end of the connecting rod 14, and the other end of the connecting rod 14 is rotatably connected to one edge of the rotating wheel 12. The central axis of the rotating wheel 12 is rotatably connected to the mounting plate 11, and the mounting plate 11 is fixedly connected to the support base 101. A motor 13 is fixedly installed on one side of the mounting plate 11, and the output shaft of the motor 13 is fixedly connected to the central axis of the rotating wheel 12.
[0033] In this embodiment, the rotation of the output shaft of the motor 13 can drive the rotating wheel 12 to rotate, the rotating wheel 12 can drive the connecting rod 14 to swing, the connecting rod 14 can drive the U-shaped push block 15 to move up and down, the U-shaped push block 15 can drive the first push plate 151 and the second push plate 152 to move up and down. When the U-shaped push block 15 moves down, the second push plate 152 and the second auxiliary push plate 703 are aligned. When the U-shaped push block 15 moves up, the first push plate 151 and the first auxiliary push plate 702 are aligned.
[0034] Limiting plates 6 are fixedly installed on both sides of the upper part of one end of the outer shell of the conveyor belt assembly 1. The limiting plates 6 are arranged in a figure-eight shape. The distance between the two ends of the limiting plates 6 corresponding to the support base 101 is greater than the distance between the other ends, so as to facilitate the gathering of the test piece to the upper middle part of the conveyor belt assembly 1 and realize the movement of the test piece to the test device 3 below.
[0035] A support groove 5 is fixedly provided on one side of the outer shell of the conveyor belt assembly 1 corresponding to the narrow end of the limiting plate 6. The support groove 5 is fixedly connected to the ejection channel 4 on one side of the conveyor belt assembly 1. An ejection component is fixedly provided on the other side of the outer shell of the conveyor belt assembly 1 corresponding to the position of the ejection channel 4.
[0036] In this embodiment, the support groove 5 is used to receive the faulty test piece. When the test piece is found to have a problem, the ejection assembly pushes the test piece from the ejection channel 4 into the support groove 5.
[0037] The ejection assembly includes an electric push rod 9 and a push plate 8. The push plate 8 fixes the telescopic rod of the electric push rod 9, and the housing of the electric push rod 9 fixes the housing of the conveyor belt assembly 1.
[0038] In this embodiment, the telescopic rod of the electric push rod 9 can drive the push plate 8 to move.
[0039] The outer shell of the conveyor belt assembly 1 is also fixedly connected to the bracket 2, and the bracket 2 is fixedly connected to the detection device 3, which is located above the push plate 8 and the ejection channel 4.
[0040] The upper sides of the first push plate 151 and the second push plate 152 are both inclined surfaces. The angles between the upper sides of the first push plate 151, the second push plate 152, the first auxiliary push plate 702 and the second auxiliary push plate 703 and the horizontal plane are the same. The first auxiliary push plate 702 is higher than the second auxiliary push plate 703. The upper sides of the first auxiliary push plate 702 and the first push plate 151 can be on the same inclined surface. The upper sides of the second auxiliary push plate 703 and the second push plate 152 can be on the same inclined surface.
[0041] The method of using this utility model is as follows:
[0042] Place the test piece in the storage slot 7, connect the power supply to the motor 13, electric push rod 9, and testing equipment 3, ensuring all equipment is in normal working condition, turn on the drive device of the conveyor belt assembly 1 to start the conveyor belt; simultaneously start the motor 13 control switch, the motor 13 drives the rotating wheel 12 to rotate, thereby causing the first push plate 151 and the second push plate 152 to move up and down. Under the action of the bottom slope surface 701 of the storage slot 7, the test piece gathers at the bottom and slides onto the second push plate 152 via the second auxiliary push plate 703. The second push plate 152 moves upward to push the test piece onto the first auxiliary push plate 702, and then slides it onto the first push plate 151. The first push plate 151 moves upward to slide the test piece onto the conveyor belt. The test piece moves with the conveyor belt and is guided by the limit plate 6 to the bottom of the testing equipment 3 for testing. During the testing process, if a problem is found in the test piece, the electric push rod 9 is activated and the push plate 8 pushes the problem piece from the ejection channel 4 into the support groove 5. Test pieces without problems are carried away by the conveyor belt assembly 1.
[0043] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. An optical analysis and testing mechanism, comprising a conveyor belt assembly (1), characterized in that, One end of the conveyor belt assembly (1) is fixedly provided with a support leg (102), and the other end is fixedly provided with one side of a support seat (101). The support seat (101) is located at one end of the conveyor belt assembly (1) as the feeding end, and the other side of the support seat (101) is fixedly provided with a storage groove (7). The bottom of the storage slot (7) is a slope (701). The end of the slope (701) away from the support base (101) is higher than the end close to the support base (101). A second auxiliary push plate (703) is fixedly connected to the bottom position of the slope (701) in the support base (101). A first auxiliary push plate (702) is fixedly connected to the position of the conveyor belt assembly (1) in the support base (101). The upper sides of the first auxiliary push plate (702) and the second auxiliary push plate (703) are both slopes.
2. The optical analysis and testing mechanism according to claim 1, characterized in that: A first push plate (151) is provided between the first auxiliary push plate (702) and the second auxiliary push plate (703), and a second push plate (152) is provided on the other side of the second auxiliary push plate (703). The first push plate (151) and the second push plate (152) are respectively fixed on the upper ends of the two sides of the U-shaped push block (15). The side of the U-shaped push block (15) that is fixedly connected to the first push plate (151) is higher than the side that is fixedly connected to the second push plate (152).
3. The optical analysis and testing mechanism according to claim 2, characterized in that: One side of the U-shaped push block (15) is rotatably connected to one end of the connecting rod (14), and the other end of the connecting rod (14) is rotatably connected to the edge of one side of the rotating wheel (12). The central axis of the rotating wheel (12) is rotatably connected to the mounting plate (11). The mounting plate (11) is fixedly connected to the support base (101). A motor (13) is fixedly installed on one side of the mounting plate (11), and the output shaft of the motor (13) is fixedly connected to the central axis of the rotating wheel (12).
4. The optical analysis and testing mechanism according to claim 3, characterized in that: Limiting plates (6) are fixedly installed on both sides of the upper part of one end of the outer shell of the conveyor belt assembly (1). The limiting plates (6) are arranged in a figure-eight shape. The distance between the two ends of the limiting plates (6) corresponding to the support base (101) is greater than the distance between the other ends.
5. The optical analysis and testing mechanism according to claim 4, characterized in that: A support groove (5) is fixedly provided on one side of the outer shell of the conveyor belt assembly (1) corresponding to the narrow end of the limiting plate (6). The support groove (5) is fixedly connected to the ejection channel (4) on one side of the conveyor belt assembly (1). An ejection component is fixedly provided on the other side of the outer shell of the conveyor belt assembly (1) corresponding to the position of the ejection channel (4).
6. The optical analysis and testing mechanism according to claim 5, characterized in that: The ejection assembly includes an electric push rod (9) and a push plate (8), the push plate (8) fixing the telescopic rod of the electric push rod (9), and the housing of the electric push rod (9) fixing the housing of the conveyor belt assembly (1).
7. An optical analysis and testing mechanism according to claim 6, characterized in that: The outer shell of the conveyor belt assembly (1) is also fixedly connected to a bracket (2), which is fixedly connected to a detection device (3). The detection device (3) is located above the push plate (8) and the ejection channel (4).
8. The optical analysis and testing mechanism according to claim 7, characterized in that: The upper sides of the first push plate (151) and the second push plate (152) are both inclined planes. The angle between the upper sides of the first push plate (151), the second push plate (152), the first auxiliary push plate (702) and the second auxiliary push plate (703) and the horizontal plane is the same. The first auxiliary push plate (702) is higher than the second auxiliary push plate (703). The upper sides of the first auxiliary push plate (702) and the first push plate (151) can be on the same inclined plane. The upper sides of the second auxiliary push plate (703) and the second push plate (152) can be on the same inclined plane.