Slide feeding mechanism applied to full-automatic pollen detection equipment
By using a hollow structure and a balanced component in the fully automatic pollen detection equipment, the lag and accuracy problems caused by the tilt of the glass are solved, and the stability and precise loading of the glass are achieved, and the operation efficiency and stability of the equipment are improved.
Patent Information
- Application Number
- CN202422412903.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-10-08
AI Technical Summary
In the existing fully automatic pollen detection equipment, the slope of the slide in the loading mechanism causes lag and poor loading accuracy, affecting the stability of the device.
A glass-loading mechanism is designed, using a hollow structure vertical frame and balanced assembly, including a transmission roller and a driven roller driven through a feed belt, combined with a bidirectional stepper motor and bevel gear meshing to ensure the stability and accuracy of the glass during the loading process.
It improves the stability and accuracy of the loading of the slide, reduces the risk of failure during equipment operation, and improves the efficiency and stability of the automated detection equipment.
Smart Images

Figure CN223229622U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of automatic feeding mechanisms, in particular to a glass slide feeding mechanism used in fully automatic pollen detection equipment. Background Art
[0002] Pollen monitoring technology is constantly improving as demand for environmental monitoring and meteorological services increases. Pollen is one of the main allergens that cause allergic diseases such as allergic rhinitis and asthma. Therefore, accurately monitoring and predicting pollen concentrations is crucial for preventing pollen allergies.
[0003] An invention patent application filed by one of the applicants on January 30, 2024, with publication number CN118050531A, discloses a fully automatic pollen collection and intelligent identification instrument, which achieves the purpose of automatic pollen detection. The above-mentioned scheme includes a transfer robot (1), a loading mechanism (3), a virtual impactor (4), a heating mechanism (2) and a receiving mechanism (5). The loading mechanism (3) is loaded with a plurality of glass slides. The loading mechanism (3) pushes a glass slide onto the transfer robot (1) at a time and is controlled by the transfer robot (1) to transfer it to the virtual impactor (4). The visual system is used to amplify and read the recorded pollen data, thereby realizing the detection of pollen data in the area.
[0004] After a period of practical application, the above technical solution was found to have some deficiencies in the feeding structure and there is still room for optimization and improvement, such as Figure 1 As shown, when the instrument is used, the glass slides are manually pre-loaded into the loading mechanism (3), and multiple glass slides are loaded at a time. When working, the loading mechanism (3) ejects one glass slide at a time onto the transfer robot (1). In actual use, when the glass slides are manually loaded, they are injected from the top of the loading mechanism (3) and fall naturally. During this process, if the horizontal angle of the glass slide deviates, it will tilt inside the loading mechanism (3), which will cause the glass slide to be stuck when it is discharged or it will be difficult to push the glass slide out of the loading mechanism (3) due to the tilt of the glass slide. The accuracy of glass slide loading is also poor, which affects the stability of the overall operation of the device. For this reason, an improved loading component (6) is designed, and a glass slide loading mechanism for fully automatic pollen detection equipment is specifically proposed to solve the problems existing in actual use. Utility Model Content
[0005] The purpose of the utility model is to provide a glass slide loading mechanism used in fully automatic pollen detection equipment, which has the advantage of preventing the glass slides from tilting in the loading mechanism when loading multiple glass slides, thereby facilitating the glass slide loading operation, and solving the problems in the prior art of the device in which the glass slide loading becomes stuck, the loading accuracy is poor, and the stability of the device is affected during use.
[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: a glass slide loading mechanism for a fully automatic pollen detection device, comprising a base plate, a storage rack fixedly mounted on the upper surface of the base plate, wherein loading slides are stacked and placed in the storage rack, and balancing components are fixedly mounted on both sides of the storage rack;
[0007] The material storage rack includes a vertical frame, a panel is fixedly installed on the front of the vertical frame, both sides of the vertical frame adopt a hollow structure design, and adapter frames are fixedly installed on both sides of the upper and lower ends of the vertical frame;
[0008] The balancing assembly includes a driving roller and a driven roller, which are respectively rotatably mounted on the outside of the storage rack through an adapter rack. The driving roller and the driven roller are installed through a conveyor belt. The outer side of one side of the conveyor belt passes through the hollow position on the vertical frame and contacts the edge of the loading sheet but is not fixedly connected.
[0009] Preferably, a support frame is fixedly mounted in the middle of the upper end surface of the base plate, a mounting frame is fixedly mounted on the inner side of the support frame, a limiting frame is fixedly mounted on the inner side of the mounting frame, the upper end surface of the limiting frame contacts the lower end surface of the loading plate but is not fixedly connected, the bottom of the storage rack is fixedly connected to the inner top of the mounting rack, and a guide frame is fixedly mounted on the rear end of the mounting rack, with the inner bottom of the guide frame and the upper end surface of the limiting frame being in the same plane. In the design, a support frame is mounted in the middle of the upper end surface of the base plate, and the mounting frame is fixed on the inner side of the support frame. On the inner side of the mounting frame, the limiting frame is fixedly mounted, with its upper end surface contacting the lower end surface of the loading plate but not forming a fixed connection. The bottom of the storage rack is fixedly connected to the inner top of the mounting rack, while the guide frame is fixed on the rear end of the mounting rack, with the inner bottom of the guide frame and the upper end surface of the limiting frame remaining in the same plane. The non-fixed contact between the limiting frame and the loading plates ensures that the loading plates can be stably stacked in the storage rack during the loading process, and the non-fixed connection allows the loading plates to be easily discharged when needed.
[0010] Preferably, a discharge mechanism is fixedly mounted on the bottom of the mounting frame, and the discharge mechanism includes a feeding cylinder, which is fixedly mounted on the bottom of the mounting frame, a connecting frame is fixedly mounted on the rear end of the feeding cylinder, a push plate is fixedly mounted on the top of the connecting frame, the push plate is movably inserted into the inner side of the guide frame, and the front end of the push plate can pass through the bottom of the vertical frame on the side opposite to the mounting frame. In the design, a discharge mechanism is fixedly mounted on the bottom of the mounting frame, and the mechanism includes a feeding cylinder. The feeding cylinder is fixed to the bottom of the mounting frame, a connecting frame is fixed on the rear end thereof, and a push plate is fixedly mounted on the top of the connecting frame. The push plate can be movably inserted into the inner side of the guide frame, and its front end design allows it to pass through the bottom of the vertical frame on the side opposite to the mounting frame. The integration of the feeding cylinder realizes the automation of the glass slide pushing process, and the movably inserted design of the push plate allows precise control of the position and distance of the glass slide pushed out.
[0011] Preferably, the loading plate comprises two clamping frames, each of which has a through hole and has slides clamped and mounted on opposite sides. The loading plate has a square cross-section, allowing the loading plate to pass through the bottom of the panel opposite the mounting frame. In this design, the loading plate is composed of two clamping frames, each of which has a through hole and has slides clamped and mounted on opposite sides. The loading plate has a square cross-section, allowing it to pass through the bottom of the panel opposite the mounting frame. The square cross-section design provides greater structural stability, and the loading plate design allows for quick and easy loading and unloading of slides, while also protecting the slides.
[0012] Preferably, the panel adopts a hollow structure design, and the panel is fixedly connected to the stand by mounting screws. The panel adopts a hollow structure design and is fixedly connected to the stand by mounting screws. The hollow design reduces the use of materials, thereby reducing the overall weight. The hollow part also allows the operator to promptly understand the remaining status of the loading sheet.
[0013] Preferably, the balancing assembly also includes a bidirectional stepper motor, which is fixedly mounted on the top rear end of the stand. First bevel gears are installed at both ends of the bidirectional stepper motor. The design integrates a bidirectional stepper motor into the balancing assembly, which is fixedly mounted on the top rear end of the stand. First bevel gears are installed at both ends of the bidirectional stepper motor, allowing the motor to precisely control the movement of the conveyor belt. The bidirectional stepper motor provides precise speed and position control, and the bevel gear transmission ensures high efficiency and stability in power transmission.
[0014] Preferably, the rear end of the drive roller passes through an adapter frame and is driven by a second bevel gear, which meshes with the first bevel gear. In this design, the rear end of the drive roller passes through the adapter frame and is driven by a second bevel gear, which meshes with the first bevel gear. This design ensures accurate and synchronized transmission. The meshing of the bevel gears ensures synchronous movement between the drive roller and the motor, and the bevel gear design simplifies maintenance and adjustment of the mechanism.
[0015] The conveyor belt is preferably designed with a soft rubber material, and its outer wall is provided with transverse ridges. The spacing between adjacent transverse ridges matches the thickness of the slide. The conveyor belt is designed with a soft rubber material and its outer wall is provided with transverse ridges. The spacing of these ridges precisely matches the thickness of the slide, ensuring the stability of the slide during loading. The transverse ridges provide good friction to prevent the slide from slipping during transportation. The soft rubber material adapts to slides of varying thicknesses, providing good compatibility and durability.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] In this utility model, adapter frames are fixedly mounted on the upper and lower ends of each upright frame. These adapter frames serve as mounting bases for the drive roller and driven roller, which are rotatably mounted on the outside of the storage frame via the adapter frames. The balancing assembly includes a drive roller and driven roller, which are mounted on the outside of the storage frame via the adapter frames. These rollers are driven by a conveyor belt, which ensures the stability of the slides during loading. The outer side of the conveyor belt passes through a cutout in the upright frame and contacts the edge of the loading slide, but is not permanently connected. This design allows the loading slide to move smoothly under the conveyor belt while preventing the slides from squeezing or tilting against each other. The balancing assembly also includes a bidirectional stepper motor, fixed to the top rear end of the upright frame and driven by a first bevel gear. This bidirectional stepper motor provides precise speed and position control, ensuring stable movement of the conveyor belt. The rear end of the drive roller passes through the adapter frame and is driven by a second bevel gear, which meshes with the first bevel gear. The meshing design of the bevel gears ensures precise and synchronized transmission, thus maintaining smooth slide transport. This improved loading assembly prevents slide tilting during loading and unloading, ensuring smooth loading and resolving issues with existing technologies, such as slide loading jams and low accuracy. This structure not only improves the efficiency of automated testing equipment and ensures operational stability, but also reduces the risk of failure during operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of a device in the prior art;
[0019] Figure 2 This is a schematic diagram of the improved device of the utility model;
[0020] Figure 3 This is a schematic diagram of the improved feeding assembly structure of the utility model;
[0021] Figure 4 This is a schematic diagram of the bottom plate connection structure of the utility model;
[0022] Figure 5 This is a schematic diagram of the discharge mechanism structure of the utility model;
[0023] Figure 6 This is an exploded schematic diagram of the material storage rack connection structure of the present utility model;
[0024] Figure 7 This is an exploded schematic diagram of the loading plate structure of the present utility model.
[0025] In the figure: 1. Transfer robot; 2. Heating mechanism; 3. Loading mechanism; 4. Virtual impactor; 5. Receiving mechanism; 6. Improved loading assembly; 61. Bottom plate; 62. Support frame; 63. Mounting frame; 631. Limiting frame; 632. Guide frame; 64. Storage rack; 641. Vertical frame; 6411. Adapter frame; 642. Panel; 643. Mounting screws; 65. Loading sheet; 651. Clamping frame; 652. Glass slide; 66. Balancing assembly; 661. Bidirectional stepping motor; 6611. First bevel gear; 662. Transmission roller; 6621. Second bevel gear; 663. Conveyor belt; 664. Driven roller; 67. Discharging mechanism; 671. Feeding cylinder; 672. Connecting frame; 673. Push plate. DETAILED DESCRIPTION
[0026] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0027] Example 1
[0028] like Figures 2 to 7 As shown, the present invention provides an embodiment: a glass slide loading mechanism for a fully automatic pollen detection device, comprising a base plate 61, a storage rack 64 fixedly mounted on the upper end surface of the base plate 61, a loading sheet 65 stacked in the storage rack 64, and a balancing assembly 66 fixedly mounted on both sides of the storage rack 64;
[0029] The storage rack 64 includes a stand 641, a panel 642 is fixedly mounted on the front of the stand 641, both sides of the stand 641 are designed with a hollow structure, and adapter frames 6411 are fixedly mounted on both sides of the upper and lower ends of the stand 641;
[0030] The balancing assembly 66 includes a driving roller 662 and a driven roller 664. The driving roller 662 and the driven roller 664 are respectively rotatably mounted on the outside of the storage rack 64 through the adapter rack 6411. The driving roller 662 and the driven roller 664 are driven and installed through the conveyor belt 663. The outer side of one side of the conveyor belt 663 passes through the hollow position on the stand 641 and contacts the edge of the loading sheet 65 but is not fixedly connected.
[0031] Specifically, adapter frames 6411 are fixedly mounted on either side of the upper and lower ends of the vertical frame 641. These adapter frames 6411 serve as mounting bases for the driving rollers 662 and driven rollers 664, which are rotatably mounted on the outside of the stocker 64 via the adapter frames 6411. The balancing assembly 66 includes the driving rollers 662 and driven rollers 664, which are mounted on the outside of the stocker 64 via the adapter frames 6411. These rollers are driven by a conveyor belt 663, ensuring the stability of the glass slides 652 during loading. The outer side of the conveyor belt 663 passes through a hollowed-out portion of the vertical frame 641 and contacts the edge of the loading slide 65, but is not fixedly connected. This design allows the loading slide 65 to move smoothly under the drive of the conveyor belt 663 while preventing the glass slides 652 from being squeezed or tilted. The balancing assembly 66 also includes a bidirectional stepping motor 661, which is fixedly mounted on the top rear end of the vertical frame 641 and drives a first bevel gear 6611. The bidirectional stepper motor 661 provides precise speed and position control, ensuring the stable movement of the conveyor belt 663. The rear end of the transmission roller 662 passes through the adapter frame 6411 and is driven by a second bevel gear 6621, which is meshed with the first bevel gear 6611. This bevel gear meshing design ensures the accuracy and synchronization of the transmission, thereby maintaining the smooth transportation of the glass slide 652. The improved loading assembly 6 can prevent the glass slide 652 from tilting during loading and discharging, ensuring the smooth loading of the glass slide 652 and solving the problems of jamming and low accuracy in the loading of the glass slide 652 in the prior art. The above structure not only improves the working efficiency and operational stability of the pollen detection equipment, but also reduces the risk of failure that may occur during operation.
[0032] Example 2
[0033] In order to facilitate the discharge operation of the loaded sheet and effectively control the discharge distance during discharge, such as Figure 4 、 Figure 5 and Figure 7As shown, in this embodiment, a support frame 62 is fixedly mounted in the middle of the upper end surface of the base plate 61. A mounting frame 63 is fixedly mounted inside the support frame 62. A limit frame 631 is fixedly mounted inside the mounting frame 63. The upper end surface of the limit frame 631 contacts the lower end surface of the loading plate 65 but is not fixedly connected. The bottom of the storage rack 64 is fixedly connected to the inner top of the mounting frame 63. A guide frame 632 is fixedly mounted at the rear end of the mounting frame 63. The inner bottom of the guide frame 632 is flush with the upper end surface of the limit frame 631. In the design, the support frame 62 is mounted in the middle of the upper end surface of the base plate 61, and the mounting frame 63 is fixed inside the support frame 62. The limit frame 631 is fixedly mounted inside the mounting frame 63, with its upper end surface contacting the lower end surface of the loading plate 65 but not forming a fixed connection. The bottom of the storage rack 64 is fixedly connected to the top of the inner side of the mounting rack 63, and a guide rack 632 is fixed to the rear end of the mounting rack 63. The inner bottom of the guide rack 632 and the upper end surface of the limiting rack 631 are maintained on the same plane. The non-fixed contact between the limiting rack 631 and the loading sheet 65 ensures that the loading sheet 65 can be stably stacked in the storage rack 64 during the loading process, and the non-fixed connection allows the loading sheet 65 to be easily discharged when needed.
[0034] Furthermore, a discharge mechanism 67 is fixedly mounted at the bottom of the mounting frame 63. The discharge mechanism 67 includes a feed cylinder 671, which is fixedly mounted at the bottom of the mounting frame 63. A connecting frame 672 is fixedly mounted at the rear end of the feed cylinder 671. A push plate 673 is fixedly mounted on the top of the connecting frame 672. The push plate 673 is movably inserted into the inner side of the guide frame 632, and the front end of the push plate 673 can pass through the bottom of the vertical frame 641 on the side opposite the mounting frame 63. In the design, the discharge mechanism 67, which includes the feed cylinder 671, is fixedly mounted at the bottom of the mounting frame 63. The feed cylinder 671 is fixed to the bottom of the mounting frame 63, and a connecting frame 672 is fixed at its rear end. The push plate 673 is fixedly mounted on the top of the connecting frame 672. The push plate 673 can be movably inserted into the inner side of the guide frame 632. Its front end design allows it to pass through the bottom of the stand 641 on the opposite side of the mounting frame 63. The integration of the feeding cylinder 671 realizes the automation of the glass slide 652 pushing process. The movable insertion design of the push plate 673 allows precise control of the position and distance of the glass slide 652.
[0035] Furthermore, the loading plate 65 includes two clamping frames 651, each of which has a through hole and holds a glass slide 652 on opposite sides. The loading plate 65 has a square cross-section, allowing it to pass through the bottom of the panel 642 on the side opposite the mounting frame 63. In the design, the loading plate 65 is composed of two clamping frames 651, each of which has a through hole and holds a glass slide 652 on opposite sides. The square cross-section of the loading plate 65 allows it to pass through the bottom of the panel 642 on the side opposite the mounting frame 63. The square cross-section design provides greater structural stability, and the design of the loading plate 65 allows for quick and easy loading and unloading of the glass slide 652, while also protecting the glass slide 652.
[0036] Furthermore, the panel 642 adopts a hollow structure design, and the panel 642 is fixedly connected to the stand 641 by installing screws 643. The panel 642 adopts a hollow structure design and is fixedly connected to the stand 641 by installing screws 643. The hollow design reduces the use of materials, thereby reducing the overall weight. The hollow part also allows the operator to promptly understand the remaining status of the loading sheet 65.
[0037] Example 3
[0038] In order to keep the upper end surface of the loading piece always horizontal during the loading operation, Figure 6 As shown, in this embodiment, the balancing assembly 66 also includes a bidirectional stepper motor 661, which is fixedly mounted on the top rear end of the stand 641. First bevel gears 6611 are installed at both ends of the bidirectional stepper motor 661. In the design, the bidirectional stepper motor 661 is integrated into the balancing assembly 66 and fixedly mounted on the top rear end of the stand 641. First bevel gears 6611 are installed at both ends of the bidirectional stepper motor 661, allowing the motor to precisely control the movement of the conveyor belt 663. The bidirectional stepper motor 661 provides precise speed and position control, and the bevel gear transmission ensures high efficiency and stability in power transmission.
[0039] Furthermore, the rear end of the drive roller 662 passes through the adapter frame 6411 and is driven by a second bevel gear 6621, which meshes with the first bevel gear 6611. This design ensures precise and synchronized transmission. The meshing of the bevel gears ensures synchronous motion between the drive roller 662 and the motor, and the bevel gear design simplifies maintenance and adjustment of the mechanism.
[0040] Furthermore, the conveyor belt 663 is designed with a soft rubber material, and its outer surface is provided with transverse ridges. The spacing between adjacent transverse ridges matches the thickness of the loading sheet 65. The design of the conveyor belt 663 is designed with a soft rubber material, and its outer surface is provided with transverse ridges. The spacing of these ridges precisely matches the thickness of the loading sheet 65, ensuring the stability of the glass slide 652 during the loading process. The transverse ridges provide good friction, preventing the loading sheet 65 from slipping during transportation. The soft rubber material adapts to the different thicknesses of the loading sheet 65, providing good compatibility and durability.
[0041] When the utility model is used, the bidirectional stepping motor 661 is started, and the driving roller 662 and the driven roller 664 are driven to rotate through the meshing transmission of the bevel gears. The conveyor belt 663 moves with the rotation of the driving roller 662 and the driven roller 664, pushing the loading sheet 65 to move along the hollow position of the stand 641, placing the glass slide 652 in the through hole of the clamping frame 651 of the loading sheet 65, ensuring that the glass slide 652 is correctly clamped, and placing the loading sheet 65 loaded with the glass slide 652 into the storage rack 64. Due to the horizontal grain of the conveyor belt 663 and the thickness of the loading sheet 65, the loading sheet 65 is placed in the storage rack 64. To match, when the loading sheet 65 is placed, the conveyor belt 663 can ensure that the glass slide 652 is stable during the transportation process and its upper end surface is horizontal. When the loading sheet 65 needs to be discharged, the push plate 673 is driven by the feeding cylinder 671 to push the glass slide 652 out of the bottom front end of the storage rack 64 and transfer it to the next process by the transfer robot 1. Repeat the above steps until all the loading sheets 65 are sent out and the bidirectional stepper motor 661 and the feeding cylinder 671 are turned off. After use, the conveyor belt 663 needs to be checked regularly for wear or damage and replaced if necessary.
[0042] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the present invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be encompassed within the present invention. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
Claims
1. A glass slide loading mechanism for a fully automatic pollen detection device, comprising a base plate (61), a storage rack (64) fixedly mounted on the upper end surface of the base plate (61), loading sheets (65) stacked and placed in the storage rack (64), and balancing components (66) fixedly mounted on both sides of the storage rack (64), characterized in that: The storage rack (64) includes a stand (641), a panel (642) is fixedly mounted on the front of the stand (641), both sides of the stand (641) are designed with a hollow structure, and adapter racks (6411) are fixedly mounted on both sides of the upper and lower ends of the stand (641); The balancing assembly (66) includes a driving roller (662) and a driven roller (664). The driving roller (662) and the driven roller (664) are respectively rotatably mounted on the outside of the storage rack (64) via an adapter rack (6411). The driving roller (662) and the driven roller (664) are installed via a conveyor belt (663). The outer side of one side of the conveyor belt (663) passes through a hollow position on the stand (641) and contacts the edge of the loading sheet (65) but is not fixedly connected.
2. The glass slide feeding mechanism for a fully automatic pollen detection device according to claim 1, characterized in that: A support frame (62) is fixedly mounted in the middle of the upper end surface of the bottom plate (61), a mounting frame (63) is fixedly mounted on the inner side of the support frame (62), a limiting frame (631) is fixedly mounted on the inner side of the mounting frame (63), the upper end surface of the limiting frame (631) contacts the lower end surface of the loading sheet (65) but is not fixedly connected, the bottom of the storage frame (64) is fixedly connected to the inner top of the mounting frame (63), and a guide frame (632) is fixedly mounted on the rear end of the mounting frame (63), and the inner bottom of the guide frame (632) and the upper end surface of the limiting frame (631) are in the same plane.
3. The glass slide feeding mechanism for fully automatic pollen detection equipment according to claim 2, characterized in that: A discharging mechanism (67) is fixedly mounted on the bottom of the mounting frame (63). The discharging mechanism (67) includes a feeding cylinder (671). The feeding cylinder (671) is fixedly mounted on the bottom of the mounting frame (63). A connecting frame (672) is fixedly mounted on the rear end of the feeding cylinder (671). A push plate (673) is fixedly mounted on the top of the connecting frame (672). The push plate (673) is movably inserted into the inner side of the guide frame (632). The front end of the push plate (673) can pass through the bottom of the stand (641) and the side opposite to the mounting frame (63).
4. The glass slide feeding mechanism for a fully automatic pollen detection device according to claim 1, characterized in that: The loading plate (65) includes two clamping frames (651), each of which is provided with a through hole and has a glass slide (652) clamped and mounted on opposite sides. The cross section of the loading plate (65) is designed to be square, and the loading plate (65) can pass through the bottom of the panel (642) and the side opposite to the mounting frame (63).
5. The glass slide feeding mechanism for a fully automatic pollen detection device according to claim 1, characterized in that: The panel (642) adopts a hollow structure design, and the panel (642) is fixedly connected to the stand (641) by installing screws (643).
6. The glass slide feeding mechanism for a fully automatic pollen detection device according to claim 1, characterized in that: The balancing assembly (66) further comprises a bidirectional stepping motor (661), which is fixedly mounted on the top of the rear end of the stand (641), and a first bevel gear (6611) is installed at both ends of the bidirectional stepping motor (661).
7. The glass slide feeding mechanism for a fully automatic pollen detection device according to claim 1, characterized in that: The rear end of the transmission roller (662) passes through the adapter frame (6411) and is transmission-mounted with a second bevel gear (6621), which is meshed with the first bevel gear (6611).
8. The glass slide feeding mechanism for fully automatic pollen detection equipment according to claim 1, characterized in that: The conveyor belt (663) is designed with a soft rubber material. The outer wall of the conveyor belt (663) is provided with transverse lines, and the spacing between adjacent transverse lines matches the thickness of the loading sheet (65).
Citation Information
Patent Citations
Full-automatic pollen collection and intelligent identification instrument
CN118050531A