Efficient loading device for digital pathological scanner
The digital pathology scanner utilizes a screw and pusher plate, connectors, and air cylinder structure in its efficient loading device to achieve automated transport and precise positioning of slides. This solves the problem of time-consuming and labor-intensive manual slide placement, improving scanning efficiency and accuracy.
Patent Information
- Application Number
- CN202511508135.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-22
- Publication Date
- 2025-11-21
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing digital pathology scanners require staff to manually place slides one by one onto the scanning platform, resulting in high time and manpower consumption, high operational complexity, and a high likelihood of errors.
A high-efficiency loading device for digital pathology scanners is adopted, including a screw and pusher plate structure, a connector and pusher block structure, and an air cylinder and connecting platform structure, to realize automated delivery, precise positioning and continuous operation of glass slides, reducing manual intervention.
It automates the entire process from slide storage to scanning platform, reducing operation time and complexity, improving work efficiency, avoiding scanning failures caused by slide misalignment, and ensuring scanning accuracy and smooth workflow.
Smart Images

Figure CN120992976A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of digital pathology scanner technology, and more particularly to a high-efficiency loading device for digital pathology scanners. Background Technology
[0002] A digital pathology scanner is an automated device that converts traditional pathological slides into high-resolution digital images. Through optical imaging, automated control, and image processing technologies, it enables the digital storage, transmission, analysis, and sharing of pathological slides, making it an important tool for modern pathological diagnosis, scientific research, and remote consultation.
[0003] In the current practical application of digital pathology scanners, the scanning process of pathological slides follows established operating procedures: after a series of complex processes such as fixation, dehydration, embedding, sectioning, and staining, pathological tissue samples are carefully attached to standard-sized glass slides to form pathological slides that can be scanned. During scanning, these glass slides carrying pathological slides are placed stably on the scanning platform of the scanner, and with the focusing and imaging of the optical system, a high-resolution digital scan of the entire pathological slide is finally completed. However, before each scan, staff need to manually place slides onto the scanning platform one by one. This process is not only time-consuming and labor-intensive, but also increases the complexity and intensity of the operation. Since the placement of each slide must be done manually, and the number of scans is large, frequent operations greatly reduce work efficiency and are prone to errors due to improper manual operation. Therefore, in order to improve the efficiency and automation level of digital pathology scanners, there is an urgent need for a high-efficiency loading device for digital pathology scanners to feed slides into the scanning platform, achieve automated loading, and reduce manual intervention. Summary of the Invention
[0004] The purpose of this invention is to solve the problem in the prior art that before each scan, staff need to manually place the slides onto the scanning platform one by one for scanning. This process not only consumes a lot of time and manpower, but also increases the complexity of the operation and the intensity of labor.
[0005] To achieve the above objectives, the present invention employs the following technical solution: a high-efficiency loading device for a digital pathology scanner, comprising a device body, wherein a scanning platform is fixedly mounted at the top center of the device body, and further comprising: A feeding platform is fixedly installed on the left side of the scanning platform, and a second sliding groove is provided inside the feeding platform; The bottom of the feeding platform is fixedly installed on the top left side of the device body; The feeding component is fixedly installed on the top of the device body. The feeding component is located on the outside of the feeding platform. The first feeding rack is movably embedded inside the feeding component. The first feeding rack is movably sleeved on the outer surface of the feeding platform. A box door is movably connected to the left side of the feeding component. Multiple glass plates are disposed inside the first feeding rack, and each of the multiple glass plates contains a glass slide. The first feeding rack has sliders fixedly installed on both sides, and the feeding component has first grooves on both sides inside. The outer surfaces of the two sliders are slidably connected to the inner surface of the first groove. A screw is threadedly connected inside one of the sliders, the screw is movably embedded inside the rear side of the feeding component, and a motor is fixedly mounted on the top of the screw; The motor is fixedly mounted on the top of the feeding component by multiple support columns; An electric telescopic rod is fixedly installed on the bottom left side of the loading platform, and a push plate is fixedly installed on the other end of the electric telescopic rod. The outer surface of the push plate is slidably connected to the inner surface of the second slide groove. The push plate is movably connected to the left side of one of the glass plates.
[0006] In the above technical solution, preferably, a connector is fixedly installed on the right side of the push plate, and a first push block is fixedly installed on both sides of the connector. A third slide groove is opened inside the scanning platform, and clamping plates are slidably connected to both sides of the inner surface of the third slide groove.
[0007] In the above technical solution, preferably, a second pushing block is fixedly installed at the bottom of each of the two clamping plates, and two positioning posts are fixedly installed on the outer side of each of the two second pushing blocks, and the four positioning posts are slidably connected inside the scanning platform; The second push block is slidably connected to the side opposite to the first push block.
[0008] In the above technical solution, preferably, two first reset springs are fixedly installed on the outer sides of the two second push blocks, and the other ends of the four first reset springs are fixedly installed on the inner wall of the scanning platform; The four first return springs are all movably sleeved on the outer surface of the positioning post.
[0009] In the above technical solution, preferably, a push rod is fixedly installed at the bottom of another slider, an air cylinder is movably sleeved on the outer surface of the push rod, a piston is fixedly installed at the bottom of the push rod, and the piston is slidably connected inside the air cylinder; The air cylinder is fixedly installed on the top front side of the device body.
[0010] In the above technical solution, preferably, an air pipe is fixedly installed at the bottom of the air cylinder, a pneumatic telescopic rod is provided at the other end of the air pipe, and a connecting platform is fixedly installed at the top of the pneumatic telescopic rod; The pneumatic telescopic rod is fixedly installed on the top of the device body.
[0011] In the above technical solution, preferably, a second feeding rack is provided on the top of the connecting platform, and sliding rods are slidably connected to both sides of the inside of the connecting platform.
[0012] In the above technical solution, preferably, the bottoms of both slide rods are fixedly installed on the top right side of the device body, and a second return spring is fixedly installed on both sides of the bottom of the connecting platform.
[0013] In the above technical solution, preferably, the other ends of the two second reset springs are fixedly installed on the top of the device body; Both of the second return springs are movably sleeved on the outer surface of the slide rod.
[0014] In the above technical solution, preferably, bolts are threadedly connected to both sides of the connecting platform, and threaded grooves are opened on both sides of the second feeding rack. Both bolts are matched with the threaded groove.
[0015] Compared with the prior art, the advantages and positive effects of the present invention are as follows: 1. In this embodiment of the invention, the screw and pusher structure not only automates the entire process of storing, transporting, and transferring the glass slides to the scanning platform, but also eliminates the need for continuous intervention after the initial loading of the slides and equipment startup. This completely eliminates the traditional manual slide-by-slide loading and unloading method, significantly shortening the overall process time. Furthermore, the motor-driven screw-slider transmission method provides stable power and strong load capacity, ensuring the first loading rack descends smoothly while carrying multiple sets of glass slides, reducing vibration during component operation. This solves the problem in the prior art where operators must manually place the slides onto the scanning platform one by one before each scan, a process that not only consumes a lot of time and manpower but also increases the complexity and labor intensity of the operation.
[0016] 2. In this embodiment of the invention, the connection and the second push block structure not only automatically push the glass plate to the center position after it enters the scanning platform, forming a precise centering position, thus avoiding scanning failure or data errors caused by glass plate offset, but also, when the push plate moves the glass plate to the right, the first push block can be moved synchronously through the connection, so that the clamping plate automatically opens to avoid obstructing the movement of the glass plate; when the push plate resets, the clamping plate automatically closes under the action of the first reset spring, completing the positioning of the glass plate. This mechanism of avoiding during movement and positioning after reaching the position does not require additional control commands or operation steps, making the loading and positioning processes seamlessly connected, reducing the idle time of the equipment, and further improving the overall work efficiency.
[0017] 3. In this embodiment of the invention, by setting up the air cylinder and the connecting platform structure, not only can the scanned glass slide be pushed into the second loading rack on the right side simultaneously when the new glass slide enters the scanning platform, but the continuous operation of "new slide placement - old slide removal - old slide collection" can be completed without manual intervention, further reducing the repetitive actions of the operators. At the same time, when the first loading rack is replenished with a new glass slide, the second loading rack can rise simultaneously to reserve accurate storage space for the scanned glass slide that is about to be pushed in, ensuring precise connection of rhythm and improving the smoothness of the entire process. Attached Figure Description
[0018] Figure 1 A rear-view stereoscopic structural diagram of a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 2 This is a front view structural diagram of a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 3 A partial three-dimensional structural diagram of a high-efficiency loading device for a digital pathology scanner provided by the present invention. Figure 1 ; Figure 4 This is a right-side structural schematic diagram of a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 5 A partial three-dimensional structural diagram of a high-efficiency loading device for a digital pathology scanner provided by the present invention. Figure 2 ; Figure 6 A cross-sectional view of the loading component in a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 7 A cross-sectional three-dimensional structural diagram of the loading platform in a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 8 A cross-sectional three-dimensional structural diagram of the air cylinder in a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 9 A cross-sectional three-dimensional structural schematic diagram of the scanning platform in a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 10 A cross-sectional three-dimensional structural schematic diagram of the second pusher block in a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 11 A cross-sectional three-dimensional structural diagram of the second loading rack in a high-efficiency loading device for a digital pathology scanner provided by the present invention; Figure 12 A partial three-dimensional structural diagram of a high-efficiency loading device for a digital pathology scanner provided by the present invention. Figure 3 .
[0019] Legend: 1. Device body; 101. Scanning platform; 102. Feeding platform; 103. Second slide rail; 104. Feeding component; 105. Box door; 106. First feeding rack; 107. Glass plate; 108. Glass slide; 109. Slider; 110. First slide rail; 111. Screw; 112. Motor; 113. Electric telescopic rod; 114. Push plate; 2. Connecting component; 201. First push block; 202. Third slide rail; 203. Clamping plate; 204. Second push block; 205. Positioning post; 206. First return spring; 3. Push rod; 301. Air cylinder; 302. Piston; 303. Air pipe; 304. Pneumatic telescopic rod; 305. Connecting platform; 306. Second feeding rack; 307. Slide rod; 308. Second return spring; 309. Threaded groove; 310. Bolt. Detailed Implementation
[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0021] Please see Figures 1-12This embodiment provides a technical solution: a high-efficiency loading device for a digital pathology scanner, including a device body 1, a scanning platform 101 fixedly installed at the top center of the device body 1, and further including: a loading platform 102, fixedly installed on the left side of the scanning platform 101, with a second sliding groove 103 opened inside the loading platform 102; wherein, the bottom of the loading platform 102 is fixedly installed on the top left side of the device body 1; a loading component 104, fixedly installed on the top of the device body 1, located outside the loading platform 102, with a first loading rack 106 movably embedded inside the loading component 104, the first loading rack 106 movably sleeved on the outer surface of the loading platform 102, and a door 105 movably connected to the left side of the loading component 104; and multiple glass plates 107, all disposed inside the first loading rack 106, with the multiple glass plates 107 having internal... Each component is equipped with a glass slide 108; sliders 109 are fixedly installed on both sides of the first feeding rack 106, and first grooves 110 are opened on both sides of the inside of the feeding component 104. The outer surfaces of the two sliders 109 are slidably connected to the inner surface of the first grooves 110; a screw 111 is threadedly connected to the inside of one of the sliders 109, and the screw 111 is movably embedded in the rear side of the inside of the feeding component 104. A motor 112 is fixedly installed on the top of the screw 111; wherein the motor 112 is fixedly installed on the top of the feeding component 104 through multiple support columns; an electric telescopic rod 113 is fixedly installed on the bottom left side of the feeding platform 102, and a push plate 114 is fixedly installed on the other end of the electric telescopic rod 113. The outer surface of the push plate 114 is slidably connected to the inner surface of the second groove 103; wherein the push plate 114 is movably connected to the left side of one of the glass slides 107.
[0022] In use, the operator first places the glass slides 108 into the glass plate 107, then flips the door 105 to the left to open the loading unit 104. After opening, the operator places the glass plate 107 containing the glass slides 108 into the first loading rack 106 inside the loading unit 104 from top to bottom. Once the glass plate 107 is in place, the operator can start the motor 112 using its power supply system. When the motor 112 is running, it can... The output shaft drives the screw 111, which in turn drives the slider 109 to slide downward through the first slide groove 110. As the slider 109 slides, it lowers the first loading rack 106 outside the loading platform 102, transporting the lowest glass plate 107 inside the first loading rack 106 to the top of the loading platform 102. This ensures that the left side of the lowest glass plate 107 fits against the right side of the push plate 114. Then, personnel can use an electric extension... The power supply system of the telescopic rod 113, when activated, pushes the push plate 114 as it extends, allowing it to slide to the right through the second slide groove 103. During this sliding motion, it pushes the bottom glass plate 107 to the right, moving it to the top of the scanning platform 101 on the device body 1, thus completing the loading. Through the structure of the screw 111 and the push plate 114, the entire process of loading the glass plate 107 from storage and transportation to transfer to the scanning platform 101 is fully automated. Personnel only need to complete the initial loading of the glass slides 108 and start the equipment, and no further intervention is required. This completely eliminates the traditional manual loading and unloading mode, significantly shortening the overall process time. At the same time, the transmission method of the motor 112 driving the screw 111 to slide the slider 109 has the characteristics of stable power and strong load capacity, ensuring that the first loading rack 106 descends smoothly while carrying multiple sets of glass plates 107, reducing the shaking of components during operation.
[0023] Please see Figures 1 to 12 In one embodiment, a connector 2 is fixedly installed on the right side of the push plate 114, and a first push block 201 is fixedly installed on both sides of the connector 2. A third slide groove 202 is opened inside the scanning platform 101, and clamping plates 203 are slidably connected to both sides of the inner surface of the third slide groove 202. So when the push plate 114 slides to the right, the first push block 201 can be pushed by the connector 2, so that it can move to the right synchronously.
[0024] Please see Figures 1 to 12In one embodiment, a second pushing block 204 is fixedly installed at the bottom of each of the two clamping plates 203, and two positioning posts 205 are fixedly installed on the outer side of each of the two second pushing blocks 204. The four positioning posts 205 are slidably connected inside the scanning platform 101. The second pushing blocks 204 are slidably connected to the side opposite to the first pushing block 201, so that the positioning posts 205 can be pushed to slide inside the scanning platform 101 by the second pushing blocks 204, and at the same time, the clamping plates 203 are pulled to slide synchronously opposite each other through the third sliding groove 202.
[0025] Please see Figures 1 to 12 In one embodiment, two first reset springs 206 are fixedly installed on the outer sides of the two second push blocks 204, and the other ends of the four first reset springs 206 are fixedly installed on the inner wall of the scanning platform 101; wherein, the four first reset springs 206 are movably sleeved on the outer surface of the positioning post 205, so that the first reset springs 206 can be compressed by the second push blocks 204 to make them retract.
[0026] Please see Figures 1 to 12 In one embodiment, a push rod 3 is fixedly installed at the bottom of another slider 109. An air cylinder 301 is movably sleeved on the outer surface of the push rod 3. A piston 302 is fixedly installed at the bottom of the push rod 3 and is slidably connected inside the air cylinder 301. The air cylinder 301 is fixedly installed on the top front side of the device body 1, so that when the slider 109 descends, the push rod 3 can push the piston 302 downward, allowing it to slide downward inside the air cylinder 301.
[0027] Please see Figures 1 to 12 In one embodiment, an air pipe 303 is fixedly installed at the bottom of the air cylinder 301, and a pneumatic telescopic rod 304 is provided at the other end of the air pipe 303. A connecting platform 305 is fixedly installed at the top of the pneumatic telescopic rod 304. The pneumatic telescopic rod 304 is fixedly installed at the top of the device body 1, so that when the piston 302 slides, it can compress the air inside the air cylinder 301, so that the air can enter the interior of the pneumatic telescopic rod 304 through the air pipe 303.
[0028] Please see Figures 1 to 12 In one embodiment, a second feeding rack 306 is provided on the top of the connecting platform 305, and sliding rods 307 are slidably connected to both sides of the interior of the connecting platform 305. After air enters the interior of the pneumatic telescopic rod 304, it can be extended by air pressure, and the connecting platform 305 can be pushed upward when the pneumatic telescopic rod 304 extends.
[0029] Please see Figures 1 to 12In one embodiment, the bottoms of the two slide rods 307 are fixedly installed on the top right side of the device body 1, and the bottom sides of the connecting platform 305 are fixedly installed with second return springs 308, which allows the connecting platform 305 to slide on the outer surface of the slide rods 307.
[0030] Please see Figures 1 to 12 In one embodiment, the other ends of the two second return springs 308 are fixedly installed on the top of the device body 1; wherein, the two second return springs 308 are movably sleeved on the outer surface of the slide rod 307, so that when the connecting platform 305 slides, the second return springs 308 can be pulled to extend.
[0031] Please see Figures 1 to 12 In one embodiment, bolts 310 are threadedly connected to both sides of the interior of the connecting platform 305, and threaded grooves 309 are provided on both sides of the interior of the second loading rack 306. Both bolts 310 are matched with the threaded grooves 309, so that when the interior of the second loading rack 306 is full of scanned glass plates 107, the personnel can reverse the bolts 310 to disengage them from the threaded grooves 309 in the second loading rack 306, so that the second loading rack 306 can be removed from the connecting platform 305 for cleaning.
[0032] Working principle: In use, the operator first places the glass slides 108 into the glass plate 107, then flips the door 105 to the left to open the loading unit 104. After it is opened, the operator places the glass plate 107 containing the glass slides 108 into the first loading rack 106 of the loading unit 104 from top to bottom. After the glass plate 107 is placed in, the operator can start the motor 112 through the power supply system. When the motor 112 is running, it can... The output shaft drives the screw 111, which in turn drives the slider 109 to slide downward through the first slide groove 110. As the slider 109 slides, it lowers the first loading rack 106 outside the loading platform 102, transporting the lowest glass plate 107 inside the first loading rack 106 to the top of the loading platform 102. This ensures that the left side of the lowest glass plate 107 fits against the right side of the push plate 114. Then, personnel can use an electric extension... The power supply system of the telescopic rod 113, when activated, pushes the push plate 114 as it extends, allowing it to slide to the right through the second slide groove 103. During this sliding motion, it pushes the bottom glass plate 107 to the right, moving it to the top of the scanning platform 101 on the device body 1, thus completing the loading. Through the structure of the screw 111 and the push plate 114, the entire process of the glass plate 107 from storage and transportation to transfer to the scanning platform 101 is fully automated. Personnel only need to complete the initial loading of the glass slides 108 and start the equipment, and no further intervention is required. This completely eliminates the traditional manual pick-and-place mode, significantly shortening the overall process time. At the same time, the transmission method of the motor 112 driving the screw 111 to drive the slider 109 to slide has the characteristics of stable power and strong load capacity, ensuring that the first loading rack 106 descends smoothly while carrying multiple sets of glass plates 107, reducing the shaking of the components during operation. In use, when the push plate 114 slides to the right, the connecting piece 2 pushes the first push block 201, causing it to move synchronously to the right. While the first push block 201 moves, it slides on the opposite side of the second push block 204. As the first push block 201 slides, it pushes the second push block 204 outwards, causing the second push block 204 to move in opposite directions. As the second push block 204 slides, it pushes the positioning post 205 to slide inside the scanning platform 101, and through the second push block 204... The first return spring 206 is compressed, causing it to retract. Simultaneously, the second push block 204 pulls the clamping plate 203 through the third slide groove 202, allowing it to slide synchronously in opposite directions. This enables the clamping plate 203 to detach from the glass plate 107 at the top of the scanning platform 101. At this point, the push plate 114 can push the glass plate 107 at the top of the loading platform 102 to send it onto the top of the scanning platform 101. When the electric telescopic rod 113 retracts, it pulls the first push block 201 to slide to the left, allowing the first return spring 206 to retract. During the reset process, the two second push blocks 204 can be moved relative to each other, and at the same time, the clamping plate 203 can be pulled to move relative to each other. The clamping plate 203 pushes the glass slide 107 to the center of the scanning platform 101 for positioning. The structure of the connector 2 and the second push blocks 204 not only automatically pushes the glass slide 107 to the center position after it enters the scanning platform 101, but also forms a precise centering position, avoiding scanning failure or data errors caused by the offset of the glass slide 108. In addition, when the push plate 114 moves the glass plate 107 to the right, the first push block 201 can be moved synchronously through the connector 2, so that the clamping plate 203 automatically opens to avoid obstructing the movement of the glass plate 107; when the push plate 114 is reset, the clamping plate 203 automatically closes under the action of the first reset spring 206, completing the positioning of the glass plate 107. This mechanism of avoiding during movement and positioning after reaching the position does not require additional control commands or operation steps, so that the feeding and positioning processes are seamlessly connected, reducing the idle time of the equipment and further improving the overall work efficiency. In use, when the pusher plate 114 pushes the glass plate 107 on the top of the loading platform 102 into the scanning platform 101, the glass plate 107 on the loading platform 102 can be pushed to the right to push the already scanned glass plate 107 on the scanning platform 101, so that the scanned glass plate 107 can enter the second loading rack 306 on its right side for collection. After the glass plate 107 on the loading platform 102 enters the scanning platform 101, the pusher plate 114 can be reset, and the slider 109 will be lowered by the screw 111, thereby allowing... As the slider 109 descends, it drives the first loading rack 106 to move synchronously, so as to re-feed the glass plate 107 inside it to the top of the loading platform 102 and to the right of the push plate 114. When the slider 109 descends, the push rod 3 pushes the piston 302 downward, allowing it to slide downward inside the air cylinder 301. When the piston 302 slides, it can compress the air inside the air cylinder 301, allowing the air to enter the pneumatic telescopic rod 304 through the air pipe 303. After the air enters the pneumatic telescopic rod 304, it can extend due to air pressure. When the retractor 304 extends, it pushes the connecting platform 305 upward, allowing it to slide on the outer surface of the slide bar 307. As the connecting platform 305 slides, it pulls the second return spring 308, extending it further. This causes the second loading rack 306 to rise via the connecting platform 305, providing precise storage space for the scanned glass substrate 107 that is about to be pushed in. Once the second loading rack 306 is full of scanned glass substrates 107, the operator can reverse the bolt 310 to disengage it from the threaded groove 309 in the second loading rack 306, thus detaching the second loading rack 306 from the connecting platform 305. The cleaning process, along with the structure of the air cylinder 301 and the connecting platform 305, allows for the simultaneous pushing of scanned slides 107 into the second loading rack 306 on the right side when a new slide 107 enters the scanning platform 101. This enables a seamless operation of "new slide placement - old slide removal - old slide collection" without manual intervention, further reducing repetitive actions for operators. Simultaneously, when a new slide 107 is added to the first loading rack 106, the second loading rack 306 can rise synchronously, reserving accurate storage space for the scanned slides 107 that are about to be pushed in, ensuring precise timing and improving the smoothness of the entire process.
[0033] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments that can be applied to other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the protection scope of the present invention.
Claims
1. A high-efficiency loading device for a digital pathology scanner, comprising a device body (1), wherein a scanning platform (101) is fixedly mounted at the top center of the device body (1), characterized in that, Also includes: The loading platform (102) is fixedly installed on the left side of the scanning platform (101), and a second slide groove (103) is provided inside the loading platform (102). The bottom of the loading platform (102) is fixedly installed on the top left side of the device body (1); The feeding component (104) is fixedly installed on the top of the device body (1). The feeding component (104) is located on the outside of the feeding platform (102). The feeding component (104) is movably embedded in the interior of the feeding component (104). The first feeding rack (106) is movably sleeved on the outer surface of the feeding platform (102). The left side of the feeding component (104) is movably connected to a box door (105). Multiple glass plates (107) are disposed inside the first feeding rack (106), and glass slides (108) are disposed inside the multiple glass plates (107). The first feeding rack (106) has sliders (109) fixedly installed on both sides. The feeding component (104) has a first groove (110) on both sides inside. The outer surfaces of the two sliders (109) are slidably connected to the inner surface of the first groove (110). A screw (111) is threadedly connected inside one of the sliders (109). The screw (111) is movably embedded inside the rear side of the feeder (104). A motor (112) is fixedly mounted on the top of the screw (111). The motor (112) is fixedly installed on the top of the loading component (104) by multiple support columns; An electric telescopic rod (113) is fixedly installed on the bottom left side of the loading platform (102). A push plate (114) is fixedly installed on the other end of the electric telescopic rod (113). The outer surface of the push plate (114) is slidably connected to the inner surface of the second slide groove (103). The push plate (114) is movably connected to the left side of one of the glass plates (107).
2. The high-efficiency loading device for a digital pathology scanner according to claim 1, characterized in that: A connector (2) is fixedly installed on the right side of the push plate (114), and a first push block (201) is fixedly installed on both sides of the connector (2). A third slide groove (202) is opened inside the scanning platform (101), and a clamping plate (203) is slidably connected to both sides of the inner surface of the third slide groove (202).
3. The high-efficiency loading device for a digital pathology scanner according to claim 2, characterized in that: The bottom of each of the two clamping plates (203) is fixedly installed with a second pushing block (204), and two positioning posts (205) are fixedly installed on the outer side of each of the two second pushing blocks (204). The four positioning posts (205) are slidably connected to the inside of the scanning platform (101). The second push block (204) is slidably connected to the side opposite to the first push block (201).
4. The high-efficiency loading device for a digital pathology scanner according to claim 3, characterized in that: Two first reset springs (206) are fixedly installed on the outer side of each of the two second push blocks (204), and the other ends of the four first reset springs (206) are fixedly installed on the inner wall of the scanning platform (101); Among them, the four first return springs (206) are all movably sleeved on the outer surface of the positioning post (205).
5. The high-efficiency loading device for a digital pathology scanner according to claim 1, characterized in that: One of the sliders (109) has a push rod (3) fixedly installed at the bottom. An air cylinder (301) is movably sleeved on the outer surface of the push rod (3). A piston (302) is fixedly installed at the bottom of the push rod (3). The piston (302) is slidably connected to the inside of the air cylinder (301). The air cylinder (301) is fixedly installed on the top front side of the device body (1).
6. The high-efficiency loading device for a digital pathology scanner according to claim 5, characterized in that: An air pipe (303) is fixedly installed at the bottom of the air cylinder (301), and a pneumatic telescopic rod (304) is provided at the other end of the air pipe (303). A connecting platform (305) is fixedly installed at the top of the pneumatic telescopic rod (304). The pneumatic telescopic rod (304) is fixedly installed on the top of the device body (1).
7. The high-efficiency loading device for a digital pathology scanner according to claim 6, characterized in that: The top of the connecting platform (305) is provided with a second feeding rack (306), and slide rods (307) are slidably connected to both sides of the inside of the connecting platform (305).
8. The high-efficiency loading device for a digital pathology scanner according to claim 7, characterized in that: The bottoms of the two slide bars (307) are fixedly installed on the top right side of the device body (1), and the bottom sides of the connecting platform (305) are fixedly installed with second return springs (308).
9. The high-efficiency loading device for a digital pathology scanner according to claim 8, characterized in that: The other ends of the two second return springs (308) are fixedly mounted on the top of the device body (1); Both of the second return springs (308) are movably sleeved on the outer surface of the slide rod (307).
10. A high-efficiency loading device for a digital pathology scanner according to claim 7, characterized in that: The connecting platform (305) has bolts (310) threadedly connected to both sides of its interior, and the second loading rack (306) has threaded grooves (309) on both sides of its interior. Both bolts (310) are matched with the threaded groove (309).