Test tube loading device
By adopting an inclined loading surface and loading slide design in the test tube loading device, the test tubes are slid by gravity and blocked by baffles, which solves the problems of low regularization efficiency and small stacking capacity of existing devices, and achieves efficient test tube storage and structural stability.
Patent Information
- Application Number
- CN202423115197.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-17
AI Technical Summary
Existing test tube loading devices have low efficiency, small stacking capacity, and poor structural stability.
Design a test tube loading device that uses an inclined loading surface and loading slide. Gravity is used to make the test tubes slide along the slide, and a baffle prevents the test tubes from falling, thus achieving efficient stacking.
It improves the efficiency of test tube organization and the amount of material stacked per unit space, while also enhancing the stability of the structure.
Smart Images

Figure CN223534333U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of test tube loading technology, and specifically to a test tube loading device. Background Technology
[0002] Since test tubes are fragile glass items and cylindrical with curved bottoms, it is an urgent issue to consider how to neatly stack a large number of test tubes.
[0003] Existing loading devices for test tubes are generally test tube racks, which have vertical insertion holes that match the diameter of the test tubes. Users need to hold the test tubes and insert them vertically into the corresponding insertion holes. Although this type of organizing device can neatly stack test tubes, the organizing efficiency is low, the stacking capacity is generally small, and the structural stability is also poor. Utility Model Content
[0004] The primary objective of this invention is to provide a test tube loading device that can solve the problems of low efficiency, small stacking capacity, and poor structural stability of existing test tube loading devices.
[0005] This utility model is achieved through the following technical solution:
[0006] A test tube loading device includes a loading rack with a loading surface at its top. The loading surface is an inclined plane, forming an insertion side at its highest side and a loading side at its lowest side. Multiple loading tracks are formed at the top of the loading rack, extending along the plane of the loading surface. The two ends of each loading track are located at the insertion side and the loading side, respectively. The width of each loading track is slightly larger than the outer diameter of the pre-loaded test tube and smaller than the outer diameter of its cap, so that the cap of the pre-loaded test tube rests on the loading surface. A baffle is located on the loading side, and when the pre-loaded test tube is located on the loading side, the pre-loaded test tube contacts and is compressed by the baffle.
[0007] Optionally, the loading frame includes a loading plate, a low-position support plate, and a high-position support plate; the loading plate is inclined, the upper surface of the loading plate is the loading surface, the loading slide is formed on the loading plate, and the loading slide extends through the loading plate along the thickness direction of the loading plate; one side of the low-position support plate is connected to the lowest side of the loading plate, and the opposite side is used to contact the ground; one side of the high-position support plate is connected to the highest side of the loading plate, and the opposite side is used to contact the ground.
[0008] Optionally, the loading plate, the low-position support plate, and the high-position support plate are integrally formed.
[0009] Optionally, the high-position support plate is vertically arranged; the low-position support plate is inclined toward the high-position support plate and forms an acute angle with the loading plate; the middle of both the low-position support plate and the high-position support plate is hollowed out.
[0010] Optionally, all of the loading slides have different widths; the loading slides are straight slides, and all of the loading slides are arranged in parallel and at equal intervals.
[0011] Optionally, the loading slide extends in a vertical plane; a guide sliding plate is provided on each side of the loading plate in the width direction, and the guide sliding plate is arranged parallel to the loading slide; a gap is reserved between the guide sliding plate and the loading plate, and the width of the gap is less than the tube length of the pre-loaded test tube.
[0012] Optionally, the baffle includes a front baffle and a pair of side baffles; the front baffle is located on the lowest side of the loading plate, the front baffle is vertically arranged, and the top side of the front baffle is higher than the lowest side of the loading plate; the two side baffles are respectively located at both ends of the front baffle in the length direction, and are vertically arranged and parallel to the loading slide.
[0013] Optionally, the side baffle is wedge-shaped to match the angle of the low-position support plate, and the side of the side baffle closest to the low-position support plate is perpendicularly arranged and connected to the low-position support plate.
[0014] Optionally, one end of the loading slide near the loading side passes through the loading plate to form a tube retrieval port. The width of the tube retrieval port is greater than the diameter of the cap of the pre-loaded test tube. Each tube retrieval port is vertically provided with a pair of elastic clips. When the elastic clips are in their natural state, the width between the pair of elastic clips matches the diameter of the pre-loaded test tube.
[0015] Optionally, the top side of the elastic clip is inclined so that when the preloaded test tube is pressed down, the cap of the preloaded test tube can be pressed in and open the elastic clip.
[0016] Compared with the prior art, this utility model has the following advantages and beneficial effects:
[0017] This utility model provides a test tube loading device. By setting a loading frame to form a loading foundation, the structural stability of the entire device is ensured. A loading surface is set at the top of the loading frame, which is an inclined plane, and a loading slide is provided. The width of the loading slide is slightly larger than the outer diameter of the pre-loaded test tube body but smaller than the outer diameter of the pre-loaded test tube cap. Gravity allows the pre-loaded test tube to slide along the loading slide. The cap of the pre-loaded test tube is placed on the loading surface and slides down the inclined loading surface under the action of gravity without bumping, thus allowing the pre-loaded test tube to slide from the loading side to the receiving side. Based on this, by setting a loading side... A baffle is installed to block pre-loaded test tubes from sliding down the loading slide. With this setup, during use, the pre-loaded test tubes are simply placed sequentially into the loading slide on the loading side. The pre-loaded test tubes slide along the loading slide from the loading side to the loading side, and then are stacked sequentially in the loading slide until each loading slide is full. The pre-loaded test tubes are placed adjacent to each other, which can save a lot of space and ensure the stacking volume per unit space. Through the cooperation of the above features, this test tube loading device can effectively solve the problems of low efficiency, small stacking volume and poor structural stability of existing test tube loading devices. Attached Figure Description
[0018] The accompanying drawings, which are included to provide a further understanding of the embodiments of the present invention and form part of this application, do not constitute a limitation thereof. In the drawings:
[0019] Figure 1 A schematic diagram of the front side of the test tube loading device provided in an embodiment of this utility model;
[0020] Figure 2 This is a schematic diagram of the back side of the test tube loading device provided in an embodiment of the present invention.
[0021] The attached diagram shows the markings and corresponding component names:
[0022] 10-Loading rack; 101-Loading plate; 102-Low support plate; 103-High support plate; 11-Loading surface; 12-Loading slide; 13-Baffle; 131-Front baffle; 132-Side baffle; 14-Guide sliding plate; 15-Elastic clamp. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the embodiments and accompanying drawings. The illustrative embodiments and descriptions of this utility model are only used to explain this utility model and are not intended to limit this utility model.
[0024] Example
[0025] Please refer to Figure 1 and Figure 2 This embodiment provides a test tube loading device, including a loading rack 10. The top of the loading rack 10 is provided with a loading surface 11. The loading surface 11 is an inclined plane, forming an insertion side at the highest side and a loading side at the lowest side. The top of the loading rack 10 has multiple loading slides 12, which extend along the plane of the loading surface 11. The two ends of the loading slides 12 are located at the insertion side and the loading side, respectively. The width of the loading slides 12 is slightly larger than the outer diameter of the pre-loaded test tube and smaller than the outer diameter of the pre-loaded test tube cap, so that the cap of the pre-loaded test tube is mounted on the loading surface 11. The device also includes a baffle 13, which is located on the loading side. When the pre-loaded test tube is located on the loading side, the pre-loaded test tube contacts and is squeezed by the baffle 13.
[0026] The test tube loading device provided in this embodiment forms a loading base by setting a loading frame 10, ensuring the structural stability of the entire device. A loading surface 11 is set on the top of the loading frame 10, which is an inclined plane, and a loading slide 12 is provided. The width of the loading slide 12 is slightly larger than the outer diameter of the pre-loaded test tube body but smaller than the outer diameter of the pre-loaded test tube cap. Gravity allows the pre-loaded test tube to slide along the loading slide 12. The cap of the pre-loaded test tube is supported on the loading surface 11 and slides downwards along the inclined loading surface 11 under the action of gravity without bumping, thus allowing the pre-loaded test tube to slide from the loading side to the receiving side. Based on this, by adding a loading surface on the receiving side... A baffle 13 is provided to block the pre-loaded test tubes from sliding down the loading slide 12. With the above configuration, during use, the pre-loaded test tubes are simply placed into the loading slide 12 on the loading side in sequence. The pre-loaded test tubes slide along the loading slide 12 from the loading side to the loading side, and then are stacked in the loading slide 12 in sequence until each loading slide 12 is full of pre-loaded test tubes. The pre-loaded test tubes are placed adjacent to each other, which can save a lot of space, thereby ensuring the stacking volume per unit space. Through the cooperation of the above features, the test tube loading device can effectively solve the problems of low efficiency, small stacking volume and poor structural stability of existing test tube loading devices.
[0027] To further explain the specific structure of the loading rack 10, the loading rack 10 includes a loading plate 101, a low-position support plate 102, and a high-position support plate 103; the loading plate 101 is inclined, the upper surface of the loading plate 101 is the loading surface, the loading slide 12 is formed on the loading plate 101, and the loading slide 12 passes through the loading plate 101 along the thickness direction of the loading plate 101; one side of the low-position support plate 102 is connected to the lowest side of the loading plate 101, and the opposite side is used to contact the ground; one side of the high-position support plate 103 is connected to the highest side of the loading plate 101, and the opposite side is used to contact the ground.
[0028] With the above settings, the loading rack 10 is made as lightweight as possible while ensuring structural and support performance, and does not obstruct the tube body of the pre-loaded test tubes, allowing for clear observation of the status of each pre-loaded test tube from the side.
[0029] Preferably, the loading plate 101, the low-position support plate 102, and the high-position support plate 103 are integrally formed.
[0030] To further enhance structural stability, the high-position support plate 103 is vertically arranged; the low-position support plate 102 is inclined toward the high-position support plate 103 and forms an acute angle with the loading plate 101; the middle parts of both the low-position support plate 102 and the high-position support plate 103 are hollowed out.
[0031] To accommodate pre-loaded test tubes of different diameters, all loading slides 12 have different widths; the loading slides 12 are straight slides, and all loading slides 12 are arranged in parallel and at equal intervals.
[0032] To prevent unnecessary swaying when the pre-loaded test tube slides down, the loading slide 12 extends in a vertical plane; a guide sliding plate 14 is provided on each side of the loading plate 101 in the width direction, and the guide sliding plate 14 is arranged parallel to the loading slide 12; a gap is reserved between the guide sliding plate 14 and the loading plate 101, and the width of the gap is smaller than the tube length of the pre-loaded test tube.
[0033] To further explain the specific structure of the baffle 13, the baffle 13 includes a front baffle 131 and a pair of side baffles 132; the front baffle 131 is located on the lowest side of the loading plate 101, the front baffle 131 is vertically arranged, and the top side of the front baffle 131 is higher than the lowest side of the loading plate 101; the two side baffles 132 are respectively located at both ends of the front baffle 131 in the length direction, and are vertically arranged, and are parallel to the loading slide 12.
[0034] In order to further improve the shielding area and overall structural performance of the side baffle 132, the side baffle 132 is wedge-shaped and matches the angle of the low support plate 102. The side of the side baffle 132 near the low support plate 102 is perpendicularly arranged and connected to the low support plate 102.
[0035] To facilitate the removal of pre-loaded test tubes, the loading slide 12 extends through the loading plate 101 at one end near the loading side to form a tube retrieval port. The width of the tube retrieval port is greater than the diameter of the cap of the pre-loaded test tube. Each tube retrieval port is vertically provided with a pair of elastic clips 15. When the elastic clips 15 are in their natural state, the width between the pair of elastic clips 15 matches the diameter of the pre-loaded test tube.
[0036] With the above settings, when it is necessary to remove the test tube, simply pull, press down, or pull up the pre-loaded test tube to detach it from the elastic clip 15.
[0037] Preferably, the top side of the elastic clip 15 is inclined so that when the preloaded test tube is pressed down, the cap of the preloaded test tube can be pressed in and open the elastic clip 15.
[0038] With the above setup, when it is necessary to remove the test tube, simply press down on the pre-loaded test tube to open it up and gradually detach it from the elastic clip 15.
[0039] The specific embodiments described above further illustrate the purpose, technical solution, and beneficial effects of this utility model. It should be understood that the above description is only a specific embodiment of this utility model and is not intended to limit the scope of protection of this utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the scope of protection of this utility model.
Claims
1. A test tube loading device, characterized in that, include: A loading rack (10) is provided with a loading surface (11) on the top. The loading surface (11) is an inclined plane, forming an insertion side on the highest side and a loading side on the lowest side. The top of the loading rack (10) has multiple loading slides (12). The loading slides (12) extend along the plane of the loading surface (11). The two ends of the loading slides (12) are located on the insertion side and the loading side, respectively. The width of the loading slides (12) is slightly larger than the outer diameter of the pre-loaded test tube and smaller than the outer diameter of the pre-loaded test tube cap, so that the cap of the pre-loaded test tube is mounted on the loading surface (11). Baffle (13) is provided on the loading side. When the preloaded test tube is located on the loading side, the preloaded test tube contacts and is squeezed by the baffle (13).
2. The test tube loading device according to claim 1, characterized in that, The loading rack (10) includes a loading plate (101), a low support plate (102), and a high support plate (103); The loading plate (101) is inclined, the upper surface of the loading plate (101) is the loading surface, the loading slide (12) is opened on the loading plate (101), and the loading slide (12) passes through the loading plate (101) along the thickness direction of the loading plate (101); One side of the low-position support plate (102) is connected to the lowest side of the loading plate (101), and the opposite side is used to contact the ground; One side of the high-position support plate (103) is connected to the highest side of the loading plate (101), and the opposite side is used to contact the ground.
3. The test tube loading device according to claim 2, characterized in that, The loading plate (101), the low-position support plate (102), and the high-position support plate (103) are integrally formed.
4. The test tube loading device according to claim 3, characterized in that, The high-position support plate (103) is set vertically; The low-position support plate (102) is inclined toward the high-position support plate (103) and is set at an acute angle with the loading plate (101); The middle parts of both the low-position support plate (102) and the high-position support plate (103) are hollowed out.
5. The test tube loading device according to claim 4, characterized in that, The widths of all the loading slides (12) are different; The loading slide (12) is a straight slide, and all the loading slides (12) are arranged in parallel and at equal intervals.
6. The test tube loading device according to claim 5, characterized in that, The loading slide (12) extends in a vertical plane; A guide sliding plate (14) is provided on each side of the loading plate (101) in the width direction, and the guide sliding plate (14) is arranged parallel to the loading slide (12); A gap is reserved between the guide sliding plate (14) and the loading plate (101), and the width of the gap is less than the length of the pre-loaded test tube.
7. The test tube loading device according to claim 6, characterized in that, The baffle (13) includes a front baffle (131) and a pair of side baffles (132); The front baffle (131) is located on the lowest side of the loading plate (101). The front baffle (131) is vertically arranged, and the height of the top side of the front baffle (131) is higher than the height of the lowest side of the loading plate (101). The two side baffles (132) are respectively located at both ends of the front baffle (131) along its length, and are vertically arranged and parallel to the loading slide (12).
8. The test tube loading device according to claim 7, characterized in that, The side baffle (132) is wedge-shaped and its angle matches that of the low support plate (102). The side baffle (132) is perpendicular to and connected to the low support plate (102) on the side closest to the low support plate (102).
9. The test tube loading device according to claim 7, characterized in that, The loading slide (12) extends through the loading plate (101) at one end near the loading side to form a tube-taking port, the width of which is greater than the diameter of the cap of the pre-loaded test tube. Each of the tube openings is vertically provided with a pair of elastic clips (15). When the elastic clips (15) are in their natural state, the width between the pair of elastic clips (15) matches the diameter of the pre-loaded test tube.
10. The test tube loading device according to claim 9, characterized in that, The top side of the elastic clip (15) is inclined, and when the preloaded test tube is pressed down, the cap of the preloaded test tube can be pressed in and open the elastic clip (15).