Hemolytic agent packaging, labeling and conveying integrated mechanism
By using a vacuum adsorption component to create a gap between the labeling device and the conveyor table during the labeling process of the hemolytic agent bottle, the problems of conveyor table aging and particulate contamination caused by friction were solved, and a stable and efficient labeling operation was achieved.
Patent Information
- Application Number
- CN202520330801.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2035-02-27
AI Technical Summary
The existing hemolytic agent bottles rub against the conveyor during the labeling process, which accelerates the aging of the conveyor and the friction particles may affect the quality of the hemolytic agent inside the bottle.
A vacuum adsorption component is used to adsorb the hemolytic agent bottle between the labeling roller and the push roller plate, forming a gap with the conveyor table to avoid frictional contact. The push roller plate and the labeling roller are used to complete the clamping and self-rotating labeling.
Extend the service life of the conveyor, avoid the risk of contamination of the hemolysin inside the bottle by friction particles, and ensure the stability and safety of the labeling process.
Smart Images

Figure CN223836002U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hemolytic agent production, and in particular to an integrated mechanism for packaging, labeling and conveying hemolytic agents. Background Technology
[0002] Hemolytic agents are chemical reagents that play a crucial role in the field of medical testing. During their production, they are typically packaged in bottles, then labeled, and finally shipped out of the factory.
[0003] In existing technologies, the labeling of hemolysin is typically performed on a conveyor table. Specifically, a labeling station is set up on the conveyor table, with corresponding labeling rollers and push rollers placed on either side of the station. When the hemolysin bottle is conveyed to the labeling station, the push roller pushes the bottle until it is in close contact with the labeling roller. At this point, the label output by the label conveying mechanism located on one side of the labeling roller is affixed to the outer wall of the bottle. Then, with the rotation of the labeling roller, the bottle rotates within the clamping space formed between the push roller and the labeling roller, completing the labeling function. However, practical application has revealed certain drawbacks in this process: Since the hemolysin bottle is constantly in contact with the conveyor surface of the conveyor table, friction inevitably occurs as the bottle rotates to complete the labeling operation. This accelerates the aging of the conveyor table and affects its service life. Furthermore, particles formed during friction may adhere to the bottle, posing a potential risk to subsequent processes.
[0004] Therefore, an integrated packaging, labeling, and conveying mechanism for hemolytic agents is needed to solve the above problems. Utility Model Content
[0005] The purpose of this invention is to provide an integrated packaging, labeling, and conveying mechanism for hemolytic agents, so that the hemolytic agent bottle can detach from the conveying surface of the conveying table during the process of being held and rotated by the labeling roller and the push roller, thereby extending the service life of the conveying table and effectively avoiding the risks caused by the presence of friction particles.
[0006] To solve the above-mentioned technical problems, this utility model provides an integrated packaging, labeling and conveying mechanism for hemolytic agents, including a conveying table, a labeling machine body and a vacuum adsorption component;
[0007] The conveyor table has a labeling station;
[0008] The labeling machine body includes a labeling roller and a pusher roller plate;
[0009] The labeling roller is rotatably mounted on one side of the labeling station for applying labels;
[0010] The pusher roller is slidably installed on the other side of the labeling station and moves in the direction close to or away from the labeling roller to drive the hemolytic agent bottle to be tightly attached to or separated from the labeling roller;
[0011] The moving direction of the push roller is perpendicular to the conveying direction of the conveyor table;
[0012] The vacuum adsorption component is disposed on the labeling station and located between the labeling roller and the push roller plate. It is used to adsorb the hemolytic agent bottle, so that a gap is formed between the hemolytic agent bottle and the conveying surface of the conveying table.
[0013] Furthermore, the vacuum adsorption component includes a support plate and a vacuum adsorption pipe;
[0014] The support plate is fixed on the labeling station;
[0015] The vacuum adsorption pipe is located on the lower surface of the support plate and directly above the label, with the other end connected to an external vacuum pump via a pipe.
[0016] Furthermore, the vacuum adsorption pipe is configured as an elastic telescopic pipe with a suction cup at the end, so that when the hemolysing agent bottle is located at the labeling station, the vacuum adsorption pipe can be tightly attached to and adsorb the end of the hemolysing agent bottle.
[0017] Furthermore, the elastic telescopic tube is configured as a corrugated tube.
[0018] Furthermore, a compression spring is provided between the outer wall of the bellows and the support plate.
[0019] Furthermore, the gap is 5mm-15mm.
[0020] Furthermore, the side of the pusher roller facing the labeling roller has a self-rotating roller body;
[0021] When the roller pushes the hemolytic agent bottle to adhere to the labeling roller, and the labeling roller rotates, both the roller and the hemolytic agent bottle rotate around their own axis.
[0022] Furthermore, two rollers are provided to position the hemolytic agent bottle.
[0023] Compared with the prior art, the present invention has at least the following beneficial effects:
[0024] By incorporating a vacuum adsorption component located between the labeling roller and the push roller, the push roller provides an adsorption force to the hemolysin bottle after it is pushed to contact with the labeling roller. This creates a gap between the hemolysin bottle and the conveying surface of the conveyor table. The push roller and labeling roller then clamp the hemolysin bottle and perform the subsequent labeling operation. This prevents the hemolysin bottle from contacting the conveying surface of the conveyor table during its rotation for labeling, thereby extending the service life of the conveyor table and effectively avoiding the risks associated with friction particles. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the integrated packaging, labeling, and conveying mechanism for hemolytic agents in one embodiment of the present invention;
[0026] Figure 2 This is a schematic diagram of the labeling machine body and conveying table in an integrated packaging, labeling and conveying mechanism for hemolytic agents according to one embodiment of the present invention;
[0027] Figure 3 This is a side sectional view of the labeling station in an integrated packaging, labeling, and conveying mechanism for hemolytic agents according to one embodiment of the present invention.
[0028] Figure 4 This is a side sectional view of the labeling station of the integrated packaging, labeling, and conveying mechanism for hemolytic agents in one embodiment of the present invention.
[0029] Reference numerals: 1. Conveyor table; 2. Labeling machine body; 21. Labeling roller; 22. Pushing roller plate; 221. Roller body; 3. Vacuum adsorption component; 31. Support plate; 32. Vacuum adsorption pipe. Detailed Implementation
[0030] The integrated packaging, labeling, and conveying mechanism for hemolytic agents of this utility model will be described in more detail below with reference to the schematic diagrams, which illustrate preferred embodiments of this utility model. It should be understood that those skilled in the art can modify the utility model described herein while still achieving the advantageous effects of this utility model. Therefore, the following description should be understood as being of general knowledge to those skilled in the art and is not intended to limit this utility model.
[0031] The present invention will be described in more detail below by way of example with reference to the accompanying drawings. The advantages and features of the present invention will become clearer from the following description. It should be noted that the drawings are in a very simplified form and use non-precise proportions, and are only used to facilitate and clarify the illustration of the embodiments of the present invention.
[0032] like Figures 1 to 4As shown in the figure, this utility model embodiment proposes an integrated packaging, labeling and conveying mechanism for hemolytic agents, including a conveying table 1, a labeling machine body 2 and a vacuum adsorption component 3.
[0033] The conveyor table 1 has a labeling station.
[0034] The labeling machine body 2 includes a labeling roller 21 and a pusher roller plate 22.
[0035] The labeling roller 21 is rotatably mounted on one side of the labeling station for applying labels, and the pusher roller 22 is slidably mounted on the other side of the labeling station and moves in the direction close to or away from the labeling roller 21 to drive the hemolytic agent bottle to be tightly attached to or separated from the labeling roller 21.
[0036] The labeling operation of the hemolysin bottle is completed through the cooperation between the push roller plate 22 and the labeling roller 21. Specifically, when the hemolysin bottle is located at the labeling station, the push roller plate 22 and the labeling roller 21 are located in the same vertical plane. The label feeding roller and the label peeling mechanism (not labeled in the figure) of the labeling machine body 2 transfer the label to the labeling roller 21. Therefore, when the push roller plate 22 pushes the hemolysin bottle to be attached to the labeling roller 21, the end of the label can be pasted on the hemolysin bottle. Then the labeling roller 21 drives the hemolysin bottle to rotate synchronously, so that the entire label is pasted on the outer wall of the hemolysin bottle, completing the labeling operation. Afterwards, when the push roller plate 22 separates from the hemolysin bottle, the labeled hemolysin bottle can be output to the next process under the conveying power of the conveyor table 1.
[0037] It should be noted that the moving direction of the push roller plate 22 is perpendicular to the conveying direction of the conveying table 1.
[0038] In this embodiment, the vacuum adsorption component 3 is disposed on the labeling station and located between the labeling roller 21 and the push roller plate 22. It is used to adsorb the hemolysin bottle, creating a gap between the hemolysin bottle and the conveying surface of the conveyor table 1. This effectively avoids friction caused by the hemolysin bottle rotating and contacting the conveying surface of the conveyor table 1 during the labeling operation, thereby extending the service life of the conveyor table 1 and avoiding the risks caused by friction particles.
[0039] In this embodiment, a method for using an integrated packaging, labeling, and conveying mechanism for hemolytic agents is also proposed to further illustrate the specific operation process of the device, which includes the following steps:
[0040] The hemolytic agent bottle is transported to the labeling station by the power of the conveyor 1;
[0041] The pusher plate 22 pushes the hemolytic agent bottle to fit with the labeling roller 21. At this time, the pusher plate 22 does not completely limit the hemolytic agent bottle.
[0042] The vacuum adsorption component 3 provides an adsorption force to the hemolysin bottle in a direction away from the conveying surface of the conveying table 1;
[0043] The push roller plate 22 is controlled again to push the hemolysin bottle suspended on the conveyor table 1, so that a gap is formed between the push roller plate 22 and the labeling roller 21 for the hemolysin bottle to rotate. During this process, the label feeding roller and the label peeling mechanism in the labeling machine body 2 just deliver the label to the space between the labeling roller 21 and the hemolysin bottle.
[0044] The labeling roller 21 is driven to rotate, and under the power of the labeling roller 21, the hemolytic agent bottle rotates to complete the labeling operation;
[0045] The control push roller plate 22 is separated from the hemolytic agent bottle, and the control vacuum adsorption component 3 is no longer adsorbed on the hemolytic agent bottle, so that the hemolytic agent bottle after labeling falls back onto the conveying surface of the conveyor table 1 under the action of gravity, so as to be transferred to the next process.
[0046] Through the above steps, this device ensures that the hemolysin bottle will not come into contact with the conveying surface of the conveyor table 1 when it rotates for labeling, thereby extending the service life of the conveyor table 1 and effectively avoiding the risks caused by the presence of friction particles.
[0047] In this embodiment, the vacuum adsorption component 3 includes a support plate 31 and a vacuum adsorption pipe 32.
[0048] The support plate 31 is fixed on the labeling station.
[0049] The vacuum adsorption pipe 32 is located on the lower surface of the support plate 31 and directly above the label. The other end is connected to an external vacuum pump through a pipe. The vacuum adsorption pipe 32 is used to perform adsorption and extraction of the hemolytic agent via the power output of the vacuum pump.
[0050] It should be noted that, in order to ensure the adsorption effect of the vacuum adsorption pipe 32 and not affect the normal transport of the hemolysin bottle on the transport platform 1, the vacuum adsorption pipe 32 is further limited here.
[0051] Specifically, the vacuum adsorption pipe 32 is configured as an elastic telescopic tube with a suction cup at one end, so that when the hemolysin bottle is located at the labeling station, the vacuum adsorption pipe 32 can tightly adhere to and adsorb the end of the hemolysin bottle. By configuring the vacuum adsorption pipe 32 as an elastic telescopic tube with a suction cup, it has room for expansion and contraction in the vertical direction. Therefore, when the hemolysin bottle moves directly below the vacuum adsorption pipe 32, the vacuum adsorption pipe 32 can first compress and then extend to tightly adhere to the end of the hemolysin bottle, thereby improving the adsorption effect without interfering with the transport of the hemolysin bottle.
[0052] In one example, the elastic telescopic tube is set as a corrugated tube, and a compression spring is provided between the outer wall of the corrugated tube and the support plate 31 to prevent the corrugated tube from deforming over a long period of time and failing to adhere tightly to the end of the hemolytic agent bottle, thereby affecting the adsorption effect.
[0053] In other embodiments, the size of the gap is further limited to 5mm-15mm, preferably 10mm, to ensure that the hemolytic agent bottle will not tip over due to height when it descends to contact the conveying surface of the conveying platform 1, thereby improving the stability of the device during operation.
[0054] In other embodiments, the push roller plate 22 is further defined to improve the labeling effect of the hemolytic agent bottle. Specifically, the push roller plate 22 has a self-rotating roller body 221 on the side facing the labeling roller 21. When the roller body 221 pushes the hemolytic agent bottle to adhere to the labeling roller 21, and the labeling roller 21 rotates, both the roller body 221 and the hemolytic agent bottle rotate about their own axis.
[0055] Preferably, two rollers 221 are provided to position the hemolysin bottle, ensuring that the hemolysin bottle will not detach or tip over during rotation, thereby improving the stability of the labeling process.
[0056] Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.
Claims
1. An integrated packaging, labeling, and conveying mechanism for hemolytic agents, characterized in that, Includes the conveyor table, labeling machine body, and vacuum adsorption components; The conveyor table has a labeling station; The labeling machine body includes a labeling roller and a pusher roller plate; The labeling roller is rotatably mounted on one side of the labeling station and is used to apply labels; The pusher roller is slidably installed on the other side of the labeling station and moves in the direction close to or away from the labeling roller to drive the hemolytic agent bottle to be tightly attached to or separated from the labeling roller; The moving direction of the push roller is perpendicular to the conveying direction of the conveyor table; The vacuum adsorption component is disposed on the labeling station and located between the labeling roller and the push roller plate. It is used to adsorb the hemolytic agent bottle, so that a gap is formed between the hemolytic agent bottle and the conveying surface of the conveying table.
2. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 1, characterized in that, The vacuum adsorption component includes a support plate and a vacuum adsorption pipe; The support plate is fixed on the labeling station; The vacuum adsorption pipe is located on the lower surface of the support plate and directly above the label, with the other end connected to an external vacuum pump via a pipe.
3. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 2, characterized in that, The vacuum adsorption pipe is configured as an elastic telescopic pipe with a suction cup at the end, so that when the hemolysing agent bottle is located at the labeling station, the vacuum adsorption pipe can be tightly attached to and adsorb the end of the hemolysing agent bottle.
4. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 3, characterized in that, The elastic expansion tube is configured as a corrugated tube.
5. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 4, characterized in that, A compression spring is provided between the outer wall of the corrugated pipe and the support plate.
6. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 1, characterized in that, The gap is 5mm-15mm.
7. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 1, characterized in that, The pusher roller plate has a self-rotating roller body on the side facing the labeling roller; When the roller pushes the hemolytic agent bottle to adhere to the labeling roller, and the labeling roller rotates, both the roller and the hemolytic agent bottle rotate around their own axis.
8. The integrated packaging, labeling, and conveying mechanism for hemolytic agents as described in claim 7, characterized in that, Two rollers are provided to position the hemolytic agent bottle.