A medicament sterilization device for a toad venom injection
Patent Information
- Application Number
- CN202521020059.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-05-22
AI Technical Summary
[0005]本实用新型的目的是,克服上述背景技术中的蛇形管内部容易停留过多的注射液,注射液排出时间过长的问题
(1)注射液均衡:通过设置有混合块对注射液进行收集,后螺旋块将注射液扰乱,形成紊流,使得注射液螺旋状进入到蛇形管的内部,从而注射液在灭菌过程中增加与紫外线灯的接触面,保证使用方便快捷。
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Figure CN224762221U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of toad venom injection technology, specifically to a sterilization device for toad venom injection. Background Technology
[0002] The main component of toad venom injection is toad venom, and the excipients are anhydrous sodium sulfite, sodium chloride, and benzyl alcohol. Toad venom is a physiologically active water-soluble indole alkaloid derivative extracted from the secretions of the skin glands and parotid glands of toads using advanced scientific processes. It has antibacterial, anti-inflammatory, analgesic, anti-radiation, immune-boosting, and anti-tumor effects. Clinically, it is mainly used for acute and chronic purulent infections and as an adjuvant drug for antitumor treatment. Toad venom injection needs to be sterilized during the preparation process.
[0003] For example, the sterilization device for processing toad venom injection disclosed in publication number "CN220656001U" uses a combination of a groove, a protrusion, a pull plate, and a filter assembly to filter the toad venom injection multiple times with good filtration effect. After the device finishes working, pulling the pull plate to the right moves the filter assembly to the right, causing the protrusion to move to the right and separate from the groove, making it easy to remove the filter assembly from the inner cavity of the filter box for cleaning, thus avoiding blockage due to long-term use and affecting the filtration effect of the filter assembly. However, the following problems still exist in the use of this equipment. This device extends the residence time of the injection solution through a serpentine tube during use, thereby achieving a better sterilization effect. However, injection solution is prone to remain inside the serpentine tube, requiring a significant amount of time to drain the solution, which affects work efficiency.
[0004] In summary, it is particularly important to design a device that can ensure the rapid discharge of the injection solution inside the serpentine tube. Utility Model Content
[0005] The purpose of this invention is to overcome the problems in the prior art where excessive injection solution tends to remain inside the serpentine tube, resulting in excessively long injection solution discharge time.
[0006] Based on the above technical concept, the technical solution adopted by this utility model is as follows: a mixing mechanism is set above the main body of the device to mix the injection liquid, so that it forms turbulence, thereby increasing its time inside the serpentine tube. At the same time, a vibration mechanism is used to drive the serpentine tube to vibrate, so that the injection liquid inside the serpentine tube is quickly discharged, avoiding the injection liquid from staying for too long.
[0007] A sterilization device for toad venom injection includes a main body, a mixing mechanism located above the main body, and a vibration mechanism located below the main body. To further define the above technical solution, the main body of the device is also provided with a serpentine tube to prolong the residence time of the injection solution, and movable sterilization ultraviolet lamps are provided on both sides of the serpentine tube for sterilization.
[0008] Further defining the above technical solution, the mixing mechanism includes a mixing block, an adsorption magnet, a first shock-absorbing damper, a base plate, a limiting block, a spiral block, a support rod, and a sliding block. The top of the mixing block has a funnel-shaped structure, and the center of the mixing block has a cylindrical structure. The injection liquid is collected through the funnel-shaped mixing block, which facilitates subsequent work.
[0009] Further defining the above technical solution, the two sides of the mixing block are connected to adsorption magnets for quick disassembly, and a first damping damper is magnetically adsorbed and connected below the adsorption magnet. The first damping damper is integrally installed with the main body of the device through the base plate. Through the cooperation of the first damping damper and the adsorption magnet, the mixing block is driven to perform shock absorption to prevent its vibration amplitude from being too large.
[0010] Further defining the above technical solution, the limiting block and the mixing block are installed as a single unit, the limiting block and the spiral block are connected by a rotational connection, the spiral block is in the shape of an Archimedean spiral, and the injection liquid is stirred in a spiral manner by the limiting block cooperating with the spiral block to form turbulence.
[0011] Further defining the above technical solution, the support rods are evenly and equidistantly distributed on both sides of the center of the sliding block, the sliding block and the mixing block are connected by a sliding connection, the sliding block is used to limit the position of the mixing block, and the support rods cooperate with the sliding block to limit the position of the mixing block and prevent it from shaking.
[0012] Further defining the above technical solution, the vibration mechanism includes a linkage plate, a vibration motor, an elastic tube, and a rubber sealing layer. The linkage plate and the serpentine tube are interlocked, and the linkage plate interlocks with the serpentine tube to facilitate the lifting and lowering of the serpentine tube.
[0013] Further defining the above technical solution, the linkage plate has symmetrically distributed rubber sealing layers on both sides, and an elastic tube is engaged below the rubber sealing layers. A vibration motor for vibration is connected to one side of the linkage plate. The vibration motor drives the serpentine tube to vibrate, thereby rapidly discharging the injection solution.
[0014] Compared with the prior art, the beneficial effects of this utility model are: (1) Injection solution equalization: The injection solution is collected by a mixing block and then the spiral block disturbs the injection solution to form turbulence, so that the injection solution enters the interior of the serpentine tube in a spiral shape. This increases the contact area between the injection solution and the ultraviolet lamp during the sterilization process, ensuring convenient and quick use.
[0015] (2) Discharge speed of injection solution: A vibration motor is installed at the bottom of the serpentine tube. After discharge, the vibration motor drives the serpentine tube to vibrate, thereby quickly discharging the injection solution. At the same time, a rubber sealing layer is installed at the bottom of the serpentine tube to ensure that the serpentine tube will not fall off during the operation and to quickly discharge the injection solution. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a front view structural diagram of a sterilization device for toad venom injection according to the present invention; Figure 2 This is a top view schematic diagram of the mixing mechanism of a sterilization device for toad venom injection solution according to this utility model; Figure 3 This is a top view of the base plate structure of a sterilization device for toad venom injection solution according to this utility model; Figure 4 This is a top view schematic diagram of the linkage plate structure of a sterilization device for toad venom injection solution according to this utility model.
[0018] The components include: 1. Main body of the device; 2. Mixing mechanism; 201. Mixing block; 202. Adsorption magnet; 203. First damping shock absorber; 204. Base plate; 205. Limiting block; 206. Spiral block; 207. Support rod; 208. Sliding block; 3. Vibration mechanism; 301. Linkage plate; 302. Vibration motor; 303. Elastic tube; 304. Rubber sealing layer; 305. Second damping shock absorber; 4. Serpentine tube; 5. Ultraviolet lamp. Detailed Implementation
[0019] The following is in conjunction with the appendix Figures 1-4 This utility model will be described in further detail.
[0020] This embodiment provides a sterilization device for toad venom injection, such as... Figure 1 As shown, the device body 1 is also equipped with a serpentine tube 4 to extend the residence time of the injection solution. Movable sterilization ultraviolet lamps 5 are provided on both sides of the serpentine tube 4, and sterilization is performed by using the ultraviolet lamps 5.
[0021] Combination Figure 1 , Figure 2 and Figure 3In this embodiment of the invention, the device body 1 has a mixing mechanism 2 above it. The mixing mechanism 2 turbulently stirs the injection liquid. The mixing mechanism 2 includes a mixing block 201, an adsorption magnet 202, a first damping shock absorber 203, a base plate 204, a limiting block 205, a spiral block 206, a support rod 207, and a sliding block 208. The top of the mixing block 201 has a funnel-shaped structure, and the center of the mixing block 201 has a cylindrical structure. The injection liquid is collected through the funnel-shaped mixing block 201 to facilitate subsequent work. The limiting block 205 is integrated with the mixing block 201. The connection between the limiting block 205 and the spiral block 206 is a rotatable connection. The spiral block 206 is in the shape of an Archimedean spiral. The limiting block 205 cooperates with the spiral block 206 to stir the injection liquid in a spiral, forming turbulence.
[0022] Combination Figure 1 , Figure 2 and Figure 3 In this embodiment of the present invention, the mixing block 201 is connected to two sides with adsorption magnets 202 for quick disassembly. The adsorption magnets 202 are magnetically connected to a first damping damper 203 below them. The first damping damper 203 is integrally installed with the device body 1 through the base plate 204. The first damping damper 203 cooperates with the adsorption magnets 202 to drive the mixing block 201 to perform shock absorption and prevent its vibration amplitude from being too large. The support rods 207 are evenly distributed on both sides of the center of the sliding block 208. The sliding block 208 and the mixing block 201 are connected by a sliding connection. The sliding block 208 is used to limit the mixing block 201. The support rods 207 cooperate with the sliding block 208 to limit the mixing block 201 and prevent it from shaking.
[0023] Combination Figure 1 and Figure 4 In an embodiment of this utility model, the vibration mechanism 3 includes a linkage plate 301, a vibration motor 302, an elastic tube 303, and a rubber sealing layer 304. The linkage plate 301 and the serpentine tube 4 are interlocked. The linkage plate 301 interlocks the serpentine tube 4, facilitating the lifting and lowering of the serpentine tube 4. Rubber sealing layers 304 are symmetrically distributed on both sides of the linkage plate 301. The elastic tube 303 is interlocked below the rubber sealing layer 304. A vibration motor 302 for vibration is connected to one side of the linkage plate 301. The vibration motor 302 drives the serpentine tube 4 to vibrate, thereby quickly discharging the injection liquid.
[0024] Working principle: First, the injection solution is injected into the interior of the main body 1 through the top of the main body 1. After passing through multiple filters, the injection solution drips into the interior of the mixing block 201 and then enters the center of the mixing block 201. At this time, the injection solution flows along the spiral block 206, forming a spiral shape, and finally enters the interior of the serpentine tube 4. After being sterilized by the ultraviolet lamp 5, it is discharged through the elastic tube 303. As described above, after the sterilization of the injection solution is completed, the switch of the vibration motor 302 is turned on, causing the linkage plate 301 and the serpentine tube 4 to start vibrating. At this time, the injection solution inside the serpentine tube 4 is dislodged from the inner wall of the serpentine tube 4 under vibration, accelerating the flow. At this time, the second damping damper 305 provides damping and buffering to prevent the linkage plate 301 from vibrating too much. At the same time, the serpentine tube 4 drives the mixing block 201 to vibrate. The first damping damper 203 below the mixing block 201 provides buffering to prevent the vibration amplitude from being too large, and the sliding block 208 provides limiting to prevent shaking, so that the injection solution inside the mixing block 201 is also discharged.
[0025] The above description is a further detailed explanation of the present invention in conjunction with specific preferred embodiments, which is intended to enable those skilled in the art to understand and apply the present invention. However, it should not be assumed that the specific implementation of the present invention is limited to these descriptions.
Claims
1. A sterilization device for toad venom injection, comprising a main body (1), characterized in that, A mixing mechanism (2) is provided above the main body (1) of the device, a vibration mechanism (3) is provided below the main body (1), and a serpentine tube (4) for extending the residence time of the injection solution is also provided inside the main body (1). Movable sterilization ultraviolet lamps (5) are provided on both sides of the serpentine tube (4). The mixing mechanism (2) includes a mixing block (201), an adsorption magnet (202), a first damping shock absorber (203), a base plate (204), a limiting block (205), a spiral block (206), a support rod (207), and a sliding block (208). The top of the mixing block (201) is funnel-shaped, and the center of the mixing block (201) is cylindrical. Adsorption magnets (202) for quick disassembly are connected to both sides of the mixing block (201). The first damping shock absorber (203) is magnetically adsorbed and connected to the bottom of the adsorption magnet (202). The first damping shock absorber (203) is integrated with the main body of the device (1) through the base plate (204). The support rod (207) is evenly and equidistantly distributed on both sides of the center of the sliding block (208). The sliding block (208) is connected to the mixing block (201) by sliding connection. The sliding block (208) is used to limit the mixing block (201). The vibration mechanism (3) includes a linkage plate (301), a vibration motor (302), an elastic tube (303), and a rubber sealing layer (304). The linkage plate (301) and the serpentine tube (4) are interlocked. Rubber sealing layers (304) are symmetrically distributed on both sides of the linkage plate (301). An elastic tube (303) is interlocked below the rubber sealing layer (304). A vibration motor (302) for vibration is connected to one side of the linkage plate (301).
2. The device according to claim 1, wherein, The limiting block (205) and the mixing block (201) are installed as a whole. The limiting block (205) and the spiral block (206) are connected by rotation. The spiral block (206) is in the shape of an Archimedean spiral.