Abamectin oxidation reaction protection device
By designing a combination of external protection tank, internal tank, vibration assembly and discharge assembly, the oxidation reaction and residue of avermectin during the preparation of veterinary drugs is solved, and the safe discharge and long-term storage of the material is achieved.
Patent Information
- Application Number
- CN202421792307.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-27
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-07-27
AI Technical Summary
During the process of making avermectin into veterinary drugs, existing protective containers are prone to oxidation reactions and residues, making them inconvenient to use.
An oxidation reaction protection device including an external protection tank, an inner tank, a vibration assembly, a discharge assembly and a supporting mobile assembly is designed. Through the discharge port, an inner groove, a bottom cover, a discharge pipe and a telescopic cover, the material is avoided from contacting the air during discharge, and the material is quickly transferred and stored for a long time.
Effectively prevent the oxidation reaction of avermectin during discharge, ensure that the material does not remain, and improve the convenience of use and protection effect.
Smart Images

Figure CN223046387U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of veterinary drug processing, and specifically, to a protection device for the oxidation reaction of avermectin. Background Technique
[0002] Avermectin has stomach toxicity and contact killing effects on mites and insects and cannot kill eggs. Different from general insecticides, its mechanism of action is to interfere with nerve physiological activities and stimulate the release of γ-aminobutyric acid, and aminobutyric acid has an inhibitory effect on the nerve conduction of arthropods. After contact with avermectin, adult mites, nymphs and insect larvae will show paralysis symptoms, become inactive and stop feeding, and die after 2-4 days. Since it does not cause rapid dehydration of insects, the lethal effect of avermectin is relatively slow. Although avermectin has a direct contact killing effect on predatory insects and parasitic natural enemies, due to the small residue on the plant surface, the damage to beneficial insects is very small. Avermectin is adsorbed by the soil in the soil and will not move, and is decomposed by microorganisms, so there is no cumulative effect in the environment and it can be used as a part of integrated control. It is easy to prepare. Pour the preparation into water and stir slightly to use, and it is also relatively safe for crops.
[0003] During the process of making avermectin into veterinary drugs, protection is required to avoid oxidation reactions. The current protection containers are relatively simple, and it is very easy to have oxidation reactions during the discharging process, and it is very easy to have residues, which is not convenient to use.
[0004] Therefore, improvements are made to the above problems. Content of the Utility Model
[0005] The utility model provides a protection device for the oxidation reaction of avermectin, which solves the problem in the related technology that during the process of making avermectin into veterinary drugs, protection is required to avoid oxidation reactions. The current protection containers are relatively simple, and it is very easy to have oxidation reactions during the discharging process, and it is very easy to have residues, which is not convenient to use.
[0006] The technical solution of the utility model is as follows: including
[0007] An outer protection tank and an inner tank, and the inner tank is arranged inside the outer protection tank;
[0008] An outer frame and a support moving component, the outer frame is arranged outside the outer protection tank, and the support moving component is arranged between the outside of the outer protection tank and the outer frame;
[0009] A vibration component, and the vibration component is arranged between the outer protection tank and the inner tank;
[0010] The discharge assembly is arranged at the bottom of the outer protective tank and the inner tank. The discharge assembly includes a circular opening which is opened at the bottom of the outer protective tank. An outlet is opened at the inner bottom of the inner tank, and an inner groove is opened at the inner bottom of the inner tank.
[0011] As a further technical solution, the inner groove is communicated with the outlet. A bottom cover is screwed and connected in the circular opening through threads. A discharge pipe is movably sleeved and connected in the outlet, and a telescopic cover is arranged between the discharge pipe and the inner groove.
[0012] As a further technical solution, a blocking sleeve is sleeved at the bottom of the discharge pipe. A convex block is arranged at the upper end of the bottom cover, and the convex block supports at the bottom of the blocking sleeve. The inner bottom of the bottom cover is a convex conical structure.
[0013] As a further technical solution, the vibration assembly includes an outer ring layer which is arranged around the bottom of the inner tank. A first spring is arranged between the outer ring layer and the inner bottom of the outer protective tank. A plurality of convex layers are arranged on the inner surface of the outer protective tank and the outer surface of the inner tank.
[0014] As a further technical solution, a second spring is arranged between the convex layers. A top opening is opened at the top of the outer protective tank. A push rod is arranged at the top of the inner tank. A protective cover is rotatably connected to one side in the top opening through a pin shaft.
[0015] As a further technical solution, the support and movement assembly includes a plurality of moving wheels which are installed at the relative four corners of the bottom of the outer frame. Long grooves are opened on both opposite end faces of the outer frame. A pair of slide ways are arranged in the long grooves. A guide rod and a vertical lead screw are respectively installed in the long grooves at both opposite ends.
[0016] As a further technical solution, a lifting seat is slidably connected to the slide way. The lifting seat is fixedly connected to the outer surface of the outer protective tank. The lifting seat is connected to the guide rod and the vertical lead screw, and the lifting seat is fixedly connected to the outer wall of the outer protective tank.
[0017] As a further technical solution, the bottom of the outer frame is in a gate-shaped structure.
[0018] As a further technical solution, a sealing plug is installed at the top of the inner tank, and the protective cover is located directly above the sealing plug.
[0019] As a further technical solution, a horizontal handle is installed on the outer surface of the outer frame.
[0020] The working principle and beneficial effects of the present utility model are as follows:
[0021] In the present utility model, a discharge assembly is provided. Through the interaction of structures such as a discharge port, an inner groove, a bottom cover, a discharge pipe, a telescopic cover, a plugging sleeve, and a convex block, the discharge pipe can be directly inserted into the processing equipment through the telescopic effect, which can prevent the material from contacting the air during discharge and oxidizing, and can preserve avermectin for a long time. It can be quickly transferred to the processing equipment during use, having a good protection effect and practicality. Brief Description of the Drawings
[0022] The present utility model will be further described in detail below in conjunction with the drawings and specific embodiments.
[0023] Figure 1 It is a schematic structural diagram of the present utility model;
[0024] Figure 2 It is an axonometric view of the present utility model;
[0025] Figure 3 It is an axonometric view of another perspective of the present utility model;
[0026] Figure 4 It is an axonometric sectional view of the present utility model;
[0027] Figure 5 It is an attachment of the present utility model Figure 4 Partial enlarged view of part A in the figure;
[0028] In the figure: 1. Outer protective tank; 2. Inner tank; 3. Outer frame; 4. Discharge assembly; 4-1. Circular opening; 4-2. Discharge port; 4-3. Inner groove; 4-4. Bottom cover; 4-5. Discharge pipe; 4-6. Telescopic cover; 4-7. Plugging sleeve; 4-8. Convex block; 5. Vibration assembly; 5-1. Outer ring layer; 5-2. First spring; 5-3. Convex layer; 5-4. Second spring; 5-5. Top opening; 5-6. Push rod; 5-7. Protective cover; 6. Support and moving assembly; 6-1. Moving wheel; 6-2. Long groove; 6-3. Slideway; 6-4. Guide rod; 6-5. Vertical lead screw; 6-6. Lifting seat; 7. Sealing plug; 8. Horizontal handle. Specific Embodiments
[0029] The technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection of the present utility model.
[0030] As Figures 1 to 5 shown, this embodiment proposes an avermectin oxidation reaction protection device, including
[0031] An outer protective tank 1 and an inner tank 2, with the inner tank 2 disposed inside the outer protective tank 1;
[0032] An outer frame 3 and a support moving component 6, with the outer frame 3 disposed outside the outer protective tank 1 and the support moving component 6 disposed between the outside of the outer protective tank 1 and the outer frame 3;
[0033] A vibration component 5, with the vibration component 5 disposed between the outer protective tank 1 and the inner tank 2;
[0034] A discharging component 4, with the discharging component 4 disposed at the bottom of the outer protective tank 1 and the inner tank 2. The discharging component 4 includes a circular opening 4-1, the circular opening 4-1 is opened at the bottom of the outer protective tank 1, a discharging port 4-2 is opened at the inner bottom of the inner tank 2, an inner groove 4-3 is opened at the inner bottom of the inner tank 2, the inner groove 4-3 is communicated with the discharging port 4-2, a bottom cover 4-4 is screwed and connected in the circular opening 4-1 through threads, a discharging pipe 4-5 is movably sleeved and connected in the discharging port 4-2, a telescopic cover 4-6 is disposed between the discharging pipe 4-5 and the inner groove 4-3, a blocking sleeve 4-7 is sleeved at the bottom of the discharging pipe 4-5, a convex block 4-8 is disposed at the upper end of the bottom cover 4-4, the convex block 4-8 supports at the bottom of the blocking sleeve 4-7, and the inner bottom of the bottom cover 4-4 is a convex conical structure.
[0035] In this embodiment, in order to enable avermectin to directly enter the processing equipment without being oxidized, the discharging component 4 is designed. A circular opening 4-1 is opened at the bottom of the outer protective tank 1, a discharging port 4-2 is opened at the bottom of the inner tank 2, and the bottom of the inner tank 2 is an inclined structural surface. An inner groove 4-3 communicated with the discharging port 4-2 is also opened. A discharging pipe 4-5 is movably sleeved in the discharging port 4-2. The discharging pipe 4-5 is used for discharging outward, and a telescopic cover 4-6 is connected between the discharging pipe 4-5 and the inner groove 4-3. The discharging pipe 4-5 can extend outward into the processing equipment. When the discharging pipe 4-5 extends outward, the telescopic cover 4-6 contracts in cooperation. A blocking sleeve 4-7 is installed at the bottom of the discharging pipe 4-5 and can be removed during discharging. A bottom cover 4-4 is screwed and connected in the circular opening 4-1 through threads. A convex block 4-8 is disposed on the bottom cover 4-4, and the convex block 4-8 supports at the bottom of the bottom cover 4-4, and can keep the discharging pipe 4-5 in the inner tank 2.
[0036] Furthermore, the vibration component 5 includes an outer ring layer 5-1, the outer ring layer 5-1 is disposed around the bottom of the inner tank 2, a first spring 5-2 is disposed between the outer ring layer 5-1 and the inner bottom of the outer protective tank 1. A plurality of convex layers 5-3 are disposed on both the inner surface of the outer protective tank 1 and the outer surface of the inner tank 2. A second spring 5-4 is disposed between the convex layers 5-3. A top opening 5-5 is opened at the top of the outer protective tank 1, a push rod 5-6 is disposed at the top of the inner tank 2, and a protective cover 5-7 is rotatably connected to one side in the top opening 5-5 through a pin shaft.
[0037] In this embodiment, in order to ensure that no material remains in the inner tank 2, a vibration assembly 5 is designed. An outer ring layer 5-1 is provided at the bottom of the inner tank 2. A first spring 5-2 is connected between the outer ring layer 5-1 and the inner bottom of the outer protective tank 1. Convex layers 5-3 are provided on both the outer wall of the inner tank 2 and the inner wall of the outer protective tank 1. A second spring 5-4 is connected between the convex layers 5-3, enabling the inner tank 2 to shake within the outer protective tank 1. A top opening 5-5 is provided at the top of the outer protective tank 1. A push rod 5-6 is provided at the top of the inner tank 2, and the inner tank 2 can be shaken through the push rod 5-6 to fully discharge the material in the inner tank 2 outward. A protective cover 5-7 that can be turned up and opened upward is installed and can be opened when filling is required.
[0038] Further, the support and movement assembly 6 includes a plurality of moving wheels 6-1. The moving wheels 6-1 are installed at the relative four corners at the bottom of the outer frame 3. Long grooves 6-2 are provided on both opposite end faces of the outer frame 3. A pair of sliding channels 6-3 are provided in the long grooves 6-2. A guide rod 6-4 and a vertical lead screw 6-5 are respectively installed in the long grooves 6-2 at both opposite ends. A lifting seat 6-6 is slidably connected to the sliding channels 6-3. The lifting seat 6-6 is fixedly connected to the outer surface of the outer protective tank 1. The lifting seat 6-6 is connected to the guide rod 6-4 and the vertical lead screw 6-5. The lifting seat 6-6 is fixedly connected to the outer wall of the outer protective tank 1.
[0039] In this embodiment, in order to achieve the effect of being movable, a support and movement assembly 6 is designed. A plurality of moving wheels 6-1 are provided at the bottom of the outer frame 3 to support the movement of the outer frame 3. Long grooves 6-2 are provided on both opposite sides of the outer frame 3. A guide rod 6-4 and a vertical lead screw 6-5 are respectively provided in the two long grooves 6-2, and sliding channels 6-3 are installed. A lifting seat 6-6 fixed to the outer protective tank 1 is vertically slidably connected to the sliding channels 6-3. Both ends of the lifting seat 6-6 are connected to the guide rod 6-4 and the vertical lead screw 6-5. By turning the vertical lead screw 6-5, the lifting seat 6-6 can be controlled to move upward to achieve the effect of adjusting the discharging height.
[0040] Further, the bottom of the outer frame 3 is in a portal structure.
[0041] In this embodiment, due to the portal structure, the bottom of the outer frame 3 avoids the discharging position.
[0042] Further, a sealing plug 7 is installed at the top of the inner tank 2, and the protective cover 5-7 is located directly above the sealing plug 7.
[0043] In this embodiment, by installing the sealing plug 7, which blocks the feeding port of the inner tank 2 and is located directly below the protective cover 5-7, the sealing cover can be removed for filling after opening the protective cover 5-7.
[0044] Further, a horizontal handle 8 is installed on the outer surface of the outer frame 3.
[0045] In this embodiment, by installing a horizontal handle 8, it is convenient to push the outer frame 3 to move.
[0046] When in use, open the protective cover 5-7 and the sealing cover and add materials into the inner tank 2, which can be stored inside for a long time. When feeding materials into the processing equipment, push the outer frame 3 through the horizontal handle 8, and the moving wheels 6-1 at the bottom move. When discharging materials, turn the vertical lead screw 6-5 to control the lifting seat 6-6 to move the outer protective tank 1 vertically upward. After moving to an appropriate height, unscrew the bottom cover 4-4, then pull down the discharge pipe 4-5. When the discharge pipe 4-5 extends, the telescopic cover 4-6 contracts accordingly. After removing the blocking sleeve 4-7, extend it downward into the processing equipment. During the discharging process, hold the push rod 5-6 at the top and shake the inner tank 2 to fully discharge all the materials inside through vibration.
[0047] The above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. An avermectin oxidation reaction protection device, characterized in that: include An outer protective tank (1) and an inner tank (2), wherein the inner tank (2) is arranged inside the outer protective tank (1); An outer frame (3) and a supporting movable assembly (6), wherein the outer frame (3) is arranged outside the outer protective tank (1), and the supporting movable assembly (6) is arranged between the outside of the outer protective tank (1) and the outer frame (3); A vibration component (5), wherein the vibration component (5) is arranged between the outer protective tank (1) and the inner tank (2); A discharge assembly (4), the discharge assembly (4) being arranged at the bottom of the outer protective tank (1) and the inner tank (2), the discharge assembly (4) comprising a circular opening (4-1), the circular opening (4-1) being opened at the bottom of the outer protective tank (1), a discharge opening (4-2) being opened at the inner bottom of the inner tank (2), and an inner groove (4-3) being opened at the inner bottom of the inner tank (2).
2. A kind of avermectin oxidation reaction protection device according to claim 1, characterized in that, The inner groove (4-3) is connected to the discharge port (4-2); a bottom cover (4-4) is screwed in the circular port (4-1) via a thread; a discharge pipe (4-5) is movably connected in the discharge port (4-2); and a telescopic cover (4-6) is provided between the discharge pipe (4-5) and the inner groove (4-3).
3. A kind of avermectin oxidation reaction protection device according to claim 2, characterized in that, The bottom of the discharge pipe (4-5) is sleeved with a blocking sleeve (4-7), the upper end of the bottom cover (4-4) is provided with a convex block (4-8), the convex block (4-8) is supported on the bottom of the blocking sleeve (4-7), and the inner bottom of the bottom cover (4-4) is a convex conical structure.
4. The avermectin oxidation reaction protection device according to claim 1, characterized in that: The vibration assembly (5) comprises an outer ring layer (5-1), the outer ring layer (5-1) is arranged around the bottom of the inner tank (2), a first spring (5-2) is arranged between the outer ring layer (5-1) and the inner bottom of the outer protective tank (1), and a plurality of convex layers (5-3) are arranged on the inner surface of the outer protective tank (1) and the outer surface of the inner tank (2).
5. A kind of avermectin oxidation reaction protection device according to claim 4, characterized in that, A second spring (5-4) is arranged between the convex layers (5-3), a top opening (5-5) is opened on the top of the outer protective tank (1), a push rod (5-6) is arranged on the top of the inner tank (2), and a protective cover (5-7) is rotatably connected to one side of the top opening (5-5) via a pin shaft.
6. The avermectin oxidation reaction protection device according to claim 1, characterized in that: The supporting moving assembly (6) comprises a plurality of moving wheels (6-1), wherein the moving wheels (6-1) are mounted at four opposite corners of the bottom of the outer frame (3), and the opposite end surfaces of the outer frame (3) are provided with long grooves (6-2), a pair of slideways (6-3) are arranged in the long grooves (6-2), and guide rods (6-4) and vertical lead screws (6-5) are respectively installed in the opposite end long grooves (6-2).
7. The avermectin oxidation reaction protection device according to claim 6, characterized in that: A lifting seat (6-6) is slidably connected to the slideway (6-3), the lifting seat (6-6) is fixedly connected to the outer surface of the outer protective tank (1), the lifting seat (6-6) is connected to the guide rod (6-4) and the vertical lead screw (6-5), and the lifting seat (6-6) is fixedly connected to the outer wall of the outer protective tank (1).
8. The avermectin oxidation reaction protection device according to claim 1, characterized in that: The bottom of the outer frame (3) is in a door-shaped structure.
9. The avermectin oxidation reaction protection device according to claim 5, characterized in that: A sealing plug (7) is installed on the top of the inner tank (2), and the protective cover (5-7) is located directly above the sealing plug (7).
10. The avermectin oxidation reaction protection device according to claim 1, characterized in that: A transverse handle (8) is installed on the outer surface of the outer frame (3).