Vacuum spraying device for marine fish feed processing
Through the design of the vacuum tube body, rotary conveying mechanism and mesh barrel, combined with the dual-axis motor and pulley agitating blades, the problem of uneven mixing of grease and materials in traditional devices is solved, and efficient mixing of grease and materials is achieved, improving processing efficiency and avoiding oil crystallization.
Patent Information
- Application Number
- CN202422292105.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-09-20
AI Technical Summary
The vacuum spraying device used for the processing of traditional seawater fish feeds enters the grease from the top to the mixing box, and it takes a long time to stir the grease to make the grease and the material fully contact, resulting in low processing efficiency.
A vacuum spraying device for processing seawater fish feed is designed. Through the combination of the vacuum tube body, rotary conveying mechanism and mesh barrel, the vacuum tube body and mesh barrel are used to drive the vacuum tube body and mesh barrel to stir and mix in the device barrel body, and the grease is input into the connecting tube through a vacuum pump, which is directly discharged to different positions of the material during the mixing process. At the same time, the grease is filtered by the mesh barrel, combined with a double-axis motor, pulley and agitating blade for agitation, improving mixing uniformity.
Improves the mixing uniformity of grease and materials, reduces mixing time, improves processing efficiency, and avoids oil crystallization and curing at low temperatures.
Smart Images

Figure CN223233646U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of seawater fish feed processing, in particular to a vacuum spraying device for seawater fish feed processing. Background Art
[0002] During the feed production process, the feed raw materials need to be fully mixed, so that the nutritional value of the processed feed will be more balanced, making the feed more effective during use. During the production process, multiple feed ingredients are often mixed. In particular, after the single feed is initially processed, some oil or microecological preparations need to be sprayed on its outer surface to increase the oil content of the feed or increase the special properties of the feed.
[0003] According to the public patent 202123344889.X, a vacuum spraying device for processing marine fish feed includes a base and a bracket arranged on the base, a support plate is mounted on the bracket, a vacuum spraying mechanism is arranged on the support plate, a mixing mechanism is arranged below the vacuum spraying mechanism, and the mixing mechanism is arranged on the base. The vacuum spraying mechanism includes a first telescopic component, a second telescopic component, a vacuum shell and a quantitative component. The bottom of the first telescopic component is connected to the vacuum shell, and the first telescopic component is arranged on the support plate. The second telescopic component is arranged in the vacuum shell, and the bottom of the vacuum shell is provided with a deformed discharge pipe. The deformed discharge pipe consists of two trapezoidal blocks and a quadrilateral. The two trapezoidal blocks and the quadrilateral are connected, and a quantitative component is arranged in the deformed discharge pipe. The quantitative component includes a sliding block, a moving rod, a hollow block, a piston plate and a spring. The device can quantitatively control the spraying of grease on the feed, achieving the effect of saving materials. In the process of realizing the utility model, the inventor found that there are at least the following problems in the prior art that have not been solved. Although the elastic force of the spring drives the piston plate to drive the sliding block to the quadrilateral position on the deformed discharge pipe for sealing, thereby completing the quantitative spraying, the device can quantitatively control the spraying of grease on the feed. However, during use, the traditional vacuum spraying device for processing marine fish feed only inputs the grease into the mixing box from the top, resulting in the need to stir the grease in the mixing box for a period of time before the grease is fully in contact with the material in the mixing box, requiring a lot of mixing time, which reduces the processing efficiency. For this reason, it is necessary to design a new technical solution to solve the problem. Utility Model Content
[0004] The purpose of the utility model is to overcome the shortcomings of the existing technology, adapt to actual needs, and provide a vacuum spraying device for marine fish feed processing to solve the technical problem that the current traditional vacuum spraying device for marine fish feed processing only inputs the oil into the mixing box from the top, resulting in the need to stir the oil in the mixing box for a period of time before the oil and the material in the mixing box are fully in contact, requiring a lot of mixing time, and reducing the processing efficiency.
[0005] In order to achieve the purpose of the utility model, the technical solution adopted by the utility model is as follows: a vacuum spraying device for processing marine fish feed is designed, including a device cylinder, an opening is provided on one side of the device cylinder, and a cover plate is installed on the side of the opening, a dual-axis motor is installed on one side of the cover plate, a first motor shaft is connected to one side of the dual-axis motor, a clamping plate is fixed at both upper and lower ends of the first motor shaft, one side of the first motor shaft passes through the cover plate and extends into the device cylinder, one end of the first motor shaft located in the device cylinder is clamped with a clamping groove on the side of the vacuum tube body, a plurality of connecting pipes are connected to the upper and lower ends of the vacuum tube body, and the other ends of the plurality of connecting pipes are connected to a net cylinder;
[0006] One end of the vacuum tube body away from the first motor shaft passes through the device cylinder and is connected to the rotating conveying mechanism.
[0007] Preferably, the rotary conveying mechanism includes a rotary joint rotatably connected to the vacuum tube body, an L-shaped pipe fixedly connected to the other side of the rotary joint, and a vacuum pump body connected to the other end of the L-shaped pipe.
[0008] Preferably, one side of the vacuum pump body is connected to a device bottom box, and a device cylinder is installed on the top of the device bottom box.
[0009] Preferably, the other side of the dual-axis motor is connected to a second motor shaft, one side of the second motor shaft is fixed with a first pulley, the first pulley is externally connected to one end of a transmission belt, and the other end of the transmission belt is externally connected to the second pulley.
[0010] Preferably, a rotating rod is fixed to one side of the second pulley, and one end of the rotating rod away from the second pulley extends into the bottom box of the device, and a plurality of stirring blades are installed on the end of the rotating rod located in the bottom box of the device.
[0011] Preferably, a control host is installed in the middle of the front end of the device bottom box, and one end of a liquid pipe is connected to the upper and lower ends of the front surface of the device bottom box, and the other end of the liquid pipe is detachably connected to a pipe cover.
[0012] Compared with the prior art, the beneficial effects of the present invention are:
[0013] 1. The utility model combines the vacuum tube body, the rotating conveying mechanism and the net cylinder, and can use a motor to drive the vacuum tube body and multiple net cylinders to stir and mix the materials inside the device cylinder body. During the stirring and mixing process, the vacuum pump can be used to draw the oil in the bottom box of the device into the vacuum tube body, and the grease in the vacuum tube body is input into multiple connecting pipes. During the mixing process, the grease is directly discharged to different positions in the material, thereby improving the uniformity of the mixture of the grease and the material. At the same time, there is no need to stir and mix the material and grease for a long time. Moreover, since the connecting pipe is connected to the net cylinder, the discharged grease can be filtered by the net cylinder, which solves the technical problem of the traditional vacuum spraying device for marine fish feed processing, which only inputs the grease into the mixing box from the top, resulting in the need to stir the grease in the mixing box for a period of time before the grease is fully in contact with the material in the mixing box, requiring a lot of mixing time and reducing the processing efficiency.
[0014] 2. The utility model combines a dual-axis motor, a pulley and a stirring blade. When the dual-axis motor drives the vacuum tube body and the mesh cylinder to rotate, it also drives the pulley to rotate. The pulley and the belt drive the stirring blade in the bottom box of the device to stir the oil in the bottom box of the device, so that the oil in the bottom box of the device is homogenized. At the same time, it can prevent the oil from crystallizing and solidifying when the temperature is low. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0016] Figure 2 This is a schematic diagram of the internal structure of the cylinder of the device of the present utility model;
[0017] Figure 3 This is a schematic diagram of the internal structure of the bottom box of the device of the present invention.
[0018] In the figure: 1. Device bottom box; 101. Liquid pipe; 102. Pipe cover; 103. Control host; 2. Device cylinder; 201. Rotary joint; 202. L-shaped pipe; 203. Vacuum pump; 204. Cover plate; 205. First pulley; 206. Second motor shaft; 207. Drive belt; 208. Dual-axis motor; 209. Vacuum tube body; 210. Connecting pipe; 211. Net cylinder; 212. First motor shaft; 213. Card plate; 3. Second pulley; 301. Rotating rod; 302. Stirring blade. DETAILED DESCRIPTION
[0019] The present invention is further described below with reference to the accompanying drawings and embodiments:
[0020] Example 1: A vacuum spraying device for processing marine fish feed, see Figures 1 to 3, including a device barrel 2, an opening is provided on one side of the device barrel 2, and a cover plate 204 is installed on the side of the opening, a double-axis motor 208 is installed on one side of the cover plate 204, a first motor shaft 212 is connected to one side of the double-axis motor 208, a clamping plate 213 is fixed on the upper and lower ends of the first motor shaft 212, one side of the first motor shaft 212 passes through the cover plate 204 and extends into the device barrel 2, one end of the first motor shaft 212 located in the device barrel 2 is clamped with a clamping groove on the side of the vacuum tube body 209, and the upper and lower ends of the vacuum tube body 209 are connected with multiple connecting pipes 210, multiple connecting pipes The other end of the pipe 210 is connected to the net cylinder 211; the end of the vacuum tube body 209 away from the first motor shaft 212 passes through the device cylinder 2 and is connected to the rotating conveying mechanism. The material is first input into the device cylinder 2. After the material is put in, the cover plate 204 is installed at the opening position on the side of the device cylinder 2, and the first motor shaft 212 of the dual-axis motor 208 is inserted into the card slot on the side of the vacuum tube body 209 using the card plate 213. After the card is inserted, the dual-axis motor 208 is turned on, and the dual-axis motor 208 drives the first motor shaft 212, and the first motor shaft 212 drives The card plate 213 is moved, and the card plate 213 drives the vacuum tube body 209 to rotate. The vacuum tube body 209 rotates through the rotary joint 201. During the rotation of the vacuum tube body 209, it drives the connecting pipe 210 and the net cylinder 211 to rotate, stirring the material in the device cylinder 2. During the stirring process, the vacuum pump 203 is turned on. The vacuum pump 203 draws the oil in the bottom box 1 of the device into the L-shaped pipe 202 and the vacuum tube body 209. Through the multiple connecting pipes 210 on the surface of the vacuum tube body 209, the grease is directly discharged into the material during the mixing process. The different positions of the grease and the material improve the uniformity of the mixing. At the same time, there is no need to stir and mix the material and grease for a long time. Moreover, since the connecting pipe 210 is connected to the net cylinder 211, the net cylinder 211 can be used to filter the discharged grease, which solves the technical problem of the traditional vacuum spraying device for marine fish feed processing, which only inputs the grease into the mixing box from the top, resulting in the need to stir the grease in the mixing box for a period of time before the grease and the material in the mixing box are fully in contact, requiring a lot of mixing time and reducing the processing efficiency.
[0021] For details, see Figure 1 The rotary conveying mechanism includes a rotary joint 201 rotatably connected to the vacuum tube body 209 , an L-shaped pipe 202 fixedly connected to the other side of the rotary joint 201 , and a vacuum pump 203 connected to the other end of the L-shaped pipe 202 .
[0022] For further information, see Figure 1 One side of the vacuum pump 203 is connected to the device bottom box 1, and the device cylinder 2 is installed on the top of the device bottom box 1.
[0023] It is worth noting that, see Figure 1 and Figure 3The other side of the dual-axis motor 208 is connected to the second motor shaft 206, and the first pulley 205 is fixed to one side of the second motor shaft 206. The external transmission of the first pulley 205 is connected to one end of the transmission belt 207, and the other end of the transmission belt 207 is connected to the second pulley 3. During the operation of the dual-axis motor 208, it will also drive the second motor shaft 206, and the second motor shaft 206 drives the first pulley 205 to rotate, and the first pulley 205 drives the transmission belt 207, and the transmission belt 207 drives the second pulley 3 to rotate. The second pulley 3 is used to drive the rotating rod 301 to rotate, and the rotating rod 301 drives multiple stirring blades 302 to stir the grease in the bottom box 1 of the device, so that the oil in the bottom box 1 of the device is homogenized, and at the same time, it can prevent the oil from crystallizing and solidifying when the temperature is low.
[0024] It is worth noting that see Figure 3 A rotating rod 301 is fixed to one side of the second pulley 3, and one end of the rotating rod 301 away from the second pulley 3 extends into the bottom box 1 of the device. A plurality of stirring blades 302 are installed on one end of the rotating rod 301 located in the bottom box 1 of the device.
[0025] It is worth mentioning that see Figure 1 A control host 103 is installed in the middle of the front end of the device bottom box 1. The upper and lower ends of the front surface of the device bottom box 1 are connected to one end of the liquid pipe 101, and the other end of the liquid pipe 101 is detachably connected to the pipe cover 102.
[0026] When using a vacuum spraying device for processing marine fish feed, the material is first input into the device barrel 2. After the material is put in, the cover plate 204 is installed at the opening position on the side of the device barrel 2. The first motor shaft 212 of the dual-axis motor 208 is clamped into the clamping groove on the side of the vacuum tube body 209 by using the clamping plate 213. After the clamping is completed, the dual-axis motor 208 is turned on. The dual-axis motor 208 drives the first motor shaft 212, and the first motor shaft 212 drives the clamping plate 213. The clamping plate 213 drives the vacuum tube body 209 to rotate. The vacuum tube body 209 rotates through the rotary joint 201. During the rotation of the vacuum tube body 209, it drives the connecting pipe 210 and the net cylinder 211 to rotate, stirring the material in the device barrel 2. During the stirring process, the vacuum pump 203 is turned on. The vacuum pump 203 draws the oil in the device bottom box 1 into the L-shaped pipe 202 and the vacuum tube body 209. The multiple connecting tubes 210 on the surface of the vacuum tube body 209 can directly discharge the grease to different positions in the material during the mixing process, thereby improving the uniformity of the mixing of the grease and the material. At the same time, there is no need to stir and mix the material and the grease for a long time. Not only that, since the connecting tube 210 is connected to the mesh cylinder 211, the mesh cylinder 211 can be used to filter the discharged grease. During the operation of the dual-axis motor 208, the second motor shaft 206 is also driven. The second motor shaft 206 drives the first pulley 205 to rotate. The first pulley 205 drives the transmission belt 207. The transmission belt 207 drives the second pulley 3 to rotate. The second pulley 3 drives the rotating rod 301 to rotate. The rotating rod 301 drives multiple stirring blades 302 to stir the grease in the bottom box 1 of the device, so that the oil in the bottom box 1 of the device is homogenized. At the same time, it can prevent the oil from crystallizing and solidifying when the temperature is low.
[0027] In addition, the components designed in this utility model are all universal standard parts or components known to technical personnel in this field. Their structures and principles can be known to technical personnel through technical manuals or through conventional experimental methods. They can be fully implemented by technical personnel in this field. Needless to say, the content protected by this utility model does not involve improvements to internal structures and methods.
[0028] The embodiments disclosed in the present invention are preferred embodiments, but are not limited to them. Ordinary technicians in this field can easily understand the spirit of the present invention based on the above embodiments and make different extensions and changes. As long as they do not deviate from the spirit of the present invention, they are all within the scope of protection of the present invention.
Claims
1. A vacuum spraying device for processing marine fish feed, comprising a device barrel (2), characterized in that: One side of the device cylinder (2) is provided with an opening, and a cover plate (204) is installed on the side of the opening; a double-shaft motor (208) is installed on one side of the cover plate (204); one side of the double-shaft motor (208) is connected to a first motor shaft (212); a clamping plate (213) is fixed at both upper and lower ends of the first motor shaft (212); one side of the first motor shaft (212) passes through the cover plate (204) and extends into the device cylinder (2); one end of the first motor shaft (212) located in the device cylinder (2) is clamped with a clamping groove on the side of the vacuum tube body (209); the upper and lower ends of the vacuum tube body (209) are connected to a plurality of connecting pipes (210); the other ends of the plurality of connecting pipes (210) are connected to a net cylinder (211); One end of the vacuum tube body (209) away from the first motor shaft (212) passes through the device barrel (2) and is connected to the rotating conveying mechanism.
2. A vacuum spraying device for processing marine fish feed according to claim 1, characterized in that: The rotary conveying mechanism comprises a rotary joint (201) rotatably connected to a vacuum tube body (209), an L-shaped pipe (202) fixedly connected to the other side of the rotary joint (201), and a vacuum pump (203) connected to the other end of the L-shaped pipe (202).
3. The vacuum spraying device for processing marine fish feed according to claim 2, characterized in that: One side of the vacuum pump (203) is connected to a device bottom box (1), and a device cylinder (2) is installed on the top of the device bottom box (1).
4. The vacuum spraying device for processing marine fish feed according to claim 1, wherein: The other side of the dual-axis motor (208) is connected to a second motor shaft (206), one side of the second motor shaft (206) is fixed with a first pulley (205), the first pulley (205) is externally connected to one end of a transmission belt (207), and the other end of the transmission belt (207) is transmission-connected to a second pulley (3).
5. A vacuum spraying device for processing marine fish feed according to claim 4, characterized in that: A rotating rod (301) is fixed to one side of the second pulley (3), and one end of the rotating rod (301) away from the second pulley (3) extends into the bottom box (1) of the device, and a plurality of stirring blades (302) are installed on one end of the rotating rod (301) located in the bottom box (1) of the device.
6. A vacuum spraying device for processing marine fish feed according to claim 3, characterized in that: A control host (103) is installed in the middle of the front end of the device bottom box (1), and one end of a liquid pipe (101) is connected to both upper and lower ends of the front surface of the device bottom box (1), and the other end of the liquid pipe (101) is detachably connected to a pipe cover (102).
Citation Information
Patent Citations
Vacuum spraying device for marine fish feed processing
CN216572903U