Efficient spirulina processing device and processing method thereof
By designing a spirulina processing device that integrates cleaning, drying, and automatic discharge, the problems of cumbersome and wasteful processing in spirulina have been solved, achieving efficient and convenient spirulina processing and improving the working environment and water resource utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- DONGTAI CITY SPIRULINA BIO ENG CO LTD
- Filing Date
- 2023-12-27
- Publication Date
- 2026-05-05
AI Technical Summary
The current spirulina processing involves cumbersome cleaning and drying operations, spirulina easily adheres to the mesh cover, leading to splashing and waste, and the working environment is poor. There is a need to improve convenience and efficiency.
Design a spirulina processing device that integrates cleaning, drying, and automatic discharge. It adopts a ring-shaped mesh sleeve, a pre-embedded discharge mechanism, and a stirring support. Automatic discharge is achieved through stirring and cleaning, hot air drying, and pre-embedded cover adsorption.
It achieves high efficiency and convenience in spirulina processing, reduces labor consumption, improves the working environment, and increases the recycling rate of cleaning water.
Smart Images

Figure CN117505381B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a high-efficiency spirulina processing device and its processing method. Background Technology
[0002] Spirulina is a type of lower organism, a prokaryotic organism; it consists of filamentous structures composed of single or multicellular cells, exhibiting a loose, tight, and regularly spiraling shape. It has effects such as reducing the toxic side effects of cancer radiotherapy and chemotherapy, improving immune function, and lowering blood lipids. Current spirulina processing often involves washing the spirulina with water. Typically, the spirulina is placed in a dense mesh, which is then sent into a washing tank for cleaning. After washing, the mesh is removed, and the spirulina inside is dried in a dryer before being stored for further processing. However, this process is cumbersome and inconvenient. When removing the mesh to empty the spirulina after washing, the high humidity causes a large amount of spirulina to adhere to the mesh, requiring forceful tapping, which results in splashing and waste. The processing is inconvenient, time-consuming, and labor-intensive. Furthermore, the mesh carries a large amount of water when removed from the washing tank, resulting in water spillage on the work area and a poor working environment. Therefore, there is a need to improve the convenience and efficiency of the process. Summary of the Invention
[0003] To address the shortcomings of the existing technology, the present invention provides a highly efficient and convenient spirulina processing device and processing method.
[0004] To solve the above problems, the technical solution adopted by the present invention is as follows:
[0005] A high-efficiency spirulina processing device includes a cleaning box, a filter box, a support plate, a stirring bracket, a drying pipe, an annular mesh sleeve, a pre-embedded discharge mechanism, and an opening and closing cover. A support plate is installed at each of the lower ends of the cleaning box, and the lower sides of the support plates are connected to the upper sides of the filter box. One side of the cleaning box is connected to another side via a drain pipe, and the other side is connected to the other side via a water inlet pipe. An annular mesh sleeve is installed in the middle of the interior of the cleaning box, and a closed ring is formed around the upper edge of the mesh sleeve. The annular mesh sleeve divides the interior of the cleaning box into an internal feeding chamber and a surrounding stirring chamber. Multiple stirring brackets are evenly installed around the stirring chamber. A drying pipe is installed on each side of the feeding chamber. The upper end of the drying pipe extends upward and passes through the closed ring to the outside of the upper edge of the cleaning box. An opening and closing cover is movably installed in the middle of the closed ring. The pre-embedded discharge mechanism includes... The system includes a pre-embedded cover, a drive cylinder, a connecting pipe, a telescopic pipe, a discharge pipe, and a suction pump. A pre-embedded groove is located in the middle of the lower end of the cleaning tank, and a pre-embedded cover is installed against the inner perimeter of the groove. The pre-embedded cover has a closed upper end, evenly spaced suction holes around its perimeter, and a suction chamber inside. A connecting pipe is installed in the middle of the lower end of the suction chamber of the pre-embedded cover, and a telescopic pipe is connected to the lower end of the connecting pipe. The discharge pipe is fixedly inserted through the middle of the cleaning tank, extending its upper end to the outer side of the upper surface of the cleaning tank and to the lower side of the cleaning tank. The lower end of the telescopic pipe is connected to the upper end of the discharge pipe, and a suction pump is installed on the discharge pipe. A drive cylinder is installed on one side of the upper end of the cleaning tank, and its upper end is connected to the lower side of the pre-embedded cover for up-and-down driving. An upper sealing ring is located around the upper perimeter of the pre-embedded cover, and the lower perimeter of the upper sealing ring seals and presses against the upper perimeter of the pre-embedded groove. Exhaust pipes are located on both sides of the sealed ring.
[0006] Furthermore, a guide rod is provided on the other side of the lower end of the pre-embedded cover; a guide cylinder is provided on the upper end of the filter box; the lower end of the guide rod is slidably inserted into the guide cylinder; and the upper end of the pre-embedded cover has an upwardly convex arc structure.
[0007] Furthermore, the lower end face of the feed chamber is a conical annular surface that is larger at the top and smaller at the bottom.
[0008] Furthermore, heaters are provided on both sides of the upper end of the closed ring; the drying tube is connected to the heaters.
[0009] Furthermore, multiple agitator motors are evenly installed around the lower end of the cleaning tank. A rotating shaft is provided on the upper side of the agitator motor. The rotating shaft extends into the agitation chamber and connects to the agitation support. Multiple support rods are evenly provided on both sides of the agitation support.
[0010] Furthermore, the inner sides of the feeding chamber are respectively provided with sleeved mesh tubes, and the drying tubes are respectively inserted into the sleeved mesh tubes.
[0011] Furthermore, the filter box is provided with lifting support feet on both sides of its lower end.
[0012] A processing method for a high-efficiency spirulina processing device includes the following steps: Spirulina is fed into the infeed chamber inside the annular mesh sleeve, and then the opening and closing cover is installed. Cleaning water is introduced through the water inlet pipe, and the water flow in the infeed chamber is agitated by multiple stirring supports to improve the cleaning effect. After cleaning, the cleaning water is discharged through the drain pipe, and the spirulina is blocked inside the annular mesh sleeve. Then, hot air is introduced through the drying pipe to dry the spirulina, thus drying the spirulina quickly and improving its fluidity. After drying, the pre-embedded cover is driven by the drive cylinder to rise from the pre-embedded groove, so that the suction hole moves to the lower part of the infeed chamber. Then, the suction pump is driven to suck the spirulina through the suction hole of the pre-embedded cover and discharge it from the connecting pipe head, telescopic pipe, and discharge pipe. This achieves integrated cleaning, drying, and discharge.
[0013] The beneficial effects of this invention are as follows:
[0014] The spirulina processing of this invention integrates cleaning, drying, and automatic discharge, greatly improving the convenience and efficiency of the operation. It eliminates the time-consuming and labor-intensive operation methods of traditional workers. The cleaning water of this invention is recycled through a drain pipe, a filter box, and a water inlet pipe. This invention uses a pre-embedded cover to adsorb and discharge spirulina, thus avoiding contact between the inside of the pre-embedded cover and the cleaning water, achieving convenient automatic discharge. The structure is ingeniously designed and the operation is convenient. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of the present invention.
[0016] Figure 2 This is a schematic diagram of the upper part of the present invention.
[0017] Figure 3 This is a schematic diagram of the pre-embedded material discharge mechanism of the present invention.
[0018] Figure 4 For the present invention Figure 3 A schematic diagram of the structure in which the pre-embedded cover rises to absorb and discharge materials.
[0019] Figure 5 For the present invention Figure 4 A partially enlarged structural diagram. Implementation
[0020] The invention will now be described in further detail with reference to the accompanying drawings.
[0021] like Figures 1 to 5As shown, a high-efficiency spirulina processing device includes a cleaning tank 1, a filter tank 2, a support plate 3, a stirring bracket 4, a drying pipe 5, an annular mesh sleeve 6, a pre-embedded discharge mechanism 7, and an opening and closing cover 8. A support plate 3 is installed at each of the lower ends of the cleaning tank 1, and the lower sides of the support plates 3 are connected to the upper sides of the filter tank 2. One side of the cleaning tank 1 is connected to another side via a drain pipe 11, and the other side of the cleaning tank 1 is connected to the other side via a water inlet pipe 12. An annular mesh sleeve 6 is installed in the middle of the interior of the cleaning tank 1. The annular mesh sleeve 6 has a closed ring 61 around its upper perimeter; the annular mesh sleeve 6 divides the interior of the cleaning tank 1 into an internal feeding chamber 62 and a surrounding agitation chamber 63; multiple agitation supports 4 are evenly installed around the agitation chamber 63; a drying pipe 5 is installed on each side of the feeding chamber 62; the upper end of the drying pipe 5 extends upward and passes through the closed ring 61 to the outside of the upper end of the cleaning tank 1; an opening and closing cover 64 is movably installed in the middle of the closed ring 61; the pre-embedded discharge mechanism 7 includes a pre-embedded cover 71 and a drive cylinder 72. The cleaning tank 1 includes a connecting pipe 73, a telescopic pipe 74, a discharge pipe 75, and a suction pump 76. A pre-embedded groove 13 is located in the middle of the lower end of the cleaning tank 1, and a pre-embedded cover 71 is installed around the inner perimeter of the pre-embedded groove 13. The pre-embedded cover 71 has a closed upper end, evenly spaced suction holes 711 around its perimeter, and a suction chamber 712 inside. A connecting pipe 73 is installed in the middle of the lower end of the suction chamber 712 of the pre-embedded cover 71. The lower end of the connecting pipe 73 is connected to the telescopic pipe 73. The discharge pipe 75 is fixedly inserted through the middle of the cleaning tank 1, and its upper end extends to the cleaning chamber. On the outer side of the upper end of the washing tank 1, the upper end of the discharge pipe 75 extends to the lower side of the washing tank 1, and the lower end of the telescopic pipe 74 is connected to the upper end of the discharge pipe 75. A suction pump 76 is installed on the discharge pipe 75. A drive cylinder 72 is installed on the upper side of the washing tank 1. The upper end of the drive cylinder 72 is connected to the lower side of the pre-embedded cover 71 for up-and-down driving. The upper end of the pre-embedded cover 71 is provided with an upper sealing ring edge 713 around its upper end. The lower end of the upper sealing ring edge 713 is sealed and pressed against the upper end of the pre-embedded groove around its lower end. An exhaust pipe 611 is provided on both sides of the closed ring body 61.
[0022] like Figures 1 to 5 As shown, in order to ensure stable up-and-down movement of the pre-embedded cover 71, a further preferred embodiment is provided with a guide rod 714 on the other side of the lower end of the pre-embedded cover 71; a guide cylinder 14 is provided at the upper end of the filter box 2; the lower end of the guide rod 714 is slidably inserted into the guide cylinder 14; and the upper end of the pre-embedded cover 71 has an upwardly convex arc structure.
[0023] like Figures 1 to 5 As shown, to facilitate material discharge, the lower end face of the feeding chamber 62 is further shaped into a conical annular surface that is larger at the top and smaller at the bottom. To facilitate heating of the intake airflow, heaters 91 are respectively provided on both sides of the upper end of the closed annular body 61; the drying pipe 5 is connected to the heaters 91.
[0024] like Figures 1 to 5 As shown, to improve the cleaning effect, multiple agitator motors 92 are evenly installed around the lower end of the cleaning box 1. A rotating shaft 93 is provided on the upper side of each agitator motor 92, extending into the agitation chamber 63 and connecting to the agitation support 4. Multiple support rods 41 are evenly provided on both sides of the agitation support 4. To prevent spirulina from entering the drying tube 5, sleeved mesh tubes 621 are provided on both sides of the inside of the feeding chamber 62, and the drying tubes 5 are respectively inserted into the sleeved mesh tubes 621. Furthermore, raised support feet 21 are provided on both sides of the lower end of the filter box 2.
[0025] like Figures 1 to 5 As shown, a processing method for a high-efficiency spirulina processing device includes the following steps: Spirulina is fed into the feeding chamber 62 inside the annular mesh sleeve 6, and then the opening and closing cover 8 is installed. Cleaning water is fed in through the water inlet pipe 12. At the same time, the water flow in the feeding chamber 62 is agitated by multiple stirring brackets 4 to improve the cleaning effect. After cleaning, the cleaning water is discharged through the drain pipe 11. The spirulina is blocked inside the annular mesh sleeve 6. Then, hot air is sent in through the drying pipe 5 to dry the spirulina. This allows the spirulina to dry quickly and improves its fluidity. After drying, the pre-embedded cover 71 is driven to rise from the pre-embedded groove 13 by the driving cylinder 72, so that the suction hole 711 moves to the lower part of the feeding chamber 62. Then, the suction pump 76 is driven to suck the spirulina through the suction hole 711 of the pre-embedded cover 71 and discharge it from the connecting pipe head 73, the telescopic pipe 74, and the discharge pipe 75. This achieves integrated cleaning, drying, and discharge.
[0026] The spirulina processing of this invention integrates cleaning, drying, and automatic discharge, greatly improving the convenience and efficiency of the operation. It eliminates the time-consuming and labor-intensive operation methods of traditional workers. The cleaning water of this invention is recycled through the drain pipe 11, filter box 2, and water inlet pipe 12. The invention uses a pre-embedded cover 71 to adsorb and discharge spirulina, thus avoiding contact between the inside of the pre-embedded cover 71 and the cleaning water, achieving convenient automatic discharge. The structure is ingeniously designed and the operation is convenient.
[0027] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A high-efficiency spirulina processing device, characterized in that, The system includes a cleaning tank, a filter tank, support plates, agitator brackets, drying pipes, an annular mesh sleeve, a pre-embedded discharge mechanism, and an opening / closing cover. Support plates are installed at both ends of the lower side of the cleaning tank, with the lower sides of the support plates connected to the upper sides of the filter tank. One side of the cleaning tank is connected to another side via a drain pipe, and the other side is connected to the other side via a water inlet pipe. An annular mesh sleeve is installed in the center of the cleaning tank's interior, with a closed ring around its upper edge. The annular mesh sleeve divides the interior of the cleaning tank into an internal feeding chamber and surrounding agitator chambers. Multiple agitator brackets are evenly installed around the agitator chambers. A drying pipe is installed on each side of the feeding chamber. The upper end of the drying pipe extends upwards and passes through the closed ring to the outside of the upper part of the cleaning tank. An opening / closing cover is movably installed in the center of the closed ring. The pre-embedded discharge mechanism includes a pre-embedded cover, a drive cylinder, a connecting pipe head, a telescopic pipe, a discharge pipe, and a suction pump. A pre-embedded cover is located in the center of the lower part of the cleaning tank. A pre-embedded cover is installed on the inner side of the pre-embedded tank. The pre-embedded cover has a closed top, evenly spaced suction holes around its perimeter, and a suction chamber inside. A connecting pipe head is installed in the middle of the lower end of the suction chamber of the pre-embedded cover. The lower end of the connecting pipe head is connected to a telescopic pipe. A discharge pipe is fixedly inserted through the middle of the cleaning tank. The upper end of the discharge pipe extends to the outer side of the upper surface of the cleaning tank and to the lower side of the cleaning tank. The lower end of the telescopic pipe is connected to the upper end of the discharge pipe. A suction pump is installed on the discharge pipe. A drive cylinder is installed on one side of the upper end of the cleaning tank, and the upper end of the drive cylinder is connected to the lower side of the pre-embedded cover for up-and-down driving. The upper end of the pre-embedded cover is provided with an upper sealing ring around its perimeter, and the lower end of the upper sealing ring is sealed and pressed against the upper perimeter of the pre-embedded groove. Exhaust pipes are provided on both sides of the closed ring. A guide rod is provided on the other side of the lower end of the pre-embedded cover. A guide cylinder is provided at the upper end of the filter box. The lower end of the guide rod is slidably inserted into the guide cylinder. The upper end of the pre-embedded cover has an upwardly convex arc surface structure.
2. The high-efficiency spirulina processing device according to claim 1, characterized in that, The lower end face of the feed chamber is a conical annular surface that is larger at the top and smaller at the bottom.
3. The high-efficiency spirulina processing device according to claim 1, characterized in that, Heaters are provided on both sides of the upper end of the closed ring; the drying tube is connected to the heaters.
4. The high-efficiency spirulina processing device according to claim 1, characterized in that, Multiple agitator motors are evenly installed around the lower end of the cleaning tank. A rotating shaft is provided on the upper side of the agitator motor. The rotating shaft extends into the agitation chamber and connects to the agitation support. Multiple support rods are evenly provided on both sides of the agitation support.
5. The high-efficiency spirulina processing device according to claim 1, characterized in that, The feed chamber is provided with sleeved mesh tubes on both sides, and the drying tubes are respectively inserted into the sleeved mesh tubes.
6. The high-efficiency spirulina processing apparatus according to claim 1, characterized in that, The filter box is provided with lifting support feet on both sides of its lower end.
7. A processing method for the high-efficiency spirulina processing device according to claim 1, characterized in that, The steps are as follows: Spirulina is fed into the feeding chamber inside the annular mesh sleeve, and then the opening and closing cover is installed. Cleaning water is introduced through the water inlet pipe. At the same time, the water flow in the feeding chamber is agitated by multiple stirring brackets to improve the cleaning effect. After cleaning, the cleaning water is discharged through the drain pipe. The spirulina is blocked inside the annular mesh sleeve. Then, hot air is introduced through the drying pipe to dry the spirulina. This allows the spirulina to dry quickly and improves its fluidity. After drying, the pre-embedded cover is driven by the drive cylinder to rise from the pre-embedded groove, so that the suction hole moves to the lower part of the feeding chamber. Then, the suction pump is driven to suck the spirulina through the suction hole of the pre-embedded cover and discharge it from the connecting pipe head, telescopic pipe, and discharge pipe. This realizes the integrated cleaning, drying, and discharge.
Citation Information
Patent Citations
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