Solid-liquid separation device for tremella polysaccharide extraction

By introducing a real-time monitoring system into the tremella polysaccharide extraction device, the problem of the existing device being unable to monitor the sugar content in real time has been solved, enabling real-time analysis and data transmission of sugar quality, and improving the data recording and equipment optimization capabilities of the production process.

CN223930741UActive Publication Date: 2026-02-24YANNI (SHENZHEN) BIOLOGICAL CO LTD
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Patent Information

Application Number
CN202520554411.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-02-24
Estimated Expiration
2035-03-25

AI Technical Summary

Technical Problem

The existing tremella polysaccharide extraction equipment cannot monitor and record the sugar content in real time, which makes it impossible for staff to accurately judge equipment changes and record data.

Method used

A solid-liquid separation device with a real-time monitoring system was designed, including a sensor, an actuator, a display screen, and a networking module. The sensor monitors hydraulic changes, the real-time analysis unit and the display screen show the data, and the data is transmitted to a cloud platform to achieve real-time monitoring and data recording of sugar solution quality.

Benefits of technology

It enables real-time monitoring and data recording of the tremella polysaccharide extraction process, helping staff to quickly identify equipment changes and optimize the production process, thus improving the real-time performance and accuracy of the data.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a solid-liquid separation device for tremella polysaccharide extraction. The solid-liquid separation device comprises an extraction box, a mounting cover, a feeding pipe, a lifting push cylinder, a mounting frame, a filter barrel, a real-time device and a storage box, according to the utility model, the real-time device is arranged, the control switch is manually clicked, so that the control switch can trigger the execution assembly, and the execution assembly is started to control the sensor to monitor and analyze the sugar liquid, so that a worker can quickly analyze and judge the change of the equipment after the sugar liquid flows in the equipment; further, the effect of monitoring the sugar liquid flowing out of the extraction box in real time through the real-time device is achieved, and the change condition in the equipment is transmitted to the upper part of the cloud platform, so that subsequent equipment data comparison is facilitated, an equipment optimization scheme is made, and the problems that effective real-time data cannot be intercepted in traditional equipment, and the equipment is inconvenient to use are solved. Therefore, the problem that the staff cannot record the data of equipment change and the real-time data of the sugar liquid content is solved.
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Description

Technical Field

[0001] This utility model relates to the field of extracting polysaccharides from Tremella fuciformis, and in particular to a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis. Background Technology

[0002] Tremellam is an acidic heteropolysaccharide obtained from the fruiting body of Tremella fuciformis Berk. Its main chain structure consists of mannan linked by α-(1→3) glycosidic bonds, and its side chains are composed of glucuronic acid and xylose. Acidic heteropolysaccharides present in the deep fermentation sporophytes of Tremella have a similar main chain structure, differing only in their side chains.

[0003] Chinese patent CN220513464U discloses a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis. Before or after extraction, when an electric telescopic rod drives a stirring rod away from the extraction hopper, it also drives a cover fixed to a long top rod via a top block to rise and fall and open, allowing for subsequent operations.

[0004] Taking the above-mentioned utility model as an example, there are still shortcomings in its use: In the process of equipment output or storage of Tremella polysaccharide liquid, in most cases, the staff will judge the content of Tremella polysaccharide liquid output by conventional experience. This method cannot capture effective real-time data, which makes it impossible for the staff to record the data of equipment changes and the real-time data of sugar content. Therefore, it is necessary to improve on the original basis. Utility Model Content

[0005] Therefore, in order to overcome the above-mentioned shortcomings, this utility model provides a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis.

[0006] To achieve the above objectives, this utility model adopts the following technical solution: a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis, comprising an extraction box, a mounting cover, a feed pipe, a lifting cylinder, a mounting frame, a filter barrel, a real-time device, and a storage box. The top of the extraction box is fitted with a mounting cover. The feed pipe is located at the left end of the extraction box. The lifting cylinder is fixed to the interior of the extraction box and is drivenly connected to the bottom of the mounting frame. The mounting frame is slidably connected to the interior of the extraction box. A filter barrel is installed at the bottom of the mounting frame. The real-time device is fixed to the right end of the extraction box. The storage box is installed at the left end of the real-time device. The real-time device includes a cover, a liquid inlet pipe, a liquid outlet pipe, a display screen, a control switch, an execution component, a sensor, and a buffer ring. The liquid inlet pipe is installed at the left end of the cover and is connected to the right end of the extraction box. The liquid outlet pipe is located at the right end of the cover. The display screen is installed at the front end of the execution component. The control switch is installed at the front end of the execution component. The sensor is connected to the bottom of the execution component. The buffer ring is installed inside the cover.

[0007] Preferably, the execution component includes a device body, an information transmitter, a power supply box, a storage chip, a real-time analysis unit, a network module, and a cooling fan. The information transmitter is installed inside the device body and is connected to the top of the sensor. The power supply box is installed at the rear end of the information transmitter. The storage chip is fixed to the rear end of the information transmitter. The real-time analysis unit is mounted on the right end of the storage chip. The network module is installed at the right end inside the device body. The cooling fan is fixed to the rear end inside the device body.

[0008] In a further preferred embodiment, the inlet pipe and the outlet pipe are symmetrically arranged on the cover.

[0009] In a further preferred embodiment, the actuator and the sensor are vertically mounted on the top of the housing, and the actuator is able to monitor changes in hydraulic pressure through the sensor.

[0010] In a further preferred embodiment, the buffer ring is arranged parallel to the inside of the cover to prevent water pressure from impacting the inside of the cover and causing excessive wear.

[0011] In a further preferred embodiment, the power supply box, the storage chip, and the real-time analysis unit are all mounted horizontally at the back end of the information transmitter.

[0012] In a further preferred embodiment, the size of the buffer ring is consistent with the internal size of the inlet and outlet pipes, which helps the buffer ring to buffer the inlet and outlet pipes from water pressure and avoid excessive wear on the inlet and outlet pipes.

[0013] In a further preferred embodiment, the storage chip may be an SD-type data storage chip, the real-time analysis unit may use a ZOP-compliant analysis device, and the networking module may utilize a common Internet gateway device.

[0014] The beneficial effects of this utility model are:

[0015] This invention incorporates a real-time device. A manually clicked control switch triggers an execution component, which in turn activates sensors to monitor and analyze the sugar solution. This allows staff to quickly analyze and assess changes in the equipment as the sugar solution flows through. Simultaneously, the display screen shows the sugar solution quality, facilitating quality assessment by production personnel. The device enables real-time monitoring of the sugar solution flowing from the extraction tank and transmits internal changes to a cloud platform. This facilitates subsequent data comparison and optimization, resolving the problem of traditional equipment's inability to capture effective real-time data, preventing staff from recording changes and real-time sugar solution content.

[0016] This invention incorporates an execution component, allowing staff to connect to an internet platform via a network module. This enables the storage and transmission of data from the memory chip, facilitating real-time analysis and data retrieval via internet control of the real-time analysis unit. Furthermore, by activating the execution component, the sensor monitors and analyzes the sugar solution, allowing staff to quickly assess the changes in the equipment after the sugar solution has flowed through it. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0018] Figure 2 This is a schematic diagram of the planar structure of this utility model;

[0019] Figure 3 This is a three-dimensional structural diagram of the real-time device of this utility model;

[0020] Figure 4 This is a schematic diagram of the internal structure of the real-time device of this utility model;

[0021] Figure 5 This is a schematic diagram of the structure of the execution component of this utility model.

[0022] The components include: extraction box-1, mounting cover-2, feed pipe-3, lifting push cylinder-4, mounting frame-5, filter barrel-6, real-time device-7, storage box-8, cover-71, liquid inlet pipe-72, liquid outlet pipe-73, display screen-74, control switch-75, execution component-76, sensor-77, buffer ring-78, device body-761, information transmitter-762, power supply box-763, storage chip-764, real-time analysis unit-765, networking module-766, and cooling fan-767. Detailed Implementation

[0023] To further explain the technical solution of this utility model, a detailed description is provided below through specific embodiments.

[0024] Please see Figure 1 and Figure 2 This utility model provides a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis, including an extraction box 1, a mounting cover 2, a feed pipe 3, a lifting cylinder 4, a mounting frame 5, a filter barrel 6, a real-time device 7, and a storage box 8. The top of the extraction box 1 is equipped with the mounting cover 2, the feed pipe 3 is located at the left end of the extraction box 1, the lifting cylinder 4 is fixed to the inside of the extraction box 1, the lifting cylinder 4 is connected to the bottom of the mounting frame 5 by transmission, the mounting frame 5 is slidably connected to the inside of the extraction box 1, the filter barrel 6 is installed at the bottom of the mounting frame 5, the real-time device 7 is fixed to the right end of the extraction box 1, and the storage box 8 is installed at the left end of the real-time device 7.

[0025] Please see Figure 3 and Figure 4 This utility model provides a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis. The real-time device 7 includes a cover 71, an inlet pipe 72, an outlet pipe 73, a display screen 74, a control switch 75, an execution component 76, a sensor 77, and a buffer ring 78. The inlet pipe 72 is installed at the left end of the cover 71 and is connected to the right end of the extraction box 1. The outlet pipe 73 is located at the right end of the cover 71. The display screen 74 is installed at the front end of the execution component 76, and the control switch 75 is installed at the front end of the execution component 76. The sensor 77 is connected to the bottom of the execution component 76, and the buffer ring 78 is installed inside the cover 71.

[0026] In this embodiment, the inlet pipe 72 and the outlet pipe 73 are symmetrically arranged on the cover 71. The actuator 76 and the sensor 77 are vertically arranged on the top of the cover 71 to ensure that the actuator 76 can monitor the changes in hydraulic pressure through the sensor 77. The buffer ring 78 is arranged parallel to the inside of the cover 71 to avoid water pressure impact on the inside of the cover 71 and causing excessive wear. The size of the buffer ring 78 is the same as the size of the inside of the inlet pipe 72 and the outlet pipe 73.

[0027] Please see Figure 5This utility model provides a solid-liquid separation device for extracting polysaccharides from Tremella fuciformis. The execution component 76 includes a body 761, an information transmitter 762, a power supply box 763, a storage chip 764, a real-time analysis unit 765, a network module 766, and a cooling fan 767. The information transmitter 762 is installed inside the body 761 and is connected to the top of the sensor 77. The power supply box 763 is installed at the rear end of the information transmitter 762. The storage chip 764 is fixed to the rear end of the information transmitter 762. The real-time analysis unit 765 is mounted on the right end of the storage chip 764. The network module 766 is installed at the right end of the inside of the body 761. The cooling fan 767 is fixed to the rear end of the inside of the body 761. The power supply box 763, the storage chip 764, and the real-time analysis unit 765 are all installed at the same horizontal level at the rear end of the information transmitter 762.

[0028] See Figures 1-5 When in use, place extraction box 1 horizontally on the ground to support the equipment;

[0029] After placing the tremella polysaccharide blocks inside the filter bucket 6, the lifting push cylinder 4 is activated to push the mounting frame 5 downward along the inside of the extraction box 1, ensuring that the filter bucket 6 can move downward, so that the tremella polysaccharide blocks inside the filter bucket 6 can mix with the reaction liquid inside the extraction box 1, which plays a good role in refining and dissolving the tremella polysaccharide blocks, and fully separating the solid and liquid structures in the sugar blocks.

[0030] When the sugar solution after the tremella polysaccharide block is dissolved can flow into the interior of the cover 71 through the liquid inlet pipe 72, the control switch 75 can be manually clicked to trigger the information transmitter 762 to control the sensor 77 to monitor and scan the hydraulic pressure of the sugar solution. During this period, the storage chip 764 can record and store the data detected by the sensor 77.

[0031] When needed, staff can connect to the internet platform via the networking module 766 to store and transmit data from the storage chip 764. This allows staff to control the real-time analysis unit 765 to analyze and review the data via the internet. Furthermore, by activating the execution component 76, the sensor 77 monitors and analyzes the sugar solution, enabling staff to quickly analyze and determine changes in the equipment after the sugar solution has flowed through it.

[0032] During this process, the display screen 74 can show the quality of the sugar solution, making it easier for production personnel to judge the quality of the sugar solution. In turn, the real-time device 7 can monitor the sugar solution flowing out of the extraction box 1 in real time and transmit the changes inside the equipment to the cloud platform. This facilitates subsequent comparison of equipment data and the development of equipment optimization plans. This solves the problem that traditional equipment cannot capture effective real-time data, which makes it impossible for staff to record data on equipment changes and real-time data on sugar solution content.

[0033] The control method of this utility model is to control the device by manually starting and stopping the switch. The wiring diagram of the power element and the supply of power are common knowledge in the field. Since this utility model is mainly used to protect mechanical devices, the control method and wiring layout will not be explained in detail.

[0034] The control method of this utility model is automatic control through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art. The power supply is also common knowledge in the field. Since this utility model is mainly used to protect mechanical devices, the control method and circuit connection will not be explained in detail.

[0035] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A solid-liquid separation device for extracting polysaccharides from Tremella fuciformis, comprising an extraction box (1), a mounting cover (2), a feed pipe (3), a lifting push cylinder (4), a mounting frame (5), a filter bucket (6), a real-time device (7), and a storage box (8), wherein the top of the extraction box (1) is fitted with a mounting cover (2), and the feed pipe (3) is located at the left end of the extraction box (1); Its features are: The real-time device (7) includes a cover (71), an inlet pipe (72), an outlet pipe (73), a display screen (74), a control switch (75), an execution component (76), a sensor (77), and a buffer ring (78). The inlet pipe (72) is installed at the left end of the cover (71) and is connected to the right end of the extraction box (1). The outlet pipe (73) is located at the right end of the cover (71). The display screen (74) is installed at the front end of the execution component (76). The control switch (75) is installed at the front end of the execution component (76). The sensor (77) is connected to the bottom of the execution component (76). The buffer ring (78) is installed inside the cover (71).

2. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 1, characterized in that: The execution component (76) includes a body (761), an information transmitter (762), a power supply box (763), a storage chip (764), a real-time analysis unit (765), a networking module (766), and a cooling fan (767). The information transmitter (762) is installed inside the body (761). The information transmitter (762) is connected to the top of the sensor (77). The power supply box (763) is installed at the rear end of the information transmitter (762). The storage chip (764) is fixed to the rear end of the information transmitter (762). The real-time analysis unit (765) is mounted on the right end of the storage chip (764). The networking module (766) is installed on the right end inside the body (761). The cooling fan (767) is fixed to the rear end inside the body (761).

3. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 1, characterized in that: The lifting cylinder (4) is fixed to the inside of the extraction box (1), the lifting cylinder (4) is connected to the bottom of the mounting frame (5) via a transmission, the mounting frame (5) is slidably connected to the inside of the extraction box (1), a filter bucket (6) is installed at the bottom of the mounting frame (5), the real-time device (7) is fixed to the right end of the extraction box (1), and the storage box (8) is installed at the left end of the real-time device (7).

4. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 1, characterized in that: The inlet pipe (72) and outlet pipe (73) are symmetrically arranged on the cover (71).

5. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 1, characterized in that: The execution component (76) and the sensor (77) are vertically arranged on the top of the cover (71).

6. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 1, characterized in that: The buffer ring (78) is arranged parallel to the inside of the cover (71).

7. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 2, characterized in that: The power supply box (763), the storage chip (764), and the real-time analysis unit (765) are all mounted at the same level at the rear end of the information transmitter (762).

8. The solid-liquid separation device for extracting polysaccharides from Tremella fuciformis according to claim 2, characterized in that: The size of the buffer ring (78) is the same as the size of the inside of the inlet pipe (72) and the outlet pipe (73).

Citation Information

Patent Citations

  • Solid-liquid separation device for tremella polysaccharide extraction

    CN220513464U