Pepsin enzymolysis device

By introducing the design of a movable plate and a drive motor into the pepsin enzymatic hydrolysis device, the problem of low stirring and mixing efficiency is solved, the efficient progress and temperature control of the enzymatic hydrolysis process are achieved, and the overall work efficiency is improved.

CN223445549UActive Publication Date: 2025-10-17CHONGQING QUANXIN XIANGSHENG BIOLOGICAL PHARM CO
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Patent Information

Application Number
CN202422684403.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-10-17
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

When the existing pepsin enzymatic hydrolysis device is stirring and mixing, there is no obstruction between the centrifugal chamber and the enzymatic hydrolysis chamber, and the stirring rod cannot quickly affect the raw materials in the centrifugal chamber, resulting in low mixing efficiency.

Method used

A pepsin enzymatic hydrolysis device was designed. A movable plate and a drive motor were set between the enzymatic hydrolysis chamber and the centrifugal chamber. The rotating covering and supporting structure of the movable plate was utilized to ensure that the stirring rod could effectively act on the raw materials in the centrifugal chamber. The temperature was controlled by a thermometer and a heater to improve the enzymatic hydrolysis efficiency.

Benefits of technology

The enzymatic hydrolysis mixing efficiency of pepsin is improved, ensuring that the enzymatic hydrolysis process is carried out under suitable temperature conditions, reducing raw material waste and saving human resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of enzymolysis, in particular to a pepsin enzymolysis device which comprises an enzymolysis bin, a centrifugal bin and a processing assembly, and the processing assembly comprises a feeding port, a stirring component, a first driving motor, a first movable plate, a first overlapping plate, a second driving motor, a second movable plate, a second overlapping plate and a discharging port. The output end of a first driving motor is controlled by a control panel to drive a first movable plate to rotate, then the output end of a second driving motor drives a second movable plate to rotate, and a second overlapping plate covers the first overlapping plate to separate the upper end and the lower end; pepsase is injected into the enzymolysis bin from the feeding opening, enzymolysis is accelerated through the stirring component, after enzymolysis is completed, the driving motor is controlled to rotate reversely, the pepsase flows into the centrifugal bin to be centrifuged, then the materials are discharged through the discharging opening, and the pepsase is limited within the stirring range of the stirring component to accelerate enzymolysis, so that the working efficiency is improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of enzymolysis, especially to a pepsin enzymolysis device. BACKGROUND

[0002] Pepsin is a digestive protease, which is secreted by the gastric mucosa of the stomach. Pepsin is needed in the process of decomposing proteins into small peptide fragments. The traditional enzymolysis device is large in size and complex in mechanism, and requires multiple people to operate a device. In addition, temperature control is particularly important during the enzymolysis process of pepsin. Unstable temperature conditions can result in low-quality products and waste of raw materials. Therefore, we need to propose a pepsin enzymolysis device.

[0003] The prior art (CN214881567U) discloses a pepsin enzymolysis device including an enzymolysis bin, a base, and a centrifugal bin. The top of the base is provided with the enzymolysis bin, and the bottom of the base is rotatably installed with the centrifugal bin. The top of the enzymolysis bin is sequentially provided with a feed inlet and a stirring motor. The output shaft of the stirring motor is fixedly connected with a stirring shaft at one end. A heating mechanism is provided on the stirring rod. The outside of the enzymolysis bin is provided with a heat preservation mechanism. The inner cavity of the enzymolysis bin is connected to the centrifugal bin at the bottom. The upper end of the centrifugal shaft is fixedly connected to the bottom surface of the centrifugal bin. The inner cavity of the centrifugal bin is provided with a flow divider. The lower end of the outer wall of the centrifugal bin is provided with a discharge port. The lower end of the outer wall of the centrifugal bin is provided with a discharge port. The structure is simple, the floor area is small, and multiple people are not needed to operate, saving a large amount of human resources.

[0004] However, in the above-mentioned scheme, when stirring and mixing are performed, there is no obstruction between the centrifugal bin and the enzymolysis bin, and the stirring rod is in the enzymolysis bin for stirring, which cannot quickly affect the raw materials in the centrifugal bin, thereby reducing the efficiency of stirring and mixing. Utility model content

[0005] The utility model aims at providing a pepsin enzymolysis device, which aims to solve the problem that the centrifugal bin and the enzymolysis bin do not have obstruction between them when the existing pepsin enzymolysis device is stirred and mixed, the stirring rod is in the enzymolysis bin for stirring, which cannot quickly affect the raw materials in the centrifugal bin, thereby reducing the efficiency of stirring and mixing.

[0006] In order to achieve the above object, the utility model provides a pepsin enzymolysis device, including enzymolysis bin, centrifugal bin and processing assembly, centrifugal bin with the fixed connection of enzymolysis bin, and located one side of enzymolysis bin, processing assembly includes feed inlet, stirring member, first drive motor, first movable plate, first overlap board, second drive motor, second movable plate, second overlap board and discharge gate, feed inlet with the fixed connection of enzymolysis bin, and located one side of enzymolysis bin, stirring member sets up one side of enzymolysis bin, first drive motor with the fixed connection of enzymolysis bin, and located one side of enzymolysis bin, first movable plate with the output of first drive motor fixed connection, and located one side of first drive motor, first overlap board with the fixed connection of first movable plate, and located one side of first movable plate, second drive motor with the fixed connection of enzymolysis bin, and located one side of enzymolysis bin, second movable plate with the output of second drive motor fixed connection, and located one side of second drive motor, second overlap board with the fixed connection of second movable plate, and located one side of second movable plate, discharge gate with the fixed connection of centrifugal bin, and located one side of centrifugal bin.

[0007] Wherein, the stirring member includes stirring motor, stirring shaft and stirring rod, the stirring motor is fixedly connected with the enzyme hydrolysis bin, and located one side of the enzyme hydrolyysis bin, the stirring shaft is fixedly connected with the output end of the stirring motor, and located one side of the stirring motor, the stirring rod is fixedly connected with the stirring shaft, and located one side of the stirring shaft.

[0008] Wherein, the stirring member further includes thermometer, heater and heat preservation layer, the thermometer is fixedly connected with the enzyme hydrolysis bin, and located one side of the enzyme hydrolysis bin, the heater is fixedly connected with the stirring rod, and located one side of the stirring rod, the heat preservation layer is fixedly connected with the enzyme hydrolysis bin, and located one side of the enzyme hydrolysis bin.

[0009] Wherein, the processing assembly further includes filter plate, support, filter screen and pull handle, the filter plate is slidably connected with the enzyme hydrolysis bin, and located one side of the enzyme hydrolysis bin, the support is fixedly connected with the filter plate, and located one side of the filter plate, the filter screen is slidably connected with the filter plate, and located one side of the filter plate, the pull handle is fixedly connected with the filter plate, and located one side of the filter plate.

[0010] Wherein, the processing assembly further includes support leg and support, the support leg is fixedly connected with the enzyme hydrolysis bin, and located one side of the enzyme hydrolysis bin, the support is fixedly connected with the support leg, and located one side of the support leg.

[0011] The utility model relates a pepsin enzyme hydrolysis device, when carrying out enzyme hydrolysis to pepsin, the output end of first drive motor is controlled to rotate and drives the rotation of first movable plate through the control panel on the surface of enzyme hydrolysis bin, the output end of second drive motor drives the rotation of second movable plate after first drive motor rotates a little, first movable plate is parallel to ground as support, and then second movable plate is also kept parallel as support under the drive of second drive motor, since one end of first movable plate and second movable plate is arc, wherein first overlapping plate is fixed as the extension of first movable plate and is above the side of first movable plate, second overlapping plate is fixed and is below the side of second movable plate, when first movable plate supports in parallel, second movable plate will cover second overlapping plate on first overlapping plate when rotating again, then inject pepsin from feed inlet into enzyme hydrolysis bin through stirring member to accelerate enzyme hydrolysis, after enzyme hydrolysis is completed, control panel controls drive motor to reverse, and pepsin flows into centrifugal bin to carry out centrifugation and then discharges through discharge port, accelerate enzyme hydrolysis by limiting pepsin in the stirring range of stirring member to improve the efficiency of work. BRIEF DESCRIPTION OF DRAWINGS

[0012] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or the prior art description will be briefly introduced below.

[0013] Figure 1 It is the structure schematic diagram of the whole of the utility model.

[0014] Figure 2 It is the structure schematic diagram of another view of the whole of the utility model.

[0015] Figure 3 It is the side view of the whole of the utility model.

[0016] Figure 4 It is the sectional view of the whole of the utility model.

[0017] 101-enzyme hydrolysis bin, 102-centrifugal bin, 103-processing assembly, 104-feed inlet, 105-stirring member, 106-first drive motor, 107-first movable plate, 108-first overlapping plate, 109-second drive motor, 110-second movable plate, 111-second overlapping plate, 112-discharge port, 113-stirring motor, 114-stirring shaft, 115-stirring rod, 116-thermometer, 117-heater, 118-heat preservation layer, 119-filter plate, 120-supporting piece, 121-filter screen, 122-pulling handle, 123-supporting leg, 124-supporting frame. DETAILED DESCRIPTION

[0018] The embodiments of the present application are described in detail below, examples of which are shown in the accompanying drawings, the embodiments described below by referring to the accompanying drawings are exemplary and are intended to explain the present application, and cannot be understood as a limitation of the present application.

[0019] Please refer to Figures 1-4 , wherein, Figure 1 is a structural schematic diagram of the whole of the present application, Figure 2 is a structural schematic diagram of the whole of the present application from another perspective, Figure 3 is a side view of the whole of the present application, Figure 4 is a sectional view of the whole of the present application.

[0020] The present application provides a pepsin enzymolysis device, which comprises an enzymolysis bin 101, a centrifugal bin 102 and a processing assembly 103. The processing assembly 103 comprises a feeding port 104, a stirring member 105, a first driving motor 106, a first movable plate 107, a first overlapping plate 108, a second driving motor 109, a second movable plate 110, a second overlapping plate 111, a discharging port 112, a filter plate 119, a supporting member 120, a filter screen 121, a pulling handle 122, a supporting leg 123 and a support 124. The stirring member 105 comprises a stirring motor 113, a stirring shaft 114, a stirring rod 115, a thermometer 116, a heater 117 and a heat preservation layer 118. The above-mentioned scheme solves the problem that the existing pepsin enzymolysis device cannot quickly affect the raw materials in the centrifugal bin 102 during stirring and mixing, thereby reducing the efficiency of stirring and mixing.

[0021] For this specific embodiment, the centrifugal bin 102 is fixedly connected with the enzymolysis bin 101 and located on one side of the enzymolysis bin 101. The enzymolysis bin 101 is used for enzymolysis of pepsin. After enzymolysis, the pepsin flows into the centrifugal bin 102 for centrifugal treatment and finally discharges. The specific structure and use method of the enzymolysis bin 101 and the centrifugal bin 102 are recorded in the patent document with publication number CN214881567U, which is not within the protection scope of the present application and will not be described here.

[0022] The first driving motor 106 is fixedly connected with the enzymolysis bin 101 and located at one side of the enzymolysis bin 101, the first movable plate 107 is fixedly connected with the output end of the first driving motor 106 and located at one side of the first driving motor 106, the first overlapping plate 108 is fixedly connected with the first movable plate 107 and located at one side of the first movable plate 107, the second driving motor 109 is fixedly connected with the enzymolysis bin 101 and located at one side of the enzymolysis bin 101, the second movable plate 110 is fixedly connected with the output end of the second driving motor 109 and located at one side of the second driving motor 109, the second overlapping plate 111 is fixedly connected with the second movable plate 110 and located at one side of the second movable plate 110, and the discharge port 112 is fixedly connected with the centrifugal bin 102 and located at one side of the centrifugal bin 102. When the pepsin is subjected to enzymolysis, the output end of the first driving motor 106 is controlled by the control panel on the surface of the enzymolysis bin 101 to rotate and drive the first movable plate 107 to rotate, the output end of the second driving motor 109 drives the second movable plate 110 to rotate after the first driving motor 106 rotates for a period of time, the first movable plate 107 is parallel to the ground as a support, then the second movable plate 110 is also kept parallel as a support under the drive of the second driving motor 109, one end of the first movable plate 107 and the second movable plate 110 are arc-shaped, the first overlapping plate 108 is fixedly connected with the side edge of the first movable plate 107 and is located above the first movable plate 107, and the second overlapping plate 111 is fixedly connected with the side edge of the second movable plate 110 and is located below the second movable plate 110. When the first movable plate 107 is parallel to the ground as a support, the second movable plate 110 rotates again to cover the second overlapping plate 111 on the first overlapping plate 108, the pepsin is injected into the enzymolysis bin 101 from the feeding port 104, the enzymolysis is accelerated by the stirring member 105, the pepsin is flowed into the centrifugal bin 102 under the control of the control panel and the driving motor, the centrifugal bin 102 is subjected to centrifugal treatment, and then the pepsin is discharged from the discharge port 112. The pepsin is limited in the stirring range of the stirring member 105 to accelerate the enzymolysis and improve the working efficiency.

[0023] Secondly, the stirring motor 113 is fixedly connected with the enzymolysis bin 101 and located at one side of the enzymolysis bin 101, the stirring shaft 114 is fixedly connected with the output end of the stirring motor 113 and located at one side of the stirring motor 113, the stirring rod 115 is fixedly connected with the stirring shaft 114 and located at one side of the stirring shaft 114, and the stirring motor 113 is located on the outer surface of the enzymolysis bin 101, wherein the output end of the stirring motor 113 penetrates through the enzymolysis bin 101 and is fixedly connected with the stirring shaft 114 in the interior, the output end of the stirring motor 113 drives the stirring shaft 114 to rotate, and the rotation of the stirring shaft 114 drives the stirring rod 115 to rotate, so that the enzymolysis process of pepsin is accelerated.

[0024] Meanwhile, the thermometer 116 is fixedly connected with the enzymolysis bin 101 and located at one side of the enzymolysis bin 101, the heater 117 is fixedly connected with the stirring rod 115 and located at one side of the stirring rod 115, the heat preservation layer 118 is fixedly connected with the enzymolysis bin 101 and located at one side of the enzymolysis bin 101, one end of the thermometer 116 inserted into the interior of the enzymolysis bin 101 displays a value on the surface of the enzymolysis bin 101, the temperature sensed by the thermometer 116 is known, when the temperature is low, the heater 117 heats in the process of stirring and then drives rapid diffusion through the stirring rod 115, and meanwhile, the heat preservation layer 118 covers the surface of the enzymolysis bin 101 to reduce the heat dissipation speed, so that the enzymolysis process is ensured to be in a required temperature environment.

[0025] In addition, the filter plate 119 is slidingly connected with the enzymolysis bin 101 and located at one side of the enzymolysis bin 101, the supporting piece 120 is fixedly connected with the filter plate 119 and located at one side of the filter plate 119, the filter screen 121 is slidingly connected with the filter plate 119 and located at one side of the filter plate 119, and the pulling handle 122 is fixedly connected with the filter plate 119 and located at one side of the filter plate 119. After enzymolysis, the solution flows into the centrifugal bin 102, the particles in the solution are filtered through the filter screen 121 in the process of flowing, after the centrifugation is completed, the filter plate 119 can be pulled out through the pulling handle 122, then the filter screen 121 is slid upward to be taken out for cleaning, after the cleaning is completed, the filter plate 119 is slid into the filter plate 119 again and is supported and limited by the supporting piece 120 for next time filtering.

[0026] Second, the leg 123 and the enzyme hydrolysis bin 101 fixed connection, and located in one side of the enzyme hydrolysis bin 101, the bracket 124 and the leg 123 fixed connection, and located in one side of the leg 123, the leg 123 as a whole support guarantee the process equipment at a high place flow down to facilitate discharge, and at the same time the bracket 124 connects the leg 123, for reinforcing the support of the leg 123.

[0027] In use of the utility model, in the process of pepsin enzymolysis, the filter plate 119 can be pulled out by pulling the handle 122, then the filter screen 121 is slid upward to take out for cleaning, after cleaning, it is slid into the filter plate 119 again, and is supported and limited on the supporting piece 120, then it is inserted into the enzyme hydrolysis bin 101 again, the output end of the first drive motor 106 is controlled by the control panel on the surface of the enzyme hydrolysis bin 101 to rotate and drive the first movable plate 107 to rotate, after the first drive motor 106 rotates for a moment, the output end of the second drive motor 109 drives the second movable plate 110 to rotate again, the first movable plate 107 is parallel to the ground as support, then the second movable plate 110 is also kept parallel as support under the drive of the second drive motor 109, since one end of the first movable plate 107 and the second movable plate 110 is arc-shaped, the first overlapping plate 108 is fixed as the extension of the side edge of the first movable plate 107 and is above the position, the second overlapping plate 111 is fixed with the side edge of the second movable plate 110 and is below the position, when the first movable plate 107 is parallel to the ground as support, the second movable plate 110 will cover the second overlapping plate 111 on the first overlapping plate 108 when rotating again, then pepsin is injected into the enzyme hydrolysis bin 101 from the feed inlet 104 to accelerate enzymolysis by the stirring member 105, after enzymolysis, the drive motor is controlled to reverse by the control panel, pepsin flows into the centrifugal bin 102 to centrifuge and then is discharged from the discharge port 112, pepsin is limited in the stirring range of the stirring member 105 to accelerate enzymolysis and improve the work efficiency.

[0028] The above only discloses one or more preferred embodiments of the application, which cannot limit the scope of the application, and those skilled in the art can understand that all or part of the above-mentioned embodiments can be implemented, and equivalent changes made according to the claims of the application still belong to the scope covered by the application.

Claims

1. A pepsin enzymolysis device, comprising an enzymolysis chamber and a centrifugal chamber, wherein the centrifugal chamber is fixedly connected to the enzymolysis chamber and is located on one side of the enzymolysis chamber, characterized in that: Also included are machining components; The processing assembly includes a feed port, a stirring member, a first drive motor, a first movable plate, a first overlapping plate, a second drive motor, a second movable plate, a second overlapping plate and a discharge port; The feed port is fixedly connected to the enzymolysis chamber and is located on one side of the enzymolysis chamber. The stirring member is arranged on one side of the enzymolysis chamber. The first drive motor is fixedly connected to the enzymolysis chamber and is located on one side of the enzymolysis chamber. The first movable plate is fixedly connected to the output end of the first drive motor and is located on one side of the first drive motor. The first overlapping plate is fixedly connected to the first movable plate and is located on one side of the first movable plate. The second drive motor is fixedly connected to the enzymolysis chamber and is located on one side of the enzymolysis chamber. The second movable plate is fixedly connected to the output end of the second drive motor and is located on one side of the second drive motor. The second overlapping plate is fixedly connected to the second movable plate and is located on one side of the second movable plate. The discharge port is fixedly connected to the centrifugal chamber and is located on one side of the centrifugal chamber.

2. A pepsin enzymolysis device according to claim 1, characterized in that: The stirring component includes a stirring motor, a stirring shaft and a stirring rod. The stirring motor is fixedly connected to the enzymatic hydrolysis chamber and is located on one side of the enzymatic hydrolysis chamber. The stirring shaft is fixedly connected to the output end of the stirring motor and is located on one side of the stirring motor. The stirring rod is fixedly connected to the stirring shaft and is located on one side of the stirring shaft.

3. A pepsin enzymolysis device according to claim 2, characterized in that: The stirring member also includes a thermometer, a heater and an insulation layer. The thermometer is fixedly connected to the enzymatic hydrolysis chamber and is located on one side of the enzymatic hydrolysis chamber. The heater is fixedly connected to the stirring rod and is located on one side of the stirring rod. The insulation layer is fixedly connected to the enzymatic hydrolysis chamber and is located on one side of the enzymatic hydrolysis chamber.

4. A pepsin enzymolysis device according to claim 1, characterized in that: The processing assembly also includes a filter plate, a support, a filter screen and a pulling handle. The filter plate is slidably connected to the enzymatic hydrolysis chamber and is located on one side of the enzymatic hydrolysis chamber. The support is fixedly connected to the filter plate and is located on one side of the filter plate. The filter screen is slidably connected to the filter plate and is located on one side of the filter plate. The pulling handle is fixedly connected to the filter plate and is located on one side of the filter plate.

5. A pepsin enzymolysis device according to claim 1, characterized in that: The processing assembly also includes a leg and a bracket, the leg is fixedly connected to the enzymolysis chamber and is located on one side of the enzymolysis chamber, and the bracket is fixedly connected to the leg and is located on one side of the leg.

Citation Information

Patent Citations

  • Pepsin enzymolysis device

    CN214881567U