Raw material synthesizing device for synthesizing biological probiotics
By designing a probiotic raw material synthesis device that includes multiple screening chambers, the problem that existing equipment cannot efficiently screen multiple probiotic raw materials is solved, and efficient screening and collection of multiple raw materials is achieved, and working efficiency and synthesis effect are improved.
Patent Information
- Application Number
- CN202421853519.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-08-01
AI Technical Summary
Existing probiotic raw material production equipment cannot efficiently screen a variety of different types of probiotic raw materials, resulting in block raw materials affecting the synthesis effect and the equipment is low in working efficiency.
A synthetic biological probiotic raw material synthesis device is designed, including the first, second and third screening chambers distributed sequentially from the inside to the outside. The lower end surfaces of each cavity are mesh-shaped. Through the cooperation of the rotary plate, the rotary rod and the lever, the screening and collection of a variety of probiotic raw materials can be achieved.
The device can efficiently screen and collect a variety of different types of probiotic raw materials, improve work efficiency, avoid the negative impact of block raw materials on the synthesis effect, and ensure the uniform synthesis of probiotic raw materials.
Smart Images

Figure CN222970257U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of synthetic biological probiotic raw material production equipment, and particularly relates to a synthetic biological probiotic raw material synthesis device. Background Art
[0002] In recent years, the key role of the gut microbiota in the process of human aging has attracted wide attention. With the increase of age, the decline of the gut flora not only exacerbates the local aging of the gut, but also promotes the occurrence of aging-related diseases such as systemic inflammation and metabolic disorders. It is worth noting that microecological preparations such as probiotics, prebiotics, postbiotics, and metabolites during the fermentation process of probiotics are becoming increasingly important in preventing and restoring age-related imbalances in the gut microbiota.
[0003] Probiotics are a class of active microorganisms beneficial to the host. Probiotics are intestinal microecological adjustment products that have been studied more in recent years and are usually applied to foods and health products. When producing probiotics, it is necessary to synthesize probiotic raw materials.
[0004] At present, probiotic raw materials are usually synthesized directly without screening, resulting in blocky probiotic raw materials affecting the synthesis effect, and the devices for screening probiotic raw materials generally can only screen one type of probiotic raw material at a time, with low working efficiency. Summary of the Invention
[0005] The purpose of the utility model is to provide a synthetic biological probiotic raw material synthesis device, which can screen and collect various different probiotic raw materials respectively, so as to improve the working efficiency and avoid blocky probiotic raw materials affecting the uniform synthesis of probiotic raw materials.
[0006] To achieve the above purpose, the utility model provides the following technical solution: a synthetic biological probiotic raw material synthesis device, including a device body, wherein a first screening chamber, a second screening chamber, and a third screening chamber are sequentially arranged inside the device body from inside to outside. The lower end faces of the first screening chamber, the second screening chamber, and the third screening chamber are all of a mesh structure. A disc is placed on the upper end face of the device body. A rotating plate is arranged below the disc and above the upper end face of the first screening chamber. The upper end face of the rotating plate is movably connected with a rotating rod that penetrates and extends above the disc. The lower end face of the rotating plate is fixedly connected with stirring rods located in the first screening chamber, the second screening chamber, and the third screening chamber respectively.
[0007] An aggregate cylinder is installed on the outer wall below the device body. A first aggregate chamber, a second aggregate chamber, and a third aggregate chamber that are respectively matched with the first screening chamber, the second screening chamber, and the third screening chamber are installed inside the aggregate cylinder. Receiving trays with upper end faces abutting against the lower end face of the device body are placed inside the first aggregate chamber, the second aggregate chamber, and the third aggregate chamber respectively.
[0008] In order to support and position the device body, as an optimization of the synthetic biological probiotic raw material synthesis device of the present utility model, a positioning plate is fixedly connected to the inner wall of the aggregate cylinder. An annular boss is fixedly connected to the upper end surface of the positioning plate. An installation plate that abuts against the positioning plate is fixedly connected to the outer wall of the device body. An annular groove matching the boss is formed on the lower end surface of the installation plate.
[0009] In order to enable the dial rod to rotate smoothly inside the second screening chamber and the third screening chamber, as an optimization of the synthetic biological probiotic raw material synthesis device of the present utility model, the second screening chamber, the third screening chamber, the second aggregate chamber, and the third aggregate chamber are all of annular structures.
[0010] In order to assist in supporting the device body, as an optimization of the synthetic biological probiotic raw material synthesis device of the present utility model, a support table located below the positioning plate is fixedly connected to the inner wall of the aggregate cylinder.
[0011] In order to enable the raw materials to be screened to fall smoothly into the receiving tray, as an optimization of the synthetic biological probiotic raw material synthesis device of the present utility model, the upper end surface of the receiving tray is of an open structure.
[0012] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0013] When the present utility model is in use, first, various different probiotic raw materials are respectively placed in the first screening chamber, the second screening chamber, and the third screening chamber. The rotating rod drives the rotating plate to rotate, causing the dial rod to rotate, and stirring the raw materials in the first screening chamber, the second screening chamber, and the third screening chamber. Thus, the qualified powders in different probiotic raw materials in the first screening chamber, the second screening chamber, and the third screening chamber can pass through the mesh holes and fall into the receiving trays in the corresponding first aggregate chamber, second aggregate chamber, and third aggregate chamber respectively for centralized collection. Furthermore, the screening and collection of various different probiotic raw materials can be realized, thereby improving the working efficiency and avoiding the influence of blocky probiotic raw materials on the uniform synthesis of probiotic raw materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the following-described drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0015] Figure 1 It is a front view structural schematic diagram of the present utility model;
[0016] Figure 2Schematic three-dimensional structure diagram of the device body of the present utility model;
[0017] Figure 3 Schematic three-dimensional structure diagram of the aggregate bin of the present utility model;
[0018] Figure 4 Schematic top view structure diagram of the aggregate bin of the present utility model.
[0019] In the figure: 1. Device body; 101. First screening chamber; 102. Second screening chamber; 103. Third screening chamber; 2. Rotating plate; 201. Rotating rod; 202. Poking rod; 3. Mounting plate; 4. Aggregate bin; 401. First aggregate chamber; 402. Second aggregate chamber; 403. Third aggregate chamber; 404. Material receiving tray; 405. Support platform; 406. Positioning plate; 407. Boss. Detailed implementation manners
[0020] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model, the following will briefly introduce the attached drawings required for use in the embodiments or the description of the prior art. Obviously, the attached drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other attached drawings can also be obtained based on these attached drawings.
[0021] Please refer to Figures 1 to 4 , a synthetic biological probiotic raw material synthesis device, including a device body 1. Inside the device body 1, a first screening chamber 101, a second screening chamber 102, and a third screening chamber 103 are sequentially distributed from the inside to the outside. The lower end surfaces of the first screening chamber 101, the second screening chamber 102, and the third screening chamber 103 are all in a net structure. A disc is placed on the upper end surface of the device body 1. Below the disc, there is a rotating plate 2 located on the upper end surface of the first screening chamber 101. The upper end surface of the rotating plate 2 is movably connected to a rotating rod 201 that penetrates and extends above the disc. The lower end surface of the rotating plate 2 is fixedly connected to poking rods 202 respectively located in the first screening chamber 101, the second screening chamber 102, and the third screening chamber 103;
[0022] On the outer wall below the device body 1, an aggregate bin 4 is installed. Inside the aggregate bin 4, a first aggregate chamber 401, a second aggregate chamber 402, and a third aggregate chamber 403 that are respectively matched with the first screening chamber 101, the second screening chamber 102, and the third screening chamber 103 are installed. Inside the first aggregate chamber 401, the second aggregate chamber 402, and the third aggregate chamber 403, there are all placed material receiving trays 404 whose upper end surfaces are in contact with the lower end surface of the device body 1.
[0023] In this embodiment: When the present utility model is in use, the device body 1 is installed in the aggregate cylinder 4, and the lower end surface of the device body 1 is abutted against the material receiving tray 404 in the aggregate cylinder 4. Then, various different probiotic raw materials are respectively placed in the first screening cavity 101, the second screening cavity 102, and the third screening cavity 103. Next, the disc is placed on the upper end surface of the device body 1, and at the same time, the rotating plate 2 is located on the upper end surface of the first screening cavity 101. Then, the rotating rod 201 is rotated, so that the rotating rod 201 drives the rotating plate 2 to rotate, causing the dial rod 202 to rotate, and stirring the raw materials in the first screening cavity 101, the second screening cavity 102, and the third screening cavity 103. Thus, the qualified powders in the different probiotic raw materials in the first screening cavity 101, the second screening cavity 102, and the third screening cavity 103 can pass through the mesh holes and fall into the corresponding material receiving trays 404 in the first aggregate cavity 401, the second aggregate cavity 402, and the third aggregate cavity 403 for centralized collection. Furthermore, the screening and collection of various different probiotic raw materials can be realized, thereby improving work efficiency and preventing the blocky probiotic raw materials from affecting the uniform synthesis of the probiotic raw materials.
[0024] As a technical optimization scheme of the present utility model, a positioning plate 406 is fixedly connected to the inner wall of the aggregate cylinder 4. An annular boss 407 is fixedly connected to the upper end surface of the positioning plate 406. An installation plate 3 that abuts against the positioning plate 406 is fixedly connected to the outer wall of the device body 1. An annular groove matching the boss 407 is formed in the lower end surface of the installation plate 3.
[0025] In this embodiment: The device body 1 is placed inside the aggregate cylinder 4, and the installation plate 3 is located on the upper end surface of the positioning plate 406. At the same time, the boss 407 is located inside the annular groove, so as to realize the support and positioning of the device body 1.
[0026] As a technical optimization scheme of the present utility model, the second screening cavity 102, the third screening cavity 103, the second aggregate cavity 402, and the third aggregate cavity 403 are all of annular structures.
[0027] In this embodiment: Since the second screening cavity 102, the third screening cavity 103, the second aggregate cavity 402, and the third aggregate cavity 403 are all of annular structures, it is convenient for the dial rod 202 to rotate smoothly inside the second screening cavity 102 and the third screening cavity 103.
[0028] As a technical optimization scheme of the present utility model, a support platform 405 located below the positioning plate 406 is fixedly connected to the inner wall of the aggregate cylinder 4.
[0029] In this embodiment: The support platform 405 is used to assist in supporting the device body 1.
[0030] As a technical optimization scheme of the present utility model, the upper end surface of the material receiving tray 404 is of an open structure.
[0031] In this embodiment: The opening structure facilitates the smooth falling of the raw materials to be screened into the receiving tray 404.
[0032] Working principle: When the present utility model is in use, first install the device body 1 in the aggregate cylinder 4, make the lower end surface of the device body 1 abut against the receiving tray 404 in the aggregate cylinder 4, and at the same time, the lower end surface of the device body 1 contacts the support platform 405, and make the mounting plate 3 located on the upper end surface of the positioning plate 406, and at the same time, the convex platform 407 is located in the annular groove, so as to realize the support and positioning of the device body 1. Then place various different probiotic raw materials in the first screening chamber 101, the second screening chamber 102 and the third screening chamber 103 respectively, and then place the disc on the upper end surface of the device body 1. At the same time, the rotating plate 2 is located on the upper end surface of the first screening chamber 101. Then rotate the rotating rod 201, the rotating rod 201 drives the rotating plate 2 to rotate, so that the dial rod 202 rotates, and the raw materials in the first screening chamber 101, the second screening chamber 102 and the third screening chamber 103 are stirred, so that the qualified powders in the different probiotic raw materials in the first screening chamber 101, the second screening chamber 102 and the third screening chamber 103 pass through the mesh holes and fall into the receiving trays 404 in the corresponding first aggregate chamber 401, the second aggregate chamber 402 and the third aggregate chamber 403 respectively for centralized collection. Then take out the device body 1 upward, separate it from the aggregate cylinder 4, and take out the receiving trays 404 placed in the first aggregate chamber 401, the second aggregate chamber 402 and the third aggregate chamber 403 respectively, so as to process the probiotic raw materials in the receiving trays 404, and remove the disc, so that the rotating plate 2 and the dial rod 202 are separated from the device body 1. Finally, pour out the remaining raw materials screened in the first screening chamber 101, the second screening chamber 102 and the third screening chamber 103 for processing.
[0033] The above are only the preferred embodiments of the present utility model, and are not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A synthetic biological probiotic raw material synthesis device, comprising a device body (1), characterized in that: The device body (1) is provided with a first screening chamber (101), a second screening chamber (102) and a third screening chamber (103) which are sequentially arranged from the inside to the outside; the lower end surfaces of the first screening chamber (101), the second screening chamber (102) and the third screening chamber (103) are all in a mesh structure; a disc is placed on the upper end surface of the device body (1); a rotating plate (2) located on the upper end surface of the first screening chamber (101) is arranged below the disc; the upper end surface of the rotating plate (2) is movably connected to a rotating rod (201) which penetrates through and extends to the top of the disc; the lower end surface of the rotating plate (2) is fixedly connected to a shifting rod (202) located in the first screening chamber (101), the second screening chamber (102) and the third screening chamber (103) respectively; A material collecting barrel (4) is installed on the outer wall below the device body (1), and a first material collecting chamber (401), a second material collecting chamber (402) and a third material collecting chamber (403) are installed inside the material collecting barrel (4), which are matched with the first screening chamber (101), the second screening chamber (102) and the third screening chamber (103) respectively, and a material receiving plate (404) whose upper end face abuts against the lower end face of the device body (1) is placed inside the first material collecting chamber (401), the second material collecting chamber (402) and the third material collecting chamber (403).
2. A synthetic biological probiotic raw material synthesis device according to claim 1, characterized in that: The inner wall of the collecting barrel (4) is fixedly connected to a positioning plate (406), the upper end face of the positioning plate (406) is fixedly connected to an annular boss (407), the outer wall of the device body (1) is fixedly connected to a mounting plate (3) abutting against the positioning plate (406), and the lower end face of the mounting plate (3) is provided with an annular groove matching the boss (407).
3. A synthetic biological probiotic raw material synthesis device according to claim 1, characterized in that: The second screening chamber (102) and the third screening chamber (103) as well as the second collecting chamber (402) and the third collecting chamber (403) are all annular structures.
4. A synthetic biological probiotic raw material synthesis device according to claim 1, characterized in that: The inner wall of the collecting barrel (4) is fixedly connected to a support platform (405) located below the positioning plate (406).
5. The synthetic biological probiotic raw material synthesis device according to claim 1, characterized in that: The upper end surface of the receiving tray (404) is an open structure.