L-carnitine processing system
Through the design of the refrigerant circulation system and sealing limit structure, the problems of unstable L-carnitine product quality and incomplete impurity removal caused by room temperature centrifugation technology are solved, and efficient and stable L-carnitine separation and processing are achieved.
Patent Information
- Application Number
- CN202421870260.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-08-05
AI Technical Summary
The existing L-carnitine processing and treatment system adopts room temperature centrifugation technology, which is susceptible to temperature influence, resulting in unstable product quality and inability to effectively remove impurities. Long-term treatment may cause product denaturation and affect the final product quality.
The centrifuge is cooled by a refrigerant circulation system, and the sealing mechanism and limiting structure are used to prevent raw materials from leaking and the transportation pipe falling off, including the cooling mechanism composed of shell, compressor, condenser, expansion valve, evaporation tube, fan and other components, as well as the design of sealing ring and limiting block.
It realizes the separation of L-carnitine under stable temperature conditions, effectively removes impurities, avoids product denaturation, and improves product quality stability and safety.
Smart Images

Figure CN223055847U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of processing devices, in particular to a processing system for L-carnitine. Background Technique
[0002] L-carnitine is a kind of amino acid-like substance that promotes the conversion of fat into energy. The pure product is white crystal and white transparent fine powder. In real life, the production of L-carnitine requires heating the prepared raw material liquid to make it into solid particles before it can be used. In the production process of L-carnitine, centrifugal separation is one of the key links. In order to better process L-carnitine, therefore, a processing system for L-carnitine is particularly needed.
[0003] However, the existing processing systems usually use normal temperature centrifugation technology to separate L-carnitine. However, this method is easily affected by temperature during the processing, resulting in unstable product quality, unable to effectively remove impurities in L-carnitine, and long-term processing may cause product denaturation, affecting the quality of the final product. Content of the Utility Model
[0004] The purpose of the utility model is to provide a processing system for L-carnitine to solve the problems in the above-mentioned background technique that the existing processing systems usually use normal temperature centrifugation technology to separate L-carnitine, but this method is easily affected by temperature during the processing, resulting in unstable product quality, unable to effectively remove impurities in L-carnitine, and long-term processing may cause product denaturation, affecting the quality of the final product.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A processing system for L-carnitine, including a raw material tank, a transportation pipe is installed on one side surface of the raw material tank, a centrifuge is installed on one side surface of the transportation pipe, a display screen is installed on one side surface of the centrifuge, a cooling mechanism is arranged on one side surface of the centrifuge, and a sealing mechanism is arranged on one side surface of the transportation pipe;
[0006] The cooling mechanism includes a housing, a compressor, a condenser pipe, a first connecting pipe, an expansion valve, an evaporation pipe, a second connecting pipe, and a fan. The housing is fixedly connected to the outer surface of the centrifuge, the compressor is installed on the inner surface of the housing, the condenser pipe is fixedly connected to one side surface of the compressor, the first connecting pipe is fixedly connected to one side surface of the condenser pipe, the expansion valve is fixedly connected to one end surface of the first connecting pipe, the evaporation pipe is fixedly connected to one end surface of the expansion valve, the second connecting pipe is fixedly connected to one end surface of the evaporation pipe, and the fan is fixedly connected to the inner surface of the housing.
[0007] Preferably, one end surface of the first connecting pipe is fixedly connected with a condenser pipe, and the other end surface of the first connecting pipe is fixedly connected with an expansion valve.
[0008] Preferably, one end surface of the second connecting pipe is fixedly connected with an inner wall dimension of the expansion valve, and the other end surface of the second connecting pipe is fixedly connected with an evaporator pipe.
[0009] Preferably, the sealing mechanism includes a first flange, a fixing groove, a limiting groove, a mounting groove, a sealing ring, a second flange, a fixing ring, and a limiting block. One end surface of the centrifuge is provided with a first flange. A fixing groove is provided on one side surface of the first flange. A limiting groove is provided on the inner side surface of the fixing groove. A mounting groove is provided on one side surface of the first flange. A sealing ring is fixedly connected to the inner side surface of the mounting groove. One side surface of the transport pipe is provided with a second flange. A fixing ring is fixedly connected to one side surface of the second flange. A limiting block is fixedly connected to the outer side surface of the fixing ring.
[0010] Preferably, both the fixing groove and the mounting groove are provided on one side surface of the first flange, and the outer wall dimension of the first flange is in line with the outer wall dimension of the second flange.
[0011] Preferably, the limiting grooves are symmetrically arranged with respect to the central axis of the fixing groove, and the outer wall dimension of the sealing ring is matched with the inner wall dimension of the mounting groove.
[0012] Preferably, the outer wall dimension of the limiting block is matched with the inner wall dimension of the limiting groove, and the limiting blocks are symmetrically installed with respect to the central axis of the fixing ring.
[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows: For the L-carnitine processing system, through the settings of the outer shell, compressor, condenser tube, first connecting tube, expansion valve, evaporation tube, second connecting tube, and fan, during use, the compressor sucks in the refrigerant and compresses it. The compressed refrigerant will become a high-temperature and high-pressure gas. Then, the high-temperature and high-pressure gas is sent into the condenser tube for heat dissipation and cooling, and the temperature of the refrigerant is reduced by the fan to become a liquid. Then, the liquid enters the expansion valve through the first connecting tube and becomes a gas. The refrigerant that becomes a gas enters the evaporation tube. While the evaporation tube releases cold air, it also absorbs the heat inside the centrifuge to complete the cooling. Moreover, the refrigerant with an increased temperature is sent into the compressor through the second connecting tube for the next cycle. When L-carnitine is transported to the centrifuge through the transport tube, the sealing ring can effectively avoid the problem of raw material leakage, and the limiting block and the limiting groove avoid the problem of the transport tube falling off due to vibrations caused by long-term use. This solves the above-mentioned existing processing system, which usually uses normal-temperature centrifugation technology to separate L-carnitine. However, this method is easily affected by temperature during the processing, resulting in unstable product quality, being unable to effectively remove impurities in L-carnitine, and long-term processing may cause product denaturation, affecting the quality of the final product. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is a schematic diagram of the overall external structure of the present utility model;
[0015] Figure 2 is a schematic diagram of the cooling mechanism structure of the present utility model;
[0016] Figure 3 is a schematic diagram of the mating structure of the first flange and the second flange of the present utility model;
[0017] Figure 4 is a schematic diagram of the enlarged structure at A in the figure of the present utility model.
[0018] In the figure: 1, raw material tank; 2, transport tube; 3, centrifuge; 4, display screen; 5, cooling mechanism; 501, outer shell; 502, compressor; 503, condenser tube; 504, first connecting tube; 505, expansion valve; 506, evaporation tube; 507, second connecting tube; 508, fan; 6, sealing mechanism; 601, first flange; 602, fixing groove; 603, limiting groove; 604, mounting groove; 605, sealing ring; 606, second flange; 607, fixing ring; 608, limiting block. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.
[0020] Please refer to Figures 1-4 , the present utility model provides a technical solution: a processing system for L-carnitine, including a raw material tank 1, a transportation pipe 2 is installed on one side surface of the raw material tank 1, a centrifuge 3 is installed on one side surface of the transportation pipe 2, a display screen 4 is installed on one side surface of the centrifuge 3, a cooling mechanism 5 is arranged on one side surface of the centrifuge 3, and a sealing mechanism 6 is arranged on one side surface of the transportation pipe 2;
[0021] The cooling mechanism 5 includes a housing 501, a compressor 502, a condenser pipe 503, a first connecting pipe 504, an expansion valve 505, an evaporation pipe 506, a second connecting pipe 507, and a fan 508. The outer surface of the centrifuge 3 is fixedly connected to the housing 501, the inner surface of the housing 501 is installed with the compressor 502, the compressor 502 is fixedly connected to the condenser pipe 503 on one side surface, the condenser pipe 503 is fixedly connected to the first connecting pipe 504 on one side surface, the first connecting pipe 504 is fixedly connected to the expansion valve 505 on one end surface, the expansion valve 505 is fixedly connected to the evaporation pipe 506 on one end surface, the evaporation pipe 506 is fixedly connected to the second connecting pipe 507 on one end surface, and the inner surface of the housing 501 is fixedly connected to the fan 508. Through the settings of the housing 501, the compressor 502, the condenser pipe 503, the first connecting pipe 504, the expansion valve 505, the evaporation pipe 506, the second connecting pipe 507, and the fan 508, when in use, the compressor 502 sucks the refrigerant into it and compresses it. The compressed refrigerant will become a high-temperature and high-pressure gas. Then, the high-temperature and high-pressure gas is sent to the condenser pipe 503 for heat dissipation and cooling, and the temperature of the refrigerant is reduced by the fan 508 to become a liquid. Then, the liquid enters the expansion valve 505 through the first connecting pipe 504 and becomes a gas. The refrigerant that becomes a gas enters the evaporation pipe 506. The evaporation pipe 506 releases cold air while absorbing the heat inside the centrifuge 3 to complete the cooling. Moreover, the refrigerant with increased temperature is sent to the compressor 502 through the second connecting pipe 507 for the next cycle.
[0022] Furthermore, one end surface of the first connecting pipe 504 is fixedly connected to the condenser pipe 503, and the other end surface of the first connecting pipe 504 is fixedly connected to the expansion valve 505. Through the setting of the expansion valve 505, when in use, when the compressed refrigerant passes through the expansion valve 505, the pressure of the refrigerant is instantly released and changes from a liquid to a gas.
[0023] Further, one end surface of the second connecting pipe 507 is fixedly connected to the inner wall of the expansion valve 505 with a matching size, and the other end surface of the second connecting pipe 507 is fixedly connected to the evaporation pipe 506. Through the arrangement of the evaporation pipe 506, during use, while the gaseous refrigerant releases cold air through the evaporation pipe 506, it also absorbs the heat inside the centrifuge 3.
[0024] Further, the sealing mechanism 6 includes a first flange 601, a fixing groove 602, a limiting groove 603, a mounting groove 604, a sealing ring 605, a second flange 606, a fixing ring 607, and a limiting block 608. One end surface of the centrifuge 3 is provided with a first flange 601. A fixing groove 602 is provided on one side surface of the first flange 601. A limiting groove 603 is provided on the inner side surface of the fixing groove 602. A mounting groove 604 is provided on one side surface of the first flange 601. A sealing ring 605 is fixedly connected to the inner side surface of the mounting groove 604. One side surface of the transport pipe 2 is provided with a second flange 606. A fixing ring 607 is fixedly connected to one side surface of the second flange 606. A limiting block 608 is fixedly connected to the outer side surface of the fixing ring 607. Through the first flange 601, the fixing groove 602, the limiting groove 603, the mounting groove 604, the sealing ring 605, the second flange 606, the fixing ring 607, and the limiting block 608, align the fixing ring 607 on the second flange 606 with the fixing groove 602 on the first flange 601, put it in and make the limiting block 608 on the fixing ring 607 snap into the limiting groove 603. During use, when L-carnitine is transported to the centrifuge 3 through the transport pipe 2, the sealing ring can effectively avoid the problem of raw material leakage, and the limiting block 608 and the limiting groove 603 avoid the problem of the transport pipe 2 falling off due to vibration caused by long-term use.
[0025] Further, both the fixing groove 602 and the mounting groove 604 are provided on one side surface of the first flange 601, and the outer wall size of the first flange 601 coincides with the outer wall size of the second flange 606. Through the arrangement of the mounting groove 604, during use, the mounting groove 604 provides necessary space for the installation of the sealing ring 605.
[0026] Further, the limiting groove 603 is symmetrically provided with respect to the central axis of the fixing groove 602, and the outer wall size of the sealing ring 605 matches the inner wall size of the mounting groove 604. Through the arrangement of the limiting groove 603, during use, the limiting groove 603 can fix the second flange 606 to one side of the first flange 601 through the cooperation with the limiting block 608.
[0027] Further, the outer wall dimensions of the limit block 608 match the inner wall dimensions of the limit groove 603. The limit block 608 is symmetrically installed with respect to the central axis of the fixed ring 607. Through the setting of the fixed ring 607, during use, the fixed ring 607 provides the necessary space for the installation of the limit block 608 and also simplifies the installation of the second flange 606.
[0028] Working principle: During use, the compressor 502 sucks the refrigerant into it and compresses it. The compressed refrigerant will become a high-temperature and high-pressure gas. Then, the high-temperature and high-pressure gas is sent to the condenser tube 503 for heat dissipation and cooling, and the temperature of the refrigerant is reduced by the fan 508 to become a liquid. Then, the liquid enters the expansion valve 505 through the first connecting tube 504 and becomes a gas. The refrigerant that has become a gas enters the evaporation tube 506. While the evaporation tube 506 releases cold air, it also absorbs the heat inside the centrifuge 3 to complete the cooling. Moreover, the refrigerant with an increased temperature is sent to the compressor 502 through the second connecting tube 507 for the next cycle. When L-carnitine is transported to the centrifuge 3 through the transport tube 2, the sealing ring can effectively avoid the problem of raw material leakage, and the limit block 608 and the limit groove 603 avoid the problem of the transport tube 2 falling off due to vibrations caused by long-term use.
[0029] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A processing system for L-carnitine, comprising a raw material tank (1)), characterized in that: On one side surface of the raw material tank (1), a transportation pipe (2) is installed. On one side surface of the transportation pipe (2), a centrifuge (3) is installed. On one side surface of the centrifuge (3), a display screen (4) is installed. On one side surface of the centrifuge (3), a cooling mechanism (5) is provided. On one side surface of the transportation pipe (2), a sealing mechanism (6) is provided. The cooling mechanism (5) includes a housing (501), a compressor (502), a condensing pipe (503), a first connecting pipe (504), an expansion valve (505), an evaporating pipe (506), a second connecting pipe (507), and a fan (508). The outer surface of the centrifuge (3) is fixedly connected to the housing (501). The inner surface of the housing (501) is installed with the compressor (502). One side surface of the compressor (502) is fixedly connected to the condensing pipe (503). One side surface of the condensing pipe (503) is fixedly connected to the first connecting pipe (504). One end surface of the first connecting pipe (504) is fixedly connected to the expansion valve (505). One end surface of the expansion valve (505) is fixedly connected to the evaporating pipe (506). One end surface of the evaporating pipe (506) is fixedly connected to the second connecting pipe (507). The inner surface of the housing (501) is fixedly connected to the fan (508).
2. The processing system for L-carnitine according to claim 1, characterized in that: One end surface of the first connecting pipe (504) is fixedly connected to the condensing pipe (503), and the other end surface of the first connecting pipe (504) is fixedly connected to the expansion valve (505).
3. The L-carnitine processing system according to claim 1, characterized in that: One end surface of the second connecting pipe (507) is fixedly connected to match the inner wall size of the expansion valve (505), and the other end surface of the second connecting pipe (507) is fixedly connected to the evaporating pipe (506).
4. A processing system for L-carnitine according to claim 1, characterized in that: The sealing mechanism (6) includes a first flange (601), a fixing groove (602), a limiting groove (603), a mounting groove (604), a sealing ring (605), a second flange (606), a fixing ring (607), and a limiting block (608). One end surface of the centrifuge (3) is installed with the first flange (601). One side surface of the first flange (601) is provided with the fixing groove (602). The inner surface of the fixing groove (602) is provided with the limiting groove (603). One side surface of the first flange (601) is provided with the mounting groove (604). The inner surface of the mounting groove (604) is fixedly connected to the sealing ring (605). One side surface of the transportation pipe (2) is installed with the second flange (606). One side surface of the second flange (606) is fixedly connected to the fixing ring (607). The outer surface of the fixing ring (607) is fixedly connected to the limiting block (608).
5. A processing system for L-carnitine according to claim 4, characterized in that: Both the fixing groove (602) and the mounting groove (604) are provided on one side surface of the first flange (601). The outer wall size of the first flange (601) is in line with the outer wall size of the second flange (606).
6. The processing system for L-carnitine according to claim 4, wherein: The limiting groove (603) is symmetrically opened with respect to the central axis of the fixing groove (602), and the outer wall dimensions of the sealing ring (605) match the inner wall dimensions of the installation groove (604).
7. A processing system for L-carnitine according to claim 4, characterized in that: The outer wall dimensions of the limiting block (608) match the inner wall dimensions of the limiting groove (603), and the limiting block (608) is symmetrically installed with respect to the central axis of the fixing ring (607).