Pressure stabilizing mechanism for caprylic / capric glyceride processing

By using a pressure-stabilizing mechanism consisting of a tank, a sealed container, and an adjusting frame during the processing of caprylic/capric glyceride, the reaction pressure can be adjusted in real time, thus solving the problem of pressure fluctuations during the processing of caprylic/capric glyceride and ensuring the stability of the reaction and the quality of the product.

CN223988467UActive Publication Date: 2026-03-13HUBEI CHUYI NEW MATERIAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-27
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Existing technologies make it difficult to stably control the reaction pressure during the processing of caprylic and capric glycerides, resulting in pressure fluctuations that affect the reaction results.

Method used

The pressure stabilizing mechanism consists of a tank, a sealed tank, an adjusting frame, and a pressure sensor. By adjusting the volume of the sealed cavity and the movement of the piston, combined with a motor drive system, it monitors and adjusts the reaction pressure in real time to maintain pressure stability.

Benefits of technology

Stable control of the reaction pressure was achieved, avoiding pressure fluctuations and ensuring the processing quality and efficiency of caprylic/capric glyceride.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a caprylic / capric glyceride processing pressure stabilizing mechanism which comprises a tank body, a connecting seat is arranged on the side surface of the tank body, a sealing tank is arranged at the top of the connecting seat, and the sealing tank is provided with an adjusting frame; a sealing cavity is formed in the sealing tank, connecting holes are formed in the tank body and the connecting seat, and the interior of the tank body is communicated with the sealing cavity through the connecting holes; the adjusting frame is used for adjusting the volume of the sealing cavity. The utility model provides a caprylic / capric glyceride processing pressure stabilizing mechanism which can be adjusted according to the pressure change condition in a reaction device so as to keep the stability of the internal pressure and avoid overlarge pressure change, thereby ensuring the stable proceeding of the reaction. The pressure in the reaction device can be adjusted as required, so that the adaptability is better, and the use is more convenient.
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Description

Technical Field

[0001] This utility model relates to the field of voltage stabilization technology in the processing of caprylic and capric glycerides, specifically to a voltage stabilization mechanism for the processing of caprylic and capric glycerides. Background Technology

[0002] Caprylic / capric triglyceride, also known as caprylic / capric triglyceride, is a high-purity oil esterified from caprylic / capric acid and glycerol. It is an excellent moisturizing oil with good spreadability, leaving the skin feeling smooth but not greasy. It is easily absorbed by the skin and plays a good role in the evenness and smoothness of cosmetics, making the skin smooth and shiny. Caprylic / capric triglyceride can be used as a base for moisturizing factors, a stabilizer in cosmetics, an antifreeze agent, and a homogenizer.

[0003] In the processing of caprylic and caprylic glycerides, coconut oil or palm kernel oil needs to be hydrolyzed into fatty acids and glycerol first, and then esterification is carried out. The caprylic and caprylic acids obtained from hydrolysis are esterified with glycerol. Then, the water produced by the esterification reaction is removed, and the dehydrated product is added to an emulsifier. Through the action of the emulsifier, it becomes an emulsion. Finally, the product is deacidified and decolorized to obtain the final product.

[0004] In the above reaction process, in order to ensure product quality, it is necessary to control the reaction temperature and reaction pressure.

[0005] Current technologies for pressure control typically rely on controlling the amount of reaction and pre-reaction pressure regulation. However, adjustments cannot be made during the reaction process. While this achieves some pressure control, the pressure cannot be kept constant, and fluctuations in the reaction chamber can negatively impact the reaction and cause inconvenience to the user. Utility Model Content

[0006] The main objective of this invention is to provide a pressure stabilizing mechanism for processing caprylic and capric glycerides, thereby solving the problem of inconvenient and unstable internal pressure control in the existing technology when processing caprylic and capric glycerides.

[0007] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0008] A pressure stabilizing mechanism for processing caprylic and caprylic glycerides includes a tank, a connecting seat on the side of the tank, a sealing tank on the top of the connecting seat, and an adjusting frame on the sealing tank.

[0009] The sealed container has a sealing cavity inside, and the container body and connecting seat have connecting holes. The inside of the container body is connected to the sealing cavity through the connecting holes.

[0010] The adjustment bracket is used to adjust the volume of the sealed cavity.

[0011] In the preferred embodiment, the connecting hole is angled;

[0012] The end of the connection hole near the connection seat is higher than the end near the tank body.

[0013] In a preferred embodiment, the adjusting frame includes a piston that is slidably disposed inside the sealed cavity, and a movable rod is provided on the top of the piston, extending to the top of the sealed container;

[0014] The movable rod is slidably connected to the sealed container.

[0015] In the preferred embodiment, the piston is fitted with a sealing ring.

[0016] In a preferred embodiment, the top of the sealed container is provided with an air vent.

[0017] In a preferred embodiment, the drive structure includes a fixed housing and a motor mount located on top of the sealed container;

[0018] The movable rod has a rack on its side, and a rotating shaft is rotatably connected inside the fixed housing. The rotating shaft has a worm gear and a gear, and the gear meshes with the rack.

[0019] The motor is mounted on the top of the motor base, and the output shaft of the motor is equipped with a worm gear that meshes with a worm wheel.

[0020] The shaft is fitted with a bearing.

[0021] In the preferred embodiment, a movable hole is provided inside the fixed shell, the movable hole is adapted to the movable rod, and the movable rod passes through the movable hole.

[0022] In a preferred embodiment, a pressure sensor is provided at the bottom of the connector;

[0023] The sensing end of the pressure sensor is located inside the sealed cavity.

[0024] This invention provides a voltage stabilizing mechanism for the processing of caprylic / capric glyceride. By adopting the above solution, the following beneficial effects are achieved:

[0025] 1. It can adjust according to the pressure changes inside the reaction device to maintain the stability of the internal pressure, avoid excessive pressure changes, and thus ensure the stable progress of the reaction.

[0026] 2. The internal pressure of the reaction device can be adjusted as needed, making it more adaptable and easier to use.

[0027] 3. Simple structure and easy to control. Attached Figure Description

[0028] The present invention will be further described below with reference to the accompanying drawings and embodiments:

[0029] Figure 1This is a schematic diagram of the installed structure of a voltage stabilizing mechanism for processing caprylic / capric glyceride according to this utility model;

[0030] Figure 2 This is a cross-sectional view of the glyceryl caprylate / capric acid processing pressure stabilizing mechanism after installation according to this utility model;

[0031] Figure 3 This is an enlarged structural schematic diagram of the connection of the voltage stabilizing mechanism for processing caprylic and capric glycerides according to this utility model;

[0032] Figure 4 This is a schematic diagram of the structure of a voltage stabilizing mechanism for processing caprylic / capric triglycerides according to this utility model;

[0033] Figure 5 This is a schematic diagram of the structure of a voltage stabilizing mechanism for processing caprylic / capric glyceride according to this utility model.

[0034] In the picture:

[0035] Tank body 1, connecting seat 2, connecting hole 201, sealed tank 3, vent 301, adjusting frame 4, sealing cavity 401, piston 402, moving rod 403, sealing ring 404, drive mechanism 5, fixed shell 501, motor seat 502, motor 503, rack 504, rotating shaft 505, gear 506, worm gear 507, worm 508, pressure sensor 6. Detailed Implementation

[0036] Example:

[0037] like Figure 1 and 2 As shown, a pressure stabilizing mechanism for processing caprylic / capric glyceride includes a tank 1. The tank 1 refers to the reaction device tank used in the existing processing of caprylic / capric glyceride. Its specific structure is not modified in this application, and it is assumed to include all necessary structures, such as inlet and outlet pipes, mixing structure and heating structure, etc., which will not be described in detail in this application.

[0038] The side of the tank body 1 is provided with a connecting seat 2, the top of the connecting seat 2 is provided with a sealing tank 3, and the sealing tank 3 is provided with an adjusting bracket 4;

[0039] The sealed container 3 is provided with a sealed cavity 401, and the container body 1 and the connecting seat 2 are provided with a connecting hole 201. The interior of the container body 1 is connected to the sealed cavity 401 through the connecting hole 201.

[0040] The adjustment bracket 4 is used to adjust the volume of the sealing cavity 401.

[0041] During use, the internal cavity of the tank 1 is connected to the sealed cavity 401. The overall volume can be changed by adjusting the volume of the sealed cavity 401 through the adjusting frame 4, thereby adjusting the internal pressure to adapt to different reaction pressure requirements, which has better adaptability; and it is also convenient to maintain pressure stability, which is beneficial to the processing of caprylic and capric glycerides.

[0042] In the preferred embodiment, the connecting hole 201 is inclined;

[0043] The end of the connecting hole 201 near the connecting seat 2 is higher than the end near the tank body 1;

[0044] This prevents the product inside tank 1 from accumulating in the sealed cavity 401.

[0045] During the setting of the glyceryl caprylate / capric acid processing pressure stabilizing mechanism in this application, it is necessary to ensure that the liquid level of the reaction product is not higher than the connection hole 201.

[0046] In the preferred scheme, such as Figure 1 , 2 As shown in Figures 3, 4 and 5, the adjusting frame 4 includes a piston 402 that is slidably disposed inside the sealing cavity 401. The piston 402 has a movable rod 403 on its top, and the movable rod 403 extends to the top of the sealing tank 3.

[0047] The movable rod 403 is slidably connected to the sealed container 3.

[0048] In the preferred embodiment, the piston 402 is fitted with a sealing ring 404.

[0049] When in use, the space below piston 402 is connected to the internal space of tank 1. After the internal space of tank 1 is sealed, the space below piston 402 is also sealed. At this time, moving piston 402 up and down can change the space and thus change the internal pressure.

[0050] In a preferred embodiment, the top of the sealed container 3 is provided with an air vent 301, which prevents the area above the piston 402 from being sealed, thereby ensuring that the piston 402 is not affected by the space above when it is in motion.

[0051] Before use, piston 402 is in the middle of its stroke. Depending on the reaction requirements, if the gas pressure will increase during the reaction, piston 402 will move closer to the lower part of its stroke; if the gas pressure will decrease during the reaction, piston 402 will move closer to the upper part of its stroke.

[0052] In a further embodiment, such as Figure 1 , 2 As shown in Figures 3, 4 and 5, the drive structure 5 includes a fixed shell 501 and a motor base 502 located on the top of the sealed container 3.

[0053] The movable rod 403 has a rack 504 on its side, and a rotating shaft 505 is rotatably connected inside the fixed housing 501. The rotating shaft 505 is equipped with a worm gear and a gear 506, and the gear 506 meshes with the rack 504.

[0054] A motor 503 is mounted on the top of the motor base 502. The output shaft of the motor 503 is equipped with a worm gear 508, which meshes with a worm wheel 507. The motor 503 is preferably a stepper motor, which is connected and controlled in an existing manner.

[0055] The shaft 505 is fitted with a bearing on its outer sleeve.

[0056] When adjustment is required, the motor 503 drives the worm gear 508 to rotate, which in turn drives the worm wheel 507 to rotate, thereby driving the rotating shaft 505 and the gear 506 to rotate, which in turn drives the rack 504 to slide up and down, and finally drives the movable rod 403 and the piston 402 to slide up and down to complete the pressure adjustment. The operation is simple and easy to adjust.

[0057] In a preferred embodiment, a movable hole is provided inside the fixed shell 501, which is adapted to the movable rod 403, and the movable rod 403 passes through the movable hole; the movable hole guides the sliding of the movable rod 403.

[0058] In a further embodiment, such as Figure 1 , 2 As shown in Figures 3, 4 and 5, a pressure sensor 6 is provided at the bottom of the connector 2;

[0059] The detection end of pressure sensor 6 is located inside the sealed cavity 401.

[0060] The pressure sensor 6 is preferably a pneumatic pressure sensor, which is detected and controlled using existing methods. During use, the internal air pressure of the sealed cavity 401 is monitored in real time. The value detected by the pressure sensor 6 is transmitted to the control unit. The control unit receives the pressure signal. When the air pressure is in the expected state, the motor 503 does not work. When the air pressure is greater than or less than the rated air pressure, the control unit controls the motor 503 to work, driving the piston 402 to slide up or down until the air pressure is in the expected state.

[0061] The expected air pressure state can be set according to actual needs. Pressure sensor 6 and motor 503 are both connected to the control unit. The control unit can be the existing control unit, and the existing method can be used to receive and transmit control signals.

[0062] This application is mainly used for the processing of caprylic and capric glycerides, but is not limited to the processing of caprylic and capric glycerides. The processing of caprylic and capric glycerides should not be construed as a limitation of this application.

[0063] The above embodiments are merely preferred technical solutions of this utility model and should not be considered as limitations on this utility model. The protection scope of this utility model should be the technical solution described in the claims, including equivalent substitutions of the technical features described in the claims. That is, equivalent substitutions and improvements within this scope are also within the protection scope of this utility model.

Claims

1. A caprylic capric glyceride processing stabilizer mechanism comprising a tank body (1), characterized in that: The side of the tank body (1) is provided with a connecting seat (2), the top of the connecting seat (2) is provided with a sealing tank (3), and the sealing tank (3) is provided with an adjusting frame (4); The sealing tank (3) is provided with a sealing cavity (401), the tank body (1) and the connecting seat (2) are provided with a connecting hole (201), and the inside of the tank body (1) is communicated with the sealing cavity (401) through the connecting hole (201); The adjusting frame (4) is used for adjusting the volume of the sealing cavity (401).

2. The caprylic capric acid glyceride processing pressure stabilizing mechanism according to claim 1, characterized by: The connecting hole (201) is inclinedly arranged; One end of the connecting hole (201) close to the connecting seat (2) is higher than the other end close to the tank body (1).

3. The caprylic capric acid glyceride processing pressure stabilizing mechanism according to claim 1, characterized by: The adjusting frame (4) comprises a piston (402) slidably arranged in the inside of the sealing cavity (401), the top of the piston (402) is provided with a movable rod (403), and the movable rod (403) extends above the sealing tank (3); The movable rod (403) is slidably connected with the sealing tank (3).

4. The caprylic capric acid glyceride processing pressure stabilizing mechanism according to claim 3, characterized by: The piston (402) is sleeved with a sealing ring (404).

5. The caprylic capric acid glyceride processing pressure stabilizing mechanism according to claim 1, characterized by: The top of the sealing tank (3) is provided with an air outlet (301).

6. The caprylic capric acid glyceride processing pressure stabilizing mechanism according to claim 3, characterized by: The driving structure (5) comprises a fixed shell (501) and a motor base (502) arranged at the top of the sealing tank (3); The side of the movable rod (403) is provided with a rack (504), the fixed shell (501) is rotatably connected with a rotating shaft (505), the rotating shaft (505) is provided with a worm gear and a gear (506), and the gear (506) is engaged with the rack (504); The top of the motor base (502) is provided with a motor (503), the output shaft of the motor (503) is provided with a worm (508), and the worm (508) is engaged with the worm gear (507); The outside of the rotating shaft (505) is sleeved with a bearing.

7. The caprylic capric acid glyceride process pressure stabilizing mechanism according to claim 6, characterized by: The fixed shell (501) is provided with a movable hole, the movable hole is matched with the movable rod (403), and the movable rod (403) passes through the movable hole.

8. The caprylocaproyl glycerides process pressure stabilizing mechanism according to any one of claims 1 to 7, characterized by: The bottom of the connecting seat (2) is provided with a pressure sensor (6); The detection end of the pressure sensor (6) is located in the sealing cavity (401).