Equipment for inclusion of volatile components

Through the reflow design of the suction part and condensation system in the tank body and combined with the disturbance component, the problems of water vapor pressure increase and vortex current are solved, the material concentration is stable and the mixing is uniform, and the encapsulation efficiency and effect of volatile components are improved.

CN120479345APending Publication Date: 2025-08-15BEIJING HUAMIAO TRADITIONAL CHINESE MEDICINE ENG TECH DEV CENT
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Patent Information

Application Number
CN202510658512.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

During the heating process, moisture evaporation of existing equipment causes the air pressure to increase, which poses safety risks and affects the quality of finished products. It is difficult for existing equipment to effectively break the material vortex current and affect the mixing uniformity.

Method used

The suction part and condensation system reflow design in the tank body are adopted, combined with the disturbance component to break the vortex current, and the heating is accurately controlled by the agitator and the electric heating wire to ensure the stability of the material concentration, and the disturbance component is used to create up and down flow power to achieve three-dimensional mixing.

Benefits of technology

Effectively control the water vapor pressure, maintain the stability of material concentration, improve mixing uniformity and enclosure efficiency, and significantly improve the enclosure effect of volatile components.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides equipment for inclusion of volatile components, and relates to the field of medicine, food and cosmetic equipment. Comprising a tank body, a feeding port, a motor, a speed reducer, a stirrer, a bracket and a suction part, the feeding opening is formed in the eccentric position of the top end of the tank body; the speed reducer is mounted in the center of the top end of the tank body; the motor is mounted on the speed reducer, and the output end of the motor is connected with the input end of the speed reducer; and the stirrer is rotationally mounted in the tank body. The rotating speed can be adjusted as required when materials are stirred and clathrated, and the electric heating wire is used for accurate heating; water vapor can be automatically sucked out and condensed, and condensed water flows back as required to maintain the stable concentration of materials; the vortex flow formed by material circumferential flowing can be effectively broken through, the mixing uniformity is improved, the limitation of material horizontal circumferential movement is broken through, the up-down flow power and multi-structure synergistic effect is achieved, and the efficiency and effect of volatile component inclusion are remarkably improved.
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Description

Technical Field

[0001] The present invention relates to the field of medicine and food equipment, and in particular to equipment for inclusion of volatile components. Background Art

[0002] Volatile oils, also known as essential oils, are widely distributed in plant-derived traditional Chinese medicines. In my country, volatile oils are known to be found in 56 families and 136 genera of plants. These oils possess a wide range of pharmacological effects, including antitussive, antiasthmatic, antibacterial, anti-inflammatory, disinfectant, expectorant, carminative, spleen-tonifying, antispasmodic, antipyretic, analgesic, insecticide, anticancer, cardiotonic, antihypertensive, diuretic, antiallergic, antimutagenic, and antioxidant properties. They are widely used for disease prevention and treatment. Cinnamon oil is the primary active ingredient in the traditional Chinese medicine cassia twig. Due to its high volatility and instability in light, heat, and humidity, cinnamon oil requires stabilization through inclusion complexation with β-cyclodextrin (β-CD) to reduce volatility, increase stability, and convert the oil into a solid powder, facilitating its preparation in a variety of dosage forms and enhancing efficacy. Therefore, the use of mixing and inclusion complexation equipment is a common method for inclusion complexation of these raw materials.

[0003] The equipment currently used is usually a vertical encapsulation tank made of stainless steel 304 with a capacity of no less than 200L, equipped with heating and insulation equipment, and uses mechanical stirring to perform encapsulation operations.

[0004] The equipment currently used will accelerate the evaporation of water during the heating process, so the air pressure in the tank will gradually increase. If it is not discharged in time, there will be certain safety hazards. Moreover, as the water vapor evaporates and is discharged, the concentration of the raw materials will gradually change, affecting the quality of the finished product.

[0005] Based on this, the present invention is proposed. Summary of the Invention

[0006] According to an embodiment of the present invention, a device for inclusion of volatile components is provided to solve the problems of the existing background.

[0007] In a first aspect of the present invention, an apparatus for inclusion of volatile components is provided.

[0008] The equipment for encapsulating volatile components comprises: a tank body, a feeding port, a motor, a reducer, a stirrer, a bracket and a suction part;

[0009] The feeding port is installed at an eccentric position at the top of the tank body; the reducer is installed at the center of the top of the tank body; the motor is installed on the reducer, and the output end of the motor is connected to the input end of the reducer; the agitator is rotatably installed in the tank body, and the top of the agitator is connected to the output end of the reducer; the bracket is installed on the side of the tank body; the suction part is installed on the top of the bracket, and the suction part is controlled to suck the gas on the inner wall of the tank body.

[0010] Preferably, the suction part includes: a suction cylinder, a connecting port, a piston, a push rod, a suction chamber, an air outlet, a push plate and an electric push rod;

[0011] The suction cylinder is installed on the top of the bracket; the connecting port is installed on the side of the suction cylinder facing the tank body; the piston is movably installed in the suction cylinder, and the piston is in contact with the inner wall of the suction cylinder; one end of the push rod is connected to the piston, and the other end of the push rod extends out of the outer wall of the suction cylinder; the space between the piston and the connecting port forms a suction chamber; an air outlet is provided on the side of the top of the suction cylinder away from the connecting port; the push plate is installed on the end of the push rod away from the piston; the electric push rod is installed at the bottom of the suction cylinder, and the output end of the electric push rod is connected to the push plate.

[0012] Preferably, it further comprises: an air outlet pipe, a water return pipe, a water storage tank, a return pipe, an electric valve, a water tank, a water pump, a pumping pipe and a condenser pipe;

[0013] The air outlet pipe is installed between the connecting port and the tank body; one end of the return water pipe is connected to the air outlet; the water storage barrel is installed in the bracket, and the other end of the return water pipe is connected to the water storage barrel; the return pipe is installed between the water storage barrel and the tank body; the return water pipe and the return pipe are respectively equipped with electric valves; the water tank is installed in the bracket; the water pump is installed in the bracket, and the input end of the water pump is connected to the water tank; one end of the pumping pipe is installed at the output end of the water pump; one end of the condenser is connected to the other end of the pumping pipe, and the other end of the condenser is connected to the water tank, and the condenser is spirally wound on the return water pipe.

[0014] Preferably, the return pipe is arranged to be inclined downward toward the tank body.

[0015] Preferably, it further comprises: a heat preservation sleeve, a heating wire and a discharge pipe;

[0016] The heat preservation sleeve is installed outside the tank body; the heating wire is installed between the tank body and the heat preservation sleeve, and the heating wire is spirally wound around the outer wall of the tank body; the discharge pipe is installed at an eccentric position at the bottom of the tank body.

[0017] Preferably, a disturbance component is installed in the tank body, and the disturbance component can disturb the vortex flow formed in the tank body.

[0018] Preferably, the disturbance assembly comprises: a cylinder, a first spoiler and a second spoiler;

[0019] The cylinder is installed in the tank body; there are a plurality of first spoilers and a plurality of second spoilers, which are respectively installed on the inner wall of the cylinder in a vertical direction, and the plurality of first spoilers and the second spoilers are respectively inclined and in opposite directions.

[0020] Preferably, the disturbance assembly further comprises: a connecting frame, a sleeve, a driving groove, a driving rod, a limiting groove and a limiting block;

[0021] The connecting frame is installed on the top of the cylinder; the sleeve is installed at the center position of the connecting frame, and the agitator passes through the sleeve; the driving groove is opened on the inner wall of the sleeve; the driving rod is installed on the agitator, and the driving rod is slidably installed in the driving groove; the limiting groove is opened on the outer wall of the cylinder; the limiting block is installed on the inner wall of the tank, and the limiting block is slidably installed in the limiting groove.

[0022] Preferably, the driving groove includes: a lifting groove, a first turning groove, a reset groove and a second turning groove; the lifting groove, the first turning groove, the reset groove and the second turning groove are arranged to be interconnected.

[0023] One or more technical solutions provided in this application have at least the following technical effects or advantages:

[0024] 1. The present invention provides a device for inclusion of volatile components. The device can achieve mixing and inclusion of materials in a tank by rotating an agitator. At the same time, the speed can be adjusted according to demand by controlling a reducer, and heating can be achieved by using an electric heating wire to accurately control the inclusion process.

[0025] 2. The suction part of the present invention can suck out the water vapor in the tank body according to actual needs, and use the coolant to condense the water vapor, and store the condensed water in the water storage barrel. It can also return the condensed water to the tank body according to usage needs to avoid changes in the concentration of the material in the tank body due to excessive evaporation of water.

[0026] 3. The first and second spoilers in the disturbance assembly of the present invention can disturb the circularly flowing material, avoid the generation of vortex flow, increase the disorder of the material, and thus ensure that the stirring and inclusion work is fully carried out. At the same time, the first and second spoilers are tilted in opposite directions, and can produce an effect regardless of clockwise or counterclockwise stirring.

[0027] 4. The cylinder in the disturbance assembly of the present invention can move up and down while the agitator rotates. Its up and down movement can break the horizontal circular motion state of the material in the tank, create a flow force in the up and down direction, and make the material contact and collide more fully.

[0028] In summary, the present invention can adjust the rotation speed as needed when the materials are stirred and encapsulated, and use electric heating wires for precise heating; it can automatically absorb and condense water vapor, and reflux the condensed water as needed to maintain a stable material concentration; it can effectively break the vortex flow formed by the circular flow of the material, increase the degree of chaos, and break the limitations of the horizontal circular motion of the material, create upward and downward flow dynamics, and the synergistic effect of multiple structures can significantly improve the efficiency and effect of the encapsulation of volatile oil components.

[0029] It should be understood that the contents described in the summary of the invention are not intended to limit the key or important features of the embodiments of the present invention, nor are they intended to limit the scope of the present invention. Other features of the present invention will become readily understood through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] The above and other features, advantages and aspects of the embodiments of the present invention will become more apparent with reference to the following detailed description in conjunction with the accompanying drawings. In the accompanying drawings, the same or similar reference numerals represent the same or similar elements, wherein:

[0031] Figure 1 A schematic structural diagram of a device for condensing volatile components according to an embodiment of the present invention is shown;

[0032] Figure 2 A schematic structural diagram of a suction portion of a device for condensing volatile components according to an embodiment of the present invention is shown;

[0033] Figure 3 A cross-sectional view of a suction portion of a device for condensation of volatile components according to an embodiment of the present invention is shown;

[0034] Figure 4 A cross-sectional view of a tank body of a device for volatile component inclusion according to an embodiment of the present invention is shown;

[0035] Figure 5 A schematic diagram of the explosion structure of a tank body of a device for volatile component inclusion according to an embodiment of the present invention is shown;

[0036] Figure 6 A schematic structural diagram of a device for volatile component inclusion according to an embodiment of the present invention is shown;

[0037] Figure 7 A top cross-sectional view of a tank body of a device for volatile component inclusion according to an embodiment of the present invention is shown;

[0038] Figure 8 An enlarged view of point A of a device for inclusion of volatile components according to an embodiment of the present invention is shown;

[0039] Figure 9 A schematic diagram of the inner wall expansion of a sleeve of a device for encapsulation of volatile components according to an embodiment of the present invention is shown.

[0040] The reference numerals are as follows:

[0041] 1. Tank; 2. Feeding port; 3. Motor; 4. Reducer; 5. Agitator; 6. Bracket; 7. Suction unit; 71. Suction cylinder; 72. Connecting port; 73. Piston; 74. Push rod; 75. Suction chamber; 76. Air outlet; 77. Push plate; 78. Electric push rod; 8. Air outlet pipe; 9. Return pipe; 10. Water storage tank; 11. Return pipe; 12. Electric valve; 13. Water tank; 14. Water pump; 15. Pumping pipe; 16. , condenser; 17, insulation sleeve; 18, heating wire; 19, discharge pipe; 20, disturbance component; 201, cylinder; 202, first spoiler; 203, second spoiler; 204, connecting frame; 205, sleeve; 206, drive groove; 2061, lifting groove; 2062, first turning groove; 2063, reset groove; 2064, second turning groove; 207, drive rod; 208, limit groove; 209, limit block. DETAILED DESCRIPTION

[0042] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0043] In this document, the term "and / or" simply describes a relationship between related objects, indicating that three possible relationships exist. For example, "A and / or B" can represent: A exists alone, A and B exist simultaneously, or B exists alone. Furthermore, the character " / " in this document generally indicates that the related objects are in an "or" relationship.

[0044] like Figure 1 and Figure 4As shown, the device for encapsulating volatile components, particularly volatile oils or aromatic waters, comprises a tank body 1, a feeding port 2, a motor 3, a reducer 4, an agitator 5, an insulation jacket 17, a heating wire 18, and a discharge pipe 19. The tank body 1 is a cylindrical hollow structure made of metal and has excellent strength, corrosion resistance, and thermal conductivity. Among them, the tank body 1 is equipped with a frequency converter, an observation port (visual window) and a pressure relief safety valve. The above structures are all existing equipment, and a general model can be selected. The frequency converter is located at the top of the tank body 1 and is electrically connected to the motor 3. The frequency converter is an electric power control device that controls the AC motor by changing the frequency of the motor's working power supply. It can control the motor 3 according to demand. The observation port (visual window) is installed at the eccentric position of the top of the tank body for observing the internal conditions of the tank body 1; the pressure relief safety valve is located at the eccentric position of the top of the tank body. The maximum pressure value is preset before use. When the pressure in the tank body 1 rises above the specified value, the gas is discharged to the outside to prevent the pressure in the tank body 1 from exceeding the specified value. The feeding port 2 is installed at the eccentric position of the top of the tank body 1. A threaded top cover is installed on the top of the feeding port 2. Rotating the top cover can realize the opening and closing of the feeding port 2. When it is opened, volatile oil, aromatic water, encapsulation material and other materials can be smoothly put into the tank body 1. A reducer 4 is mounted at the top center of the tank body 1. A motor 3 is mounted on the reducer 4, with the output of the motor 3 connected to the input of the reducer 4. A stirrer 5 is rotatably mounted within the tank body 1, with the top of the stirrer 5 connected to the output of the reducer 4. The stirrer 5 comprises a main shaft and a stirring paddle, each provided with a plurality of through-holes. The through-holes allow the material to pass through, preventing damage to the stirring paddle due to excessive force during stirring. When the motor 3 is turned on, the stirrer 5 is driven to rotate under the control of the reducer 4, stirring and mixing the material within the tank body 1. The speed of the stirrer 5 can also be controlled by the control of the reducer 4. An insulation sleeve 17 is mounted outside the tank body 1. The insulation sleeve 17 is made of polyurethane foam and has excellent heat insulation capabilities. A heating wire 18 is mounted between the tank body 1 and the insulation sleeve 17, and the heating wire 18 is spirally wound around the outer wall of the tank body 1. When the heating wire 18 is energized, it heats up and can heat the tank body 1, i.e., the material within it. The discharge pipe 19 is installed at an eccentric position at the bottom of the tank body 1 . An electric valve 12 is installed on the discharge pipe 19 . Opening the electric valve 12 can open the passage of the discharge pipe 19 and discharge the material in the tank body 1 .

[0045] refer to Figure 1 、 Figure 2 and Figure 3As shown, the device for encapsulating volatile components also includes: a bracket 6, a suction part 7, an air outlet pipe 8, a return pipe 9, a water storage tank 10, a return pipe 11, a water tank 13, a water pump 14, a pumping pipe 15 and a condenser 16. The bracket 6 is installed on the side of the tank body 1. The suction part 7 is installed on the top of the bracket 6, and the suction part 7 is controlled to suck the gas on the inner wall of the tank body 1. The suction part 7 includes: a suction cylinder 71, a connecting port 72, a piston 73, a push rod 74, a suction chamber 75, an air outlet 76, a push plate 77 and an electric push rod 78. The suction cylinder 71 is installed on the top of the bracket 6. The connecting port 72 is installed on the side of the suction cylinder 71 facing the tank body 1, and the air outlet pipe 8 is installed between the connecting port 72 and the tank body 1. The water vapor in the tank body 1 can enter the air outlet cylinder 71 through the air outlet pipe 8. Piston 73 is movably mounted within suction cylinder 71, fitting snugly against the inner wall of suction cylinder 71. Made of rubber, piston 73 slides within suction cylinder 71 and ensures a tight seal. One end of push rod 74 is connected to piston 73, while the other end extends beyond the outer wall of suction cylinder 71. Pulling push rod 74 moves piston 73. The space between piston 73 and connection port 72 forms suction chamber 75, into which water vapor enters through exhaust pipe 8. Movement of piston 73 changes the volume of suction chamber 75. An exhaust port 76 is provided on the top of suction cylinder 71, away from connection port 72. One end of return pipe 9 is connected to exhaust port 76. A push plate 77 is mounted on the end of push rod 74 away from piston 73. An electric push rod 78 is mounted at the bottom of suction cylinder 71. The output end of electric push rod 78 is connected to push plate 77, and turning on electric push rod 78 causes push plate 77 to move. A water storage barrel 10 is mounted in the bracket 6, and the other end of the return pipe 9 is connected to the water storage barrel 10. The water storage barrel 10 is used to collect condensed water after liquefaction. A return pipe 11 is mounted between the water storage barrel 10 and the tank body 1. The return pipe 11 is tilted downward toward the tank body 1 to control the direction of water flow using gravity. The return pipe 9 and the return pipe 11 are respectively equipped with electric valves 12. Opening the electric valves 12 can control the opening or closing of the passages of the return pipe 9 and the return pipe 11. A water tank 13 is mounted in the bracket 6, and the water tank 13 is filled with coolant. A water pump 14 is mounted in the bracket 6, and the input end of the water pump 14 is connected to the water tank 13. One end of the pumping pipe 15 is mounted on the output end of the water pump 14. One end of the condenser 16 is connected to the other end of the pumping pipe 15, and the other end of the condenser 16 is connected to the water tank 13, and the condenser 16 is spirally wound on the return pipe 9. The spiral winding method can increase the contact area between the condenser 16 and the return pipe 9 and improve the condensation efficiency.

[0046] The specific working principle of the above structure is as follows: the aromatic water of Ling Gui Shu Gan granules is added to the tank body 1 through the feeding port 2, the external power supply is connected to the electric heating wire 18 to heat the aromatic water of Ling Gui Shu Gan granules in the tank body 1 to 55°C, and then β-cyclodextrin is added to the tank body 1, with the mass ratio of β-cyclodextrin to aromatic water being 1:10, and then the feeding port 2 is closed. The motor 3 is turned on to drive the stirrer 5 to stir and encapsulate the materials. The speed of the stirrer 5 is controlled by the reducer 4 to ensure that it rotates at 1008-1152 r / min, and the stirring and encapsulation time is 4 hours. During this period, due to the heating work, the water in the material will evaporate and the internal pressure of the tank body 1 will increase. After a period of work, the electric push rod 78 is turned on to move the push plate 77, thereby moving the push rod 74 and the piston 73 away from the direction of the connection port 72. At this time, water vapor enters the suction chamber 75. When the piston 73 moves to the left side of the air outlet 76, the water vapor enters the return pipe 9. During this period, the water pump 14 is turned on to pump the coolant in the water tank 13 into the pumping pipe 15 and the condenser pipe 16, and finally back to the water tank 13. This process will condense the water vapor in the return pipe 9 into liquid water, which enters the water storage barrel 10. By controlling the opening and closing of the electric valve 12, the condensed water is returned to the tank body 1 through the return pipe 11, avoiding the concentration change of the raw material due to water evaporation. It is worth noting that in this solution, the coolant in the condenser pipe 16 flows from bottom to top to ensure sufficient condensation.

[0047] In actual work, when the stirrer 5 rotates to stir and enclose, it is easy to cause the raw materials to generate vortex flow, which affects the efficiency and adequacy of the enclosed work. In order to solve this problem, the following solution is proposed: Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 and Figure 9 A disturbance assembly 20 is installed in the tank body 1. The disturbance assembly 20 is capable of disturbing the vortex flow formed in the tank body 1. The disturbance assembly 20 includes: a cylinder 201, a first spoiler 202, a second spoiler 203, a connecting frame 204, a sleeve 205, a driving groove 206, a driving rod 207, a limiting groove 208, and a limiting block 209.

[0048] The cylinder 201 is installed in the tank body 1. There are a plurality of first spoilers 202 and second spoilers 203, which are respectively installed on the inner wall of the cylinder 201 in the vertical direction. The plurality of first spoilers 202 and second spoilers 203 are respectively tilted and tilted in opposite directions. When the agitator 5 in the tank body 1 is running to generate a vortex flow, when the vortex flow contacts the spoiler in the opposite direction of rotation of the vortex flow during the process of moving into the cylinder 201, the spoiler will have an obstructive effect on the vortex flow, thereby breaking up the vortex flow and effectively suppressing the continuous formation and development of the vortex flow. The connecting frame 204 is installed at the top of the cylinder 201, and the sleeve 205 is installed at the center of the connecting frame 204, and the main shaft of the agitator 5 passes through the sleeve 205. The drive groove 206 is formed on the inner wall of the sleeve 205 and includes a lifting groove 2061, a first turning groove 2062, a reset groove 2063, and a second turning groove 2064. The lifting groove 2061, the first turning groove 2062, the reset groove 2063, and the second turning groove 2064 are interconnected, and there is a height difference between the first turning groove 2062 and the second turning groove 2064. A drive rod 207 is mounted on the main shaft of the agitator 5 and is slidably mounted in the drive groove 206. When the agitator 5 rotates, the drive rod 207 acts on the drive groove 206 to move the sleeve 205 up and down, thereby driving the cylinder 201 to move up and down. The limiting groove 208 is opened on the outer wall of the cylinder 201, the limiting block 209 is installed on the inner wall of the tank body 1, and the limiting block 209 is slidably installed in the limiting groove 208. The cooperation between the limiting block 209 and the limiting groove 208 ensures that the cylinder 201 can only move up and down, and will not rotate relative to the tank body 1.

[0049] The specific working principle of this structure is as follows: With the cooperation of the limit block 209 and the limit groove 208, the cylinder 201 is restricted in the tank body 1 and cannot rotate. When the agitator 5 is started and stirs the material in the tank body 1, the drive rod 207 will slide in it according to the trajectory of the drive groove 206. As the agitator 5 continues to rotate, the drive rod 207 slides from the second turning groove 2064 into the lifting groove 2061. Due to the guiding effect of the groove, the sleeve 205 will gradually move downward; when the drive rod 207 enters the first turning groove 2062, the sleeve 205 drops to the lowest position. At this time, the drive rod 207 continues to rotate and enters the reset groove 2063. Using the guidance of the reset groove 2063 and the rotational inertia of the agitator 5, the sleeve 205 gradually resets upward after being subjected to the force of the drive rod 207. The drive rod 207 returns to its initial position, and this cycle is repeated, realizing the reciprocating movement of the cylinder 201 in the up and down directions. During the stirring and inclusion process, the up-and-down reciprocating motion of the cylinder 201 disrupts the horizontally-only circular motion of the material within the tank 1, generating a vertical flow force. This vertical flow force is superimposed on the horizontal stirring force generated by the agitator 5 to form a three-dimensional material flow pattern. According to the principles of fluid mechanics, under a three-dimensional flow state, the contact area and frequency between materials increase significantly, enabling β-cyclodextrin to more fully contact and collide with materials such as volatile oils or aromatic waters, thereby significantly increasing the rate and extent of the inclusion reaction and improving the inclusion efficiency. In addition, while the stirring and inclusion process is in progress, the material undergoes a circular motion under the agitation of the agitator 5. When the circularly moving material contacts the first spoiler 202 or the second spoiler 203, which is tilted in the opposite direction of rotation, the spoiler generates reverse resistance to the material. This resistance changes the direction and speed of the material's motion, breaking up the originally regular vortex flow. After the vortex flow is broken up, the material no longer forms a localized high-speed rotating area, but is mixed in a more uniform and chaotic manner. This mixing method avoids the problem of insufficient mixing of materials in the center area of the vortex flow due to too low a flow rate, further improves the mixing uniformity of the materials, and provides more favorable conditions for the full inclusion of β-cyclodextrin with volatile oil or aromatic water.

[0050] The above specific embodiments do not limit the scope of protection of the present invention. Those skilled in the art will appreciate that various modifications, combinations, sub-combinations, and substitutions may be made based on design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention are intended to be included within the scope of protection of the present invention.

Claims

1. A device for inclusion of volatile components, characterized in that: include: A tank body (1), a feeding port (2), a motor (3), a reducer (4), a stirrer (5), a bracket (6) and a suction part (7); The feeding port (2) is installed at an eccentric position at the top of the tank body (1); the reducer (4) is installed at the center of the top of the tank body (1); the motor (3) is installed on the reducer (4), and the output end of the motor (3) is connected to the input end of the reducer (4); the stirrer (5) is rotatably installed in the tank body (1), and the top end of the stirrer (5) is connected to the output end of the reducer (4); the bracket (6) is installed on the side of the tank body (1); the suction part (7) is installed on the top of the bracket (6), and the suction part (7) is controlled to suck the gas on the inner wall of the tank body (1).

2. The device for inclusion of volatile components according to claim 1, characterized in that: The suction part (7) comprises: a suction cylinder (71), a connecting port (72), a piston (73), a push rod (74), a suction chamber (75), an air outlet (76), a push plate (77) and an electric push rod (78); The suction cylinder (71) is mounted on the top of the bracket (6); the connecting port (72) is mounted on the side of the suction cylinder (71) facing the tank body (1); the piston (73) is movably mounted in the suction cylinder (71), and the piston (73) is in contact with the inner wall of the suction cylinder (71); one end of the push rod (74) is connected to the piston (73), and the other end of the push rod (74) extends out of the outer wall of the suction cylinder (71); the space between the piston (73) and the connecting port (72) forms a suction chamber (75); an air outlet (76) is provided on the side of the top of the suction cylinder (71) away from the connecting port (72); the push plate (77) is mounted on the end of the push rod (74) away from the piston (73); the electric push rod (78) is mounted on the bottom of the suction cylinder (71), and the output end of the electric push rod (78) is connected to the push plate (77).

3. The device for inclusion of volatile components according to claim 2, characterized in that: It also includes: an air outlet pipe (8), a water return pipe (9), a water storage tank (10), a return pipe (11), an electric valve (12), a water tank (13), a water pump (14), a pumping pipe (15) and a condenser (16); The air outlet pipe (8) is installed between the connecting port (72) and the tank body (1); one end of the water return pipe (9) is connected to the air outlet (76); the water storage barrel (10) is installed in the bracket (6), and the other end of the water return pipe (9) is connected to the water storage barrel (10); the return pipe (11) is installed between the water storage barrel (10) and the tank body (1); the return pipe (9) and the return pipe (11) are respectively installed with electric valves (12); the water tank (13) is installed in the bracket (6); the water pump (14) is installed in the bracket (6), and the input end of the water pump (14) is connected to the water tank (13); one end of the pumping pipe (15) is installed at the output end of the water pump (14); one end of the condensing pipe (16) is connected to the other end of the pumping pipe (15), and the other end of the condensing pipe (16) is connected to the water tank (13), and the condensing pipe (16) is spirally wound on the return pipe (9).

4. The device for inclusion of volatile components according to claim 3, characterized in that: The return pipe (11) is arranged to be tilted downwards towards the tank body (1).

5. The device for inclusion of volatile components according to any one of claims 1 to 4, characterized in that: Also includes: Insulation sleeve (17), heating wire (18) and discharge pipe (19); The heat-insulating sleeve (17) is installed outside the tank body (1); the heating wire (18) is installed between the tank body (1) and the heat-insulating sleeve (17), and the heating wire (18) is spirally wound around the outer wall of the tank body (1); and the discharge pipe (19) is installed at an eccentric position at the bottom of the tank body (1).

6. The device for inclusion of volatile components according to claim 5, characterized in that A disturbance component (20) is installed in the tank body (1), and the disturbance component (20) is capable of disturbing the vortex flow formed in the tank body (1).

7. The device for inclusion of volatile components according to claim 6, characterized in that The disturbance assembly (20) comprises: a cylinder (201), a first spoiler (202) and a second spoiler (203); The cylinder (201) is installed in the tank (1); there are a plurality of first spoilers (202) and second spoilers (203), which are respectively installed on the inner wall of the cylinder (201) in a vertical direction, and the plurality of first spoilers (202) and second spoilers (203) are respectively tilted and tilted in opposite directions.

8. The device for inclusion of volatile components according to claim 7, characterized in that: The disturbance assembly (20) further comprises: a connecting frame (204), a sleeve (205), a driving slot (206), a driving rod (207), a limiting slot (208) and a limiting block (209); The connecting frame (204) is installed on the top of the cylinder (201); the sleeve (205) is installed at the center of the connecting frame (204), and the agitator (5) passes through the sleeve (205); the driving groove (206) is opened on the inner wall of the sleeve (205); the driving rod (207) is installed on the agitator (5), and the driving rod (207) is slidably installed in the driving groove (206); the limiting groove (208) is opened on the outer wall of the cylinder (201); the limiting block (209) is installed on the inner wall of the tank body (1), and the limiting block (209) is slidably installed in the limiting groove (208).

9. The device for inclusion of volatile components according to claim 8, characterized in that The driving groove (206) comprises: a lifting groove (2061), a first turning groove (2062), a reset groove (2063) and a second turning groove (2064); the lifting groove (2061), the first turning groove (2062), the reset groove (2063) and the second turning groove (2064) are arranged to be interconnected.