Separation equipment for inspecting makeup sample perfume

By designing a separation device for cosmetic sample fragrance inspection with rotating ventilation components and self-cleaning components, the problems of uneven heating and difficulty in cleaning in existing equipment are solved, and more efficient distillation separation and automatic cleaning effects are achieved.

CN120079125APending Publication Date: 2025-06-03SUZHOU SHIPU TESTING TECH CO LTD
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Patent Information

Application Number
CN202510145246.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2025-06-03

AI Technical Summary

Technical Problem

The existing separation equipment for cosmetic sample spice inspection has problems such as uneven heating, accumulation of dirt in the heating pipe and difficulty in cleaning during the distillation and separation process, which affects the distillation efficiency and equipment life.

Method used

A separation device including heating assembly, push assembly, rotary ventilation assembly, air supply assembly and distribution assembly is designed. By rotating the vent assembly, the pressure air is input to the push assembly alternately, thereby realizing the up and down swing and self-cleaning function of the heating assembly, improving distillation uniformity and automatic cleaning effect.

Benefits of technology

It improves the uniformity and efficiency of distillation and separation, realizes automatic cleaning of heating pipes, extends the service life of the equipment, and saves energy.

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Abstract

The invention belongs to the technical field of perfume separation, and discloses separation equipment for cosmetic sample perfume inspection, which comprises a distillation cylinder and a leading-out mechanism fixedly communicated to the top of the distillation cylinder, a heating assembly is rotatably arranged in the distillation cylinder, and a pushing assembly is fixedly arranged at the bottom of an inner cavity of the distillation cylinder. The pushing assemblies are symmetrically distributed below the heating assembly left and right, and a distribution mechanism is arranged on the right side of the distillation cylinder. Through cooperation of the heating assembly, the pushing assemblies, the rotary ventilation assembly, the air supply assembly and the distribution assembly, in the rotating process of the rotary ventilation assembly, air supply of the pushing assemblies on the two sides is achieved in sequence, and therefore the heating assembly is alternately pushed by air pressure on the two sides to swing up and down in the distillation cylinder; on one hand, the heating assembly continuously swings in the distillation cylinder to switch the position, the distillation uniformity is improved, on the other hand, a solution in the distillation cylinder is actively stirred through reciprocating swinging of the heating assembly, and the distillation effect is comprehensively improved.
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Description

Technical Field

[0001] The invention belongs to the technical field of fragrance separation, in particular to a separation device for testing fragrance of cosmetic samples. Background Art

[0002] The specific objects of fragrance inspection of cosmetic samples mainly include fragrance mixtures, single fragrance compounds and their derivatives. These fragrances are usually added to cosmetics to give them specific aromas and sensory properties. They are inspected and processed through extraction and separation. For some fragrance objects to be inspected, distillation is usually used. Essential oils can be distilled and condensed and then separated, so as to achieve collection.

[0003] In the prior art, the separation equipment for testing cosmetic sample fragrances, during use, puts the sample raw material to be separated into a distillation cylinder, and cooperates with the heating distillation method to separate the gaseous target components and water vapor together, and completes the final separation after condensation in conjunction with the layered extraction step. However, during the distillation separation process, the current heating mechanism is fixed in the distillation cylinder, and the heating area is fixed, which has the problem of uneven heating, affecting the actual distillation separation efficiency. At the same time, during the long-term distillation process, dirt accumulates on the surface of the heating tube, increasing the wall thickness of the heating tube, affecting the heating and heating effect, and causing the heating tube to overheat abnormally and be damaged. However, the actual cleaning is difficult, and there are defects in the use of comprehensive distillation separation. Summary of the invention

[0004] The object of the present invention is to provide a separation device for testing fragrance of cosmetic samples to solve the problems raised in the above-mentioned background technology.

[0005] In order to achieve the above-mentioned purpose, the present invention provides the following technical solutions: a separation device for testing fragrances of cosmetic samples, comprising a distillation cylinder, a derivation mechanism fixedly connected to the top of the distillation cylinder, a heating component rotatably provided inside the distillation cylinder, a pushing component fixedly provided at the bottom of the inner cavity of the distillation cylinder, the pushing components are symmetrically distributed below the heating component, a distribution mechanism is provided on the right side of the distillation cylinder, a rotating ventilation component is rotatably provided in the distribution mechanism, an air supply component and a power mechanism are respectively provided on the right side of the distillation cylinder, the power mechanism drives the rotating ventilation component to rotate, and the air supply component inputs pressurized air into the rotating ventilation component,

[0006] The rotating ventilation component inputs pressurized air alternately into two groups of pushing components through the distribution component. The outer side of the heating component is provided with a self-cleaning component for sliding. The rotating ventilation component controls the intermittent sliding of the self-cleaning component through the distribution component and cleans the heating component.

[0007] The distribution component includes an adaptation slot, a first hole, and a first cavity. The first hole and the first cavity are both opened on the side surface of the distillation cylinder. The number of the first holes is two, and they are symmetrically distributed in the adaptation slot. The adaptation slot is opened on the side surface of the distillation cylinder. The two first holes respectively correspond to and communicate with two pushing components one by one.

[0008] Preferably, the heating component includes a mounting seat, a heating pipe, and a rotating shaft. The heating pipe is fixedly connected between the two side mounting seats. The rotating shaft is fixedly connected to the outer side surface of the mounting seat. The rotating shaft is rotatably sleeved on the side surface of the distillation cylinder.

[0009] Preferably, the pushing component includes a fixed pipe, a first push rod, a first spring, and a communicating pipe. The fixed pipe is fixed at the bottom of the inner cavity of the distillation cylinder. One end of the first push rod is movably sleeved in the fixed pipe, and the other end is movably sleeved in the bottom chute of the mounting seat. The first spring is fixed inside the fixed pipe and is fixedly connected to the upper end of the first push rod. The communicating pipe is fixedly connected to the side surface of the fixed pipe and communicates with the inside of the fixed pipe. The other end of the communicating pipe is fixedly nested in the first hole.

[0010] Preferably, the rotating ventilation component includes a cam, a connecting shaft, an internal cavity, a side port, and an outlet cavity. The cam is rotatably sleeved in the adaptation slot. The connecting shaft is fixedly sleeved in the cam. The internal cavity is opened in the connecting shaft. The side port is opened on the outer side surface of the connecting shaft and communicates with the internal cavity. The outlet cavity is opened on the end surface of the cam and communicates with the internal cavity. The output shaft of the power mechanism is fixedly connected to the connecting shaft. A support cover is fixedly provided on the side surface of the distillation cylinder. The power mechanism is fixed on the support cover. The two first holes and the first cavity are both located on the rotation path of the outlet cavity.

[0011] Preferably, the air supply component includes an air pump, a communicating frame, and a communicating cover. The air pump is fixed on the distillation cylinder. The communicating cover is sleeved on the outer surface of the connecting shaft, and the connecting shaft is rotatably sleeved in the communicating cover. The communicating cover is located outside the side port and communicates with the side port.

[0012] Preferably, the self-cleaning component includes a cleaning plate, a connecting rod, a second push rod, a sleeve, a second spring, an arc-shaped plate, and a middle cavity. The cleaning plate is slidably sleeved on the outer surface of the heating pipe. The connecting rod is fixedly connected to the bottom of the cleaning plate. The second push rod is fixedly connected to the connecting rod. The sleeve is movably sleeved on the outer side of one end of the second push rod. One end of the second spring is fixedly connected to the second push rod, and the other end is fixedly connected to the arc-shaped plate. The arc-shaped plate is fixedly connected to the sleeve. The middle cavity is opened at the bottom of the arc-shaped plate and communicates with the sleeve.

[0013] Preferably, an active arc cavity and an arc groove are formed in the inner wall of the distillation cylinder. One side of the active arc cavity communicates with the arc groove, and the other side communicates with the first cavity. The arc-shaped plate is movably sleeved in the active arc cavity, and the sleeve is movably sleeved in the arc groove. The first cavity introduces compressed air into the sleeve through the active arc cavity, the arc groove, and the intermediate cavity, and pushes the second push rod to move, driving the cleaning plate to complete sliding cleaning.

[0014] Preferably, the distribution assembly further includes a curved hole formed in the inner wall of the distillation cylinder. One end of the curved hole communicates with the adaptor groove, and the curved hole is located on the rotation path of the outlet cavity. A condensation assembly is fixedly provided at the bottom of the distillation cylinder. The top of the condensation assembly is fixedly communicated with a condensation pipe, and the condensation pipe is sleeved outside the outlet mechanism. The condensation assembly communicates with the other end of the curved hole.

[0015] Preferably, the condensation assembly includes a storage box, a curved pipe, and a sealing plug. The inner wall of the storage box is provided with a heat insulation layer. One end of the curved pipe communicates with the storage box, and the other end communicates with the curved hole. The sealing plug is movably installed at the end of the storage box. The top of the storage box is fixedly communicated with the condensation pipe, and ice cubes are stored inside the storage box.

[0016] Preferably, the outlet mechanism includes an outlet cover and an outlet pipe. The outlet cover is fixedly communicated with the bottom of the distillation cylinder, and the outlet pipe is fixedly communicated with the top of the outlet cover. A feed inlet is provided at the top of the distillation cylinder.

[0017] The beneficial effects of the present invention are as follows:

[0018] 1. By using the cooperation of the heating assembly, the pushing assembly, the rotating ventilation assembly, the air supply assembly, and the distribution assembly, during the rotation of the rotating ventilation assembly, the air supply to the pushing assemblies on both sides is achieved in sequence, so that the heating assembly is alternately pushed up and down in the distillation cylinder by the air pressures on both sides. On the one hand, the heating assembly continuously swings and switches positions in the distillation cylinder, improving the distillation uniformity. On the other hand, in cooperation with the reciprocating swing of the heating assembly, the solution inside the distillation cylinder is actively stirred, comprehensively improving the distillation effect.

[0019] 2. By using the rotating ventilation assembly and the distribution assembly again, under rotating ventilation, compressed air is intermittently input into the self-cleaning assembly, and the self-cleaning assembly is pushed to move horizontally and complete sliding cleaning along the outside of the heating pipe to remove surface dirt, achieving automatic cleaning. During the process of introducing compressed air, the bypasses of the first holes on both sides are opened, and the heating assembly maintains horizontal stability, realizing automatic cleaning in a stable state. Moreover, the frequency of intermittent self-cleaning is high and the effect is good, avoiding dirt from affecting heat exchange and providing a better distillation effect.

[0020] 3. By reusing the cooperation of the rotating ventilation component and the distribution component, during the rotation process, the pressurized air is intermittently input into the curved holes and then into the condensation component. Combined with the ice cubes in the condensation component, the cold air is intermittently input into the condensation tube for condensation operation. Moreover, there is no need to additionally install a condensation water pumping device, which saves energy and has a good cooling effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is a schematic structural diagram of the present invention;

[0022] Figure 2 is a schematic cross-sectional view of the present invention;

[0023] Figure 3 is a schematic diagram of the distribution component of the present invention;

[0024] Figure 4 is a schematic diagram of the sleeved connection between the self-cleaning component and the heating component of the present invention;

[0025] Figure 5 is an exploded schematic diagram of the self-cleaning component of the present invention;

[0026] Figure 6 is an exploded schematic diagram of the air supply component and the rotating ventilation component of the present invention;

[0027] Figure 7 is an exploded schematic diagram of the pushing component of the present invention;

[0028] Figure 8 is a schematic cross-sectional view of the rotating ventilation component of the present invention;

[0029] Figure 9 is a schematic cross-sectional view of the distillation cylinder of the present invention;

[0030] Figure 10 is a schematic diagram of the connection between the first cavity, the movable arc cavity and the arc groove of the present invention;

[0031] Figure 11 is a schematic diagram of the condensation component of the present invention.

[0032] In the figure: 1, distillation cylinder; 2, export mechanism; 3, heating component; 31, mounting seat; 32, heating tube; 33, rotating shaft; 4, pushing component; 41, fixed tube; 42, first push rod; 43, first spring; 44, connecting pipe; 5, rotating ventilation component; 51, cam; 52, connecting shaft; 53, internal cavity; 54, side port; 55, export cavity; 6, first hole; 7, first cavity; 8, curved hole; 9, support cover; 10, power mechanism; 11, air supply component; 111, air pump; 112, connecting frame; 113, connecting cover; 12, self-cleaning component; 121, cleaning plate; 122, connecting rod; 123, second push rod; 124, sleeve; 125, second spring; 126, arc plate; 127, middle cavity; 13, arc groove; 14, movable arc cavity; 15, condensation component; 151, storage frame; 152, curved pipe; 153, sealing plug; 16, condensation tube; 17, adapter slot. Detailed implementation mode

[0033] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0034] As Figures 1 to 11 shown, the embodiment of the present invention provides a separation device for testing cosmetic sample fragrances, including a distillation cylinder 1, an export mechanism 2 fixedly connected to the top of the distillation cylinder 1, a heating component 3 rotatably arranged inside the distillation cylinder 1, a pushing component 4 fixedly arranged at the bottom of the inner cavity of the distillation cylinder 1, the pushing components are symmetrically distributed on the left and right below the heating component 3, a distribution mechanism is arranged on the right side of the distillation cylinder 1, a rotating ventilation component 5 is rotatably arranged in the distribution mechanism, an air supply component 11 and a power mechanism 10 are respectively arranged on the right side of the distillation cylinder 1, the power mechanism 10 drives the rotating ventilation component 5 to rotate, the air supply component 11 inputs pressurized air into the inside of the rotating ventilation component 5, the rotating ventilation component 5 alternately inputs the pressurized air into the two pushing components 4 through a distribution component, a self-cleaning component 12 is slidably arranged outside the heating component 3, the rotating ventilation component 5 controls the intermittent sliding of the self-cleaning component 12 through a distribution component and cleans the heating component 3, the distribution component includes an adapter slot 17, a first hole 6 and a first cavity 7, the first hole 6 and the first cavity 7 are both opened on the side of the distillation cylinder 1, the number of the first holes 6 is two and they are symmetrically distributed in the adapter slot 17, the adapter slot 17 is opened on the side of the distillation cylinder 1, and the two first holes 6 respectively correspond to and communicate with the two pushing components 4 one by one.

[0035] Among them, the heating component 3 includes a mounting base 31, a heating tube 32, and a rotating shaft 33. The heating tube 32 is fixedly connected between the two mounting bases 31. The rotating shaft 33 is fixedly connected to the outer side surface of the mounting base 31, and the rotating shaft 33 is rotatably sleeved on the side surface of the distillation cylinder 1.

[0036] Among them, the pushing component 4 includes a fixed tube 41, a first push rod 42, a first spring 43, and a connecting tube 44. The fixed tube 41 is fixed at the bottom of the inner cavity of the distillation cylinder 1. One end of the first push rod 42 is movably sleeved in the fixed tube 41, and the other end is movably sleeved in the bottom chute of the mounting base 31. The first spring 43 is fixed inside the fixed tube 41 and is fixedly connected to the upper end of the first push rod 42. The connecting tube 44 is fixedly connected to the side surface of the fixed tube 41 and is communicated with the inside of the fixed tube 41. The other end of the connecting tube 44 is fixedly nested in the first hole 6.

[0037] The pushing component 4 pushes the heating component 3 to swing through the upward movement of the first push rod 42. A sealing ring is provided on the outer side of the inner end of the first push rod 42 to maintain dynamic sealing, and the first spring 43 facilitates elastic reset.

[0038] Among them, the rotating ventilation component 5 includes a cam 51, a connecting shaft 52, an internal cavity 53, a side port 54, and an outlet cavity 55. The cam 51 is rotatably sleeved in the fitting groove 17. The connecting shaft 52 is fixedly sleeved in the cam 51. The internal cavity 53 is opened in the connecting shaft 52. The side port 54 is opened on the outer side surface of the connecting shaft 52 and is communicated with the internal cavity 53. The outlet cavity 55 is opened on the end surface of the cam 51 and is communicated with the internal cavity 53. The output shaft of the power mechanism 10 is fixedly connected to the connecting shaft 52. A support cover 9 is fixedly provided on the side surface of the distillation cylinder 1, and the power mechanism 10 is fixed on the support cover 9. Both of the first holes 6 and the first cavity 7 are located on the rotation path of the outlet cavity 55.

[0039] The rotating ventilation component 5 realizes the air inlet and outlet during the rotation process. By rotating to different positions, the pressurized air is input into different areas to achieve different action effects. The design of the cam makes the fitting groove 17 not completely sealed, facilitating the bypass of other air channels to release the internal air and realizing stable reciprocating control.

[0040] Among them, the air supply component 11 includes an air pump 111, a connecting frame 112, and a connecting cover 113. The air pump 111 is fixed on the distillation cylinder 1. The connecting cover 113 is sleeved on the outer surface of the connecting shaft 52, and the connecting shaft 52 is rotatably sleeved in the connecting cover 113. The connecting cover 113 is located outside the side port 54 and is communicated with the side port 54.

[0041] The air supply component 11 provides pressurized air. The connecting cover 113 maintains dynamic sealing through the sealing ring on the outer surface of the connecting shaft 52 to avoid air leakage.

[0042] Embodiment 1: When in use, the sample solution to be processed is introduced into the distillation cylinder 1, the sealing cover is covered, the heating component 3 is started, and the heating tube 32 starts heating. As the temperature rises, the essential oil in the sample solution evaporates and is discharged together with the water vapor through the discharge mechanism 2. In the distillation separation process, the power mechanism 10 is started to drive the rotating ventilation component 5 to rotate, so that the cam 51 rotates in the adapter groove 17 of the distribution component, and the air supply component 11 is started at the same time. The air pump 111 introduces the pressurized air into the internal cavity 53 of the connecting shaft 52 through the connecting frame 112, the connecting cover 113, and the side port 54, and discharges it through the discharge cavity 55. When the cam 51 rotates so that the discharge cavity 55 is connected to the No. 1 hole 6 on the left side, the pressurized air quickly passes through the connecting tube 4 4 is input into the fixed tube 41, and pushes the internal sleeve push rod 42 to move upward, stretching the spring 43 while pushing upward along the slide groove on the bottom surface of a group of mounting seats 31, and makes the mounting seat 31 swing upward through the rotating shaft 33, driving the heating tube 32 to swing in the solution, switching the heating area, and as the cam 51 rotates, the left hole 6 opens, and the pressure air in the corresponding pushing component 4 is automatically squeezed out, and the heating component 3 swings back and forth to the horizontal, and when the cam 51 rotates to the right hole 6, the pressure air is introduced into the corresponding pushing component 4 on the right side, and pushes the upper mounting seat 31 to swing in the opposite direction, driving the heating tube 32 to swing again, so that the heating component 3 swings back and forth in the distillation cylinder 1, uniformly heating and stirring the solution.

[0043] Firstly, by utilizing the cooperation of the heating component 3, the pushing component 4, the rotating ventilation component 5, the air supply component 11 and the distribution component, during the rotation of the rotating ventilation component 5, the air supply of the pushing components 4 on both sides is realized in turn, so that the air pressure on both sides is utilized to alternately push the heating component 3 to swing up and down in the distillation cylinder 1. On the one hand, the heating component 3 is continuously swung and switched in position in the distillation cylinder, thereby improving the uniformity of distillation. On the other hand, the reciprocating swing of the heating component 3 is coordinated to actively stir the solution inside the distillation cylinder 1, thereby comprehensively improving the distillation effect.

[0044] Among them, the self-cleaning component 12 includes a cleaning plate 121, a connecting rod 122, a push rod 123, a sleeve 124, a spring 125, an arc plate 126 and an intermediate cavity 127. The cleaning plate 121 is slidably sleeved on the outer surface of the heating tube 32, the connecting rod 122 is fixedly connected to the bottom of the cleaning plate 121, the push rod 123 is fixedly connected to the connecting rod 122, the sleeve 124 is movably sleeved on the outside of one end of the push rod 123, one end of the spring 125 is fixedly connected to the push rod 123, and the other end is fixedly connected to the arc plate 126, and the arc plate 126 is connected to the sleeve. 124 is fixedly connected, the middle cavity 127 is opened at the bottom of the arc plate 126 and is connected with the sleeve 124, the inner wall of the distillation cylinder 1 is provided with a movable arc cavity 14 and an arc groove 13, one side of the movable arc cavity 14 is connected with the arc groove 13, and the other side is connected with the No. 1 cavity 7, the arc plate 126 is movably sleeved in the movable arc cavity 14, the sleeve 124 is movably sleeved in the arc groove 13, the No. 1 cavity 7 introduces pressurized air into the sleeve 124 through the movable arc cavity 14, the arc groove 13 and the middle cavity 127, and pushes the push rod 123 to move, driving the cleaning plate 121 to complete sliding cleaning.

[0045] The self-cleaning component 12 realizes the sliding cleaning of the heating tube 32. The elasticity of the second spring 125 facilitates automatic reset when it is deflated. The inner end of the push rod 123 is also provided with a sealing ring to maintain dynamic sealing. The arc plate 126 matches the movable arc cavity 14, and the arc length of the movable arc cavity 14 is much larger than the arc plate 126, allowing the arc plate 126 to slide in the movable arc cavity 14, ensuring that the self-cleaning component 12 swings with the heating component 3, and reserving space for following the movement, and the middle cavity 127 is connected with the first cavity 7 when the arc plate 126 follows the heating component 3 to reset to the horizontal, thereby realizing sliding self-cleaning in a horizontal state.

[0046] Embodiment 2: When the outlet chamber 55 in the rotating ventilation assembly 5 is connected to the No. 1 chamber 7, the No. 1 holes 6 on both sides are open, and there is no pressurized air filling inside. The heating assembly 3 maintains a horizontal state, and the pressurized air is introduced into the sleeve 124 through the No. 1 chamber 7, the movable arc chamber 14, and the middle chamber 127, and pushes the push rod 123 to move, so that the push rod 123 drives the connecting rod 122 to move, and the cleaning plate 121 slides along the outer side surface of the heating tube 32 to slide and clean the surface dirt. As the cam 51 continues to rotate, the outlet chamber 55 is staggered with the No. 1 chamber 7, the No. 1 chamber 7 is opened, the internal pressure air is released by bypass, and the self-cleaning assembly 12 is reset.

[0047] First, by reusing the rotating ventilation component 5 and the distribution component, under rotating ventilation, pressure air is intermittently input into the self-cleaning component 12, and the self-cleaning component 12 is pushed to move horizontally, and sliding cleaning is completed along the outer side of the heating tube 32 to remove surface dirt, completing automatic cleaning. During the process of introducing pressure air, the bypass openings beside the first holes 6 on both sides are opened, and the heating component 3 maintains horizontal stability, realizing automatic cleaning in a stable state. Moreover, the frequency of intermittent self-cleaning is high and the effect is good, avoiding dirt from affecting heat exchange and providing a distillation effect.

[0048] Among them, the distribution component further includes a curved hole 8. The curved hole 8 is opened in the inner wall of the distillation cylinder 1. One end of the curved hole 8 is communicated with the fitting groove 17. The curved hole 8 is located on the rotation path of the export cavity 55. A condensation component 15 is fixedly provided at the bottom of the distillation cylinder 1. The top of the condensation component 15 is fixedly communicated with a condensation tube 16. The condensation tube 16 is sleeved outside the export mechanism 2. The condensation component 15 is communicated with the other end of the curved hole 8. The condensation component 15 includes a storage frame 151, a curved tube 152 and a sealing plug 153. The inner wall of the storage frame 151 is provided with a heat insulation layer. One end of the curved tube 152 is communicated with the storage frame 151, and the other end is communicated with the curved hole 8. The sealing plug 153 is movably installed at the end of the storage frame 151. The top of the storage frame 151 is fixedly communicated with the condensation tube 16. Ice cubes are stored inside the storage frame 151.

[0049] When the curved hole 8 is communicated with the export cavity 55, a certain amount of flowing air is intermittently input into the condensation component 15, and the air flow is quickly cooled and then input into the condensation tube 16 to complete the condensation process.

[0050] Among them, the export mechanism 2 includes an export cover and an export tube. The export cover is fixedly communicated at the bottom of the distillation cylinder 1. The export tube is fixedly communicated at the top of the export cover. The top of the distillation cylinder 1 is provided with a feed port, and the bottom of the distillation cylinder 1 is also provided with a discharge port (not shown in the figure), and the internal accumulated liquid is discharged when it is opened.

[0051] Embodiment 3: When the export cavity 55 in the rotating ventilation component 5 rotates to the lower part and is communicated with the curved hole 8 in the distribution component, pressure air is directly input into the curved hole 8. The quickly introduced air flow is input into the storage frame 151 through the curved tube 152, and fully contacts with the internal ice cubes. The flowing air forms cold air and is intermittently input into the condensation tube 16, and the output air flow in the export mechanism 2 is condensed to complete the condensation of water vapor and essential oil gas.

[0052] First, through the combined action of reusing the rotating ventilation component 5 and the distribution component, during rotation, pressure air is intermittently input into the curved hole 8 and introduced into the condensation component 15. With the action of the ice cubes in the condensation component 15, cold air is intermittently input into the condensation tube 16 for condensation operation. Moreover, there is no need to additionally install a condensation water pumping device, saving energy and having a good cooling effect.

[0053] Working principle and usage process of the present invention: During use, the sample solution to be processed is introduced into the distillation cylinder 1, the sealing cover is covered, and the heating component 3 is started. The heating tube 32 starts heating. As the temperature rises, the spice essential oil in the sample solution evaporates and is exported together with the water vapor through the export mechanism 2. During the distillation and separation process, the power mechanism 10 is started to drive the rotating ventilation component 5 to rotate, so that the cam 51 rotates in the fitting groove 17 of the distribution component. At the same time, the air supply component 11 is started, and the air pump 111 introduces pressurized air into the internal cavity 53 of the connecting shaft 52 through the connecting frame 112, the connecting cover 113, and the side port 54, and exports it through the export cavity 55. When the export cavity 55 in the rotating ventilation component 5 is communicated with the first hole 6 on the left during the rotation of the cam 51, the pressurized air quickly enters the fixed tube 41 through the connecting pipe 44, pushes the first push rod 42 sleeved inside to move upward, stretches the first spring 43, and at the same time pushes upward along the sliding groove on the bottom surface of a group of mounting seats 31, so that the mounting seat 31 swings upward through the rotating shaft 33, drives the heating tube 32 to swing in the solution, switches the heating area, and as the cam 51 rotates, the first hole 6 on the left opens, and the pressurized air in the corresponding pushing component 4 is automatically squeezed out. At the same time, the heating component 3 swings and resets to the horizontal. And when the cam 51 rotates into the first hole 6 on the right, similarly, the pressurized air is introduced into the corresponding pushing component 4 on the right, and the upper mounting seat 31 is pushed to swing in the opposite direction, driving the heating tube 32 to swing again, so that the heating component 3 swings back and forth in the distillation cylinder 1, uniformly heating and stirring the solution;

[0054] When the export cavity 55 in the rotating ventilation component 5 is communicated with the first cavity 7, both the first holes 6 on both sides are opened at this time, and there is no pressurized air filling inside. The heating component 3 maintains the horizontal. And at this time, the pressurized air enters the sleeve 124 through the first cavity 7, the movable arc cavity 14, and the middle cavity 127, pushes the second push rod 123 to move, so that the second push rod 123 drives the connecting rod 122 to move, and the cleaning plate 121 slides along the outer side surface of the heating tube 32 to slide and clean the surface dirt. And as the cam 51 continues to rotate, the export cavity 55 is staggered from the first cavity 7, the first cavity 7 is opened, and the pressurized air inside is bypassed and released, and the self-cleaning component 12 resets;

[0055] When the export cavity 55 in the rotating ventilation component 5 rotates to the lower part and is communicated with the curved hole 8 in the distribution component, the pressurized air is directly input into the curved hole 8. The rapidly flowing air enters the storage box 151 through the curved tube 152, fully contacts the internal ice cubes, and the flowing air forms cold air, which is intermittently input into the condensing tube 16, and condenses the output air flow in the export mechanism 2 to complete the condensation of water vapor and essential oil gas.

[0056] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A separation device for testing fragrances of cosmetic samples, comprising a distillation cylinder (1), and a derivation mechanism (2) fixedly connected to the top of the distillation cylinder (1), characterized in that: A heating component (3) is rotatably provided inside the distillation cylinder (1), a pushing component (4) is fixedly provided at the bottom of the inner cavity of the distillation cylinder (1), and the pushing component is symmetrically distributed below the heating component (3). A distribution mechanism is provided on the right side of the distillation cylinder (1), and a rotating ventilation component (5) is rotatably provided in the distribution mechanism. An air supply component (11) and a power mechanism (10) are respectively provided on the right side of the distillation cylinder (1), and the power mechanism (10) drives the rotating ventilation component (5) to rotate, and the air supply component (11) inputs pressurized air into the rotating ventilation component (5). The rotating ventilation component (5) inputs pressurized air alternately into the two groups of pushing components (4) through the distribution component. The outer side of the heating component (3) is provided with a self-cleaning component (12) for sliding. The rotating ventilation component (5) controls the self-cleaning component (12) to slide intermittently through the distribution component and cleans the heating component (3). The distribution component comprises an adapting groove (17), a No. 1 hole (6) and a No. 1 cavity (7), wherein the No. 1 hole (6) and the No. 1 cavity (7) are both provided on the side of the distillation cylinder (1), the No. 1 holes (6) are two in number and are symmetrically distributed in the adapting groove (17), the adapting groove (17) is provided on the side of the distillation cylinder (1), and the two No. 1 holes (6) correspond one-to-one to the two pushing components (4) respectively and are in communication with each other.

2. A separation device for testing fragrance of cosmetic samples according to claim 1, characterized in that: The heating assembly (3) comprises a mounting seat (31), a heating tube (32) and a rotating shaft (33); the heating tube (32) is fixedly connected between the mounting seats (31) on both sides; the rotating shaft (33) is fixedly connected to the outer side surface of the mounting seat (31); and the rotating shaft (33) is rotatably sleeved on the side surface of the distillation cylinder (1).

3. A separation device for testing fragrance of cosmetic samples according to claim 2, characterized in that: The pushing assembly (4) comprises a fixed tube (41), a push rod (42), a spring (43) and a connecting tube (44); the fixed tube (41) is fixed at the bottom of the inner cavity of the distillation cylinder (1); one end of the push rod (42) is movably sleeved in the fixed tube (41), and the other end is movably sleeved in the bottom slide groove of the mounting seat (31); the spring (43) is fixed inside the fixed tube (41), and the upper end is fixedly connected to the push rod (42); the connecting tube (44) is fixedly connected to the side of the fixed tube (41) and is connected to the inside of the fixed tube (41); the other end of the connecting tube (44) is fixedly nested in the No. 1 hole (6).

4. A separation device for testing fragrance of cosmetic samples according to claim 3, characterized in that: The rotary ventilation assembly (5) comprises a cam (51), a connecting shaft (52), an internal cavity (53), a side port (54) and an outlet cavity (55); the cam (51) is rotatably sleeved in the adapting groove (17); the connecting shaft (52) is fixedly sleeved in the cam (51); the internal cavity (53) is opened in the connecting shaft (52); the side port (54) is opened on the outer side of the connecting shaft (52) and communicates with the internal cavity (53); the outlet cavity (55) is opened on the end face of the cam (51) and communicates with the internal cavity (53); the output shaft of the power mechanism (10) is fixedly connected to the connecting shaft (52); a support cover (9) is fixedly provided on the side of the distillation cylinder (1); the power mechanism (10) is fixed on the support cover (9); the two No. 1 holes (6) and the No. 1 cavity (7) are both located on the rotation path of the outlet cavity (55).

5. A separation device for testing fragrance of cosmetic samples according to claim 4, characterized in that: The air supply assembly (11) comprises an air pump (111), a connecting frame (112) and a connecting cover (113); the air pump (111) is fixed on the distillation cylinder (1); the connecting cover (113) is sleeved on the outer surface of the connecting shaft (52), and the connecting shaft (52) is rotatably sleeved in the connecting cover (113); the connecting cover (113) is located on the outer side of the side port (54) and is connected to the side port (54).

6. The separation device for testing fragrance of cosmetic samples according to claim 1, characterized in that: The self-cleaning component (12) comprises a cleaning plate (121), a connecting rod (122), a push rod (123), a sleeve (124), a spring (125), an arc plate (126) and an intermediate cavity (127); the cleaning plate (121) is slidably sleeved on the outer surface of the heating tube (32); the connecting rod (122) is fixedly connected to the bottom of the cleaning plate (121); the push rod (123) is fixedly connected to the connecting rod (122); the sleeve (124) is movably sleeved on the outer side of one end of the push rod (123); one end of the spring (125) is fixedly connected to the push rod (123) and the other end is fixedly connected to the arc plate (126); the arc plate (126) is fixedly connected to the sleeve (124); and the intermediate cavity (127) is opened at the bottom of the arc plate (126) and is connected to the sleeve (124).

7. A cosmetic sample fragrance testing separation device according to claim 6, characterized in that: The inner wall of the distillation cylinder (1) is provided with a movable arc cavity (14) and an arc groove (13); one side of the movable arc cavity (14) is connected to the arc groove (13), and the other side is connected to the No. 1 cavity (7); the arc plate (126) is movably sleeved in the movable arc cavity (14); the sleeve (124) is movably sleeved in the arc groove (13); the No. 1 cavity (7) introduces pressurized air into the sleeve (124) through the movable arc cavity (14), the arc groove (13), and the middle cavity (127), and pushes the second push rod (123) to move, thereby driving the cleaning plate (121) to complete sliding cleaning.

8. The separation device for testing fragrance of cosmetic samples according to claim 4, characterized in that: The distribution component also includes a curved hole (8), which is opened in the inner wall of the distillation cylinder (1), one end of the curved hole (8) is connected to the adapter groove (17), and the curved hole (8) is located on the rotation path of the outlet chamber (55). A condensation component (15) is fixedly provided at the bottom of the distillation cylinder (1), and a condensation pipe (16) is fixedly connected to the top of the condensation component (15). The condensation pipe (16) is sleeved on the outside of the outlet mechanism (2), and the condensation component (15) is connected to the other end of the curved hole (8).

9. A separation device for testing fragrance of cosmetic samples according to claim 8, characterized in that: The condensation component (15) comprises a storage frame (151), a curved pipe (152) and a sealing plug (153); the inner wall of the storage frame (151) is provided with a heat-insulating layer; one end of the curved pipe (152) is connected to the storage frame (151), and the other end is connected to the curved hole (8); the sealing plug (153) is movably mounted on the end of the storage frame (151); the top of the storage frame (151) is fixedly connected to the condensation pipe (16); and ice cubes are stored inside the storage frame (151).

10. The separation device for testing fragrance of cosmetic samples according to claim 1, characterized in that: The outlet mechanism (2) comprises an outlet cover and an outlet pipe, wherein the outlet cover is fixedly connected to the bottom of the distillation cylinder (1), and the outlet pipe is fixedly connected to the top of the outlet cover, and a feed port is provided at the top of the distillation cylinder (1).