An equipment for processing raw materials for producing fragrance emulsions

By designing a fragrance emulsification production raw material processing equipment with multiple filter chambers and jet vibration mechanisms, the problems of easy blockage of the filter device and need to stop injection in the prior art are solved, and efficient and continuous filtration and impurity separation are achieved.

CN119524513BActive Publication Date: 2025-06-17DONGGUAN CITY ZOHAR YOME IND CO LTD
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Patent Information

Application Number
CN202411552020.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-01
Publication Date
2025-06-17
Estimated Expiration
2044-11-01

AI Technical Summary

Technical Problem

In the existing fragrance emulsification production, the filter device can easily cause the filter hole to be blocked during the impurity retention and removal process, affecting the filtration efficiency, and the prior art requires stopping the injection of liquid to remove impurities.

Method used

A raw material treatment equipment for fragrance emulsification production is designed, adopting the structure of multiple filter chambers, driving the filter mechanism to rotate through rotating drive members, and using the jet vibrating mechanism to clean the impurities on the filter plate to achieve continuous filtration and impurities separation.

Benefits of technology

It realizes the discharge of impurities and raw material liquid without stopping the injection, improves filtration efficiency, avoids clogging of the filter plate, and enhances filtration sufficiency and practicality of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a fragrance emulsification production raw material processing device, which relates to the technical field of fragrance production. The filtering device includes an outer support, a cylindrical shell and a filtering mechanism. The filtering mechanism includes a filter plate, a partition member, a lower discharge cone and an upper retaining ring. A plurality of filtering chambers are formed between the filter plate, the partition member, the upper retaining ring and the cylindrical shell. It also includes a jet vibration mechanism, a liquid injection assembly and a rotation driving member. The jet vibration mechanism includes a suspension rod, at least one jet assembly and at least one knocking assembly. When the upper retaining ring rotates, the upper retaining ring can act on the jet assembly and introduce air flow into the filtering chamber that rotates to the side of the discharge port. The bottom of the swinging knocking assembly can knock the lower surface of the filter plate. The structure of the present invention is simple, can continuously filter the raw material liquid, and can discharge the separated impurities without stopping the liquid injection, with high efficiency and effectively avoiding the blockage of the filter plate, improving the filtering sufficiency and having strong practicability.
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Description

Technical Field

[0001] The present invention relates to the technical field of fragrance production, and particularly to a processing device for raw materials in fragrance emulsification production. Background Art

[0002] A fragrance is a household item that improves the indoor air by the natural volatilization of raw materials (mostly liquids), so that the air is filled with the aroma of fragrance raw material molecules, and has been widely loved by people in recent years. The production of fragrances mostly uses natural plants such as flowers, plants and trees and artificial chemical additives for proportioning, fuses solid plant raw materials and liquid raw materials to produce a mixed liquid, and obtains a fragrance liquid through certain processes such as distillation, crystallization, and water washing. Fragrances are also mixed with essential oils or other solvents to increase the aroma, and this process is called fragrance emulsification.

[0003] During the emulsification process of fragrances, it is necessary to filter the raw material liquid to remove the impurities contained therein; the existing filtering device filters impurities in the following way: the raw material liquid is directly passed through a filter plate, and the liquid passes through the filter holes on the filter plate while the impurities are blocked on the surface of the filter plate; however, too many impurities remaining on the surface of the filter plate will block the filter holes, thereby affecting the filtration of the raw material liquid; and the way to remove the impurities on the filter plate is to disassemble the filter plate or open the slag discharge port corresponding to the filter plate; however, both of these methods require stopping the injection of liquid, that is, stopping the filtration of the raw material liquid, thereby affecting the filtration efficiency. Summary of the Invention

[0004] The purpose of the present invention is to provide a processing device for raw materials in fragrance emulsification production to solve the problems raised in the background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions:

[0006] An equipment for treating raw materials in the production of fragrance emulsion, comprising an outer support, a cylindrical shell and a filtering mechanism. The cylindrical shell is fixed to the side of the outer support in a suspended manner. The filtering mechanism is arranged inside the cylindrical shell and includes a filter plate, a partition member, a lower discharge cone and an upper retaining ring. The filter plate is in a conical structure, and the lower edge of the filter plate is rotatably connected to the inner wall of the cylindrical shell. There are multiple partition members, and the multiple partition members are evenly distributed on the conical surface of the filter plate. The upper retaining ring is arranged on the top of the filter plate, and the side wall of the upper retaining ring is fixedly connected to the end of the partition member. Multiple filtering chambers are formed between the filter plate, the partition member, the upper retaining ring and the cylindrical shell. An outlet is formed on the outer wall of the cylindrical shell, and the bottom edge of the outlet is flush with the lower edge of the filter plate. The lower discharge cone is arranged at the bottom of the filter plate and is used to discharge the filtered raw material liquid. It further includes a jet vibration mechanism, a liquid injection assembly and a rotation driving member. The rotation driving member is arranged on the outer support and is connected to the filter plate. The rotation driving member is used to drive the filtering mechanism to rotate. The jet vibration mechanism includes a suspension rod, at least one jet assembly and at least one knocking assembly. The suspension rod is located inside the upper retaining ring, and the top of the suspension rod is fixedly connected to the top of the outer support through an upper fixing arm. The jet assembly is arranged on the side wall of the suspension rod, and the end of the jet assembly away from the suspension rod extends towards the side of the outlet. The knocking assembly is rotatably arranged at the bottom of the suspension rod, the upper end of the knocking assembly extends to the side of the corresponding jet assembly, and the lower end extends to the lower side of the filter plate. When the upper retaining ring rotates, the upper retaining ring can act on the jet assembly and introduce air flow into the filtering chamber rotating to the side of the outlet. During the process of the jet assembly introducing air flow into the filtering chamber, the jet assembly also drives the knocking assembly to swing around its connection with the suspension rod, and the bottom of the swinging knocking assembly can knock the lower surface of the filter plate. The liquid injection assembly is arranged on the outer support, the top of the liquid injection assembly extends to the upper side of the filter plate, and the liquid injection assembly is used to introduce the raw material liquid to be filtered into the filtering chamber away from the side of the outlet.

[0007] Based on the above technical solutions, the present invention also provides the following optional technical solutions:

[0008] In an optional solution: the lower edge of the filter plate has a lower annular frame, the inner wall of the cylindrical shell has a supporting ring, and the upper surface of the supporting ring is rotationally matched with the lower annular frame. A plurality of circumferentially evenly distributed outer connection parts are arranged on the lower annular frame. The end of the outer connection part away from the lower annular frame extends from the lower side of the cylindrical shell to the side of the cylindrical shell and is connected to the rotation driving member.

[0009] In an optional solution: the rotation driving member includes a toothed ring part and a rotation motor. The toothed ring part is rotatably arranged at a position near the bottom of the outer wall of the cylindrical shell, and multiple outer connection parts are fixedly connected to the toothed ring part. The rotation motor is arranged on the outer support, and a gear part is arranged at the output end of the rotation motor. The gear part is meshed with the toothed ring part.

[0010] In an alternative embodiment: The liquid injection assembly includes a liquid storage tank, a liquid guide pipe, and a liquid injection head. The liquid storage tank is provided on the outer support, and a liquid injection pump is arranged inside the liquid storage tank. The liquid outlet end of the liquid injection pump is connected to one end of the liquid guide pipe, and the end of the liquid guide pipe away from the liquid injection pump extends to the upper side of the filtering mechanism and is provided with a liquid injection head.

[0011] In an alternative embodiment: An upper annular cover plate is provided at the edge of the top opening of the cylindrical shell, a liquid injection port is opened at the upper annular cover plate, and the liquid injection head is installed in the liquid injection port. An avoidance notch is opened at the top edge of the partition member.

[0012] In an alternative embodiment: A plurality of circumferentially distributed pushing protrusions are provided on the inner wall of the upper retaining ring away from the partition member. The air jet assembly includes a cylinder assembly and an air outlet portion. The cylinder assembly is arranged on the outer wall of the suspension rod, and the end of the cylinder assembly away from the suspension rod elastically abuts against the inner wall of the upper retaining ring. One end of the air outlet portion is fixed to the side wall of the suspension rod, and the other end of the air outlet portion faces the discharge port and extends to the upper side of the filtering chamber of the filtering mechanism. The cylinder assembly is connected to the air outlet portion. When the pushing protrusion rotates to the position of the cylinder assembly and abuts against it, the pushing protrusion can compress the cylinder assembly and cause the cylinder assembly to introduce gas into the air outlet portion.

[0013] In an alternative embodiment: The cylinder assembly includes a cylinder portion, a bearing seat, a piston rod, a return spring, a bearing roller, and a pushing plate strip. One end of the cylinder portion is fixed to the outer wall of the suspension rod, and a piston plate is arranged inside the cylinder portion. An air outlet pipe and an air inlet pipe are arranged on the outer wall of the cylinder portion, and one-way valves are arranged on both the air outlet pipe and the air inlet pipe. The air outlet pipe is also connected to the air outlet portion; One end of the piston rod penetrates the end wall of the cylinder portion and is connected to the piston plate. The bearing seat is arranged at the end of the piston rod away from the cylinder portion, and the bearing seat and the end of the cylinder portion are connected by a return spring. A bearing roller and a pushing plate strip are arranged on the return spring. The bearing roller rolls and abuts against the inner wall of the upper retaining ring, and the pushing plate strip is connected to the knocking assembly.

[0014] In an alternative embodiment: The air outlet portion includes a gas guide rod and an arc-shaped gas guide pipe. One end of the gas guide rod is fixedly connected to the inside of the suspension rod and the other end extends towards the discharge port. The gas guide rod is connected to one end of the air outlet pipe. The arc-shaped gas guide pipe is arranged at the end of the gas guide rod facing the discharge port and the arc-shaped gas guide pipe is located above the filtering chamber. A plurality of air jet heads are provided on the end face of the arc-shaped gas guide pipe facing the filtering chamber.

[0015] In an optional scheme: a lower supporting rod is provided at the bottom of the suspension rod and the knocking assembly includes a lower supporting arm, an arc-shaped knocking roller, a rotating shaft seat and an upper bearing swinging part, the rotating shaft seat is rotatably arranged at the end of the lower supporting rod and the upper bearing swinging part and the lower supporting arm are both arranged on the rotating shaft seat, one end of the upper bearing swinging part extends upward to the side of the pushing slat, one end of the lower supporting arm extends downward to the lower side of the filter plate, and the arc-shaped knocking roller is arranged at the end of the lower supporting arm on the lower side of the filter plate.

[0016] In an optional solution: an outer annular material guide groove is further provided on the outer wall of the cylindrical shell and is arranged along the edge of the discharge port, and a downwardly inclined discharge channel is provided on the side of the outer annular material guide groove.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] 1. In the present invention, the filter plate and the partition plate form a plurality of filter chambers, and the plurality of filter chambers circulate and pass through the liquid injection point and the material discharge port in turn, so that impurities and raw material liquid can be discharged without stopping the liquid injection, thereby improving the filtering efficiency;

[0019] 2. The filter plate in the present invention is a conical structure, and the impurities on the filter plate can automatically slide to the edge and be discharged from the discharge port. At the same time, the jet component sprays air into the filter chamber at the discharge port. The airflow takes away the impurities on the filter plate and blows down the raw material liquid in the filter holes. The bottom of the knocking component can intermittently knock on the bottom of the filter plate, causing the filter plate to vibrate, so that the raw material liquid in the filter holes of the filter plate is shaken off.

[0020] 3. The present invention has a simple structure, can continuously filter the raw material liquid, and discharge the separated impurities without stopping the liquid injection. It has high efficiency and can effectively avoid the clogging of the filter plate, improve the filtration adequacy, and has strong practicality. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic diagram of the overall structure of the filtering device in one embodiment of the present invention.

[0022] Figure 2 It is a schematic diagram of the internal structure of a cylindrical shell in one embodiment of the present invention.

[0023] Figure 3 It is a schematic diagram of the structure of the filtering mechanism in one embodiment of the present invention.

[0024] Figure 4 It is a schematic diagram of the structure of the jet vibration mechanism in one embodiment of the present invention.

[0025] Figure 5 The figure is a schematic diagram of the structure of the jetting assembly in one embodiment of the present invention.

[0026] Annotation of reference numerals: outer support 100, cylindrical shell 200, supporting ring 210, discharge port 220, filtering mechanism 300, filter plate 310, partition member 320, lower guiding cone 330, outer connecting portion 340, upper retaining ring 350, lower annular frame 360, jacking projection 370, avoidance notch 380, outer annular material guiding groove 400, discharge channel 410, jet vibration mechanism 500, suspension rod 510, cylinder assembly 520, cylinder part 521, bearing seat 522, piston rod 523, return spring 524, bearing roller 525, push plate strip 526, air outlet pipe 527, air inlet pipe 528, knocking assembly 530, lower support arm 531, arc-shaped knocking roller 532, rotating shaft seat 533, upper bearing swing portion 534, lower support rod 540, air outlet portion 550, air guiding rod 551, arc-shaped air guiding pipe 552, jet head 553, liquid injection assembly 600, liquid storage tank 610, liquid guiding pipe 620, liquid injection head 630, liquid injection pump 640, upper annular cover plate 700, rotation driving member 800, gear ring portion 810, rotation motor 820, gear portion 830, upper fixed support arm 900. Detailed implementation manners

[0027] In order to make the objectives, technical solutions and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments; in the drawings or descriptions, similar or identical parts are denoted by the same reference numerals, and in actual applications, the shapes, thicknesses or heights of the components can be enlarged or reduced. Each embodiment listed in the present invention is only used to illustrate the present invention and is not used to limit the scope of the present invention. Any obvious modification or change made to the present invention does not depart from the spirit and scope of the present invention.

[0028] In one embodiment, as Figures 1-4As shown in the figure, an equipment for processing raw materials for perfume emulsification production includes an outer support 100, a cylindrical shell 200, and a filtering mechanism 300. The cylindrical shell 200 is fixed to the side of the outer support 100 in a suspended manner. The filtering mechanism 300 is arranged inside the cylindrical shell 200 and includes a filter plate 310, a partition member 320, a lower discharge cone 330, and an upper retaining ring 350. The filter plate 310 is a conical structure, and the lower edge of the filter plate 310 is rotatably connected to the inner wall of the cylindrical shell 200. There are multiple partition members 320, and the multiple partition members 320 are evenly distributed on the conical surface of the filter plate 310. The upper retaining ring 350 is arranged on the top of the filter plate 310, and the side wall of the upper retaining ring 350 is fixedly connected to the end of the partition member 320. Multiple filter chambers are formed between the filter plate 310, the partition member 320, the upper retaining ring 350, and the cylindrical shell 200. An outlet 220 is formed on the outer wall of the cylindrical shell 200, and the bottom edge of the outlet 220 is flush with the lower edge of the filter plate 310. The lower discharge cone 330 is arranged at the bottom of the filter plate 310 and is used to discharge the filtered raw material liquid. The equipment also includes a jet vibration mechanism 500, a liquid injection assembly 600, and a rotary drive member 800. The rotary drive member 800 is arranged on the outer support 100 and is connected to the filter plate 310. The rotary drive member 800 is used to drive the filtering mechanism 300 to rotate. The jet vibration mechanism 500 includes a suspension rod 510, at least one jet assembly, and at least one knocking assembly 530. The suspension rod 510 is located inside the upper retaining ring 350, and the top of the suspension rod 510 is fixedly connected to the top of the outer support 100 through an upper fixing arm 900. The jet assembly is arranged on the side wall of the suspension rod 510, and the end of the jet assembly away from the suspension rod 510 extends towards the side of the outlet 220. The knocking assembly 530 is rotatably arranged at the bottom of the suspension rod 510. The upper end of the knocking assembly 530 extends to the side of the corresponding jet assembly, and the lower end extends to the lower side of the filter plate 310. When the upper retaining ring 350 rotates, the upper retaining ring 350 can act on the jet assembly and introduce air flow into the filter chamber that rotates to the side of the outlet 220. During the process of the jet assembly introducing air flow into the filter chamber, the jet assembly also drives the knocking assembly 530 to swing around its connection with the suspension rod 510, and the bottom of the swinging knocking assembly 530 can knock the lower surface of the filter plate 310. The liquid injection assembly 600 is arranged on the outer support 100. The top of the liquid injection assembly 600 extends to the upper side of the filter plate 310, and the liquid injection assembly 600 is used to introduce the raw material liquid to be filtered into the filter chamber away from the side of the outlet 220.

[0029] In an embodiment of the present invention, the rotation driving member 800 drives the filtering mechanism 300 to rotate inside the cylindrical housing 200. The liquid injection assembly 600 injects the raw material liquid to be filtered into the filtering chamber passing through its top. The raw material liquid to be filtered is directly sprayed onto the surface of the filter plate 310. The raw material liquid passes through the filter holes of the filter plate 310 and flows into the inside of the partition member 320. The filtered raw material liquid is discharged from the bottom of the partition member 320. The impurities in the raw material liquid will remain inside the filtering chamber and on the surface of the filter plate 310. Due to the rotation of the entire filtering mechanism 300 and the conical surface of the filter plate 310, when the filter plate 310 rotates, the impurities on the filter plate 310 gradually slide to the lower edge of the filter plate 310. When the filtering chamber rotates to the discharge port 220, the impurities at the lower edge of the filter plate 310 can be discharged through the discharge port 220, thereby realizing the separation of impurities and the raw material liquid. During the rotation of the upper retaining ring 350, the upper retaining ring 350 acts on the air jet assembly and causes the air jet assembly to inject air into the filtering chamber at the discharge port 220. The air flow acts on the filter plate 310 and flows out through the discharge port 220 and the sieve holes of the filter plate 310. The air flow can carry away the impurities attached to the surface of the filter plate 310 and blow off the raw material liquid attached to the filter holes of the filter plate 310. During the process of the air jet assembly ejecting the air flow, it also drives the corresponding knocking assembly 530 to swing around its connection with the bottom of the suspension rod 510. Thus, the bottom of the knocking assembly 530 can intermittently knock the bottom of the filter plate 310, causing the filter plate 310 to vibrate. Thereby, the raw material liquid in the filter holes of the filter plate 310 is shaken off, and the impurities attached to the surface of the filter plate 310 vibrate and slide off. Thus, the impurities on the surface of the filter plate 310 are effectively cleaned, avoiding blockage. At the same time, since multiple filtering chambers are in a rotating state, the filtering chambers all circulate through the liquid injection position of the liquid injection assembly 600 and the discharge port 220. Thus, the impurities and the raw material liquid can be discharged without stopping the liquid injection, improving the filtering efficiency.

[0030] In one embodiment, as Figures 1-3 shown, the lower edge of the filter plate 310 has a lower annular frame 360. There is a retaining ring 210 on the inner wall of the cylindrical housing 200, and the upper surface of the retaining ring 210 is rotationally matched with the lower annular frame 360. A plurality of circumferentially uniformly distributed outer connection portions 340 are provided on the lower annular frame 360. The end of the outer connection portion 340 away from the lower annular frame 360 extends from the lower side of the cylindrical housing 200 to the side of the cylindrical housing 200 and is connected to the rotation driving member 800. In an embodiment of the present invention, the setting of the retaining ring 210 ensures the stability of the rotation of the entire filtering mechanism 300 and seals the gap between the lower annular frame 360 and the inner wall of the cylindrical housing 200, avoiding the leakage of the raw material liquid.

[0031] In one embodiment, as Figures 1-3As shown, the rotation driving member 800 includes a gear ring portion 810 and a rotation motor 820. The gear ring portion 810 is rotatably provided at a position near the bottom of the outer wall of the cylindrical housing 200, and a plurality of outer connection portions 340 are fixedly connected to the gear ring portion 810. The rotation motor 820 is provided on the outer bracket 100, and a gear portion 830 is provided at the output end of the rotation motor 820. The gear portion 830 meshes with the gear ring portion 810. In the embodiment of the present invention, the rotation motor 820 drives the gear portion 830 to rotate, and the gear portion 830 meshes with the gear ring portion 810 to cause the gear ring portion 810 to rotate around the center of the cylindrical housing 200. The gear ring portion 810 drives the filtering mechanism 300 located inside the cylindrical housing 200 to rotate through the outer connection portion 340.

[0032] In one embodiment, as Figures 1-3 shown, the liquid injection assembly 600 includes a liquid storage tank 610, a liquid guide pipe 620, and a liquid injection head 630. The liquid storage tank 610 is provided on the outer bracket 100, and a liquid injection pump 640 is provided inside the liquid storage tank 610. The liquid outlet end of the liquid injection pump 640 is connected to one end of the liquid guide pipe 620. The end of the liquid guide pipe 620 away from the liquid injection pump 640 extends to the upper side of the filtering mechanism 300 and is provided with a liquid injection head 630. In the embodiment of the present invention, the liquid injection pump 640 pumps the raw material liquid to be filtered inside the liquid storage tank 610 to the liquid injection head 630 through the liquid guide pipe 620. The liquid injection head 630 sprays the raw material liquid towards the filter plate 310, and the raw material liquid directly acts on the surface of the filter plate 310. Since the filter plate 310 is a conical surface structure, the raw material liquid can be dispersed and filtered.

[0033] In one embodiment, as Figures 1-3 shown, an upper annular cover plate 700 is provided at the top edge of the top opening of the cylindrical housing 200, and a liquid injection port is opened at the upper annular cover plate 700, and the liquid injection head 630 is installed in the liquid injection port. An avoidance notch 380 is opened at the top edge of the partition member 320. In the embodiment of the present invention, the upper annular cover plate 700 can prevent the raw material liquid from splashing out due to the surface of the filter plate 310 when injecting into the filtering chamber. The setting of the avoidance notch 380 can avoid the liquid injection head 630 and prevent interference between the top edge of the rotating partition member 320 and the liquid injection head 630.

[0034] In one embodiment, as Figures 1-4As shown, a plurality of circumferentially distributed jacking protrusions 370 are provided on the inner wall of the upper retaining ring 350 away from the partition member 320. The jetting assembly includes a cylinder assembly 520 and an air outlet portion 550. The cylinder assembly 520 is provided on the outer wall of the suspension rod 510, and one end of the cylinder assembly 520 away from the suspension rod 510 is elastically abutted against the inner wall of the upper retaining ring 350. One end of the air outlet portion 550 is fixed to the side wall of the suspension rod 510, and the other end of the air outlet portion 550 faces the discharge port 220 and extends to the upper side of the filtration chamber of the filtration mechanism 300. The cylinder assembly 520 is connected to the air outlet portion 550. When the jacking protrusion 370 rotates to the position of the cylinder assembly 520 and abuts against it, the jacking protrusion 370 can compress the cylinder assembly 520 and cause the cylinder assembly 520 to introduce gas into the air outlet portion 550. In the embodiment of the present invention, the upper retaining ring 350 rotates, and the plurality of jacking protrusions 370 thereon alternately contact the end of the cylinder assembly 520. Thus, the cylinder assembly 520 can reciprocally introduce air flow into the jetting vibration mechanism 500, and the jetting vibration mechanism 500 jets the air flow into the filtration chamber located at the discharge port 220, and the air flow can directly carry away impurities and blow off the raw material liquid.

[0035] In one embodiment, as Figures 1-5As shown, the cylinder assembly 520 includes a cylinder part 521, a load-bearing seat 522, a piston rod 523, a return spring 524, a load-bearing roller 525, and a pushing strip 526. One end of the cylinder part 521 is fixed to the outer wall of the suspension rod 510, and a piston plate is arranged inside the cylinder part 521. An air outlet pipe 527 and an air inlet pipe 528 are arranged on the outer wall of the cylinder part 521, and one-way valves are arranged on both the air outlet pipe 527 and the air inlet pipe 528. The air outlet pipe 527 is also connected to the air outlet part 550. One end of the piston rod 523 penetrates through the end wall of the cylinder part 521 and is connected to the piston plate. The load-bearing seat 522 is arranged at the end of the piston rod 523 away from the cylinder part 521, and the load-bearing seat 522 is connected to the end of the cylinder part 521 through the return spring 524. The load-bearing roller 525 and the pushing strip 526 are arranged on the return spring 524. The load-bearing roller 525 rolls and abuts against the inner wall of the upper retaining ring 350, and the pushing strip 526 is connected to the knocking assembly 530. In the embodiment of the present invention, when the pushing protrusion 370 contacts the load-bearing roller 525, the pushing protrusion 370 can push the load-bearing seat 522 to move towards the cylinder part 521 and compress the return spring 524. The load-bearing seat 522 pushes the piston plate to move inside the cylinder part 521 through the piston rod 523. The air flow inside the cylinder part 521 is introduced into the air outlet part 550 through the air outlet pipe 527 by the piston plate. After the pushing protrusion 370 passes the load-bearing roller 525, under the action of the resilience of the return spring 524, the load-bearing seat 522 moves back to its original position and the piston plate moves back. Furthermore, the space between the inside of the cylinder part 521 and the piston plate increases, so that the cylinder part 521 sucks the external air flow through the air inlet pipe 528. Thus, the air flow can be cyclically sprayed towards the filter chamber through the air outlet part 550.

[0036] In one embodiment, as Figures 1-5 shown, the air outlet part 550 includes a gas guiding rod 551 and an arc-shaped gas guiding pipe 552. One end of the gas guiding rod 551 is fixedly connected to the inside of the suspension rod 510, and the other end extends towards the discharge port 220. The gas guiding rod 551 is connected to one end of the air outlet pipe 527. The arc-shaped gas guiding pipe 552 is arranged at one end of the gas guiding rod 551 towards the discharge port 220, and the arc-shaped gas guiding pipe 552 is located above the filter chamber. A plurality of jet nozzles 553 are arranged on the end face of the arc-shaped gas guiding pipe 552 facing the filter chamber. In the embodiment of the present invention, the air flow inside the cylinder part 521 is introduced into the inside of the gas guiding rod 551 through the air outlet pipe 527. The air flow flows into the arc-shaped gas guiding pipe 552 and is sprayed towards the filter chamber in a dispersed manner by the plurality of jet nozzles 553, thereby effectively cleaning the raw liquid and impurities on the surface of the filter plate 310.

[0037] In one embodiment, as Figures 1-5As shown, a lower support rod 540 is provided at the bottom of the suspension rod 510, and the knocking assembly 530 includes a lower support arm 531, an arc-shaped knocking roller 532, a rotating shaft seat 533, and an upper bearing swinging part 534. The rotating shaft seat 533 is rotatably arranged at the end of the lower support rod 540, and both the upper bearing swinging part 534 and the lower support arm 531 are arranged on the rotating shaft seat 533. One end of the upper bearing swinging part 534 extends upward to the side of the push plate strip 526, and one end of the lower support arm 531 extends downward to the lower side of the filter plate 310. The arc-shaped knocking roller 532 is arranged at the end of the lower support arm 531 on the lower side of the filter plate 310. In the embodiment of the present invention, when the bearing seat 522 moves under the action of the jacking protrusion 370 and the return spring 524, the push plate strip 526 can act on the upper bearing swinging part 534, and through the upper bearing swinging part 534, the rotating shaft seat 533 rotates reciprocally. The rotating shaft seat 533 drives the lower support arm 531 to swing, and the arc-shaped knocking roller 532 swings along with the lower support arm 531 and knocks on the lower surface of the filter plate 310, so that the filter plate 310 vibrates.

[0038] In one embodiment, as Figure 1 and Figure 2 shown, an outer annular material guiding groove 400 is further provided on the outer wall of the cylindrical shell 200, and the outer annular material guiding groove 400 is arranged along the edge of the discharge port 220. An inclined downward discharge channel 410 is provided on the side of the outer annular material guiding groove 400. In the embodiment of the present invention, the impurities discharged through the discharge port 220 slide into the inner part of the outer annular material guiding groove 400, and then under the guidance of the outer annular material guiding groove 400, they slide out through the discharge channel 410, so as to facilitate unified collection.

[0039] The above embodiments provide a fragrance emulsification production raw material processing device. Among them, the rotary driving member 800 drives the filtering mechanism 300 to rotate inside the cylindrical housing 200. The liquid injection assembly 600 injects the raw material liquid to be filtered into the filtering chamber passing through its top. The raw material liquid to be filtered is directly sprayed on the surface of the filter plate 310. The raw material liquid passes through the filter holes of the filter plate 310 and flows into the partition member 320. The filtered raw material liquid is discharged from the bottom of the partition member 320. The impurities in the raw material liquid will remain inside the filtering chamber and on the surface of the filter plate 310. Due to the rotation of the entire filtering mechanism 300 and the filter plate 310 being a conical surface, when the filter plate 310 rotates, the impurities on the filter plate 310 gradually slide to the lower edge of the filter plate 310. When the filtering chamber rotates to the discharge port 220, the impurities at the lower edge of the filter plate 310 can be discharged through the discharge port 220, thereby realizing the separation of impurities and the raw material liquid. During the rotation of the upper retaining ring 350, the upper retaining ring 350 acts on the air jet assembly and causes the air jet assembly to inject air into the filtering chamber at the discharge port 220. The air flow acts on the filter plate 310 and flows out through the discharge port 220 and the sieve holes of the filter plate 310. The air flow can carry away the impurities attached to the surface of the filter plate 310 and blow off the raw material liquid attached to the filter holes of the filter plate 310. During the process of the air jet assembly spraying air, it also drives the corresponding knocking assembly 530 to swing around its connection with the bottom of the suspension rod 510. Thus, the bottom of the knocking assembly 530 can intermittently knock the bottom of the filter plate 310, causing the filter plate 310 to vibrate. Thereby, the raw material liquid in the filter holes of the filter plate 310 is shaken off, and the impurities attached to the surface of the filter plate 310 vibrate and slide off. Thus, the impurities on the surface of the filter plate 310 are effectively cleaned, avoiding blockage. At the same time, since multiple filtering chambers are in a rotating state, the filtering chambers all circulate through the liquid injection position of the liquid injection assembly 600 and the discharge port 220. Thus, the impurities and the raw material liquid can be discharged without stopping the liquid injection, improving the filtering efficiency.

[0040] As described above, the above are only specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.

Claims

1. A raw material processing equipment for fragrance emulsion production, comprising an outer support, a cylindrical shell and a filtering mechanism, wherein the cylindrical shell is fixed to the side of the outer support in a suspended manner, characterized in that: The filter mechanism is arranged inside the cylindrical shell and comprises a filter plate, a partition member, a lower outlet cone and an upper retaining ring; The filter plate is a conical structure and the lower edge of the filter plate is rotatably connected to the inner wall of the cylindrical shell. There are multiple partition members and the multiple partition members are evenly distributed on the conical surface of the filter plate. The upper retaining ring is arranged on the top of the filter plate and the side wall of the upper retaining ring is fixedly connected to the end of the partition member. Multiple filter chambers are formed between the filter plate, the partition member, the upper retaining ring and the cylindrical shell; A discharge port is provided on the outer wall of the cylindrical shell, and the bottom edge of the discharge port is flush with the lower edge of the filter plate. The lower lead-out cone is provided at the bottom of the filter plate and is used to discharge the filtered raw material liquid. It also includes a jet vibration mechanism, a liquid injection assembly and a rotary drive member; The rotary drive member is arranged on the outer bracket and connected to the filter plate, and the rotary drive member is used to drive the filter mechanism to rotate; The jet vibration mechanism includes a suspension rod, at least one jet assembly and at least one knocking assembly; The suspension rod is located inside the upper retaining ring and the top of the suspension rod is fixedly connected to the top of the outer bracket through the upper fixed support arm. The jet assembly is arranged on the side wall of the suspension rod and the jet assembly extends away from one end of the suspension rod toward one side of the discharge port. The knocking assembly is rotatably arranged at the bottom of the suspension rod, and the upper end of the knocking assembly extends to the corresponding side of the jet assembly and the lower end extends to the lower side of the filter plate; When the upper baffle ring rotates, the upper baffle ring can act on the jet assembly and introduce airflow into the filter chamber that rotates to the side of the discharge port; during the process of the jet assembly introducing airflow into the filter chamber, the jet assembly also drives the knocking assembly to swing around the connection between it and the suspension rod, and the bottom of the swinging knocking assembly can knock the lower surface of the filter plate; The liquid injection assembly is arranged on the outer bracket, the top of the liquid injection assembly extends to the upper side of the filter plate, and the liquid injection assembly is used to introduce the raw material liquid to be filtered into the filter chamber away from the discharge port.

2. The fragrance emulsification production raw material processing equipment according to claim 1, characterized in that: The lower edge of the filter plate is provided with a lower annular frame, the inner wall of the cylindrical shell is provided with a supporting ring, and the upper surface of the supporting ring is rotatably matched with the lower annular frame; The lower annular frame is provided with a plurality of external connection parts evenly distributed in the circumferential direction, and the ends of the external connection parts away from the lower annular frame extend from the lower side of the cylindrical shell to the side of the cylindrical shell and are connected to the rotary drive member.

3. The fragrance emulsification production raw material processing equipment according to claim 2, characterized in that: The rotary drive member includes a gear ring portion and a rotary motor; The gear ring part is rotatably arranged on the outer wall of the cylindrical shell near the bottom and multiple external connection parts are fixedly connected to the gear ring part. The rotating motor is arranged on the outer bracket and a gear part is arranged at the output end of the rotating motor, and the gear part is meshed with the gear ring part.

4. The fragrance emulsification production raw material processing equipment according to claim 1, characterized in that: The liquid injection assembly comprises a liquid storage tank, a liquid guide tube and a liquid injection head; The liquid storage tank is arranged on the outer bracket and an injection pump is arranged in the liquid storage tank. The liquid outlet end of the injection pump is connected to one end of the liquid guide tube. The end of the liquid guide tube away from the injection pump extends to the upper side of the filter mechanism and is provided with an injection head.

5. The fragrance emulsification production raw material processing equipment according to claim 4, characterized in that: An upper annular cover plate is arranged at the top edge of the cylindrical shell, a liquid injection port is arranged at the upper annular cover plate, and a liquid injection head is installed in the liquid injection port, and an avoidance notch is arranged at the top edge of the partition member.

6. The fragrance emulsification production raw material processing equipment according to claim 1, characterized in that: The inner wall of the upper retaining ring away from the partition member is provided with a plurality of circumferentially distributed push-up protrusions; The jet assembly includes a cylinder assembly and a gas outlet; The cylinder assembly is arranged on the outer wall of the suspension rod, and one end of the cylinder assembly away from the suspension rod elastically contacts the inner wall of the upper retaining ring; One end of the air outlet is fixed to the side wall of the suspension rod, and the other end of the air outlet faces the discharge port and extends to the upper side of the filter chamber of the filter mechanism, and the cylinder assembly is connected to the air outlet; When the push-up protrusion rotates to the cylinder assembly and contacts therewith, the push-up protrusion can compress the cylinder assembly and enable the cylinder assembly to introduce gas into the gas outlet portion.

7. The fragrance emulsification production raw material processing equipment according to claim 6, characterized in that: The cylinder assembly comprises a cylinder part, a bearing seat, a piston rod, a return spring, a bearing roller and a pushing strip; One end of the cylinder part is fixed on the outer wall of the suspension rod and a piston plate is arranged inside the cylinder part. An air outlet pipe and an air inlet pipe are arranged on the outer wall of the cylinder part, and both the air outlet pipe and the air inlet pipe are provided with a one-way valve, and the air outlet pipe is also connected to the air outlet part; One end of the piston rod passes through the end wall of the cylinder part and is connected to the piston plate. The force-bearing seat is arranged at the end of the piston rod away from the cylinder part, and the force-bearing seat and the end of the cylinder part are connected by a reset spring. The reset spring is provided with a force-bearing roller and a pushing strip. The force-bearing roller rolls and contacts the inner wall of the upper retaining ring, and the pushing strip is connected to the knocking assembly.

8. The fragrance emulsification production raw material processing equipment according to claim 7, characterized in that: The air outlet portion includes an air guide rod and an arc-shaped air guide pipe; One end of the air guide rod is fixedly connected to the inside of the suspension rod and the other end extends toward the discharge port, and the air guide rod is connected to one end of the air outlet pipe; The arc-shaped air guide pipe is arranged at one end of the air guide rod facing the discharge port and is located on the upper side of the filter chamber. The end surface of the arc-shaped air guide pipe facing the filter chamber is provided with a plurality of air jet heads.

9. The fragrance emulsification production raw material processing equipment according to claim 7, characterized in that: The bottom of the suspension rod is provided with a lower supporting rod, and the knocking assembly includes a lower supporting arm, an arc-shaped knocking roller, a rotating shaft seat and an upper bearing swinging part; The rotating shaft seat is rotatably arranged at the end of the lower supporting rod and the upper bearing swing part and the lower supporting arm are both arranged on the rotating shaft seat, and one end of the upper bearing swing part extends upward to the side of the pushing slat; One end of the lower support arm extends downward to the lower side of the filter plate, and the arc-shaped knocking roller is arranged at the end of the lower support arm at the lower side of the filter plate.

10. The fragrance emulsification production raw material processing equipment according to claim 1, characterized in that: An outer annular material guide groove is also arranged on the outer wall of the cylindrical shell and is arranged along the edge of the discharge port. A discharge channel inclined downward is arranged on the side of the outer annular material guide groove.

Citation Information

Patent Citations

  • Emulsion circulating device applied to production line

    CN220345214U

  • Filter apparatus and its method

    JP2001149811A