A brine rapid separation device for marinating food
Patent Information
- Application Number
- CN202611226442.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-08-13
- Publication Date
- 2026-09-15
AI Technical Summary
[0003]过滤是最为常见的一种卤水快速分离方式,目前市场上有多种不同类型的过滤式卤水快速分离装置,包括常见的单层滤网式过滤结构和多层滤网式过滤结构,上述滤网式过滤结构虽然都能实现卤水的过滤分离作用,但在实际使用过程中,但也仍然存在较多的问题,平面单层滤网式过滤结构是最为常见的一种,但在使用时,卤水中的卤渣很容易快速堵塞整片滤网,进而影响后续的分离效率,通常需要人工进行手动搅拌,才能完成后续的卤水分离工作;多层式滤网结构虽然能够完成更加高效的分离过滤工作,由于其结构更加复杂,从而导致后续清理工作十分麻烦,因此需要操作人员消耗大量的时间去完成后续清洁工作,十分费时费力
[0023] With the above technical solution, the number of collection boxes can be configured to be two or more, so as to collect the brine in the filtration process and the wastewater generated in the subsequent cleaning process respectively.
Smart Images

Figure CN122745618A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of food processing technology, and specifically relates to a rapid brine separation device for processing braised food. Background Technology
[0002] Rapid separation devices for brine in braised food processing are mainly used to effectively separate impurities and sediments in the brine during the braising process, thereby improving the efficiency of brine use and the quality of braised food. These devices typically separate suspended solid impurities from the liquid brine through methods such as gravity sedimentation, centrifugal separation, or filtration. Specifically: gravity sedimentation utilizes the principle of gravity, allowing the brine to stand for a period of time, enabling heavier impurities to naturally settle to the bottom, from which clear brine can then be drawn; centrifugal separation uses the centrifugal force generated by a rotating centrifuge to rapidly separate solid impurities from the brine, suitable for processing large quantities of brine; filtration uses filter screens or membranes of different pore sizes to separate fine particles from the liquid in the brine, obtaining clear brine.
[0003] Filtration is the most common method for rapid brine separation. Currently, there are various types of filtration-based rapid brine separation devices on the market, including common single-layer and multi-layer filter structures. While these filter structures can achieve brine filtration and separation, they still present several problems in actual use. The planar single-layer filter structure is the most common, but during use, brine residue easily and quickly clogs the entire filter screen, affecting subsequent separation efficiency. Manual stirring is usually required to complete the brine separation process. While multi-layer filter structures can achieve more efficient separation and filtration, their more complex structure makes subsequent cleaning very troublesome, requiring operators to spend a significant amount of time on cleaning, which is time-consuming and labor-intensive. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art and provide a rapid brine separation device for processing braised food.
[0005] The technical solution adopted to solve the above technical problems is: a brine rapid separation device for processing braised food, including a fixed base, a rotating support mechanism rotatably connected to the fixed base, and a rotary drive motor for driving the rotating support mechanism to rotate installed on the top of one side of the fixed base. A brine separation filter screen is fixedly installed at the top center of the rotating support mechanism, and a ring-shaped protective mechanism that cooperates with the brine separation filter screen is also engaged on the top periphery of the rotating support mechanism. A support frame is fixedly connected to one side of the top of the fixed base. An automatic retraction mechanism for lifting the brine separation filter screen is installed on the top of the support frame to prevent brine residue from accumulating at the bottom of the brine separation filter screen and affecting the rapid separation of brine. An automatic cleaning mechanism for cleaning the brine separator filter screen is installed on the inside of the support frame.
[0006] Furthermore, the rotating support mechanism includes a support body, with rotating shafts fixedly connected to both sides of the outer wall of the support body. The two rotating shafts are rotatably connected to the top of both sides of the fixed base. The top periphery of the support body is provided with a mounting slot, and the bottom of the support body is provided with an annular chamfer.
[0007] Through the above technical solution, the rotating support mechanism serves as a support structure, which is used to support the brine separation filter and the annular protective mechanism. The brine separation filter can be fixedly installed on the mounting slot. The middle part of the support body is a hollow structure. During filtration, the brine will flow downward through the middle part of the support body and then flow into the collection box below.
[0008] Furthermore, the brine separation filter screen includes a filter screen body, a metal support ring is fixedly installed on the periphery of the filter screen body, the metal support ring is fixed in the mounting slot by multiple screws, a metal connecting seat is fixedly installed at the bottom center of the filter screen body, a threaded hole is opened at the top center of the metal connecting seat, and a lifting handle is fixedly connected to both sides of the top of the metal support ring.
[0009] Through the above technical solution, the brine separation filter screen is an important component of the brine separation device. During operation, the operator slowly pours the brine to be separated into the filter screen body. At this time, the brine in the brine will quickly pass through the filter screen body, while the brine residue in the brine will be intercepted in the filter screen body. Since the filter screen body adopts an overall concave spherical structure design, when the brine is slowly poured into the filter screen body, the brine residue will concentrate and adhere to the bottom of the filter screen body. At this time, the automatic retraction mechanism can be controlled to start working, thereby lifting the metal connecting seat fixed at the bottom of the filter screen body, so that the bottom of the filter screen body slowly flips up. At this time, the brine can be quickly filtered through the periphery of the filter screen body, thus effectively preventing the brine residue in the brine from quickly covering the entire filter screen.
[0010] Furthermore, the filter body is woven from stainless steel fine wire.
[0011] Through the above technical solution, the filter body woven from stainless steel fine wire is not only structurally strong and stable, but also easy to clean and maintain. At the same time, its concave spherical structure design greatly increases the filtration area of the filter. Combined with the automatic retraction mechanism, it can filter more brine more quickly and shorten the filtration time.
[0012] Furthermore, the annular protective mechanism includes an annular protective cover that engages with the top periphery of the rotating support mechanism. The inner side of the annular protective cover is provided with an inner curved guide ring. The bottom of the inner curved guide ring is in contact with the inner surface of the brine separation filter screen. Multiple evenly distributed fixed handles are fixedly connected to the periphery of the annular protective cover.
[0013] The above technical solution is mainly used to prevent the brine from spilling onto the metal support ring and the mounting slot during the pouring process, thereby reducing the difficulty of subsequent cleaning. The design of the annular protective cover and the inner curved guide ring can ensure that the brine is completely guided into the filter body to avoid contaminating other areas. At the same time, the annular protective cover is equipped with multiple fixed handles on its periphery, making it easy to install and disassemble quickly. Its simple structural design also facilitates daily cleaning and maintenance.
[0014] Furthermore, the automatic take-up and take-down mechanism includes a motor bracket fixed to the top of the support frame, a first servo motor fixedly mounted on the motor bracket, a winch fixedly mounted on the output end of the first servo motor, a steel wire rope wound on the winch, a rotating connecting seat fixedly connected to the bottom of the other end of the steel wire rope, and a threaded connecting rod rotatably connected to the bottom of the rotating connecting seat.
[0015] Through the above technical solution, the automatic winding mechanism serves as the driving unit. The first servo motor can drive the winch to rotate synchronously through the rotation of the output shaft. In turn, the forward and reverse rotation of the winch can drive the wire rope to wind and unwind. During the brine filtration process, the winch can be controlled to wind slowly, and the wire rope and threaded connecting rod can be used to slowly pull the filter screen body upward, thereby causing the bottom of the filter screen body to slowly flip up, allowing the brine accumulated at the bottom of the filter screen body to flow to all sides, thus achieving rapid filtration. After filtration is completed, the first servo motor can be controlled to rotate in the opposite direction, thereby slowly releasing the wire rope, so that the filter screen body can slowly reset. During this process, even if the filter screen body cannot be completely reset due to excessive deformation, the operator can manually hold the threaded connecting rod and push it downward to manually reset the filter screen body. After reset, the threaded connecting rod can be screwed to separate it from the metal connecting seat at the bottom of the filter screen body, thus facilitating the subsequent rotation and cleaning of the filter screen body.
[0016] Furthermore, the bottom end of the threaded connecting rod is threadedly connected to the threaded hole.
[0017] The above technical solution facilitates quick and easy connection and fixation, as well as easy disassembly, allowing for rapid connection and assembly according to actual needs.
[0018] Furthermore, the automatic cleaning mechanism includes a rotating arm rotatably connected to a support frame. A second servo motor is mounted on the top of the outer side of the rotating arm. A spray pipe is fixedly mounted on the output end of the second servo motor. Multiple evenly distributed high-pressure nozzles are provided on the outer side of the spray pipe. A first connector is provided on the inner side of the spray pipe. Two guide holes communicating with the spray pipe are opened on the inner side of the first connector. A water collection hood is also installed between the rotating arm and the first connector. A sealing ring that fits with the first connector is installed on the inner side of the water collection hood. A second connector is provided at the bottom of the water collection hood. A guide pipe is connected to the second connector. A first rotating seat is provided at the bottom of the outer side of the rotating arm. A second rotating seat is provided on the inner side of the support frame. A telescopic cylinder is installed between the first rotating seat and the second rotating seat.
[0019] Through the above technical solution, the automatic cleaning mechanism is mainly used for the automatic cleaning of the rotating support mechanism and the brine separation filter screen after filtration, thereby reducing the workload and labor intensity of operators. Specifically, after the separation and filtration work is completed, the rotary drive motor will drive the rotating support mechanism and the brine separation filter screen to rotate 180 degrees. During this process, the filtered brine residue will automatically fall into the collection box below. When it rotates to the correct position, the piston rod of the telescopic cylinder will extend outward, which will drive the rotating arm to rotate until it reaches a horizontal position. At this time, the spray pipe is also in a horizontal position. Pressurized water is pumped in through the guide pipe. Afterwards, the water flow will enter the water collection hood through the guide pipe, and then enter the interior of the spray pipe through two guide holes. The spray pipe is equipped with multiple evenly distributed high-pressure nozzles. At this time, the water flow will be evenly sprayed out through the multiple high-pressure nozzles. During this process, the second servo motor will drive the spray pipe to rotate 360 degrees through the output shaft. At this time, the high-speed water flow will perform high-pressure spray cleaning on the inner wall of the support and the entire filter body. The bottom of the support is equipped with an annular chamfer, which can play a guiding role during the cleaning process to prevent a large amount of cleaning water from splashing to the outside. After the cleaning is completed, the telescopic cylinder will drive the rotating arm and the spray pipe to automatically reset.
[0020] Furthermore, the spray pipe is fixed to the output end of the second servo motor by fixing screws.
[0021] The above technical solution enables fast and stable connection and fixation, allowing the spray pipe to rotate 360 degrees under the drive of the second servo motor. It also facilitates quick installation and disassembly for subsequent inspection and maintenance.
[0022] Furthermore, a collection box for collecting brine or wastewater is placed on the fixed base.
[0023] With the above technical solution, the number of collection boxes can be configured to be two or more, so as to collect the brine in the filtration process and the wastewater generated in the subsequent cleaning process respectively.
[0024] The beneficial effects of the present invention are as follows: (1) By designing a brine separation filter screen and an automatic feeding mechanism, the present invention can slowly pull the filter screen body upward through a winch and wire rope during brine filtration, thereby causing the bottom of the filter screen body to slowly flip up, so that the brine collected at the bottom of the filter screen body can flow to the surroundings for filtration. This not only achieves rapid separation and filtration of brine and brine residue, but also effectively avoids the situation where a large amount of brine residue accumulates and clogs the filter screen; (2) By designing an automatic cleaning mechanism, the present invention can replace manual labor to quickly complete the high-pressure spray cleaning of the inner wall of the support body and the brine separation filter screen after brine separation. This not only makes the equipment operation convenient and quick, but also reduces the workload and intensity of the operators; (3) By designing a brine separation filter screen with a concave spherical structure, the present invention greatly increases the filtration area of the filter screen. Combined with the automatic feeding mechanism, it can filter more brine more quickly and shorten the filtration time. Attached Figure Description
[0025] Figure 1 This is a first-view structural diagram of the present invention; Figure 2 This is a second-view structural diagram of the present invention; Figure 3 This is the front view of the present invention; Figure 4 This is a schematic diagram of the installation structure of the brine separation filter screen of the present invention; Figure 5 yes Figure 4 A sectional view; Figure 6 This is a first-view structural schematic diagram of the rotating support mechanism of the present invention; Figure 7 This is a second-view structural schematic diagram of the rotating support mechanism of the present invention; Figure 8 This is a first-view structural schematic diagram of the brine separation filter screen of the present invention; Figure 9 This is a second-view structural schematic diagram of the brine separation filter screen of the present invention; Figure 10 This is a first-view structural schematic diagram of the ring-shaped protective mechanism of the present invention; Figure 11 This is a second-view structural schematic diagram of the ring-shaped protective mechanism of the present invention; Figure 12 This is a schematic diagram of the automatic take-up and take-down mechanism of the present invention; Figure 13 This is a first-view structural schematic diagram of the automatic cleaning mechanism of the present invention; Figure 14 This is a second-view structural schematic diagram of the automatic cleaning mechanism of the present invention; Figure 15This is a front view of the automatic cleaning mechanism of the present invention; Figure 16 yes Figure 15 Sectional view along line AA; Figure 17 yes Figure 16 A magnified view of a portion of point A in the middle.
[0026] Reference numerals: 1. Fixed base; 2. Rotary support mechanism; 201. Support body; 202. Rotating shaft; 203. Mounting slot; 204. Annular chamfer; 3. Rotary drive motor; 4. Brine separation filter screen; 401. Filter screen body; 402. Metal support ring; 403. Metal connecting seat; 404. Threaded hole; 405. Lifting handle; 5. Annular protective mechanism; 501. Annular protective cover; 502. Inner curved guide ring; 503. Fixed handle; 6. Support frame; 7. Automatic retraction mechanism; 701. Motor bracket; 702. 703. First servo motor; 704. Winch; 705. Steel wire rope; 706. Rotary connecting seat; 707. Threaded connecting rod; 8. Automatic cleaning mechanism; 808. Rotating arm; 809. Second servo motor; 8000. Spray pipe; 8001. Fixing screw; 8002. High-pressure nozzle; 801. First connector; 802. Guide hole; 803. Water collection cover; 804. Sealing ring; 810. Second connector; 811. Guide pipe; 812. First rotating seat; 813. Second rotating seat; 814. Telescopic cylinder; 9. Collection box. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0028] like Figures 1-17 As shown in the figure, a rapid brine separation device for processing braised food in this embodiment includes a fixed base 1, on which a rotating support mechanism 2 is rotatably connected. The rotating support mechanism 2 includes a support body 201, and two rotating shafts 202 are fixedly connected to both sides of the outer wall of the support body 201. The two rotating shafts 202 are respectively rotatably connected to the top of the two sides of the fixed base 1. The top periphery of the support body 201 is provided with a mounting slot 203, and the bottom of the support body 201 is provided with an annular chamfer 204. The rotating support mechanism 2 serves as a support structure, which is used to support the brine separation filter 4 and the annular protective mechanism 5. The brine separation filter 4 can be fixedly installed on the mounting slot 203. The middle part of the support body 201 is a hollow structure. During filtration, the brine will flow downward through the middle part of the support body 201 and flow into the collection box 9 below.
[0029] In a further embodiment, a rotary drive motor 3 for driving the rotary support mechanism 2 to rotate is installed on the top of one side of the fixed base 1.
[0030] Regarding brine separator filter 4, please refer to... Figures 1-9 A brine separation filter screen 4 is fixedly installed at the top center of the rotating support mechanism 2. The brine separation filter screen 4 includes a filter screen body 401. A metal support ring 402 is fixedly installed on the periphery of the filter screen body 401. The metal support ring 402 is fixed in the mounting slot 203 by multiple screws. A metal connecting seat 403 is fixedly installed at the bottom center of the filter screen body 401. A threaded hole 404 is opened at the top center of the metal connecting seat 403. Lifting handles 405 are fixedly connected to both sides of the top of the metal support ring 402. The brine separation filter screen 4 is an important component of the brine separation device. During operation, the operator slowly pours the brine to be separated into the filter screen body 401. The brine in the broth quickly passes through the filter screen body 401, while the brine residue in the broth is trapped inside the filter screen body 401. Because the filter screen body 401 adopts an overall concave spherical structure design, when the broth is slowly poured into the filter screen body 401, the brine residue will concentrate and adhere to the bottom of the filter screen body 401. At this time, the automatic retraction mechanism 7 can be controlled to start working, thereby lifting the metal connecting seat 403 fixed at the bottom of the filter screen body 401, so that the bottom of the filter screen body 401 slowly flips up. At this time, the brine can be quickly filtered through the periphery of the filter screen body 401, thereby effectively preventing the brine residue in the broth from quickly covering the entire filter screen.
[0031] Furthermore, in this embodiment, the filter body 401 is woven from stainless steel fine wire. The filter body 401 woven from stainless steel fine wire is not only structurally strong and stable, but also easy to clean and maintain. At the same time, its concave spherical structure design greatly increases the filtration area of the filter. Combined with the automatic take-up and take-down mechanism 7, it can filter more brine more quickly and shorten the filtration time.
[0032] Regarding ring-shaped protective mechanism 5, refer to... Figures 10-12The top periphery of the rotating support mechanism 2 is also fitted with an annular protective mechanism 5 that cooperates with the brine separation filter screen 4. The annular protective mechanism 5 includes an annular protective cover 501 fitted with the top periphery of the rotating support mechanism 2. The inner side of the annular protective cover 501 is provided with an inner curved guide ring 502. The bottom of the inner side of the inner curved guide ring 502 is in contact with the inner surface of the brine separation filter screen 4. Multiple evenly distributed fixed handles 503 are fixedly connected to the periphery of the annular protective cover 501. The design of the annular protective mechanism 5 is mainly used to prevent the brine from being spilled onto the metal support ring 402 and the mounting slot 203 during the pouring process, thereby reducing the difficulty of subsequent cleaning. The design of the annular protective cover 501 and the inner curved guide ring 502 can ensure that the brine is completely guided into the filter screen body 401 to avoid contaminating other areas. At the same time, the annular protective cover 501 is provided with multiple fixed handles 503 on its periphery, which makes it easy to install and disassemble quickly. Its simple structural design also facilitates daily cleaning and maintenance.
[0033] Regarding the automatic take-up and take-down mechanism 7, refer to... Figures 1-12 A support frame 6 is fixedly connected to one side of the top of the fixed base 1. An automatic retraction mechanism 7 for lifting the brine separation filter screen 4 is installed on the top of the support frame 6 to prevent brine residue from accumulating at the bottom of the brine separation filter screen 4 and affecting the rapid separation of brine. The automatic retraction mechanism 7 includes a motor bracket 701 fixed to the top of the support frame 6. A first servo motor 702 is fixedly installed on the motor bracket 701. A winch 703 is fixedly installed at the output end of the first servo motor 702. A steel wire rope 704 is wound on the winch 703. A rotating connecting seat 705 is fixedly connected to the bottom of the other end of the steel wire rope 704. A threaded connecting rod 706 is rotatably connected to the bottom of the rotating connecting seat 705. The automatic retraction mechanism 7 serves as a drive unit. The first servo motor 702 can drive the winch 703 to rotate synchronously through the rotation of its output shaft. In turn, the forward and reverse rotation of the winch 703 can drive the steel wire rope 704 to be retracted and extended. During the process, the winch 703 can be controlled to slowly wind the filter screen body 401, and the steel wire rope 704 and threaded connecting rod 706 can be used to slowly pull the filter screen body 401 upward, thereby causing the bottom of the filter screen body 401 to slowly flip up, so that the brine accumulated at the bottom of the filter screen body 401 can flow to all sides, thereby achieving rapid filtration. After filtration is completed, the first servo motor 702 can be controlled to rotate in the opposite direction, thereby slowly releasing the steel wire rope 704, so that the filter screen body 401 slowly resets. During this process, even if the filter screen body 401 cannot be completely reset due to excessive deformation, the operator can manually hold the threaded connecting rod 706 and push it downward to manually reset the filter screen body 401. After reset, the threaded connecting rod 706 can be screwed to separate it from the metal connecting seat 403 at the bottom of the filter screen body 401, thereby facilitating the subsequent rotation and cleaning of the filter screen body 401.
[0034] In this embodiment, the bottom end of the threaded connecting rod 706 is threadedly connected to the threaded hole 404, which facilitates quick connection and fixation, as well as easy disassembly, so that it can be quickly connected and assembled according to actual needs.
[0035] Regarding the automatic cleaning mechanism 8, please refer to... Figures 13-17 An automatic cleaning mechanism 8 for cleaning the brine separator filter 4 is installed on the inner side of the support frame 6. The automatic cleaning mechanism 8 includes a rotating arm 801 rotatably connected to the support frame 6. A second servo motor 802 is installed on the top of the outer side of the rotating arm 801. A spray pipe 803 is fixedly installed at the output end of the second servo motor 802. Multiple evenly distributed high-pressure nozzles 805 are provided on the outer side of the spray pipe 803. A first connector 806 is provided on the inner side of the spray pipe 803. Two guide holes 807 communicating with the spray pipe 803 are opened on the inner side of the first connector 806. There is also a connection between the rotating arm 801 and the first connector 806. A water collection hood 808 is installed, with a sealing ring 809 fitted to the inner side of the water collection hood 808 to fit the first connector 806. A second connector 810 is located at the bottom of the water collection hood 808, and a guide pipe 811 is connected to the second connector 810. A first rotating seat 812 is located at the bottom of the outer side of the rotating arm 801, and a second rotating seat 813 is located on the inner side of the support frame 6. A telescopic cylinder 814 is installed between the first rotating seat 812 and the second rotating seat 813. The automatic cleaning mechanism 8 is mainly used for the automatic cleaning of the rotating support mechanism 2 and the brine separation filter screen 4 after filtration, thereby reducing the workload of operators and reducing work... Specifically, after the separation and filtration work is completed, the rotary drive motor 3 will drive the rotary support mechanism 2 and the brine separation filter screen 4 to rotate 180 degrees. During this process, the filtered brine residue will automatically fall into the collection box 9 below. When it rotates to the correct position, the piston rod of the telescopic cylinder 814 will extend outward, thereby driving the rotating arm 801 to rotate until it reaches a horizontal position. At this time, the spray pipe 803 is also in a horizontal position. When pressurized water is pumped in through the guide pipe 811, the water will enter the water collection hood 808 through the guide pipe 811, and then enter the interior of the spray pipe 803 through the two guide holes 807, spraying... Multiple evenly distributed high-pressure nozzles 805 are provided on the pipe 803. At this time, the water will be sprayed out evenly through the multiple high-pressure nozzles 805. During this process, the second servo motor 802 will drive the spray pipe 803 to rotate 360 degrees through the output shaft. At this time, the high-speed water jet will perform high-pressure spray cleaning on the inner wall of the support body 201 and the entire filter screen body 401. The bottom of the support body 201 is provided with an annular chamfer 204, which can play a guiding role during the cleaning process to prevent a large amount of cleaning water from splashing to the outside. After the cleaning is completed, the telescopic cylinder 814 will drive the rotating arm 801 and the spray pipe 803 to automatically reset.
[0036] In this embodiment, the spray pipe 803 is fixed to the output end of the second servo motor 802 by fixing screws 804, which can achieve fast and stable connection and fixation, allowing the spray pipe 803 to rotate 360 degrees under the drive of the second servo motor 802. It also facilitates quick installation and disassembly for subsequent inspection and maintenance.
[0037] In this embodiment, a collection box 9 for collecting brine or wastewater is placed on the fixed base 1. The number of collection boxes 9 can be configured as two or more, so as to collect the brine in the filtration process and the wastewater generated in the subsequent cleaning process respectively.
[0038] The working principle of this embodiment is as follows: When in use, the brine to be separated is slowly poured into the brine separation filter screen 4. At this time, the brine in the brine will quickly pass through the filter screen body 401, while the brine residue in the brine will be intercepted in the filter screen body 401. The brine residue will gather and adhere to the bottom of the filter screen body 401. At this time, the automatic retraction mechanism 7 can be controlled to start working, thereby lifting the metal connecting seat 403 fixed at the bottom of the filter screen body 401, so that the bottom of the filter screen body 401 slowly flips up. At this time, the brine can be quickly filtered through the periphery of the filter screen body 401 and collected in the collection box 9 below. After filtration is completed, the first servo motor 702 can be controlled to rotate in reverse, thereby slowly releasing the wire rope 704, so that the filter body 401 can be slowly reset. During this process, even if the filter body 401 cannot be completely reset due to excessive deformation, the operator can manually hold the threaded connecting rod 706 and push it down to manually reset the filter body 401. After the separation and filtration work is completed, a new collection box 9 is replaced, and the rotary drive motor 3 is controlled to drive the rotary support mechanism 2 and the brine separation filter screen 4 to rotate 180 degrees. During this process, the filtered brine residue will automatically fall into the collection box 9 below. When it rotates to the correct position, the telescopic cylinder 814 will drive the rotating arm 801 to rotate to a horizontal state. At this time, the spray pipe 803 is also in a horizontal state. When the pressurized water is pumped in through the guide pipe 811, the water will enter the interior of the spray pipe 803 through the guide pipe 811 and the water collection cover 808. Then the water will be sprayed evenly through multiple high-pressure nozzles 805. During this process, the second servo motor 802 will drive the spray pipe 803 to rotate 360 degrees through the output shaft. At this time, the high-speed water jet will perform high-pressure spray cleaning on the inner wall of the support body 201 and the entire filter screen body 401. After cleaning, the telescopic cylinder 814 will drive the rotating arm 801 and the spray pipe 803 to automatically reset.
[0039] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention.
Claims
1. A rapid brine separation device for processing braised food, comprising a fixed base (1), characterized in that: A rotating support mechanism (2) is rotatably connected to the fixed base (1), and a rotating drive motor (3) for driving the rotating support mechanism (2) to rotate is installed on the top of one side of the fixed base (1). The rotating support mechanism (2) has a brine separation filter screen (4) fixedly installed at the top center, and the rotating support mechanism (2) also has a ring-shaped protective mechanism (5) that cooperates with the brine separation filter screen (4) on the top periphery. A support frame (6) is fixedly connected to one side of the top of the fixed base (1). An automatic retraction mechanism (7) for lifting the brine separation filter screen (4) is installed on the top of the support frame (6) to prevent brine residue from accumulating at the bottom of the brine separation filter screen (4) and affecting the rapid separation of brine. An automatic cleaning mechanism (8) for cleaning the brine separator filter (4) is installed on the inner side of the support frame (6).
2. The rapid separation device for brine in braised food processing according to claim 1, characterized in that, The rotating support mechanism (2) includes a support body (201), and two rotating shafts (202) are fixedly connected to both sides of the outer wall of the support body (201). The two rotating shafts (202) are respectively rotatably connected to the top of the two sides of the fixed base (1). The top periphery of the support body (201) is provided with a mounting slot (203), and the bottom of the support body (201) is provided with an annular chamfer (204).
3. The rapid separation device for brine in braised food processing according to claim 2, characterized in that, The brine separation filter (4) includes a filter body (401), a metal support ring (402) is fixedly installed on the periphery of the filter body (401), the metal support ring (402) is fixed in the mounting slot (203) by multiple screws, a metal connecting seat (403) is fixedly installed at the bottom center of the filter body (401), a threaded hole (404) is opened at the top center of the metal connecting seat (403), and a lifting handle (405) is fixedly connected to both sides of the top of the metal support ring (402).
4. The rapid separation device for brine in braised food processing according to claim 3, characterized in that, The filter body (401) is woven from stainless steel fine wire.
5. The rapid separation device for brine in braised food processing according to claim 1, characterized in that, The annular protective mechanism (5) includes an annular protective cover (501) that engages with the top periphery of the rotating support mechanism (2). The inner side of the annular protective cover (501) is provided with an inner curved guide ring (502). The bottom of the inner side of the inner curved guide ring (502) is in contact with the inner surface of the brine separation filter screen (4). The periphery of the annular protective cover (501) is fixedly connected with a plurality of evenly distributed fixed handles (503).
6. The rapid separation device for brine in braised food processing according to claim 3, characterized in that, The automatic take-up and take-down mechanism (7) includes a motor bracket (701) fixed to the top of the support frame (6). A first servo motor (702) is fixedly installed on the motor bracket (701). A winch (703) is fixedly installed at the output end of the first servo motor (702). A steel wire rope (704) is wound on the winch (703). A rotating connecting seat (705) is fixedly connected to the bottom of the other end of the steel wire rope (704). A threaded connecting rod (706) is rotatably connected to the bottom of the rotating connecting seat (705).
7. The rapid separation device for brine in braised food processing according to claim 6, characterized in that, The bottom end of the threaded connecting rod (706) is threadedly connected to the threaded hole (404).
8. The rapid separation device for brine in braised food processing according to claim 1, characterized in that, The automatic cleaning mechanism (8) includes a rotating arm (801) rotatably connected to a support frame (6). A second servo motor (802) is mounted on the top of the outer side of the rotating arm (801). A spray pipe (803) is fixedly mounted on the output end of the second servo motor (802). A plurality of evenly distributed high-pressure nozzles (805) are provided on the outer side of the spray pipe (803). A first connector (806) is provided on the inner side of the spray pipe (803). Two guide holes (807) communicating with the spray pipe (803) are opened on the inner side of the first connector (806). The rotating arm (801) and A water collection cover (808) is also installed between the first connector (806). A sealing ring (809) that fits with the first connector (806) is installed on the inner side of the water collection cover (808). A second connector (810) is provided at the bottom of the water collection cover (808). A guide pipe (811) is connected to the second connector (810). A first rotating seat (812) is provided at the bottom of the outer side of the rotating arm (801). A second rotating seat (813) is provided on the inner side of the support frame (6). A telescopic cylinder (814) is installed between the first rotating seat (812) and the second rotating seat (813).
9. The rapid separation device for brine in braised food processing according to claim 8, characterized in that, The spray pipe (803) is fixed to the output end of the second servo motor (802) by fixing screws (804).
10. The rapid separation device for brine in braised food processing according to claim 1, characterized in that, A collection box (9) for collecting brine or sewage is placed on the fixed base (1).