Filtering and separating device for hotpot condiment

Through the design of the filter frame and transfer mechanism, and the synergistic effect of the partition and collection frame, the blockage and residue problems of the hot pot base filtering and separation device are solved, uninterrupted and efficient filtration and transfer are achieved, and production efficiency is improved.

CN120733403AInactive Publication Date: 2025-10-03CHENGDU SHENGEN BIOTECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202511252899.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-03
Publication Date
2025-10-03
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing hot pot soup base filtering and separation device is prone to clogging during uninterrupted filtering operations, and a large amount of solid spices remain, affecting production efficiency.

Method used

The filter frame and transfer mechanism in the box are used, and the synergistic effect of the partition and the collection frame can achieve uninterrupted filtration and reduce the residual solid spices. The up and down shaking of the collection frame is used to transfer the solid spices, and combined with the power equipment drive, equipment interference and blockage are avoided.

Benefits of technology

It realizes uninterrupted filtering operation, reduces solid spice residue, improves production efficiency and reduces the risk of equipment blockage.

✦ Generated by Eureka AI based on patent content.

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Abstract

A hotpot condiment filtering and separating device relates to the field of material separation and comprises a box body, a filter screen and a filter screen, the filtering mechanism comprises a filtering frame arranged in the box body, arc-shaped notches are formed in the bottoms of the two sides of the filtering frame in the length direction, an arc-shaped filtering plate is arranged between the notches, and partition plates moving along the tracks of the notches are arranged in the notches and used for sealing the notches; the transfer mechanism comprises two arc-shaped baffles which are arranged on the two sides of the filter frame respectively, the baffles and the notches are coaxially arranged, first rotating shafts which are coaxially arranged and rotate around the axes of the first rotating shafts are arranged on the inner sides of the baffles, two collecting frames which are arranged in a central symmetry mode are installed on the first rotating shafts in the circumferential direction of the first rotating shafts, and the collecting frames are arranged in a shaking mode in the vertical direction; one side, far away from the first rotating shaft, of each collecting frame is arc-shaped, filtering holes are formed in the arc-shaped side and the bottom of each collecting frame, when the first rotating shaft is static, one collecting frame is matched in the corresponding notch, and the arc-shaped side of each collecting frame and the corresponding filtering plate form a semicircle. According to the device, filtering operation can be continuously carried out, and oil liquid residues are reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of material separation, and in particular to a hot pot base filtering and separation device. Background Art

[0002] As a compound condiment, hot pot base requires mixing and frying edible oil with various spices during its production and processing, and then packaging it after cooling. However, in order to meet the different needs of consumers, facilitate its storage and transportation, and reduce the risk of leakage, the oil and solid spices of the hot pot base are separated and packaged separately.

[0003] In the prior art, there are usually multiple ways to filter and separate hot pot base. For example, a horizontal centrifugal device is used to separate the oil and solid spices by centrifugation during the transportation of the hot pot base. Although the filtering and separation operation can be completed in one go, the solid spices will accumulate in the equipment and there will be a large amount of residue, which is prone to clogging and inconvenient to clean.

[0004] Alternatively, segmented filtration and separation may be used. For example, the hot pot base is directly put into a filter cartridge. After a certain amount of solid spices accumulates in the filter cartridge, the filtration and separation operation is suspended. The filter cartridge is then taken out and the solid spices in the filter cartridge are put into the filter cloth. The remaining oil is separated by rotary centrifugation. During this process, when solid spices accumulate in the filter cartridge, the filter pores may be clogged, thereby affecting the filtration effect of the filter cartridge. If there is too much residual oil in the filter cartridge, the burden of subsequent secondary filtration and separation operations will increase, and the suspension of the filtration operation will also have a certain impact on production efficiency, which is not conducive to improving production efficiency. Summary of the Invention

[0005] In response to the above-mentioned deficiencies in the related existing technologies, the present application provides a hot pot base filtering and separation device that can perform filtering operations uninterruptedly, reduce oil residue, improve efficiency, and has strong practicality.

[0006] In order to achieve the above object, the present invention adopts the following technologies: A hot pot soup base filtering and separation device comprises a box body, a filtering mechanism, and a transfer mechanism.

[0007] The box body is arranged through the top and bottom; the filtering mechanism includes a filter frame arranged inside the box body, and arc-shaped notches are provided at the bottom on both sides of the filter frame in the length direction, and an arched filter plate is provided between the notches. A partition moving along its trajectory is provided in the notch, and the partition is arc-shaped and used to seal the notch; the transfer mechanism includes two arc-shaped baffles respectively arranged on both sides of the filter frame, the baffles are coaxially arranged with the notches, and a first rotating shaft coaxially arranged and rotating around its own axis is provided on the inner side of the baffle, and two collecting frames arranged symmetrically around the first rotating shaft are installed around its own circumferential direction, and the collecting frame is set to shake in the vertical direction, and the side of the collecting frame away from the first rotating shaft is arc-shaped, and filter holes are provided on its arc side and bottom. When the first rotating shaft is stationary, one of the collecting frames fits in the notch, and its arc side is coaxial with the filter plate to form a semicircle. The arc side edge of the other collecting frame is lower than the bottom end of the baffle. When the first rotating shaft rotates, one of the collecting frames contacts the inner wall of the baffle on the side close to the first rotating shaft.

[0008] Furthermore, the partition is passed through the side wall of the filter frame and is provided with a protrusion at the end. The protrusion is sleeved on the guide rod. The guide rod is arc-shaped, and one end is installed on the bottom block and the other end is installed on the filter frame. The bottom block is installed inside the box body. A first spring is sleeved on the guide rod. The two ends of the first spring respectively abut against the bottom block and the protrusion, and are always in a compressed state.

[0009] Furthermore, a first convex strip is provided at both ends of the filter frame in the length direction, and a second convex strip is provided at both ends of the collecting frame. When in use, the first convex strip and the second convex strip are both fitted in the limit block. A plurality of cross bars are provided on the side of the limit block. The cross bars pass through the box body and are installed on the side plate and are passed through the movable plate. The movable plate is connected to the movable end of the horizontal linear mechanism. The horizontal linear mechanism is installed on the box body. A second spring is provided on the cross bar. The two ends of the second spring respectively abut against the movable plate and the side plate and are always in a compressed state. A retaining ring is provided at the end of the cross bar for abutting against the movable plate.

[0010] Furthermore, two push plates are provided on both sides of the box body, respectively located on both sides of the length direction of the filter frame. The outer ends of the push plates are connected to the movable plate. The push plates are arc-shaped and are coaxially arranged with the partition. The end of the push plate close to the center of the box body is provided with a slope. When used, the slope contacts the protrusion.

[0011] Furthermore, guide plates are provided on both sides of the length direction below the filter plate. The upper ends of the guide plates are arc-shaped and are coaxial and have the same diameter as the baffle.

[0012] Furthermore, a connecting plate is provided on the side of the collection frame, the connecting plate is sleeved on the connecting rod, the connecting rod is installed on the rotating plate, the rotating plate is installed on the first rotating shaft, a second retaining ring is provided at the end of the connecting rod, and a third spring is sleeved on the connecting rod. The two ends of the third spring are respectively abutted against the connecting plate and the rotating plate, and are always in a compressed state. The two ends of the first rotating shaft pass through the box body and are rotatably installed on the side frame. The side frame is installed on the box body. One end of the first rotating shaft is connected to the output end of the first power equipment, and the first power equipment is installed on the side frame.

[0013] Furthermore, cams are provided at both ends of the baffle, and the cams are installed on the second rotating shaft. Two symmetrically arranged arc holes are provided on both sides of the box body. The second rotating shaft slides in the arc hole, and when the second rotating shaft is located at the lowest end of the arc hole, it rotates around its own axis. Protrusions are provided at both ends of the collection frame. When in use, the cam contacts the surface of the protrusion.

[0014] Furthermore, a driven gear is installed on the second rotating shaft, the driven gear is meshed with the ring gear, the ring gear is installed on the third rotating shaft, the third rotating shaft is rotatably installed on the box body, the ring gear is meshed with the driving gear, the driving gear is installed on the transmission shaft, the transmission shaft is rotatably installed on the box body, and one end is connected to the output end of the second power equipment, and the second power equipment is installed on the box body; the second rotating shaft is rotatably installed on the support rod, one end of the support rod is sleeved on the sliding rod, the sliding rod is arc-shaped, and is coaxially arranged with the third rotating shaft, and is installed on the box body, and a positioning rod is passed through the other end of the support rod. When used, one end of the positioning rod is passed through the ring gear, and the other end of the positioning rod is passed through the bracket. The bracket is installed on the support rod, and a retaining ring is provided on the positioning rod, and a fourth spring is sleeved on it. The two ends of the fourth spring respectively abut the bracket and the retaining ring, and are always in a compressed state.

[0015] Furthermore, rotating rods are installed at both ends of the first rotating shaft, and push blocks are installed at both ends of the rotating rods in a centrally symmetrical arrangement. A slope is provided on the side of the push block away from the box body, and a U-shaped plate is provided at the end of the positioning rod. The opening of the U-shaped plate faces the second rotating shaft. When in use, the slope of the push block contacts the bottom edge of the U-shaped plate and fits in the U-shaped plate.

[0016] The beneficial effects of the present invention are: through the synergistic effect of the collecting frame and the partition, the solid spices in the collecting frame can be transferred during the uninterrupted filtering operation, thereby improving production efficiency; when the solid spices in the collecting frame are transferred, the collecting frame is shaken up and down, which not only allows the solid spices in the collecting frame to fall fully and reduces the residual solid spices in the collecting frame, but also effectively reduces the possibility of clogging of the collecting frame; not only can the transfer and rotation of the cam be achieved through a driving source, but also interference between the two during the rotation of the collecting frame is avoided. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present invention.

[0018] Figure 1 It is a schematic three-dimensional diagram of the overall structure of an embodiment of the present application.

[0019] Figure 2 This is a schematic cross-sectional view of the overall structure of an embodiment of the present application.

[0020] Figure 3 This is a front cross-sectional view of an embodiment of the present application.

[0021] Figure 4 This is a side cross-sectional view of an embodiment of the present application.

[0022] Figure 5 This is a three-dimensional schematic diagram of the cross-sectional structure of the filtering mechanism of an embodiment of the present application.

[0023] Figure 6 for Figure 5 A magnified schematic diagram of .

[0024] Figure 7 This is a schematic diagram of the cross-sectional structure of the filter frame according to an embodiment of the present application.

[0025] Figure 8 This is a three-dimensional schematic diagram of the filter frame and the transfer frame cooperating with each other according to an embodiment of the present application.

[0026] Figure 9 This is a three-dimensional schematic diagram of the transfer mechanism of an embodiment of the present application.

[0027] Figure 10 for Figure 9 Enlarged schematic diagram of point B.

[0028] Figure 11 This is a three-dimensional schematic diagram of the transfer frame of an embodiment of the present application.

[0029] Description of reference numerals: 100 - housing, 200 - filtering mechanism, 300 - transferring mechanism, 101 - bottom block, 102 - arc-shaped hole, 103 - side frame, 201 - filter frame, 202 - notch, 203 - filter plate, 204 - partition, 205 - protrusion, 206 - guide rod, 207 - first spring, 208 - first protrusion, 209 - limit block, 210 - cross bar, 211 - moving plate, 212 - side plate, 213 - second spring, 214 - retaining ring, 215 - push plate, 216 - drainage plate, 301 - baffle, 302 - first rotating shaft, 303—collection frame, 304—second ridge, 305—connecting plate, 306—connecting rod, 307—rotating plate, 308—second retaining ring, 309—third spring, 310—cam, 311—second rotating shaft, 312—protrusion, 313—driven gear, 314—gear ring, 315—third rotating shaft, 316—driving gear, 317—transmission shaft, 318—support rod, 319—sliding rod, 320—positioning rod, 321—bracket, 322—retaining ring, 323—fourth spring, 324—rotating rod, 325—push block, 326—U-shaped plate. DETAILED DESCRIPTION

[0030] To make the objectives, technical solutions and advantages of the embodiments of the present invention more clear, the embodiments of the present invention are described in detail below with reference to the accompanying drawings. However, the embodiments described in the present invention are only part of the embodiments of the present invention, rather than all the embodiments.

[0031] like Figures 1 to 11 As shown, an embodiment of the present application provides a hot pot base filtering and separation device, including: a box body 100, a filtering mechanism 200, and a transfer mechanism 300.

[0032] The box body 100 is set through from top to bottom; the filtering mechanism 200 includes a filter frame 201 arranged inside the box body 100, and the bottom of the filter frame 201 on both sides in the length direction is provided with an arc-shaped notch 202, and an arched filter plate 203 is provided between the notch 202. A partition 204 moving along its trajectory is provided in the notch 202, and the partition 204 is arc-shaped and used to seal the notch 202; the transfer mechanism 300 includes two arc-shaped baffles 301 respectively provided on both sides of the filter frame 201, the baffle 301 is coaxially arranged with the notch 202, and a first rotating shaft 302 coaxially arranged and rotating around its own axis is provided on the inner side of the baffle 301. The first rotating shaft 302 is installed with two collecting frames 303 arranged symmetrically around its own circumferential direction. The collecting frame 303 is set to shake in the vertical direction, and the side of the collecting frame 303 away from the first rotating shaft 302 is arc-shaped. The curved side and bottom of the collecting frame 303 are provided with filter holes. When the first rotating shaft 302 is in a stationary state, there is a collecting frame 303 in the notch 202, and at this time, the curved side of the collecting frame 303 is coaxial with the filter plate 203 and forms a semicircle, so that the lower end of the filter frame 201 forms an integral filtering structure, thereby filtering the hot pot base. At this time, the curved side edge of the other collecting frame 303 is lower than the bottom end of the baffle 301. Shaking the collecting frame 303 up and down can shake off all the separated solid spices. When the first rotating shaft 302 rotates, the partition 204 closes the notch 202. At this time, only the filter plate 203 filters the hot pot base. One of the collecting frames 303 close to the first rotating shaft 302 contacts the inner wall of the baffle 301 to prevent the solid spices in the collecting frame 303 from slipping prematurely.

[0033] Specifically, if Figure 1-Figure 5 As shown, the partition 204 is arranged in the side wall of the filter frame 201, and a protrusion 205 is provided at the end. The protrusion 205 is sleeved on the guide rod 206. The guide rod 206 is arc-shaped, and one end is mounted on the bottom block 101, and the other end is mounted on the filter frame 201. The bottom block 101 is mounted inside the box body 100. A first spring 207 is sleeved on the guide rod 206. The two ends of the first spring 207 are respectively abutted against the bottom block 101 and the protrusion 205, and are always in a compressed state. Under the action of the first spring 207, the partition 204 always has a direction The first spring 207 is used to move the partition 204 toward the filter plate 203, and when the collecting frame 303 needs to be driven to rotate, the end of the partition 204 abuts against the filter plate 203 under the action of the first spring 207, blocking the gap 202, so that the hot pot base oil in the filter frame 201 can only fall from under the filter plate 203. When the collecting frame 303 is fitted in the gap 202, a force opposite to the elastic force of the first spring 207 is applied to the partition 204, so that the partition 204 is away from the filter plate 203, so that the two collecting frames 303 and the filter plate 203 form a filtering structure.

[0034] More specifically, Figure 2 、 Figure 5-Figure 7 As shown, two push plates 215 are provided on both sides of the box body 100, respectively located on both sides of the length direction of the filter frame 201. The outer ends of the push plates 215 are connected to the movable plate 211, and the movable plate 211 is movable along the length direction of the filter frame 201. The push plates 215 are arc-shaped and are coaxially arranged with the partition 204. The end of the push plate 215 close to the center of the box body 100 is provided with an inclined surface. When it is necessary to move the partition 204 and open the notch 202, the push plate 215 is moved toward the inner side of the filter frame 201 so that the inclined surface of the push plate 215 contacts the protrusion 205, and under the action of the inclined surface, the partition 204 is forced to move, and the first spring 207 is further compressed until the protrusion 205 contacts the side of the push plate 215, thereby realizing the opening and closing of the notch 202.

[0035] Specifically, if Figure 5-Figure 8 As shown, when the collecting frame 303 and the notch 202 need to be matched, in order to ensure that the arc-shaped side of the collecting frame 303 and the side surface of the filter plate 203 are tightly matched and to avoid a gap between the two during the filtration process, which causes the solid spices to fall through the gap, first ridges 208 are provided at both ends of the filter frame 201 in the length direction, and second ridges 304 are provided at both ends of the collecting frame 303. When the collecting frame 303 is matched in the notch 202, the first ridges 208 and the second ridges 304 are both matched in the limiting blocks 209. , thereby fixing the collection frame 303 and the filter plate 203 relatively to each other, and preventing the collection frame 303 from rotating on its own due to factors such as equipment vibration, and a plurality of cross bars 210 are provided on the side of the limit block 209, the cross bars 210 pass through the box body 100, and are installed on the side plate 212, and are installed on the moving plate 211, and the moving plate 211 is connected to the moving end of the horizontal linear mechanism, and the horizontal linear mechanism is installed on the box body 100, and a second spring 213 is provided on the cross bar 210, and the two ends of the second spring 213 are respectively The first and second ridges 208 and 304 are respectively in contact with the movable plate 211 and the side plate 212, and are always in a compressed state. A retaining ring 214 is provided at the end of the cross bar 210 for contacting the movable plate 211. Under the action of the second spring 213, the limit block 209 always has a tendency to move away from the movable plate 211. When the movable plate 211 is driven toward the box body 100 by the horizontal linear mechanism, the push plate 215 moves synchronously with it. The first ridge 208 and the second ridge 304 are both fitted in the limit block 209, and the side plate 212 is in contact with the limit block 209. The side wall of the box body 100 has now achieved relative fixation between the collecting frame 303 and the filter plate 203, and then continues to drive the movable plate 211 to move, the second spring 213 is further compressed, and the push plate 215 is also further moved. The push plate 215 forces the partition 204 to move, so that the gap 202 is opened, so that the collecting frame 303 can collect the solid spices. The locking of the collecting frame 303 and the opening and closing of the gap 202 can be achieved in stages through a linear mechanism, while ensuring the smooth progress of the filtering operation.

[0036] Specifically, if Figure 2-Figure 3 、 Figure 8 As shown, on both sides of the length direction below the filter plate 203, there are guide plates 216, the upper ends of the guide plates 216 are arc-shaped, and the outer sides are coaxial and have the same diameter as the baffle 301. During the rotation of the collection frame 303, since the collection frame 303 can shake in the vertical direction, during the rotation of the collection frame 303 from bottom to top, it may deviate from the first rotating shaft 302 under the action of its own gravity. In order to ensure that the arc-shaped side of the collection frame 303 can smoothly cooperate with the two sides of the filter plate 203, when the collection frame 303 is rotated to the angle upward, the collection frame 303 is rotated to the angle upward. The collecting frame 303 will first contact the vertical section of the guide plate 216 and force the collecting frame 303 to reset. As the collecting frame 303 continues to rotate, the collecting frame 303 fits into the notch 202. During the rotation of the collecting frame 303, the filter plate 203 is still filtering. The oil filtered from the filter plate 203 flows downward under the guidance of the guide plate 216. This also prevents a large amount of oil from splashing onto the side of the collecting frame 303 close to the first rotating shaft 302 during the rotation of the collecting frame 303, thereby enabling the oil to be collected more comprehensively.

[0037] Specifically, if Figures 9-11When the cam 310 is in the closed position, the cam 310 is in the closed position, and the cam 310 is in the closed position, so that the cam 310 can be rotated to move relative to the cam 310. As shown in FIG, a connecting plate 305 is provided on the side of the collecting frame 303, and the connecting plate 305 is sleeved on the connecting plate 306. The connecting plate 306 is mounted on the rotating plate 307, and the connecting rods 306 on both sides of the first rotating shaft 302 are also arranged symmetrically around the axis of the first rotating shaft 302. The rotating plate 307 is mounted on the first rotating shaft 302. A second retaining ring 308 is provided at the end of the connecting rod 306. A third spring 309 is sleeved on the connecting rod 306. The two ends of the third spring 309 are respectively abutted against the connecting plate 305 and the rotating plate 307 and are always in a compressed state. The two ends of the first rotating shaft 302 pass through the box body 100 and are rotatably mounted on the side frame 103. The side frame 103 is mounted on the box body 100. One end of the first rotating shaft 302 is connected to the output end of the first power device, and the first power device is mounted on the side frame 103. Under the action of the third spring 309, the collecting frame 303 always has a tendency to approach the rotating plate 307. When the solid spices collected in the collection frame 303 need to be poured out, the first power device drives the first rotating shaft 302 to rotate 180 degrees, so that the collection frames 303 on both sides of the first rotating shaft 302 exchange positions, and in the process of rotation of the first rotating shaft 302, the open side of the collection frame 303 collecting the solid spices will contact the inner wall of the baffle 301 to prevent the solid spices from falling prematurely, so as to facilitate the collection of the solid spices. After the rotation of the collection frame 303 is completed, one of the collection frames 303 opens downward, and under the action of the gravity of the collection frame 303, the corresponding third spring 309 is further compressed, and there is a gap between the connecting plate 305 and the rotating plate 307. At this time, by shaking the collection frame 303, all the solid spices in the collection frame 303 can be shaken out. For the collection of solid spices, a material frame can be set under the box body 100 to make the solid spices fall into the material frame.

[0038] Specifically, if Figures 9-11 As shown, cams 310 are provided at both ends of the baffle 301, and the cams 310 are installed on the second shaft 311. Two symmetrically arranged arc holes 102 are provided on both sides of the box body 100, and the center of the arc hole 102 faces the outside of the box body 100, and the second shaft 311 slides in the arc hole 102, and when the second shaft 311 is at the lowest end of the arc hole 102, it rotates around its own axis. Both ends of the collection frame 303 are provided with protrusions 312. When the collection frame needs to be When 303 shakes up and down, the second rotating shaft 311 is moved to the lowest end of the arc hole 102. At this time, the cam 310 is located at a predetermined distance above the protrusion 312, and then the second rotating shaft 311 is driven to rotate. The cam 310 hits the protrusion 312 to achieve the up and down shaking of the collection frame 303. When the collection frame 303 rotates, in order to avoid interference between the cam 310 and the protrusion 312, the second rotating shaft 311 is moved to the highest point of the arc hole 102.

[0039] Specifically, if Figures 9-11 As shown, a driven gear 313 is mounted on the second rotating shaft 311, and the driven gear 313 is meshed with a ring gear 314. The ring gear 314 is mounted on a third rotating shaft 315. The third rotating shaft 315 is rotatably mounted on the box body 100. The ring gear 314 is meshed with a driving gear 316. The driving gear 316 is mounted on a transmission shaft 317. The transmission shaft 317 is rotatably mounted on the box body 100, and one end is connected to the output end of the second power device. The second power device is mounted on the box body 100; the second rotating shaft 311 is rotatably mounted on a support rod 318, and one end of the support rod 318 is sleeved on The sliding rod 319 is arc-shaped and is coaxially arranged with the third rotating shaft 315 and is installed on the box body 100. The sliding rod 319 provides guidance and support for the movement of the support rod 318. The other end of the support rod 318 is penetrated by a positioning rod 320. During the movement of the second rotating shaft 311 along the arc-shaped hole 102, one end of the positioning rod 320 is penetrated by the gear ring 314, and the other end of the positioning rod 320 is penetrated by the bracket 321. The bracket 321 is installed on the support rod 318. The positioning rod 320 is provided with a retaining ring 322 and is sleeved with a fourth spring 323. The two ends of the fourth spring 323 are respectively abutted against the bracket 321 and the retaining ring 322, and are always in a compressed state. Under the action of the fourth spring 323, the positioning rod 320 can be ensured to pass through the ring gear 314, ensuring the relative fixation between the driven gear 313 and the ring gear 314. When the second rotating shaft 311 is at the highest point of the arc-shaped hole 102, the positioning rod 320 passes through the ring gear 314. At this time, the transmission shaft 317 is driven to rotate by the second power device, and the ring gear 314 is driven to rotate. Then the driven gear 313 will only follow the ring gear 314 around the third rotating shaft 315. When the axis rotates, the driven gear 313 does not rotate around its own axis. After the driven gear 313 moves to the lowest point of the arc hole 102, the positioning rod 320 is removed from the ring gear 314. At this time, the ring gear 314 continues to rotate, which drives the driven gear 313 to rotate around its own axis, thereby realizing the rotation of the cam 310. By controlling the relative fixity between the driven gear 313 and the ring gear 314, the circular motion of the second rotating shaft 311 and the rotation around its own axis can be realized through the drive of a power source, thereby reducing power input and reducing costs.

[0040] Specifically, if Figures 9-11As shown, in order to realize the automatic movement of the positioning rod 320, a rotating rod 324 is installed at both ends of the first rotating shaft 302, and a push block 325 is installed at both ends of the rotating rod 324 in a centrally symmetrical arrangement. The push block 325 is provided with an inclined surface on the side away from the box body 100, and a U-shaped plate 326 is provided at the end of the positioning rod 320. The opening of the U-shaped plate 326 faces the second rotating shaft 311. In the process of the driven gear 313 moving from the upper end to the lower end of the arc hole 102, the inclined surface of the push block 325 will contact the bottom edge of the U-shaped plate 326, and as the driven gear 313 continues to move, the push block 325 will cooperate with the U-shaped plate In 326, the fourth spring 323 is further compressed, thereby moving the positioning rod 320 out of the ring gear 314. At this time, the ring gear 314 can drive the driven gear 313 to rotate. When the driven gear 313 needs to be reset upward, the first rotating shaft 302 is rotated first, and the push block 325 is moved out of the U-shaped plate 326. At this time, the positioning rod 320 will be re-inserted into the ring gear 314 under the action of the fourth spring 323, thereby achieving relative fixation of the ring gear 314 and the driven gear 313. At this time, the ring gear 314 is reversed to reset the driven gear 313 upward, and then the first rotating shaft 302 continues to rotate.

[0041] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Obviously, those skilled in the art may make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if such modifications and variations fall within the scope of the claims and their equivalents, the present invention is intended to include such modifications and variations.

Claims

1. A hot pot soup base filtering and separation device, characterized in that: include: The box body (100) is arranged to penetrate from top to bottom; The filtering mechanism (200) comprises a filter frame (201) disposed inside the box (100), arc-shaped notches (202) being provided at the bottom of both sides in the longitudinal direction of the filter frame (201), an arched filter plate (203) being provided between the notches (202), and a partition (204) being provided in the notch (202) and movable along its trajectory, the partition (204) being arc-shaped and used to seal the notch (202); The transfer mechanism (300) comprises two arc-shaped baffles (301) respectively arranged on both sides of the filter frame (201), the baffles (301) and the notch (202) being coaxially arranged, the inner side of the baffle (301) being provided with a first rotating shaft (302) coaxially arranged and rotating around its own axis, the first rotating shaft (302) being provided with two collecting frames (303) arranged in a centrally symmetrical manner around its own circumferential direction, the collecting frames (303) being arranged to shake in the vertical direction, and the collecting frames (303) being away from the first rotating shaft (30 2) has an arc-shaped side, and filter holes are provided on the arc-shaped side and the bottom thereof; when the first rotating shaft (302) is stationary, one of the collecting frames (303) is fitted into the notch (202), and its arc-shaped side is coaxial with the filter plate (203) to form a semicircle; the arc-shaped side edge of the other collecting frame (303) is lower than the bottom end of the baffle (301); when the first rotating shaft (302) rotates, one of the collecting frames (303) close to the first rotating shaft (302) contacts the inner wall of the baffle (301).

2. The hot pot soup base filtering and separation device according to claim 1, characterized in that: The partition (204) is inserted into the side wall of the filter frame (201) and is provided with a protrusion (205) at the end thereof. The protrusion (205) is sleeved on a guide rod (206). The guide rod (206) is arc-shaped, and one end is mounted on the bottom block (101) and the other end is mounted on the filter frame (201). The bottom block (101) is mounted inside the box body (100). A first spring (207) is sleeved on the guide rod (206). The two ends of the first spring (207) respectively abut against the bottom block (101) and the protrusion (205) and are always in a compressed state.

3. The hot pot soup base filtering and separation device according to claim 2, characterized in that: Both ends of the filter frame (201) in the longitudinal direction are provided with first ridges (208), and both ends of the collection frame (303) are provided with second ridges (304). When in use, the first ridges (208) and the second ridges (304) are both fitted into the limit block (209). The side of the limit block (209) is provided with a plurality of cross bars (210). The cross bars (210) pass through the box body (100) and are installed on the side plate (212), and are also passed through the movable plate ( 211), the movable plate (211) is connected to the movable end of the horizontal linear mechanism, the horizontal linear mechanism is installed on the box body (100), a second spring (213) is sleeved on the cross bar (210), the two ends of the second spring (213) respectively abut against the movable plate (211) and the side plate (212), and are always in a compressed state, and a retaining ring (214) is provided at the end of the cross bar (210) for abutting against the movable plate (211).

4. The hot pot soup base filtering and separation device according to claim 3, characterized in that: Two push plates (215) are provided on both sides of the box body (100), respectively located on both sides of the length direction of the filter frame (201). The outer ends of the push plates (215) are connected to the movable plate (211). The push plates (215) are arc-shaped and are coaxially arranged with the partition plate (204). An end of the push plate (215) close to the center of the box body (100) is provided with an inclined surface. When in use, the inclined surface contacts the protrusion (205).

5. The hot pot soup base filtering and separation device according to claim 1, characterized in that: Drain plates (216) are provided on both sides of the length direction below the filter plate (203). The upper ends of the drain plates (216) are arc-shaped and are coaxial and have the same diameter as the baffle (301).

6. The hot pot soup base filtering and separation device according to claim 1, characterized in that: A connecting plate (305) is provided on the side of the collecting frame (303), and the connecting plate (305) is sleeved on the connecting rod (306). The connecting rod (306) is installed on the rotating plate (307), and the rotating plate (307) is installed on the first rotating shaft (302). A second retaining ring (308) is provided at the end of the connecting rod (306). A third spring (309) is sleeved on the connecting rod (306), and both ends of the third spring (309) respectively abut against the connecting plate (305) and the rotating plate (307) and are always in a compressed state. Both ends of the first rotating shaft (302) pass through the box (100) and are rotatably installed on the side frame (103). The side frame (103) is installed on the box (100). One end of the first rotating shaft (302) is connected to the output end of the first power device, and the first power device is installed on the side frame (103).

7. The hot pot soup base filtering and separation device according to claim 1, characterized in that: Cams (310) are provided at both ends of the baffle (301), and the cams (310) are installed on the second rotating shaft (311). Two symmetrically arranged arc holes (102) are provided on both sides of the box body (100). The second rotating shaft (311) is slidably fitted in the arc holes (102), and when the second rotating shaft (311) is located at the lowest end of the arc holes (102), it rotates around its own axis. Protrusions (312) are provided at both ends of the collection frame (303). When in use, the cams (310) are in surface contact with the protrusions (312).

8. The hot pot soup base filtering and separation device according to claim 7, characterized in that: A driven gear (313) is mounted on the second rotating shaft (311), the driven gear (313) meshes with a ring gear (314), the ring gear (314) is mounted on a third rotating shaft (315), the third rotating shaft (315) is rotatably mounted on the housing (100), the ring gear (314) meshes with a driving gear (316), the driving gear (316) is mounted on a transmission shaft (317), the transmission shaft (317) is rotatably mounted on the housing (100), and one end of the transmission shaft (317) is connected to an output end of a second power device, the second power device being mounted on the housing (100); The second rotating shaft (311) is rotatably mounted on the support rod (318). One end of the support rod (318) is sleeved on the sliding rod (319). The sliding rod (319) is arc-shaped and is coaxially arranged with the third rotating shaft (315) and is mounted on the box body (100). The other end of the support rod (318) is penetrated by a positioning rod (320). When in use, one end of the positioning rod (320) is penetrated by the gear ring (314), and the other end of the positioning rod (320) is penetrated by the bracket (321). The bracket (321) is mounted on the support rod (318). The positioning rod (320) is provided with a retaining ring (322) and is sleeved with a fourth spring (323). The two ends of the fourth spring (323) respectively abut against the bracket (321) and the retaining ring (322) and are always in a compressed state.

9. The hot pot soup base filtering and separation device according to claim 8, characterized in that: A rotating rod (324) is installed at both ends of the first rotating shaft (302), and push blocks (325) are installed at both ends of the rotating rod (324) in a centrally symmetrical arrangement. A slope is provided on the side of the push block (325) away from the box body (100). A U-shaped plate (326) is provided at the end of the positioning rod (320), and the opening of the U-shaped plate (326) faces the second rotating shaft (311). When in use, the slope of the push block (325) contacts the bottom edge of the U-shaped plate (326) and fits into the U-shaped plate (326).