Lead-free preserved egg processing equipment and processing method thereof

By introducing crushing and shaking mechanisms into lead-free egg processing equipment, the problem of uneven accumulation and packaging of rice husks and chaff is solved, and more efficient recycling and processing quality is achieved.

CN120203254AActive Publication Date: 2025-06-27GAOYOU YOUHUI FOOD CO LTD
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Patent Information

Application Number
CN202510532010.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-06-27
Estimated Expiration
2045-04-25

AI Technical Summary

Technical Problem

In the existing lead-free egg processing equipment, rice husks and chaff are prone to aggregate into groups, affecting their recycling, and uneven packaging, affecting processing quality.

Method used

A lead-free egg processing equipment is designed, including a crushing mechanism and a shaking mechanism. The crushing mechanism separates the rice husk and chaff from the solidified mud by heating, crushing and filtration, and realizes its recycling; the shaking mechanism moves the duck eggs left and right to ensure that the rice husk and chaff are evenly wrapped.

Benefits of technology

It effectively reduces the recycling loss of rice husks and chaff, improves wrapping uniformity, and ensures processing quality and recycling efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses lead-free preserved egg processing equipment and a processing method thereof, and relates to the technical field of lead-free preserved egg processing.The lead-free preserved egg processing equipment comprises a wrapping mechanism, a crushing mechanism for crushing clustered rice hulls and chaff is arranged on one side of the wrapping mechanism, and a shaking mechanism for driving duck eggs wrapped with mud to move left and right is arranged on the upper surface of the crushing mechanism; a shaking mechanism is arranged on one side of the wrapping mechanism, a conveying mechanism used for conveying and feeding the filtered rice husks and the rice bran is arranged on one side of the shaking mechanism, and scattering equipment used for scattering the rice husks and the rice bran is arranged on the upper surface of the side, close to the wrapping mechanism, of the shaking mechanism. In addition, the shaking mechanism is arranged to drive the duck eggs to move left and right in a reciprocating mode, and the wrapping uniformity of the rice hulls and the cavings is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of lead-free preserved egg processing, and particularly to a lead-free preserved egg processing device and a processing method thereof. Background Art

[0002] Preserved eggs, also known as songhua eggs, are a traditional food made by pickling duck eggs, chicken eggs or quail eggs in an alkaline solution. Lead-free preserved eggs refer to preserved eggs that do not use harmful substances such as lead during the production process, and lead-free preserved eggs are rich in protein, lecithin, lutein and minerals, which help to supplement nutrition, strengthen the brain and protect blood vessels.

[0003] At present, there are two methods for making lead-free preserved eggs: the mud wrapping method and the soaking method. In the mud wrapping method, the prepared mud is evenly wrapped on the duck eggs, and then rice husks and bran are attached to the surface of the mud to increase the air permeability and adhesion of the mud and prevent the mud from drying too quickly. However, when most of the duck eggs wrapped with mud enter the rice husk and bran equipment, at this time, part of the mud falls on the rice husk and bran wrapping equipment and comes into contact with the rice husks and bran, causing the rice husks and bran to agglomerate, affecting the recycling of rice husks and bran. Moreover, most rice husk and bran wrapping equipment usually relies on the free rolling of duck eggs to wrap the rice husks and bran on the outer surface of the duck eggs, which is prone to uneven wrapping, affecting the processing quality. In view of the above problems, the inventor proposes a lead-free preserved egg processing device and a processing method thereof to solve the above problems. Summary of the Invention

[0004] In order to solve the problems that the agglomeration of rice husks and bran affects recycling and the uneven wrapping of rice husks and bran; the purpose of the present invention is to provide a lead-free preserved egg processing device and a processing method thereof.

[0005] To solve the above technical problems, the present invention adopts the following technical scheme: a lead-free preserved egg processing device includes a wrapping mechanism. One side of the wrapping mechanism is provided with a crushing mechanism for crushing the agglomerated rice husks and bran. The upper surface of the crushing mechanism is provided with a shaking mechanism for driving the left and right movement of the duck eggs wrapped with mud. One side of the shaking mechanism is provided with a transportation mechanism for transporting and feeding the filtered rice husks and bran. The upper surface of the side of the shaking mechanism close to the wrapping mechanism is provided with a feeding device for spreading the rice husks and bran.

[0006] Preferably, the wrapping mechanism includes a storage frame. A rotating rod is rotatably installed in the storage frame. Three rotating frames are fixedly installed on the outer surface of the rotating rod, and the rotating frames are in movable contact with the outer surface of the duck eggs. A first motor is fixedly installed on the side surface of the storage frame, and one end of the output shaft of the first motor close to the storage frame is fixedly connected to the rotating rod.

[0007] Preferably, the crushing mechanism includes a base located on one side of the storage box. Two conveying rollers are rotatably installed on the side of the base far from the storage box. A conveyor belt is drivingly installed between the two conveying rollers, and the rice husks and bran are in active contact with the upper surface of the conveyor belt. A heating roller is rotatably installed on the side of the base close to the storage box, and the outer surface of the heating roller is in active contact with the agglomerated rice husks and bran. A scraper is fixedly installed on the side of the base close to the storage box, and the bottom end of the scraper is in contact with the outer surface of the heating roller. A second motor is fixedly installed on the side of the base far from the conveying mechanism, and one end of the output shaft of the second motor close to the base is fixedly connected to the heating roller. A cross bar is rotatably installed on the side of the base close to the second motor, and the cross bar and the conveying roller on the side close to the storage box are driven by a synchronous pulley and a synchronous belt. One-way gears are fixedly installed on the outer surfaces of the cross bar and the heating roller close to one end of the second motor, and the two one-way gears are meshed with each other.

[0008] Preferably, two crushing rollers are rotatably installed on the side of the base close to the storage box, and the outer surfaces of the crushing rollers are in active contact with the heated rice husks and bran. Two inclined plates are fixedly installed on the side of the base close to the storage box, and the inclined plates are located above the crushing rollers. One end of the inclined plate on the left far from the crushing roller is in contact with the outer surface of the conveyor belt. Two-way gears are fixedly installed on the outer surfaces of the two crushing rollers close to one end of the second motor, and the two two-way gears are meshed with each other. The conveying roller on the side close to the storage box and the crushing roller on the side far from the storage box are driven by a synchronous pulley and a synchronous belt.

[0009] Preferably, four support plates are fixedly installed on the inner bottom of the side of the base close to the storage box. A moving plate is slidably installed in the four support plates. A filter plate is fixedly installed on the upper surfaces of the four moving plates, and the filter plate is located below the crushing rollers. A number of first springs are fixedly installed below the four moving plates, and the bottom ends of the first springs are fixedly connected to the inside of the support plates. Two mounting rods are rotatably installed on the inner bottom of the side of the base close to the storage box, and the mounting rods are located below the filter plate. The two mounting rods are driven by a synchronous pulley and a synchronous belt. The mounting rod on the side close to the storage box and the crushing roller are driven by a synchronous pulley and a synchronous belt. Three first cams are fixedly installed on the outer surfaces of the two mounting rods, and the outer surfaces of the first cams are in contact with the lower surface of the filter plate. A feeding rod is rotatably installed on the inner bottom of the side of the base close to the storage box, and the end of the feeding rod far from the second motor is rotatably arranged inside the conveying mechanism. The feeding rod and the mounting rod on the side close to the storage box are driven by a synchronous pulley and a synchronous belt.

[0010] Preferably, the shaking mechanism includes a mounting table, and the two mounting tables are respectively fixedly installed on both sides of the upper surface of the base. A moving table is slidably installed between the mounting tables. A plurality of moving rods are fixedly installed on both sides of the moving table, and the ends of the moving rods away from the moving table slidably penetrate through the mounting tables. A plurality of second springs are fixedly installed on both sides of the moving table, and the ends of the second springs away from the moving table are fixedly connected to the mounting tables. The number of the second springs is the same as that of the moving rods. Four vertical rods are rotatably installed in the left mounting table, and the four vertical rods are driven by a synchronous pulley and a synchronous belt. Second cams are fixedly installed at the tops of the four vertical rods, and the outer surfaces of the second cams are in contact with the side surfaces of the moving table.

[0011] Preferably, a third motor is fixedly installed inside one side of the base close to the second cam, and the top end of the output shaft of the third motor is fixedly connected to the rightmost vertical rod.

[0012] Preferably, rotating rods are rotatably installed inside both sides of the moving table. Conveyor wheels are fixedly installed on the outer surfaces of both ends of the two rotating rods. A conveyor belt is installed between the two conveyor wheels on the same side. A plurality of fixing plates are fixedly installed on the outer surfaces of the two conveyor belts, and the bottom ends of the fixing plates are in movable contact with the lower surface of the moving table. Two fixing blocks are fixedly installed on the upper surfaces of both sides of the two mounting tables close to the storage box. A sleeve is rotatably installed between the two fixing blocks on the same side. The two ends of the rotating rod on the side close to the storage box are slidably inserted into the sleeve. A synchronous pulley and a synchronous belt are used for driving between the sleeve on the right side and the rotating rod.

[0013] Preferably, the conveying mechanism includes a conveying pipe, and the conveying pipe is located on the side of the base away from the second motor. A screw rod is rotatably installed in the conveying pipe. A fourth motor is fixedly installed on the upper surface of the conveying pipe, and the bottom end of the output shaft of the fourth motor is fixedly connected to the screw rod. An inclined pipe is fixedly installed at the top of the side of the conveying pipe close to the base, and the end of the inclined pipe away from the conveying pipe is in sliding contact with the upper surface of the material spreading device.

[0014] A processing method of a lead-free preserved egg processing device includes the following steps:

[0015] Step 1: Start the first motor to drive the rotating rod to rotate, drive the rotating frame to do circular motion through the rotation of the rotating rod, and drive the duck eggs to move through the circular motion of the rotating frame at this time;

[0016] Step 2: Start the third motor to drive the second cam to rotate, drive the moving table to move left and right reciprocally through the cooperation between the second spring and the second cam, so that the rice husks and bran are evenly wrapped on the outer surface of the duck eggs, and drive the duck eggs, rice husks and bran to move forward through the movement of the fixing plate;

[0017] Step 3: Start the second motor to drive the conveyor belt to move, thereby driving the rice husks and bran to move. Meanwhile, use the heating roller to heat the forward-moving rice husks and bran. Secondly, use the crushing roller to crush the agglomerated rice husks and bran during their forward movement. Then, the filter plate moves up and down reciprocally to separate the solidified mud from the rice husks and bran.

[0018] Step 4: Start the fourth motor to drive the screw rod to rotate, so that the rice husks and bran slide into the inside of the feeding device through the inclined pipe for feeding, realizing the recycling of the rice husks and bran.

[0019] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0020] 1. In the present invention, by setting up a crushing mechanism to heat, crush and filter the agglomerated rice husks and bran, the loss during the recycling of the rice husks and bran is reduced. And by setting up a shaking mechanism to drive the duck eggs to move left and right reciprocally, the uniformity of the wrapping of the rice husks and bran is improved.

[0021] 2. In the present invention, by setting up the mounting rod to drive the first cam to rotate, at this time, through the cooperation between the first spring and the first cam, the filter plate is driven to move up and down reciprocally to separate the rice husks and bran from the solidified mud, facilitating the recycling of the rice husks and bran.

[0022] 3. In the present invention, by setting up the vertical rod to drive the second cam to rotate, at this time, through the cooperation between the second spring and the second cam, the moving platform is driven to move left and right reciprocally, so that the rice husks and bran are evenly wrapped on the duck eggs, improving the uniformity of the wrapping of the rice husks and bran. Description of the Drawings

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following-described drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0025] Figure 2 It is a schematic diagram of the overall sectional structure of the present invention.

[0026] Figure 3 It is a schematic diagram of the sectional structure of the crushing mechanism of the present invention.

[0027] Figure 4 It is a schematic diagram of the sectional structure of the base of the present invention.

[0028] Figure 5 It is a schematic diagram of the sectional structure of the filter plate of the present invention.

[0029] Figure 6 This is a schematic cross-sectional structure diagram of the support plate of the present invention.

[0030] Figure 7 This is a schematic cross-sectional structure diagram of the shaking mechanism of the present invention.

[0031] Figure 8 This is a schematic cross-sectional structure diagram of the transportation mechanism of the present invention.

[0032] Figure 9 For the present invention Figure 2 An enlarged schematic diagram of the structure at location A.

[0033] In the figure: 1. Wrapping mechanism; 101. Storage box; 102. Rotating rod; 103. First motor; 104. Rotating frame; 2. Crushing mechanism; 201. Base; 202. Second motor; 203. Transport roller; 204. Heating roller; 205. Scraper; 206. Conveyor belt; 207. Inclined plate; 208. Cross bar; 209. First gear; 210. Crushing roller; 211. Second gear; 212. Support plate; 213. Filter plate; 214. Mounting rod; 215. First cam; 216. Feeding rod; 217. Moving plate; 218. First spring; 219. Third motor; 3. Shaking mechanism; 301. Mounting table; 302. Moving table; 303. Moving rod; 304. Second spring; 305. Sleeve; 306. Rotating rod; 307. Fixed plate; 308. Vertical rod; 309. Second cam; 310. Fixed block; 311. Transport wheel; 312. Transmission belt; 4. Transport mechanism; 401. Transport pipe; 402. Inclined pipe; 403. Screw rod; 404. Fourth motor; 5. Spreading device. Specific embodiments

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0035] Embodiment: As Figure 1-9As shown, the present invention provides a lead-free preserved egg processing equipment, including a wrapping mechanism 1, a crushing mechanism 2 for crushing rice husks and brans that have been clumped is provided on one side of the wrapping mechanism 1, and the crushing mechanism 2 is used to crush the rice husks and brans that have been clumped after heating, so that the solidified mud is separated from the rice husks and brans, and the rice husks and brans are convenient for recycling. A shaking mechanism 3 is provided on the upper surface of the crushing mechanism 2 for driving the duck eggs wrapped with mud to move left and right, and the duck eggs wrapped with mud are driven to move left and right, so that the rice husks and brans are evenly wrapped on the outer surface of the duck eggs. A transport mechanism 4 for transporting and loading filtered rice husks and brans is provided on one side of the shaking mechanism 3, and the transport mechanism 4 is used to transport the rice husks and brans after the mud is separated, so that the rice husks and brans are recycled. A spreading device 5 for spreading rice husks and brans is provided on the upper surface of the side of the shaking mechanism 3 close to the wrapping mechanism 1, and the rice husks and brans are evenly spread.

[0036] The wrapping mechanism 1 includes a storage frame 101, in which a rotating rod 102 is rotatably installed. Three rotating racks 104 are fixedly installed on the outer surface of the rotating rod 102, and the rotating racks 104 are in active contact with the outer surface of the duck eggs. A motor No. 103 is fixedly installed on the side of the storage frame 101, and the end of the output shaft of the motor No. 103 close to the storage frame 101 is fixedly connected to the rotating rod 102.

[0037] By adopting the above technical solution, the rotating rod 102 can move the rotating frame 104.

[0038] The crushing mechanism 2 includes a base 201, and the base 201 is located on one side of the storage frame 101. Two transport rollers 203 are rotatably installed on the side of the base 201 away from the storage frame 101. A transport belt 206 is installed between the two transport rollers 203, and the rice husks and brans are in active contact with the upper surface of the transport belt 206. A heating roller 204 is rotatably installed on the side of the base 201 close to the storage frame 101, and the outer surface of the heating roller 204 is in active contact with the clumped rice husks and brans. A scraper 205 is fixedly installed on the side of the base 201 close to the storage frame 101, and the bottom end of the scraper 205 and The outer surfaces of the heating roller 204 are in contact with each other, and a No. 2 motor 202 is fixedly installed on the side of the base 201 away from the transport mechanism 4, and the end of the output shaft of the No. 2 motor 202 close to the base 201 is fixedly connected to the heating roller 204, and a cross bar 208 is rotatably installed on the side of the base 201 close to the No. 2 motor 202, and the cross bar 208 and the transport roller 203 close to the storage frame 101 are driven by synchronous wheels and synchronous belts, and a No. 1 gear 209 is fixedly installed on the outer surface of the cross bar 208 and the end of the heating roller 204 close to the No. 2 motor 202, and the two No. 1 gears 209 are meshed with each other.

[0039] By adopting the above technical solution, the heating roller 204 can drive the transport roller 203 to rotate.

[0040] On one side of the base 201 close to the storage box 101, two crushing rollers 210 are rotatably installed. The outer surfaces of the crushing rollers 210 are in movable contact with the heated rice husks and bran. On one side of the base 201 close to the storage box 101, two inclined plates 207 are fixedly installed, and the inclined plates 207 are located above the crushing rollers 210. One end of the inclined plate 207 on the left away from the crushing roller 210 is in contact with the outer surface of the conveyor belt 206. On the outer surfaces of one ends of the two crushing rollers 210 close to the second motor 202, second gears 211 are fixedly installed, and the two second gears 211 are meshed with each other. The conveyor roller 203 on the side close to the storage box 101 and the crushing roller 210 on the side away from the storage box 101 are driven by a synchronous pulley and a synchronous belt.

[0041] By adopting the above technical solution, the conveyor roller 203 can drive the crushing roller 210 to rotate.

[0042] On the inner bottom of one side of the base 201 close to the storage box 101, four support plates 212 are fixedly installed. A moving plate 217 is slidably installed in the four support plates 212. On the upper surfaces of the four moving plates 217, a filter plate 213 is fixedly installed, and the filter plate 213 is located below the crushing rollers 210. A number of first springs 218 are fixedly installed below the four moving plates 217, and the bottom ends of the first springs 218 are fixedly connected to the inside of the support plates 212. On the inner bottom of one side of the base 201 close to the storage box 101, two mounting rods 214 are rotatably installed, and the mounting rods 214 are located below the filter plate 213. The two mounting rods 214 are driven by a synchronous pulley and a synchronous belt. The mounting rod 214 on the side close to the storage box 101 and the crushing roller 210 are driven by a synchronous pulley and a synchronous belt. On the outer surfaces of the two mounting rods 214, three first cams 215 are fixedly installed, and the outer surfaces of the first cams 215 are in contact with the lower surface of the filter plate 213. On the inner bottom of one side of the base 201 close to the storage box 101, a feeding rod 216 is rotatably installed, and one end of the feeding rod 216 away from the second motor 202 is rotatably arranged inside the conveying mechanism 4. The feeding rod 216 and the mounting rod 214 on the side close to the storage box 101 are driven by a synchronous pulley and a synchronous belt.

[0043] By adopting the above technical solution, the crushing roller 210 can drive the filter plate 213 to move up and down reciprocally.

[0044] The shaking mechanism 3 includes a mounting table 301, and the two mounting tables 301 are respectively fixedly installed on both sides of the upper surface of the base 201. A moving table 302 is slidably installed between the mounting tables 301. A plurality of moving rods 303 are fixedly installed on both sides of the moving table 302, and one end of the moving rod 303 away from the moving table 302 slidably penetrates through the mounting table 301. A plurality of second springs 304 are fixedly installed on both sides of the moving table 302, and one end of the second spring 304 away from the moving table 302 is fixedly connected to the mounting table 301. The number of the second springs 304 is the same as that of the moving rods 303. Four vertical rods 308 are rotatably installed in the left mounting table 301, and the four vertical rods 308 are driven by a synchronous pulley and a synchronous belt. Second cams 309 are fixedly installed at the tops of the four vertical rods 308, and the outer surfaces of the second cams 309 are in contact with the side surface of the moving table 302.

[0045] By adopting the above technical solution, the vertical rod 308 can drive the moving table 302 to move left and right reciprocally.

[0046] A third motor 219 is fixedly installed inside the base 201 near the second cam 309, and the top end of the output shaft of the third motor 219 is fixedly connected to the rightmost vertical rod 308.

[0047] By adopting the above technical solution, the third motor 219 can drive the vertical rod 308 to rotate.

[0048] Rotating rods 306 are rotatably installed inside both sides of the moving table 302. Conveyor wheels 311 are fixedly installed on the outer surfaces of both ends of the two rotating rods 306. A conveyor belt 312 is drivingly installed between the two conveyor wheels 311 on the same side. A plurality of fixing plates 307 are fixedly installed on the outer surfaces of the two conveyor belts 312, and the bottom ends of the fixing plates 307 are in movable contact with the lower surface of the moving table 302. Two fixing blocks 310 are fixedly installed on the upper surfaces of both sides of the two mounting tables 301 close to the storage box 101. A sleeve 305 is rotatably installed between the two fixing blocks 310 on the same side. The two ends of the rotating rod 306 close to the storage box 101 are slidably inserted into the sleeve 305. The sleeve 305 on the right side and the rotating rod 102 are driven by a synchronous pulley and a synchronous belt.

[0049] By adopting the above technical solution, the rotating rod 102 can drive the fixing plate 307 to move.

[0050] The transport mechanism 4 includes a transport pipe 401, and the transport pipe 401 is located on the side of the base 201 away from the second motor 202. A screw rod 403 is rotatably installed in the transport pipe 401. A fourth motor 404 is fixedly installed on the upper surface of the transport pipe 401, and the bottom end of the output shaft of the fourth motor 404 is fixedly connected to the screw rod 403. An inclined pipe 402 is fixedly installed at the top of the side of the transport pipe 401 close to the base 201, and one end of the inclined pipe 402 away from the transport pipe 401 is in sliding contact with the upper surface of the material spreading device 5.

[0051] By adopting the above technical solution, the screw rod 403 can be rotated by the fourth motor 404.

[0052] A processing method of a lead-free preserved egg processing device includes the following steps:

[0053] Step 1: Start the first motor 103 to drive the rotating rod 102 to rotate. By the rotation of the rotating rod 102, drive the rotating frame 104 to perform a circular motion. At this time, drive the duck eggs to move through the circular motion of the rotating frame 104.

[0054] Step 2: Start the third motor 219 to drive the second cam 309 to rotate. Through the cooperation between the second spring 304 and the second cam 309, drive the moving table 302 to move left and right reciprocally, so that the rice husks and bran are evenly wrapped on the outer surface of the duck eggs, and drive the duck eggs to move forward with the rice husks and bran through the movement of the fixed plate 307.

[0055] Step 3: Start the second motor 202 to drive the conveyor belt 206 to move, thereby driving the rice husks and bran to move. And heat the rice husks and bran moving forward through the heating roller. Secondly, crush the agglomerated rice husks and bran moving forward through the crushing roller 210. Then, the filter plate 213 moves up and down reciprocally to separate the solidified mud from the rice husks and bran.

[0056] Step 4: Start the fourth motor 404 to drive the screw rod 403 to rotate, so that the rice husks and bran slide into the material spreading device 5 through the inclined pipe 402 for material spreading, realizing the recycling of the rice husks and bran.

[0057] Working principle: First, turn on the first motor 103 to drive the rotating rod 102 to rotate. By the rotation of the rotating rod 102, drive the rotating frame 104 to perform a circular motion. At this time, drive the duck eggs to move through the circular motion of the rotating frame 104, so that the duck eggs move onto the moving table 302. At this time, spread the rice husks and bran on the duck eggs wrapped in the mud through the material spreading device 5. And turn on the third motor 219 to drive the vertical rod 308 to rotate. By the rotation of the vertical rod 308, drive the second cam 309 to rotate. At this time, through the cooperation between the second spring 304 and the second cam 309, drive the moving table 302 to move left and right reciprocally, so that the rice husks and bran are evenly wrapped on the outer surface of the duck eggs;

[0058] Secondly, the mobile station 302 slides downward along the slope. Meanwhile, the rotation of the rotating rod 102 drives the rotation of the sleeve 305. The rotation of the sleeve 305 drives the rotation of the rotating rod 306. The rotation of the rotating rod 306 drives the rotation of the transport wheel 311. The rotation of the transport wheel 311 drives the movement of the conveyor belt 312. The movement of the conveyor belt 312 drives the movement of the fixed plate 307. The movement of the fixed plate 307 drives the movement of the duck eggs, rice husks, and bran, causing the duck eggs, rice husks, and bran to move forward. At this time, the rice husks and bran fall onto the conveyor belt 206 through the holes on the discharge platform.

[0059] Then, the second motor 202 is turned on to drive the rotation of the heating roller 204. The heating roller 204 drives the rotation of the first gear 209. The meshing of the two first gears 209 drives the rotation of the cross bar 208. The rotation of the cross bar 208 drives the rotation of the transport roller 203. The rotation of the transport roller 203 drives the movement of the conveyor belt 206. The movement of the conveyor belt 206 moves the rice husks and bran, causing the rice husks and bran to move between the two crushing rollers 210. When the heating roller 204 comes into contact with the rice husks and bran, it heats the rice husks and bran and heats the agglomerated rice husks and bran to solidify the mud. At this time, the rotation of the transport roller 203 drives the rotation of the crushing roller 210. The rotation of the crushing roller 210 drives the rotation of the second gear 211. At this time, the meshing of the two second gears 211 drives the rotation of the other crushing roller 210, causing the two crushing rollers 210 to rotate in opposite directions to crush the solidified and agglomerated rice husks and bran, separating the mud from the rice husks and bran. The crushed rice husks and bran fall onto the filter plate 213.

[0060] Finally, the rotation of the crushing roller 210 drives the rotation of the mounting rod 214. The mounting rod 214 drives the rotation of the first cam 215. At this time, the cooperation between the first spring 218 and the first cam 215 drives the filter plate 213 to move up and down reciprocally. The up and down reciprocal movement of the filter plate 213 separates the crushed rice husks and bran from the solidified mud. At this time, the separated rice husks and bran slide down along the slope of the filter plate 213 into the inside of the feeding rod 216. At this time, the rotation of the feeding rod 216 drives the movement of the rice husks and bran, causing the rice husks and bran to move into the inside of the transport pipe 401. At this time, the fourth motor 404 is turned on to drive the rotation of the screw rod 403. The movement of the screw rod 403 drives the movement of the rice husks and bran, causing the rice husks and bran to move upward and slide into the spreading device 5 through the inclined pipe 402 for spreading, realizing the recycling of the rice husks and bran.

[0061] Obviously, those skilled in the art can make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if these modifications and variations of the present invention fall within the scope of the claims of the present invention and their equivalent technologies, the present invention is also intended to include these modifications and variations.

Claims

1. A lead-free preserved egg processing device, comprising a wrapping mechanism (1), characterized in that: A crushing mechanism (2) for crushing clumped rice husks and brans is provided on one side of the wrapping mechanism (1); a shaking mechanism (3) for driving the wrapped mud duck eggs to move left and right is provided on the upper surface of the crushing mechanism (2); a transport mechanism (4) for transporting and loading filtered rice husks and brans is provided on one side of the shaking mechanism (3); and a spreading device (5) for spreading rice husks and brans is provided on the upper surface of the side of the shaking mechanism (3) close to the wrapping mechanism (1).

2. The lead-free preserved egg processing equipment according to claim 1, characterized in that: The wrapping mechanism (1) comprises a storage frame (101), a rotating rod (102) is rotatably mounted in the storage frame (101), three rotating racks (104) are fixedly mounted on the outer surface of the rotating rod (102), and the rotating racks (104) are in movable contact with the outer surface of the duck egg, a first motor (103) is fixedly mounted on the side of the storage frame (101), and one end of the output shaft of the first motor (103) close to the storage frame (101) is fixedly connected to the rotating rod (102).

3. The lead-free preserved egg processing equipment according to claim 1, characterized in that: The crushing mechanism (2) comprises a base (201), and the base (201) is located on one side of the storage frame (101); two transport rollers (203) are rotatably mounted on a side of the base (201) away from the storage frame (101); a transport belt (206) is installed between the two transport rollers (203); and the rice husks and brans are in active contact with the upper surface of the transport belt (206); a heating roller (204) is rotatably mounted on a side of the base (201) close to the storage frame (101); and the outer surface of the heating roller (204) is in active contact with the clumped rice husks and brans; a scraper (205) is fixedly mounted on a side of the base (201) close to the storage frame (101); and the bottom end of the scraper (205) is The base (201) is in contact with the outer surface of the heating roller (204); a No. 2 motor (202) is fixedly mounted on the side of the base (201) away from the transport mechanism (4); and the end of the output shaft of the No. 2 motor (202) close to the base (201) is fixedly connected to the heating roller (204); a cross bar (208) is rotatably mounted on the side of the base (201) close to the No. 2 motor (202); and the cross bar (208) and the transport roller (203) close to the storage frame (101) are driven by synchronous wheels and synchronous belts; a No. 1 gear (209) is fixedly mounted on the outer surface of the cross bar (208) and the end of the heating roller (204) close to the No. 2 motor (202), and the two No. 1 gears (209) are meshed with each other.

4. The lead-free preserved egg processing equipment according to claim 3, characterized in that: Two crushing rollers (210) are rotatably mounted on one side of the base (201) close to the storage frame (101), and the outer surfaces of the crushing rollers (210) are in active contact with the heated rice husks and brans. Two inclined plates (207) are fixedly mounted on one side of the base (201) close to the storage frame (101), and the inclined plates (207) are located above the crushing rollers (210). One end of the inclined plate (207) located on the left side away from the crushing rollers (210) is in contact with the outer surface of the conveyor belt (206). Two gears (211) are fixedly mounted on the outer surfaces of one end of the two crushing rollers (210) close to the second motor (202), and the two gears (211) are meshed with each other. The conveyor roller (203) close to the storage frame (101) and the crushing roller (210) close to the storage frame (101) are driven by synchronous wheels and synchronous belts.

5. The lead-free preserved egg processing equipment according to claim 4, characterized in that: Four support plates (212) are fixedly installed on the bottom of one side of the base (201) close to the storage frame (101), and movable plates (217) are slidably installed in the four support plates (212). Filter plates (213) are fixedly installed on the upper surfaces of the four movable plates (217), and the filter plates (213) are located below the crushing roller (210). A plurality of No. 1 springs (218) are fixedly installed below the four movable plates (217), and the bottom ends of the No. 1 springs (218) are fixedly connected to the inside of the support plates (212). Two mounting rods (214) are rotatably installed on the bottom of one side of the base (201) close to the storage frame (101), and the mounting rods (214) are located below the filter plates (213). The two mounting rods (21 The transmission is carried out between the mounting rod (214) on the side close to the storage frame (101) and the crushing roller (210) through a synchronous wheel and a synchronous belt, the transmission is carried out between the mounting rod (214) on the side close to the storage frame (101) and the crushing roller (210) through a synchronous wheel and a synchronous belt, three No. 1 cams (215) are fixedly mounted on the outer surfaces of the two mounting rods (214), and the outer surfaces of the No. 1 cams (215) are in contact with the lower surface of the filter plate (213), a feeding rod (216) is rotatably mounted on the inner bottom of the side close to the storage frame (101) of the base (201), and one end of the feeding rod (216) away from the No. 2 motor (202) is rotatably arranged inside the transport mechanism (4), and the feeding rod (216) and the mounting rod (214) on the side close to the storage frame (101) are transmitted through a synchronous wheel and a synchronous belt.

6. The lead-free preserved egg processing equipment according to claim 1, characterized in that: The shaking mechanism (3) comprises a mounting platform (301), and two mounting platforms (301) are respectively fixedly mounted on two sides of the upper surface of the base (201), a moving platform (302) is slidably mounted between the mounting platforms (301), a plurality of moving rods (303) are fixedly mounted on both sides of the moving platform (302), and one end of the moving rod (303) away from the moving platform (302) slides through the mounting platform (301), a plurality of No. 2 springs (304) are fixedly mounted on both sides of the moving platform (302), and the two No. 2 springs (304) are fixedly mounted on both sides of the moving platform (302). One end of the No. 1 spring (304) away from the moving platform (302) is fixedly connected to the mounting platform (301), the number of the No. 2 spring (304) and the moving rod (303) is the same, four vertical rods (308) are rotatably installed in the mounting platform (301) located on the left side, and the four vertical rods (308) are driven by synchronous wheels and synchronous belts, and the tops of the four vertical rods (308) are fixedly installed with No. 2 cams (309), and the outer surface of the No. 2 cams (309) is in contact with the side of the moving platform (302).

7. The lead-free preserved egg processing equipment according to claim 3, characterized in that: A third motor (219) is fixedly installed in one side of the base (201) close to the second cam (309), and the top end of the output shaft of the third motor (219) is fixedly connected to the vertical rod (308) located on the far right.

8. The lead-free preserved egg processing equipment according to claim 6, characterized in that: Rotating rods (306) are rotatably mounted on both sides of the moving platform (302), and transport wheels (311) are fixedly mounted on the outer surfaces of both ends of the two rotating rods (306). A transmission belt (312) is installed between the two transport wheels (311) on the same side for transmission. A plurality of fixed plates (307) are fixedly mounted on the outer surfaces of the two transmission belts (312), and the bottom ends of the fixed plates (307) are in active contact with the lower surface of the moving platform (302). Two fixed blocks (310) are fixedly mounted on the upper surfaces of the two mounting platforms (301) on the side close to the storage frame (101), and a sleeve (305) is rotatably mounted between the two fixed blocks (310) on the same side, and the two ends of the rotating rod (306) on the side close to the storage frame (101) are slidably inserted into the sleeve (305), and transmission is performed between the sleeve (305) on the right side and the rotating rod (102) through a synchronous wheel and a synchronous belt.

9. The lead-free preserved egg processing equipment according to claim 1, characterized in that: The transport mechanism (4) comprises a transport pipe (401), and the transport pipe (401) is located on a side of the base (201) away from the second motor (202), a screw rod (403) is rotatably installed in the transport pipe (401), a fourth motor (404) is fixedly installed on the upper surface of the transport pipe (401), and the bottom end of the output shaft of the fourth motor (404) is fixedly connected to the screw rod (403), an inclined pipe (402) is fixedly installed on the top of the transport pipe (401) close to the base (201), and one end of the inclined pipe (402) away from the transport pipe (401) is in sliding contact with the upper surface of the material spreading device (5).

10. A processing method for lead-free preserved egg processing equipment according to any one of claims 1 to 9, characterized in that: The steps include: Step 1: starting the first motor (103) to drive the rotating rod (102) to rotate, and the rotation of the rotating rod (102) drives the rotating frame (104) to make a circular motion, and at this time, the circular motion of the rotating frame (104) drives the duck eggs to move; Step 2: Start the third motor (219) to drive the second cam (309) to rotate, and drive the moving platform (302) to move back and forth through the cooperation between the second spring (304) and the second cam (309), so that the rice husk and the bran are evenly wrapped on the outer surface of the duck egg, and the movement of the fixed plate (307) drives the duck egg, the rice husk and the bran to move forward; Step 3: Start the second motor (202) to drive the conveyor belt (206) to move, thereby driving the rice husks and bran to move, and heat the rice husks and bran by the heating roller, then move the rice husks and bran forward to break the clumped rice husks and bran by the crushing roller (210), and then the filter plate (213) moves up and down to separate the solidified mud from the rice husks and bran; Step 4: Start the fourth motor (404) to drive the screw rod (403) to rotate, so that the rice husks and brans slide through the inclined tube (402) into the inside of the spreading device (5) for spreading, thereby realizing the recycling of the rice husks and brans.

Citation Information

Patent Citations

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