Integrated production equipment for chicken powder
Through the integration of jaw plate and spiral cutter crushing structure, multi-layer grinding grooves and electric heating and drying technology, the problems of uneven crushing and poor grinding fineness of traditional chicken powder production equipment are solved, efficient production and high-quality finished products are achieved, and maintenance costs are reduced.
Patent Information
- Application Number
- CN202510710704.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-29
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional chicken powder production equipment has problems such as uneven crushing, poor grinding precision, poor drying effect, low screening efficiency, large area for equipment separation and easy loss, resulting in low production efficiency and unstable product quality.
It adopts a unique jaw plate and spiral cutter combined with a crushing structure, combined with a multi-layer grinding groove and grinding wheel design, equipped with an electric heater for drying, and hot air drying is achieved through the drive shaft and cam control of the inlet and exhaust passage, integrating crushing, grinding, drying and screening.
It significantly improves crushing efficiency and grinding precision, ensures the quality of finished products, reduces maintenance costs, and improves production efficiency and product stability.
Smart Images

Figure CN120240498A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of chicken powder processing equipment, and particularly to an integrated production equipment for chicken powder. Background Art
[0002] As an important food raw material, chicken powder is widely used in multiple fields such as food processing and pet feed. With the continuous growth of the market demand for chicken powder, the requirements for its production efficiency and quality are also increasing day by day. The traditional chicken powder production process often involves multiple independent devices and complex technological processes, which not only leads to low production efficiency but also makes it difficult to ensure the stability of product quality. Therefore, it is of great practical significance to develop an efficient and integrated chicken powder production equipment.
[0003] Traditional chicken block crushing equipment usually adopts a single crushing method, such as a simple hammer crusher or jaw crusher. Although the hammer crusher can quickly break the chicken blocks, it is easy to cause uneven crushing of the chicken blocks, and some chicken blocks are too large, affecting the subsequent grinding effect; while the jaw crusher can achieve relatively uniform crushing to a certain extent, but has low efficiency and poor adaptability to chicken blocks of different hardness. Moreover, during the crushing process, these traditional crushing equipments lack the function of secondary cutting and crushing of chicken blocks, and it is difficult to crush the chicken blocks to the ideal particle size, unable to provide high-quality raw materials for subsequent high-quality grinding.
[0004] Most traditional grinding equipments have a simple structure, and the design of the grinding wheel and grinding groove is single, and can only perform simple single grinding on chicken raw materials. This makes the particle size of the ground chicken powder uneven, and the fineness is difficult to reach a high standard, unable to meet the market demand for high-quality chicken powder. Moreover, during the grinding process of traditional grinding equipments, the material distribution is uneven, and some materials may not be fully ground, resulting in unstable product quality. Summary of the Invention
[0005] Aiming at the deficiencies of the prior art, the present invention provides an integrated production equipment for chicken powder, which solves the problems of uneven crushing, poor grinding fineness, poor drying effect, low screening efficiency, large floor area for equipment separation, easy wear and tear, etc. of traditional chicken powder production equipment, and improves the production efficiency, product quality and reduces the maintenance cost.
[0006] To achieve the above object, the present invention is realized through the following technical solutions: An integrated production device for chicken powder, comprising a box body. An upper side inside the box body is provided with a crushing chamber. On both sides inside the crushing chamber, jaw plates are movably installed. On both sides inside the crushing chamber, close to the outer sides of the jaw plates, first optical rods are movably installed. On the front and rear sides inside the crushing chamber, short shafts are movably installed. Inner ends of the short shafts are fixedly installed with cylinder bodies. On the outer diameters of the cylinder bodies, inclined ball grooves are provided and bearing seats are movably installed in the ball grooves. On the top of the inner ends of the bearing seats, push-pull rods are movably installed, and inner ends of the push-pull rods are movably installed in the middle of the outer ends of the corresponding jaw plates. A lower side inside the box body is provided with a grinding chamber. In the middle of the grinding chamber, a movable shaft is movably installed. On the top of the movable shaft, a rotating rod is fixedly installed. On the outer diameter of the rotating rod, a number of throwing disks are evenly fixedly installed. At the bottom ends of the throwing disks, a number of grinding wheels are movably installed. On the upper side of the inner wall of the grinding chamber, a number of grinding grooves are provided. On both sides inside the box body, heating chambers are also provided. Inside the heating chambers, electric heaters are fixedly installed.
[0007] Preferably, on the outer diameters of the middle parts of the first optical rods, worms are fixedly installed. On the outer diameters of the middle parts of the short shafts, worm wheels are fixedly installed, and bottom ends of the worm wheels are meshed and connected to the tops of the corresponding worms.
[0008] Preferably, a second optical rod is movably installed at the lower side in the middle of the crushing chamber. On the outer diameter of the second optical rod, a spiral cutter is fixedly installed. On one side of the top of the box body, a first motor is fixedly installed, and a driving end of the first motor is fixedly installed at one end of the corresponding first optical rod. Ends of the first optical rod and the second optical rod extend to the outside of the box body and are fixedly installed with synchronous wheels. The outer diameters of the synchronous wheels are connected by a synchronous belt.
[0009] Preferably, a screen is installed at the lower side inside the grinding chamber. Both sides of the bottom end of the screen are connected to the inner side wall of the grinding chamber through return springs. In the middle of the bottom end of the screen, an upper chuck is fixedly installed. On the outer diameter of the middle part of the movable shaft, close to the lower side of the upper chuck, a lower chuck is fixedly installed. On the inner ends of the upper chuck and the lower chuck, a number of hemispherical protrusions are fixedly installed, and the positions of the upper and lower hemispherical protrusions are staggered with each other.
[0010] Preferably, air inlet channels are provided on the outer sides of the inner tops of the heating chambers, and outer ends of the air inlet channels are connected to the outside. Exhaust air channels are provided inside the inner tops of the heating chambers, and inner ends of the exhaust air channels are connected to the inside of the grinding chamber. On the outer ends of the air inlet channels, dust-proof nets are fixedly installed. In the air inlet channels and the exhaust air channels, one-way rubber valves are fixedly installed.
[0011] Preferably, piston chambers are provided on one side of the inner bottom of the heating chamber, and the bottoms of the piston chambers are all communicated with the outside. Rubber pistons are movably installed inside the piston chambers. A transmission shaft is movably installed directly below the box body. Cam wheels are fixedly installed on the outer diameters on both sides of the transmission shaft. Connecting rods are movably installed in the middle of the cam wheels, and the ends of the connecting rods extend into the corresponding piston chambers and are movably installed at the bottom ends of the corresponding rubber pistons.
[0012] Preferably, a driving bevel gear is fixedly installed on the outer diameter of the middle part of the transmission shaft. The bottom end of the movable shaft extends below the box body and is fixedly installed with a driven bevel gear. The inner ends of the driving bevel gear and the driven bevel gear are meshed and connected. A second motor is fixedly installed on one side of the bottom of the box body, and the driving end of the second motor is fixedly installed at one end of the transmission shaft.
[0013] Preferably, a feed inlet is provided at the top of the box body, discharge outlets are provided on both sides of the bottom of the box body, a control panel is fixedly installed at the front end of the box body, and support legs are fixedly installed at the four corners of the bottom end of the box body.
[0014] The present invention provides an integrated production device for chicken powder. It has the following beneficial effects: 1. The device of the present invention through a unique cooperation crushing structure of the jaw plate and the spiral cutter, the first motor drives the first optical rod to drive the worm, so that the worm wheel and the short shaft rotate, and then drives the cylinder body to rotate. Using the swing of the bearing seat in the inclined ball groove, the jaw plate is pushed to clamp inward or open outward synchronously to initially crush the raw materials; at the same time, the synchronous belt drives the second optical rod and the spiral cutter to perform secondary cutting and crushing on the initially crushed chicken pieces, significantly improving the crushing efficiency and effect, providing higher-quality raw materials for subsequent grinding, and helping to improve the overall production efficiency.
[0015] 2. The multi-layer designed grinding grooves and grinding wheels of the present invention, the rotating rod drives the throwing disc to rotate to generate centrifugal force to throw the crushed raw materials into the grinding grooves. At the same time, the throwing disc drives the grinding wheels to rotate at high speed to grind the raw materials multiple times, which can effectively improve the grinding fineness of the chicken powder, ensure the high quality of the later finished products, and meet the market demand for high-quality chicken powder.
[0016] 3. The present invention drives the cam wheel to rotate through the transmission shaft, and the cam wheel makes the rubber piston reciprocate up and down in the piston chamber through the connecting rod, controlling the opening and closing of the one-way rubber valves of the air inlet channel and the air outlet channel, and cooperating with the electric heater to realize heating the air entering the heating chamber and discharging the hot air to dry the raw materials. This design not only removes the residual moisture in the raw materials, improves the quality of the finished products, but also prevents the raw materials from adhering to the inner wall of the equipment, reduces the workload and difficulty of cleaning the equipment later, and reduces the maintenance cost. Description of the Drawings
[0017] Figure 1 Isometric view of the present invention; Figure 2 Front internal structure schematic diagram of the present invention; Figure 3 Structure schematic diagram of the jaw plate in the present invention; Figure 4 Side view of the jaw plate of the present invention; Figure 5 Structure schematic diagram of the flywheel in the present invention; Figure 6 Is Figure 2 Enlarged view at position A in; Figure 7 Is Figure 2 Enlarged view at position B in.
[0018] Wherein, 1, box body; 2, crushing cavity; 3, jaw plate; 4, first smooth rod; 5, worm; 6, short shaft; 7, worm wheel; 8, cylinder block; 9, bearing seat; 10, push-pull rod; 11, second smooth rod; 12, spiral cutter; 13, first motor; 14, synchronous pulley; 15, synchronous belt; 16, grinding cavity; 17, movable shaft; 18, rotating rod; 19, flywheel; 20, grinding wheel; 21, grinding groove; 22, sieve mesh; 23, return spring; 24, upper chuck; 25, lower chuck; 26, hemispherical protrusion; 27, heating cavity; 28, electric heater; 29, air inlet passage; 30, air outlet passage; 31, one-way rubber valve; 32, piston cavity; 33, rubber piston; 34, transmission shaft; 35, cam; 36, connecting rod; 37, driving bevel gear; 38, driven bevel gear; 39, second motor; 40, dust-proof net; 41, feed inlet; 42, discharge outlet; 43, control panel; 44, support leg. Detailed implementation manners
[0019] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments in 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. Embodiment
[0020] Please refer to the attached Figure 1 - attached Figure 7 , the embodiment of the present invention provides an integrated production device for chicken powder, as Figure 1As shown in the figure, it includes a box body 1. The box body 1 serves as the main framework of the entire device, providing installation and operating space for internal components. A crushing chamber 2 is provided on the upper side inside the box body 1. The crushing chamber 2 is used for the preliminary crushing treatment of the input chicken block raw materials. On both sides inside the crushing chamber 2, jaw plates 3 are movably installed. Under the subsequent power transmission, the jaw plates 3 can perform synchronous inward clamping or outward opening actions to crush the raw materials by extrusion. On both sides inside the crushing chamber 2, close to the outer side positions of the jaw plates 3, first optical rods 4 are movably installed. The first optical rods 4 rotate driven by a first motor 13, providing initial power for subsequent transmission. On the front and rear sides inside the crushing chamber 2, short shafts 6 are movably installed. The inner ends of the short shafts 6 are fixedly installed with cylinder bodies 8. The short shafts 6 can drive the cylinder bodies 8 to rotate. Tilted ball grooves are provided on the outer diameters of the cylinder bodies 8, and bearing seats 9 are movably installed in the ball grooves. When the cylinder bodies 8 rotate, the bearing seats 9 will perform reciprocating swings due to the tilted setting of the ball grooves. At the top of the inner ends of the bearing seats 9, push-pull rods 10 are movably installed, and the inner ends of the push-pull rods 10 are movably installed at the middle parts of the outer ends of the corresponding side jaw plates 3. The push-pull rods 10 convert the swing of the bearing seats 9 into the power to push the jaw plates 3 to rotate.
[0021] Specifically, the first motor 13 drives the first optical rod 4 to rotate. The first optical rod 4 will drive the synchronous pulley 14 at the end to rotate. Through the transmission of the synchronous belt 15, the first optical rod 4 on the other side is driven to rotate together, so that the two worm gears 5 rotate synchronously. The rotating worm gears 5 will engage with the worm wheels 7 for transmission, driving the worm wheels 7 and the short shafts 6 to rotate, and then driving the cylinder bodies 8 inside the short shafts 6 to rotate. Since the bearing seats 9 on the outer diameters of the cylinder bodies 8 are arranged in the ball grooves with inclined surfaces, when the cylinder bodies 8 rotate, they will drive the bearing seats 9 to perform reciprocating swings, thereby driving one end of the push-pull rod 10 to swing together. Then, the other end of the push-pull rod 10 is used to push the jaw plate 3 to rotate, realizing the synchronous inward clamping or outward opening actions of the two jaw plates 3, and thus preliminarily crushing the raw materials entering between the two jaw plates 3.
[0022] In this embodiment, a grinding chamber 16 is provided on the lower side inside the box body 1. The grinding chamber 16 is used for finely grinding the crushed raw materials to make chicken powder. A movable shaft 17 is movably installed in the middle of the grinding chamber 16. The movable shaft 17 rotates under the drive of subsequent power, driving the components on its top and outer diameter to operate. A rotating rod 18 is fixedly installed on the top of the movable shaft 17. The rotating rod 18 rotates with the movable shaft 17. A plurality of throwing discs 19 are evenly and fixedly installed on the outer diameter of the rotating rod 18. The throwing discs 19 rotate driven by the rotating rod 18, and use centrifugal force to throw the crushed raw materials into the grinding grooves 21. A plurality of grinding wheels 20 are movably installed at the bottom ends of the throwing discs 19. The grinding wheels 20 rotate at high speed driven by the throwing discs 19 to grind the raw materials in the grinding grooves 21. A plurality of grinding grooves 21 are provided on the upper side of the inner wall of the grinding chamber 16. The multi-layer designed grinding grooves 21 cooperate with the grinding wheels 20 to grind the raw materials multiple times, improving the grinding fineness. Heating chambers 27 are also provided on both sides inside the box body 1. Electric heaters 28 in the heating chambers 27 heat the incoming air. The heated air is used for hot air drying of the raw materials. Electric heaters 28 are fixedly installed inside the heating chambers 27. After being powered on, the electric heaters 28 generate heat to provide heat sources for hot air drying.
[0023] Specifically, the second motor 39 drives the transmission shaft 34 to rotate, driving the driving bevel gear 37 to rotate. The driving bevel gear 37 drives the driven bevel gear 38 and the movable shaft 17 to rotate, thereby driving the rotating rod 18 at the top of the movable shaft 17 to rotate. The rotating rod 18 drives all the throwing discs 19 to rotate. Using the centrifugal force generated when the throwing discs 19 rotate, the crushed raw materials are thrown into the grinding grooves 21. At the same time, when the throwing discs 19 rotate, they drive all the grinding wheels 20 to rotate. The raw materials in the grinding grooves 21 are quickly ground by the grinding wheels 20 rotating at high speed. The multi-layer designed grinding grooves 21 and grinding wheels 20 grind the raw materials multiple times, improving the quality of the final product.
[0024] Further, worms 5 are fixedly installed on the outer diameters of the middle parts of the first smooth rods 4. The worms 5 rotate synchronously with the first smooth rods 4. The spiral directions of the two worms 5 are opposite to ensure the same-direction movement of the two worm wheels 7. Worm wheels 7 are fixedly installed on the outer diameters of the middle parts of the short shafts 6, and the bottom ends of the worm wheels 7 are meshed and connected to the tops of the corresponding worms 5 on the side. The rotating worms 5 are meshed with the worm wheels 7, driving the worm wheels 7 and the short shafts 6 to rotate, and further rotating the cylinder block 8.
[0025] Further, a second optical rod 11 is movably installed on the lower side of the inner middle part of the crushing cavity 2. The second optical rod 11 rotates driven by the synchronous belt 15. A spiral cutter 12 is fixedly installed on the outer diameter of the second optical rod 11. The spiral cutter 12 rotates at a high speed with the second optical rod 11 to perform secondary cutting and crushing on the preliminarily crushed chicken block raw materials. A first motor 13 is fixedly installed on one side of the top of the box body 1, and the driving end of the first motor 13 is fixedly installed at one end of the first optical rod 4 on one side. After the first motor 13 is started, it provides rotational power for the first optical rod 4. The ends of the first optical rod 4 and the second optical rod 11 both extend to the outside of the box body 1 and are fixedly installed with synchronous wheels 14. The outer diameters of the synchronous wheels 14 are connected by a synchronous belt 15. By using the transmission of the synchronous belt 15, the first optical rod 4 drives the second optical rod 11 to rotate synchronously.
[0026] Further, a screen 22 is installed on the lower side inside the grinding cavity 16. The screen 22 is used for screening the ground raw materials. Both sides of the bottom end of the screen 22 are connected to the inner side wall of the grinding cavity 16 through return springs 23. The return springs 23 provide an elastic force for the screen 22 to vibrate up and down. A upper chuck 24 is fixedly installed in the middle of the bottom end of the screen 22. A lower chuck 25 is fixedly installed at a position near the lower side of the upper chuck 24 on the outer diameter of the middle part of the movable shaft 17. A number of hemispherical protrusions 26 are fixedly installed at the inner ends of the upper chuck 24 and the lower chuck 25, and the positions of the upper and lower hemispherical protrusions 26 are staggered. The movable shaft 17 drives the lower chuck 25 to rotate. By using the staggered structure of the upper and lower chucks and cooperating with the return springs 23, the screen 22 makes a rapid reciprocating vibration up and down.
[0027] Further, air inlet channels 29 are opened on the outer sides of the inner tops of the heating cavity 27, and the outer ends of the air inlet channels 29 are all connected to the outside. The outside air enters the heating cavity 27 from here. Exhaust air channels 30 are opened inside the inner tops of the heating cavity 27, and the inner ends of the exhaust air channels 30 are all connected to the inside of the grinding cavity 16. The heated air enters the grinding cavity 16 through the exhaust air channels 30 to dry the raw materials. Dust-proof nets 40 are fixedly installed at the outer ends of the air inlet channels 29. The dust-proof nets 40 can filter impurities in the outside air to prevent them from entering the equipment. One-way rubber valves 31 are fixedly installed inside the air inlet channels 29 and the exhaust air channels 30. The one-way rubber valves 31 control the one-way flow of air to ensure that the air enters and exits according to a predetermined path.
[0028] Further, piston chambers 32 are provided on one side of the inner bottom of the heating chamber 27, and the bottoms of the piston chambers 32 are all connected to the outside. The piston chambers 32 provide a moving space for the rubber pistons 33. Rubber pistons 33 are movably installed inside the piston chambers 32. The rubber pistons 33 reciprocate up and down in the piston chambers 32 to control the intake and exhaust of air. A transmission shaft 34 is movably installed directly below the box body 1. The transmission shaft 34 rotates driven by the second motor 39. Cam wheels 35 are fixedly installed on the outer diameters on both sides of the transmission shaft 34. The cam wheels 35 rotate with the transmission shaft 34. Their special shapes can drive the connecting rods 36 to move. Connecting rods 36 are movably installed in the middles of the cam wheels 35, and the ends of the connecting rods 36 all extend into the corresponding piston chambers 32 and are movably installed at the bottoms of the corresponding rubber pistons 33. The cam wheels 35 drive the connecting rods 36, and further drive the rubber pistons 33 to move in the piston chambers 32.
[0029] Specifically, when the transmission shaft 34 rotates, it will also drive the cam wheels 35 on both sides to rotate. The cam wheels 35 will drive one end of the connecting rod 36 to make a circular motion. Utilizing the limiting effect of the piston chamber 32, the rubber piston 33 is driven to reciprocate up and down in the piston chamber 32. When the rubber piston 33 moves downward, the one-way rubber valve 31 of the air inlet channel 29 is opened, and the outside air enters the heating chamber 27 after being filtered by the dust filter 40. The electric heater 28 is started to heat the air. When the rubber piston 33 moves upward, the one-way rubber valve 31 of the exhaust air channel 30 is opened, and the heated air is discharged through the exhaust air channel 30 to perform hot air drying on the raw materials and remove the residual moisture in the raw materials. This can not only improve the quality of the finished product, but also prevent the raw materials from adhering to the inner wall of the equipment, facilitating the subsequent cleaning work.
[0030] Further, a driving bevel gear 37 is fixedly installed on the outer diameter of the middle part of the transmission shaft 34. The driving bevel gear 37 rotates with the transmission shaft 34. The bottom end of the movable shaft 17 extends below the box body 1 and is fixedly installed with a driven bevel gear 38. The inner ends of the driving bevel gear 37 and the driven bevel gear 38 are meshed and connected. The driving bevel gear 37 drives the driven bevel gear 38, thereby rotating the movable shaft 17. A second motor 39 is fixedly installed on one side of the bottom of the box body 1, and the driving end of the second motor 39 is fixedly installed at one end of the transmission shaft 34. The second motor 39 provides rotational power for the transmission shaft 34.
[0031] Specifically, the ground raw materials will fall onto the sieve mesh 22. When the movable shaft 17 rotates, it will also drive the lower chuck 25 on its outer diameter to rotate. Utilizing the toothed structure formed by the hemispherical protrusions 26 that intersect with each other between the upper chuck 24 and the lower chuck 25, and with the cooperation of the return spring 23, the sieve mesh 22 will be driven to vibrate rapidly up and down to quickly screen the ground raw materials, and finally discharge them from the discharge port 42.
[0032] Furthermore, a feed inlet 41 is provided at the top of the box body 1, and the dried chicken block raw materials are put into the box body 1 from here. Discharge ports 42 are provided on both sides of the bottom of the box body 1, and the finished chicken powder after crushing, grinding, drying, and screening is discharged from the discharge ports 42. A control panel 43 is fixedly installed at the front end of the box body 1, and the staff can control and adjust the operation of the equipment through the control panel 43. Support legs 44 are fixedly installed at the four corners of the bottom end of the box body 1, and the support legs 44 support the entire equipment to keep it running stably.
[0033] Working principle: First, put the dried chicken block raw materials into the box body 1 from the feed inlet 41. After the raw materials enter the crushing cavity 2, start the first motor 13. Drive the first smooth rod 4 to rotate through the first motor 13. The first smooth rod 4 will drive the synchronous pulley 14 at the end to rotate. Utilize the transmission of the synchronous belt 15 to drive the first smooth rod 4 on the other side to rotate together, so that the two worm gears 5 rotate synchronously. The rotating worm gear 5 will engage with the worm wheel 7 for transmission, driving the worm wheel 7 and the short shaft 6 to rotate, and then driving the cylinder block 8 inside the short shaft 6 to rotate. Since the bearing block 9 on the outer diameter of the cylinder block 8 is arranged in the ball groove with an inclined surface, when the cylinder block 8 rotates, it will drive the bearing block 9 to swing reciprocally, thereby driving one end of the push-pull rod 10 to swing together. Then use the other end of the push-pull rod 10 to push the jaw plate 3 to rotate, realizing the action of the two jaw plates 3 clamping inward or opening outward synchronously, so as to preliminarily crush the raw materials entering between the two jaw plates 3. At the same time, the synchronous belt 15 will also drive the second smooth rod 11 to rotate, and then drive the spiral cutter 12 on its outer diameter to rotate at a high speed, performing secondary cutting and crushing on the preliminarily crushed chicken block raw materials, which can improve the later grinding quality. The crushed raw materials will fall onto the surface of the throwing disc 19 in the grinding cavity 16. At this time, start the second motor 39. Drive the transmission shaft 34 to rotate through the second motor 39, driving the driving bevel gear 37 to rotate. The driving bevel gear 37 will drive the driven bevel gear 38 and the movable shaft 17 to rotate, thereby driving the rotating rod 18 at the top of the movable shaft 17 to rotate. The rotating rod 18 will drive all the throwing discs 19 to rotate. Utilize the centrifugal force generated when the throwing disc 19 rotates to throw the crushed raw materials into the grinding groove 21. At the same time, when the throwing disc 19 rotates, it will drive all the grinding wheels 20 to rotate. Utilize the high-speed rotating grinding wheels 20 to quickly grind the raw materials in the grinding groove 21. The multi-layer designed grinding groove 21 and grinding wheels 20 will grind the raw materials multiple times to improve the later finished product quality. In addition, when the transmission shaft 34 rotates, it will also drive the cams 35 on both sides to rotate. The cam 35 will drive one end of the connecting rod 36 to move in a circular motion. Utilize the limiting effect of the piston cavity 32 to drive the rubber piston 33 to reciprocate up and down in the piston cavity 32. When the rubber piston 33 moves downward, the one-way rubber valve 31 in the air inlet channel 29 is opened, and the outside air enters the heating cavity 27 after being filtered by the dust-proof net 40. Start the electric heater 28 to heat the air. When the rubber piston 33 moves upward, the one-way rubber valve 31 in the exhaust air channel 30 is opened, and the heated air is discharged through the exhaust air channel 30 to perform hot air drying on the raw materials, removing the residual moisture in the raw materials. This can not only improve the finished product quality but also prevent the raw materials from adhering to the inner wall of the equipment, facilitating the later cleaning work. The raw materials after grinding will fall onto the sieve 22. When the movable shaft 17 rotates, it will also drive the lower chuck 25 on its outer diameter to rotate. Utilize the toothed structure formed by the hemispherical protrusions 26 that intersect with each other between the upper chuck 24 and the lower chuck 25, and cooperate with the action of the return spring 23, to drive the sieve 22 to vibrate rapidly up and down.The ground raw materials are quickly screened and finally discharged from the discharge port 42.
[0034] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An integrated production device for chicken powder, comprising a box body (1), characterized in that, A crushing chamber (2) is provided on the upper side inside the box body (1). On both sides inside the crushing chamber (2), jaw plates (3) are movably installed. On both sides inside the crushing chamber (2), close to the outer sides of the jaw plates (3), first optical rods (4) are movably installed. On the front and rear sides inside the crushing chamber (2), short shafts (6) are movably installed. At the inner ends of the short shafts (6), cylinders (8) are fixedly installed. On the outer diameters of the cylinders (8), inclined ball grooves are provided and bearing seats (9) are movably installed in the ball grooves. At the top of the inner ends of the bearing seats (9), push-pull rods (10) are movably installed, and the inner ends of the push-pull rods (10) are movably installed at the middle parts of the outer ends of the corresponding side jaw plates (3). A grinding chamber (16) is provided on the lower side inside the box body (1). In the middle of the grinding chamber (16), a movable shaft (17) is movably installed. At the top of the movable shaft (17), a rotating rod (18) is fixedly installed. On the outer diameter of the rotating rod (18), a number of throwing discs (19) are uniformly fixedly installed. At the bottom ends of the throwing discs (19), a number of grinding wheels (20) are movably installed. On the upper side of the inner wall of the grinding chamber (16), a number of grinding grooves (21) are provided. On both sides inside the box body (1), heating chambers (27) are also provided. Inside the heating chambers (27), electric heaters (28) are fixedly installed.
2. The integrated production equipment for a kind of chicken powder according to claim 1, characterized in that, On the middle outer diameter of the first optical rods (4), worms (5) are fixedly installed. On the middle outer diameter of the short shafts (6), worm wheels (7) are fixedly installed, and the bottom ends of the worm wheels (7) are meshed and connected to the tops of the corresponding side worms (5).
3. The integrated production equipment for a kind of chicken powder according to claim 1, characterized in that, A second optical rod (11) is movably installed at the lower side in the middle of the crushing chamber (2). On the outer diameter of the second optical rod (11), a spiral cutter (12) is fixedly installed. On one side of the top of the box body (1), a first motor (13) is fixedly installed, and the driving end of the first motor (13) is fixedly installed at one end of the corresponding side first optical rod (4). The ends of the first optical rod (4) and the second optical rod (11) extend to the outside of the box body (1) and are fixedly installed with synchronous wheels (14). The outer diameters of the synchronous wheels (14) are connected by a synchronous belt (15).
4. An integrated production device for chicken powder according to claim 1, characterized in that, A screen (22) is installed at the lower side inside the grinding chamber (16). Both sides of the bottom end of the screen (22) are connected to the inner side wall of the grinding chamber (16) through return springs (23). In the middle of the bottom end of the screen (22), an upper chuck (24) is fixedly installed. On the middle outer diameter of the movable shaft (17), close to the lower side of the upper chuck (24), a lower chuck (25) is fixedly installed. At the inner ends of the upper chuck (24) and the lower chuck (25), a number of hemispherical protrusions (26) are fixedly installed, and the positions of the upper and lower hemispherical protrusions (26) are staggered.
5. An integrated production device for chicken powder according to claim 1, characterized in that, An air inlet channel (29) is provided on the outer side of the inner top of the heating chamber (27), and the outer ends of the air inlet channels (29) are all communicated with the outside. An exhaust air channel (30) is provided inside the inner top of the heating chamber (27), and the inner ends of the exhaust air channels (30) are all communicated with the inside of the grinding chamber (16). A dust-proof net (40) is fixedly installed at the outer end of each air inlet channel (29). A one-way rubber valve (31) is fixedly installed inside each of the air inlet channel (29) and the exhaust air channel (30).
6. An integrated production device for chicken powder according to claim 1, characterized in that, A piston chamber (32) is provided on one side of the inner bottom of the heating chamber (27), and the bottom of the piston chamber (32) is communicated with the outside. A rubber piston (33) is movably installed inside each piston chamber (32). A transmission shaft (34) is movably installed directly below the box body (1). Cam (35) is fixedly installed on the outer diameter on both sides of the transmission shaft (34). A connecting rod (36) is movably installed in the middle of each cam (35), and the ends of the connecting rods (36) all extend into the corresponding piston chamber (32) and are movably installed at the bottom end of the corresponding rubber piston (33).
7. An integrated production device for chicken powder according to claim 6, characterized in that, A driving bevel gear (37) is fixedly installed on the outer diameter of the middle of the transmission shaft (34). The bottom end of the movable shaft (17) extends below the box body (1) and a driven bevel gear (38) is fixedly installed. The inner ends of the driving bevel gear (37) and the driven bevel gear (38) are meshed and connected. A second motor (39) is fixedly installed on one side of the bottom of the box body (1), and the driving end of the second motor (39) is fixedly installed at one end of the transmission shaft (34).
8. An integrated production device for chicken powder according to claim 1, characterized in that, A feed inlet (41) is provided at the top of the box body (1). Discharge outlets (42) are provided on both sides of the bottom of the box body (1). A control panel (43) is fixedly installed at the front end of the box body (1). Support legs (44) are fixedly installed at the four corners of the bottom end of the box body (1).
Citation Information
Patent Citations
Screening equipment for chicken powder
CN222152901U
High-temperature aerogel heat insulation coating, preparation equipment and use method for preparation equipment
US20230226507A1
Cited By
Modernized manure treatment device for broiler farms
CN121248108A