Feed mixing assembly for blood glucose reducing egg production and mixing process of feed mixing assembly
By designing mechanized lifting, rotating, and swinging components, rapid feeding and internal wetting of block feed are achieved, solving the problems of low feeding efficiency and uneven mixing in existing devices, and improving the efficiency and quality of low-sugar egg production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-23
- Publication Date
- 2026-04-07
AI Technical Summary
Existing feed mixing devices suffer from low efficiency, high labor intensity, and uneven mixing during the feeding and humidification processes, which affect the quality and efficiency of low-sugar egg production.
A feed mixing device including a lifting component, a rotating component, and a swinging component was designed. Through mechanized feeding and uniform water injection, the device enables the rapid delivery and internal wetting of block feed, ensuring uniform mixing.
It improved feeding efficiency, reduced labor consumption, ensured uniform mixing of feed, improved production efficiency and quality, and reduced resource waste.
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Figure CN121797167A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of feed mixing technology, and in particular to a feed mixing component and mixing process for producing blood sugar-lowering eggs. Background Technology
[0002] Low-sugar eggs refer to eggs with a lower sugar content in the yolk. In the production of low-sugar eggs, feed is an important factor that can affect the quality and nutritional composition of the eggs. In order to produce low-sugar eggs, a specific feed mixing device is required to ensure that the sugar content in the feed meets the requirements.
[0003] Chinese Patent Publication No. CN114618358B: A powdered feed mixing device with a self-cleaning mechanism, relating to the field of feed processing technology, includes a base, a mixing drum above the base, the mixing drum and the base being connected by a limiting mechanism, and a strong spring between the mixing drum and the base. A vertically mounted motor is also mounted on the base, with an output shaft fixedly mounted at the motor's output end. The output shaft passes through the mixing drum and extends into the drum. A stirring mechanism for mixing powdered feed is mounted on the output shaft. A groove is formed at the bottom of the mixing drum, and a slider is slidably mounted within the groove. An air blowing mechanism is also provided within the groove. This technical solution can change the position of the slider by controlling the rotation direction of the motor, allowing the slider to vibrate the mixing drum to improve the mixing effect and press against the sliding column to generate airflow to clean the inner wall of the mixing drum. However, this technical solution has at least the following shortcomings in use:
[0004] (1) In order to facilitate transportation, the feed is stored in block form before being crushed and mixed. When mixing the feed, the staff needs to put the block feed into the machine. However, the feed mixing device proposed in the above technical solution does not have the function of auxiliary feeding. In actual operation, multiple staff members need to cooperate with each other to put the block feed into the machine by lifting. Moving the block feed requires a lot of physical labor from the staff. Especially if the feed is heavy or needs to be operated continuously for a long time, it will put a certain pressure on the health of the staff and may cause work injury or fatigue. In addition, if multiple staff members need to move the feed together, they need to coordinate and cooperate tacitly. Otherwise, the speed of moving the feed may be inconsistent or the feed may be improperly controlled, resulting in low operating efficiency and prolonging the production time of the mixed feed.
[0005] (2) In order to achieve feed humidification and uniform mixing, water needs to be poured into the machine by the operator during the mixing process. However, when the feed mixing device proposed in the above technical solution is used, water is poured on the surface of the feed and then gradually and evenly mixed into the feed under the stirring action of the machine. In this case, the water may form a wet and overly concentrated area on the surface of the feed, while the internal feed may not have enough moisture and sufficient mixing, resulting in uneven mixing, affecting the quality and nutritional balance of the feed. In addition, if it is necessary to rely on the stirring action of the machine to gradually mix water and feed, the mixing time may be prolonged. This is because water needs to gradually penetrate and disperse into the interior of the feed, not just be limited to the surface. The prolonged mixing time will increase the production cycle and reduce production efficiency.
[0006] Therefore, it is necessary to design a feed mixing component and its mixing process for low-sugar egg production to solve the above problems. Summary of the Invention
[0007] The purpose of this invention is to address the shortcomings of existing technologies by proposing a feed mixing component and its mixing process for producing eggs with low blood sugar.
[0008] To achieve the above objectives, the present invention adopts the following technical solution:
[0009] A feed mixing component and its mixing process for producing blood sugar-lowering eggs, comprising a feed mixing device, wherein a frame is provided on one side of the feed mixing device, and two vertically movable feeding rods are provided on the frame, and both feeding rods are hollow structures;
[0010] The frame is equipped with a feeding mechanism, which includes a lifting component, a rotating component, and a swinging component.
[0011] The lifting assembly is mounted on the frame and is used for lifting the two feeding rods.
[0012] The rotating assembly is located below the frame and is used for the rotation of the two feeding rods;
[0013] The swing assembly is located below the frame and is used to tilt the two feeding rods;
[0014] Both of the feeding rods are equipped with a material securing mechanism, which includes a fixing component, a driving component, and a pushing component;
[0015] Both the fixing component and the driving component are located inside the feeding rod;
[0016] The pushing component is placed on the frame and is used in conjunction with the driving component to realize the operation of the fixed component;
[0017] Both of the feeding rods are equipped with a water injection component.
[0018] As a preferred embodiment of the present invention, the lifting assembly includes a motor, a transmission rod, a transmission component, two threaded rods, a transmission component, a guide rod, and a lifting frame. The motor is mounted on the top of the frame. The transmission rod is rotatably mounted on the frame. The output shaft of the motor is connected to the transmission rod via the transmission component. Both threaded rods are rotatably mounted on the frame and are arranged along the height direction of the frame. The two threaded rods are connected to the transmission rod via the transmission component. The guide rod is fixed to the frame. The lifting frame is threaded onto the two threaded rods and slidably mounted on the guide rod.
[0019] As a preferred embodiment of the present invention, the rotating assembly includes a support frame, a base, a rotating seat, a second motor, a gear, and a plurality of teeth. The support frame is located below the frame and can rotate relative to the frame. The base is located below the support frame. The rotating seat is rotatably mounted on the base. The second motor is mounted on the support frame. The gear is fixedly sleeved on the output shaft of the second motor. The plurality of teeth are all located on the rotating seat, and the gear and the plurality of teeth mesh with each other.
[0020] As a preferred embodiment of the present invention, the swing assembly includes a support frame, a swing seat, and a motor. The support frame is fixed at the center of the top surface of the rotating seat. The swing seat is rotatably mounted on the support frame via a shaft. The motor is mounted on the support frame, and the output shaft of the motor is fixedly connected to the shaft. The swing seat is fixedly connected to the frame.
[0021] As a preferred embodiment of the present invention, the fixing assembly includes several openings, several insert rods, several side plates, several sliding rods, and several springs. The openings are evenly distributed on the feeding rod and are all connected to the interior of the feeding rod. The insert rods are placed inside the feeding rod and are respectively positioned opposite the openings. Each insert rod has a water spray hole that passes through it. The side plates are fixed to the insert rods. The sliding rods are fixed inside the feeding rod and are slidably fitted onto the sliding rods. One end of each spring is connected to the inner wall of the feeding rod, and the other end of each spring is connected to the side plates.
[0022] As a preferred embodiment of the present invention, the driving assembly includes a moving rod, two limiting cylinders, a second spring, and several driving blocks. The two limiting cylinders are respectively fixed at both ends inside the feeding rod. The moving rod is movably inserted into the two limiting cylinders. One end of the second spring is connected to one end of the moving rod, and the other end of the second spring is connected to one of the limiting cylinders. The several driving blocks are all fixedly sleeved on the moving rod, and the driving blocks have a frustum-shaped structure.
[0023] As a preferred embodiment of the present invention, the pushing assembly includes a motor, an eccentric wheel, a slide rail, and a push plate. The motor is mounted on the frame, the eccentric wheel is fixed on the output shaft of the motor, and the output shaft of the motor is fixed at the edge of the eccentric wheel. The slide rail is opened on the feeding rod and is connected to the interior of the feeding rod. One end of the push rod is fixed on the moving rod, and the other end extends through the slide rail to the outside of the feeding rod.
[0024] As a preferred embodiment of the present invention, the water injection assembly includes a connecting pipe, two water injection pipes and two pipe caps. The connecting pipe is placed between the two feeding rods to connect the two feeding rods. One end of each of the two water injection pipes is connected to the interior of the two feeding rods, and the two pipe caps are respectively installed at the other end of the two water injection pipes.
[0025] As a preferred embodiment of the present invention, the outer surface of the insertion rod and the inner surface of the opening are in close contact with each other.
[0026] A feed mixing component for low-glycemic egg production, the mixing process of which is as follows:
[0027] S1. The operator starts motor one, causing the threaded rod to rotate. The two feeding rods move up and down with the lifting frame until they reach the bottom of the frame.
[0028] S2. The worker moves the block feed to a position aligned with the two feeding rods, pushes the block feed so that the two feeding rods insert into the block feed.
[0029] S3. The staff starts two motors, which drive the eccentric wheel to rotate. The rotation of the eccentric wheel pushes the push plate, which in turn drives the moving rod to move. The drive block, through the squeezing of several rods, pushes several rods out of the opening and inserts them into the interior of the block feed.
[0030] S4. Restart motor one, the lifting frame moves up, driving the two feeding rods to move upward. When the block feed moves above the feeding port of the feed mixing device, the staff starts motor two.
[0031] S5. Motor 2 drives the gear to rotate, and the gear drives the rotating seat and the swing seat to rotate through the teeth. The frame rotates 180°, so that the block feed moves to the top of the feed mixing device feeding port.
[0032] S6. Water is injected into the two water pipes through the water supply device. The water is sprayed evenly through the spray holes on the plug rod, filling the interior of the block feed and making the block feed and water fully mixed.
[0033] S7. Restart motor four to reset the eccentric wheel and stop squeezing the push plate. The moving rod is reset under the action of spring two, so that the drive block stops squeezing the insertion rod. The insertion rod is reset under the action of the corresponding spring one and retracts into the inside of the feeding rod, no longer fixing the block feed.
[0034] S8. The operator starts motor three, which causes the swing seat to rotate, thereby tilting the frame. Under the gravity of the lumpy feed, the lumpy feed slides off the two feeding rods and falls into the feed mixing device. The feed mixing device crushes and mixes the water-mixed lumpy feed.
[0035] The present invention has the following beneficial effects:
[0036] 1. This invention utilizes a feeding mechanism to assist in feeding block feed. Mechanical feeding can greatly improve work efficiency. Compared with manual handling, mechanical equipment can complete the feeding process more quickly and accurately, saving a lot of manpower and time. This helps to improve production efficiency and achieve larger-scale feed production. In addition, the traditional manual handling and feeding method may require workers to endure greater labor intensity, especially in large-scale feed production. With mechanical feeding, workers can avoid long-term repetitive labor and physical exertion, reduce work intensity, and improve the working environment.
[0037] 2. Through water injection, the water flow can evenly fill the interior of the feed blocks, moistening the feed. By thoroughly mixing the water with the feed, feed spillage and waste can be reduced. This ensures that each portion of feed contains an appropriate amount of moisture, maximizing feed utilization, reducing costs and resource waste, and replacing the traditional method of manually pouring water. It allows the water to quickly mix with the feed, guaranteeing the device's effective mixing properties. Attached Figure Description
[0038] Figure 1 This is a schematic diagram of the structure of a feed mixing component for blood sugar-lowering egg production proposed in this invention;
[0039] Figure 2 This is a schematic diagram of the frame structure;
[0040] Figure 3This is a schematic diagram of the rotating assembly.
[0041] Figure 4 This is a schematic diagram of the swing assembly.
[0042] Figure 5 This is a cross-sectional view of the feeding rod.
[0043] Figure 6 for Figure 5 A magnified view of the local structure;
[0044] Figure 7 for Figure 1 Enlarged view of the structure at point A;
[0045] Figure 8 This is a process flow diagram of the mixing process of a feed mixing component for low-sugar egg production proposed in this invention.
[0046] In the diagram: 1. Feed mixing device; 2. Frame; 3. Feeding rod; 41. Lifting assembly; 411. Motor 1; 412. Transmission rod; 413. Transmission component 1; 414. Threaded rod; 415. Transmission component 2; 416. Guide rod; 417. Lifting frame; 42. Rotating assembly; 421. Support frame; 422. Base; 423. Rotating seat; 424. Motor 2; 425. Gear; 426. Tooth; 43. Swing assembly; 431. Bearing frame; 432. Swing seat; 433. Motor 3; 51. Fixing assembly; 511. Opening; 512. Insert rod; 513. Side plate; 514. Slide rod; 515. Spring 1; 52. Drive assembly; 521. Moving rod; 522. Limiting cylinder; 523. Spring 2; 524. Drive block; 53. Push assembly; 531. Motor 4; 532. Eccentric wheel; 533. Slide rail; 534. Push plate; 6. Water injection assembly; 61. Connecting pipe; 62. Water injection pipe; 63. Pipe cap. Detailed Implementation
[0047] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0048] Reference Figure 1-7 A feed mixing assembly for producing blood sugar-lowering eggs includes a feed mixing device 1, characterized in that a frame 2 is provided on one side of the feed mixing device 1, and two vertically movable feeding rods 3 are provided on the frame 2, and both feeding rods 3 are hollow.
[0049] The frame 1 is equipped with a feeding mechanism, which includes a lifting component 41, a rotating component 42 and a swinging component 43;
[0050] The lifting assembly 41 is placed on the frame 2 and is used for lifting the two feeding rods 3;
[0051] The rotating assembly 42 is located below the frame 2 and is used for the rotation of the two feeding rods 3;
[0052] The swing assembly 43 is located below the frame 2 and is used for tilting the two feeding rods 3;
[0053] Both feeding rods 3 are equipped with a material fixing mechanism, which includes a fixing component 51, a driving component 52 and a pushing component 53.
[0054] Both the fixing component 51 and the driving component 52 are located inside the feeding rod 3;
[0055] Among them, the push component 53 is placed on the frame 2, and the push component 53 works in conjunction with the drive component 52 to realize the operation of the fixed component 51;
[0056] Both feeding rods 3 are equipped with a water injection component 6.
[0057] Reference Figure 2 The lifting assembly 41 includes a motor 411, a transmission rod 412, a transmission component 413, two threaded rods 414, a transmission component 415, a guide rod 416, and a lifting frame 417. The motor 411 is installed at the top of the frame 2. The transmission rod 412 is rotatably mounted on the frame 2. The output shaft of the motor 411 is connected to the transmission rod 412 via the transmission component 413. The two threaded rods 414 are rotatably mounted on the frame 1, and both threaded rods 414 are arranged along the height direction of the frame 2. The two threaded rods 414 are connected to the transmission rod 412 via the transmission component 415. The guide rod 416 is fixed on the frame 2. The lifting frame 417 is threaded onto the two threaded rods 414, and the lifting frame 417 is slidably mounted on the guide rod 416. By setting up the lifting assembly 41, it is convenient for the two feeding rods 3 to move up and down.
[0058] Reference Figure 3 The rotating assembly 42 includes a support frame 421, a base 422, a rotating seat 423, a second motor 424, a gear 425, and several teeth 426. The support frame 421 is located below the frame 2 and can rotate relative to the frame 2. The base 422 is located below the support frame 421. The rotating seat 423 is rotatably mounted on the base 422. The second motor 424 is mounted on the support frame 421. The gear 425 is fixedly sleeved on the output shaft of the second motor 424. Several teeth 426 are all located on the rotating seat 423. The gear 425 and several teeth 426 mesh with each other. By setting the rotating assembly 42, the frame 2 can rotate.
[0059] Reference Figure 4The swing assembly 43 includes a support frame 431, a swing seat 432, and a motor 433. The support frame 431 is fixed at the middle position of the top surface of the rotating seat 423. The swing seat 432 is rotatably mounted on the support frame 431 via a shaft. The motor 433 is mounted on the support frame 431, and the output shaft of the motor 433 is fixedly connected to the shaft. The swing seat 432 is fixedly connected to the frame 2. By setting the swing assembly 43, the frame 2 can be tilted, which facilitates the sliding of block feed from the two feeding rods 3.
[0060] Reference Figure 5-6 The fixing component 51 includes several openings 511, several insert rods 512, several side plates 513, several sliding rods 514, and several springs 515. The openings 511 are evenly distributed on the feeding rod 3 and are all connected to the interior of the feeding rod 3. The insert rods 512 are all placed inside the feeding rod 3 and are respectively positioned opposite the openings 511. Each insert rod 512 has a water spray hole penetrating it. The side plates 513 are respectively fixed to the insert rods 512. The sliding rods 514 are all fixed to the openings 511. Inside the feed rod 3, several side plates 513 are slidably sleeved on several sliding rods 514. One end of several springs 515 is connected to the inner wall of the feed rod 3, and the other end of several springs 515 is connected to several side plates 513. By setting the fixing component 51, several insert rods 512 can extend through several openings 511 and be inserted into the interior of the block feed, which can increase the contact area between the two feed rods 3 and the block feed. At this time, the several insert rods 512 can fix the block feed and prevent the block feed from falling off the insert rods 512.
[0061] Reference Figure 6 The drive assembly 52 includes a moving rod 521, two limiting cylinders 522, a second spring 523, and several drive blocks 524. The two limiting cylinders 522 are fixed at both ends inside the feeding rod 3. The moving rod 521 is movably inserted into the two limiting cylinders 522. One end of the second spring 523 is connected to one end of the moving rod 521, and the other end of the second spring 523 is connected to one of the limiting cylinders 522. Several drive blocks 524 are fixedly sleeved on the moving rod 521, and the drive blocks 524 have a frustum-shaped structure. By setting the drive assembly 52, it is convenient for several insert rods 512 to move.
[0062] Reference Figure 7The pushing component 53 includes a motor 531, an eccentric wheel 532, a slide rail 533, and a push plate 534. The motor 531 is mounted on the frame 2. The eccentric wheel 532 is fixed on the output shaft of the motor 531, and the output shaft of the motor 531 is fixed at the edge of the eccentric wheel 532. The slide rail 533 is opened on the feeding rod 3 and is connected to the interior of the feeding rod 3. One end of the push rod 534 is fixed on the moving rod 521, and the other end extends through the slide rail 533 to the outside of the feeding rod 3. By setting the pushing component 53, it is convenient for several insert rods 512 to move.
[0063] Reference Figure 2 The water injection component 6 includes a connecting pipe 61, two water injection pipes 62 and two pipe caps 63. The connecting pipe 61 is placed between the two feeding rods 3 and is used to connect the two feeding rods 3. One end of each of the two water injection pipes 62 is connected to the inside of the two feeding rods 3. The two pipe caps 63 are installed at the other end of each of the two water injection pipes 62. By setting the water injection component 6, water will be evenly filled into the interior of the block feed, so that the water and the block feed are evenly mixed.
[0064] Reference Figure 6 The outer surface of the insertion rod 512 fits against the inner surface of the opening 511 to ensure the stability of the movement of the insertion rod 512.
[0065] A feed mixing component for low-glycemic egg production, the mixing process of which is as follows:
[0066] S1. The operator starts motor 411, causing the threaded rod 414 to rotate. The two feeding rods 3 move up and down with the lifting frame 417 until they reach the bottom of the frame 2.
[0067] S2. The worker moves the block feed to a position aligned with the two feeding rods 3, and pushes the block feed so that the two feeding rods 3 are inserted into the block feed.
[0068] S3. The staff starts two motors 531, which drives the eccentric wheel 532 to rotate. The rotation of the eccentric wheel 532 pushes the push plate 534. The push plate 534 drives the moving rod 521 to move. The drive block 524 pushes the several insert rods 512 out of the opening 511 and inserts them into the interior of the block feed by squeezing the several insert rods 512.
[0069] S4. Restart motor 411, lift frame 417 moves up, driving the two feeding rods 3 to move upward. When the block feed moves above the feeding port of feed mixing device 1, the operator starts motor 424.
[0070] S5. Motor 2 424 drives gear 425 to rotate. Gear 425 drives rotating seat 423 and swing seat 432 to rotate through teeth 426. The frame 2 rotates 180°, so that the block feed moves to the top of the feed mixing device 1 feeding port.
[0071] S6. Water is injected into the two water injection pipes 62 through the water supply device. The water is sprayed evenly through the water spray hole on the plug 512 and fills the interior of the block feed, so that the block feed and water are fully mixed.
[0072] S7. Restart motor 4 531 to reset eccentric wheel 532 and stop pressing push plate 534. Move rod 521 is reset under the action of spring 2 523, so that drive block 524 stops pressing insert rod 512. Insert rod 512 is reset under the action of corresponding spring 1 515 and retracts into the inside of feed rod 3, no longer fixing block feed.
[0073] S8. The operator starts the motor 433, which causes the swing seat 432 to rotate, thereby causing the frame 2 to tilt. Under the gravity of the lumpy feed, the lumpy feed slides off the two feeding rods 3 and falls into the feed mixing device 1. The feed mixing device 1 crushes and mixes the water-mixed lumpy feed.
[0074] The specific working principle of this invention is as follows:
[0075] When using the blood sugar-lowering egg production feed mixing component proposed in this invention, the operator starts the motor 411. When the motor 411 is running, it can drive the transmission rod 412 to rotate through the transmission component 413. When the transmission rod 412 rotates, it can drive the two threaded rods 414 to rotate through the transmission component 415. Under the guidance of the guide rod 416, the rotation of the two threaded rods 414 can drive the lifting frame 417 to move up and down, and the two feeding rods 3 will also move accordingly. When the two feeding rods 3 move to the bottom of the frame 2, the operator turns off the motor 411. Then, the operator moves the block feed to the position facing the two feeding rods 3 and pushes the block feed so that the two feeding rods 3 are inserted into the interior of the block feed. The end of the two feeding rods 3 away from the frame 2 is pointed, which makes it easier for the feeding rods 3 to be inserted into the interior of the block feed.
[0076] Furthermore, the operator starts two motors 531. When motors 531 operate, they drive eccentric wheels 532 to rotate. The rotation of eccentric wheels 532 pushes push plates 534, causing push plates 534 to move moving rods 521. As moving rods 521 move, several driving blocks 524 also move, pressing against several insert rods 512. Since the driving blocks 524 have a frustum-shaped structure, when they press against the insert rods 512, the insert rods 512 move and pass through openings 511 to the outside of the feeding rod 3. Based on the above process, under the combined action of the driving assembly 52 and the pushing assembly 53, several insert rods 512 can pass through... Several openings 511 extend out and are inserted into the interior of the block feed, which can increase the contact area between the two feeding rods 3 and the block feed. At this time, several insert rods 512 can fix the block feed and prevent the block feed from falling off the insert rods 512. It should be noted that one end of the insert rod 512 has a pointed structure, which makes it easy for the insert rod 512 to be inserted into the interior of the block feed. In addition, during the movement of the insert rod 512, the side plate 513 and the slide rod 514 guide the movement of the insert rod 512 to ensure the stability of the insert rod 512 during the movement. Secondly, during the movement of the moving rod 521, the two limiting cylinders 522 limit the movement of the moving rod 521 to ensure the stability of the movement of the moving rod 521.
[0077] After completing the above operations, the staff restarts motor 411, causing the lifting frame 417 to move upward. When the lifting frame 417 moves upward, it can drive the two feeding rods 3 to move upward, thereby moving the block feed upward. During this process, several insert rods 512 play a role in fixing the block feed, preventing the block feed from falling off the two feeding rods 3. When the block feed moves above the feeding port of the feed mixing device 1, the staff starts motor 424. When motor 424 runs, it can drive gear 425 to rotate. When gear 425 rotates, it can engage several teeth 426, causing the rotating seat 423 to rotate. When the rotating seat 423 rotates, it can drive the frame 2 to rotate through the bearing frame 431 and the swing seat 432 until the frame 2 rotates 180°. At this time, the block feed will move directly above the feeding port of the feed mixing device 1.
[0078] Furthermore, the worker injects water into the block feed. Specifically, the worker injects water into the two water pipes 62 through the water supply device. After the water flows into the interior of the two feeding rods 3, it will be sprayed out through the water spray holes on the several insertion rods 512. At this time, the water will evenly fill the interior of the block feed, so that the water and block feed are evenly mixed. After the above operation is completed, the worker starts the motor 531 again, so that the eccentric wheel 532 is reset. When the eccentric wheel 532 is reset, it no longer squeezes the push plate 534. At this time, the moving rod 521 will be reset under the action of the spring 523, so that the drive block 524 stops pressing the insertion rod 512, and the insertion rod 512 will also reset under the action of the corresponding spring 515 and retract into the inside of the feeding rod 3. When the insertion rod 512 resets, it no longer fixes the block feed. Then, the operator starts the motor 433. When the motor 433 rotates, it can drive the swing seat 432 to rotate, which in turn causes the frame 2 to tilt. During the tilting process of the frame 2, under the action of gravity of the block feed, the block feed will slide off the two feeding rods 3 and fall into the inside of the feed mixing device 1. The feed mixing device 1 will then crush and mix the water-mixed block feed.
[0079] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A feed mixing assembly for low-glycemic egg production, comprising a feed mixing device (1), characterized in that, The feed mixing device (1) has a frame (2) on one side, and two feed rods (3) that can move up and down are provided on the frame (2), and both feed rods (3) are hollow. The frame (1) is provided with a feeding mechanism, which includes a lifting component (41), a rotating component (42) and a swinging component (43); The lifting assembly (41) is placed on the frame (2) and is used for lifting the two feeding rods (3); The rotating assembly (42) is located below the frame (2) and is used for the rotation of the two feeding rods (3); The swing assembly (43) is located below the frame (2) and is used for tilting the two feeding rods (3); Both of the feeding rods (3) are provided with a material fixing mechanism, which includes a fixing component (51), a driving component (52) and a pushing component (53); The fixing component (51) and the driving component (52) are both placed inside the feeding rod (3); The pushing component (53) is placed on the frame (2), and the pushing component (53) is used in conjunction with the driving component (52) to realize the operation of the fixed component (51); A water injection assembly (6) is provided on both of the feeding rods (3).
2. The feed mixing component for blood sugar-lowering egg production according to claim 1, characterized in that, The lifting assembly (41) includes a motor (411), a transmission rod (412), a transmission component (413), two threaded rods (414), a transmission component (415), a guide rod (416), and a lifting frame (417). The motor (411) is installed at the top of the frame (2), and the transmission rod (412) is rotatably mounted on the frame (2). The output shaft of the motor (411) and the transmission rod (412) are connected by the transmission component (413). The two threaded rods (414) are rotatably mounted on the frame (1), and the two threaded rods (414) are set along the height direction of the frame (2). The two threaded rods (414) are connected to the transmission rod (412) through the transmission component (415). The guide rod (416) is fixed on the frame (2). The lifting frame (417) is threaded onto the two threaded rods (414), and the lifting frame (417) is slidably mounted on the guide rod (416).
3. The feed mixing component for blood sugar-lowering egg production according to claim 2, characterized in that, The rotating assembly (42) includes a support frame (421), a base (422), a rotating seat (423), a second motor (424), a gear (425), and several teeth (426). The support frame (421) is located below the frame (2), and the support frame (421) and the frame (2) can rotate relative to each other. The base (422) is located below the support frame (421). The rotating seat (423) is rotatably mounted on the base (422). The second motor (424) is mounted on the support frame (421). The gear (425) is fixedly sleeved on the output shaft of the second motor (424). Several teeth (426) are all located on the rotating seat (423), and the gear (425) and several teeth (426) mesh with each other.
4. The feed mixing component for blood sugar-lowering egg production according to claim 3, characterized in that, The swing assembly (43) includes a support frame (431), a swing seat (432), and a motor (433). The support frame (431) is fixed at the middle position of the top surface of the rotating seat (423). The swing seat (432) is rotatably mounted on the support frame (431) via a shaft. The motor (433) is mounted on the support frame (431), and the output shaft of the motor (433) is fixedly connected to the shaft. The swing seat (432) is fixedly connected to the frame (2).
5. The feed mixing component for blood sugar-lowering egg production according to claim 1, characterized in that, The fixing component (51) includes several openings (511), several insert rods (512), several side plates (513), several slide rods (514), and several springs (515). The openings (511) are evenly distributed on the feeding rod (3), and all openings (511) are connected to the interior of the feeding rod (3). The insert rods (512) are placed inside the feeding rod (3), and each insert rod (512) is positioned opposite to one of the openings (511). (512) is provided with water spray holes that pass through the insertion rod (512). Several side plates (513) are fixed on several insertion rods (512). Several sliding rods (514) are fixed inside the feeding rod (3). Several side plates (513) are slidably sleeved on several sliding rods (514). One end of several springs (515) is connected to the inner wall of the feeding rod (3). The other end of several springs (515) is connected to several side plates (513).
6. The feed mixing component for hypoglycemic egg production according to claim 5, characterized in that, The drive assembly (52) includes a moving rod (521), two limiting cylinders (522), a second spring (523), and several drive blocks (524). The two limiting cylinders (522) are respectively fixed at both ends inside the feeding rod (3). The moving rod (521) is movably inserted into the two limiting cylinders (522). One end of the second spring (523) is connected to one end of the moving rod (521), and the other end of the second spring (523) is connected to one of the limiting cylinders (522). Several drive blocks (524) are fixedly sleeved on the moving rod (521), and the drive blocks (524) have a frustum-shaped structure.
7. The feed mixing component for hypoglycemic egg production according to claim 6, characterized in that, The pushing assembly (53) includes a motor (531), an eccentric wheel (532), a slide rail (533), and a push plate (534). The motor (531) is mounted on the frame (2). The eccentric wheel (532) is fixed on the output shaft of the motor (531), and the output shaft of the motor (531) is fixed at the edge of the eccentric wheel (532). The slide rail (533) is opened on the feeding rod (3), and the slide rail (533) is connected to the interior of the feeding rod (3). One end of the push rod (534) is fixed on the moving rod (521), and the other end extends through the slide rail (533) to the outside of the feeding rod (3).
8. The feed mixing component for blood sugar-lowering egg production according to claim 1, characterized in that, The water injection assembly (6) includes a connecting pipe (61), two water injection pipes (62) and two pipe caps (63). The connecting pipe (61) is placed between the two feeding rods (3) to connect the two feeding rods (3). One end of the two water injection pipes (62) is connected to the inside of the two feeding rods (3) respectively. The two pipe caps (63) are respectively installed at the other end of the two water injection pipes (62).
9. A feed mixing component for hypoglycemic egg production according to claim 5, characterized in that, The outer surface of the insertion rod (512) and the inner surface of the opening (511) are in contact with each other.
10. A feed mixing component for hypoglycemic egg production according to any one of claims 1-9, characterized in that, The mixing process is as follows: S1. The staff starts motor one (411), causing the threaded rod (414) to rotate. The two feeding rods (3) move up and down with the lifting frame (417) until they move to the bottom of the frame (2). S2. The staff moves the block feed to a position aligned with the two feeding rods (3), pushes the block feed, and inserts the two feeding rods (3) into the block feed. S3. The staff starts two motors (531), which drive the eccentric wheel (532) to rotate. The rotation of the eccentric wheel (532) pushes the push plate (534). The push plate (534) drives the moving rod (521) to move. The drive block (524) pushes the several insert rods (512) out of the opening (511) and inserts them into the interior of the block feed by squeezing the several insert rods (512). S4. Restart motor one (411), lift frame (417) moves up, driving the two feeding rods (3) to move up. When the block feed moves above the feeding port of feed mixing device (1), the staff starts motor two (424). S5. Motor 2 (424) drives gear (425) to rotate. Gear (425) drives rotating seat (423) and swing seat (432) to rotate through teeth (426). The frame (2) rotates 180°, so that the block feed moves to the feed mixing device (1) directly above the feeding port. S6. Water is injected into the two water injection pipes (62) through the water supply device. The water is sprayed out evenly through the water spray hole on the plug (512) and fills the interior of the block feed, so that the block feed is fully mixed with water. S7. Restart motor four (531) to reset the eccentric wheel (532) and stop pressing the push plate (534). The moving rod (521) is reset under the action of spring two (523), so that the drive block (524) stops pressing the insertion rod (512). The insertion rod (512) is reset under the action of the corresponding spring one (515) and retracts into the inside of the feeding rod (3), no longer fixing the block feed. S8. The operator starts motor three (433), causing the swing seat (432) to rotate, which in turn causes the frame (2) to tilt. Under the gravity of the lumpy feed, the lumpy feed slides off the two feeding rods (3) and falls into the feed mixing device (1). The feed mixing device (1) crushes and mixes the water-mixed lumpy feed.
Citation Information
Patent Citations
A powder feed mixing device with a self-cleaning mechanism
CN114618358B