Pig farm afterbirth treatment vehicle with power drive

By using a rechargeable lithium battery pack and a sealed structure in the pig farm placenta processing vehicle, the problems of insufficient power, poor sealing and instability of traditional pig farm placenta processing vehicles have been solved, realizing autonomous movement and closed operation, and improving operational safety and efficiency.

CN223972585UActive Publication Date: 2026-03-06WENS FOODSTUFF GROUP CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing pig farm placenta processing vehicles rely on manual labor or external power sources for power, making them unable to move freely, with poor sealing, prone to contamination, and unstable on wet and slippery surfaces, affecting operational safety and efficiency.

Method used

Using a rechargeable lithium battery pack as the power source, combined with a sealed structure, anti-slip load-bearing structure and shock absorption system, the vehicle can move stably in wet and slippery environments and achieve closed operation.

Benefits of technology

It enables autonomous movement, closed operation, and stability of the pig farm placenta processing vehicle, reducing manual labor, preventing pollutant leakage, and improving operational safety and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of pig farm equipment, in particular to a pig farm afterbirth treatment vehicle with power drive, which comprises a treatment vehicle main body, a sealing structure and an anti-slip bearing structure, a power drive system is arranged in the treatment vehicle main body, and the treatment vehicle main body comprises a motor, a power supply and a control part; the sealing structure drives a lifting plate and a sealing plate to cooperatively act through a hydraulic press, so that the sealing operation of the afterbirth treatment bin is realized, and pollution is avoided; the anti-skid bearing structure adopts the design of anti-skid wheels, shock absorption and bearing beams, so that stable movement and load capacity of the vehicle in a wet and slippery complex environment are ensured. The work efficiency is improved through power driving, sanitation and safety are guaranteed through a sealing structure, adaptability is enhanced through the anti-skid bearing design, the problems that in traditional afterbirth treatment, efficiency is low, pollution is prone to occurring, and movement is inconvenient are solved, and the afterbirth collecting and harmless treatment device is suitable for afterbirth collecting and harmless treatment of a large-scale pig farm.
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Description

Technical Field

[0001] This application relates to the field of pig farm technology, and in particular to a pig farm placenta processing vehicle powered by a breeding belt. Background Technology

[0002] In modern large-scale pig farming, with the continuous expansion of farm size and the increasing level of intelligence, daily management and hygiene and disease prevention are particularly important. Placental removal, as a key step in the cleaning process of the farrowing house, not only affects the sow's health recovery but also directly impacts the environmental safety and feeding efficiency of the farrowing house. Traditional manual handling of placenta is time-consuming and labor-intensive, and operating on slippery pigsty floors can easily lead to contamination spread and cross-infection. To meet the demands for efficient, environmentally friendly, and mobile solutions, various placental collection and transfer devices have gradually emerged in the market. However, most rely on external power or manual pushing and pulling, making it difficult to maintain stability on slippery and uneven surfaces. Furthermore, their leak-proof design and environmentally friendly processing capabilities still need improvement.

[0003] In existing technologies, most placenta processing vehicles have the following shortcomings: First, the power source is mostly manual or external power, which cannot achieve free movement and continuous operation on site, and fatigue and efficiency decline are easily generated during continuous operation; Second, the existing placenta collection bins mostly adopt a simple open design, lacking reliable sealing measures, which easily generates odors and sewage overflow during the processing, and cannot effectively isolate pathogenic particles, making it difficult to meet the hygiene and epidemic prevention requirements of farms; Third, most vehicle chassis and wheel systems do not take into account the complexity of the slippery environment of pig farms, and the load-bearing structure and shock absorption capacity are insufficient, making it easy to slip and bump on uneven pigsty floors, which not only affects operational safety but also accelerates equipment wear and tear.

[0004] In response to the aforementioned technologies, a power-driven pig farm placenta processing vehicle is proposed. Utility Model Content

[0005] To address the problems mentioned in the background section, this application provides a power-driven pig farm placenta processing vehicle.

[0006] This application provides a power-driven pig farm placenta processing vehicle, which adopts the following technical solution:

[0007] Optionally, the main body of the processing vehicle includes a sealing structure, and an anti-slip load-bearing structure is provided below the sealing structure;

[0008] The sealing structure includes two opposing sealing plates, a lifting plate is provided below the two sealing plates, a slide groove is fixedly installed below the lifting plate, a bearing is slidably connected inside the slide groove, a lifting frame is provided below the bearing, and a hydraulic device is provided on one side of the lifting frame;

[0009] The anti-slip load-bearing structure includes an anti-slip wheel, a shock absorber on the inner side of the anti-slip wheel, a load-bearing beam below the shock absorber, a motor on the inner side of the load-bearing beam, a power supply on the front side of the motor, and a frame above the power supply.

[0010] Optionally, the processing vehicle body includes an accelerator, and a handbrake is provided at the front end of the accelerator.

[0011] Optionally, the anti-skid wheel surface is provided with a deep-grooved anti-skid tread, and the shock absorption adopts a multi-level spring buffer structure.

[0012] Optionally, the power source is a rechargeable lithium battery pack, which is integrated inside the vehicle frame and electrically connected to the motor.

[0013] Optionally, a rubber sealing strip is provided between the lifting plate and the sealing plate, and the maximum stroke of the hydraulic device is matched with the length of the slide groove to ensure complete closure of the sealing structure.

[0014] Optionally, the load-bearing beam is made of high-strength alloy steel and is fixed to the vehicle frame by welding to form an integrated support frame.

[0015] In summary, this application offers the following beneficial technical advantages: The use of a motor and a rechargeable lithium battery pack as the power source reduces reliance on manual handling while ensuring ease of operation and environmental friendliness. Its sealing structure, driven by a hydraulic system, coordinates the lifting plate and sealing plate, combined with a rubber sealing strip design, effectively achieving a sealed operation of the processing chamber, avoiding potential contamination issues during placenta processing, and ensuring the hygiene and safety of the pig farm.

[0016] The anti-slip load-bearing structure employs deep-patterned anti-slip tires, multi-stage spring-cushioned shock absorption, and a high-strength alloy steel welded integrated load-bearing beam, enhancing the vehicle's stability and load-bearing capacity in wet and slippery environments, ensuring smooth and durable transport of placenta. Furthermore, the vehicle design balances functionality and safety, equipped with throttle, handbrake, and other control components, further optimizing the user experience. Overall, this equipment addresses the pain points of traditional placenta processing methods, such as low efficiency, easy contamination, and inconvenience in mobility, making it suitable for the efficient, hygienic, and safe collection and harmless treatment of placenta in modern large-scale pig farms. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application;

[0018] Figure 2 This is a schematic diagram of the overall unfolded structure in the embodiments of this application;

[0019] Figure 3 This is a schematic diagram of the anti-slip load-bearing structure in the embodiments of this application;

[0020] Figure 4 This is a schematic diagram of the anti-slip load-bearing structure from the side view of an embodiment of this application;

[0021] Reference numerals in the attached diagram: 1. Main body of the processing vehicle; 101. Accelerator; 102. Handbrake; 2. Sealing structure; 201. Sealing plate; 202. Lifting plate; 203. Lifting frame; 204. Hydraulic unit; 205. Bearing; 206. Slide groove; 3. Anti-slip load-bearing structure; 301. Anti-slip wheel; 302. Motor; 303. Shock absorber; 304. Load-bearing beam; 305. Power supply; 306. Frame. Detailed Implementation

[0022] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0023] This application discloses a power-driven pig farm placenta processing vehicle. For example... Figure 1 As shown, the main body 1 of the processing vehicle includes a sealing structure 2, and an anti-slip load-bearing structure 3 is provided below the sealing structure 2;

[0024] The sealing structure 2 includes two opposing sealing plates 201. A lifting plate 202 is provided below the two sealing plates 201. A slide groove 206 is fixedly installed below the lifting plate 202. A bearing 205 is slidably connected inside the slide groove 206. A lifting frame 203 is provided below the bearing 205. A hydraulic device 204 is provided on one side of the lifting frame 203.

[0025] The anti-slip load-bearing structure 3 includes an anti-slip wheel 301, a shock absorber 303 is provided on the inner side of the anti-slip wheel 301, a load-bearing beam 304 is provided below the shock absorber 303, a motor 302 is provided on the inner side of the load-bearing beam 304, a power supply 305 is provided in front of the motor 302, and a frame 306 is provided above the power supply 305.

[0026] It should be noted that the sealing structure 2, driven by a hydraulic actuator 204, links the lifting plate 202 with the sealing plate 201. Combined with the mechanical cooperation of the slide 206, bearing 205, and lifting frame 203, this achieves a sealed operation of the processing chamber, effectively preventing contaminant leakage and ensuring hygiene and safety. The anti-slip load-bearing structure 3 employs deep-grooved anti-slip wheels 301, multi-level shock absorption 303, and a high-strength integrated load-bearing beam 304 to ensure stable vehicle movement in wet and slippery environments. Simultaneously, it is driven by a motor 302 and powered by a rechargeable power supply 305, reducing manual labor and improving load capacity and operational efficiency. The overall design balances sealing, stability, and power drive, meeting the needs of large-scale pig farms for efficient and safe placenta processing.

[0027] Please see Figures 1-4 The main body of the vehicle 1 includes an accelerator 101, and a handbrake 102 is provided at the front end of the accelerator 101.

[0028] It should be noted that the throttle 101 in the main body 1 is used to control the vehicle's power output and adjust the movement speed to adapt to different operational needs; the handbrake 102 is located in front of the throttle 101, which facilitates the operator to brake quickly when parking, ensuring that the vehicle is stably parked in wet and slippery environments and avoiding accidental slippage. The coordinated design of the two takes into account both the flexibility of power control and parking safety, improving operational efficiency and reliability.

[0029] Please see Figures 3-4 The anti-skid wheel 301 has a deep-grooved anti-skid tread, and the shock absorber 303 adopts a multi-level spring buffer structure.

[0030] It should be noted that the deep-grooved anti-slip tread of the anti-skid wheel 301 increases the friction with the ground, effectively preventing the vehicle from slipping in wet or complex environments and ensuring stability during movement; the shock absorber 303 adopts a multi-level spring buffer structure, which can absorb vibrations of different intensities in stages and buffer impact forces, reducing the impact of bumps on the vehicle body and load, while maintaining vehicle balance, enhancing driving stability and durability on rough roads, and ensuring operational safety and equipment reliability.

[0031] Please see Figures 3-4 The power supply 305 is a rechargeable lithium battery pack, which is integrated inside the frame 306 and electrically connected to the motor 302.

[0032] It should be noted that the power supply 305 is integrated into the frame 306 as a rechargeable lithium battery pack, providing stable power drive for the motor 302, ensuring that the power source of the processing vehicle is efficient, environmentally friendly and easy to maintain; its built-in design optimizes the space layout, enhances the compactness and safety of the overall equipment structure, and reduces the interference of the external environment on the power supply 305, ensuring the reliable operation of the power system under the complex working conditions of the pig farm.

[0033] Please see Figures 1-2 A rubber sealing strip is provided between the lifting plate 202 and the sealing plate 201. The maximum stroke of the hydraulic device 204 is matched with the length of the slide groove 206 to ensure the complete closure of the sealing structure 2.

[0034] It should be noted that the rubber sealing strip between the lifting plate 202 and the sealing plate 201, combined with the matching design of the maximum stroke of the hydraulic actuator 204 and the length of the slide 206, jointly ensures that the sealing structure 2 is completely closed during operation. The rubber sealing strip fills the gap between the lifting plate 202 and the sealing plate 201, preventing the leakage of liquids, odors, or contaminants generated during the tire sheath processing, thus ensuring hygiene and safety. The matching of the stroke of the hydraulic actuator 204 with the length of the slide 206 ensures that the lifting plate 202 can accurately cover the entire length of the slide 206 under hydraulic drive, avoiding seal failure or structural damage due to insufficient or excessive stroke, thereby maintaining the reliability and airtightness of the sealing structure 2. This design comprehensively improves the anti-pollution capability and operational stability of the tire sheath processing vehicle.

[0035] Please see Figures 3-4 The load-bearing beam 304 is made of high-strength alloy steel and is fixed to the frame 306 by welding to form an integrated support frame.

[0036] It should be noted that the load-bearing beam 304 is made of high-strength alloy steel and welded to the frame 306 to form an integrated support frame. Its core function is to ensure that the fetal membrane handling vehicle has sufficient load-bearing capacity and anti-deformation performance in complex environments through the strength of the material and the stability of the structural design. At the same time, it disperses the force and reduces stress concentration, thereby enhancing the durability and safety of the overall structure and meeting the high-frequency and high-load fetal membrane transfer needs of large-scale pig farms.

[0037] The implementation principle of a power-driven pig farm placenta processing vehicle according to an embodiment of this application is as follows: The implementation principle of this utility model patent is based on the synergistic design of closed operation and stable load-bearing, aiming to solve the problems of low efficiency, easy contamination, and inconvenience in traditional pig farm placenta processing. The main body 1 of the processing vehicle is equipped with a power drive system, which is powered by a rechargeable lithium battery pack to drive the anti-slip wheels 301 to achieve autonomous movement, reducing the burden of manual handling. The sealing structure 2 drives the lifting plate 202 and the sealing plate 201 to work together through the hydraulic device 204. Combined with the mechanical cooperation of the slide 206, bearing 205 and lifting frame 203, the opening and closing of the placenta processing chamber is controlled; the rubber sealing strip between the lifting plate 202 and the sealing plate 201 ensures a complete seal when closed, preventing the leakage of pollutants during the processing and ensuring the hygiene and safety of the pig farm.

[0038] The anti-slip load-bearing structure 3 employs deeply textured anti-slip wheels 301 to increase ground adhesion, multi-stage spring shock absorbers 303 to absorb vibrations, and a high-strength alloy steel load-bearing beam 304 welded to the frame 306 to form an integrated support frame, distributing load stress and ensuring stable vehicle operation in wet, slippery, and rugged environments while bearing high-load tire sheaths. The throttle 101 and handbrake 102 are designed to optimize power control and braking safety. Overall, the power drive improves operational efficiency, the sealed design prevents contamination, and the anti-slip load-bearing structure enhances environmental adaptability, collectively meeting the needs of large-scale pig farms for efficient, hygienic, and safe handling of tire sheaths.

[0039] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A powered farrowing barn teat treatment vehicle comprising a treatment vehicle body (1) characterised in that: The processing car body (1) includes a sealing structure (2), and the sealing structure (2) is provided with an anti-skid load-bearing structure (3) below; The sealing structure (2) includes two opposite sealing plates (201), and the two sealing plates (201) are provided with a lifting plate (202) below; the lifting plate (202) is fixedly installed with a sliding groove (206) below; the sliding groove (206) is slidably connected with a bearing (205) inside; the bearing (205) is provided with a lifting frame (203) below; the lifting frame (203) is provided with a hydraulic device (204) on one side; The anti-skid load-bearing structure (3) includes an anti-skid wheel (301), and the anti-skid wheel (301) is provided with a shock absorber (303) on the inner side; the shock absorber (303) is provided with a load-bearing beam (304) below; the load-bearing beam (304) is provided with a motor (302) on the inner side; the motor (302) is provided with a power supply (305) in front; the power supply (305) is provided with a frame (306) above.

2. A powered farrowing barn teat-treatment vehicle according to claim 1, characterized in that: The processing car body (1) includes an accelerator (101), and the accelerator (101) is provided with a hand brake (102) at the front end.

3. A powered farrowing barn teat-treatment vehicle according to claim 1, characterized in that: The anti-skid wheel (301) is provided with a deep-textured anti-skid tread on the surface, and the shock absorber (303) adopts a multi-stage spring buffer structure.

4. A powered farrowing barn teat-treatment vehicle according to claim 1, characterized in that: The power supply (305) is a rechargeable lithium battery pack, which is integrated in the frame (306) and electrically connected with the motor (302).

5. A powered farrowing barn teat-treatment vehicle according to claim 1, characterized in that: The lifting plate (202) and the sealing plate (201) are provided with a rubber sealing strip therebetween, and the maximum stroke of the hydraulic device (204) matches the length of the sliding groove (206), so as to ensure the complete closure of the sealing structure (2).

6. A powered farrowing barn teat-treatment vehicle according to claim 1, characterized in that: The load-bearing beam (304) is made of high-strength alloy steel and is fixed with the frame (306) by welding to form an integrated support frame.