Gravity treadmill for poultry
By designing a rotating platform for a poultry gravity treadmill, the machine utilizes the gravity of poultry to drive tilting and rotating, achieving a simple, low-cost, and highly efficient fitness effect, thus solving the problems of complex structure and high cost of existing equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN GESHENGMEI IND CO LTD
- Filing Date
- 2025-04-28
- Publication Date
- 2026-06-02
AI Technical Summary
Existing poultry exercise equipment is complex in structure, expensive, and has poor fitness effects. There is a need for a simple, low-cost, and effective gravity treadmill for poultry.
A gravity treadmill for poultry has been designed. The rotating platform is driven by the gravity of the poultry, is tilted and equipped with a food container. The poultry naturally accelerates when chasing the food, achieving a fitness effect without the need for a power source.
By utilizing the poultry's own gravity, a simple, low-cost, and highly efficient fitness effect is achieved, simplifying the equipment structure and reducing production and maintenance costs.
Smart Images

Figure CN224306572U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a device for poultry, and more particularly to a gravity treadmill for poultry that provides fitness functions for poultry. Background Technology
[0002] As is well known, poultry refers to birds raised in captivity, primarily for their meat, eggs, and feathers, but also for other purposes. They are generally pheasants and ducks, such as chickens, ducks, geese, and quails, but also include birds from other families such as turkeys, pigeons, and various songbirds.
[0003] In order to promote the growth and health of poultry, poultry farmers will introduce corresponding equipment to encourage poultry to exercise and move around.
[0004] However, existing equipment for poultry exercise and activity requires a drive mechanism powered by an electric motor, which results in complex structure, high cost, and poor fitness effects.
[0005] Therefore, there is an urgent need for a gravity treadmill for poultry to overcome one or more of the aforementioned defects. Utility Model Content
[0006] The purpose of this invention is to provide a gravity treadmill for poultry that is simple in structure, low in cost, and has good fitness effects.
[0007] To achieve the above objectives, the present invention provides a gravity treadmill for poultry, comprising a rotating platform driven by the gravity of poultry, a container for holding poultry feed, and a mounting frame for mounting the rotating platform to the outside. The rotating platform is rotatably mounted on the mounting frame, and the rotating platform is inclined relative to the horizontal plane during use. The container is placed next to the upwardly inclined side of the rotating platform.
[0008] Compared with existing technologies, this invention utilizes a design where "the rotating platform is rotatably mounted on the mounting frame, and the rotating platform is arranged at an angle relative to the horizontal plane during use" and "the container is arranged next to the upwardly tilted side of the rotating platform." When poultry jumps onto the rotating platform and wants to eat the food in the container above the platform, the poultry must walk towards the upwardly tilted side of the rotating platform. As they walk upward, gravity causes the rotating platform to rotate downward. The faster the poultry walks upward, the faster the rotating platform rotates downward, and the poultry will then chase after it at an even faster speed, resulting in better fitness benefits for the poultry. Furthermore, since the rotation of the rotating platform is driven by the gravity of the poultry, no power source is required, making the structure of this invention's poultry gravity treadmill simple and low-cost.
[0009] Preferably, the mounting bracket includes upper and lower supports, intersecting supports arranged intersecting with the upper and lower supports, and a rotation adjustment device assembled between the upper and lower supports and the intersecting supports. The rotating platform is rotatably mounted on the upper and lower supports from above. The relative position between the upper and lower supports and the intersecting supports is adjusted by the rotation adjustment device, thereby tilting the rotating platform relative to the horizontal plane.
[0010] Preferably, the rotation adjustment device includes a tensioning operation component and a first and second assembly structure arranged and fixed together. The first assembly structure is connected to the upper and lower supports, and the second assembly structure is connected to the intersecting supports. The tensioning operation component can selectively lock or loosen the second assembly structure and the intersecting supports.
[0011] Preferably, the upper and lower supports are perpendicular to the rotating platform and the intersecting support, respectively.
[0012] Preferably, the first assembly structure is an outer tube structure that is fitted onto the upper and lower supports, and the second assembly structure is an outer tube structure that is fitted onto the intersecting supports, with the tightening / loosening operating member rotatably inserted into the second assembly structure.
[0013] Preferably, the second assembly structure has a threaded hole for threaded connection with the tightening / loosening operation member, which extends into the second assembly structure from the threaded hole and can selectively abut or loosen against the intersecting bracket.
[0014] Preferably, the intersecting bracket is a horizontal straight rod perpendicular to the upper and lower brackets, and the end of the horizontal straight rod is connected to a flange seat; or, the intersecting bracket includes an intersecting segment arranged to intersect with the upper and lower brackets, an alignment segment located below the intersecting segment and aligned vertically with the upper and lower brackets, and a curved segment connecting the intersecting segment and the alignment segment, and the end of the alignment segment is connected to a flange seat or a grounding pin.
[0015] Preferably, the poultry gravity treadmill of this invention further includes a connecting bracket for connecting the container to the mounting frame, wherein the container is suspended above the rotating platform by means of the connecting bracket.
[0016] Preferably, the poultry gravity treadmill of this utility model further includes an angle tension adjustment component and an angle adjustment sleeve for adjusting the position of the container along the rotation direction of the rotating platform. The angle adjustment sleeve is sleeved on the upper and lower supports and can also rotate around the upper and lower supports. The connecting bracket is connected to the angle adjustment sleeve. The angle tension adjustment component is inserted through the angle adjustment sleeve and can selectively lock or loosen the upper and lower supports and the angle adjustment sleeve.
[0017] Preferably, the angle adjustment sleeve includes a first sleeve that is fitted over the upper and lower supports, a second sleeve that is perpendicular to the first sleeve, and a fastener that passes through the second sleeve. The end of the connecting bracket is fitted inside the second sleeve, the fastener is used to fasten the connecting bracket, and the angle adjustment member passes through the first sleeve.
[0018] Preferably, the connecting bracket is in an "L" shape, with one side below the rotating platform and spaced apart from it, and the other side side of the rotating platform and spaced apart from it. Alternatively, the connecting bracket is located above the rotating platform and is in a "door" shape. Attached Figure Description
[0019] Figure 1 This is a perspective view of the gravity treadmill for poultry according to the first embodiment of this utility model.
[0020] Figure 2 yes Figure 1 The diagram shown is a side view of a gravity treadmill for poultry.
[0021] Figure 3 yes Figure 1 The diagram shown is an exploded 3D view of a gravity treadmill for poultry.
[0022] Figure 4 yes Figure 3 A further exploded 3D diagram.
[0023] Figure 5 This is a perspective view of a gravity treadmill for poultry according to the second embodiment of this utility model.
[0024] Figure 6 yes Figure 5 The diagram shown is a side view of a gravity treadmill for poultry.
[0025] Figure 7 yes Figure 5 The diagram shown is an exploded 3D view of a gravity treadmill for poultry.
[0026] Figure 8 yes Figure 7 A further exploded 3D diagram.
[0027] Figure 9 This is a perspective view of a gravity treadmill for poultry according to the third embodiment of this utility model.
[0028] Figure 10 yes Figure 9 The diagram shown is a side view of a gravity treadmill for poultry.
[0029] Figure 11 yes Figure 9The diagram shown is an exploded 3D view of a gravity treadmill for poultry.
[0030] Figure 12 yes Figure 11 A further exploded 3D diagram.
[0031] Figure 13 This is a perspective view of the poultry gravity treadmill according to the fourth embodiment of this utility model.
[0032] Figure 14 This is a perspective view of a gravity treadmill for poultry according to the fifth embodiment of this utility model.
[0033] Figure 15 This is a perspective view of a gravity treadmill for poultry according to the sixth embodiment of this utility model. Detailed Implementation
[0034] To explain the technical content and structural features of this utility model in detail, the following description is provided in conjunction with the embodiments and accompanying drawings.
[0035] Please see Figure 1 The poultry gravity treadmill 100a of the first embodiment is used for poultry fitness exercises to promote poultry growth and ensure poultry health.
[0036] Combined Figures 2 to 4 The poultry gravity treadmill 100a of the first embodiment includes a rotating platform 10 driven by the gravity of poultry, a container 20 for holding poultry feed, and a mounting bracket 30 for mounting the rotating platform 10 to the outside; optionally, in Figures 1 to 4 As an example, the mounting bracket 30 can be fixed to a support arranged vertically, such as, but not limited to, a wall; obviously, depending on actual needs, the fixing method of the mounting bracket 30 to the outside can also be... Figure 5 and Figure 9 As shown, therefore not in the manner indicated Figures 1 to 4 The above is the limit.
[0037] The rotating platform 10 is rotatably mounted on the mounting frame 30, which provides support for the rotating platform 10. During use, the rotating platform 10 is arranged at an angle relative to the horizontal plane P. The container 20 is placed next to the upwardly inclined side 11 of the rotating platform 10, as shown in the diagram. Figure 2 As shown. Specifically, at Figures 1 to 4 As an example, the poultry gravity treadmill 100a of the first embodiment also includes a connecting bracket 60 for connecting the container 20 to the mounting frame 30. The container 20 is suspended above the rotating platform 10 by means of the connecting bracket 60, as shown in the figure. Figure 2As shown; this design ensures that both the container 20 and the connecting bracket 60 are supported by the mounting frame 30. Therefore, in the first embodiment of the poultry gravity treadmill 100a, only the mounting frame 30 needs to be installed externally, which has the advantage of simpler installation compared to installing the container 20 and the mounting frame 30 separately. It should be noted that, although Figures 1 to 4 The diagram shows the connecting bracket 60 mounted on the mounting bracket 30. Clearly, depending on actual needs, the connecting bracket 60 can also be mounted externally (e.g., on a wall or ground). Therefore, it is not considered... Figures 1 to 4 The above is a limited description. More specifically, as follows:
[0038] like Figure 4 As shown, as an example, the mounting bracket 30 includes upper and lower supports 31, intersecting supports 32 arranged intersecting with the upper and lower supports 31, and a rotation adjustment device 33 assembled between the upper and lower supports 31 and the intersecting supports 32. The rotating platform 10 is rotatably mounted on the upper and lower supports 31 from above, with the upper and lower supports 31 providing support for the rotation of the rotating platform 10 and satisfying the requirement that the rotating platform 10 can rotate relative to the upper and lower supports 31; alternatively, it can be combined with... Figure 3 and Figure 4 As an example, the rotary table 10 can be mounted on the upper and lower supports 31 by means of ball bearings 12, so as to further improve the flexibility and smoothness of the rotation of the rotary table 10 relative to the upper and lower supports 31; obviously, depending on actual needs, the rotary table 10 can also be mounted on the upper and lower supports 31 by other rotation methods, so it is not necessary to consider other methods. Figure 3 and Figure 4 The above is a limited description; furthermore, the relative position between the upper and lower supports 31 and the intersecting supports 32 is adjusted by the rotation adjustment device 33, thereby tilting the rotating platform 10 relative to the horizontal plane P. This ensures, on the one hand, that the rotating platform 10 is tilted relative to the horizontal plane P after the poultry gravity treadmill 100a of the first embodiment is installed outdoors, and on the other hand, the tilt of the rotating platform 10 relative to the horizontal plane P can be flexibly adjusted according to actual needs. Therefore, the poultry gravity treadmill 100a of the first embodiment has better versatility. Specifically, in Figures 2 to 4As an example, the rotation adjustment device 33 includes a tightening / loosening operating member 331 and a first and second assembly structures 332 and 333 that are intersecting and fixed together. The first assembly structure 332 is fitted onto the upper and lower supports 31, so that the first assembly structure 332 and the upper and lower supports 31 are assembled together. The second assembly structure 333 is fitted onto the intersecting support 32, so that the second assembly structure 333 and the intersecting support 32 are assembled together. The tightening / loosening operating member 331 can selectively lock or loosen the second assembly structure 333 and the intersecting support 32. Therefore, when the tightening / loosening operating member 331 loosens the lock on the second assembly structure 333 and the intersecting support 32, the operator is allowed to manually rotate the rotary table 10, the upper and lower supports 31, and the rotation adjustment device 33 together around the intersecting support 32, thereby achieving the purpose of flexibly adjusting the tilt of the rotary table 10 relative to the horizontal plane P, thus simplifying the structure of the rotation adjustment device 33 and the adjustment operation process. More specifically, in Figure 4 In this example, the upper and lower supports 31 are perpendicular to the rotary table 10 and the intersecting support 32, respectively, to facilitate the assembly operation of the rotary table 10 at the upper and lower supports 31, as well as the assembly operation between the upper and lower supports 31 and the intersecting support 32. Furthermore, the first assembly structure 332 is an outer sleeve structure fitted onto the upper and lower supports 31, and the second assembly structure 333 is an outer sleeve structure fitted onto the intersecting support 32. Since the first assembly structure 332 and the second assembly structure 333 adopt an outer sleeve assembly method, the convenience of the assembly operation is effectively improved. In addition, the tightening / loosening operating member 331 is rotatably inserted into the second assembly structure 333 to effectively improve the convenience of the tightening / loosening operation. Optionally, it can be... Figure 4 As an example, the second assembly structure 333 has a threaded hole 3331 for threaded connection with the tightening / loosening operating member 331. The tightening / loosening operating member 331 extends into the second assembly structure 333 through the threaded hole 3331 and can selectively abut or loosen against the intersecting bracket 32 to further improve the convenience of tightening / loosening operation. In this case, the tightening / loosening operating member 331 can be a screw with a knob. It should be noted that... Figure 4 In the example shown, the first assembly structure 332 and the second assembly structure 333 together form a "T" shape to facilitate the manufacture of both structures. Obviously, depending on actual needs, the first assembly structure 332 and the second assembly structure 333 can also form other shapes; therefore, this is not considered a separate design. Figure 4 The above is the limit.
[0039] like Figure 1 , Figure 3 and Figure 4As shown, as an example, the intersecting bracket 32 is a horizontal straight bar perpendicular to the upper and lower brackets 31. The end of the horizontal straight bar is connected to a flange seat 40, which facilitates the assembly operation of the mounting bracket 30 with the outside (e.g., but not limited to a wall) and more effectively improves the stability of the assembly connection between the mounting bracket 30 and the outside. This is because the flange seat 40 has multiple spaced-apart connection positions for assembly connection with the outside in its circumferential direction.
[0040] like Figures 2 to 4 As shown, as an example, the poultry gravity treadmill 100a of the first embodiment also includes an angle tension adjustment member 70 and an angle adjustment sleeve 80 for adjusting the position of the container 20 along the rotation direction of the rotating platform 10 (as shown by arrow A in the figure or the opposite direction). The angle adjustment sleeve 80 is sleeved on the upper and lower supports 31, and the angle adjustment sleeve 80 can also rotate around the upper and lower supports 31; the connecting support 60 is connected to the angle adjustment sleeve 80; and the angle tension adjustment member 70 is inserted through the angle adjustment sleeve 80 and can selectively lock or loosen the upper and lower supports 31 and the angle adjustment sleeve 80; therefore, when the angle tension adjustment member 70 is loosened to lock the upper and lower supports 31 and the angle adjustment sleeve 80, the operator can manually adjust the position of the container 20 relative to the rotating platform 10, so that the container 20 can be adjusted to a position corresponding to the side 11 of the rotating platform 10 that is tilted upwards, thus providing better flexibility. Specifically, in Figures 2 to 4 As an example, the angle adjustment sleeve 80 includes a first sleeve 81 that is fitted onto the upper and lower supports 31, a second sleeve 82 that intersects the first sleeve 81 perpendicularly, and a fastener 83 that passes through the second sleeve 82; the end of the connecting bracket 60 is fitted into the second sleeve 82, and the fastener 83 is used to fasten the connecting bracket 60 so that the connecting bracket 60 and the second sleeve 82 are fixed together; the angle adjustment member 70 passes through the first sleeve 81; this simplifies the structure of the angle adjustment sleeve 80; furthermore, the fastener 83 facilitates the assembly and disassembly of the connecting bracket 60 and the angle adjustment sleeve 80. More specifically, in Figure 3 and Figure 4 In the example shown, the first sleeve 81 and the second sleeve 82 together form a "T" shape to facilitate their manufacture; obviously, depending on actual needs, the first sleeve 81 and the second sleeve 82 can also be in other shapes, so this is not taken as an example. Figure 3 and Figure 4 As shown, fastener 83 may be a screw; in addition, angle adjustment member 70 may be a screw with a knob; and connecting bracket 60 is in an "L" shape with one side spaced apart from the rotating table 10 below and the other side spaced apart from the rotating table 10 to make the connecting bracket 60 and the rotating table 60 more compact.
[0041] Please see Figures 5 to 8 The structure of the poultry gravity treadmill 100b in the second embodiment is basically the same as that of the poultry gravity treadmill 100a in the first embodiment, the difference being the intersecting support 32 (32') of the two, as detailed below:
[0042] In the poultry gravity treadmill 100b of the second embodiment, the intersecting support 32' includes an intersecting section 32a that intersects with the upper and lower supports 31, an alignment section 32b located below the intersecting section 32a and aligned vertically with the upper and lower supports 31, and a curved section 32c connecting the intersecting section 32a and the alignment section 32b. The end of the alignment section 32b is connected to a flange seat 40. This design ensures that the alignment section 32b of the poultry gravity treadmill 100b of the second embodiment is vertically and fixedly connected to the ground. Furthermore, since the alignment section 32b is aligned vertically with the upper and lower supports 31, it effectively prevents the generation of torque between the load-bearing force of the ground acting on the alignment section 32b and the force of the rotating platform 10 acting on the upper and lower supports 31, and prevents the poultry gravity treadmill 100a of the second embodiment from easily tipping over due to the presence of such torque.
[0043] In the poultry gravity treadmill 100a of the first embodiment, its intersecting support 32 is a horizontal straight rod perpendicular to the upper and lower supports 31, so that the intersecting support 32 is horizontally installed on the wall.
[0044] Apart from the differences mentioned above, the two are the same, so they will not be repeated here.
[0045] Please see Figures 9 to 12 The structure of the poultry gravity treadmill 100c in the third embodiment is basically the same as that of the poultry gravity treadmill 100b in the second embodiment, with the following differences:
[0046] In the third embodiment of the poultry gravity treadmill 100c, the end of its alignment section 32b is connected to a ground-inserting pin 50, so that the poultry gravity treadmill 100c of the third embodiment can be directly inserted into the grass and fixed with the help of the ground-inserting pin 50, thus the poultry gravity treadmill 100c of the third embodiment has better flexibility in fixing to the outside world.
[0047] In the second embodiment of the poultry gravity treadmill 100b, the end of its alignment section 32b is connected to a flange seat 40 to fix it to the ground by means of the flange seat 40; since the flange seat 40 has a plurality of spaced-apart connection positions for assembly connection with the outside in its circumferential direction, the stability of the mounting frame 30 for assembly connection with the outside is improved more effectively.
[0048] Apart from the differences mentioned above, the two are the same, so they will not be repeated here.
[0049] Please see Figure 13The structure of the poultry gravity treadmill 100d in the fourth embodiment is basically the same as that of the poultry gravity treadmill 100a in the first embodiment, with the following differences:
[0050] In the poultry gravity treadmill 100d of the fourth embodiment, the connecting bracket 60' is located above the rotating platform 10 and is in the shape of a "door". Correspondingly, the angle adjustment sleeve 80' is a straight tube, and the angle adjustment sleeve 80' is fixedly connected to the upper and lower brackets 31 by means of a fastener 90 (e.g., a screw).
[0051] In the poultry gravity treadmill 100a of the first embodiment, the connecting bracket 60 is in the shape of an "L" with one side spaced apart from the rotating platform 10 below it and the other side spaced apart from the rotating platform 10 on the side of it. Correspondingly, the angle adjustment sleeve 80 includes a first sleeve 81 that is sleeved on the upper and lower brackets 31, a second sleeve 82 that is perpendicular to the first sleeve 81, and a fastener 83 that passes through the second sleeve 82.
[0052] Apart from the differences mentioned above, the two are the same, so they will not be repeated here.
[0053] Please see Figure 14 The structure of the poultry gravity treadmill 100e in the fifth embodiment is basically the same as that of the poultry gravity treadmill 100b in the second embodiment, with the following differences:
[0054] In the poultry gravity treadmill 100e of the fifth embodiment, the connecting bracket 60' is located above the rotating platform 10 and is in the shape of a "door". Correspondingly, the angle adjustment sleeve 80' is a straight tube, and the angle adjustment sleeve 80' is fixedly connected to the upper and lower brackets 31 by means of a fastener 90 (e.g., a screw).
[0055] In the second embodiment of the poultry gravity treadmill 100b, the connecting bracket 60 is in the shape of an "L" with one side spaced apart from the rotating platform 10 below it and the other side spaced apart from the rotating platform 10 on the side of it. Correspondingly, the angle adjustment sleeve 80 includes a first sleeve 81 that is sleeved on the upper and lower brackets 31, a second sleeve 82 that is perpendicular to the first sleeve 81, and a fastener 83 that passes through the second sleeve 82.
[0056] Apart from the differences mentioned above, the two are the same, so they will not be repeated here.
[0057] Please see Figure 15 The structure of the poultry gravity treadmill 100f in the sixth embodiment is basically the same as that of the poultry gravity treadmill 100c in the third embodiment, with the following differences:
[0058] In the poultry gravity treadmill 100f of the sixth embodiment, the connecting bracket 60' is located above the rotating platform 10 and is in the shape of a "door". Correspondingly, the angle adjustment sleeve 80' is a straight tube, and the angle adjustment sleeve 80' is fixedly connected to the upper and lower brackets 31 by means of a fastener 90 (e.g., a screw).
[0059] In the poultry gravity treadmill 100c of the third embodiment, the connecting bracket 60 is in the shape of an "L" with one side spaced apart from the rotating platform 10 below it and the other side spaced apart from the rotating platform 10 on the side of it. Correspondingly, the angle adjustment sleeve 80 includes a first sleeve 81 that is sleeved on the upper and lower brackets 31, a second sleeve 82 that is perpendicular to the first sleeve 81, and a fastener 83 that passes through the second sleeve 82.
[0060] Apart from the differences mentioned above, the two are the same, so they will not be repeated here.
[0061] Compared with the prior art, by using the design of "rotary platform 10 rotatably mounted on mounting frame 30, and the rotating platform 10 being inclined relative to the horizontal plane P during use" and "container 20 being arranged next to the upwardly inclined side 11 of rotating platform 10", when poultry jumps onto rotating platform 10 and wants to eat the food in container 20 above rotating platform 10, the poultry will walk towards the upwardly inclined side 11 of rotating platform 10. When walking upward, due to gravity, rotating platform 10 will rotate downward. The faster the poultry walks upward, the faster rotating platform 10 will fall and rotate. Then the poultry will chase at a faster speed, making the fitness effect of poultry better. Since the rotation of rotating platform 10 is driven by the gravity of poultry, no power source is required, making the structure of poultry gravity treadmill 100a (100b to 100f) of this utility model simple and low cost. It should be noted that "in use" here means that the mounting bracket 30 of the poultry gravity treadmill 100 (100b to 100f) of this utility model is fixed by the outside.
[0062] It should be noted that although the attached drawing shows container 20 as a basin-shaped structure, obviously, depending on actual needs, container 20 can also be other containers that can hold food and facilitate poultry to eat from the food in container 20. Therefore, the shape of container 20 is not limited to that shown in the attached drawing. Furthermore, since the rotating platform 10 is tilted relative to the horizontal plane P during use, the rotating platform 10 has an upwardly tilted side 11 and a downwardly tilted opposite side 13, as shown in the attached drawing. Figure 2 , Figure 6 and Figure 10 As shown.
[0063] The above-disclosed examples are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Therefore, any equivalent variations made in accordance with the claims of the present utility model shall fall within the scope of the present utility model.
Claims
1. A gravity treadmill for poultry, characterized in that, The device includes a rotating platform driven by the gravity of poultry, a container for holding poultry feed, and a mounting frame for mounting the rotating platform to the outside. The rotating platform is rotatably mounted on the mounting frame. When in use, the rotating platform is arranged at an angle relative to the horizontal plane, and the container is arranged next to the upwardly inclined side of the rotating platform.
2. The gravity treadmill for poultry according to claim 1, characterized in that, The mounting frame includes upper and lower supports, intersecting supports arranged intersecting with the upper and lower supports, and a rotation adjustment device assembled between the upper and lower supports and the intersecting supports. The rotating platform is rotatably mounted on the upper and lower supports from above. The relative position between the upper and lower supports and the intersecting supports is adjusted by the rotation adjustment device, thereby tilting the rotating platform relative to the horizontal plane.
3. The gravity treadmill for poultry according to claim 2, characterized in that, The rotation adjustment device includes a tensioning and loosening operation component and a first and second set of structures arranged and fixed together. The first set of structures is connected to the upper and lower supports, and the second set of structures is connected to the intersecting supports. The tensioning and loosening operation component can selectively lock or loosen the second set of structures and the intersecting supports.
4. The gravity treadmill for poultry according to claim 3, characterized in that, The upper and lower supports are perpendicular to the rotating platform and the intersecting support, respectively.
5. The gravity treadmill for poultry according to claim 3, characterized in that, The first set structure is an outer tube structure that is fitted onto the upper and lower supports, and the second set structure is an outer tube structure that is fitted onto the intersecting supports. The tightening and loosening operation member is rotatably inserted into the second set structure.
6. The gravity treadmill for poultry according to claim 5, characterized in that, The second assembly structure has a threaded hole for threaded connection with the tightening / loosening operation member. The tightening / loosening operation member extends into the second assembly structure from the threaded hole and can selectively abut or loosen its abutment against the intersecting bracket.
7. The gravity treadmill for poultry according to claim 2, characterized in that, The intersecting bracket is a horizontal straight rod perpendicular to the upper and lower brackets, and the end of the horizontal straight rod is connected to a flange seat; or, the intersecting bracket includes an intersecting segment arranged to intersect with the upper and lower brackets, an alignment segment located below the intersecting segment and aligned vertically with the upper and lower brackets, and a curved segment connecting the intersecting segment and the alignment segment, and the end of the alignment segment is connected to a flange seat or a grounding pin.
8. The gravity treadmill for poultry according to claim 2, characterized in that, It also includes a connecting bracket for connecting the container to the mounting frame, the container being suspended above the rotating platform by means of the connecting bracket.
9. The gravity treadmill for poultry according to claim 8, characterized in that, It also includes an angle tension adjustment component and an angle adjustment sleeve for adjusting the position of the container along the rotation direction of the rotary table. The angle adjustment sleeve is sleeved on the upper and lower supports and can also rotate around the upper and lower supports. The connecting bracket is connected to the angle adjustment sleeve. The angle tension adjustment component is inserted through the angle adjustment sleeve and can selectively lock or loosen the upper and lower supports and the angle adjustment sleeve.
10. The gravity treadmill for poultry according to claim 9, characterized in that, The angle adjustment sleeve includes a first sleeve that is fitted over the upper and lower supports, a second sleeve that is perpendicular to the first sleeve, and a fastener that passes through the second sleeve. The end of the connecting bracket is fitted into the second sleeve. The fastener is used to fasten the connecting bracket. The angle adjustment component passes through the first sleeve. The connecting bracket is in an "L" shape, with one side below the rotating platform and spaced apart from the rotating platform and the other side side of the rotating platform and spaced apart from the rotating platform. Alternatively, the connecting bracket is located above the rotating platform and is in a "door" shape.