Bird trainer

By using a retractable rope to provide resistance in the fly trainer instead of a counterweight, the problem of large footprint is solved, making it suitable for home use. It has a reasonable structure and is easy to use.

CN223628023UActive Publication Date: 2025-12-05李星
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Patent Information

Application Number
CN202423102477.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-16
Publication Date
2025-12-05
Estimated Expiration
2034-12-16

AI Technical Summary

Technical Problem

Existing bird training devices take up a large area and are not suitable for home use.

Method used

Pulling resistance is provided by using a retractable rope, and a force generating component replaces the counterweight. Combined with a guiding component and a fixing component, the footprint is reduced.

Benefits of technology

The bird trainer has a small footprint, is suitable for home use, has a reasonable structure, and is easy to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of training instruments, and discloses a bird training device which is characterized in that the bird training device comprises a training device body, the training device body comprises a force generation assembly, and the force generation assembly provides pulling resistance in a mode of winding a pull rope; the pull rod is connected with the force generation assembly through the pull rope, and when the pull rod is pulled, the force generation assembly rotates synchronously; one or more guide positions are arranged between the pull rod and the force generation assembly at intervals in the first direction, the guide positions are used for arranging the guide assembly, and the pull rope penetrates through the force generation assembly in the first direction so as to adjust the trend of the pull rope. The flying bird training device is small in occupied area.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of training equipment, in particular to a flying bird training device. BACKGROUND

[0002] The flying bird training device is a special fitness equipment for gyms, also known as "pull training device", which realizes the exercise of upper limbs by pulling the pull rod.

[0003] The existing flying bird training device mainly provides pulling resistance through counterweight, but the use of counterweight increases the floor space of the flying bird training device, which makes it unsuitable for home use. Therefore, there is a lack of a flying bird training device suitable for home use in the prior art. CONTENT OF THE INVENTION

[0004] The present application mainly solves the technical problem of the existing flying bird training device that occupies a large floor space and is not suitable for home use. A flying bird training device with small floor space is provided.

[0005] In order to solve the above technical problems, the present application provides a flying bird training device, characterized in that the flying bird training device comprises,

[0006] A training device body, the training device body comprises a force generating assembly, the force generating assembly provides pulling resistance by winding the pull rope;

[0007] A pull rod and a pull rope, the pull rod is connected with the force generating assembly through the pull rope, and the force generating assembly rotates synchronously when the pull rod is pulled;

[0008] A guide assembly, one or more guide positions are arranged between the pull rod and the force generating assembly along a first direction, the guide positions are used to arrange the guide assembly, and the pull rope passes through the force generating assembly along the first direction to adjust the direction of the pull rope.

[0009] In an implementable manner, the training device body is fixed on a wall, and the guide positions are arranged on the training device body.

[0010] In an implementable manner, one or more guide assemblies arranged close to the pull rod are first guide assemblies, a wire clamp is arranged on the pull rope, the wire clamp protrudes from the surface of the pull rope, and the wire clamp interacts with the first guide assembly to form resistance to the movement of the wire clamp; wherein,

[0011] When the pull rod bears external force, the wire clamp breaks through the first guide assembly downward and is located at the bottom of the first guide assembly along the first direction, so as to realize the free pulling of the pull rod.

[0012] When the pull rod is not subjected to external force, the line card breaks through the first guide assembly upward by the winding force of the force generating assembly and is located at the top of the first guide assembly along the first direction, so as to realize the suspension of the pull rod.

[0013] In an embodiment, the bird training device further comprises,

[0014] a torque sensing assembly for monitoring the current of the force generating assembly, when the line card breaks through the first guide assembly upward by the winding of the pull rope by the force generating assembly, the current of the force generating assembly fluctuates, and when the torque sensing assembly detects the current fluctuation, the force generating assembly stops winding the pull rope.

[0015] In an embodiment, the guide assembly comprises,

[0016] a guide frame, a guide cavity is provided through the guide frame along the first direction;

[0017] a first guide, provided on one side of the guide cavity along the first direction, a first guide slot is formed in the first guide along a third direction;

[0018] a second guide, provided on the other side of the guide cavity along the first direction, a second guide slot is formed in the second guide along a second direction; wherein,

[0019] the pull rope passes through the first guide slot and the second guide slot in sequence to form the limit of the pull rope.

[0020] In an embodiment, the first guide and the second guide are both formed by guide wheels spaced apart, and the first guide slot and the second guide slot are both located between the two guide wheels.

[0021] In an embodiment, the guide frame comprises,

[0022] a first avoiding slot, provided along the third direction, the first avoiding slot is provided on the side of the guide frame close to the first guide, and the projection of the first guide slot on the side of the guide frame close to the first guide at least partially overlaps the first avoiding slot;

[0023] a second avoiding slot, provided along the second direction, the second avoiding slot is provided on the side of the guide frame close to the second guide, and the projection of the second guide slot on the side of the guide frame close to the second guide at least partially overlaps the second avoiding slot.

[0024] In an embodiment, the flying bird training device further comprises,

[0025] a fixing assembly, the guiding assembly is detachably connected with the guiding position through the fixing assembly; wherein the fixing assembly comprises,

[0026] a first fixing member, the first fixing member is arranged on the guiding frame;

[0027] a second fixing member, the second fixing member is arranged on the guiding position;

[0028] a connecting member, the first fixing member is detachably connected with the second fixing member through the connecting member.

[0029] In an embodiment, the first fixing member comprises,

[0030] a first connecting plate, the first connecting plate is arranged on one side of the guiding frame along the third direction, two first connecting plates are arranged along the first direction to form a first limiting cavity arranged along the second direction;

[0031] a second connecting plate, the second connecting plate is arranged along the first direction, and the first connecting plate is connected with the guiding frame and the second connecting plate respectively;

[0032] the second fixing member comprises,

[0033] a third connecting plate, a second limiting cavity is arranged through the third connecting plate along the first direction, an opening is arranged on one side of the third connecting plate facing the guiding frame, the opening is in communication with the second limiting cavity, and a projection of the opening on the guiding frame along the third direction is located in the second limiting cavity; wherein,

[0034] the second connecting plate is located in the second limiting cavity to form a limiting of the guiding assembly along the second direction and the third direction;

[0035] the connecting member comprises,

[0036] a limiting plate, a connecting hole is arranged on one side of the third connecting plate along the second direction, the connecting hole is in communication with the second limiting cavity, the limiting plate enters the second limiting cavity through the connecting hole, and the limiting plate is located in the first limiting cavity at the same time to form a limiting of the guiding assembly along the first direction.

[0037] In an embodiment, the connecting member further comprises,

[0038] a magnetic member, the magnetic member is located in the first limiting cavity, and a magnetic attraction relationship is formed between the limiting plate and the magnetic member when the limiting plate is close to the magnetic member.

[0039] In an embodiment, the connecting member further comprises,

[0040] a limiting rod arranged along the third direction, the limiting rod being located in the second limiting cavity, one end of the limiting rod being connected with the limiting plate, the limiting rod always moving in the second limiting cavity under the movement of the limiting plate along the second direction to ensure that the limiting plate and the third connecting plate member do not separate.

[0041] In an embodiment, the force generating assembly is connected with the pull rope through a sleeve assembly; wherein the sleeve assembly comprises,

[0042] an outer sleeve arranged on one side of the force generating assembly, the outer sleeve being connected with the rotor of the force generating assembly;

[0043] a rotating member, the outer sleeve being rotatably connected with the stator of the force generating assembly through the rotating member.

[0044] Compared with the prior art, the flying bird trainer of the present application provides a pulling resistance by winding the pull rope, and when the pull rod is pulled, the force generating assembly synchronously forms a rotation. The use of counterweight is avoided, thereby reducing the floor area of the flying bird trainer. The flying bird trainer of the present application is more suitable for home use due to the small floor area.

[0045] Therefore, the present application has the characteristics of reasonable structure and convenient use. BRIEF DESCRIPTION OF DRAWINGS

[0046] Figure 1 is a structural schematic diagram of a flying bird trainer of the present application; Figure 1

[0047] Figure 2 is a structural schematic diagram of a line card of the present application; Figure 2

[0048] Figure 3 is a structural schematic diagram of a guiding assembly of the present application; Figure 3 Figure 4 is a sectional view of the guiding assembly of the present application;

[0049] Figure 4 Figure 5 is a structural schematic diagram of a force generating assembly and a sleeve assembly of the present application;

[0050] Figure 6 is a sectional view of the force generating assembly and the sleeve assembly of the present application. Figure 5

[0051] Explanation of reference numerals in the drawings:

[0052] X, first direction; Y, second direction; Z, third direction;

[0053] 100, trainer body; 110, force generating assembly; 111, rotor; 112, stator; 113, connecting shaft;​​​​

[0054] 200, pull rod;

[0055] 300, pull rope; 310, winding section; 320, straight pulling section;

[0056] 400, line clamp; 410, protrusion; 420, inner sleeve; 430, outer sleeve;

[0057] 500, guide assembly; 510, guide position; 520, vertical rod; 530, guide frame; 531, guide cavity; 540, first guide; 541, first guide groove; 542, first avoiding groove; 550, second guide; 551, second guide groove; 552, second avoiding groove;

[0058] 600, fixing assembly; 610, first fixing; 611, first connecting plate; 612, first limiting cavity; 613, second connecting plate; 620, second fixing; 621, third connecting plate; 622, second limiting cavity; 623, opening; 624, connecting hole; 625, limiting groove; 626, limiting column; 630, connecting piece; 631, limiting plate; 632, magnetic attraction piece; 633, limiting rod;

[0059] 700, sleeve assembly; 710, outer sleeve; 720, rotating piece; 730, connecting column; 740, intermediate connecting piece. DETAILED DESCRIPTION

[0060] In order to make the purpose, features and advantages of the present application more obvious and easy to understand, the technical solutions in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.

[0061] The prior art flying bird trainer has the technical problem of large floor area and is not suitable for home use.

[0062] Therefore, the present application provides a flying bird trainer, characterized in that the flying bird trainer comprises,

[0063] The trainer body comprises a force generating assembly, which provides a pulling resistance by winding a pull rope;

[0064] The pull rod is connected with the force generating assembly through the pull rope, and the force generating assembly rotates synchronously when the pull rod is pulled;

[0065] A guide assembly, one or more guide positions are arranged between the pull rod and the force generating assembly along a first direction, the guide positions are used to arrange the guide assembly, the pull rope passes through the force generating assembly along the first direction to adjust the direction of the pull rope.

[0066] Embodiment 1:

[0067] Please refer to the accompanying Figure 1 to the accompanying Figure 5 The flying bird trainer of the present application shows a specific embodiment. The flying bird trainer of the present application replaces the counterweight with the force generating assembly 110 to reduce the space occupied by the flying bird trainer, so as to realize the household of the flying bird trainer.

[0068] The accompanying Figure 1 is a structural schematic diagram of the flying bird trainer of the present application. Please refer to the accompanying Figure 1 The first direction X of the present application refers to the height direction of the flying bird trainer, that is, the direction from top to bottom of the flying bird trainer or the direction from bottom to top of the flying bird trainer. In the present application, the trainer body 100 is arranged on the upper side relative to the pull rod 200, and the pull rod 200 is arranged on the lower side relative to the trainer body 100.

[0069] Please refer to the accompanying Figure 1 The flying bird trainer of the present application includes a trainer body 100, and the trainer body 100 includes a force generating assembly 110, which is used to provide resistance when the flying bird trainer is pulled. Further, the force generating assembly 110 provides pulling resistance by winding the pull rope 300. The force generating assembly 110 replaces the counterweight and reduces the space occupied by the flying bird trainer. In the present application, the trainer body 100 is fixed on the ground or wall for use. In an embodiment, the trainer body 100 is fixed on the wall for use, further reducing the use of space by the flying bird trainer.

[0070] Please refer to the accompanying Figure 1 The flying bird trainer of the present application further includes a pull rod 200 and a pull rope 300. The pull rod 200 is connected to the force generating assembly 110 through the pull rope 300. When the pull rod 200 is pulled, the force generating assembly 110 rotates synchronously to realize exercise. Further, the pulling direction of the pull rod 200 is to pull away from the side of the force generating assembly 110.

[0071] In an embodiment, the pull rope 300 includes a winding section 310 and a straight pulling section 320. The winding section 310 is wound outside the force generating assembly 110 and rotates synchronously with the force generating assembly 110. The straight pulling section 320 is arranged straight along the first direction X. The first end of the straight pulling section 320 is connected to the pull rod 200, and the second end of the straight pulling section 320 is connected to the winding section 310. The straight pulling section 320 moves along the first direction X under the pulling of the pull rod 200.

[0072] In one embodiment, the pull rod 200 comprises a connecting section and a handle section, both ends of the connecting section are provided with the handle section, and the connecting section is connected with the pull rope 300. The exercising crowd holds the handle section to pull the pull rod 200, so as to realize the rotation of the force generating assembly 110.

[0073] Please refer to the accompanying drawings Figure 1 The flying bird trainer of the present application comprises a guide assembly 500 and a guide position 510, one or more guide positions 510 are arranged between the pull rod 200 and the force generating assembly 110 along the first direction X, different guide positions 510 have different distances along the first direction X between the force generating assembly 110, the guide position 510 is used to arrange the guide assembly 500, the guide position 510 is used to arrange the guide assembly 500, and the guide assembly 500 is rollingly connected with the pull rope 300. Further, the pull rope 300 passes through the guide assembly 500 to adjust the direction of the pull rope 300. Further, the way to adjust the direction of the pull rope 300 is to limit the pull rope 300 in the second direction Y and the third direction Z, so that the pull rope 300 extends towards the first direction X.

[0074] Please refer to the accompanying drawings Figure 1 The flying bird trainer of the present application further comprises a line card 400, the line card 400 is arranged on the pull rope 300, and the line card 400 protrudes from the surface of the pull rope 300. The flying bird trainer of the present application comprises one or more first guide assemblies 500, and the guide assembly 500 arranged close to the pull rod 200 is the first guide assembly 500. The line card 400 interacts with the first guide assembly 500 to form a resistance that can prevent the line card 400 from moving. The flying bird trainer comprises a use state and an idle state. In the use state, the exercising crowd pulls the pull rod 200 for exercise, that is, the pull rod 200 bears external force from the exercising crowd. In the idle state, no one touches the pull rod 200, and at this time the pull rod 200 does not bear external force.

[0075] When the pull rod 200 bears external force, the line card 400 will break through the first guide assembly 500 downward by overcoming the resistance from the first guide assembly 500, and be located at the bottom of the first guide assembly 500 along the first direction X, at this time the line card 400 is no longer constrained by the first guide assembly 500, and the pull rod 200 can be freely pulled.

[0076] When the pull rod 200 does not bear external force, due to the winding force from the force generating assembly 110, the force generating assembly 110 retracts the straight section 320 to form the winding section 310, and the line card 400 breaks through the first guide assembly 500 upward by overcoming the resistance from the first guide assembly 500, and is located at the top of the first guide assembly 500 along the first direction X, at this time the line card 400 is constrained by the first guide assembly 500, and the pull rod 200 forms a suspension. Thus, the pull rod 200 will not fall to the ground when not exercising.

[0077] In an embodiment, to avoid the line card 400 continuing to break through the guide assembly 500 upward when the pull rod 200 is not under external force, a torque sensing assembly is provided, which is part of the trainer body 100. The torque sensing assembly is used to monitor the current of the force generating assembly 110. When the line card 400 breaks through the first guide assembly 500 upward, the force generating assembly 110 receives resistance from the line card 400, and the current of the force generating assembly 110 fluctuates. When the torque sensing assembly detects the fluctuation of the current, the force generating assembly 110 stops winding the pull rope 300, so as to ensure that the pull rope 300 does not continue to move upward after breaking through the first guide assembly 500.

[0078] In an embodiment, the guide position 510 can be provided on the wall or the trainer body 100. Further, the guide position 510 is provided on the trainer body 100.

[0079] Please refer to the accompanying drawings Figure 1 The bird trainer of the present application further comprises a fixing assembly 600, and the guide assembly 500 is detachably connected with the trainer body 100 through the fixing assembly 600, so as to realize the multifunctional use of the guide assembly 500.

[0080] The accompanying drawings Figure 2 is a structural schematic view of the line card 400 of the present application. Please refer to the accompanying drawings Figure 2 The line card 400 comprises a protrusion 410, an inner sleeve 420 and an outer sleeve 430. The protrusion 410 is provided on the outer surface of the pull rope 300, and further, the protrusion 410 is provided on the outer surface of the straight pull section 320, and the protrusion 410 protrudes from the outer surface of the straight pull section 320. The inner sleeve 420 is sleeved on the outer surface of the straight pull section 320, and the protrusion 410 is located between the straight pull section 320 and the inner sleeve 420. The inner sleeve 420 is blown by a hot air gun, so as to realize the shrinkage of the inner sleeve 420, and the protrusion 410 is fastened on the straight pull section 320. The outer sleeve 430 is sleeved on the outer surface of the inner sleeve 420, and the length of the outer sleeve 430 is longer than that of the inner sleeve 420. The outer sleeve 430 is blown by a hot air gun, so as to realize the shrinkage of the outer sleeve 430, and further, the protrusion 410 is fastened, and the inner sleeve 420 is wrapped.

[0081] In an embodiment, the protrusion 410 is made of elastic material.

[0082] In an embodiment, the outer sleeve 430 and the inner sleeve 420 are made of plastic material.

[0083] The accompanying drawings Figure 3 is a structural schematic view of the guide assembly 500 of the present application. The accompanying drawings Figure 4 is a sectional view of the guide assembly 500 of the present application. Please refer to the accompanying drawings Figure 3 and the accompanying drawings Figure 4As shown, the guiding assembly 500 of the present application comprises a guiding frame 530, and a guiding cavity 531 is arranged in the guiding frame 530 along the first direction X. In an embodiment, the guiding frame 530 is a box structure, and the guiding frame 530 is used to accommodate the remaining components in the guiding assembly 500.

[0084] Please refer to the accompanying drawings Figure 3 and the accompanying drawings Figure 4 As shown, the guiding assembly 500 of the present application further comprises a first guiding member 540 and a second guiding member 550, and the first guiding member 540 and the second guiding member 550 are used to adjust the running direction of the pull rope 300. Further, the pull rope 300 is in rolling connection with the first guiding member 540 and the second guiding member 550.

[0085] The first guiding member 540 is arranged on one side of the guiding cavity 531 along the first direction X, and the first guiding member 540 is formed with a first guiding groove 541 arranged along the third direction Z. The second guiding member 550 is arranged on the other side of the guiding cavity 531 along the first direction X, and the second guiding member 550 is formed with a second guiding groove 551 arranged along the second direction Y. The pull rope 300 passes through the first guiding groove 541 and the second guiding groove 551 in sequence to form the position limitation of the pull rope 300.

[0086] In an embodiment, the first guiding groove 541 and the second guiding groove 551 are long strip structures. The projections of the first guiding groove 541 and the second guiding groove 551 on the guiding frame 530 along the first direction X intersect, and the pull rope 300 is limited in the intersection region of the first guiding groove 541 and the second guiding groove 551 along the first direction X.

[0087] In an embodiment, the first guiding member 540 and the second guiding member 550 are both formed by two guiding wheels arranged at intervals, and the first guiding groove 541 and the second guiding groove 551 are located between the two guiding wheels. The two guiding wheels of the first guiding member 540 are arranged along the third direction Z, and the two guiding wheels of the second guiding member 550 are arranged along the second direction Y. The guiding wheels of the first guiding member 540 and the second guiding member 550 comprise a rotating member and a central shaft, the rotating member is sleeved outside the central shaft, the rotating member is in rotational connection with the central shaft, and the central shaft is connected with the guiding frame 530.

[0088] Please refer to the accompanying drawings Figure 3 and the accompanying drawings Figure 4As shown, the guiding assembly 500 of the present application further comprises a first avoiding slot 542, the first avoiding slot 542 is arranged along the third direction Z, the first avoiding slot 542 is arranged on the side of the guiding frame 530 close to the first guiding member 540, and the projection of the first guiding slot 541 on the side of the guiding frame 530 close to the first guiding member 540 at least partially coincides with the first avoiding slot 542. When the pull rope 300 is in the first guiding slot 541, the movement of the pull rope 300 in the first direction X and the second direction Y is limited, and therefore, the pull rope 300 is more likely to contact the guiding frame 530 in the third direction Z. If the pull rope 300 contacts the side of the guiding frame 530 for a long time, it is easy to cause friction between the guiding frame 530 and the pull rope 300, which further causes damage to the pull rope 300. Therefore, when the pull rope 300 is pulled in the third direction Z, the pull rope 300 directly enters the first avoiding slot 542, thereby protecting the pull rope 300.

[0089] Please refer to the accompanying drawings Figure 3 and the accompanying drawings Figure 4 As shown, the guiding assembly 500 of the present application further comprises a second avoiding slot 552, the second avoiding slot 552 is arranged along the second direction Y, the second avoiding slot 552 is arranged on the side of the guiding frame 530 close to the second guiding member 550, and the projection of the second guiding slot 551 on the side of the guiding frame 530 close to the second guiding frame 530 at least partially coincides with the second avoiding slot 552. When the pull rope 300 is in the second guiding slot 551, the movement of the pull rope 300 in the first direction X and the third direction Z is limited, and therefore, the pull rope 300 is more likely to contact the guiding frame 530 in the second direction Y. If the pull rope 300 contacts the side of the guiding frame 530 for a long time, it is easy to cause friction between the guiding frame 530 and the pull rope 300, which further causes damage to the pull rope 300. Therefore, when the pull rope 300 is pulled in the second direction Y, the pull rope 300 directly enters the second avoiding slot 552, thereby protecting the pull rope 300.

[0090] In an embodiment, the first avoiding slot 542 and the second avoiding slot 552 are U-shaped structures, and the first avoiding slot 542 and the second avoiding slot 552 are transitionally connected with the guiding frame 530.

[0091] Please refer to the accompanying drawings Figure 3 and the accompanying drawings Figure 4 As shown, the bird training device of the present application further comprises a fixing assembly 600, and the guiding assembly 500 is detachably connected with the guiding position 510 through the fixing assembly 600. In order to realize the multifunctional use of the guiding assembly 500.

[0092] The fixing assembly 600 comprises a first fixing member 610, a second fixing member 620 and a connecting member 630. The first fixing member 610 is arranged on the guiding frame 530, and the second fixing member 620 is arranged on each guiding position 510. The first fixing member 610 is detachably connected with the second fixing member 620 through the connecting member 630.

[0093] In an embodiment, the first fixing member 610 comprises a first connecting plate 611, which is arranged on one side of the guide member along the third direction Z, and further, the first connecting plate 611 is fixedly connected with the guide frame 530. Two first connecting plates 611 are arranged at intervals along the first direction X to form a first limiting cavity 612 arranged along the second direction Y. The first fixing member 610 further comprises a second connecting plate 613 arranged along the first direction X, and the first connecting plate 611 is connected with the guide frame 530 and the second connecting plate 613 respectively. Further, the two sides of the first limiting cavity 612 along the third direction Z are respectively provided with the guide frame 530 and the second connecting plate 613.

[0094] Further, the first connecting plate 611 and the second connecting plate 613 are both flat plate structures.

[0095] In an embodiment, the second fixing member 620 comprises a third connecting plate 621, the third connecting plate 621 is provided with a second limiting cavity 622 penetratingly arranged along the first direction X, and the side of the third connecting plate 621 facing the guide frame 530 is provided with an opening 623, the opening 623 is in communication with the second limiting cavity 622, and the projection of the opening 623 on the guide frame 530 along the third direction Z is located in the second limiting cavity 622. In specific implementation, the second connecting plate 613 slides into the second limiting cavity 622 along the first direction X to form the limiting of the guide assembly 500 along the second direction Y and the third direction Z.

[0096] Further, the third connecting plate 621 is a flat plate structure.

[0097] Further, the length of the first connecting plate 611 along the second direction Y is shorter than the length of the second connecting plate 613 along the second direction Y.

[0098] In an embodiment, the third connecting plate 621 is provided with a limiting groove 625 along the second direction Y, and when the limiting rod 633 enters the limiting groove 625, the second connecting plate 613 can move in the second limiting cavity 622 along the first direction X.

[0099] In an embodiment, the connecting member 630 comprises a limiting plate 631, the third connecting plate 621 is provided with a connecting hole 624 along the second direction Y, the connecting hole 624 is in communication with the second limiting cavity 622, the limiting plate 631 enters the second limiting cavity 622 through the connecting hole 624, and the limiting plate 631 is located in the first limiting cavity 612 at the same time to form the limiting of the guide assembly 500 along the first direction X. When the limiting plate 631 moves out of the first limiting cavity 612, the guide frame 530 can move along the first direction X.

[0100] In an embodiment, the second fixing member 620 further comprises a limiting post 626, the limiting post 626 is arranged in the second limiting cavity 622 along the third direction Z and connected with the third connecting plate 621, the limiting post 626 abuts against the second connecting plate 613 to form further limiting of the second connecting plate 613.

[0101] Please refer to the accompanying drawings Figure 3 and the accompanying drawings Figure 4 , the connecting member 630 of the present application further comprises a magnetic member 632, the magnetic member 632 is arranged in the first limiting cavity 612, the limiting plate 631 is made of metal material, when the limiting plate 631 approaches the magnetic member 632, the limiting of the guide assembly 500 in the first direction X is formed to avoid the limiting plate 631 moving out of the first limiting cavity 612 after vibration.

[0102] Please refer to the accompanying drawings Figure 5 and the accompanying drawings Figure 5 , the connecting member 630 of the present application further comprises a limiting rod 633, the limiting rod 633 is arranged along the third direction Z, the limiting rod 633 is arranged in the second limiting cavity 622, one end of the limiting rod 633 is connected with the limiting plate 631, under the movement of the limiting plate 631 along the second direction Y, the limiting rod 633 always moves in the second limiting cavity 622 to ensure that the limiting plate 631 and the third connecting plate 621 do not separate.

[0103] The accompanying drawings Figure 5 is a structural schematic view of the force generating assembly 110 and the sleeve assembly 700 of the present application. Please refer to the accompanying drawings ​ , the force generating assembly 110 comprises a rotor 111 and a stator 112, the stator 112 is arranged in the rotor 111, the stator 112 is rotationally connected with the rotor 111, further a magnet is arranged on the rotor 111, a copper wire is arranged on the stator 112, the resistance when the rotor 111 and the stator 112 relatively rotate is adjusted by controlling the current flowing in the copper wire. The force generating assembly 110 of the present application further comprises a connecting shaft 113, the connecting shaft 113 penetrates the stator 112 along the third direction Z, and the connecting shaft 113 is fixedly connected with the stator 112.

[0104] Please refer to the accompanying drawings ​As shown, the force generating assembly 110 is connected with the pull rope through the sleeve assembly 700. The sleeve assembly 700 comprises an outer sleeve 710, which is a hollow structure, and the outer sleeve 710 has several diameters, and the output resistance value of the force generating assembly 110 can be adjusted by replacing the outer sleeve 710 with different diameters. The sleeve assembly 700 further comprises a connecting column 730, which is arranged on the outer sleeve 710 and connects the outer sleeve 710 with the rotor 111 through the connecting column 730. The sleeve assembly 700 further comprises a rotating member 720 and an intermediate connecting member 740, and the outer sleeve 710 is rotationally connected with the intermediate connecting member 740 through the rotating member 720, and the intermediate connecting member 740 is connected with the connecting shaft 113.

[0105] In an embodiment, the rotating member 720 comprises a bearing or a bushing.

[0106] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. Moreover, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples. In addition, different embodiments or examples described in the present specification and the features of different embodiments or examples can be combined and combined by those skilled in the art without contradiction.

[0107] In addition, the terms "first", "second" are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined with "first", "second" can explicitly or implicitly include at least one of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise specifically limited.

[0108] The above is only a specific embodiment of the present application, but the protection scope of the present application is not limited thereto, and any skilled person in the art can easily think of changes or replacements within the technical range disclosed in the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. A flying bird trainer, characterized in that, The flying bird trainer comprises, a trainer body, which comprises a force generating assembly, the force generating assembly providing a pulling resistance by winding the pulling rope; a pulling rod, which is connected with the force generating assembly through the pulling rope, and the force generating assembly rotates synchronously when the pulling rod is pulled; a guide assembly, one or more guide positions are arranged between the pulling rod and the force generating assembly along a first direction, the guide positions are used to arrange the guide assembly, and the pulling rope passes through the force generating assembly along the first direction to adjust the direction of the pulling rope.

2. The flying bird trainer according to claim 1, wherein, The trainer body is fixed on a wall, and the guide positions are arranged on the trainer body.

3. The flying bird trainer according to claim 1, wherein, One or more of the guide assemblies arranged close to the pulling rod is a first guide assembly, a wire clamp is arranged on the pulling rope, the wire clamp protrudes from the surface of the pulling rope, and the wire clamp interacts with the first guide assembly to form a resistance to prevent the wire clamp from moving; wherein, When the pulling rod bears external force, the wire clamp breaks through the first guide assembly downward and is located at the bottom of the first guide assembly along the first direction to realize free pulling of the pulling rod; When the pulling rod does not bear external force, the wire clamp breaks through the first guide assembly upward by the winding force of the force generating assembly and is located at the top of the first guide assembly along the first direction to realize suspension of the pulling rod.

4. The flying bird trainer according to claim 3, wherein, The trainer body further comprises, a torque sensing assembly, which is used to monitor the current of the force generating assembly, the force generating assembly winds the pulling rope, so that when the wire clamp breaks through the first guide assembly upward, the current of the force generating assembly fluctuates, and when the torque sensing assembly detects the current fluctuation, the force generating assembly stops winding the pulling rope.

5. The flying bird trainer of claim 1, wherein, The guide assembly comprises, a guide frame, which is provided with a guide cavity throughout along the first direction; a first guide piece, which is arranged on one side of the guide cavity along the first direction, and a first guide slot is formed in the first guide piece along a third direction; a second guide piece, which is arranged on the other side of the guide cavity along the first direction, and a second guide slot is formed in the second guide piece along a second direction; wherein, the pulling rope passes through the first guide slot and the second guide slot in sequence to form a limit of the pulling rope.

6. The flying bird trainer according to claim 5, wherein, The first guide piece and the second guide piece are formed by guide wheels arranged at intervals, and the first guide slot and the second guide slot are located between the two guide wheels.

7. The flying bird trainer according to claim 5, wherein, The guide frame comprises, a first avoiding slot, which is arranged along the third direction, the first avoiding slot is arranged on one side of the guide frame close to the first guide piece, and a projection of the first guide slot on the side of the guide frame close to the first guide piece at least partially overlaps with the first avoiding slot; A second avoiding slot is arranged along the second direction, and is arranged on the side of the guide frame close to the second guide piece. The projection of the second guide slot on the side of the guide frame close to the second guide piece at least partially overlaps with the second avoiding slot.

8. The flying bird trainer according to claim 5, wherein, The bird training device further comprises, A fixing assembly is arranged to detachably connect the guide assembly with the guide position; wherein the fixing assembly comprises, A first fixing piece is arranged on the guide frame; A second fixing piece is arranged on the guide position; A connecting piece is arranged to detachably connect the first fixing piece with the second fixing piece.

9. The bird training device according to claim 8, wherein The first fixing piece comprises, A first connecting plate is arranged on the side of the guide frame along the third direction, and two first connecting plates are arranged along the first direction to form a first limiting cavity arranged along the second direction; A second connecting plate is arranged along the first direction, and the first connecting plate is connected with the guide frame and the second connecting plate respectively; The second fixing piece comprises, A third connecting plate is provided with a second limiting cavity penetrating along the first direction, and is provided with an opening on the side close to the guide frame, the opening is in communication with the second limiting cavity, and the projection of the opening on the guide frame along the third direction is located in the second limiting cavity; wherein The second connecting plate is located in the second limiting cavity to limit the guide assembly in the second direction and the third direction; The connecting piece comprises, A limiting plate is arranged on the side of the third connecting plate along the second direction, and is arranged in the second limiting cavity through the connecting hole in communication with the second limiting cavity, and the limiting plate is located in the first limiting cavity to limit the guide assembly in the first direction.

10. The flying bird trainer according to claim 9, wherein, The connecting piece further comprises, A magnetic attraction piece is arranged in the first limiting cavity, and the limiting plate and the magnetic attraction piece form a magnetic attraction relationship when the limiting plate is close to the magnetic attraction piece.

11. The flying bird trainer of claim 9, wherein, The connecting piece further comprises, A limiting rod is arranged along the third direction, and is located in the second limiting cavity, and one end of the limiting rod is connected with the limiting plate, and the limiting rod always moves in the second limiting cavity under the movement of the limiting plate along the second direction to ensure that the limiting plate and the third connecting piece do not separate.

12. The flying bird trainer of claim 1, wherein, The force generating assembly is connected with the pull rope through a sleeve assembly; wherein the sleeve assembly comprises, An outer sleeve is arranged on the side of the force generating assembly, and is connected with the rotor of the force generating assembly; A rotating piece is arranged to rotatably connect the outer sleeve with the stator of the force generating assembly.