Mechanical cattle device capable of highly simulating riding

By combining power units, transmission devices, and connecting parts, the mechanism is converted into reciprocating up and down and rotating left and right, solving the problems of complex structure and high energy consumption of mechanical bullfighting machines, and realizing a more exciting animal simulation exercise experience.

CN121422491AInactive Publication Date: 2026-01-30GUANGZHOU LUFENG ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511371668.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-24
Publication Date
2026-01-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing mechanical bullfighting machines have complex structures, requiring two frequency converters to control two motors, resulting in high energy consumption. They also fail to realistically depict the wild movements of animals charging and jumping, lacking a thrilling experience.

Method used

The power unit transmits power to the drive mechanism through the transmission device. The drive mechanism and connecting parts convert the power into reciprocating motion up and down and left and right rotation and swing, realizing the motion of the simulated mechanical bull, reducing energy consumption and adjusting the difficulty of the game.

Benefits of technology

It achieves highly realistic depictions of wild and aggressive animal movements, reduces energy consumption, and meets modern people's demand for stimulation and challenge.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a high-simulation-riding mechanical cattle device in the technical field of amusement equipment. The high-simulation-riding mechanical cattle device comprises a base, a power device, a transmission device, a driving mechanism, a connecting piece and a power terminal. The power device is installed on the base and used for providing rotation power. The transmission device is installed on the base and connected with the power device to be used for transmitting rotating power, according to the high-simulation riding mechanical cattle device, the power device transmits power to the driving mechanism through the transmission device, and the power is converted into power which reciprocates up and down and rotates and swings left and right through the driving mechanism and the connecting piece; movement of the simulated mechanical cattle is achieved, the effect of brutal and impatient actions of animals during riding can be highly simulated, energy consumption is reduced, the difficulty degree of equipment games can be adjusted by adjusting the rotating speed of the power device, and the psychological requirements of modern people for pursuing stimulation and challenge can be better met.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of amusement equipment, in particular to a mechanical bull device for highly simulating riding. BACKGROUND

[0002] The mechanical bull machine is a common amusement equipment, which is widely used in theme parks, amusement parks and experience entertainment places. The mechanical bull machine simulates the bumping and swinging of animals during riding to provide stimulating and challenging experiences for participants. The current market can realize riding simulation, mainly represented by mechanical bull machines, which simulate the movement of animals through mechanical structure driving model shell.

[0003] The current market can simulate riding, mainly represented by mechanical bull machines. The device has a complex structure, requires two frequency converters to control two motors, has high energy consumption, one motor drives rotation and the other drives swinging, and cannot truly show the wild action of animal collision and jumping, which cannot bring people more stimulating and challenging experiences. Therefore, how to simplify the structure of the mechanical bull machine, reduce energy consumption and meet the psychological needs of modern people pursuing stimulation and challenge is a problem to be solved by technical personnel in this technical field. SUMMARY

[0004] The purpose of the present application is to provide a mechanical bull device for highly simulating riding, to solve the problem that the current market can simulate riding, mainly represented by mechanical bull machines, which have a complex structure, require two frequency converters to control two motors, have high energy consumption, one motor drives rotation and the other drives swinging, and cannot truly show the wild action of animal collision and jumping, which cannot bring people more stimulating and challenging experiences.

[0005] To achieve the above purpose, the present application provides the following technical scheme: a mechanical bull device for highly simulating riding, comprising a base, a power device, a transmission device, a driving mechanism, a connecting piece and a power terminal;

[0006] The power device is installed on the base to provide rotary power;

[0007] The transmission device is installed on the base and connected with the power device to transmit rotary power;

[0008] The driving mechanism is installed on the base and connected with the transmission device to receive rotary power;

[0009] The connecting piece is connected with the driving mechanism to convert the output of the driving mechanism into a composite motion;

[0010] The power terminal is connected with the connecting piece, and the rotating power output by the power device is transmitted to the power terminal through the transmission device, the driving mechanism and the connecting piece in sequence, and is converted into up-down reciprocating motion and left-right rotating swing, so that the simulation mechanical cow model shell realizes simulation motion.

[0011] Preferably, the bottom of the base is provided with supporting legs in contact with the ground.

[0012] The top of the base is provided with a cover, and a connecting port is formed in the top of the cover and communicates with the inner cavity of the cover.

[0013] Preferably, the transmission device comprises a first mounting seat, a bearing seat and a transmission assembly.

[0014] The bearing seat is detachably connected with the first mounting seat.

[0015] The transmission assembly is detachably connected with the bearing seat.

[0016] Preferably, the first mounting seat comprises a first mounting plate and a first reinforcing rib.

[0017] The first reinforcing rib is arranged on the side of the first mounting plate and connected with the top of the base.

[0018] Preferably, the transmission assembly comprises a rotating shaft, a driven wheel and a first gear.

[0019] The rotating shaft is detachably connected with the bearing seat.

[0020] The driven wheel and the first gear are detachably mounted on the circumferential outer side wall of the rotating shaft, and the driven wheel and the first gear are distributed on both sides of the bearing seat.

[0021] Preferably, the driving mechanism comprises a second mounting seat, a connecting shaft and a driving assembly.

[0022] The connecting shaft is connected with the second mounting seat.

[0023] The driving assembly is movably connected with the connecting shaft.

[0024] Preferably, the second mounting seat comprises a second mounting plate and a second reinforcing rib.

[0025] The second reinforcing rib is arranged on the side of the second mounting plate and connected with the top of the base.

[0026] Preferably, the driving assembly comprises a second gear and an eccentric shaft.

[0027] The eccentric shaft is arranged at the side edge of the second gear.

[0028] Preferably, the connecting piece comprises a connecting plate, a connecting block and a first bevel gear;

[0029] A mounting hole is formed in the top of the side wall of the connecting plate;

[0030] The connecting block is arranged at the middle of the side wall of the connecting plate, and a connecting hole is formed in the top of the connecting block;

[0031] The first bevel gear is arranged at the bottom of the side wall of the connecting plate and is symmetrically arranged with the mounting hole.

[0032] Preferably, the power terminal comprises a sleeve rod, a connecting ball, a rotating rod and a second bevel gear;

[0033] The connecting ball is arranged on the circumferential outer wall of the sleeve rod;

[0034] The rotating rod is arranged in the inner cavity of the sleeve rod, and the two ends of the rotating rod are arranged outside the sleeve rod by penetrating the two ends of the sleeve rod;

[0035] The second bevel gear is arranged at the end of the rotating rod.

[0036] Compared with the prior art, the beneficial effects of the present application are that the power device transmits power to the driving mechanism through the transmission device, and the power is converted by the driving mechanism and the connecting piece to form up-down reciprocating and left-right rotating swinging power, realizing the movement of the simulated mechanical cow, being able to highly simulate the effect of the animal's savage and irritable action when riding, reducing energy consumption, adjusting the speed of the power device to adjust the difficulty of the equipment game, and better meeting the psychological needs of modern people pursuing stimulation and challenge. BRIEF DESCRIPTION OF DRAWINGS

[0037] Figure 1 It is a structural schematic diagram of the present application;

[0038] Figure 2 It is a structural schematic diagram of the transmission device of the present application;

[0039] Figure 3 It is a structural schematic diagram of the driving mechanism of the present application;

[0040] Figure 4 It is a structural schematic diagram of the connecting piece of the present application;

[0041] Figure 5 It is a structural schematic diagram of the power terminal of the present application.

[0042] In the figure: 100 base, 110 support leg, 120 cover, 121 connecting port, 200 power device, 300 transmission device, 310 first mounting seat, 311 first mounting plate, 312 first reinforcing rib, 320 bearing seat, 330 transmission assembly, 331 rotating shaft, 332 driven wheel, 333 first gear, 400 driving mechanism, 410 second mounting seat, 411 second mounting plate, 412 second reinforcing rib, 420 connecting shaft, 430 driving assembly, 431 second gear, 432 eccentric shaft, 500 connecting piece, 510 connecting plate, 511 mounting hole, 520 connecting block, 521 connecting hole, 530 first bevel gear, 600 power terminal, 610 sleeve rod, 620 connecting ball, 630 rotating rod, 640 second bevel gear. DETAILED DESCRIPTION

[0043] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0044] The present application provides a highly simulated mechanical cow device for riding. The power device transmits power to the driving mechanism through the transmission device. The driving mechanism and the connecting piece convert the power to form up-down reciprocating and left-right rotating swinging power, realize the motion of the simulated mechanical cow, can highly simulate the effect of the animal's wild and violent action when riding, reduce energy consumption, adjust the difficulty of the equipment game by adjusting the rotating speed of the power device, and can better meet the psychological needs of modern people pursuing stimulation and challenge. Please refer to Figure 1 , which comprises a base 100, a power device 200, a transmission device 300, a driving mechanism 400, a connecting piece 500 and a power terminal 600.

[0045] Embodiment 1

[0046] Please refer to Figure 1 , the power device 200 is detachably installed on the top of the base 100, and is connected with an external power source to generate rotating power.

[0047] The transmission device 300 is detachably installed on the top of the base 100 and connected with the power device 200. The rotating power generated by the power device 200 is transmitted to the transmission device 300.

[0048] The driving mechanism 400 is detachably installed on the top of the base 100 and connected with the transmission device 300. The rotating power generated by the power device 200 is transmitted to the driving mechanism 400 through the transmission device 300.

[0049] The connecting piece 500 is movably connected with the driving mechanism 400, and the connecting piece 500 is driven to move by the driving mechanism 400;

[0050] One end of the power terminal 600 is connected with the connecting piece 500, and the other end is provided with a model shell of the simulated mechanical cow which is externally sleeved, and the rotating power is converted by the cooperation of the connecting piece 500 and the power terminal 600 to form the power of up-down reciprocating and left-right rotating swinging, so that the movement of the simulated mechanical cow is realized, the effect of the animal's wild and violent action during riding is highly simulated, the energy consumption is reduced, the difficulty of the equipment game is adjusted by adjusting the rotating speed of the power device, and the psychological demand of modern people for stimulation and challenge can be better met.

[0051] Embodiment 2

[0052] Please refer to Figures 1-2 The support legs 110 are placed on the ground and are detachably fixedly connected with the ground, so that the base 100 is stably placed;

[0053] The cover 120 is detachably installed on the top of the base 100, the cover 120 is a conical structure with a small area at the upper end and a large area at the lower end, and the simulated shell of the mechanical cow is arranged at the upper end of the cover 120;

[0054] The top of the cover 120 is provided with a connecting port 121 which is in communication with the inner cavity of the cover 120;

[0055] The power device 200 comprises a motor and a driving wheel, the motor is detachably installed on the top edge of the base 100 by bolts, and the driving wheel is detachably installed on the output shaft of the motor by splines or keys, and the driving wheel is driven to rotate by the output shaft of the motor;

[0056] The transmission device 300 comprises a first mounting seat 310, a bearing seat 320 and a transmission assembly 330;

[0057] The first mounting seat 310 comprises a first mounting plate 311 and a first reinforcing rib 312;

[0058] The first mounting plate 311 is detachably installed on the side of the top of the base 100 away from the motor by bolts;

[0059] The first reinforcing rib 312 is welded on the side wall of the first mounting plate 311 and is detachably connected with the top of the base 100, and is used for strengthening the structural strength of the first mounting plate 311;

[0060] The bearing seat 320 is detachably installed on the side wall of the first mounting plate 311 by bolts, and the end of the bearing seat 320 penetrates through the other side wall of the first mounting plate 311 vertically;

[0061] The transmission assembly 330 comprises a rotating shaft 331, a driven wheel 332 and a first gear 333;

[0062] The rotating shaft 331 is inserted into the inner side of the bearing seat 320, and both ends of the rotating shaft 331 are arranged at both ends of the outer side of the bearing seat 320;

[0063] The driven wheel 332 is installed at the end of the circumferential outer side wall of the rotating shaft 331 through a spline or a key, the driven wheel 332 corresponds to the driving wheel, the outer diameter of the driven wheel 332 is greater than that of the driving wheel, the driven wheel 332 is connected with the driving wheel through a belt, and the driving wheel drives the driven wheel 332 to rotate through the belt;

[0064] The first gear 333 is installed at the other end of the circumferential outer side wall of the rotating shaft 331 through a spline or a key, the first gear 333 and the driven wheel 332 are distributed on both sides of the first mounting plate 311, and the driven wheel 332 drives the first gear 333 to rotate through the rotating shaft 331.

[0065] Embodiment 3

[0066] Please refer to Figures 1-3 The driving mechanism 400 comprises a second mounting seat 410, a connecting shaft 420 and a driving assembly 430.

[0067] The second mounting seat 410 comprises a second mounting plate 411 and a second reinforcing rib 412.

[0068] The second mounting plate 411 is detachably installed on the top of the base 100 through a bolt and is arranged between the rotating shaft 331 and the motor.

[0069] The second reinforcing rib 412 is welded on the side wall of the second mounting plate 411 and is detachably connected with the base 100, and is used for strengthening the structural strength of the second mounting plate 411.

[0070] The connecting shaft 420 is welded at the middle position of the top of the front side wall of the second mounting plate 411.

[0071] The driving assembly 430 comprises a second gear 431 and an eccentric shaft 432.

[0072] The second gear 431 is movably connected with the connecting shaft 420 through a bearing, the second gear 431 is engaged with the first gear 333, and the second gear 431 is driven to rotate on the connecting shaft 420 through the first gear 333.

[0073] The eccentric shaft 432 is welded at the edge of the front side wall of the second gear 431.

[0074] Embodiment 4

[0075] Please refer to Figures 1-5 The connecting piece 500 comprises a connecting plate 510, a connecting block 520 and a first bevel gear 530.

[0076] The connecting plate 510 is a straight plate with semicircular ends, and a mounting hole 511 is formed at the top center of the front side wall of the connecting plate 510, which is connected with the eccentric shaft 432 through a bearing. Under the action of gravity, the end of the connecting plate 510 away from the eccentric shaft 432 is vertically downward;

[0077] The connecting block 520 is integrally formed at the middle position of the front side wall of the connecting plate 510, and the end of the connecting block 520 away from the connecting plate 510 is semicircular. A connecting hole 521 is formed at the top center of the connecting block 520, which vertically penetrates the bottom of the connecting block 520;

[0078] The first bevel gear 530 is detachably installed at the bottom center of the front side wall of the connecting plate 510, which is symmetrical to the mounting hole 511;

[0079] The power terminal 600 includes a sleeve rod 610, a connecting ball 620, a rotating rod 630, and a second bevel gear 640;

[0080] One end of the sleeve rod 610 penetrates the connecting port 121 and is detachably connected with the connecting hole 521 in the inner cavity of the cover 120, and the other end is arranged outside the top of the connecting port 121;

[0081] The connecting ball 620 is detachably installed on the circumferential outer side wall of the sleeve rod 610 and movably connected with the connecting port 121. The sleeve rod 610 can move along the axial direction of the sleeve rod 610 on the connecting ball 620, and can also swing with the connecting ball 620 as the center;

[0082] One end of the rotating rod 630 is inserted into the inner cavity of the sleeve rod 610 and arranged outside the bottom of the sleeve rod 610, and the other end is arranged outside the top of the sleeve rod 610 and connected with the mechanical cow simulation shell;

[0083] The second bevel gear 640 is detachably installed at the bottom end of the rotating rod 630 and engaged with the first bevel gear 530;

[0084] The connecting plate 510 is driven to rotate by the second gear 431, and the first bevel gear 530 moves with the connecting plate 510;

[0085] The distance between the connecting plate 510 and the connecting port 121 changes, and the distance close to the connecting port 121 is called the proximal end, and the distance far from the connecting port 121 is called the distal end. By moving the one end of the sheath rod 610 up and down through the connecting plate 510, the sheath rod 610 moves along the axial direction of the sheath rod 610 on the connecting ball 620. When the connecting plate 510 rotates towards the proximal end, the sheath rod 610 moves up, driving the simulation shell to move up. When the connecting plate 510 rotates towards the distal end, the sheath rod 610 moves down, driving the simulation shell to move down, forming a jumping action.

[0086] The connecting plate 510 moves along with the second gear 431, and the one end of the sheath rod 610 moves along with the connecting plate 510. The sheath rod 610 moves along with the connecting plate 510 to form a swinging action while forming a jumping action. When the connecting plate 510 moves towards the left side, the top end of the sheath rod 610 swings to the right. When the connecting plate 510 moves towards the right side, the top end of the sheath rod 610 swings to the left.

[0087] The second bevel gear 640 moves along with the sheath rod 610. The second bevel gear 640 is engaged with the first bevel gear 530. During the swinging of the sheath rod 610, the relative position between the second bevel gear 640 and the first bevel gear 530 changes. When the bottom end of the sheath rod 610 moves towards the left side, the second bevel gear 640 moves to the right side of the first bevel gear 530. When the bottom end of the sheath rod 610 moves towards the right side, the second bevel gear 640 moves to the left side of the first bevel gear 530. When the bottom end of the sheath rod 610 is at the distal end or the proximal end, the second bevel gear 640 is at the upper end of the first bevel gear 530. With the change of the relative position between the second bevel gear 640 and the first bevel gear 530, the second bevel gear 640 is driven to rotate by the first bevel gear 530, and the rotating rod 630 is driven to rotate by the second bevel gear 640, driving the simulation shell to rotate, forming a rotating action.

[0088] Although the present application has been described with reference to the embodiments above, various modifications can be made thereto and equivalents can be substituted therefor without departing from the scope of the present application. In particular, features of the disclosed embodiments can be combined together in any manner, provided that there is no structural conflict. The combinations of the features are not exhaustively described in the specification only for the consideration of saving space and resources. Therefore, the present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

Claims

1. A mechanical cow device highly simulating a ride, characterized by: Base (100), power device (200), transmission device (300), drive mechanism (400), connecting piece (500) and power terminal (600) are included. The power device (200) is installed on the base (100) for providing rotary power; The transmission device (300) is installed on the base (100) and connected with the power device (200) for transmitting rotary power; The drive mechanism (400) is installed on the base (100) and connected with the transmission device (300) for receiving rotary power; The connecting piece (500) is connected with the drive mechanism (400) for converting the output of the drive mechanism (400) into composite motion; The power terminal (600) is connected with the connecting piece (500), and the rotary power output by the power device (200) is transmitted to the power terminal (600) through the transmission device (300), the drive mechanism (400) and the connecting piece (500) in turn, and is converted into up-down reciprocating motion and left-right rotary swing to drive the simulation mechanical cow model shell to realize simulation motion.

2. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 1, wherein: The bottom of the base (100) is provided with supporting legs (110), and the supporting legs (110) are in contact with the ground. The top of the base (100) is provided with a cover (120), and a connecting port (121) is formed in the top of the cover (120) and communicates with the inner cavity of the cover (120).

3. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 1, wherein: The transmission device (300) includes a first mounting seat (310), a bearing seat (320) and a transmission assembly (330). The bearing seat (320) is detachably connected with the first mounting seat (310). The transmission assembly (330) is detachably connected with the bearing seat (320).

4. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 3, wherein: The first mounting seat (310) includes a first mounting plate (311) and a first reinforcing rib (312). The first reinforcing rib (312) is arranged on the side of the first mounting plate (311) and connected with the top of the base (100).

5. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 3, wherein: The transmission assembly (330) includes a rotating shaft (331), a driven wheel (332) and a first gear (333). The rotating shaft (331) is detachably connected with the bearing seat (320). The driven wheel (332) and the first gear (333) are detachably mounted on the circumferential outer side wall of the rotating shaft (331), and the driven wheel (332) and the first gear (333) are distributed on both sides of the bearing seat (320).

6. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 1, wherein: The drive mechanism (400) includes a second mounting seat (410), a connecting shaft (420) and a drive assembly (430). The connecting shaft (420) is connected with the second mounting seat (410). The drive assembly (430) is movably connected with the connecting shaft (420).

7. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 6, characterised in that: The second mounting seat (410) includes a second mounting plate (411) and a second reinforcing rib (412). The second reinforcing rib (412) is arranged on the side of the second mounting plate (411) and connected with the top of the base (100).

8. A highly realistic simulated ride mechanical cow apparatus as claimed in claim 6, characterized in that: The driving assembly (430) comprises a second gear (431) and an eccentric shaft (432); The eccentric shaft (432) is arranged at the side edge of the second gear (431).

9. A highly realistic mechanical cow ride device as claimed in claim 1, wherein: The connecting piece (500) comprises a connecting plate (510), a connecting block (520) and a first bevel gear (530); A mounting hole (511) is arranged at the top of the side wall of the connecting plate (510); The connecting block (520) is arranged at the middle of the side wall of the connecting plate (510), and a connecting hole (521) is arranged at the top of the connecting block (520); The first bevel gear (530) is arranged at the bottom of the side wall of the connecting plate (510) and is symmetrically arranged with the mounting hole (511).

10. A highly realistic mechanical cow ride device as claimed in claim 1, wherein: The power terminal (600) comprises a sleeve rod (610), a connecting ball (620), a rotating rod (630) and a second bevel gear (640); The connecting ball (620) is arranged on the outer side wall of the circumference of the sleeve rod (610); The rotating rod (630) is arranged in the inner cavity of the sleeve rod (610), and the two ends of the rotating rod (630) are arranged outside the sleeve rod (610) by penetrating the two ends of the sleeve rod (610) respectively; The second bevel gear (640) is arranged at the end of the rotating rod (630).