Artificial intelligence running equipment for physical training
By setting a tactile vest and airflow components on the treadmill to simulate the touch and wind resistance in complex environments, the problem of insufficient immersion in existing treadmills is solved, and a more realistic training experience and effect is achieved.
Patent Information
- Application Number
- CN202510850118.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-09-05
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing treadmills cannot realistically simulate complex environments during physical training, resulting in insufficient immersion for trainees and affecting training results.
A tactile vest and airflow component are set up on the treadmill. The tactile vest simulates the touch and vibration in different environments through the tactile component and vibrator. The airflow component simulates wind resistance through wind force, and combines magnets and ball bearings to reduce movement resistance and achieve omnidirectional movement.
It enhances the immersion and effectiveness of training, enables trainees to experience complex environments more realistically, and improves the pertinence and practicality of training.
Smart Images

Figure CN120586346A_ABST
Abstract
Description
Technical Field
[0001] The present invention mainly relates to the technical field of treadmills, and specifically to an artificial intelligence treadmill device for physical training. Background Art
[0002] In physical training, the treadmill is a commonly used device. It can help with aerobic exercises such as running and walking, and plays an important role in improving cardiopulmonary function and enhancing lower limb strength. With the development of science and technology, people's requirements for physical training equipment are getting higher and higher. They are not only limited to basic sports functions, but also hope to obtain a more realistic and immersive training experience to improve the enthusiasm and effectiveness of training.
[0003] The omnidirectional treadmill with universal wheels described in the prior art consists of a waist protector, a longitudinal Z-shaped fixing plate, external hexagonal bolts, a longitudinal I-shaped fixing plate, an omnidirectional treadmill base, and a transverse fixing plate. The waist protector consists of a soft cushion ring, an inner ring, an outer ring, a shock-absorbing spring, and a combination switch. The waist protector measures the user's movement and provides protection. The omnidirectional treadmill base consists of a sports elastic layer, a support filling layer, a smooth metal layer, a control module, universal wheels, a motor module, and a base shell.
[0004] Although the above-mentioned technology can enable users to move omnidirectionally in place, and its fixed plate can be folded up to reduce the volume for easy storage, the trainees may easily feel bored during use, and it is unable to simulate various complex situations in the real environment. Even if some equipment can provide visual virtual scenes, it is still not perfect in terms of touch and environmental feedback. The trainees cannot truly feel the various physical interactions in the virtual environment, resulting in insufficient immersion and affecting the overall training experience and effect. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide an artificial intelligence running device for physical training to solve the technical problems raised in the above background technology.
[0006] To achieve the above object, the present invention provides the following technical solutions: The two treadmills are symmetrically provided with T-shaped sliders on both sides of the treadmill, and a T-shaped slot is opened along the circumference of the outer wall of the treadmill. The two T-shaped sliders are slidably connected to the T-shaped slot. The treadmill is provided with a bracket, which consists of a first support rod, a second support rod and a cross bar. The two T-shaped sliders are fixedly connected to the bottom outer walls of the first support rod and the second support rod respectively. A sliding rod is connected below the cross bar. A sliding sleeve is slidably mounted on the sliding rod, and the sliding sleeve is connected to the sliding rod through a fixing component. The sliding sleeve is respectively connected to a tactile vest and a ring through a connecting rope and a connecting plate. A plurality of tactile components are scattered on the front and back of the tactile vest, and the plurality of tactile components are used for users to experience specific tactile sensations in a physical training simulation scene. The first support rod, the tactile vest and the second support rod are all located in a line. An airflow component is provided inside the first support rod, and an air outlet of the airflow component faces the front of the tactile vest.
[0007] Specifically, the present technical solution comprises several tactile components including metal blocks, several of the metal blocks are bonded to the tactile vest, and several of the metal blocks are provided with vibrators on their sides close to the human body.
[0008] Specifically, the airflow component includes an air cavity opened in the first support rod, the inner bottom plate of the air cavity is installed with a motor by bolts, the output end of the motor is detachably connected to the wind wheel, the top of the wind wheel is rotatably connected to the top wall of the air cavity, and the wall of the first support rod close to the tactile vest is set as an air outlet grille, and the other wall of the first support rod is screwed with an air inlet shield.
[0009] The technical solution is specific. The two ends of the cross bar are respectively fixedly connected to the top outer walls of the first support rod and the second support rod, the top of the sliding rod is fixedly connected to the lower surface of the cross bar, the connecting rope is located at the top of the outer wall of the sliding sleeve and is fixedly connected thereto, the connecting plate is fixedly sleeved on the bottom outer wall of the sliding sleeve, the connecting rope and the connecting plate are respectively fixedly connected to the back side of the tactile vest and the outer wall of the ring, a telescopic rod is provided between the connecting rope and the connecting plate, the telescopic rod is fixed on the outer wall of the sliding sleeve, and the telescopic end of the telescopic rod is bonded to the back side of the tactile vest through an adhesive rubber pad.
[0010] Specifically, the top inner wall of the T-shaped slide is fixed with a first magnet, and the two sides of the T-shaped ends of the two T-shaped sliders are respectively provided with balls and second magnets. The two balls are embedded in the bottom of the T-shaped slider, and the outer walls of the two balls are rollingly connected to the bottom surface of the T-shaped slide, and the magnetic poles of the two second magnets are opposite to those of the first magnet.
[0011] Specifically, the present technical solution has an arc-shaped movable rod installed at one end of the ring through a hinge, and the movable rod is connected to the ring through a connecting assembly. The width of the movable rod is the same as the width of the ring, and rubber pads are bonded to the inner walls of the ring and the movable rod, and the width of the rubber pad is greater than the width of the ring and the movable rod.
[0012] Specifically, the connection assembly includes a mounting plate, one end of the mounting plate is connected to the movable rod, the outer wall of the other end of the ring is provided with a mounting groove, and the other end of the mounting plate is provided with a threaded rod that matches the mounting groove.
[0013] Specifically, the technical solution of the present invention is that the mounting plate is embedded in the outer wall of the movable rod, and the threaded rod is threadedly connected to the mounting plate and the screw hole provided in the mounting groove.
[0014] The present technical solution is specific, and the fixing component includes a movable groove, which is opened on the side of the sliding rod close to the second support rod, and a plurality of positioning holes are evenly opened on the inner wall of the movable groove. A fixing plate is provided on the side of the sliding sleeve away from the connecting rope, and a screw rod is passed through the center of the fixing plate. One end of the screw rod is rotatably connected to the sliding sleeve, and the other end of the screw rod is connected to a knob. The top and bottom of the side of the fixing plate away from the knob are connected to connecting rods, and the two connecting rods both penetrate the sliding sleeve and extend into the movable groove, and the ends of the two connecting rods are connected to positioning blocks, and the two positioning blocks are both plugged into the positioning holes.
[0015] Specifically, the threaded outer wall of the screw rod is threadedly connected to the contact portion of the fixed plate, the knob is fixedly connected to the screw rod, and the two ends of the two connecting rods are respectively fixedly connected to the fixed plate and the positioning block, and the diameter of the two positioning blocks is larger than the diameter of the connecting rod.
[0016] In summary, the present invention mainly has the following beneficial effects: This application, by rationally distributing the tactile components in the vest and providing airflow components, allows users to more realistically simulate training scenarios in various complex environments during physical training, effectively enhancing the immersion and effectiveness of training. The user opens the ring through the connecting component and puts on the tactile vest. The treadmill starts and the user can move omnidirectionally on the treadmill. During rotation, the telescopic rod and the sliding rod drive the crossbar, the first support rod and the second support rod to move along with the rotation of the body. The two support rods use the repulsive force between the two magnets and the ball bearings to ensure that the resistance to their movement is reduced. The motor in the airflow component drives the wind wheel to rotate in the wind cavity. The rotating wind wheel drives the air flow to generate wind force, so that the external air enters the wind cavity from the air inlet shield and blows toward the user from the air outlet grille, simulating the wind resistance conditions in different environments. When specific situations arise in the physical training simulation scene, such as encountering an obstacle or being touched by training equipment, the vibrator in the touch component receives the signal and starts, and the generated vibration acts on the contact parts of the user's body, thereby better introducing the user into the simulated training scene, enabling them to feel and respond to various complex situations more realistically, and improving the targeted and practical nature of the training. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is the overall structural diagram of the present invention; Figure 2 This is an enlarged view of point A of the present invention; Figure 3 This is a structural diagram of the airflow component of the present invention; Figure 4 This is a structural diagram of the fixing assembly of the present invention; Figure 5 is a schematic diagram of a touch-sensitive vest of the present invention; Figure 6 This is a structural diagram of the touch component of the present invention.
[0018] Description of the drawings: 1. Treadmill; 101. T-shaped slide; 1011. First magnet; 2. Tactile vest; 3. Tactile component; 301. Metal block; 302. Vibrator; 4. Bracket; 401. First support rod; 402. Second support rod; 403. Crossbar; 404. Sliding rod; 405. Sliding sleeve; 4051. Connecting rope; 4052. Telescopic rod; 4053. Connecting plate; 406. Ferrule; 4061. Movable rod; 4062. Rubber pad; 5. Connecting Connecting assembly; 501, mounting plate; 502, mounting slot; 503, threaded rod; 6, airflow assembly; 601, air cavity; 602, wind wheel; 603, motor; 604, air inlet baffle; 605, air outlet grille; 7, T-shaped slider; 701, ball bearing; 702, second magnet; 8, fixing assembly; 801, movable slot; 8011, positioning hole; 802, positioning block; 803, connecting rod; 804, fixing plate; 805, screw rod; 8051, knob. DETAILED DESCRIPTION
[0019] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be understood as limiting the present invention.
[0020] The following describes an embodiment of the present invention based on its overall structure.
[0021] The electrical components in this application are all controlled by an external controller, and the signal output end of the external controller is connected to the control end of the tactile component 3 and the airflow component 6 to achieve intelligence. The omnidirectional operation principle of the treadmill 1 in this application adopts the existing technology.
[0022] In this embodiment, please refer to Figure 1 、 Figure 4 、 Figure 5 and Figure 6 An artificial intelligence treadmill device for physical training includes a treadmill 1, T-shaped sliders 7 are symmetrically provided on both sides of the treadmill 1, a T-shaped groove 101 is opened along the circumference of the outer wall of the treadmill 1, and the two T-shaped sliders 7 are slidably connected to the T-shaped groove 101. A bracket 4 is provided on the treadmill 1, and the bracket 4 is composed of a first support rod 401, a second support rod 402 and a cross bar 403. The two T-shaped sliders 7 are fixedly connected to the bottom outer walls of the first support rod 401 and the second support rod 402 respectively. The first support rod 401, the tactile vest 2 and the second support rod 402 are all in a line. An airflow component 6 is provided inside the first support rod 401, and the air outlet of the airflow component 6 faces the front of the tactile vest 2. The cross bar 4 A slide bar 404 is connected to the bottom of 03, and a slide sleeve 405 is slidably installed on the slide bar 404. The slide sleeve 405 is connected to the slide bar 404 through a fixing component 8. The slide sleeve 405 is respectively connected to the tactile vest 2 and the ring 406 through a connecting rope 4051 and a connecting plate 4053. Several tactile components 3 are scattered on the front and back of the tactile vest 2. The several tactile components 3 are used for users to experience specific tactile sensations in physical training simulation scenes. The several tactile components 3 all include metal blocks 301. The several metal blocks 301 are all bonded to the tactile vest 2, and the side of the several metal blocks 301 close to the human body is installed with a vibrator 302. The metal blocks 301 serve as wires and supports. The two ends of the cross bar 403 are respectively fixedly connected to the top outer walls of the first support rod 401 and the second support rod 402, the top of the sliding rod 404 is fixedly connected to the lower surface of the cross bar 403, the connecting rope 4051 is located at the top of the outer wall of the sliding sleeve 405 and is fixedly connected thereto, the connecting plate 4053 is fixedly sleeved on the bottom outer wall of the sliding sleeve 405, the connecting rope 4051 and the connecting plate 4053 are respectively fixedly connected to the back side of the tactile vest 2 and the outer wall of the ring 406, a telescopic rod 4052 is provided between the connecting rope 4051 and the connecting plate 4053, the telescopic rod 4052 is fixed on the outer wall of the sliding sleeve 405, and the telescopic end of the telescopic rod 4052 is bonded to the back side of the tactile vest 2 through an adhesive rubber pad 4062.
[0023] When using the artificial intelligence running device for physical training, the user connects the head display to the external controller through a plug-in cable, and then adjusts the position of the sliding sleeve 405 on the sliding rod 404 through the fixing component 8 so that the tactile vest 2 and the ring 406 connected thereto can adapt to people of different heights. The device is then started through the external controller. At this time, the user opens the connecting component 5 and enters the ring 406 above the treadmill 1, and then puts on the tactile vest 2. Since the tactile vest 2 is connected to the sliding sleeve 405 through the connecting rope 4051 and the telescopic rod 4052, the tactile vest 2 can move to a certain extent, and when the user turns around, the telescopic rod 4052 drives the bracket 4 to move along the T-shaped slide groove 101 of the treadmill 1. When using When a user moves on the treadmill 1, his or her body will come into contact with the rubber pad 4062 on the inner wall of the ring 406, reducing the discomfort caused to the body by the edge of the ring 406. When wind resistance needs to be simulated in a physical training simulation scene, the external controller activates the airflow component 6 to generate a flowing airflow blowing towards the user's face and body. When a specific situation occurs in the simulation scene (for example, simulating contact or collision with training equipment during training and simulating being pushed or blocked by an opponent in confrontation training), the tactile components 3 at several different positions in the tactile vest 2 operate according to preset rules, and its vibrator 302 generates vibration and transmits it to the contacted part of the body, simulating the corresponding physical training situation, thereby ensuring the immersive effect of the simulated training and improving the training effect.
[0024] See also Figure 1 and Figure 3 The airflow component 6 includes an air cavity 601 opened in the first support rod 401. The inner bottom plate of the air cavity 601 is installed with a motor 603 by bolts. The output end of the motor 603 is detachably connected to the wind wheel 602. The top of the wind wheel 602 is rotatably connected to the top wall of the air cavity 601. The wall of the first support rod 401 close to the tactile vest 2 is set as an air outlet grille 605, and the other wall of the first support rod 401 is screwed with an air inlet shield 604.
[0025] When the airflow component 6 is started, the motor 603 inside it works, and the output end drives the wind wheel 602 to rotate in the air cavity 601. The rotating wind wheel 602 drives the air flow to generate wind force, so that the external air enters the air cavity 601 from the air inlet shield 604 and blows toward the user from the air outlet grille 605. The air inlet shield 604 and the air outlet grille 605 can protect the human body and prevent the rotating wind wheel 602 from being touched by fingers and other parts.
[0026] See also Figure 1 and Figure 3A first magnet 1011 is fixed to the top inner wall of the T-shaped slide 101, and balls 701 and second magnets 702 are respectively provided on both sides of the T-shaped ends of the two T-shaped sliders 7. The two balls 701 are embedded in the bottom of the T-shaped slider 7, and the outer walls of the two balls 701 are rollingly connected to the bottom surface of the T-shaped slide 101. The magnetic poles of the two second magnets 702 are opposite to those of the first magnet 1011.
[0027] When the user turns around, the tactile vest 2 worn by the user drives the cross bar 403 to move through the telescopic rod 4052, the sliding sleeve 405 and the sliding rod 404. The cross bar 403 drives the first support rod 401 and the second support rod 402 connected at both ends to move. When the two support rods move, the connected T-shaped slider 7 is driven to move along the T-shaped slide groove 101. During the movement of the T-shaped slider 7, the resistance to the movement of the T-shaped slider 7 is reduced by the ball 701 and the first magnet 1011 and the second magnet 702 with two magnetic poles repelling each other, so that the two support rods can be moved better.
[0028] See also Figure 1 and Figure 2 , one end of the ring 406 is hingedly installed with an arc-shaped movable rod 4061, and the movable rod 4061 is connected to the ring 406 through a connecting component 5. The width of the movable rod 4061 is the same as the width of the ring 406, and the inner walls of the ring 406 and the movable rod 4061 are bonded with rubber pads 4062. The width of the rubber pad 4062 is greater than the width of the ring 406 and the movable rod 4061. The connecting component 5 includes a mounting plate 501, one end of the mounting plate 501 is connected to the movable rod 4061, and a mounting groove 502 is provided on the outer wall of the other end of the ring 406, and a threaded rod 503 is provided on the other end of the mounting plate 501 and matches the mounting groove 502. The mounting plate 501 is embedded in the outer wall of the movable rod 4061, and the threaded rod 503 is threadedly connected to the mounting plate 501 and the screw holes opened in the mounting groove 502.
[0029] When the user opens the ring 406, he rotates the threaded rod 503 by hand, and the threaded end of the threaded rod 503 rotates to disengage from the screw hole of the mounting groove 502. Then, under the action of the hinge, the movable rod 4061 is rotated outward, and the rotating movable rod 4061 drives the mounting plate 501 to move out of the mounting groove 502. At this time, the user enters the ring 406 from the opened opening, and the ring 406 is located at the user's crotch position. Finally, the movable rod 4061 is rotated inward so that the mounting plate 501 is inserted into the mounting groove 502, and the threaded rod 503 is tightened to fix the mounting plate 501.
[0030] See also Figure 4The fixing assembly 8 includes a moving groove 801, which is opened on the side of the sliding rod 404 close to the second support rod 402. A number of positioning holes 8011 are evenly opened on the inner wall of the moving groove 801. A fixing plate 804 is provided on the side of the sliding sleeve 405 away from the connecting rope 4051. A screw rod 805 is passed through the center of the fixing plate 804. One end of the screw rod 805 is rotatably connected to the sliding sleeve 405. The other end of the screw rod 805 is connected to a knob 8051. The top and bottom of the fixing plate 804 away from the knob 8051 are both connected. Connecting rod 803, both connecting rods 803 pass through the sliding sleeve 405 and extend into the movable groove 801, and the ends of the two connecting rods 803 are connected with positioning blocks 802, and the two positioning blocks 802 are plugged into the positioning holes 8011, and the threaded outer wall of the screw rod 805 is threadedly connected to the contact part of the fixed plate 804, the knob 8051 is fixedly connected to the screw rod 805, and the two ends of the two connecting rods 803 are fixedly connected to the fixed plate 804 and the positioning blocks 802 respectively, and the diameter of the two positioning blocks 802 is larger than the diameter of the connecting rod 803.
[0031] When adjusting the position of the sliding sleeve 405, the user manually rotates the knob 8051, and the knob 8051 drives the screw rod 805 to rotate, so that the fixing plate 804 moves following the rotation of the screw rod 805 under the restriction of the two connecting rods 803. The moving fixing plate 804 also drives the connecting rod 803 to move, and the connecting rod 803 drives the positioning block 802 to move, so that the positioning block 802 moves out of the positioning hole 8011 to cancel the fixation of the sliding sleeve 405 and the sliding rod 404. Then, after the sliding sleeve 405 moves to the appropriate position along the sliding rod 404, the knob 8051 is rotated in the opposite direction, and the fixing plate 804 drives the connecting rod 803 and the positioning block 802 to reset, so that the positioning block 802 is reinserted into the corresponding positioning hole 8011, completing the fixation of the sliding sleeve 405, avoiding the sliding sleeve 405 from moving during use, and allowing the body rotation force to be transmitted to the sliding rod 404 through the connecting rod 803 and the positioning block 802.
[0032] The working principle of the present invention is: When the artificial intelligence running device is used for physical training, the user connects the head display to the external controller through a plug-in cable, and then adjusts the position of the sliding sleeve 405 on the sliding rod 404 through the fixing component 8. The user manually rotates the knob 8051, and the knob 8051 drives the screw rod 805 to rotate, so that the fixing plate 804 moves following the rotation of the screw rod 805 under the restriction of the two connecting rods 803. The moving fixing plate 804 simultaneously drives the connecting rod 803 to move, and the connecting rod 803 drives the positioning block 802 to move, so that the positioning block 802 moves out of the positioning hole 8011 to cancel the fixation of the sliding sleeve 405 and the sliding rod 404. Then, after the sliding sleeve 405 moves to the appropriate position along the sliding rod 404, the knob 8051 is rotated in the opposite direction, and the fixing plate 804 drives the connecting rod 803 and the positioning block 802 to reset, so that the positioning block 802 is reinserted into the corresponding positioning hole 8011, completing the fixation of the sliding sleeve 405. The user then activates the device through an external controller, opens the collar 406, rotates the threaded rod 503 by hand, and the threaded end of the threaded rod 503 rotates to disengage from the screw hole of the mounting groove 502. Then, under the action of the hinge, the movable rod 4061 is rotated outward, and the rotating movable rod 4061 drives the mounting plate 501 to move out of the mounting groove 502. At this time, the user enters the collar 406 from the opened opening, and the collar 406 is located at the user's crotch position. Finally, the movable rod 4061 is rotated inward, so that the mounting plate 501 is inserted into the mounting groove 502, and the threaded rod 503 is tightened to fix the mounting plate 501. Then, the touch vest 2 is put on. Since the touch vest 2 is connected to the sliding sleeve 405 by the connecting rope 4051 and the telescopic rod 4052, the touch vest 2 can move to a certain extent. When the user turns around, the telescopic rod 4052 drives the bracket 4 to move along the T-shaped slide groove 101 of the treadmill 1; When the user moves on the treadmill 1, his body will come into contact with the rubber pad 4062 on the inner wall of the ring 406, reducing the discomfort caused to the body by the edge of the ring 406. When wind is displayed in the virtual game, the external controller starts the airflow component 6, and the internal motor 603 works. The output end drives the wind wheel 602 to rotate in the wind cavity 601. The rotating wind wheel 602 drives the air flow to generate wind force, so that the external air enters the wind cavity 601 from the air inlet shield 604 and blows toward the user from the air outlet grille 605, simulating the wind resistance in the training scene. When a specific situation occurs in the physical training simulation scene, the tactile components 3 at several different positions in the tactile vest 2 work according to preset rules, and its vibrator 302 generates vibration and transmits it to the part of the body that contacts, simulating the corresponding physical training situation, thereby ensuring the immersive effect of the simulated training and improving the training effect.
[0033] Although an embodiment of the present invention has been shown and described, this specific embodiment is merely an explanation of the present invention and is not a limitation of the invention. The specific features, structures, materials or characteristics described may be combined in an appropriate manner in any one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions and variations to the embodiment without creative contribution as needed without departing from the principles and purpose of the present invention. However, as long as they are within the scope of the claims of the present invention, they are protected by patent law.
Claims
1. An artificial intelligence running device for physical training, comprising a running platform (1), characterized in that , T-shaped sliders (7) are symmetrically provided on both sides of the treadmill (1), a T-shaped slot (101) is provided on the outer wall of the treadmill (1) along the circumference, and the two T-shaped sliders (7) are slidably connected to the T-shaped slot (101), and a bracket (4) is provided on the treadmill (1), and the bracket (4) is composed of a first support rod (401), a second support rod (402) and a cross bar (403), and the two T-shaped sliders (7) are fixedly connected to the bottom outer walls of the first support rod (401) and the second support rod (402), respectively, and the cross bar (403) is fixedly connected to the bottom outer walls of the first support rod (401) and the second support rod (402), respectively. 3) is connected to a slide bar (404) below, a slide sleeve (405) is slidably mounted on the slide bar (404), the slide sleeve (405) is connected to the slide bar (404) via a fixing component (8), the slide sleeve (405) is connected to the tactile vest (2) and the ring (406) via a connecting rope (4051) and a connecting plate (4053), and a plurality of tactile components (3) are distributed on the front and back of the tactile vest (2), and the plurality of tactile components (3) are used for the user to experience a specific tactile sensation in a physical training simulation scene; The first support rod (401), the tactile vest (2), and the second support rod (402) are all located in a line; an airflow component (6) is provided inside the first support rod (401); and an air outlet of the airflow component (6) faces the front of the tactile vest (2).
2. The artificial intelligence running equipment for physical training according to claim 1, characterized in that: Several of the tactile components (3) include metal blocks (301), and several of the metal blocks (301) are bonded to the tactile vest (2). A vibrator (302) is installed on a side of the metal blocks (301) close to the human body.
3. The artificial intelligence running equipment for physical training according to claim 1, characterized in that: The airflow assembly (6) comprises an air cavity (601) provided in a first support rod (401), an inner bottom plate of the air cavity (601) being mounted with a motor (603) via bolts, an output end of the motor (603) being detachably connected to a wind wheel (602), a top end of the wind wheel (602) being rotatably connected to a top wall of the air cavity (601), a wall of the first support rod (401) close to the tactile vest (2) being provided with an air outlet grille (605), and an air inlet screen (604) being screwed onto the other wall of the first support rod (401).
4. The artificial intelligence running equipment for physical training according to claim 1, characterized in that: The two ends of the cross bar (403) are fixedly connected to the top outer walls of the first support bar (401) and the second support bar (402), respectively. The top end of the sliding bar (404) is fixedly connected to the lower surface of the cross bar (403). The connecting rope (4051) is located at the top of the outer wall of the sliding sleeve (405) and is fixedly connected thereto. The connecting plate (4053) is fixedly sleeved on the bottom outer wall of the sliding sleeve (405). The connecting rope (4051) and the connecting plate (4053) are fixedly connected to the back side of the tactile vest (2) and the outer wall of the ring (406), respectively. A telescopic rod (4052) is provided between the connecting rope (4051) and the connecting plate (4053). The telescopic rod (4052) is fixed to the outer wall of the sliding sleeve (405), and the telescopic end of the telescopic rod (4052) is bonded to the back side of the tactile vest (2) via a bonded rubber pad (4062).
5. The artificial intelligence running equipment for physical training according to claim 1, characterized in that: A first magnet (1011) is fixed to the top inner wall of the T-shaped slide (101), and a ball (701) and a second magnet (702) are respectively provided on both sides of the T-shaped ends of the two T-shaped sliders (7), and the two balls (701) are embedded in the bottom of the T-shaped slider (7), and the outer walls of the two balls (701) are rollingly connected to the bottom surface of the T-shaped slide (101), and the magnetic poles of the two second magnets (702) are opposite to those of the first magnet (1011).
6. The artificial intelligence running equipment for physical training according to claim 1, characterized in that: An arc-shaped movable rod (4061) is installed at one end of the ring (406) via a hinge. The movable rod (4061) is connected to the ring (406) via a connecting assembly (5). The width of the movable rod (4061) is the same as the width of the ring (406). Rubber pads (4062) are bonded to the inner walls of the ring (406) and the movable rod (4061). The width of the rubber pad (4062) is greater than the widths of the ring (406) and the movable rod (4061).
7. The artificial intelligence running equipment for physical training according to claim 6, characterized in that: The connecting assembly (5) comprises a mounting plate (501), one end of the mounting plate (501) is connected to the movable rod (4061), the outer wall of the other end of the ferrule (406) is provided with a mounting groove (502), and the other end of the mounting plate (501) is provided with a threaded rod (503) that matches the mounting groove (502).
8. The artificial intelligence running equipment for physical training according to claim 7, characterized in that: The mounting plate (501) is embedded in the outer wall of the movable rod (4061), and the threaded rod (503) is threadedly connected to the mounting plate (501) and the screw hole provided in the mounting groove (502).
9. The artificial intelligence running equipment for physical training according to claim 1, characterized in that: The fixing assembly (8) includes a moving groove (801), the moving groove (801) is opened on the side of the slide rod (404) close to the second support rod (402), the inner wall of the moving groove (801) is evenly opened with a plurality of positioning holes (8011), the side of the slide sleeve (405) away from the connecting rope (4051) is provided with a fixing plate (804), the center of the fixing plate (804) is penetrated by a screw rod (805), one end of the screw rod (805) is connected to the slide sleeve (405), and the fixing plate (804) is provided with a screw rod (805). ) is rotatably connected, the other end of the screw rod (805) is connected to a knob (8051), the top and bottom of the side of the fixed plate (804) away from the knob (8051) are connected to connecting rods (803), both of the two connecting rods (803) pass through the sliding sleeve (405) and extend into the movable groove (801), and the ends of the two connecting rods (803) are connected to positioning blocks (802), and the two positioning blocks (802) are plugged into the positioning holes (8011).
10. The artificial intelligence running equipment for physical training according to claim 9, characterized in that: The threaded outer wall of the screw rod (805) is threadedly connected to the portion where it contacts the fixed plate (804), the knob (8051) is fixedly connected to the screw rod (805), and the two ends of the two connecting rods (803) are fixedly connected to the fixed plate (804) and the positioning block (802), respectively. The diameter of the two positioning blocks (802) is larger than the diameter of the connecting rod (803).
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