Realistic sloping simulation device for fitness equipment
11771949 · 2023-10-03
Inventors
Cpc classification
A63B2071/0638
HUMAN NECESSITIES
A63B2071/0644
HUMAN NECESSITIES
A63B22/0605
HUMAN NECESSITIES
A63B22/0046
HUMAN NECESSITIES
International classification
A63B22/06
HUMAN NECESSITIES
Abstract
A realistic sloping simulation device for a fitness equipment is disclosed, generally including a fixed base, a host tube, a support frame, and a driving unit. The host tube has a first end coupled to the fixed base. The support frame has a lower end slidably coupled to the fixed base and an upper end pivoted to the host tube between the first end and the second end. The driving unit is disposed between the host tube and the support frame or between the host tube and the fixed base. The fixed base, the host tube, and the support frame jointly form a linkage mechanism. By means of the driving unit driving the lower end of the support frame to move relative to the fixed base or the host tube, the second end of the host tube is caused to swing or rotate so as to simulate different slopes.
Claims
1. A realistic sloping simulation device for a fitness equipment, comprising: a fixed base; a host tube having a first end and a second end, the first end being coupled to the fixed base; a support frame having a lower end slidably coupled to the fixed base and an upper end pivoted to the host tube at a site disposed at a distance X from the second end of the host tube and a distance Y from the first end of the host tube, wherein the distance Y exceeds the distance X, and wherein the distance X>0; and a driving unit disposed between the first end of the host tube and the lower end of the support frame, wherein the driving unit drives the lower end of the support frame to move along a sliding direction defined by the fixed base to cause the second end of the host tube to swing about the first end of the host tube; and a pedaling module mounted directly to the host tube.
2. The realistic sloping simulation device as claimed in claim 1, wherein the driving unit comprises an actuator provided with a fixed end and a free end, the fixed end being connected to the first end of the host tube, the free end being connected to the lower end of the support frame.
3. The realistic sloping simulation device as claimed in claim 1, wherein the driving unit comprises one of a linear stepping motor, a pneumatic cylinder, and a hydraulic cylinder.
4. A realistic sloping simulation device for a fitness equipment, comprising: a fixed base; a host tube having a first end and a second end, the first end being coupled to the fixed base; a support frame having a lower end slidably coupled to the fixed base and an upper end pivoted to the host tube between the first end and the second end; and a driving unit disposed between the first end of the host tube and the lower end of the support frame or between the lower end of the support frame and the fixed base, wherein the driving unit drives the lower end of the support frame to move along a sliding direction defined by the fixed base so as to cause the second end of the host tube to swing about the first end of the host tube, a pedaling module, a top tube, a seat, and a handlebar, the pedaling module being mounted directly to the host tube, the top tube being mounted to the second end of the host tube, the seat and the handlebar being mounted to two opposite ends of the top tube, wherein the pedaling module comprises a pedal, a flywheel, and a resistance generation device, the pedal being operable to rotate the flywheel, wherein the resistance generation device generates and applies a resisting force against the rotation of the flywheel, and a control module, the control module including a main controller, an actuator control unit, a memory unit, a data transmission unit, and a resistance control unit, wherein the actuator control unit and the resistance control unit are electrically connected with the main controller, wherein the actuator control unit activates or de-activates the driving unit, wherein the resistance control unit controls the resistance generation device to generate and apply the resisting force against the flywheel, wherein the memory unit and the data transmission unit are electrically connected with the main controller, and the data transmission unit is connected, in a wired manner or a wireless manner, to an external electronic device to receive a training program transmitted from the external electronic device, wherein the memory unit functions to store the training program, and wherein the main controller controls operations of the actuator control unit and the resistance control unit in a wired manner or a wireless manner, according to the training program.
5. The realistic sloping simulation device as claimed in claim 4, wherein the driving unit comprises a motor and a transmission member, the motor being mounted to the fixed base, the transmission member being coupled to the motor, one end of the support frame being coupled to the transmission member, the motor driving the transmission member to drive one end of the support frame to move relative to the fixed base.
6. The realistic sloping simulation device as claimed in claim 5, wherein the transmission member is selected as at least one of the following: a screw rod, a toothed rack, a toothed wheel, and a metallic transmission belt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) The present invention provides a realistic sloping simulation device for a fitness equipment. Before a description is provided for embodiments of the present invention, it is noted that in the following description, similar components/parts are designated with similar reference signs. Further, the drawings provided for the present invention are just for illustration in a schematic way and are not drawn to scale, and the drawings may not show all the details. Further, the following description is provided with an indoor pedaling exercycle as an example for illustration; however, the present invention is not limited thereto, and the present invention is applicable to all fitness equipment that require variation of sloping or variation of inclination angle.
(11) Referring first to
(12) The host tube 3 has a first end 31 and a second end 32. The first end 31 is pivoted to the fixed base 2, such that the second end 32 of the host tube 3 is rotatable about a center defined by the first end 31 as being driven. The support frame 4 has a lower end that is slidably coupled to the fixed base 2. For example, the lower end of the support frame 4 includes an arc or curved end surface, while the fixed base 2 is formed with a guide groove (not shown) corresponding to the arc or curved end surface, so that the lower end of the support frame 4 is coupled, through sliding engagement achieved with the arc or curved end surface, to the guide groove of the fixed base 2, and thus, the lower end of the support frame 4 is guided by the guide groove to do a motion of linear displacement or movement. The support frame 4 has an upper end that is pivoted to a supporting point Z between the first end 31 and the second end 32 of the host tube 3.
(13) In the instant embodiment, the driving unit 5 is an actuator, and has a fixed end 51 and a free end 52, wherein the fixed end 51 is connected to the host tube 3 and the free end 52 is connected to the lower end of the support frame 4. When the driving unit 5 drives the lower end of the support frame 4 to move in a sliding direction defined by the fixed base 2 (which corresponds to a moving direction of the free end 52 of the driving unit 5), the second end 32 of the host tube 3 swings or rotates about the rotation center defined by the first end 31, so as to simulate variation of sloping.
(14) In the instant embodiment, a distance Y between the site where the support frame 4 is pivoted to the host tube 3 and the first end 31 of the host tube 3 is greater than a distance X between said site and the second end 32 of the host tube 3. The driving unit 5 is arranged at a location adjacent to the fixed base 2, meaning the free end 52 of the driving unit 5 is relatively close to the first end 31 of the host tube 3. As such, based on the theory of cantilever, a small force may change a relatively heavy loading weight. Thus, the quality of the indoor bicycle trainer or exercycle can be improved and the cost saved. Taking
F1*X=F2*Y; Formula
Loading weight F1=60 kg;
Distance X=1;
Distance Y=3; The driving unit 5 provides a force F2=60*1/3=20 kg.
(15) During a riding operation of the exercycle, in addition to the human body weight, the work (watt) performed by the human body is the true purpose of exercise training: P=NW*ωθ, where ω is angular velocity.
(16) The instant embodiment is described by taking an indoor exercycle as an example, so that the instant embodiment includes a pedaling module 7, which comprises a pedal 70, a flywheel 71, and a resistance generation device 72. The pedal 70 is operable to drive the flywheel 71 to rotate, and the resistance generation device 72 functions to generate and apply a resisting force against the rotation of the flywheel 71. Further, a top tube 6 is mounted to the second end 32 of the host tube 3 and has two opposite ends that are respectively provided with a seat 61 and a handlebar 62. It is noted that in the instant embodiment, the connection of the top tube 6 to the host tube 3 is not made perpendicular and is rather set at a specific angle, wherein the top tube 6, the host tube 3, and the fixed base 2 jointly form a Z-shape, so as to comply with a triangular arrangement between a top tube and a host tube of a regular bicycle, making it meet ergonomics for a rider to thereby achieve, altogether, an effect of virtual reality for exercise.
(17) Referring to
(18) The following provides a description to a control module 8 of the instant embodiment, reference being also had to
(19) The actuator control unit 82 functions to activate or de-activate the driving unit 5. The resistance control unit 83 functions to control the resistance generation device 72 to generate and apply a resisting force to the flywheel 71. The data transmission unit 85 is connected, in a wired manner or a wireless manner, to an external electronic device OD, in order to receive a training program TP transmitted from the external electronic device OD. The memory unit 84 stores the training program TP. The main controller 81 controls, in a wired manner or wireless manner, operations of the actuator control unit 82 and the resistance control unit 83 according to the training program TP.
(20) The operation of the instant embodiment will be provided below. Firstly, a user may edit or modify the training program TP by himself, or may download a training program TP provided by another person through a network. The training program TP can be parameters related to an actual route of riding (such as a mountainous road), including road length, slope, and even road surface condition. Next, the user uses the external electronic device OD to transmit the training program TP to the control module 8, so that the main controller 81 may first stores the training program TP in the memory unit 84. Further, when the user starts to operate the fitness equipment of the instant embodiment and load in the training program TP for beginning pedaling, the main controller 81 follows the related parameters provided in the training program TP to synchronously control the resistance generation device 72 and the actuator control unit 82, meaning simulating variation of sloping and pedaling resistance corresponding thereto according to the mileage that the rider has ridden corresponding to the actual road.
(21) Referring to
(22) Referring to
(23) Referring jointly to
(24) Taking the configuration shown in
(25) In the configuration shown in
(26) The embodiments described above use an actuator as the driving unit 5, which is disposed between the support frame 4 and the host tube 3, but the present invention is not limited thereto. The driving unit 5 may be alternatively disposed between the fixed base 2 and the host tube 3. Referring to
(27) The driving unit 5 of the present invention is not limited to what described above with reference the embodiments provided herein. Any driving means, or device or mechanism, that can be disposed between the fixed base 2 and the support frame 4 or between the support frame 4 and the host tube to drive one end of the support frame 4 to linear reciprocal movement relative to the fixed base 2 or the host tube 3 is applicable in the present invention.
(28) The embodiments discussed above are provided only for easy illustration. The scope of protection for the present invention should be determined according to the attached claims and should not be limited to such embodiments.