1. Field of the Invention
The present invention relates to a torque adjustment and measurement system and, more particularly, to a torque adjustment and measurement system applied to fitness equipment for adjusting torque and accurately measuring torque value.
2. Description of the Related Art
To provide torque setting at different torque levels based on physical condition or stage of physical training of users, conventional fitness equipment, such as exercise bikes, includes a torque measurement device in addition to a torque adjustment device connected to a torque-applying device exerting force on a torque generation mechanism thereof The torque measurement device is electrically connected to an existing controller in the fitness equipment for users to adjust the magnitude of a torsional drag force exerted by the torque-applying device on the torque generation mechanism. The torque measurement device measures the torsional drag force after the adjustment and the controller displays the value of the adjusted torsional drag force.
However, the torque adjustment device, the torque measurement device and the controller in the conventional fitness equipment are independently developed mechanisms with their own dedicated functionalities. The consequence of such independent development leads to the difficulty of setting torque level and accurately measuring adjusted torque value when users are operating the conventional fitness equipment.
An objective of the present invention is to provide a torque adjustment and measurement system resolving the infeasibility of an integrated system for torque adjustment and accurate torque measurement.
To achieve the foregoing objective, the torque adjustment and measurement system has a torque adjustment device, a torque measurement device and a torque calculation device.
The torque adjustment device is adapted to connect with a torque-applying device and adjust a torque exerted by the torque-applying device on a torque generation mechanism.
The torque measurement device measures a variation in displacement or in rotation angle of the torque-applying device.
The torque calculation device has a controller and a display.
The controller is electrically connected to the torque measurement device, and converts the variation in displacement or rotation angle of the torque-applying device provided by the torque measurement device into a corresponding torque value.
The display is electrically connected to the controller, and displays the torque value.
Given the foregoing toque adjustment and measurement system, the torque adjustment and measurement system is indeed a combination of the torque adjustment device, the torque measurement device and the torque calculation device. The torque adjustment device serves to alter a torsional drag force exerted by the torque-applying device on a torque generation mechanism. The torque measurement device serves to measure a variation of the torque-applying device in displacement or in rotational angle. The torque calculation device serves to accurately convert the variation in displacement or in rotational angle provided by the torque measurement device into a torque value. The information output unit then outputs the torque value to users. In view of a systematic integration of the torque adjustment device, the torque measurement device and the torque calculation device allows the torque adjustment and measurement system to be applied to the field of fitness equipment for users to adjust torque setting of fitness equipment and precisely measure and acquire the torque value.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
Each embodiment of the torque adjustment and measurement system in accordance with the present invention includes a torque adjustment device 40, a torque measurement device 50 and a torque calculation device 60.
With reference to
With reference to
When being an electrically-driven mechanism, the torque adjustment device 40 has an electric motor, a stud and a movable piece. A spindle of the electric motor is connected with the stud. The movable piece is mounted on the rocking piece 32 of the torque-applying device 30. The stud is mounted through the movable piece and is screwed therein. When the electric motor drives the stud to rotate and move in a forward or reverse direction, the stud pushes the movable piece to rotate the rocking piece 32 with respect to the rotation axis of the rotation shaft 33, such that the torsional drag force exerted on the wheel 21 by the driving block 34 can be adjusted.
The torque measurement device 50 may pertain to a displacement measurement mechanism or a rotation angle measurement mechanism. The torque measurement device 50 is connected with the rocking piece 32 having the driving block 34 mounted thereon, and serves to measure a displacement variation or an angular variation of the rocking piece 32.
The torque calculation device 60 has a controller and an information output unit. The controller is electrically connected to the torque measurement device 50. In the present embodiment, the information output unit is a display. The torque calculation device 60 converts the displacement variation or the angular variation of the rocking piece 32 provided by the torque measurement device 50 into a corresponding torque value, and outputs the torque value through the information output unit. The torque calculation device 60 can reset the torque value to zero and issue an alarm when the torque value is greater than a threshold value.
When pertaining to a displacement measurement mechanism, the torque measurement device 50 may be a contact-type sensing element, such as a variable resistance sensor, or a contactless sensing element, such as a magnetic sensor.
When the torque measurement device 50 is a variable resistance sensor, the variable resistance sensor is connected with the frame 10 and is mounted between the rocking piece 32 and the movable piece 43, and is electrically connected to the controller of the torque calculation device 60. The variable resistance sensor generates a resistance variation corresponding to a positional variation of the movable piece 43 on the rocking piece 323 relative to the frame 10 or the fixture 31. The controller of the torque calculation device 60 calculates a torque value corresponding to a voltage variation across a variable resistor of the variable resistance sensor corresponding to the resistance variation, and displays the torque value through a display.
When pertaining to a contactless sensing element, the torque measurement device 50 includes a master sensing element and a slave sensing element. One of the master sensing element and the slave sensing element is selectively mounted on a fixed portion of the torque-applying device 30, and the other of the master sensing element and the slave sensing element is mounted on a movable portion of the torque-applying device 30, such as the movable piece 43, capable of being adjusted by the torque adjustment device 40. The master sensing element faces but does not contact the slave sensing element. The master sensing element is electrically connected to the controller of the torque calculation device 60, and contactlessly senses a variation of a relative distance between the master sensing element and the slave sensing element to generate a corresponding signal.
With further reference to
With further reference to
The driven rotation element 53A has a first driven gear 54 securely mounted around the rotation shaft 33 of the torque-applying device 30 and driven by the rotation shaft 33 to be rotatable along with the rocking piece 32 and the rotation shaft 33. The angle measurement element 53B has a variable resistor 55 and a second driven gear 56. The variable resistor 55 is mounted on the outer periphery of the torque-applying device 30, and is electrically connected to the external torque calculation device 60. The variable resistor 55 has a rotary shaft 551. A resistance value of the variable resistor 55 varies with a rotational angle of the rotary shaft 551. The second driven gear 56 is securely mounted around an end portion of the rotary shaft 551, engages the first driven gear 54, and is preferably less than the first driven gear 54 in diameter. In the present embodiment, a gear ratio of the first driven gear to the second driven gear is 2:1.
With reference to
With reference to
When the torque adjustment device 40 drives the rocking piece 32 of the torque-applying device 30 to rotate with respect to the rotation shaft 33, the driving block 34 on the rocking piece 32 exerts force on the wheel 21 and the permanent magnet 57 on the rotation shaft 33 is also rotated, such that the rotation sensing IC 58 can sense a variation of the magnetic field according to a variation of the rotational angle of the permanent magnet 57. The controller of the torque calculation device 60 converts a signal generated from the variation of the magnetic field sensed by the rotation sensing IC 58 into a corresponding torque value and displays the torque value on the display.
With reference to
When the torque adjustment device 40 drives the rocking piece 32 of the torque-applying device 30 to rotate with respect to the rotation shaft 33, the driving block 34 on the rocking piece 32 exerts force on the wheel 21 and the permanent magnet ring 59 on the rotation shaft 33 is also rotated along with the rocking piece 32, such that the rotation sensing IC 58 can sense the magnetic field varying with the rotational angle of the permanent magnet ring 59 to generate a signal. The torque calculation device 60 further converts the signal generated according to a variation of the magnetic field sensed by the rotation sensing IC 58 into a corresponding torque value, and displays the torque value on the display thereof
Given a combination of the torque adjustment device 40, the torque measurement device 50 and the torque calculation device 60 in the present invention, the torque adjustment device 40 adjusts a torque exerted by the torque-applying device on the wheel, the torque measurement device 50 measures a variation in displacement or rotation angle of the torque-applying device, and the torque calculation device 60 further precisely converts a signal generated according to a variation of the displacement or rotation angle measured by the torque measurement device 50 into a torque value and provides the torque value to users through the information output unit.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only. Changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.