Fitness exercise system
By setting up sensing modules and control devices on anaerobic exercise equipment, real-time fitness parameters are generated and displayed. Combined with handheld devices for scanning and storage, the problem of lack of data recording in anaerobic exercise equipment is solved, and real-time fitness information display and storage are realized.
Patent Information
- Application Number
- CN202421585225.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-05-03
- Filing Date
- 2024-07-05
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-07-05
AI Technical Summary
Existing anaerobic exercise equipment lacks real-time fitness information display and storage functions, especially equipment without external power supply, which cannot provide detailed fitness data records.
By setting a sensing module on the training equipment, the movement and displacement of the counterweights or resistance elements of the training equipment are sensed, a sensing signal is generated, the control device calculates fitness parameters and generates image data, the display device displays real-time fitness information, and the handheld device stores fitness parameters by scanning coded images.
It enables real-time display and storage of fitness information from anaerobic exercise equipment, allowing users to view fitness data and record training progress at any time.
Smart Images

Figure CN223529906U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to an electronic system, and more particularly to a fitness exercise system. Background Technology
[0002] With the evolution of technology, the demand for various types of display devices for displaying images has also increased. Recently, various types of display devices have been widely used, such as liquid crystal display (LCD) devices, plasma display panel (PDP) devices, organic light-emitting display (OLED) devices, and quantum dot light-emitting display (QLED) devices.
[0003] Furthermore, in recent years, with the rise of health awareness, most people are paying more attention to fitness, and the demand for exercise has increased as a result. In addition to basic exercises, many people are engaging in more advanced fitness activities. Generally, fitness exercises are divided into aerobic and anaerobic exercise training. Aerobic exercise training can be used to improve cardiopulmonary function, while anaerobic exercise training can improve the muscle strength of fitness enthusiasts. Therefore, the corresponding fitness equipment is also divided into aerobic training machines and anaerobic training machines.
[0004] General aerobic exercise is a long-duration, low-intensity activity, such as walking, long-distance jogging, cycling, and rowing. However, most aerobic exercises are done indoors. Therefore, in the classification of aerobic exercise training equipment, for running, there are treadmills, elliptical trainers, step machines, and stair climbers. Cycling equipment includes upright exercise bikes, reclining exercise bikes, and fly bikes. Rowing equipment includes air resistance rowing machines, water resistance rowing machines, magnetic resistance rowing machines, and hydraulic piston rowing machines. Most aerobic exercise equipment requires a power supply, so it can be equipped with a large-size LCD touch screen to display data and store training information.
[0005] Anaerobic exercise, on the other hand, is physical training of sufficient intensity to induce lactic acid formation. It includes weight training, push-ups, weightlifting, squats, core strength training, pull-ups, planks, leg raises, sprints, and tug-of-war. Corresponding training equipment includes dumbbells, barbells, leg press machines, etc. for weight training; dumbbells and barbells for weightlifting; squat machines for squatting; abdominal and glute machines for core strength training; pull-up machines for pull-ups; and leg raise machines for leg raises. Most anaerobic exercise equipment is powered by mechanical mechanisms and lacks external power sources. Therefore, most do not have display devices. Even if a display is included, it is often a simple LCD screen, such as an STN LCD monitor, which only displays the number of repetitions and training time, without any recording function specific to anaerobic exercise.
[0006] To address the aforementioned issues, this invention provides a fitness system that uses a sensing module to sense the weights of a training device and generates different sensing signals for different weights. These signals are then used to display corresponding images on a display device, showing fitness information and coded images. A corresponding application is provided that can scan the coded images and store the corresponding fitness information after reading them, thus enabling real-time storage of fitness information. Utility Model Content
[0007] One objective of this invention is to provide a fitness exercise system that uses a sensing module installed on a training device to sense the weights of the training device, thereby enabling a display device to show corresponding images and display real-time updated fitness information.
[0008] One objective of this invention is to provide a fitness exercise system in which the image displayed through a display device includes an coded image, and the barcode image is mapped to a fitness parameter of the training device. Therefore, a handheld device is provided that can capture the coded image and store the fitness parameter in the handheld device in real time.
[0009] To achieve the aforementioned objectives, this utility model provides a fitness exercise system comprising a training device, a sensing module, a control device, a display device, and a handheld device. The training device includes a grip and a force-receiving module, the grip being used to move the force-receiving module. The sensing module is disposed on one side of the training device and is used to detect a displacement of the force-receiving module and generate a sensing signal. The control device is coupled to the sensing module, receives the sensing signal, and processes the signal to generate fitness parameters. Based on the fitness parameters, the control device generates image data within a default time period. The display device is coupled to the control device, receives the image data, and displays a screen image based on the image data. The screen image includes an coded image, the barcode image mapping the fitness parameters. The handheld device includes a processing unit, a storage element, and an image capturing element. The processing unit drives the image capturing element to capture the coded image, and the processing unit reads and stores the fitness parameters in the storage element based on the coded image. This allows the fitness system to provide real-time updated fitness information, such as set fitness functions and weights, display of exercise counts, exercise time, calories, and can store fitness information in a handheld device in real time.
[0010] This utility model provides an embodiment in which the training device further includes a base frame and a pulley mechanism. The pulley mechanism is disposed on the base frame and includes at least one pulley. The force-bearing module includes a counterweight and a rope. The rope is sleeved on the at least one pulley. One end of the rope is connected to the counterweight via the at least one pulley, and the other end of the rope is connected to the gripper so that the gripper can move the counterweight.
[0011] This utility model provides an embodiment in which the force-receiving module includes a counterweight and a rope. The force-receiving module is provided with a sensing element corresponding to the sensing module. The sensing element corresponds to a weight of the counterweight and is sleeved on the rope and adjacent to the counterweight.
[0012] This utility model provides an embodiment in which the force-receiving module includes a counterweight and a rope. The force-receiving module is provided with a sensing element corresponding to the sensing module. The sensing element corresponds to a weight of the counterweight and is disposed on one side of the counterweight.
[0013] This utility model provides an embodiment in which the training device further includes a base frame and a pulley mechanism. The pulley mechanism is disposed on the base frame and includes at least one pulley. The force-receiving module includes a resistance element and a rope. The rope is sleeved on the at least one pulley. One end of the rope is connected to the resistance element via the at least one pulley, and the other end of the rope is connected to the gripping member so that the gripping member can drive the resistance element.
[0014] This utility model provides an embodiment in which the force-receiving module includes a resistance element and a rope. The force-receiving module is provided with a sensing element corresponding to the sensing module. The sensing element corresponds to a weight of the resistance element. The sensing element is sleeved on the rope and adjacent to the resistance element.
[0015] This utility model provides an embodiment in which the sensing module is an infrared sensing module, a magnetic sensing module, or a switch sensing module.
[0016] This utility model provides an embodiment in which the control device includes a first control transmission module and a second control transmission module. The first control transmission module includes a first communication element and a first microprocessor unit. The second control transmission module includes a second communication element and a second microprocessor unit. The first communication element is coupled to the sensing module, and the first microprocessor unit is coupled to the first communication element. The second communication element is coupled to the display device and communicatively connected to the first communication element. The second microprocessor unit is coupled to the second communication element. The first microprocessor unit reads the sensing signal from the sensing module via the first communication element and performs calculations on the sensing signal. The second microprocessor unit receives the fitness parameters generated by the first microprocessor unit via the first and second communication elements. The second microprocessor unit calculates the fitness parameters and generates the corresponding image data. The second microprocessor unit transmits the image data to the display device via the second communication element, so as to drive the display device to display the image data according to the image data. The interval between the first microprocessor unit generating the fitness parameters and the display device displaying the image data according to the image data is within the default time. That is, the calculation, data transmission and display of the image data by the first and second microprocessor units can be completed in real time.
[0017] This utility model provides an embodiment in which the first communication element and the second communication element transmit data via a Serial Peripheral Interface (SPI), a standard RS485 interface, a Universal Asynchronous Receiver / Transmitter (UART) interface, or an I2C (Inter-Integrated Circuit) interface.
[0018] This utility model provides an embodiment in which the second control transmission module transmits the image data to the display device via an 8-bit bus, a 16-bit bus, or a 32-bit bus.
[0019] This utility model provides an embodiment in which the display device includes a driving circuit and a display panel. The driving circuit is coupled to the control device and the display panel. The driving circuit receives the image data and generates a corresponding driving signal to the display panel to drive the display panel to display the image.
[0020] This utility model provides an embodiment in which the fitness parameters include a force applied weight value, a number of exercise times value, an exercise time value, and a calorie value. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of a fitness exercise system according to an embodiment of the present invention.
[0022] Figure 2A This is a schematic diagram of the structure of a training device according to an embodiment of the present invention;
[0023] Figure 2B This is another structural schematic diagram of the training device according to an embodiment of the present invention;
[0024] Figure 3 This is a schematic diagram illustrating the control device generating image data and transmitting it to a display device according to an embodiment of the present invention.
[0025] Figure 4 This is a schematic diagram of a handheld device capturing images according to an embodiment of the present invention.
[0026] Figure 5 This is a schematic diagram of the structure of a training device according to an embodiment of the present invention;
[0027] Figure 6A This is a schematic diagram of a fitness exercise system according to another embodiment of the present invention.
[0028] Figure 6B This is a schematic diagram of a control device according to another embodiment of the present invention;
[0029] Figure 7A This is a schematic diagram of the structure of a training device according to another embodiment of the present invention;
[0030] Figure 7B This is another structural schematic diagram of the training device according to another embodiment of the present invention;
[0031] Figure 8 This is a schematic diagram illustrating the control device generating image data and transmitting it to a display device, according to another embodiment of the present invention; and
[0032] Figure 9 This is a schematic diagram of the structure of a training device according to another embodiment of the present invention.
[0033] [Figure Number Reference Guide]
[0034] 10 Display devices
[0035] 110 Fitness System
[0036] 12 training devices
[0037] 12A Training Device
[0038] 122 gripper
[0039] 124 force-bearing modules
[0040] 1242 counterweight
[0041] 1244 bundles of rope
[0042] 1246 sensing element
[0043] 125 load-bearing module
[0044] 1252 Resistance Component
[0045] 1254 bundles of rope
[0046] 1256 sensor element
[0047] 126 base frames
[0048] 128 pulley mechanism
[0049] 1282 pulley
[0050] 128A pulley mechanism
[0051] 1282A First Pulley
[0052] 1284A Second Pulley
[0053] 14 sensing modules
[0054] 142 sensors
[0055] 144 Readout Circuit
[0056] 16 control devices
[0057] 162 processing units
[0058] 18 display devices
[0059] 182 control circuit
[0060] 184 driver circuit
[0061] 1842 drive signal
[0062] 186 display panel
[0063] 20 handheld devices
[0064] 202 Computational Processing Unit
[0065] 204 storage element
[0066] 206 image capturing elements
[0067] 208 Touch Display Panel
[0068] 2082 Alignment Marker Area
[0069] 2084 Information Display Area
[0070] 2086 Save Button
[0071] 26 control devices
[0072] 262 First Control Transmission Module
[0073] 2622 First Communication Element
[0074] 2624 First Microprocessor Unit
[0075] 264 Second Control Transmission Module
[0076] 2642 Second Communication Element
[0077] 2644 Second Microprocessor Unit
[0078] APP application
[0079] BUS bus
[0080] D displacement
[0081] F-image
[0082] F1 encoded image
[0083] F2 Information Imagery
[0084] IMG image data
[0085] P Fitness Parameters
[0086] SEN sensing signal Detailed Implementation
[0087] To provide a better understanding of the structural features and effects achieved by this utility model, preferred embodiments and detailed descriptions are provided below:
[0088] Certain terms are used in the specification and claims to refer to specific elements. However, those skilled in the art will understand that the same element may be referred to by different names. Furthermore, the specification and claims do not distinguish elements by differences in name, but rather by differences in the overall technical aspects of the elements. The term "comprising" throughout the specification and claims is an open-ended term and should be interpreted as "comprising but not limited to." Moreover, the term "coupled" here includes any direct and indirect means of connection. Therefore, if a first device is described as coupled to a second device, it means that the first device can be directly connected to the second device, or can be indirectly connected to the second device through other devices or other means of connection.
[0089] In view of the problem that existing anaerobic exercise training equipment cannot provide and store fitness information in real time, this utility model proposes a fitness exercise system. The system uses a sensing module to detect the displacement of a force-bearing module of a training device and generates a sensing signal to a control device to generate fitness parameters and corresponding image data. The image data is then provided to a display device, which can display a screen image of the fitness parameters in real time. The screen image includes an coded image, which can be captured by a handheld device and used to store the fitness parameters in real time, thereby updating and storing fitness information in real time.
[0090] In the following description, the present invention will be illustrated with reference to various embodiments of the invention. However, the concept of the present invention may be embodied in many different forms and should not be construed as limited to the exemplary embodiments set forth herein.
[0091] First, please refer to Figure 1The figure shows a schematic diagram of a fitness exercise system according to an embodiment of the present invention. As shown in the figure, the fitness exercise system 10 of this embodiment includes a training device 12, a sensing module 14, a control device 16, a display device 18, and a handheld device 20. The training device 12 includes a grip 122 and a force receiving module 124. The grip 122 is used to move the force receiving module 124. A sensing module 14 is disposed on one side of the training device 12. The sensing module 14 is used to detect a displacement D of the force receiving module 124 (as shown in Figure 2) and generate a sensing signal SEN. A control device 16 is coupled to the sensing module 14. The control device 16 receives the sensing signal SEN and calculates the sensing signal SEN to generate a fitness parameter P. The control device 16 generates an image data IMG based on the fitness parameter P. A display device 18 is coupled to the control device 16. Therefore, the display device 18 can receive the image data IMG from the control device 16 and display a screen image F based on the image data IMG. The screen image F includes an encoded image F1, which corresponds to the fitness parameter P.
[0092] Based on the fitness parameter P corresponding to the coded image F1, the user of the training device 12 can use a handheld device 20 to capture the coded image F1 and read the corresponding fitness parameter P. The handheld device 20 includes a processing unit 202, a storage element 204, and an image capturing element 206. The processing unit 202 drives the image capturing element 206 to capture the coded image F1, and the processing unit 202 reads and stores the fitness parameter P in the storage element 204 according to the coded image F1. Further details are as follows:
[0093] like Figure 2A As shown, this embodiment uses a pulley system as an example of the training device 12. The training device 12 further includes a base frame 126 and a pulley mechanism 128. The pulley mechanism 128 includes at least one pulley 1282. The force-bearing module 124 includes a counterweight 1242 and a rope 1244. The rope 1244 is sleeved on at least one pulley 1282. One end of the rope 1244 is connected to the counterweight 1242 via the at least one pulley 1282, and the other end of the rope 1244 is connected to a gripper 122 so that the gripper 122 can move the counterweight 1242. In this embodiment, the pulley mechanism 128 is designed with a single pulley so that the user pulls the gripper 122, which in turn pulls the rope 1244, thereby causing the counterweight 1242 to move by a displacement D.
[0094] Following the above, the sensing module 14 includes a sensor 142 and a readout circuit 144. The sensor 142 is disposed on one side of the base 126. In this embodiment, the sensor 142 is used to sense a sensing element 1246 of the force module 124. The sensing element 1246 is sleeved on the rope 1244 and is close to and adjacent to the counterweight 1242. The sensing module 14 is an infrared sensing module, a magnetic sensing module, or a switch sensing module; that is, the sensor 142 is an infrared sensor, a magnetic sensor, or a switch sensor, and the sensing element 1246 corresponds to an infrared reflective element, a magnetic body, or a protrusion. Specifically, when the sensor 142 is a switch sensor, the sensing element 1246 is a protrusion, and the force module 124 is sensed by moving or pressing the sensor 142. Furthermore, as... Figure 2B As shown above, in which, Figure 2A and Figure 2B The difference lies in Figure 2B The sensing element 1246 is changed to be set on one side of the counterweight 1242. It can also be sensed by the sensor 142 to detect the displacement D generated by the counterweight 1242. The rest will not be described in detail.
[0095] Please refer to further information. Figure 3 This is a schematic diagram illustrating the generation and transmission of image data to a display device by a control device according to an embodiment of the present invention. As shown, the control device 16 in this embodiment refers to a typical embedded device. Therefore, a processing unit 162 within the control device 16 possesses basic logic operation capabilities to receive the sensing signal SEN from the sensing module 14, perform calculations on the sensing signal SEN to obtain fitness parameters P, and further generate corresponding image data IMG based on the fitness parameters P. Data transmission between the control device 16 and the display device 18 is performed via a bus, specifically an 8-bit bus, a 16-bit bus, or a 32-bit bus, thereby transmitting the image data IMG to the display device 18.
[0096] Following the above, the display device 18 includes a control circuit 182, a driving circuit 184, and a display panel 186. After receiving image data IMG, the control circuit 182 controls the driving circuit 184 to drive the display panel 186 to display the corresponding image F. Furthermore, the control circuit 182 controls the driving circuit 184 to generate a corresponding driving signal 1842 based on the image data IMG, and transmits it to the display panel 186, thus driving the display panel 184 to display the image F through the driving signal 1842. Since the image data IMG received from the control circuit 182 is displayed on the display panel 186 within a default time, such as 0.5 to 1.5 seconds, this utility model can display the image F corresponding to the fitness parameter P in real time through the display device 18. The fitness parameter P includes a force applied weight value, a number of repetitions value, a exercise time value, and a calorie value. Therefore, the image F also displays the force applied weight value, the number of repetitions value, the exercise time value, and the calorie value. For example, the force applied is 10 kg, the number of repetitions is 10, the calorie value (i.e., calories) is 1000, and the exercise time is 10 minutes.
[0097] like Figure 4 As shown, the handheld device 20 further includes a touch display panel 208. The handheld device 20 executes an application APP via the processing unit 202, thereby driving the image capturing element 206 to capture the screen image F. Since the screen image F includes an encoded image F1, in addition to the encoded image F1, the screen image F also includes an information image F2, that is, the image data IMG corresponds to the fitness parameter P. Therefore, the encoded image F1 and the information image F2 correspond to the fitness parameter P. In this embodiment, the encoded image F1 is illustrated by a QR code. Thus, when the user operates through the touch display panel 208, the handheld device 20 can control the image capturing element 208 to capture the encoded image F1 and transmit it to the processing unit 202. The processing unit 202 will then read the fitness parameter P based on the encoded image F1 and store the fitness parameter P in the storage element 204. In this embodiment, the storage element 204 is a solid-state drive (SSD) or flash memory. RAM or Electronically Erasable Read-Only Memory (EEPROM). Thus, this invention can store fitness parameters P in real time via a handheld device 20.
[0098] In addition, such as Figure 4As shown, the touch display panel 208 displays an alignment mark area 2082, a data display area 2084, and a save button 2086. When the handheld device 20 aligns the image capture element 206 with the coded image F2, the alignment mark area 2082 will align with the coded image F1. Thus, the touch display panel 208 displays the information image F2 in the data display area 2084, allowing the user to save the fitness parameter P corresponding to the information image F2 by touching the save button 2086.
[0099] Please see Figure 5 This is a schematic diagram of a training device according to another embodiment of the present invention. Figure 2 is consistent with... Figure 5 The difference lies in the fact that the force-bearing module 124 in Figure 2 includes a counterweight 1242 and a rope 1254. Figure 5 The force-receiving module 125 includes a resistance element 1252 and a rope 1254, as detailed below. The training device 12 of this invention may include this force-receiving module 125, that is, replacing the counterweight 1242 and rope 1244 with the resistance element 1252 and rope 1254. The rest is the same as the training device 12 in the previous embodiment and will not be repeated. In another embodiment of this invention, the resistance element 1252 and rope 1254 provide resistance training, wherein the rope 1254 is an elastic rope design, for example, suspension training. In other words, this invention can provide resistance training in addition to weight training. Furthermore, in one embodiment of the present invention, by setting the resistance element 1252 to different applied force weights, the rope 1254 with different applied force intensities is provided to stretch the rope 1254. Therefore, the sensor 142 detects the sensing element 1256 on the rope 1254 to sense the number of movements and the displacement D. At this time, the displacement D is the length of the rope 1254 that has been stretched.
[0100] The control device 16 in the above embodiment is an integrated device. Alternatively, it can be a separate design, as detailed below.
[0101] Please refer to the following: Figure 6A and Figure 6B This is a system schematic diagram of a fitness exercise system according to another embodiment of the present invention. Figure 1 and Figures 6A to 6B The difference lies in Figure 1 The control device 16 is an integrated device. Figures 6A to 6BThe control device 26 includes a first control transmission module 262 and a second control transmission module 264, as shown in the figure. The first control transmission module 262 includes a first communication element 2622 and a first microprocessor unit 2624. The second control transmission module 264 includes a second communication element 2642 and a second microprocessor unit 2644. The first communication element 2642 is coupled to the sensing module 14. The first microprocessor unit 2624 is coupled to the first communication element 2622. The second communication element 2642 is coupled to the display device 18 and is communicatively connected to the first communication element 2622. The second microprocessor unit 2644 is coupled to the second communication element 2642. Unit 2624 reads the sensing signal SEN from sensing module 14 via first communication element 2622. First microprocessor unit 2622 calculates the sensing signal SEN and generates corresponding fitness parameters P. Second microprocessor unit 2644 receives the fitness parameters P generated by first microprocessor unit 2624 via first communication element 2622 and second communication element 2642. Second microprocessor unit 2644 calculates the fitness parameters P and generates corresponding image data IMG. Second microprocessor unit 2644 transmits the image data IMG to display device 18 via second communication element 2642 to drive display device 18 to display screen image F based on image data IMG. Similarly, the calculation and data transmission of first microprocessor unit 2624 and second microprocessor unit 2644 of control device 26 and the display of screen image F by display device 18 are completed within a default time, for example, 0.5 to 1.5 seconds, which is equivalent to real-time display of screen image F.
[0102] Furthermore, the first communication element 2622 and the second communication element 2642 transmit data wirelessly or via wired transmission, for example, via a Serial Peripheral Interface (SPI), a standard RS485 interface, a Universal Asynchronous Receiver / Transmitter (UART) interface, or an I2C (Inter-Integrated Circuit) interface.
[0103] Please see Figure 7A This is a schematic diagram of a training device according to another embodiment of the present invention. As shown in the figure, compared with the training device 12 in Figure 2, the pulley mechanism 128A of this embodiment includes a first pulley 1282A and a second pulley 1284A, so that the rope 1244 of the force-receiving module 124 is sleeved on the first pulley 1282A and the second pulley 1284A. The first pulley 1282A is slidably mounted on the base frame 126. Therefore, the user can adjust the height of the first pulley 1282A according to the usage requirements, thereby achieving anaerobic training for different training needs. In addition, as Figure 7BAs shown above, in which, Figure 7A and Figure 7B The difference lies in Figure 7B The sensing element 1246 is changed to be set on one side of the counterweight 1242. It can also be sensed by the sensor 142 to detect the displacement D generated by the counterweight 1242. The rest will not be described in detail.
[0104] like Figure 8 As shown, in this embodiment, the second control transmission module 264 of the control device 26 transmits image data IMG to the display device 18 via an 8-bit bus, a 16-bit bus, or a 32-bit bus. That is, the second control transmission module 264 is connected to the display device 18 via a bus. The control circuit 182 of the display device 18 is connected to the second communication element 2642 of the second control transmission module 264 via an 8-bit bus, a 16-bit bus, or a 32-bit bus. Therefore, the second microprocessor unit 2644 of the second control transmission module 264 transmits the image data IMG to the control circuit 182 via the second communication element 2642. The control circuit 182 then controls the drive circuit 184 to drive the display panel 186 to display the image F based on the image data IMG.
[0105] Similarly, this embodiment can also be implemented as follows. Figure 4 As shown, the image F includes an encoded image F1 and an information image F2. Therefore, the user can execute the application APP through the processing unit 202 of the handheld device 20, and control the application APP to drive the image capturing element 206 to capture the encoded image F1 through the touch display panel 208. Thus, the fitness parameters P are read based on the encoded image F1 and stored in the storage element 204 of the handheld device 20. In this way, the present invention can display the information image F2 of the fitness parameters in real time through the display device 18, and can also store the fitness parameters P in real time through the handheld device 20.
[0106] Please see Figure 9 This is a schematic diagram of a training device according to another embodiment of the present invention. Figure 7 is... Figure 9 The difference is equivalent to that in Figure 2 and Figure 5 The difference is that the rope 1254 is also connected to the grip 122 via the first pulley 1282A. The rest is the same as the training device 12A in the previous embodiment and will not be described again. The movement method is also the same. Figure 5 As described in the embodiments, it provides resistance to stretch the rope 1254 by providing different applied force weights. Therefore, the training device 12A can provide resistance training in addition to weight training.
[0107] The microprocessor unit 162, the first microprocessor unit 2624, and the second microprocessor unit 2644 described above are microcontroller units, microprocessors, system-on-a-chip (SoC), or field-programmable gate arrays (FPGAs). The handheld device 20 described above is a smartphone or a tablet computer. The image capturing element 206 described above uses a charge-coupled device (CCD) or a complementary metal-oxide-semiconductor (CMOS) device. The arithmetic processing unit 202 can be equivalent to the circuit design of microprocessor unit 162, the first microprocessor unit 2624, and the second microprocessor unit 2644, and can also be a central processing unit (CPU).
[0108] In summary, this invention is a fitness exercise system comprising a training device, a sensing module, a control device, a display device, and a handheld device. The sensing module is located on one side of the training device to sense a force-bearing module within the training device and generate a corresponding sensing signal to the control device. The control device then generates fitness parameters based on the sensing signal and generates image data based on these fitness parameters, which is transmitted to the display device. The display device displays an image based on the image data, and this image includes an coded image. Therefore, the handheld device can use a processing unit to drive an image capturing element to capture the coded image, thereby reading the corresponding fitness parameters and storing them in the handheld device. Thus, this invention can both display fitness parameter information in real-time via the display device and store fitness parameters in real-time via the handheld device.
[0109] The order of the steps in the above embodiments does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.
[0110] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the scope of the present utility model. All equivalent variations and modifications made in accordance with the shape, structure, features and spirit described in the claims of the present utility model should be included in the scope of the claims of the present utility model.
Claims
1. A fitness exercise system, characterized in that, It includes: A training device comprising a grip and a force-receiving module, the grip being used to move the force-receiving module; A sensing module is disposed on one side of the training device and is used to detect a displacement corresponding to the force module and generate a sensing signal. A control device coupled to the sensing module receives the sensing signal and generates image data within a default time period; A display device, coupled to the control device, receives the image data and displays an encoded image; and A handheld device includes a processing unit, a storage element and an image capturing element. The processing unit drives the image capturing element to capture the encoded image, and the processing unit reads and stores a fitness parameter into the storage element.
2. The fitness exercise system as described in claim 1, characterized in that, The training device further includes a base frame and a pulley mechanism. The pulley mechanism is mounted on the base frame and includes at least one pulley. The force-bearing module includes a counterweight and a rope. The rope is sleeved on the at least one pulley. One end of the rope is connected to the counterweight via the at least one pulley, and the other end of the rope is connected to the gripping member so that the gripping member can move the counterweight.
3. The fitness exercise system as described in claim 1, characterized in that, The force-bearing module includes a counterweight and a rope. The force-bearing module is equipped with a sensing element corresponding to the sensing module. The sensing element corresponds to a weight of the counterweight and is sleeved on the rope and adjacent to the counterweight.
4. The fitness exercise system as described in claim 1, characterized in that, The force-bearing module includes a counterweight and a rope. The force-bearing module is equipped with a sensing element corresponding to the sensing module. The sensing element corresponds to a weight of the counterweight and is located on one side of the counterweight.
5. The fitness exercise system as described in claim 1, characterized in that, The training device further includes a base frame and a pulley mechanism. The pulley mechanism is mounted on the base frame and includes at least one pulley. The force-bearing module includes a resistance element and a rope. The rope is sleeved on the at least one pulley. One end of the rope is connected to the resistance element via the at least one pulley, and the other end of the rope is connected to the gripping member so that the gripping member can drive the resistance element.
6. The fitness exercise system as described in claim 1, characterized in that, The force-receiving module includes a resistance element and a rope. The force-receiving module is provided with a sensing element corresponding to the sensing module. The sensing element corresponds to a weight of the resistance element and is sleeved on the rope and adjacent to the resistance element.
7. The fitness exercise system as described in claim 1, characterized in that, The sensing module can be an infrared sensing module, a magnetic sensing module, or a switch sensing module.
8. The fitness exercise system as described in claim 1, characterized in that, The control device includes: A first control transmission module, comprising: A first communication element coupled to the sensing module; and A first microprocessor unit is coupled to the first communication element. The first microprocessor unit reads the sensing signal of the sensing module through the first communication element. The first microprocessor unit is used to calculate the sensing signal and generate the fitness parameters accordingly. A second control transmission module, comprising: A second communication element is coupled to the display device and communicatively connected to the first communication element; as well as A second microprocessor unit is coupled to the second communication element. The second microprocessor unit receives the fitness parameters generated by the first microprocessor unit via the first communication element and the second communication element. The second microprocessor unit calculates the fitness parameters and generates the corresponding image data. The second microprocessor unit transmits the image data to the display device via the second communication element to drive the display device to display the image data. The interval between the first microprocessor unit generating the fitness parameters and the display device displaying the image data is within the default time.
9. The fitness exercise system as described in claim 8, characterized in that, The first communication element and the second communication element transmit data via a serial peripheral interface, a standard 485 interface, a universal asynchronous transceiver interface, or an I2C interface.
10. The fitness exercise system as described in claim 8, characterized in that, The control device and the display device transmit the image data to the display device via an 8-bit bus, a 16-bit bus, or a 32-bit bus.
11. The fitness exercise system as described in claim 1, characterized in that, The display device includes a driving circuit and a display panel. The driving circuit is coupled to the control device and the display panel. The driving circuit receives the image data and generates a corresponding driving signal to the display panel to drive the display panel to display the image.
12. The fitness exercise system as described in claim 1, characterized in that, The fitness parameters include a force applied weight value, a number of repetitions value, an exercise time value, and a calorie value.