Assembled sports floor and site data monitoring system

By employing a wavy wire and support column structure in the assembled sports floor, the problem of sensor wire breakage was solved, enabling stable use of the floor and real-time data monitoring.

CN224092904UActive Publication Date: 2026-04-07HAO KANG TI YU FA ZHAN (ZHE JIANG) YOU XIAN GONG SI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

The wires of sensors in assembled sports flooring are prone to breakage during repeated elastic deformation, leading to sensor failure.

Method used

The transverse and longitudinal conductors are arranged in a wavy pattern, combined with a support column and tray structure, to support the sensor and allow the conductors to stretch when deformed, reducing the risk of breakage. Wireless transmission and wireless charging technologies are also employed.

Benefits of technology

This effectively reduces the occurrence of wire breakage, ensures the normal use of the floor, and enables real-time pressure monitoring and accurate data transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an assembled sports floor and a sports field data monitoring system, the assembled sports floor comprises a floor body and a monitoring plate arranged below the floor body, a plurality of pressure sensors are embedded in the monitoring plate, the pressure sensors are arranged in a rectangular array, and the monitoring plate is connected with the floor body. Every two left-right adjacent pressure sensors are connected through a transverse wire, every two adjacent rows of pressure sensors are connected through a longitudinal wire arranged between the two pressure sensors at the ends, and the transverse wires and / or the longitudinal wires are / is in a wave shape. According to the utility model, the pressure sensor is arranged in the floor, so that the pressure can be monitored, and further big data monitoring can be carried out after collection. The transverse wires and the longitudinal wires are arranged in a wavy line mode, when the floor deforms due to stress, the wires can stretch and deform within a certain range, the situation that connecting wires are broken can be effectively reduced, normal use of the floor is guaranteed, and damage is avoided.
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Description

Technical Field

[0001] This utility model relates to an assembled sports floor and a sports field data monitoring system. Background Technology

[0002] With the rapid development of the Internet of Things and smart fitness equipment, the functional requirements of interlocking sports flooring, as the infrastructure of sports venues, are gradually evolving from traditional load-bearing and decorative functions to intelligent features. Various interlocking sports flooring manufacturers are attempting to integrate sensor technology into the flooring to achieve real-time collection and analysis of usage data, such as pressure distribution monitoring. This data can provide support for optimizing commercial spaces and managing energy in sports venues.

[0003] Due to their structural characteristics, interlocking sports flooring inevitably undergoes elastic deformation when subjected to foot pressure or external forces during installation. Furthermore, considering the need for drainage, drainage holes are required, which undoubtedly increases the degree of deformation. If conventional wire connection methods are used after installing relevant sensors, the wires are prone to breakage and sensor failure under repeated elastic deformation. Utility Model Content

[0004] The technical problem to be solved by this utility model is to provide an assembled sports floor and a sports field data monitoring system, which solves the problem that the internal cables of the floor are prone to breakage in the prior art.

[0005] The technical solution adopted in this utility model is:

[0006] An interlocking sports floor includes a floor body and a monitoring plate disposed below the floor body. The monitoring plate has embedded a plurality of pressure sensors arranged in a rectangular array. Two adjacent pressure sensors are connected by a horizontal wire, and two adjacent rows of pressure sensors are connected by a vertical wire disposed between two pressure sensors at the ends. The horizontal wire and / or the vertical wire is wavy.

[0007] Furthermore, several support columns are installed below the monitoring panel.

[0008] Furthermore, a support plate is installed inside the monitoring plate and below the pressure sensor, with a corresponding support column below each support plate.

[0009] Furthermore, the support column has an inverted T-shaped structure.

[0010] Furthermore, the number of trays corresponds to the number of pressure sensors.

[0011] Furthermore, a storage module and a communication module are also installed inside the monitoring board.

[0012] Furthermore, through holes are made in the floor body and the monitoring plate.

[0013] A sports field data monitoring system includes the aforementioned modular sports flooring.

[0014] Furthermore, it also includes a processor and a display, with the pressure sensor connected to the storage module, and the storage module transmitting data to the processor via a communication module.

[0015] Furthermore, it also includes a timing module connected to the processor.

[0016] The positive effects of this utility model are:

[0017] This invention incorporates a pressure sensor inside the flooring to monitor pressure and collect data for further big data analysis. The horizontal and vertical conductors are arranged in a wavy pattern, allowing them to elongate within a certain range when the flooring deforms under stress. This effectively reduces the risk of breakage, ensuring the flooring functions normally and without damage. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of this utility model;

[0019] Figure 2 This is a wiring diagram of the pressure sensors of this utility model;

[0020] Figure 3 This is a schematic diagram of the sleeve of this utility model;

[0021] Figure 4 This is a schematic diagram of the system of this utility model. Detailed Implementation

[0022] Example 1

[0023] As attached Figure 1-3 As shown, this embodiment discloses an assembled sports floor, including a floor body 1 and a monitoring plate 3 disposed below the floor body 1. The monitoring plate 3 can be made of the same material as the floor body 1. The monitoring plate 3 has embedded a plurality of pressure sensors 4 arranged in a rectangular pattern. In this embodiment, the pressure sensors 4 are arranged in a 3x3 structure. In each row of pressure sensors 4, two adjacent pressure sensors 4 are connected by a horizontal wire 7, and adjacent rows are connected by a vertical wire 8 disposed between two pressure sensors 4 at their ends. The horizontal wire 7 and / or the vertical wire 8 are wavy. When the floor is subjected to vertical force and dents during use or torsional force and deforms during installation, the horizontal wire 7 and the vertical wire 8 can achieve tensile deformation to a certain extent, preventing breakage.

[0024] Several support columns 6 are provided below the monitoring plate 3. Pressure sensors 4 are installed inside the monitoring plate 3. The monitoring plate 3 is also equipped with a storage module and a communication module, which are used to collect the pressure sensors on the floor and then transmit them through the communication module. In this embodiment, wireless transmission can be used for data transmission. Connection contacts connected to the pressure sensors are provided on the left and right side walls of the monitoring plate 3 to realize the circuit connection between two adjacent floor panels.

[0025] Preferably, a support plate 5 is provided inside the monitoring plate 3 and below the pressure sensor 4. Each pressure sensor 4 is correspondingly set on a support plate 5. The support plate 5 is located on the bottom surface of the monitoring plate 3. A support column 6 is provided below each support plate 5. The support column is in the shape of an inverted T.

[0026] The support column 6 and the support plate 5 support the pressure sensor 4, preventing it from moving downwards under pressure and affecting data accuracy. Corresponding through holes are provided on the floor body 1 and the monitoring plate 3 to facilitate drainage, quickly expelling water from the floor surface. Additionally, clips 2 are provided on the side wall of the base plate 1 for connecting adjacent floor bodies 1.

[0027] In this embodiment, several floorboards are interconnected and electrically connected via connection contacts on both sides of the monitoring plate 3, allowing for power supply from a unified power source. Waterproof structures can be incorporated at the connection contacts; for example, one connection contact 10 protrudes from the side wall of the reinforcing plate 3, while the other connection contact 10 is housed within a sleeve 11. When two floorboards are connected, the protruding connection contact on one side of one floorboard inserts into the sleeve 11 of the other floorboard, achieving contact between the two connection points and simultaneously providing waterproofing. Alternatively, a ring groove can be provided on one side of the monitoring plate 3 outside the connection contact 10, with the sleeve 11 directly engaging with the groove. Alternatively, a piezoelectric ceramic power generation unit can be installed on each floorboard, or a coil can be placed beneath the floorboard to achieve wireless charging.

[0028] Example 2

[0029] As attached Figure 4 As shown, this utility model also discloses a sports field data monitoring system, including several modular sports floors laid in the field, a processor connected to a communication module inside the modular sports floor, and a display connected to the processor for displaying data.

[0030] In practical use, each pressure sensor can be assigned an independent code, and each floorboard can also be assigned an independent code with its own planar coordinates. After being uploaded to the processor via the communication module, the pressure-bearing position can be mapped according to the floorboard code and the processor code, thereby generating a heat map of the usage location.

[0031] This embodiment can monitor pressure, generate a heat map of the usage location, and monitor some sports based on pressure, such as long jump. The distance can be calculated from the coordinates of the pressure sensors when the pressure signal disappears and reappears, thus determining the long jump distance. A timing module can also be equipped. Examples of its use cases are as follows: 1. It can time a run over a certain distance (e.g., 100 meters). Timing starts when the pressure signal on the first pressure sensor 4 disappears and stops when the pressure signal reappears on the last floor, thus obtaining the running time over that distance. Since the position of each pressure sensor is fixed, its distance is also fixed, allowing for the calculation of running speed, suitable for recreational use. 2. High jump monitoring: The height is calculated by monitoring the time interval between the disappearance and reappearance of the pressure signal on the same floor. Although this method has minor errors (such as changes in body posture), the results are sufficient for amateur or simple training needs. It can also be applied to other sports such as table tennis and badminton, analyzing the frequency of athletes' foot movements through pressure monitoring and statistically analyzing high-frequency usage areas; it can be used in gymnastics and judo to monitor landing impact force in real time and can also be used for sports injury rehabilitation; it can monitor the pressure distribution of patients when walking or training to assess rehabilitation progress; it can be used in gym strength training to provide real-time feedback on foot pressure during squats, jumps, and other movements to help adjust force exertion patterns; and it can be used in children's physical training to adjust exercise intensity for young children through data feedback to avoid overloading.

[0032] The above application scenarios are merely simple examples of functions implemented based on pressure monitoring. Those skilled in the art can implement other application scenarios based on pressure data. Furthermore, the processor algorithms in these scenarios are relatively simple, all based on pressure data applications, which are existing technologies for those skilled in the art, and their specific algorithms will not be elaborated upon.

[0033] The above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. A type of modular sports flooring, characterized in that... It includes a floor body (1) and a monitoring plate (3) disposed below the floor body (1). The monitoring plate (3) is provided with a number of pressure sensors (4). The pressure sensors (4) are arranged in a rectangular array. Two adjacent pressure sensors (4) are connected by a horizontal wire (7). Two adjacent rows of pressure sensors (4) are connected by a vertical wire (8) disposed between two pressure sensors (4) at the ends. The horizontal wire (7) and / or the vertical wire (8) are wavy.

2. The modular sports flooring according to claim 1, characterized in that... Several support columns (6) are set below the monitoring plate (3).

3. The modular sports flooring according to claim 1, characterized in that... Inside the monitoring plate (3), and below the pressure sensor (4), a support plate (5) is provided, and a support column (6) is provided below each support plate (5).

4. The modular sports flooring according to claim 3, characterized in that... The support column (6) has an inverted T-shaped structure.

5. The modular sports flooring according to claim 3, characterized in that... The number of trays (5) corresponds to the number of pressure sensors (4).

6. The modular sports flooring according to claim 2, characterized in that... The monitoring board (3) also contains a storage module and a communication module.

7. The modular sports flooring according to claim 2, characterized in that... Through holes (9) are made on the floor body (1) and the monitoring plate (3).

8. A sports field data monitoring system, characterized in that... Including the modular sports flooring as described in any one of claims 1-7.

9. A sports field data monitoring system according to claim 8, characterized in that... It also includes a processor and a display. The pressure sensor (4) is connected to the storage module, and the storage module transmits data to the processor through the communication module.

10. A sports field data monitoring system according to claim 8, characterized in that... It also includes a timing module connected to the processor.