Sports Swing Training Device
20190388761 ยท 2019-12-26
Inventors
- Peter M. Bartek (Roxbury, NJ, US)
- Debby Murphy (Bedminster, NJ, US)
- Mirek Bogdanowicz (Hillsborough, NJ, US)
- Peter JD. Bartek (Roxbury, NJ, US)
Cpc classification
A63B60/46
HUMAN NECESSITIES
A63B60/10
HUMAN NECESSITIES
A63B2220/833
HUMAN NECESSITIES
A63B2225/50
HUMAN NECESSITIES
A63B24/0003
HUMAN NECESSITIES
A63B69/3632
HUMAN NECESSITIES
A63B2071/065
HUMAN NECESSITIES
A63B2220/80
HUMAN NECESSITIES
A63B2230/105
HUMAN NECESSITIES
A63B71/0622
HUMAN NECESSITIES
International classification
Abstract
A sports swing training device is attachable to a sports striking-object, such as a golf club, tennis racket, or baseball bat, and uses multiple motion sensors, including accelerometers, gyroscopes and magnetometers, in conjunction with one or more microprocessors and device displays, to measure and display various swing metrics and to project flight patterns resulting from each swing. Swing data are displayed in graphic and/or indicia format, on the device's displays and are wirelessly transmitted to the displays of one or more external devices, such as smart phones or tablet computers. The projected flight patterns reveal flaws in the swing so as to promote corrective adjustments by the athlete.
Claims
1. A device for training an athlete to swing a sports striking object at a propelled object, the device comprising: multiple swing sensors, which are located on the device or on the sports striking object or on a sensor item worn by the athlete, wherein each of the swing sensors continuously measure one or more swing metrics and continuously transmit for each swing metric an analog or digital metric signal correlated to the swing metric measured; at least one microprocessor located in the device, wherein the microprocessor communicates with each of the swing sensors and continuously receives from each of the swing sensors the metric signals transmitted, and wherein the microprocessor analyzes and processes the metric signals to generate digital swing data which is descriptive of a swing of the sports striking object by the athlete, and wherein the microprocessor derives from the swing data indicia content and graphical content, which visually represent some or all of the swing data, and audible content, which audible represent some or all of the swing data; at least one device memory, which communicates with the microprocessor, and which receives and digitally stores the swing data generated by the microprocessor, wherein some or all of the device memory can be flash memory; one or more device displays, each of which communicates with the microprocessor, wherein each device display receives and displays the indicia content, the graphical content or both the indicia content and the graphical content of the swing data, wherein one or more of the device displays can be multi-function displays, and wherein one or more of the device displays can be remote displays that communicate wirelessly with the microprocessor; one or more device speakers, each of which communicates with the microprocessor, wherein each device speaker receives the audio content of the swing data and produces an audible output based on the audio content received; and one or more means for attaching the device to the sports striking object, or to the athlete, or to both the sports striking object and the athlete.
2. The device according to claim 1, wherein the swing sensors comprise one or more grip pressure sensors, which are located on a grip handle of the device or on a swing handle of the sports striking object, wherein the grip pressure sensors continuously measure one or more manual forces of one or more swing grips of the athlete on the grip handle or on the swing handle, and wherein the grip pressure sensors continuously transmit to the microprocessor analog or digital grip signals, from which the microprocessor continuously generates digital grip pressure data indicative of the manual forces measured by the grip pressure sensors, and wherein the indicia content, or the graphical content, or both the indicia content and the graphical content which are derived from the grip pressure data are displayed on at least one of the device displays.
3. The device according to claim 2, wherein the grip pressure sensors contain pressure sensing elements selected from the group consisting of piezo-resistive force sensors, piezo-electric force sensors, force sensitive resistors, and capacitive force sensors, and wherein the grip pressure sensors can be in the form of a flexible wraps applied to the grip handle or the swing handle.
4. The device according to claim 3, wherein the swing sensors comprise two grip pressure sensors, each of which measures the manual forces of one of two hands of the athlete on the device handle or on the swing handle.
5. The device according to claim 4, wherein the device displays comprise two grip pressure displays, and wherein each of the grip pressure display displays the indicia content derived from the grip pressure data corresponding to one of the two hands of the athlete.
6. The device according to claim 1, wherein the swing sensors further comprise at least one triaxial accelerometer or at least three orthogonal single-axis accelerometers, and wherein the accelerometers continuously measure three-dimensional components of a swing acceleration of the sports striking object and continuously transmit to the microprocessor the metric signals correlated to the swing acceleration, and wherein the microprocessor continuously derives from the three-dimensional components of the swing acceleration, as part of the swing data, three-dimensional components of a swing velocity and of a spatial position of the sports striking object over time, as well as a maximum swing velocity and a maximum swing acceleration during a specific swing of the sports striking object, and wherein the microprocessor derives from the swing data the indicia content and the graphical content that visually represent the swing acceleration, the swing velocity, the spatial position of the sports striking object over time, and a swing path of the sports striking object during each specific swing of the sports striking object, and wherein the microprocessor derives from the swing data the audible content that generates an audible speed signal when the maximum swing velocity during each specific swing of the sports striking object coincides with a contact point between the sports striking object and the propelled object.
7. The device according to claim 6, wherein at least one of the device displays depicts at least one motion graphical rendering of the graphical content representing swing velocity over time or the swing acceleration over time, or both the swing velocity over time and the swing acceleration over time, and the spatial position of the sports striking object over time during each specific swing of the sports striking object.
8. The device according to claim 6, wherein at least one of the speakers produces the audible speed signal when the maximum swing velocity coincides with the contact point between the sports striking object and the propelled object.
9. The device according to claim 8, wherein the swing sensors further comprise at least one triaxial gyroscope or at least three orthogonal single-axis gyroscopes, and wherein the gyroscopes continuously measure three-dimensional components of a swing angular velocity and continuously transmit to the microprocessor the metric signals correlated to the three-dimensional components of the swing angular velocity, and wherein the microprocessor derives from the three-dimensional components of the swing angular velocity, as part of the swing data, an angular swing orientation of the sports striking object during each specific swing of the sports striking object, and wherein the microprocessor derives from the swing data the graphical content that visually represent the angular swing orientation and the swing path of the sports striking object during each specific swing of the sports striking object.
10. The device according to claim 9, wherein at least one of the device displays depicts a swing graphical rendering of the angular swing orientation and the swing path over time during each specific swing of the sports striking object.
11. The device according to claim 10, wherein the swing sensors further comprise at least one triaxial magnetometer or at least three orthogal single-axis magnetometers, and wherein the magnetometers continuously measure angular directional orientation of the sports striking object with reference to a targeted striking plane, in the form of target offset data, and continuously transmit to the microprocessor the metric signals correlated to the target offset data, and wherein the microprocessor derives from the target offset data a target offset orientation of the sports striking object with reference to the targeted striking plane during each specific swing of the sports striking object, and wherein the microprocessor derives from the swing data the graphical content that visually represents the target offset orientation of the sports striking object during each specific swing of the sports striking object.
12. The device according to claim 11, wherein the microprocessor derives from swing data the graphical content that visually describes multiple projected flight patterns associated with multiple corresponding combinations of the swing orientation and the target offset orientation at the contact point of each specific swing of the sports striking object.
13. The device according to claim 12, wherein at least one of the device displays depicts an offset graphical rendering of the graphical contact representing the target offset orientation over time during each specific swing of the sports striking object.
14. The device according to claim 13, wherein at least one of the device displays depicts a path graphical rendering of the graphical content representing the swing path orientation at the contact point of each specific swing of the sports striking object, and wherein the path graphical rendering is depicted as either a push path, a straight path, or a pull path.
15. The device according to claim 14, wherein at least one of the device displays depicts a face graphical rendering of the graphical content representing the target offset orientation at the contact point for each specific swing of the sports striking object, and wherein the face graphical rendering is depicted as either an open-faced orientation, a square-faced orientation, or a closed-faced orientation.
16. The device according to claim 15, wherein at least one of the device displays depicts a flight path graphical rendering of the graphical content representing the projected flight pattern associated with the combination of the swing path orientation and the target offset at the contact point of each specific swing of the sports striking object, and wherein the projected flight pattern is depicted as either pull-hook, pull, pull-slice, draw, straight, fade, push-hook, push, or push-slice.
17. The device according to any one of claims 14-16, wherein the device further comprises a metronome configured to generate an audible periodic output through one of the device speakers, wherein the periodic output has an adjustable period interval which is adjusted to synchronize with a swinging motion of the sports striking object.
18. The device according to any one of claims 14-16, wherein the swing sensors further comprise at least one EEG sensor, which continuously monitors an attention level of the athlete during each specific swing of the sports striking object, wherein the EEG sensor continuously transmits an analog or digital EEG signal to the microprocessor, which analyzes and processes the EEG signal to generate attention level data, and wherein at least one of the device displays depicts attention indicia based on the attention level data.
19. The device according to claim 17, wherein the swing sensors further comprise at least one EEG sensor, which continuously monitors an attention level of the athlete during each specific swing of the sports striking object, wherein the EEG sensor continuously transmits an analog or digital EEG signal to the microprocessor, which analyzes and processes the EEG signal to generate attention level data, and wherein at least one of the device displays depicts attention indicia based on the attention level data.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0037]
[0038] The microprocessor 107 analyzes the metric signals 106 from the swing sensors 101-105 to generate digital swing data, which is descriptive of a swing of the sports striking object 10 by an athlete. The swing data is stored in a device memory 108, which in this embodiment 100 is a USB flash drive. From the swing data, the microprocessor 107 generates digital indicia content 109 and digital graphical content 110, which are transmitted to and visually displayed on one of the device's displays 112-115. From the swing data, the microprocessor also generates audible content that is audibly sounded on a device speaker 116.
[0039] In the preferred embodiment 100, the indicia content 109 comprises a pair of pressure numerals 0-9, indicative of the left- and right-hand pressure measured by the dual grip pressure sensors 101 for the left and right hands. The two grip pressure numerals are displayed on the dual grip pressure display 112, which is divided into left- and right-hand sides, as best seen in
[0040] In the preferred embodiment 100, the graphical content 110 is displayed on two multi-function LED displays 113-114. The remote multi-function display 113 is located on a remote device, such as a smart phone, with which the microprocessor communicates wirelessly, and which alternately displays a motion graphical rendering, a swing graphical rendering, and an offset graphical rendering. The motion graphical rendering is based on measurements of the three-dimensional swing acceleration of the sports striking object 10 by the triaxial accelerometer 102, and it displays swing velocity and/or swing acceleration over time, as well as the spatial position of the sports striking object 10 over time, during each specific swing of the sports striking object 10. The swing graphical rendering is based on the measurements of the three-dimensional swing angular velocity of the sports striking object 10 by the triaxial gyroscope 103, and it displays the angular swing orientation of the sports striking object 10 and the swing path 19 over time during each specific swing of the sports striking object 10. The offset graphical rendering is based on measurements of the three-dimensional angular orientation of the sports striking object 10 with reference to the targeted striking plane 13, and it displays the target offset orientation 17 over time during each specific swing of the sports striking object 10.
[0041] The onboard multi-function display 114 is located on the device itself, and it alternately displays a path graphical rendering, a face graphical rendering, and a flight pattern graphical rendering. The path graphical rendering displays the swing path orientation 20 at the contact point 18 for each specific swing of the sports striking object 10, as either a posh path 21, a straight path 22 or a pull path 23. The face graphical rendering displays the target offset orientation 17 at the contact point 18 for each specific swing of the sports striking object 10, as either an open-faced orientation 15, a square-faced orientation 14 or a closed-face orientation 16. The flight pattern graphical rendering is based on the combination of the contact swing path orientation 20 and the target offset orientation 17, as best seen in
[0042] In the preferred embodiment 100, the audible content 111 comprises a speed signal that sounds through the speaker 116 when the maximum swing velocity, based on data from the accelerometer 102, coincides with the contact point 18. The audible content 117 also comprises adjustable periodic output to the speaker 116 from a metronome 119, which facilitates timing and tempo of the swing.
[0043] Referring to
[0044] The preferred embodiment incorporates the dual grip pressure sensors 101 in the grip handle 118 of the device. The preferred grip pressure sensors 101 comprise a two-section (right and left hand), multi-layered, flexible force-sensitive resistor wrap, as depicted in
[0045] Although the preferred embodiment of the present invention has been disclosed for illustrative purposes, those skilled in the art will appreciate that many additions, modifications and substitutions are possible, without departing from the scope and spirit of the present invention as defined by the accompanying claims.