AUTOMATED TURF TESTING APPARATUS AND SYSTEM FOR USING SAME
20220039747 · 2022-02-10
Assignee
Inventors
- Jeff Crandall (Charlottesville, VA, US)
- Richard Kent (Keswick, VA, US)
- Edward Meade Spratley (Charlottesville, VA, US)
- Jared Yoder (Aroda, VA, US)
- Thomas Cisneros (Petaluma, CA, US)
- Philipe Aldahir (Chattanooga, TN, US)
- Jeff Lipari (Petaluma, CA, US)
Cpc classification
G01N3/00
PHYSICS
G06T7/521
PHYSICS
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/103
HUMAN NECESSITIES
G01N3/00
PHYSICS
Abstract
A mobile apparatus that is automated to measure controlled and applied forces and moments to sport surfaces allowing for performance and safety assessment of athletic apparel and athletic surfaces, such as natural or artificial turf. The apparatus is capable of using not only shear and compressive forces, but also rotational moments, and all prescribed forces and moments in combination at the same or different times. The apparatus and related system can link these forces and moments together and combine them to more closely mimic behaviors of a human foot during an athletic movement, thereby applying and measuring interactions between all forces and moments at the same or different times.
Claims
1. An apparatus configured to apply static or dynamic kinetics or kinematics at one or more prescribed levels or rates, wherein the apparatus mimics or substantially mimics a behavior or a motion of a human foot, other human body part, or a piece of athletic equipment during an athletic movement, wherein applying and measuring interactions between the apparatus and an athletic playing surface at a same or different time or times allows for a performance and/or safety evaluation of athletic apparel, the athletic playing surface, or both.
2. The apparatus of claim 1, further comprising a user interface capable of generating or presenting data, data analysis, or data interpretation.
3. The apparatus of claim 1, further comprising one or more processors, wherein the one or more processors are located remotely from the apparatus.
4. The apparatus of claim 3, wherein the one or more processors communicates with a remote electronic device.
5. The apparatus of claim 1, further comprising an appendage that interfaces with the athletic playing surface, wherein the appendage comprises one or more sensors.
6. The apparatus of claim 5, wherein the apparatus collects data from the appendage engaging with the athletic playing surface, and wherein the apparatus, a user of the apparatus, one or more processors, or a computer analyzing data from the apparatus, measures or evaluates appendage/athletic playing surface dynamics based on data from a prescribed interaction.
7. The apparatus of claim 5, further comprising an end effector attached to a kinematic and kinetic actuation mechanism via a multi-axis load cell capable of measuring the kinetics of the end effector.
8. The apparatus of claim 5, further comprising one or more rotational sensors and one or more translational displacement sensors, wherein one or more processors is capable of recording data from the one or more rotational sensors and the one or more translational displacement sensors.
9. The apparatus of claim 8, wherein the one or more processors in conjunction with the one or more rotational sensors or the one or more translational displacement sensors can detect a linear and angular position and velocity of the appendage.
10. The apparatus of claim 5, wherein accelerations of the appendage are measured to characterize an interaction of the athletic apparel and/or the athletic equipment with the athletic playing surface.
11. The apparatus of claim 5, wherein accelerations of the appendage are measured to characterize inertial effects of the apparatus during use.
12. The apparatus of claim 1, further comprising one or more cameras providing computer-aided visual inspection of the athletic playing surface.
13. The apparatus of claim 12, further comprising one or more cameras providing computer-aided visual inspection of the athletic playing surface before, during, or after the apparatus applies and measures the interactions between the prescribed forces.
14. The apparatus of claim 12, wherein the visual inspection uses machine learning visual recognition technologies and/or data synchronization.
15. The apparatus of claim 1, further comprising one or more sensors capable of measuring impact characteristics, including one or more of energy absorption and rebound/return, peak deceleration, time to reach peak deceleration, vertical displacement, or combinations thereof, through measurement of acceleration of a mass or mass-spring system dropped onto the athletic playing surface.
16. The apparatus of claim 15, further comprising one or more additional sensors capable of measuring surface hardness.
17. The apparatus of claim 1, further comprising one or more depth measurement mechanisms or sensors.
18. The apparatus of claim 1, further comprising one or more sensors capable of assessing surface stability using surface shear resistance and/or a connected shear vane.
19. The apparatus of claim 1, further comprising one or more sensors capable of detecting surface moisture levels.
20. The apparatus of claim 1, further comprising one or more sensors capable of measuring environmental factors, including one or more of air temperature, ground temperature, surface temperature, air humidity, or combinations thereof.
21. The apparatus of claim 1, further comprising one or more sensors capable of measuring or evaluating the evenness and consistency the athletic playing surface.
22. The apparatus of claim 1, further comprising one or more processors, wherein the one or more processors are capable of providing scoring or rankings of the athletic apparel, the athletic equipment, or the athletic playing surface.
23. The apparatus of claim 1, wherein the apparatus is capable of providing one or more of the following capabilities: (a) compile test results and display them through a user interface; (b) compare test results against hard-coded or server-based scientifically determined baseline data to score test results against; (c) compile and analyze test results with other test result streams and display to a user; (d) retrieve historical results from tests and compare with baseline hard-coded data or compare the retrieved historical results with new test data; (e) evaluate and score geographical consistency of a surface by registering more than one test with location using Global Positioning System and analyzing test results from multiple locations using correlation, coefficient of variation, standard error, standard deviation, or combinations thereof to assess variability; (f) score or rank the athletic apparel or the athletic equipment by analyzing a mechanical response of different athletic apparel or different athletic equipment; (g) flag or recommend localized intervention if the athletic playing surface does not meet performance and safety criteria; (h) collect, register, synchronize, retrieve, and/or analyze metadata related to the athletic apparel, the athletic equipment, or the athletic playing surface; and/or (i) display a video of a test against test results.
24. A system comprising an appendage comprising an instrumented and adjustable foot-form, wherein the foot-form is capable of being shod with different footwear and attached to an end effector, wherein the foot form instrumentation comprises one or more rotational sensors, one or more translational accelerative sensors, one or more translational displacement sensors, or combinations thereof, wherein the system measures kinetic and kinematic behaviors or motions, and wherein the measurement or measurements of the kinetic and kinematic behaviors or motions allows for a safety and/or performance evaluation of athletic footwear, an athletic playing surface, or both.
25. The system of claim 24, wherein the foot-form can be shod with a plurality of different types of footwear without requiring modifications to the footwear, the appendage, or the foot-form.
26. The system of claim 24, wherein the foot-form is instrumented with one or more load cells capable of measuring forces and moments.
27. The system of claim 24, wherein the foot-form is capable of articulation of one or more joints allowing for a static or dynamic foot pose while the system is being used.
28. The system of claim 24, wherein the foot-form adjustability allows for static or dynamic control of an angle of a first portion of the foot form relative to a second portion of the foot form.
29. The system of claim 24, wherein the foot-form adjustability allows for static or dynamic control of the foot-form angle or position, including roll, pitch, and yaw, relative to the athletic playing surface.
30. The system of claim 26, wherein the system is capable of controlled articulation using kinetic and kinematic inputs.
31. The system of claim 24, wherein the one or more rotational sensors, the one or more translational accelerative sensors, the one or more translational displacement sensors, or the combinations thereof, measure linear or angular displacement, velocity, and acceleration.
32. The system of claim 24, wherein the one or more rotational sensors, the one or more translational accelerative sensors, the one or more translational displacement sensors, or the combinations thereof, measure forces and moments.
33. The system of claim 24, wherein the foot-form is capable of being adjusted to adjust its length and width, volume, internal pressure, and/or other mechanisms, rendering the foot-form capable of accommodating multiple different sizes and multiple different shapes of footwear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The accompanying drawings illustrate certain aspects of embodiments of the present invention and should not be used to limit the invention. Together with the written description the drawings explain certain principles of the invention.
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DETAILED DESCRIPTION OF INVENTION
[0048] Reference will now be made in detail to various exemplary embodiments of the invention. It is to be understood that the following discussion of exemplary embodiments is not intended as a limitation on the invention. Rather, the following discussion is provided to give the reader a more detailed understanding of certain aspects and features of the invention.
[0049] The present invention can be described in terms of, for example, a foot-form assembly that is preloaded into the ground or turf sample via a tunable vertical load actuator. The apparatus and associated system can impose a controlled constant or variable shear and compressive forces and/or rotational moment on the foot-form assembly while collecting motion profile data on the cleat/shoe as it engages and releases from the surface. In addition to measurement of the displacements associated with applied forces, the system is also capable of logging the minimum required force required to achieve such release from a specific surface. The force and motion profile between a shoe and surface a shoe or cleat motion relative to the surface matters because on one hand, there is a minimum traction requirement to allow athletes to execute their tasks. On the other hand, too much traction can expose an athlete's foot, leg, or other body part to an injurious scenario. The invention disclosed herein objects to objectively quantify such mechanical interaction between the cleat and the surface.
[0050] This data, along with existing tests results (which will be automated, in aspects), will all be recorded and saved, in aspects. This data can be used to identify the differences in quality of playing surfaces, for example, natural and synthetic turf, and the quality of athletic apparel and equipment, In addition to data collected during the shoe-surface interaction test, characteristics of the shoe, equipment, or surface used for the test can be saved and linked with the test data.
[0051] The current invention allows for closed-loop control, wherein the system is capable of monitoring force or moment being applied and controlling the force or moment in order to, in aspects, maintain a constantly applied force or moment in a controlled and constant manner. However, in aspects, the apparatus does not necessarily need to provide force or torque in a constant manner and situations may arise where force or moment will not be applied in such a manner; rather the applied force or moment will be variable and/or adjustable. In aspects, the system measures impedance, such that it applies a displacement or velocity and measures forces/moments, for example. The system may also apply and measure admittance, therein applying a force/moment and measuring displacement or velocity; thus, the system may be configured to apply a particular force/torque to measure the impact on, for example, an athletic shoe, a human body or body part, and/or natural or synthetic turf.
[0052] In some instances, the system will use prior data knowing what forces or torques typically, usually, or sometimes cause injury to maintain input force/torque applied by the apparatus to determine displacement or movement of a shoe, in aspects, for a given shoe-to-surface combination(s). In embodiments, this may result in a rating or ranking of a shoe and/or surface; in aspects, it can be a pass/fail test, meaning a determination is made whether an athlete can use a particular shoe or not based on the pertinent performance and safety test results. Also, based on test results with a given cleat, shoe or generic representation of a shoe-surface interface, the system can verify condition and maintenance of a field, e.g., within tolerances.
[0053] In aspects, the current invention tests mechanical interactions between the cleat- or shoe-to-surface interface using a translation test and a rotation test, and force and motion data are recorded via data acquisition, and therefore the system can record accurate and repeatable results. In aspects, the apparatus is configured to collect on-field displacement, velocity, force and torque data, record impact hardness, measure infill (turf), analyze surface stability (grass), read surface moisture content, perform visual inspection (e.g., via camera or drone), and/or upload or download data manually or automatically.
[0054] In aspects, the apparatus processes and displays data tailored for a certain target audience. In aspects, there might be some “hard-coded” data with data analysis built in locally, remotely, or on a server. In another example, the analysis may be performed online via analysis of metadata stored in a server.
[0055] The system is capable of objectively scoring surfaces and footwear, and evaluating geographical compliance of a surface with a standard or protocol (using, for example, GPS to evaluate an entire field area or a portion of a field area and recommending localized intervention/maintenance).
[0056] Turning to the figures, in
[0057] In
[0058] For system architectural embodiments, shown in
[0059] In further aspects of the invention, the apparatus can be configured to include some or all the mentioned elements such as line marking, magnetic FOD detection, infill sweeping, testing infill for bacteria agents, automatic data uploading to server, automated all user processes, fully autonomous system, and/or drone assist full field inspection from above.
[0060] As shown in
[0061] Design schematics comprise several other Figures.
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[0063] In other embodiments of the invention, files comprising the set of computer-executable instructions may be stored in computer-readable memory on a single computer or distributed across multiple computers or involve a network of remote servers hosted on the internet. In aspects, local, edge, or remote computing possibilities are used to store, manage, and process data. A skilled artisan will further appreciate, in light of this disclosure, how the invention can be implemented, in addition to software, using hardware or firmware. As such, as used herein, the operations of the invention can be implemented in a system comprising a combination of software, hardware, or firmware.
[0064] Embodiments of this disclosure include one or more computers or devices loaded with a set of the computer-executable instructions described herein. The computers or devices may be a general-purpose computer, a special-purpose computer, or other programmable data processing apparatus to produce a particular machine, such that the one or more computers or devices are instructed and configured to carry out the calculations, processes, steps, operations, algorithms, statistical methods, formulas, or computational routines of this disclosure. The computer or device performing the specified calculations, processes, steps, operations, algorithms, statistical methods, formulas, or computational routines of this disclosure may comprise at least one processing element such as a central processing unit (i.e., processor) and a form of computer-readable memory which may include random-access memory (RAM) or read-only memory (ROM). The computer-executable instructions can be embedded in computer hardware or stored in the computer-readable memory such that the computer or device may be directed to perform one or more of the calculations, steps, processes, and operations depicted and/or described herein.
[0065] Additional embodiments of this disclosure comprise a computer system for carrying out the computer-implemented method of this disclosure. The computer system may comprise a processor for executing the computer-executable instructions, one or more electronic databases containing the data or information described herein, an input/output interface or user interface, and a set of instructions (e.g., software) for carrying out the method. The computer system can include a stand-alone computer, such as a desktop computer, a portable computer, such as a tablet, laptop, PDA, or smartphone, or a set of computers connected through a network including a client-server configuration and one or more database servers. The network may use any suitable network protocol, including IP, UDP, or ICMP, and may be any suitable wired or wireless network including any local area network, wide area network, Internet network, telecommunications network, Wi-Fi enabled network, or Bluetooth enabled network. In one embodiment, the computer system comprises a central computer connected to the internet that has the computer-executable instructions stored in memory that is operably connected to an internal electronic database. The central computer may perform the computer-implemented method based on input and commands received from remote computers through the internet. The central computer may effectively serve as a server and the remote computers may serve as client computers such that the server-client relationship is established, and the client computers issue queries or receive output from the server over a network.
[0066] The input/output interfaces may include a graphical user interface (GUI) which may be used in conjunction with the computer-executable code and electronic databases. The graphical user interface may allow a user to perform these tasks through the use of text fields, check boxes, pull-downs, command buttons, and the like. A skilled artisan will appreciate how such graphical features may be implemented for performing the tasks of this disclosure. The user interface may optionally be accessible through a computer connected to the internet. In one embodiment, the user interface is accessible by typing in an internet address through an industry standard web browser and logging into a web page. The user interface may then be operated through a remote computer (client computer) accessing the web page and transmitting queries or receiving output from a server through a network connection.
[0067] The present invention has been described with reference to particular embodiments having various features. In light of the disclosure provided above, it will be apparent to those skilled in the art that various modifications and variations can be made in the practice of the present invention without departing from the scope or spirit of the invention. One skilled in the art will recognize that the disclosed features may be used singularly, in any combination, or omitted based on the requirements and specifications of a given application or design. When an embodiment refers to “comprising” certain features, it is to be understood that the embodiments can alternatively “consist of” or “consist essentially of” any one or more of the features. Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention.
[0068] It is noted that where a range of values is provided in this specification, each value between the upper and lower limits of that range is also specifically disclosed. The upper and lower limits of these smaller ranges may independently be included or excluded in the range as well. The singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise. It is intended that the specification and examples be considered as exemplary in nature and that variations that do not depart from the essence of the invention fall within the scope of the invention. Further, all of the references cited in this disclosure are each individually incorporated by reference herein in their entireties and as such are intended to provide an efficient way of supplementing the enabling disclosure of this invention as well as provide background detailing the level of ordinary skill in the art.