CONCUSSION SENSING HELMET AND METHODS
20220279887 ยท 2022-09-08
Inventors
Cpc classification
A61B5/0022
HUMAN NECESSITIES
A61B5/6803
HUMAN NECESSITIES
G08B7/06
PHYSICS
A61B2560/0242
HUMAN NECESSITIES
A61B5/0205
HUMAN NECESSITIES
A61B2562/0219
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/0205
HUMAN NECESSITIES
Abstract
Concussion sensing helmet and methods of use including at least one accelerometer, at least one force sensor, at least one indicator, and a processor configured to receive and process accelerometer input from the at least one accelerometer and force sensor input from the at least one force sensor, and to instruct the at least one indicator to signal a concussion condition when the accelerometer input and the force sensor input are consistent with an impact sufficient to cause a concussion.
Claims
1. A concussion sensing helmet, comprising: at least one accelerometer; at least one force sensor; at least one indicator; and a processor configured to receive and process accelerometer input from the at least one accelerometer and force sensor input from the at least one force sensor, and to instruct the at least one indicator to signal a concussion condition when the accelerometer input and the force sensor input are consistent with an impact sufficient to cause a concussion.
2. The concussion sensing helmet of claim 1, wherein the accelerometer comprises a triple axis accelerometer.
3. The concussion sensing helmet of claim 1, wherein the force sensor comprises at least one member selected from the group consisting of a strain gauge transducer, a thick film transducer, a thin film transducer, a semiconductor strain gauge transducer, a mechanical deflection sensor, a piezoelectric pressure sensor, a variable capacitance pressure instrument, and a piston-based sensor.
4. The concussion sensing helmet of claim 1, wherein the processor comprises a microcontroller board.
5. The concussion sensing helmet of claim 1, further comprising a wireless communication device, wherein the wireless communication device receives input from the processor.
6. The concussion sensing helmet of claim 5, wherein the wireless communication device comprises ground, VCC, RX, and TX pins.
7. The concussion sensing helmet of claim 5, wherein the wireless communication device is configured to transmit data to a terminal comprising a monitor configured to display information based on the data received from the wireless communication device.
8. The concussion sensing helmet of claim 7, wherein the terminal comprises a mobile electronic device.
9. The concussion sensing helmet of claim 1, wherein the indicator comprises at least one member selected from the group consisting of a buzzer, a speaker, a light-emitting diode (LED) light, a liquid crystal (LCD) display, an electroluminescent (ELD) display, a plasma (PDP) display, a quantum dot (QLED) display, and a segment display.
10. The concussion sensing helmet of claim 1, wherein the at least one indicator signals the concussion condition by at least one of an audio signal and a visual signal.
11. The concussion sensing helmet of claim 1, wherein the processor is configured to instruct the at least one indicator to signal the concussion condition when at least one of the following is true: (a) the accelerometer input indicates acceleration in excess of a maximum level of acceleration in at least one direction; (b) the force sensor input indicates force in excess of a maximum level of force; and (c) the accelerometer input indicates a stop distance below a minimum distance.
12. The concussion sensing helmet of claim 11, wherein the processor is configured to instruct the at least one indicator to signal the concussion condition when at least one of the following is true: (a) the accelerometer input indicates acceleration in excess of a hypersensitive level of acceleration lower than the maximum level of acceleration in at least one direction; (b) the force sensor input indicates force in excess of a hypersensitive level of force less than the maximum level of force; and (c) the accelerometer input indicates a stop distance less than a hypersensitive stop distance greater than the minimum distance.
13. The concussion sensing helmet of claim 1, further comprising a manually operated activator configured to enable a user to cause the at least one indicator to signal the concussion condition.
14. The concussion sensing helmet of claim 1, further comprising a heart rate sensor, wherein the heart rate sensor is configured to deliver input to the processor.
15. A method for detecting when a concussion has occurred, comprising: providing the helmet of claim 1 on the head of an individual; establishing a threshold level of acceleration in at least one direction; establishing a threshold level of force; establishing a threshold stop distance; determining values of each of an acceleration, a force, and a stop distance; transmitting the values of each of the acceleration, the force, and the stop distance to a processor; and alerting others when the processor calculates values in excess of at least one of the threshold level of acceleration, the threshold level of force, and the threshold stop distance.
16. The method of claim 15, wherein others are alerted via at least one of an audio alert and a visual alert.
17. The method of claim 15, further comprising: transmitting input from the processor to a wireless communication device; and transmitting input from the wireless communication device to a terminal.
18. The method of claim 17, further comprising transmitting input from a terminal to a monitor; and displaying the input from the terminal on the monitor.
Description
BRIEF DESCRIPTION OF SEVERAL VIEWS OF THE DRAWINGS
[0027] The invention will be described in conjunction with the following drawings in which like reference numerals designate like elements and wherein:
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0031] The invention provides a system and method to sense and report when a person experiences a concussion. Preferred embodiments of the invention are particularly well suited to detect when a concussion has occurred by calculating an individual's acceleration, the force exerted upon an individual, and the individual's stop distance. Preferred embodiments of the invention alert the user and third parties as to when a concussion-triggering event has occurred.
[0032] The inventive method comprises providing the helmet of the invention on the head of an individual, establishing a threshold level of acceleration in at least one direction, establishing a threshold level of force, establishing a threshold level of stop distance, determining values of each of an acceleration, a force, and a stop distance, transmitting the values of each of the acceleration, the force, and the stop distance to a processor, and alerting others when the processor calculates values in excess of at least one of the threshold level of acceleration, the threshold level of force, and the threshold stop distance.
[0033] A concussion may be classified as a traumatic brain injury that results in an altered physical or mental state.
[0034] The concussion sensing helmet may be configured as ahead covering, including, but not limited to, a full-face helmet, modular helmet, open face helmet, bicycle helmet, riding helmet, motorcycle helmet, military helmet, or other recreational helmet.
[0035] The accelerometer is preferably a piezoelectric, piezoresistance, or capacitive accelerometer. In particularly preferred embodiments, the accelerometer is a triple axis accelerometer.
[0036] The force sensor is preferably a strain gauge transducer, a thick film transducer, a thin film transducer, a semiconductor strain gauge transducer, a mechanical deflection sensor, a piezoelectric pressure sensor, a variable capacitance pressure instrument, or a piston-based sensor. In particularly preferred embodiments, the force sensor is a pressure pad configured to measure the amount of G-forces applied to a person's head upon contact.
[0037] Preferably, the at least one indicator comprises at least one member selected from the group consisting of a buzzer, a speaker, a light-emitting diode (LED) light, a liquid crystal (LCD) display, an electroluminescent (ELD) display, a plasma (PDP) display, a quantum dot (QLED) display, and a segment display. In preferred embodiments, multiple indicators may be used. One preferred embodiment of the invention utilizes two LED light sources, an LCD display, and a buzzer indicator to provide both audio and visual alerts when a concussion-triggering event has occurred.
[0038] The processor may be classified as a device capable of receiving input and providing corresponding output. The processor preferably comprises a microcontroller board. In preferred embodiments, the processor comprises an ARDUINO UNO microcontroller board. In preferred embodiments, the processor may calculate both acceleration and stop distance from the accelerometer's input. In further embodiments, the processor receives input from the accelerometer and the force sensor and triggers the at least one indicator to signal when the input received from the accelerometer and the force sensor are consistent with a concussion-triggering event.
[0039] In preferred embodiments, the processor shall prompt the at least one indicator to signal when at least one of the following is true: (a) the accelerometer input indicates acceleration in excess of a maximum level of acceleration in at least one direction; (b) the force sensor input indicates force in excess of a maximum level of force; and (c) the accelerometer input indicates a stop distance below a minimum distance. In additional embodiments, the processor is configured to instruct the at least one indicator to signal the concussion condition when at least one of the following is true: (a) the accelerometer input indicates acceleration in excess of a hypersensitive level of acceleration lower than the maximum level of acceleration in at least one direction; (b) the force sensor input indicates force in excess of a hypersensitive level of force less than the maximum level of force; and (c) the accelerometer input indicates a stop distance less than a hypersensitive stop distance greater than the minimum distance.
[0040] In certain embodiments, the maximum level of force above which a concussion-triggering event may occur is 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, or 110 Gs of force. In certain embodiments, the hypersensitive level of force above which a concussion-trigger event may occur is 80, 85, 90, 95, or 100 Gs of force and most preferably 90 Gs of force. In preferred embodiments, the processor may be configured to calculate the amount of force needed to cause a concussion when a user has had previous concussions. For example, in one embodiment of the invention, if a user has had one previous concussion, the processor may be configured to send input to the at least one indicator when a user experiences an impact event over 85 Gs of force instead of 90 Gs of force. In this way, the invention may accommodate individuals with previous concussion experiences, and preferred embodiments of the invention calculate a lower maximum level of force over which the processor triggers the at least one indicator for those individuals than individuals with no prior concussion history. When acceleration in excess of a maximum or hypersensitive level of acceleration has occurred is calculated based on a direct relationship calculation of the force experienced by the invention's user. When a stop distance below a minimum distance or a hypersensitive distance has occurred is calculated based on an inverse relationship with acceleration and force.
[0041] Additional embodiments of the invention may utilize a wireless communication device. The wireless communication device is configured to receive input from the processor and in preferred embodiments may comprise a BLUETOOTH module preferably comprising ground, VCC, RX, and TX pins. The wireless communication device may preferably be configured to transmit input to a terminal signaling that a concussion-triggering event has occurred when the processor receives input from the accelerometer and the force sensor that is consistent with a concussion-triggering event.
[0042] In preferred embodiments, the terminal may comprise a desktop computer or mobile electronic device, such as a laptop, cell phone, tablet, notebook, smart watch, or other similar device. In preferred embodiments, the terminal may also comprise a monitor configured to display information based on the data received from the wireless communication device. The monitor is preferably a desktop computer monitor or a screen of a mobile device, such as a laptop, cell phone, tablet, notebook, or smart watch. The terminal may further comprise the use of an application configured to display information received from the wireless communication device on the monitor.
[0043] The invention may further comprise a manually operated activator configured to enable a user to cause the at least one indicator to signal the concussion condition. In preferred embodiments, the manually operated activator is a button coupled to the user's helmet, wherein the user can push the button when medical assistance is needed. In preferred embodiments, the processor receives input from the manually operated activator. In additional preferred embodiments, the processor, upon receiving input that the manually operated activator has been activated, transmits input to the wireless communication device, wherein the wireless communication device transmits the input to a terminal comprising a monitor to alert others that the helmet-wearer needs medical assistance. In preferred embodiments, the manually operated activator, when activated, is configured to trigger the at least one indicator on the helmet of the wearer. In most preferred embodiments, the manually operated activator, when activated, will both signal audio and visual alerts via the at least one indicator on the helmet of the user and deliver input via the processor and wireless communication device to a terminal comprising a monitor to alert third parties that medical assistance is necessary.
[0044] The invention may further comprise a heart rate sensor, wherein the heart rate sensor is coupled to the helmet of the invention's user and transmits input to the processor. In some embodiments, the heart rate sensor may be coupled portion of the helmet closest to the ear lobe. When the processor calculates a heart rate in excess of a maximum level heart rate, the processor triggers the at least one indicator to signal. The processor will send input to the at least one indicator to signal when the processor calculates a heart rate below a minimum level heart rate as well. In preferred embodiments, when the processor calculates a heart rate in excess of a maximum level heart rate or below a minimum level heart rate, the processor also transmits input to the wireless communication device, which in turn transmits input to the terminal comprising a monitor to alert third parties that medical assistance is necessary.
[0045] Methods of using the invention further comprise alerting others when a concussion-triggering event has occurred via at least one of an audio alert and a visual alert. Preferred methods comprise alerting others when a concussion triggering event has occurred via both an audio alert and a visual alert.
[0046] Methods of using the invention may further comprise transmitting input from the processor to a wireless communication device; and transmitting input from the wireless communication device to a terminal. In preferred methods, the terminal further transmits input from the terminal to a monitor, wherein the monitor displays and alerts others that a concussion-triggering event has occurred.
[0047] Further methods of using the invention comprise a user activating the manually operated activator. In preferred methods, the manually operated activator is configured to enable a user to cause the at least one indicator to signal the concussion condition. In preferred methods, the manually operated activator transmits input to the processor. The processor may transmit input to at least one of the at least one indicator and the wireless communication device, wherein the wireless communication device transmits input to a terminal comprising a monitor, wherein the monitor displays a signal alerting others that the user needs medical assistance.
[0048] Referring to the Figures,
[0049]
[0050]
[0051] While the invention has been described in detail and with reference to specific examples thereof, it will be apparent to one skilled in the art that various changes and modifications can be made therein without departing from the spirit and scope thereof