IP Library Granted Patent US 10,716,469
Granted Patent B2
US 10,716,469 · App. 16/264,242 · Granted Jul 21, 2020

Ocular-performance-based head impact measurement applied to rotationally-centered impact mitigation systems and methods

Inventor: Wesley W. O. Krueger (San Antonio, TX)
A61B3/113A61B3/112A61B3/145A61B3/0041A61B3/032A61B3/158A61B5/1103A61B5/4863A61B5/6814
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,716,469
App. No.
16/264,242
Granted
Jul 21, 2020
Kind
B2
Abstract

A system or method for measuring human ocular performance can be implemented using an eye sensor, a head orientation sensor, and an electronic circuit. The device is configured for measuring vestibulo-ocular reflex, pupillometry, saccades, visual pursuit tracking, vergence, eyelid closure, dynamic visual acuity, retinal image stability, foveal fixation stability, focused position of the eyes or visual fixation of the eyes at any given moment and nystagmus. The eye sensor comprises a video camera that senses vertical movement and horizontal movement of at least one eye. The head orientation sensor senses pitch and yaw in the range of frequencies between 0.01 Hertz and 15 Hertz. The system is implemented as part of an impact reduction helmet that comprises an inner frame having interior pads configured to rest against a person's head and one or more shock absorption elements attached between the inner frame and the spherical shell that couple the spherical shell to the inner frame. The spherical shell has a circular geometry, that when viewed horizontally at its horizontal midplane, includes a center point that is the rotational center of the spherical shell. The one or more shock absorption elements are sized to provide greater spacing between the inner frame and the spherical shell at the sides and rear of the spherical shell than at the front of the spherical shell. The one or more shock absorption elements are sized to configure the alignment of the rotational center of the spherical shell with the proximate rotational center of the wearer's head.

Claims (164)

1. A human ocular performance measuring device wherein:

the device is configured for measuring an ocular performance characteristic selected from the group of:

vestibulo-ocular reflex;

ocular saccades;

pupillometry;

pursuit tracking during visual pursuit;

vergence;

eye closure;

focused position of the eyes;

dynamic visual acuity;

kinetic visual acuity;

virtual retinal stability;

retinal image stability;

foveal fixation stability; and

nystagmus; and

the device comprises:

an eye sensor wherein:

the eye sensor comprises a video camera; and

the eye sensor senses eye information selected from the group of:

horizontal eye movement;

vertical eye movement;

pupil size; and

eyelid movement;

a head orientation sensor wherein:

the head orientation sensor senses a head movement selected from the group of pitch and yaw of a person's head wherein pitch represents a rotation about a first axis representing up and down movement of the person's face when the rear of the person's head moves in the opposite direction and yaw represents horizontal movement of the face when looked at from the front about a second axis substantially aligned with the spine and perpendicular to the first axis; and

the head orientation sensor senses the head movement in a range of frequencies between 0.01 Hertz and 15 Hertz;

the head orientation sensor comprises a micro-electro-mechanical system integrated circuit comprising a module selected from the group consisting of an accelerometer, a magnetometer, and a gyroscope;

an electronic circuit wherein:

the electronic circuit comprises a central processing unit, and a memory unit;

the electronic circuit is responsive to the eye movement information received from the eye sensor; and

the electronic circuit is responsive to head movement information received from the head orientation sensor; and

a helmet, comprising an inner frame having an interior surface and one or more shock absorption elements attached between the inner frame and a spherical shell, wherein:

the one or more shock absorption elements couple the spherical shell to the inner frame;

the spherical shell is external to the inner frame;

the spherical shell has a circular geometry that when viewed horizontally at its horizontal midplane, includes a center point that is the rotational center of the spherical shell;

the one or more shock absorption elements are sized to provide greater spacing between the inner frame and the spherical shell at the sides and the rear of the spherical shell than at the front of the spherical shell;

the one or more shock absorption elements are sized to configure the alignment of the rotational center of the spherical shell with a proximate rotational center of a wearer's head; and

the alignment between the rotational center of the spherical shell and the proximate rotational center of a wearer's head directly affects the effect of a tangential force caused by an impact on the spherical shell.

2. The device of claim 1 wherein:

the device measures vestibulo-ocular reflex.

3. The device of claim 1 wherein:

the device measures ocular saccades.

4. The device of claim 1 wherein:

the device measures pupillometry.

5. The device of claim 1 wherein:

the device measures pursuit tracking during visual pursuit.

6. The device of claim 1 wherein:

the device measures vergence.

7. The device of claim 1 wherein:

the device measures eye closure.

8. The device of claim 1 wherein:

the device measures focused position of the eyes.

9. The device of claim 1 wherein:

the device further measures an ocular performance characteristic selected from the group of dynamic visual acuity and kinetic visual acuity.

10. The device of claim 1 wherein:

the device further measures an ocular performance characteristic selected from the group of virtual retinal stability and retinal image stability.

11. The device of claim 1 wherein:

the device further measures an ocular performance characteristic selected from the group of foveal fixation stability and nystagmus.

12. The device of claim 1 wherein:

the device further comprises a display wherein the display is configured for presenting information selected from the group of:

virtual reality information;

augmented reality information; and

synthetic computer-generated 3-dimensional information; and

the display is selected from the group of:

a volumetric display;

a hologram; and

a lenticular display.

13. The device of claim 1 wherein:

the eye sensor senses eye movement information selected from the group of horizontal eye movement and vertical eye movement.

14. The device of claim 1 wherein:

the head orientation sensor senses pitch of the person's head and yaw of the person's head

the eye sensor senses eye horizontal eye movement and vertical eye movement;

the electronic circuit uses a Fourier transform to generate a vertical gain signal and a vertical phase signal in response to the vertical eye movement information and the pitch information; and

the electronic circuit uses a Fourier transform to generate a horizontal gain signal and a horizontal phase signal in response to the horizontal eye movement information and the yaw information.

15. The device of claim 1 wherein:

the eye sensor further senses the position of at least one eye;

the device further comprises a forward-facing camera; and

the forward-facing camera is responsive to the eye sensor.

16. A human ocular performance measuring system wherein:

the system is configured for measuring an ocular performance characteristic selected from the group of:

vestibulo-ocular reflex;

ocular saccades;

pupillometry;

pursuit tracking during visual pursuit;

vergence;

eye closure;

focused position of the eyes;

dynamic visual acuity;

kinetic visual acuity;

virtual retinal stability;

retinal image stability;

foveal fixation stability; and

nystagmus; and

the system comprises:

an eye sensor wherein:

the eye sensor comprises a video camera; and

the eye sensor senses eye movement information selected from the group of:

horizontal eye movement;

vertical eye movement;

pupillometry; and

eyelid movement;

a head orientation sensor wherein:

the head orientation sensor senses a head movement selected from the group of pitch and yaw of a person's head wherein pitch represents a rotation about a first axis representing up and down movement of the person's face when the rear of the person's head moves in the opposite direction and yaw represents horizontal movement of the face when looked at from the front about a second axis substantially aligned with the spine and perpendicular to the first axis; and

the head orientation sensor senses the head movement in a range of frequencies between 0.01 Hertz and 15 Hertz;

an electronic circuit wherein:

the electronic circuit comprises a central processing unit, and a memory unit;

the electronic circuit is responsive to the eye movement information received from the eye sensor; and

the electronic circuit is responsive to head movement information received from the head orientation sensor; and

a helmet, comprising an inner frame having an interior surface and one or more shock absorption elements attached between the inner frame and a spherical shell, wherein:

the one or more shock absorption elements couple the spherical shell to the inner frame;

the spherical shell is external to the inner frame;

the spherical shell has a circular geometry that when viewed horizontally at its horizontal midplane, includes a center point that is the rotational center of the spherical shell;

the one or more shock absorption elements are sized to provide greater spacing between the inner frame and the spherical shell at the sides and the rear of the spherical shell than at the front of the spherical shell;

the one or more shock absorption elements are sized to configure the alignment of the rotational center of the spherical shell with a proximate rotational center of a wearer's head; and

the alignment between the rotational center of the spherical shell and the proximate rotational center of a wearer's head directly affects the effect of a tangential force caused by an impact on the spherical shell.

17. The system of claim 16 wherein:

the head orientation sensor comprises a head-worn micro-electro-mechanical system integrated circuit comprising a module selected from the group consisting of an accelerometer, a magnetometer, and a gyroscope.

18. The system of claim 16 wherein:

the head orientation sensor comprises a video camera; and

the system further comprises a display wherein the display is configured for presenting information selected from the group of:

virtual reality information;

augmented reality information; and

synthetic computer-generated 3-dimensional information; and

the display is selected from the group of:

a volumetric display;

a hologram; and

a lenticular display.

19. The system of claim 16 wherein:

the head orientation sensor comprises the same video camera as the eye sensor.

20. A method for measuring human ocular performance comprising the steps of:

establishing a device that comprises:

an eye sensor comprising a video camera configured for sensing

eye movement information selected from the group of:

horizontal eye movement;

vertical eye movement;

pupillometry; and

eyelid movement;

a head orientation sensor configured for sensing a head movement selected from the group of pitch and yaw of a person's head wherein pitch represents a rotation about a first axis representing up and down movement of the person's face when the rear of the person's head moves in the opposite direction and yaw represents horizontal movement of the face when looked at from the front about a second axis substantially aligned with the spine and perpendicular to the first axis;

an electronic circuit; and

a helmet, comprising an inner frame having an interior surface and one or more shock absorption elements attached between the inner frame and a spherical shell, wherein:

the one or more shock absorption elements couple the spherical shell to the inner frame;

the spherical shell is external to the inner frame;

the spherical shell has a circular geometry that when viewed horizontally at its horizontal midplane, includes a center point that is the rotational center of the spherical shell;

the one or more shock absorption elements are sized to provide greater spacing between the inner frame and the spherical shell at the sides and the rear of the spherical shell than at the front of the spherical shell;

the one or more shock absorption elements are sized to configure the alignment of the rotational center of the spherical shell with a proximate rotational center of a wearer's head; and

the alignment between the rotational center of the spherical shell and the proximate rotational center of a wearer's head directly affects the effect of a tangential force caused by an impact on the spherical shell; and

using the electronic circuit to:

receive eye movement information from the eye sensor;

receive head movement information from the head orientation sensor; and

generate a gain signal and a phase signal using the eye movement information, and the head movement information; and

measure an ocular performance characteristic selected from the group of:

vestibulo-ocular reflex;

ocular saccades;

pupillometry;

pursuit tracking during visual pursuit;

vergence;

eye closure;

focused position of the eyes;

dynamic visual acuity;

kinetic visual acuity;

virtual retinal stability;

retinal image stability;

foveal fixation stability; and

nystagmus.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 8, 2023
From: BODY SHIELD LLC
To: NOVUTZ LLC
Reel/Frame 064524/0914 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2020
From: KRUEGER, WESLEY WO
To: BODY SHIELD LLC
Reel/Frame 054170/0868 →
Continuity (5)
Continuation In Part 15713418 · Sep 22, 2017
Continuation In Part 15162300 · May 23, 2016
Continuation In Part 14326335 · Jul 8, 2014
Continuation In Part 13749873 · Jan 25, 2013
Related Publication 20190167095A1 · Jun 6, 2019
Cited By (1)
US 12,664,800