IP Library Granted Patent US 12,245,874
Granted Patent B2
US 12,245,874 · App. 17/126,300 · Granted Mar 11, 2025

Glove-based form factor for bio-acoustical sensing

Inventors: Omer T. Inan (Atlanta, GA); Nicholas B. Bolus (Atlanta, GA); Hyeon Ki Jeong (Atlanta, GA); Daniel Whittingslow (Atlanta, GA)
Assignee: Georgia Tech Research Corporation
A61B5/6826A61B5/0051A61B5/053A61B5/4528A61B5/6806A61B5/6843A61B5/742A61B7/006A61B7/04A61B5/0002A61B2562/0219
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 12,245,874
App. No.
17/126,300
Granted
Mar 11, 2025
Kind
B2
Abstract

A bio-vibration device for use by a user having a finger for sensing vibration signals in an individual includes a finger coupler device, a vibration sensor and a communications circuit. The vibration sensor is affixed to the finger coupler device and is configured to be pressed against a selected site of the individual so as to sense a vibration signal therefrom. The communications circuit is responsive to the vibration sensor and is configured to transmit the vibration signal to a remote device.

Claims (51)

1. A bio-vibration device for use by a user, having a hand with a back side and a finger, for sensing vibration signals in an individual, comprising:

(a) a finger coupler device;

(b) a vibration sensor affixed to the finger coupler device and configured to be pressed against a selected site of the individual and to sense a vibration signal therefrom;

(c) a communications circuit that is responsive to the vibration sensor and that is configured to transmit the vibration signal to a remote device;

(d) a force sensor disposed between the vibration sensor and the finger coupler device that senses a force applied to the selected site by the user; and

(e) a force feedback circuit that is responsive to the force sensor and that determines if the force sensed by the force sensor is within a desired range for consistent signal acquisition by the vibration sensor, the force feedback circuit including a multi-color LED, configured to be disposed on the back side of the hand, that generates: light of a first color when the force applied by the user is within the desired range; light of a second color, different from the first color, when the force applied by the user is below the desired range; and light of a third color, different from the first color and the second color, when the force applied by the user is above the desired range so as to provide visual feedback of sensor contact force.

2. The bio-vibration device of claim 1 , wherein the communications circuit comprises a wireless chipset.

3. The bio-vibration device of claim 1 , wherein the force sensor comprises a capacitance-based film sensor.

4. The bio-vibration device of claim 1 , wherein the selected site includes are area around a joint of the user and wherein the remote device comprises a processor that is configured to analyze the vibration signal and to generate an output indicative of a state of the joint.

5. The bio-vibration device of claim 4 , further comprising at least one movement sensor that is configured to be applied to a part of the individual near the joint and configured to generate a movement signal indicating movement in the joint.

6. The bio-vibration device of claim 5 , wherein the vibration sensor comprises a selected one of an accelerometer and a microphone.

7. The bio-vibration device of claim 1 , wherein the finger coupler device includes a glove including at least one fingertip covering to which the vibration sensor is affixed.

8. The bio-vibration device of claim 1 , further comprising a finger-mounted transducer for generating an applied vibration signal that is applied to the selected site and wherein the vibration sensor is configured to sense reflections of the applied vibration signal.

9. The bio-vibration device of claim 1 , further comprising a set of four electrodes and a circuit that generates information regarding impedance of tissues of individual at the site and wherein the wireless communications circuit that is responsive to the electrodes and is configured to transmit the impedance information to a remote device.

10. The bio-vibration sensor of claim 1 , wherein the selected site includes an area around a joint of the user, the sensor configured as a multi-modal sensing system and further comprising:

(a) at least one movement sensor that is configured to be applied to a part of the individual near the joint and configured to generate a movement signal indicating movement in the joint;

(b) a force sensor configured to sense a force applied to the selected site by the user;

(c b) a set of four electrodes and a circuit that generates information regarding impedance of the tissues of individual at the site; and

(d c) a processor that is configured to analyze the vibration signal, the movement signal, the force applied by the user and the impedance information so as to generate an output indicative of a state of the joint.

11. A bio-vibration device for use by a user, having a hand with a back side and a finger, for sensing vibration signals in an individual, comprising:

(a) a finger coupler device;

(b) a vibration sensor affixed to the finger coupler device and configured to be pressed against a selected site of the individual and to sense a vibration signal therefrom; and

(c) a communications circuit that is responsive to the vibration sensor and that is configured to transmit the vibration signal to a remote device;

(d) a force sensor disposed between the vibration sensor and the finger coupler device that senses a force applied to the selected site by the user; and

(e) a force feedback circuit that is responsive to the force sensor and that determines if the force sensed by the force sensor is within a desired range, the force feedback circuit including a multi-color LED, configured to be disposed on the back side of the hand, that generates: light of a first color when the force applied by the user is between 4N and 7N; light of a second color, different from the first color, when the first color and the second color, when the force applied by the user is above 7N so as to provide visual feedback of sensor contact force.

12. The bio-vibration device of claim 11 , wherein the communications circuit comprises a wireless chipset.

13. The bio-vibration device of claim 11 , wherein the force sensor comprises a capacitance-based film sensor.

14. The bio-vibration device of claim 11 , wherein the selected site includes an area around a joint of the user and wherein the remote device comprises a processor that is configured to analyze the vibration signal and to generate an output indicative of a state of the joint.

15. The bio-vibration device of claim 14 , further comprising at least one movement sensor that is configured to be applied to a part of the individual near the joint and configured to generate a movement signal indicating movement in the joint.

16. The bio-vibration device of claim 15 , wherein the vibration sensor comprises a selected one of an accelerometer and a microphone.

17. The bio-vibration device of claim 11 , wherein the finger coupler device includes a glove including at least one fingertip covering to which the vibration sensor is affixed.

18. The bio-vibration device of claim 11 , further comprising a finger-mounted transducer for generating an applied vibration signal that is applied to the selected site and wherein the vibration sensor is configured to sense reflections of the applied vibration signal.

19. The bio-vibration device of claim 11 , further comprising a set of four electrodes and a circuit that generated information regarding impedance of tissues of individual at the site and wherein the wireless communications circuit that is responsive to the electrodes and is configured to transmit the impedance information to a remote device.

20. The bio-vibration device of claim 11 , wherein the selected site includes an area around a joint of the user, the sensor configured as a multi-modal sensing system and further comprising:

(a) at least one movement sensor that is configured to be applied to a part of the individual near the joint and configured to generate a movement signal indicating movement in the joint;

(b) a set of four electrodes and a circuit that generates information regarding impedance of the tissues of individual at the site; and

(c) a processor that is configured to analyze the vibration signal, the movement signal, the force applied by the user and the impedance information so as to generate an output indicative of a state of the joint.

21. A bio-vibration device for use by a user, having a hand and a finger, for sensing vibration signals in an individual, comprising:

(a) a finger coupler device;

(b) a vibration sensor affixed to the finger coupler device and configured to be pressed against a selected site of the individual and to sense a vibration signal therefrom; and

(c) a communications circuit that is responsive to the vibration sensor and that is configured to transmit the vibration signal to a remote device;

(f) a force sensor disposed between the vibration sensor and the finger coupler device that senses a force applied to the selected site by the user;

(g) a force feedback circuit that is responsive to the force sensor and that determines if the force sensed by the force sensor is within a desired range for consistent signal acquisition, the force feedback circuit including an indicator that generates: a first user-perceptible indicator when the force applied by the user is within the desired range; a second user-perceptible indicator different from the first user-perceptible indicator when the force applied by the user is below the desired range; and third user-perceptible indicator, different from the first user-perceptible indicator and the second user-perceptible indicator, when the force applied by the user is above desired range so as to provide feedback of sensor contact force as the vibration sensor is being applied to the selected site;

(h) a first inertial measurement unit that is applied to a first part of the individual near the joint and a second inertial measurement unit that is applied to a second part of the individual near the joint, spaced apart from the first part of the individual and positioned so as to measure flexure angle of the joint; and

(i) a video display that displays a graphical representation of both a flexing angle of the joint and the vibrational signal.

22. The bio-vibration device of claim 21 , wherein the communications circuit comprises a wireless chipset.

23. The bio-vibration device of claim 21 , wherein the force sensor comprises a capacitance-based film sensor.

24. The bio-vibration device of claim 21 , wherein the selected site includes an area around a joint of the user and wherein the remote device comprises a processor that is configured to analyze the vibration signal and to generate an output indicative of a state of the joint.

25. The bio-vibration device of claim 21 , wherein the finger coupler device includes a glove including at least one fingertip covering to which the vibration sensor is affixed.

26. The bio-vibration device of claim 21 , further comprising a finger-mounted transducer for generating an applied vibration signal that is applied to the selected site and wherein the vibration sensor is configured to sense reflections of the applied vibration signal.

27. The bio-vibration device of claim 21 , further comprising a set of four electrodes and a circuit that generates information regarding impedance of tissues of individual at the site and wherein the wireless communications circuit that is responsive to the electrodes and is configured to transmit the impedance information to a remote device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2021
From: INAN, OMER T.; BOLUS, NICHOLAS B.; JEONG, HYEON KI; WHITTINGSLOW, DANIEL
To: GEORGIA TECH RESEARCH CORPORATION
Reel/Frame 055628/0024 →
Continuity (3)
Continuation In Part 16898712 · Jun 11, 2020
Provisional Application 62860604 · Jun 12, 2019
Related Publication 20210137458A1 · May 13, 2021
References Cited (23)
US 5496257A · Kelly · 1996 [cited by examiner]
US 6537233B1 · Rangayyan et al. · 2003 [cited by applicant]
US 6930608B2 · Grajales et al. · 2005 [cited by applicant]
US 9402582B1 · Parviz · 2016 [cited by examiner]
US 10420387B2 · Zambriski · 2019 [cited by examiner]
US 10585534B2 · Tang et al. · 2020 [cited by applicant]
US 11857297B1 · Williams · 2024 [cited by examiner]
US 20060025690A1 · Guigne et al. · 2006 [cited by applicant]
US 20100262047A1 · Genis · 2010 [cited by applicant]
US 20110137210A1 · Johnson · 2011 [cited by examiner]
US 20120035509A1 · Wilson · 2012 [cited by examiner]
US 20130211259A1 · Komistek et al. · 2013 [cited by applicant]
US 20140128689A1 · Stewart et al. · 2014 [cited by applicant]
US 20140275888A1 · Wegerich · 2014 [cited by examiner]
US 20150224021A1 · Centen et al. · 2015 [cited by applicant]
US 20220133216A1 · Chen · 2022 [cited by examiner]
US 20220304890A1 · Kohler · 2022 [cited by examiner]
Spain et al.: “Acoustic Monitoring of Joint Health”; Nov. 11, 2020 (no later than); Data Acquisition—Recent Advances and Applications in Biomedical Engineering; IntechOpen. [cited by applicant]
Saggio et al.: “Wireless Sensory Glove System developed for advanced Human Computer Interface”; 2012; International Journal of Information Science; Scientific & Academic Publishing. [cited by applicant]
Wikipedia: “Power Glove”; Dec. 4, 2020. [cited by applicant]
Kalo et al.: “Reliability of Vibroarthography to Assess Knee Joint Sounds in Motion”; Apr. 2, 2020; Sensors; MDPI. [cited by applicant]
Jeong et al. “b-Value: A Potential Biomarker for Assessing Knee-Joint Health Using Acoustical Emission Sensing”; Dec. 1, 2019; IEEE Sesn Lett. [cited by applicant]
Sturman et al: “A Survey of Glove-based Input”; 1994; IEEE Computer Graphics & Applications. [cited by applicant]