IP Library Patent Application 14050910
Patent Application
App. No. 14/050,910

HEART PULSE MONITOR INCLUDING A FLUXGATE SENSOR

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Quick Facts
Patent No.
US None
App. No.
14/050,910
Abstract

A heart pulse monitor includes a permanent magnet including a mounting structure for securing the permanent magnet in displaceable contact with a blood vessel of a wearer. The permanent magnet has a thickness defining an axial direction that the permanent magnet is displaceable when blood flows. A fluxgate sensor system is positioned a distance in the axial direction from the permanent magnet to sense an axial magnetic field therefrom. The permanent magnet displaces in the axial direction upon a heart pulse of the wearer resulting in a change in the axial magnetic field which is sensed by the fluxgate sensor system through a change in an induced AC output signal on the sense coil. A processor is coupled to receive information from the induced AC output signal. The processor implements calibration data which converts information from the induced AC output signal into a heart pulse measurement for the wearer.

Claims (23)

1 . A heart pulse monitor, comprising:

a permanent magnet including a mounting structure for securing said permanent magnet in displaceable contact with a blood vessel of a wearer of said heart pulse monitor, said permanent magnet having a thickness defining an axial direction in which said permanent magnet becomes displaced when blood flows in said blood vessel;

at least a first fluxgate sensor system includes at least one magnetic core, a sense coil and a drive coil proximate to said magnetic core, and a drive circuit coupled to drive said drive coil, wherein said first fluxgate sensor system is positioned at a nominal distance in said axial direction from said permanent magnet and is aligned relative to said permanent magnet to sense an axial magnetic field therefrom, and

wherein when said permanent magnet displaces in said axial direction due to a heart pulse of said wearer, a change results in said axial magnetic field which is sensed by said first fluxgate sensor system through a change in an induced alternating current (AC) output signal on said sense coil,

a processor coupled to receive information from said induced AC output signal, and

wherein said processor implements calibration data which converts said information from said induced AC output signal into a heart pulse measurement for said wearer.

2 . The heart pulse monitor of claim 1 , wherein said mounting structure comprises a wrist band.

3 . The heart pulse monitor of claim 1 , wherein said mounting structure is a flexible mount which displaces said permanent magnet in said axial direction responsive to said heart pulse of said wearer.

4 . The heart pulse monitor of claim 1 , further comprising a second fluxgate sensor system positioned sufficiently laterally away from said first fluxgate sensor system to not sense said change in said axial magnetic field when said permanent magnet displaces in said axial direction.

5 . The heart pulse monitor of claim 1 , further comprising a weight monitoring device which measures a caloric output of said wearer secured by or positioned within said mounting structure.

6 . The heart pulse monitor of claim 1 , further comprising a printed circuit board (PCB), wherein said first fluxgate sensor system and said processor are mounted on said PCB.

7 . The heart pulse monitor of claim 6 , wherein said nominal distance is set by at least one spacer positioned between an outer portion of said permanent magnet and said PCB.

8 . The heart pulse monitor of claim 1 , wherein said nominal distance is from 0.02 mm to 30 mm.

9 . A method of heart pulse monitoring, comprising:

securing a mounting structure of a heart pulse monitor, said heart pulse monitor including a permanent magnet in displaceable contact with a blood vessel of a wearer of said heart pulse monitor, said permanent magnet having a thickness defining an axial direction in which said permanent magnet becomes displaced when blood flows in said blood vessel and at least a first fluxgate sensor system including at least one magnetic core, a sense coil and a drive coil proximate to said magnetic core, and a drive circuit coupled to drive said drive coil, wherein said first fluxgate sensor is positioned a nominal distance in said axial direction from said permanent magnet to sense an axial magnetic field therefrom;

receiving an induced alternating current (AC) output signal from said sense coil responsive to said permanent magnet displacing in said axial direction due to a heart pulse of said wearer resulting in a change of said axial magnetic field which is sensed by said first fluxgate sensor system through a change in said induced AC output signal,

using a processor having calibration data, converting information from said induced AC output signal into a heart pulse measurement for said wearer.

10 . The method of claim 9 , further comprising displaying said heart pulse measurement.

11 . The method of claim 9 , further comprising a second fluxgate sensor system positioned sufficiently laterally away from said first fluxgate sensor system to not sense said change in said axial magnetic field when said permanent magnet displaces in said axial direction, and

using information from a background induced AC signal provided by said second fluxgate sensor system, performing a differencing function with said information from said induced AC output signal to reduce background magnetic field distortions influencing said heart pulse measurement.

12 . The method of claim 9 , wherein a weight monitoring device which measures a caloric output of said wearer is secured by or within said mounting structure, further comprising displaying said caloric output of said wearer.

13 . The method of claim 9 , further comprising a printed circuit board (PCB), wherein said first fluxgate sensor system and said processor are mounted on said PCB, and wherein said nominal distance is set by at least one spacer positioned between an outer portion of said permanent magnet and said PCB.

14 . The method of claim 9 , wherein said nominal distance is from 0.02 mm to 30 mm.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 16, 2021
From: TEXAS INSTRUMENTS DEUTSCHLAND GMBH
To: TEXAS INSTRUMENTS INCORPORATED
Reel/Frame 055314/0255 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2013
From: SCHAFFER, VIOLA
To: TEXAS INSTRUMENTS DEUTSCHLAND GMBH
Reel/Frame 031454/0806 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2013
From: KUMMERL, STEVEN ALFRED; MOHAN, ANURAAG
To: TEXAS INSTRUMENTS INCORPORATED
Reel/Frame 031454/0819 →