IP Library › Granted Patent US 9,551,761
Granted Patent B2
US 9,551,761 · App. 14/102,199 · Granted Jan 24, 2017

Portable magnetic, electric and radio frequency field monitoring apparatus and method

Inventors: Norman Darnell McCollough, Jr. (Melbourne, FL); Philip Cochrane (Maryville, TN); Robert Ira Kavet (Oakland, CA)
Assignee: ELECTRIC POWER RESEARCH INSTITUTE
G01R33/0005G01R33/0206G01R33/028
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Quick Facts
Patent No.
US 9,551,761
App. No.
14/102,199
Granted
Jan 24, 2017
Kind
B2
Abstract

The use of implanted medical devices that address a wide range of health conditions is rapidly expanding. These implanted devices include: Cochlear implants, drug dispensing pumps, cardiac pacemakers, defibrillators and other devices. Although these devices are designed to withstand interference from external radio frequency, electric and magnetic fields, interference can occur which may affect the operation of these devices and pose a health risk. An inventive personal, body-wearable electric field, radio frequency, and three-axis magnetic field monitoring device detects the ambient radio frequency, electric and magnetic fields and warns the wearer when any of these field measurements exceeds a safe level.

Claims (82)

1. A personal monitoring device comprising:

a first magnetic field sensor aligned with an X axis coupled to first magnetic field signal conditioning circuitry for processing a first output signal from the first magnetic field sensor to obtain a first conditioned output signal;

a second magnetic field sensor aligned with a Y axis coupled to second magnetic field signal conditioning circuitry for processing a second output signal from the second magnetic field sensor to obtain a second conditioned output signal;

a third magnetic field sensor aligned with a Z axis coupled to third magnetic field signal conditioning circuitry for processing a third output signal from the third magnetic field sensor to obtain a third conditioned output signal;

a comparator circuit coupled to the first magnetic signal conditioning circuitry, the second magnetic signal conditioning circuitry and the third magnetic signal conditioning circuitry for comparing the first conditioned output signal, the second conditioned output signal and the third conditioned output signal to a threshold magnetic field signal value; and

an alarm coupled to the comparator circuit that is actuated when the first conditioned output signal, the second conditioned output signal or the third conditioned output signal exceeds the threshold magnetic field signal value.

2. The personal monitor device of claim 1 , further comprising:

at least one electric field sensor; and

electric field signal conditioning circuitry coupled to the at least one electric field sensor for processing a first output signal from the at least one electric field sensor to obtain a first conditioned electric field output signal.

3. The personal monitor device of claim 1 , further comprising:

at least one radio frequency field sensor; and

radio frequency field signal conditioning circuitry coupled to the at least one radio frequency field sensor for processing a first output signal from the at least one radio frequency field sensor to obtain a first conditioned radio frequency field output signal.

4. The personal monitor device of claim 1 , where the first magnetic field sensor, the second magnetic field sensor and the third magnetic field sensor are each oriented orthogonally to each other.

5. The personal monitor device of claim 1 , such that the orientation of the first magnetic field sensor, the second magnetic field sensor and the third magnetic field sensor provides high sensitivity in the x, y and z planes in free space respectively.

6. A personal monitoring device comprising:

a first magnetic field sensor aligned with an X axis outputting a first magnetic field sensor signal;

a second magnetic field sensor aligned with a Y axis outputting a second magnetic field sensor signal;

a third magnetic field sensor aligned with a Z axis outputting a third magnetic field sensor signal;

a low frequency oscillator circuit for individually actuating each of the first magnetic field sensor, the second magnetic field sensor and the third magnetic field sensor;

a comparator for comparing the first magnetic field sensor signal, the second magnetic field sensor signal and the third magnetic field sensor signal to a threshold magnetic field signal value, the comparing occurring at least two times each second; and

an alarm coupled to the comparator circuit that is actuated when the first magnetic field sensor signal, the second magnetic field sensor signal or the third magnetic field sensor signal exceeds the threshold magnetic field signal value.

7. The personal monitor device of claim 6 , wherein the first magnetic field sensor, the second magnetic field sensor and the third magnetic field sensor are low power MEMS magnetometer devices.

8. A personal monitoring device comprising:

three magnetic field sensors, each magnetic field sensor being aligned with a single and different x, y and z axis, each magnetic field sensor being coupled to magnetic field signal conditioning circuitry for processing output signals from each of the magnetic field sensors to obtain conditioned magnetic field sensor output signals;

an electric field sensor;

a radio frequency (RF) field sensor;

a processor coupled to the three magnetic field signal conditioning circuitry, the electric field sensor and the radio frequency field sensor, the processor comparing the conditioned magnetic field sensor output signals, an electric field sensor signal and a radio frequency field sensor signal to corresponding threshold values; and

an alarm device that is actuated by the processor when one or more of the signals exceeds the corresponding threshold value.

9. The personal monitoring device of claim 8 wherein the processor compares an electric field sensor signal to a threshold electric field value and the alarm device is actuated by the processor when the electric electric field sensor signal exceeds 100 volts per meter.

10. The personal monitoring device of claim 8 wherein the processor compares a radio frequency field sensor signal to a threshold radio frequency field value and the alarm device is actuated by the processor when the radio frequency field sensor signal exceeds the preset radio frequency field alarm setting.

11. The personal monitoring device of claim 8 wherein the processor compares an electric field sensor signal to a threshold electric field value and the alarm device is actuated by the processor when the electric field reaches or exceeds 1,000 volts per meter.

12. The personal monitoring device of claim 8 further comprising:

a low frequency oscillator circuit that transmits a reset pulse to magnetometers in the three magnetic field sensors to self calibrate and reset the magnetometers.

13. The personal monitoring device of claim 8 further comprising:

a self-test mechanism that creates a magnetic field within the three magnetic field sensors oriented in x, y, and z plane, the magnetic field having sufficient strength to trigger the alarm device when a test button coupled to the self-test mechanism is actuated.

14. The personal monitoring device of claim 8 wherein the alarming device includes programmable components for storage of one or more of the alarm threshold values.

15. A method for detecting a hazardous environment using a personal monitoring device including an x-axis magnetometer, a y-axis magnetometer, a z-axis magnetometer, a radio frequency (RF) field sensor, an electric field sensor, an alarming device and a processor coupled to the x-axis magnetometer, the y-axis magnetometer, the z-axis magnetometer, the electric field sensor, the radio frequency field sensor, and the alarming device, the method comprising

turning on the x-axis magnetometer;

receiving by the processor, an x-axis magnetic field sensor reading from the x-axis magnetometer;

comparing by the processor, the x-axis magnetic field sensor reading to an x-axis plane preset alarm level;

determining by the processor, that the x-axis plane preset alarm level is greater than the x-axis magnetic field sensor reading;

turning off the x-axis magnetometer;

turning on the y-axis magnetometer;

receiving by the processor, a y-axis magnetic field sensor reading from the y-axis magnetometer; and

comparing by the processor, the y-axis magnetic field sensor reading to a y-axis plane preset alarm level.

16. The method of claim 15 further comprising:

determining by the processor, that the y-axis plane preset alarm level is less than the y-axis magnetic field sensor reading; and

actuating by the processor, the alarming device.

17. The method of claim 15 further comprising:

determining that the y-axis plane preset alarm level is greater than the y-axis magnetic field sensor reading;

turning off the y-axis magnetometer;

turning on the z-axis magnetometer;

receiving by the processor, a z-axis magnetic field sensor reading from the z-axis magnetometer; and

comparing by the processor, the z-axis magnetic field sensor reading to a z-axis plane preset alarm level.

18. The method of claim 17 further comprising:

determining by the processor, that the z-axis plane preset alarm level is less than the z-axis magnetic field sensor reading; and

actuating by the processor, the alarming device.

19. The method of claim 17 further comprising:

determining by the processor, that the z-axis plane preset alarm level is greater than the z-axis magnetic field sensor reading;

turning off the z-axis magnetometer.

20. The method of claim 17 further comprising:

receiving by the processor, a radio frequency field sensor reading from the radio frequency sensor;

comparing by the processor, the radio frequency field sensor reading to a radio frequency field preset alarm level;

determining by the processor, that the radio frequency field preset alarm level is less than the radio frequency field sensor reading; and

actuating the alarming device.

21. The method of claim 17 further comprising:

receiving by the processor, a radio frequency field sensor reading from the radio frequency field sensor;

comparing by the processor, the radio frequency field sensor reading to a radio frequency field preset alarm level;

determining by the processor, that the radio frequency field preset alarm level is less than the radio frequency field sensor reading; and

actuating by the processor, the alarming device.

22. The method of claim 15 further comprising:

turning on the x-axis magnetometer;

actuating a test button coupled to offset driving circuitry;

applying offset currents within each of the x-axis magnetometer, the y-axis magnetometer, the z-axis magnetometer from the offset driving circuitry;

generating temporary magnetic fields within each of the x-axis magnetometer, the y-axis magnetometer, and the z-axis magnetometer greater than pre-set alarm levels of each of the x-axis magnetometer, the y-axis magnetometer, and the z-axis magnetometer;

comparing by the processor, the x-axis magnetic field sensor reading to an x-axis plane preset alarm level;

determining by the processor, that the x-axis plane preset alarm level is less than the x-axis magnetic field sensor reading; and

actuating by the processor, the alarming device.

23. The method of claim 22 further comprising:

actuating a reset button coupled to the processor;

turning the alarming device off; and

returning the personal monitoring device to a normal monitoring state.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2014
From: MCCOLLOUGH, NORMAN DARNELL, JR.; COCHRANE, PHILIP C.; KAVET, ROBERT IRA
To: ELECTRIC POWER RESEARCH INSTITUTE
Reel/Frame 032731/0181 →
Continuity (2)
Provisional Application 61735158 · Dec 10, 2012
Related Publication 20140159716A1 · Jun 12, 2014