Claims
- 1. A method of calculating a blood flow rate in an area, the method comprising:
generating an electrical signal having a power output; irradiating the area with the electrical signal; determining an incident power density of the electrical signal as a function of the power output and dimensions of the area being irradiated; heating the area in response to irradiating the area; sensing the temperature of the area within a time period; calculating the rate of temperature change of the area; determining an absorption coefficient; and calculating the blood flow rate in the area based on the power density of the electrical signal, the absorption coefficient, and the rate of temperature change of the area.
- 2. The method as claimed in claim 1 wherein the electrical signal includes a frequency in the millimeter wave band.
- 3. The method as claimed in claim 1 wherein the electrical signal includes a frequency in the range of about 20 GHz to about 300 GHz.
- 4. The method as claimed in claim 1 wherein the electrical signal includes a frequency in the range of about 80 GHz to about 120 GHz.
- 5. The method as claimed in claim 1 wherein the area is a tissue of a human.
- 6. The method as claimed in claim 1 wherein the act of irradiating the area with the electrical signal includes the act of continuously irradiating the area with the electrical signal.
- 7. The method as claimed in claim 1 wherein the act of irradiating the area includes the act of irradiating the area with the electrical signal to a penetration depth in the range of about 0.1 mm to about 1.0 mm.
- 8. The method as claimed in claim 1 wherein the incident power density of the electrical signal is less than approximately 1 W/cm2.
- 9. The method as claimed in claim 1 further comprising the act of modifying at least one dimension of the electrical signal prior to the act of irradiating the area.
- 10. The method as claimed in claim 1 wherein the act of calculating the rate of temperature change of the area occurs simultaneously with the act of irradiating the area.
- 11. The method as claimed in claim 1 wherein the act of irradiating the area includes the act of directing the electrical signal in a direction that is perpendicular with respect to the area.
- 12. The method as claimed in claim 1 further comprising the acts of sensing the temperature of the area, calculating the rate of temperature change of the area, and calculating the blood flow rate in the area based on the power density of the electrical signal, the absorption coefficient, and the rate of temperature change in the area after deactivating the electrical signal.
- 13. A system for calculating blood flow rate in an area, the system comprising:
a transmitter operable to generate an electrical signal to irradiate the area, the electrical signal having a predetermined power; a temperature sensor operable to be positioned adjacent to the area and to sense the change in temperature of the area over time; and a processor coupled to the transmitter and the temperature sensor, the processor operable to
determine an absorption coefficient of the area, and compute the blood flow rate in the area based on the power of the electrical signal, a size of the area, the rate of change in temperature of the area, and the absorption coefficient of the area.
- 14. The system as claimed in claim 13 wherein the area is a tissue of a human.
- 15. The system as claimed in claim 13 wherein the temperature sensor includes at least one of a thermocouple, a thermistor, an infrared camera, and a combination thereof.
- 16. The system as claimed in claim 13 further comprising an open-ended waveguide coupled to the transmitter and operable to modify at least one dimension of the electrical signal prior to the electrical signal irradiating the area.
- 17. The system as claimed in claim 13 further comprising a horn antenna coupled to the transmitter and operable to modify at least one dimension of the electrical signal prior to the electrical signal irradiating the area.
- 18. The system as claimed in claim 13 wherein the transmitter and the temperature sensor do not contact the area while irradiating the area and sensing the change in temperature of the area.
- 19. The system as claimed in claim 13 wherein the electrical signal includes a frequency in the range of about 20 GHz to about 300 GHz.
- 20. The system as claimed in claim 13 wherein the electrical signal includes a frequency in the range of about 80 GHz to about 120 GHz.
- 21. The system as claimed in claim 13 wherein a power density of the electrical signal is less than approximately 1 W/cm2.
- 22. The system as claimed in claim 13 further comprising a dielectric lens positioned between the transmitter and the area and operable to focus the electrical signal onto a specified portion of the area.
- 23. A method comprising:
applying an electrical signal to an area of a tissue; detecting a change of temperature in the area of the tissue over a period of time while the electrical signal is applied to the area of the tissue, the electrical signal having an incident power density; determining an absorption coefficient of the area of the tissue; and determining a health status of a person based on the incident power density of the electrical signal, the change in temperature value, and the absorption coefficient.
- 24. The method as claimed in claim 23 wherein the electrical signal includes a frequency in the range of about 20 GHz to about 300 GHz.
- 25. The method as claimed in claim 23 wherein the electrical signal includes a frequency in the range of about 80 GHz to about 120 GHz.
- 26. The method as claimed in claim 23 wherein the act of determining a health status of a person includes the act of calculating a blood flow rate based on the power density of the electrical signal and the change in temperature value.
- 27. The method as claimed in claim 23 wherein the tissue is a skin of a human.
- 28. The method as claimed in claim 23 wherein the act of detecting a change in temperature value of the area over a period of time occurs at least one minute after commencing application of the electrical signal on the area of the tissue.
- 29. A device for determining a blood flow rate, the device comprising:
means for applying an electrical signal to an area, the electrical signal having a power output; means for sensing temperature changes in the area within a predetermined period of time; and means for calculating the blood flow rate based on characteristics of the electrical signal and characteristics of the area.
- 30. The device as claimed in claim 29 further comprising means for determining a power density based on the power output of the electrical signal and a size of the area.
- 31. The device as claimed in claim 29 wherein the applying means is operable to focus the electrical signal to a specified area of the tissue.
- 32. The device as claimed in claim 29 wherein the sensing means is operable to sense changes in temperature of the tissue during the time the applying means is applying the electrical signal to the tissue.
- 33. A device for determining a blood flow rate in a tissue, the device comprising:
a transmitter operable to transmit an electrical signal having a frequency in the range of about 20 GHz to about 300 GHz; a temperature sensor positioned adjacent the tissue and operable to sense a temperature value of the tissue in response to the application of the electrical signal on the tissue; and a processor electrically connected to the temperature sensor, the processor including
an acquisition module operable to receive the temperature value, and an analysis module operable to determine a blood flow rate based on the temperature value, a power density value, and an absorption coefficient of the tissue.
- 34. The device as claimed in claim 33 further comprising an open-ended waveguide electrically connected to the transmitter and operable to focus the electrical signal to an area of the tissue.
- 35. The device as claimed in claim 33 wherein the processor includes an output module operable to provide the blood flow rate and associated data to an output device.
- 36. The device as claimed in claim 33 further comprising an open-ended waveguide coupled to the transmitter and operable to modify at least one dimension of the electrical signal prior to the application of the electrical signal to the tissue.
- 37. The device as claimed in claim 33 further comprising a horn antenna coupled to the transmitter and operable to modify at least one dimension of the electrical signal prior to the application of the electrical signal to the tissue.
- 38. The device as claimed in claim 33 further comprising a dielectric lens positioned between the transmitter and the tissue and operable to focus the electrical signal onto a specified portion of the tissue.
RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/466,020, filed Apr. 25, 2003. The contents of Application No. 60/466,020 are hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60466020 |
Apr 2003 |
US |