IP Library Granted Patent US 10,164,611
Granted Patent B2
US 10,164,611 · App. 15/665,251 · Granted Dec 25, 2018

Method and apparatus for sensing environmental conditions

Inventor: Shahriar Rokhsaz (Austin, TX)
Assignee: RFMicron, Inc.
H03J3/04G06K7/10148G06K7/10336G06K19/0717G06K19/0723H03H7/40H03J3/20H04B5/0062H04B5/0081H03J2200/10H04W4/70
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Quick Facts
Patent No.
US 10,164,611
App. No.
15/665,251
Granted
Dec 25, 2018
Kind
B2
Abstract

A wireless sensor includes a radio frequency (RF) receiving circuit including a plurality of components, where impedances of the plurality of components establish a resonant frequency of the RF receiving circuit. The wireless sensor further includes a sensing element that when exposed to an environmental condition, affects the resonant frequency of the RF receiving circuit. The wireless sensor further includes a processing module that is operable to determine a first value for an adjustable element of a plurality of elements for a known environmental condition based on the resonant frequency and the carrier frequency, determine a second value for the adjustable element for an unknown environmental condition based on the resonant frequency and the carrier frequency, and determine a difference between the first and second values that corresponds to a change between the known environmental condition and the unknown environmental condition.

Claims (66)

1. A wireless sensor comprises:

a radio frequency (RF) receiving circuit operable to receive an RF signal having a carrier frequency of a plurality of carrier frequencies, the RF receiving circuit includes a plurality of components, wherein impedances of the plurality of components establish a resonant frequency of the RF receiving circuit;

a sensing element proximally positioned with respect to the RF receiving circuit, wherein, when the sensing element is exposed to an environmental condition, the sensing element affects the resonant frequency of the RF receiving circuit; and

a processing module operably coupled to the RF receiving circuit, wherein the processing module is operable to:

determine a first value for an adjustable element of a plurality of elements for a known environmental condition based on the resonant frequency of the RF receiving circuit and the carrier frequency of the RF signal, wherein the plurality of elements includes the plurality of carrier frequencies and the impedances of the plurality of components and wherein other elements of the plurality of elements are fixed elements;

determine a second value for the adjustable element for an unknown environmental condition based on the resonant frequency of the RF receiving circuit and the carrier frequency of the RF signal; and

determine a difference between the first and second values that corresponds to a change between the known environmental condition and the unknown environmental condition.

2. The wireless sensor of claim 1 , wherein the plurality of components comprises:

an antenna operable to receive the RF signal; and

a capacitor coupled to the antenna to form a tank circuit.

3. The wireless sensor of claim 2 , wherein the processing module is further operable to perform one of:

adjust characteristics of the antenna to affect the resonant frequency, wherein the antenna corresponds to the adjustable element; and

adjust capacitance of the capacitor to affect the resonant frequency, wherein the capacitor corresponds to the adjustable element, wherein the capacitor includes one or more of a varactor and a selectable capacitor bank.

4. The wireless sensor of claim 1 , wherein the plurality of components comprises:

an antenna operable to receive the RF signal;

a capacitor; and

an inductor, wherein the capacitor and at least one of the antenna and the inductor are coupled to form a tank circuit.

5. The wireless sensor of claim 4 , wherein the processing module is further operable to perform one of:

adjust characteristics of the antenna to affect the resonant frequency, wherein the antenna corresponds to the adjustable element;

adjust capacitance of the capacitor to affect the resonant frequency, wherein the capacitor corresponds to the adjustable element, and wherein the capacitor includes one or more of a varactor and a selectable capacitor bank; and

adjust inductance of the inductor to affect the resonant frequency, wherein the inductor corresponds to the adjustable element.

6. The wireless sensor of claim 1 , wherein the processing module is further operable to:

request a change in the carrier frequency of the RF signal, wherein the carrier frequency corresponds to the adjustable element.

7. The wireless sensor of claim 1 , wherein the environmental condition comprises one of:

moisture;

temperature;

proximity; and

pressure.

8. The wireless sensor of claim 1 , wherein the processing module is further operable to determine the first value by:

for a range of values for the adjustable element, determining power levels for the received RF signal; and

identifying a value of the range of values corresponding to a peak power level of the power levels as the first value.

9. The wireless sensor of claim 1 , wherein the processing module is further operable to determine the second value by:

for a range of values for the adjustable element, determining power levels for the received RF signal; and

identifying a value of the range of values corresponding to a peak power level of the power levels as the second value.

10. A method for execution by a wireless sensor, the method comprises:

receiving a radio frequency (RF) signal having a carrier frequency of a plurality of carrier frequencies, wherein an RF receiving circuit of the wireless sensor includes a plurality of components, wherein impedances of the plurality of components establish a resonant frequency of the RF receiving circuit, wherein a sensing element of the wireless sensor is proximally positioned with respect to the RF receiving circuit and to sense an environmental condition, and wherein, when the sensing element is exposed to the environmental condition, the sensing element affects the resonant frequency of the RF receiving circuit;

determining a first value for an adjustable element of a plurality of elements for a known environmental condition based on the resonant frequency of the RF receiving circuit and the carrier frequency of the RF signal, wherein the plurality of elements includes the plurality of carrier frequencies and the impedances of the plurality of components and wherein other elements of the plurality of elements are fixed elements;

determining a second value for the adjustable element for an unknown environmental condition based on the resonant frequency of the RF receiving circuit and the carrier frequency of the RF signal; and

determining a difference between the first and second values that corresponds to a change between the known environmental condition and the unknown environmental condition.

11. The method of claim 10 , wherein the plurality of components comprises:

an antenna operable to receive the RF signal; and

a capacitor coupled to the antenna to form a tank circuit.

12. The method of claim 11 further comprises one of:

adjusting characteristics of the antenna to affect the resonant frequency, wherein the antenna corresponds to the adjustable element; and

adjusting capacitance of the capacitor to affect the resonant frequency, wherein the capacitor corresponds to the adjustable element.

13. The method of claim 10 , wherein the plurality of components comprises two or more of:

an antenna operable to receive the RF signal;

a capacitor; and

an inductor, wherein the capacitor and at least one of the antenna and the inductor are coupled to form a tank circuit.

14. The method of claim 13 further comprises one of:

adjusting characteristics of the antenna to affect the resonant frequency, wherein the antenna corresponds to the adjustable element;

adjusting capacitance of the capacitor to affect the resonant frequency, wherein the capacitor corresponds to the adjustable element; and

adjusting inductance of the inductor to affect the resonant frequency, wherein the inductor corresponds to the adjustable element.

15. The method of claim 10 further comprises:

requesting a change in the carrier frequency of the RF signal, wherein the carrier frequency corresponds to the adjustable element.

16. The method of claim 10 , wherein the environmental condition comprises one of:

moisture;

temperature;

proximity; and

pressure.

17. The method of claim 10 , wherein the determining of the first value further comprises:

for a range of values for the adjustable element, determining power levels for the received RF signal; and

identifying a value of the range of values corresponding to a peak power level of the power levels as the first value.

18. The method of claim 10 , wherein the determining of the second value further comprises:

for a range of values for the adjustable element, determining power levels for the received RF signal; and

identifying a value of the range of values corresponding to a peak power level of the power levels as the second value.

Assignments (7)
SECURITY INTEREST Recorded Jan 21, 2026
From: RFMICRON, INC.
To: PAULOS, JOHN; OSTRANDER, DARYL; SAUNDERS OSTRANDER, ROYCE ROBIN; LANEY, KIRK S.; LFHHC HIGH MESA INVESTMENT GROUP; ROKHSAZ, SHAHRIAR; JACOBSSON, JACOB
Reel/Frame 074460/0911 →
SECURITY INTEREST Recorded Jan 21, 2026
From: RFMICRON, INC.
To: PAULOS, JOHN; OSTRANDER, DARYL; SAUNDERS OSTRANDER, ROYCE ROBIN; LANEY, KIRK S.; LFHHC HIGH MESA INVESTMENT GROUP; ROKHSAZ, SHAHRIAR; JACOBSSON, JACOB
Reel/Frame 074460/0921 →
SECURITY INTEREST Recorded Jan 16, 2026
From: RFMICRON, INC.
To: PAULOS, JOHN; OSTRANDER, DARYL; SAUNDERS OSTRANDER, ROYCE ROBIN; LANEY, KIRK S.; LFHHC HIGH MESA INVESTMENT GROUP; ROKHSAZ, SHAHRIAR
Reel/Frame 074394/0219 →
SECURITY INTEREST Recorded Jan 16, 2026
From: RFMICRON, INC.
To: PAULOS, JOHN; OSTRANDER, DARYL; SAUNDERS OSTRANDER, ROYCE ROBIN
Reel/Frame 074394/0229 →
RELEASE OF SECURITY INTEREST Recorded Apr 29, 2021
From: KLDC PARTNERS LP; JDFWC, LTD.; LANEY, KIRK S; PAULOS HOLDINGS, LTD.; PAULOS, JOHN; ROKHSAZ, SHAHRIAR; MIRFAKHRAEI, SEYEDEH ZINAT; CARLO STRIPPOLI 2012 FAMILY TRUST; JACOBSSON, JACOB; KINGSLEY NOELLE INVESTMENTS, LLC; SUN FABER CAPITAL, LTD.; RICH POWER MANAGEMENT, LTD.; POLITTE CAPITAL GROUP, LLC
To: RFMICRON, INC.
Reel/Frame 056105/0455 →
SECURITY INTEREST Recorded Apr 10, 2020
From: RFMICRON, INC.
To: KLDC PARTNERS LP; JDFWC, LTD.; LANEY, KIRK S; PAULOS HOLDINGS, LTD.; PAULOS, JOHN; ROKHSAZ, SHAHRIAR; MIRFAKHRAEI, SEYEDEH ZINAT; CARLO STRIPPOLI 2012 FAMILY TRUST; JACOBSSON, JACOB; KINGSLEY NOELLE INVESTMENTS, LLC; SUN FABER CAPITAL, LTD.; RICH POWER MANAGEMENT, LTD.; POLITTE CAPITAL GROUP, LLC
Reel/Frame 052371/0082 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2017
From: ROKHSAZ, SHAHRIAR
To: RFMICRON, INC.
Reel/Frame 043633/0814 →
Continuity (28)
Continuation In Part 14727523 · Jun 1, 2015
Continuation In Part 14256877 · Apr 18, 2014
Continuation In Part 13209420 · Aug 14, 2011
Continuation In Part 12462331 · Aug 1, 2009
Division 11601085 · Nov 18, 2006
Continuation In Part 13209425 · Aug 14, 2011
Continuation In Part 12462331 · Aug 1, 2009
Division 11601085 · Nov 18, 2006
Continuation In Part 13467925 · May 9, 2012
Continuation In Part 13209425 · Aug 14, 2011
Continuation In Part 12462331 · Aug 1, 2009
Division 11601085 · Nov 18, 2006
Provisional Application 62004941 · May 30, 2014
Provisional Application 62004943 · May 30, 2014
Provisional Application 62011116 · Jun 12, 2014
Provisional Application 62131414 · Mar 11, 2015
Provisional Application 61428170 · Dec 29, 2010
Provisional Application 61485732 · May 13, 2011
Provisional Application 61814241 · Apr 20, 2013
Provisional Application 61833150 · Jun 10, 2013
Provisional Application 61833167 · Jun 10, 2013
Provisional Application 61833265 · Jun 10, 2013
Provisional Application 61871167 · Aug 28, 2013
Provisional Application 61875599 · Sep 9, 2013
Provisional Application 61896102 · Oct 27, 2013
Provisional Application 61929017 · Jan 18, 2014
Provisional Application 61934935 · Feb 3, 2014
Related Publication 20170331459A1 · Nov 16, 2017