IP Library Granted Patent US 10,224,903
Granted Patent B2
US 10,224,903 · App. 15/665,275 · Granted Mar 5, 2019

Method and apparatus for sensing an environmental condition during frequency hopping

Inventors: Shahriar Rokhsaz (Austin, TX); Greg Pitner (Austin, TX)
Assignee: RFMicron, Inc.
H03J3/22G06K7/10148G06K7/10336G06K19/0717G06K19/0723H01Q1/2225H01Q1/36H01Q1/38H01Q7/005H01Q9/0407H01Q9/285H01Q13/106H03H7/40H03J3/20H04B5/0062H04B5/0081H03J2200/10H04W4/70
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Quick Facts
Patent No.
US 10,224,903
App. No.
15/665,275
Granted
Mar 5, 2019
Kind
B2
Abstract

A method includes receiving a series of radio frequency (RF) signals, where, from RF signal to RF signal of the series of RF signals, a carrier frequency is changed in accordance with a frequency hopping pattern. The method further includes, while receiving the series of RF signals, sensing an environmental condition by, for a frequency hop of at least some frequency hops of the frequency hopping pattern, adjusting a characteristic of a wireless sensor to maintain proximal alignment of a resonant frequency of the wireless sensor with the carrier frequency corresponding to a present frequency of the at least some frequency hops and generating a value to represent the adjustment of the characteristic, where a set of values is generated for the at least some frequency hops and where the set of values is used to determine a sensed value of the environmental condition.

Claims (40)

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

receiving a series of radio frequency (RF) signals, wherein, from RF signal to RF signal of the series of RF signals, a carrier frequency is changed in accordance with a frequency hopping pattern; and

while receiving the series of RF signals, sensing an environmental condition by:

for a frequency hop of at least some frequency hops of the frequency hopping pattern:

adjusting a characteristic of the wireless sensor to maintain proximal alignment of a resonant frequency of the wireless sensor with the carrier frequency corresponding to a present frequency of the at least some frequency hops; and

generating a value to represent the adjustment of the characteristic, wherein a set of values is generated for the at least some frequency hops, wherein the set of values is used to determine a sensed value of the environmental condition.

2. The method of claim 1 , wherein the frequency hopping pattern comprises:

a periodic, a non-sequential, or a random pattern to switch the carrier frequency of a plurality of carrier frequencies to another carrier frequency of the plurality of carrier frequencies.

3. The method of claim 1 , wherein the adjusting the characteristic comprises:

adjusting capacitance of a tank circuit coupled to an antenna that receives the series of RF signals, wherein the wireless sensor includes the tank circuit and the antenna.

4. The method of claim 1 , wherein the adjusting the characteristic comprises one of:

adjusting impedance of an antenna of the wireless sensor to affect the resonant frequency;

adjusting capacitance of a capacitor of the wireless sensor to affect the resonant frequency, wherein the capacitor includes one or more of a varactor and a selectable capacitor bank; and

adjusting inductance of an inductor of the wireless sensor to affect the resonant frequency.

5. The method of claim 1 further comprises:

sending, by the wireless sensor, the set of values for the at least some frequency hops to a sensor computing device, wherein the sensor computing device normalizes the set of values to produce a normalized value that represents the sensed value of the environmental condition; or

normalizing, by the wireless sensor, the set of values to produce the normalized value and sending, by the wireless sensor, the normalized value to the sensor computing device.

6. The method of claim 5 , wherein the normalizing the set of values comprises:

identifying a subset of the values of the set of values corresponding to a subset of carrier frequencies of a plurality of frequencies of the series of RF signals; and

normalizing the subset of values based on frequency differences between the subset of carrier frequencies and differences between values of the subset of values.

7. A wireless sensor comprises:

a radio frequency (RF) receiving circuit operable to receive a series of radio frequency (RF) signals, wherein, from RF signal to RF signal of the series of RF signals, a carrier frequency is changed in accordance with a frequency hopping pattern; and

a processing module operably coupled to the RF receiving circuit, wherein the processing module is operable to sense an environmental condition by:

for a frequency hop of at least some frequency hops of the frequency hopping pattern:

adjusting a characteristic of the wireless sensor to maintain proximal alignment of a resonant frequency of the wireless sensor with the carrier frequency corresponding to a present frequency of the at least some frequency hops; and

generating a value to represent the adjustment of the characteristic, wherein a set of values is generated for the at least some frequency hops, wherein the set of values is used to determine a sensed value of the environmental condition.

8. The wireless sensor of claim 7 , wherein the frequency hopping pattern comprises:

a periodic, a non-sequential, or a random pattern to switch the carrier frequency of a plurality of carrier frequencies to another carrier frequency of the plurality of carrier frequencies.

9. The wireless sensor of claim 7 , wherein the processing module is operable to adjust the characteristic by:

adjusting capacitance of a tank circuit coupled to an antenna that receives the series of RF signals, wherein the wireless sensor includes the tank circuit and the antenna.

10. The wireless sensor of claim 7 , wherein the processing module is operable to adjust the characteristic by one of:

adjusting impedance of an antenna of the wireless sensor to affect the resonant frequency;

adjusting capacitance of a capacitor of the wireless sensor to affect the resonant frequency, wherein the capacitor includes one or more of a varactor and a selectable capacitor bank; and

adjusting inductance of an inductor of the wireless sensor to affect the resonant frequency.

11. The wireless sensor of claim 7 further comprises:

an RF transmitting circuit operable to transmit the set of values to a sensor computing device, wherein the sensor computing device is operable to normalize the set of values to produce a normalized value that represents a sensed value of the environmental condition; or

the processing module operable to normalize the set of values to produce the normalized value and the RF transmitting circuit operable to send the normalized value to the sensor computing device.

12. The wireless sensor of claim 11 , wherein the set of values is normalized by:

identifying a subset of the values of the set of values corresponding to a subset of carrier frequencies of a plurality of frequencies of the series of RF signals; and

normalizing the subset of values based on frequency differences between the subset of carrier frequencies and differences between values of the subset of values.

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 7, 2017
From: ROKHSAZ, SHAHRIAR; PITNER, GREG
To: RFMICRON, INC.
Reel/Frame 043479/0253 →
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
Continuation In Part 13467925 · May 9, 2012
Continuation In Part 13209425
Continuation In Part 12462331
Division 11601085
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 20170331460A1 · Nov 16, 2017