IP Library › Granted Patent US 10,354,104
Granted Patent B2
US 10,354,104 · App. 16/241,737 · Granted Jul 16, 2019

Real-time location system (RTLS) tag with battery and energy harvesting, which transmits a location signal when the battery is inoperative

Inventor: John A. Swart (Grand Rapids, MI)
Assignee: Infinate Leap Holdings, LLC
G06K7/10158H02J7/35H04B1/40H04W4/029H02J7/345H04M1/72519H04M1/72522H04W8/245H04W88/02
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Quick Facts
Patent No.
US 10,354,104
App. No.
16/241,737
Granted
Jul 16, 2019
Kind
B2
Abstract

An energy harvesting tag for use in a real time location system (RTLS) includes a battery powered transceiver where a photocell and energy storage device are used to provide power to the transceiver and a microprocessor when the battery is dead or inoperative.

Claims (52)

1. A tag for use in a real-time locating system (RTLS) having energy harvesting tags, beacons, bridges, and a central location server for providing people and asset tag locating, the RTLS system comprising:

at least one beacon equipped with a motion sensor and transmitting motion status sensed at a beacon location;

at least one bridge for receiving those radio transmissions from the at least one beacon such that the radio transmissions include motion-status information for the location where the beacon is mounted and forwarding the motion status to a location engine server, and further where the at least one bridge receives radio transmissions from at least one tag and measures characteristics of the received tag transmissions, including received signal strength

at least one energy-harvesting tag for wirelessly transmitting its identification to the at least one bridge, where the at least one tag includes an accelerometer for reporting its motion status to the at least one bridge and a location engine server;

a central location-engine server utilizing a plurality of location-determining methods comprising:

a first location method for calculating a first location estimate for the at least one tag, based on characteristics of advertisements transmitted by the at least one tag, received by a fixed infrastructure of bridges, and transmitted to the central location server;

a second location method for calculating a second location estimate for the at least one tag, based on comparing changes in the history of motion status in the beacons' rooms, coincident changes in the received signal strength of advertisements from tags, and the coincident history of changes in accelerometer-determined motion status of one or more tags that are likely in the room; and

a third location method for combining the first and second location estimates to determine a location result for the at least one tag;

where the at least one energy-harvesting tag is comprised of:

a wireless transceiver;

a microprocessor for operating the transceiver;

a battery for powering the transceiver and microprocessor;

an energy harvesting device connected to an energy storage device;

a capacitor connected to the energy storage device; and

wherein the energy harvesting device charges the energy storage device so the capacitor can power the microprocessor and transceiver for performing limited tasks upon battery depletion.

2. An energy harvesting tag system for use in a real-time location system (RTLS) for providing people and asset tag locating, comprising:

at least one energy-harvesting tag wirelessly transmitting its identification to at least one bridge;

an accelerometer for reporting the asset tag's motion status; and

wherein the RTLS further comprises:

at least one beacon equipped with a motion sensor for transmitting motion status sensed at a beacon location;

at least one bridge for receiving those radio transmissions from the at least one beacon such that the radio transmissions include motion-status information for the location where the beacon is mounted and forwarding the motion status to a location engine server, and further where the at least one bridge receives radio transmissions from at least one tag and measures characteristics of the received tag transmissions, including received signal strength;

at least one energy-harvesting tag for wirelessly transmitting its identification to the at least one bridge, where the at least one tag includes an accelerometer for reporting its motion status to the at least one bridge and a location engine server;

a central location-engine server for receiving motion status information and utilizing a plurality of location-determining methods comprising:

a first location method for calculating a first location estimate for the at least one tag, based on characteristics of advertisements transmitted by the at least one tag, received by a fixed infrastructure of bridges, and transmitted to the central location server;

a second location method for calculating a second location estimate for the at least one tag, based on comparing changes in the history of motion status in the beacons' rooms, coincident changes in the received signal strength of advertisements from tags, and the coincident history of changes in accelerometer-determined motion status of one or more tags that are likely in the room; and

a third location method for combining the first and second location estimates to determine a location result for the at least one tag.

3. The energy harvesting tag system as in claim 2 , wherein the tag comprising:

a wireless transceiver;

a microprocessor for operating the transceiver;

a battery for powering the transceiver and microprocessor;

an energy harvesting device connected to an energy storage device;

a capacitor connected to the energy storage device; and

wherein the energy harvesting device charges the energy storage device so the capacitor can power the microprocessor and transceiver for performing limited tasks upon battery depletion.

4. The energy harvesting tag system as in claim 3 , wherein the tag can transmit with a dead battery.

5. The energy harvesting tag system as in claim 3 , wherein the tag operates in a first mode of operation when the tag provides adequate battery power and a second mode of operation when the tag provides less than adequate battery power.

6. The energy harvesting tag system as in claim 5 , wherein the first mode of operation is a frequent transmission, and the second mode of operation is a less frequent transmission.

7. The energy harvesting tag system as in claim 2 , the beacon comprising:

a transceiver;

a microprocessor for operating the transceiver;

a battery for powering the transceiver and the microprocessor;

an energy harvesting device connected to an energy storage device;

a capacitor connected to the energy storage device and microprocessor; and

wherein the energy harvesting device charges the energy storage device so the capacitor can power the microprocessor and transceiver for performing limited tasks upon battery depletion.

8. The energy harvesting tag system as in claim 2 , the tag comprising:

a wireless transceiver;

a microprocessor for operating the transceiver;

a battery for powering the transceiver and microprocessor; and

an energy harvesting device connected to an energy storage device; and

wherein the energy harvesting device charges the energy storage device to power the microprocessor and transceiver for performing limited tasks upon battery depletion.

9. The energy harvesting tag system as in claim 8 , wherein the tag can transmit with a dead battery.

10. The energy harvesting tag system as in claim 8 , wherein the tag operates in a first mode of operation when the tag provides adequate battery power and a second mode of operation when the tag provides less than adequate battery power.

11. The energy harvesting tag system of claim 10 , wherein the first mode of operation is a frequent transmission, and the second mode of operation is a less frequent transmission.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2021
From: INFINITE LEAP HOLDINGS, LLC
To: INFINITE LEAP, INC.
Reel/Frame 057457/0421 →
CORRECTIVE ASSIGNMENT TO CORRECT THE CONVEYING PARTY OF STATE INCORPORATION ON DOCUMENT PREVIOUSLY RECORDED AT REEL: 48595 FRAME: 031. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Sep 9, 2021
From: INFINITE LEAP, INC.
To: INFINITE LEAP HOLDINGS, LLC
Reel/Frame 057639/0846 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2019
From: INFINITE LEAP, INC.
To: INFINITE LEAP HOLDINGS, LLC
Reel/Frame 048595/0031 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2019
From: SWART, JOHN A.
To: INFINITE LEAP, INC.
Reel/Frame 047966/0596 →
Continuity (5)
Continuation In Part 16010732 · Jun 18, 2018
Continuation In Part 15610072 · May 31, 2017
Provisional Application 62623561 · Jan 30, 2018
Provisional Application 62343242 · May 31, 2016
Related Publication 20190138767A1 · May 9, 2019
Cited By (1)
US 12,196,871