IP Library › Granted Patent US 8,702,841
Granted Patent B2
US 8,702,841 · App. 13/449,138 · Granted Apr 22, 2014

Adsorber replacement notification for a portable gas concentrator

Inventors: Brenton Taylor (Kenwood, CA); Peter Hansen (Santa Barbara, CA)
Assignee: Inogen, Inc.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,702,841
App. No.
13/449,138
Granted
Apr 22, 2014
Kind
B2
Abstract

A portable oxygen concentrator designed for medical use where the usable life of the sieve beds, adsorbers, is monitored and communicated to the user or service provider through a user interface or a transmitted signal. The concentrator is designed so that the beds are easily replaced by the user or a field technician. Preferably PSA cycle operating parameters appropriate to the replaced beds can be easily reset if needed by the user or service provider.

Claims (67)

1. For portable oxygen concentrator including a PSA/VPSA/VSA system with adsorbent beds, a programmable controller, a user interface, and sensors including at least one oxygen purity sensor, a method for predicting remaining operating life comprising;

monitoring the oxygen sensor with the controller; and,

calculating the amount of operating lifetime remaining using an algorithm executing on the programmable controller;

wherein the concentrator has an output gas flow of 10 lpm or less;

wherein the algorithm is:

Remaining % Life=100−10(95−[O2]);

where [O2] is Oxygen purity.

2. For portable oxygen concentrator including a PSA/VPSA/VSA system with adsorbent beds, a programmable controller, a user interface, and sensors including at least one oxygen purity sensor, a method for predicting remaining operating life comprising;

monitoring the oxygen sensor with the controller; and,

calculating the amount of operating lifetime remaining using an algorithm executing on the programmable controller;

wherein the concentrator has an output gas flow of 10 lpm or less;

wherein the portable oxygen concentrator further includes at least one product pressure sensor, one elapsed time monitor and one run time monitor, further comprising monitoring the run and elapsed time monitors with the programmable controller, wherein the algorithm is;

Remaining % Life=100−10(95−[O2])−10( P Ave −P T )−2*CFA−2*CBA−OH/1000−1/DC;

where;

Oxygen concentration, [O 2 ]

Product Pressure (PSI), P avg

Target Product Pressure (PSI), P T

Column Balance Adjustment, CBA

Cycle Frequency Adjustment, CFA

Operating Hours, OH

Fractional Duty Cycle, DC.

3. For portable oxygen concentrator including a PSA/VPSA/VSA system with adsorbent beds, a programmable controller, a user interface, and sensors including at least one oxygen purity sensor, a method for predicting remaining operating life comprising;

monitoring the oxygen sensor with the controller; and,

calculating the amount of operating lifetime remaining using an algorithm executing on the programmable controller;

wherein the concentrator has an output gas flow of 10 lpm or less;

wherein the portable oxygen concentrator further includes at least one product pressure sensor, one elapsed time monitor, one run time monitor, and one temperature monitor, further comprising monitoring the run and elapsed time monitors and the temperature monitor with the programmable controller, wherein the algorithm is;

Remaining % Life=100−5(95−[O2])−5( P Ave −P T )−2*CFA−2*CBA−OH/1000−2/DC−( T o −35)−( T s −25);

where;

Oxygen concentration, [O 2 ]

Product Pressure (PSI), P avg

Target Product Pressure (PSI), P T

Column Balance Adjustment, CBA

Cycle Frequency Adjustment, CFA

Operating Hours, OH

Fractional Duty Cycle, DC

Operating Temperature, T o

Storage Temperatures, T s .

4. For portable oxygen concentrator including a PSA/VPSA/VSA system with adsorbent beds, a programmable controller, a user interface, and sensors including at least one oxygen purity sensor, a method for predicting remaining operating life comprising;

monitoring the oxygen sensor with the controller; and,

calculating the amount of operating lifetime remaining using an algorithm executing on the programmable controller;

wherein the concentrator has an output gas flow of 10 lpm or less;

wherein the portable oxygen concentrator further includes at least one product pressure sensor, one elapsed time monitor and one run time monitor, further comprising monitoring the run and elapsed time monitors with the programmable controller, wherein the algorithm is;

Remaining % Life=100−10( P Ave −P T )−2*CFA−2*CBA−OH/1000−1/DC;

where;

Oxygen concentration, [O 2 ]

Product Pressure (PSI), P avg

Target Product Pressure (PSI), P T

Column Balance Adjustment, CBA

Cycle Frequency Adjustment, CFA

Operating Hours, OH

Fractional Duty Cycle, DC.

5. For portable oxygen concentrator including a PSA/VPSA/VSA system with adsorbent beds, a programmable controller, a user interface, and sensors including at least one oxygen purity sensor, a method for predicting remaining operating life comprising;

monitoring the oxygen sensor with the controller; and,

calculating the amount of operating lifetime remaining using an algorithm executing on the programmable controller;

wherein the concentrator has an output gas flow of 10 lpm or less;

wherein the portable oxygen concentrator further includes at least one product pressure sensor, one elapsed time monitor, one run time monitor, and one temperature monitor, further comprising monitoring the run and elapsed time monitors and the temperature monitor with the programmable controller, wherein the algorithm is;

Remaining % Life=100−5( P Ave −P T )−2*CFA−2*CBA−OH/1000−2/DC−( T o −35)−( T s −25);

where;

Oxygen concentration, [O 2 ]

Product Pressure (PSI), P avg

Target Product Pressure (PSI), P T

Column Balance Adjustment, CBA

Cycle Frequency Adjustment, CFA

Operating Hours, OH

Fractional Duty Cycle, DC

Operating Temperature, T o

Storage Temperatures, T s .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2012
From: TAYLOR, BRENTON; HANSEN, PETER
To: INOGEN, INC.
Reel/Frame 028061/0784 →
Continuity (1)
Related Publication 20130269519A1 · Oct 17, 2013