IP Library Granted Patent US 7,564,201
Granted Patent B2
US 7,564,201 · App. 11/462,682 · Granted Jul 21, 2009

Intelligent gas discharge lamp control circuit

Assignee: Clearwater Technology, LLC
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 7,564,201
App. No.
11/462,682
Granted
Jul 21, 2009
Kind
B2
Abstract

An electronic control circuit for intelligently controlling a gas discharge lamp associated with an HVAC system. The circuit includes a microcontroller having a memory containing instructions executable by the microcontroller to process a plurality of dynamic lamp state signals and dynamically generate control signals in at least partial dependence on a plurality of pre-established control parameters to maintain the gas discharge lamp in a minimum operable state defined by the pre-established control parameters. The gas discharge lamp is coupled to an electronic ballast circuit configured to dynamically control a current flow through the gas discharge lamp in dependence on the dynamically generated control signals sent by the microcontroller. The executable instructions cause the microcontroller to iteratively determine the minimum operable state of the gas discharge tube in at least partial dependence on a voltage excursion included as one of the plurality of dynamic lamp state signals.

Claims (41)

1. An electronic control circuit for intelligently controlling a gas discharge lamp associated with an HVAC system comprising:

a microcontroller having operatively coupled thereto;

a memory including instructions executable by the microcontroller to process a plurality of dynamic lamp state signals and dynamically generate control signals in at least partial dependence on a plurality of pre-established control parameters to maintain the gas discharge lamp in a minimum operable state defined by the pre-established control parameters;

an electronic ballast circuit configured to dynamically control a current flow through the gas discharge lamp in dependence on the dynamically generated control signals; and,

wherein the microcontroller iteratively determines the minimum operable state of the gas discharge tube in at least partial dependence on a voltage excursion included as one of the plurality of dynamic lamp state signals.

2. The electronic control circuit according to claim 1 further including an airflow sensor operatively coupled to the microcontroller and configured to provide airflow state signals to the microcontroller in dependence on airflow through the HVAC system.

3. The electronic control circuit according to claim 2 further including an ozone sensor operatively coupled to the microcontroller and configured to provide ozone sensor signals to the microcontroller in dependence on an ozone concentration in the HVAC system.

4. The electronic control circuit according to claim 3 further including a power supply configured to provide sufficient electrical power to the microcontroller, electronic ballast circuit and the gas discharge lamp in an isolated ground arrangement such that voltage measurements are relative to a negative portion of an input power sine wave.

5. The electronic control circuit according to claim 4 further including a user interface operatively coupled to the microcontroller and configured to receive user inputs to display a state of at least one of, the airflow sensor, the gas discharge lamp, the ozone sensor and the power supply.

6. The electronic control circuit according to claim 1 wherein the dynamic control signals is one of, an ON/OFF signal, a pulse width modulation signal, an output intensity signal, a user interface signal and a voltage signal.

7. The electronic control circuit according to claim 1 wherein the plurality of dynamic states of the gas discharge lamp is one of, an ON/OFF state, a preheat state, an ignition state and a dimmed state.

8. The electronic control circuit according to claim 1 wherein the dynamic lamp state signals are 0-5 volt signals measured relative to a negative portion of an input power sine wave and an isolated ground.

9. The electronic control circuit according to claim 1 wherein the plurality of pre-established control parameters is one of, an operating cycle time, an output intensity level, a service schedule time, a low ozone setpoint and a high ozone setpoint.

10. The electronic control circuit according to claim 1 wherein the gas discharge lamp is an ozone generator lamp.

11. The electronic control circuit according to claim 9 wherein the output intensity level is one of; about a 25 percent output duty cycle of the gas discharge tube in a low mode, about a 50 percent output in medium mode, 75 percent output in a high mode and 100 percent in a boost mode.

12. The electronic control circuit according to claim 9 wherein the output intensity level is incrementally adjustable by 256 discrete voltage steps.

13. The electronic control circuit according to claim 1 wherein the voltage excursion is measured relative to a negative portion of an input power sine wave and an isolated ground.

14. The electronic control circuit according to claim 12 wherein the 256 discrete voltage steps represent an output intensity range of 50%-100%.

15. The electronic control circuit according to claim 12 wherein the output intensity may be dynamically controlled at output levels below 50% by pulsing of the gas discharge lamp.

16. The electronic control circuit according to claim 1 wherein the instructions executable by the microcontroller further includes instructions to adjust a voltage excursion detection sensitivity in at least partial dependence one or more of the plurality of pre-established control parameters.

17. An electronic control circuit for intelligently controlling a pair of gas discharge lamps associated with an HVAC system comprising:

a microcontroller having operatively coupled thereto;

a memory including instructions executable by the microcontroller to dynamically generate control signals in at least partial dependence on a plurality of optically isolated input signals;

a first electronic ballast configured to control a first current flow through an ozone generation lamp in dependence on a portion of the dynamically generated control signals;

a second electronic ballast configured to control a second current flow through a biocide lamp in dependence on another portion of the dynamically generated control signals;

a power supply operatively coupled to the microcontroller, the first electronic ballast and the second electronic ballast; the power supply including a separate isolated ground having a different voltage potential from a common ground.

18. The electronic control circuit according to claim 17 wherein the plurality of optically isolated input signals includes voltage signals, current signals, airflow state sensor signals and ozone sensor signals.

19. The electronic control circuit according to claim 17 wherein the plurality of input signals includes a voltage signal derived from an operational state of the power supply.

20. The electronic control circuit according to claim 18 wherein the airflow sensor is configurable to control one of, the biocide lamp, ozone generation lamp and any combination thereof in dependence on various airflow thresholds included in one or more of the plurality of pre-established control parameters to compensate for dynamic air flow variations.

21. An electronic control circuit for intelligently controlling a pair of disparate gas discharge lamps associated with an HVAC system comprising:

a microcontroller having operatively coupled thereto;

a memory including instructions executable by the microcontroller to process a plurality of input signals and dynamically generate control signals for each of the gas discharge lamps in at least partial dependence on a plurality of pre-established control parameters to maintain the gas discharge lamps in states defined by the pre-established control parameters;

a first electronic ballast circuit configured to control a current flow through either an ozone generation lamp or a first biocide lamp in at least partial dependence on voltage dependent control signals received from the microcontroller; and,

a second electronic ballast circuit configured to control a current flow through a second biocide lamp in at least partial dependence on the voltage dependent control signals received from the microcontroller.

22. The electronic control circuit according to claim 21 the plurality of input signals includes airflow state signals, ozone sensor signals, current signals, voltage signals and ON/OFF state signals.

23. The electronic control circuit according to claim 22 wherein the dynamically generated control signals associated with the ozone generation lamp is generally dependent on the ozone sensor signals.

24. The electronic control circuit according to claim 22 wherein the voltage dependent control signals comprises a ground isolated 0-5V signal measured relative to a negative portion of an input power sine wave and the isolation ground.

25. The electronic control circuit according to claim 22 wherein the dynamically generated control signals derived from the airflow state signals controls both the ozone generation lamp and the first biocide lamp.

26. The electronic control circuit according to claim 22 wherein the ON/OFF state signals is associated with either a relay state or a user interface switch.

27. The electronic control circuit according to claim 21 wherein the ozone generation lamp is iteratively controlled by the microcontroller to maintain operation at a lowest possible operating intensity in at least partial dependence on the plurality of input signals.

28. The electronic control circuit according to claim 21 wherein the microcontroller ignites the biocide lamp only after a sufficient warm-up period in dependence on a significant increase in resistance across a filament associated with the biocide lamp using an electronic ballast circuit lacking an internal dimming circuit.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded Mar 24, 2019
From: JOHNSON BANK
To: CLEARWATER TECH, L.L.C.
Reel/Frame 048681/0569 →
SECURITY AGREEMENT Recorded Jan 7, 2014
From: CLEARWATER TECH, L.L.C.
To: JOHNSON BANK
Reel/Frame 031927/0876 →
RELEASE OF SECURITY INTEREST Recorded Dec 5, 2013
From: GENERAL ELECTRIC CAPITAL CORPORATION
To: CLEARWATER TECH, L.L.C.
Reel/Frame 031720/0518 →
RELEASE OF SECURITY INTEREST Recorded Dec 5, 2013
From: ARES CAPITAL CORPORATION
To: CLEARWATER TECH, L.L.C.
Reel/Frame 031720/0913 →
SECURITY AGREEMENT Recorded Apr 22, 2011
From: CLEARWATER TECH, L.L.C.
To: ARES CAPITAL CORPORATION
Reel/Frame 026168/0859 →
SECURITY AGREEMENT Recorded Apr 18, 2011
From: CLEARWATER TECH, L.L.C.
To: GENERAL ELECTRIC CAPITAL CORPORATION, AS AGENT
Reel/Frame 026146/0390 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2006
From: STECKLING, PHILIP J.
To: CLEARWATER TECHNOLOGY, LLC
Reel/Frame 018349/0147 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2006
From: STECKLING, PHILIP J.
To: CLEARWATER TECHNOLOGY, LLC
Reel/Frame 018309/0351 →
Continuity (1)
Related Publication 20080030144A1 · Feb 7, 2008