IP Library Granted Patent US 9,462,666
Granted Patent B2
US 9,462,666 · App. 14/828,815 · Granted Oct 4, 2016

Electrodeless fluorescent ballast driving circuit and resonance circuit with added filtration and protection

Inventors: Andrew C Pickett (Pasadena, CA); Naveen R Tera (Sandy, UT); Robert V Rawlings (Sandy, UT)
Assignee: ENVIRONMENTAL POTENTIALS
H05B41/282H05B41/38
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Quick Facts
Patent No.
US 9,462,666
App. No.
14/828,815
Granted
Oct 4, 2016
Kind
B2
Abstract

A ballast circuit for a lighting system using an induction fluorescent lamp utilizes an AC-DC rectification circuit, a DC-DC boost power conversion circuit, a DC-AC half bridge inverter circuit, and a resonating circuit to ignite the lamp and maintain substantially constant power output of the lamp, while the DC-AC half bridge inverter circuit is further comprised of a gate isolation transformer connected in a half bridge inverter schematic which uses a ballast integrated circuit (IC) to drive a high side MOSFET and a low side MOSFET and the gate isolation transformer electrically isolates a gate signal to the high side MOSFET.

Claims (29)

1. A ballast circuit for a lighting system using an induction fluorescent lamp, comprising:

an AC-DC rectification circuit;

a DC-DC boost power conversion circuit;

a DC-AC half bridge inverter circuit; and

a resonating circuit to ignite the lamp and maintain substantially constant power output of the lamp;

wherein the DC-AC half bridge inverter circuit is further comprised of a gate isolation transformer connected in a half bridge inverter schematic which uses a ballast integrated circuit (IC) to drive a high side MOSFET and a low side MOSFET;

wherein the gate isolation transformer electrically isolates a gate signal to the high side MOSFET; and

wherein the gate isolation transformer is part of a driver circuit comprising:

a coupling capacitor placed in series behind a high output signal and a first primary side of the isolation gate transformer; and

a diode connected across a gate resistor, wherein an anode of the diode is connected to a first secondary side of the isolation gate transformer and a cathode of the diode is connected to at least one of the following:

a zener diode connected across a gate and a source of the high side MOSFET, the gate of the high side MOSFET and a gate-source resistor connected across the gate and the source of the high side MOSFET;

wherein a second primary side of the isolation gate transformer is connected to a digital ground; and

wherein a second secondary side of the isolation gate transformer is connected to the source of the high side MOSFET.

2. The ballast circuit of claim 1 , wherein the ballast circuit is protected with a common mode, differential mode filter and a waveform correction circuit is added in parallel.

3. The ballast circuit of claim 1 , wherein a winding ratio of the gate isolation transformer is 1:1, input and output signals of the gate isolation transformer are in phase and the coupling capacitor is connected in series with primary windings of the gate isolation transformer.

4. The ballast circuit of claim 1 , wherein a pair of zener diodes is connected across the gate and the source of the high side MOSFET to make sure that the gate voltage of the high side MOSFET does not exceed a specified negative voltage or a specified positive voltage.

5. The ballast circuit of claim 1 , wherein the resonating circuit comprises a resonating inductor in series between a DC blocking capacitor and a resonating capacitor connected in parallel with the induction fluorescent lamp and the value of the resonating capacitor is smaller than the DC blocking capacitor.

6. The ballast circuit of claim 5 , wherein the induction fluorescent lamp has a running frequency of 199±5 kHz with a preheat frequency of 466±5 kHz and a resonating frequency of 231±5 kHz.

7. The ballast circuit of claim 6 , wherein the ballast circuit is protected with a common mode, differential mode filter and a waveform correction circuit is added in parallel.

8. The ballast circuit of claim 5 , wherein a Q-curve of the induction fluorescent lamp is shifted such a way that the difference between a resonance frequency and a running frequency is 30 kHz or greater when the ballast circuit is operating at 85° C.

9. A ballast circuit for a lighting system using an induction fluorescent lamp, comprising:

an AC-DC rectification circuit;

a DC-DC boost power conversion circuit;

a DC-AC half bridge inverter circuit; and

a resonating circuit to ignite the lamp and maintain substantially constant power output of the lamp;

wherein the DC-AC half bridge inverter circuit is further comprised of a gate isolation transformer connected in a half bridge inverter schematic which uses a ballast integrated circuit (IC) to drive a high side MOSFET and a low side MOSFET;

wherein the gate isolation transformer electrically isolates a gate signal to the high side MOSFET;

wherein the resonating circuit comprises a resonating inductor in series between a DC blocking capacitor and a resonating capacitor connected in parallel with the induction fluorescent lamp and the value of the resonating capacitor is smaller than the DC blocking capacitor; and

wherein a Q-curve of the induction fluorescent lamp is shifted such a way that the difference between a resonance frequency and a running frequency is 30 kHz or greater when the ballast circuit is operating at 85° C.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 18, 2015
From: PICKETT, ANDREW C; TERA, NAVEEN R; RAWLINGS, ROBERT V
To: ENVIRONMENTAL POTENTIALS
Reel/Frame 036349/0061 →
Continuity (2)
Provisional Application 62039372 · Aug 19, 2014
Related Publication 20160057843A1 · Feb 25, 2016