WO2008072146A2 - Lamp driver for operating a gas discharge lamp - Google Patents

Lamp driver for operating a gas discharge lamp Download PDF

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Publication number
WO2008072146A2
WO2008072146A2 PCT/IB2007/054961 IB2007054961W WO2008072146A2 WO 2008072146 A2 WO2008072146 A2 WO 2008072146A2 IB 2007054961 W IB2007054961 W IB 2007054961W WO 2008072146 A2 WO2008072146 A2 WO 2008072146A2
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WO
WIPO (PCT)
Prior art keywords
lamp
sensing
output
current
resistor
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/IB2007/054961
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French (fr)
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WO2008072146A3 (en
Inventor
Dolf H. J. Van Casteren
Edwin T. M. De Koning
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Koninklijke Philips NV
Original Assignee
Koninklijke Philips Electronics NV
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Filing date
Publication date
Application filed by Koninklijke Philips Electronics NV filed Critical Koninklijke Philips Electronics NV
Priority to EP07849369A priority Critical patent/EP2103194B1/en
Priority to US12/517,811 priority patent/US8120265B2/en
Priority to AT07849369T priority patent/ATE546029T1/en
Priority to JP2009540916A priority patent/JP2010512636A/en
Publication of WO2008072146A2 publication Critical patent/WO2008072146A2/en
Publication of WO2008072146A3 publication Critical patent/WO2008072146A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • H—ELECTRICITY
    • H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B41/00—Circuit arrangements or apparatus for igniting or operating discharge lamps
    • H05B41/14—Circuit arrangements
    • H05B41/26—Circuit arrangements in which the lamp is fed by power derived from DC by means of a converter, e.g. by high-voltage DC
    • H05B41/28—Circuit arrangements in which the lamp is fed by power derived from DC by means of a converter, e.g. by high-voltage DC using static converters
    • H05B41/288—Circuit arrangements in which the lamp is fed by power derived from DC by means of a converter, e.g. by high-voltage DC using static converters with semiconductor devices and specially adapted for lamps without preheating electrodes, e.g. for high-intensity discharge lamps, high-pressure mercury or sodium lamps or low-pressure sodium lamps
    • H05B41/2885—Static converters especially adapted therefor; Control thereof
    • H05B41/2886—Static converters especially adapted therefor; Control thereof comprising a controllable preconditioner, e.g. a booster
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R19/00—Arrangements for measuring currents or voltages or for indicating presence or sign thereof
    • G01R19/0092—Measuring current only
    • H—ELECTRICITY
    • H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00—Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/30—Driver circuits
    • H05B45/37—Converter circuits
    • H05B45/3725—Switched mode power supply [SMPS]
    • H05B45/38—Switched mode power supply [SMPS] using boost topology
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R1/00—Details of instruments or arrangements of the types included in groups G01R5/00 - G01R13/00 and G01R31/00
    • G01R1/20—Modifications of basic electric elements for use in electric measuring instruments; Structural combinations of such elements with such instruments
    • G01R1/203—Resistors used for electric measuring, e.g. decade resistors standards, resistors for comparators, series resistors, shunts
    • H—ELECTRICITY
    • H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M3/00—Conversion of DC power input into DC power output
    • H02M3/02—Conversion of DC power input into DC power output without intermediate conversion into AC
    • H02M3/04—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters
    • H02M3/10—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
    • H02M3/145—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
    • H02M3/155—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
    • H02M3/156—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators
    • H—ELECTRICITY
    • H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00—Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/30—Driver circuits
    • H05B45/37—Converter circuits
    • H05B45/3725—Switched mode power supply [SMPS]
    • H05B45/375—Switched mode power supply [SMPS] using buck topology
    • Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B20/00—Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps

Definitions

  • the present invention relates to a lamp driver circuit for operating a gas discharge lamp and in particular to a lamp driver circuit comprising a shunt resistor for determining a lamp current for lighting control.
  • UHP Ultra High Pressure
  • Such applications require good lighting control in order to provide a suitable lighting condition.
  • the quality of the output light depends inter alia on a current profile of a current supplied to the lamp.
  • a strategy using iterative learning may be employed in a control method.
  • a control signal for a repeating task may be updated iteratively such that a difference between a desired characteristic of the lamp and a corresponding actual characteristic diminishes.
  • a lamp current may be employed as the controlled lamp characteristic.
  • a shunt in particular a resistive shunt, in the lamp driver circuit.
  • the lamp driver circuit may be a switched mode power supply (SMPS) such as a buck converter or a boost converter.
  • SMPS switched mode power supply
  • For controlling a SMPS an output current is to be determined.
  • a further resistive shunt in the lamp driver circuit.
  • two resistive shunts are present, e.g. placed in a ground line, it is known to perform a differential voltage measurement on one of the resistive shunts in order to determine a voltage drop across the resistive shunt.
  • Such a differential voltage measurement requires signal processing circuitry, e.g. comprising a differential amplifier.
  • the straightforward current measurement using two resistive shunts results in a complicated and expensive lamp driver circuit.
  • the lamp driver circuit comprises a switched mode power supply (SMPS) circuit.
  • the lamp driver circuit comprises a first and a second output terminal for supplying a lamp current to a gas discharge lamp.
  • the gas discharge lamp is connectable between the first and the second output terminal.
  • the lamp driver circuit further comprises an output capacitor connected between the SMPS circuit and a ground terminal.
  • the lamp driver circuit further comprises a resistive shunt connected between the ground terminal and the second output terminal for determining a lamp current and an output current sensing circuit for determining a SMPS output current.
  • the output current sensing circuit comprises a sensing resistor connected in series with a sensing capacitor, which series connection is connected in parallel to the output capacitor.
  • the lamp current is accurately determinable, since the lamp current is determined using a resistive shunt.
  • a voltage at the other terminal of the resistive shunt equals a voltage drop across the resistive shunt.
  • the voltage at said other terminal is proportional to the current flowing through the lamp, i.e. the lamp current.
  • the SMPS output current is substantially equal to the sum of the lamp current and a current flowing through the output capacitor.
  • the series connection of the sensing capacitor and the sensing resistor is connected in parallel to the output capacitor.
  • a current flowing through said series connection is substantially proportional to the current flowing through the output capacitor.
  • a ratio between the output capacitor current and the current flowing through the series connection is substantially equal to the ratio between a capacitance of the output capacitor and a capacitance of the sensing capacitor.
  • the current through the sensing resistor results in a voltage drop across the sensing resistor, which voltage drop is substantially proportional to the current through the output capacitor. Adding this voltage drop and the voltage drop across the resistive shunt results in a voltage that is proportional to the SMPS output current.
  • the series connection of the sensing capacitor and the sensing resistor is connected between the first output terminal and the second output terminal.
  • a voltage at a node between the sensing capacitor and the sensing resistor is substantially proportional to the SMPS output current.
  • a strong SMPS output current signal is retrievable at said node.
  • a small structural mismatch results due to the fact that the current flowing through the sensing capacitor and the sensing resistor also flows through the resistive shunt.
  • the series connection of the sensing capacitor and the sensing resistor is connected between the first output terminal and the ground terminal.
  • the output current sensing circuit further comprises a series connection of a first resistor and a second resistor, which series connection is connected between the second output terminal and a first node between the sensing capacitor and the sensing resistor.
  • a voltage at a second node located between the first resistor and the second resistor is substantially proportional to the SMPS output current.
  • the resistance of the series connection of the first and the second resistor is substantially larger than the resistance of the sensing resistor. In this embodiment only a negligible additional current, in addition to the lamp current, flows through the resistive shunt, resulting in an accurate lamp current measurement.
  • a resistance of the sensing resistor may be a factor N larger than a resistance of the resistive shunt.
  • a lamp assembly comprises a lamp driver circuit according to one of the above-described embodiments and a gas discharge lamp, in particular a Ultra High Pressure (UHP) gas discharge lamp.
  • a gas discharge lamp in particular a Ultra High Pressure (UHP) gas discharge lamp.
  • Fig. 1 illustrates a prior art lamp driver circuit comprising two resistive shunts
  • Fig. 2 illustrates a first embodiment of a lamp driver circuit according to the present invention
  • Fig. 3 illustrates a second embodiment of a lamp driver circuit according to the present invention.
  • a prior art lamp driver circuit comprises a set of input terminals ITl, IT2 for receiving a DC voltage from a power supply PS.
  • a switched mode power supply (SMPS) circuit comprised in the lamp driver circuit comprises a switching element SW, a diode Dl, an inductor Ll.
  • the illustrated SMPS circuit is a buck converter, which is well known in the art. Therefore, a further detailed discussion of the above-mentioned elements suitable for use in the SMPS circuit is omitted, since, for example, a person skilled in the art will readily recognize that the switching element SW may be a semiconductor switch and the power supply PS may be a rectified mains voltage.
  • the lamp driver circuit is connected to ground at a ground terminal GT.
  • the lamp driver circuit further comprises an output capacitor CO connected at an output of the SMPS circuit, i.e. output of the inductor Ll.
  • the lamp driver circuit further comprises a first output terminal OTl and a second output terminal OT2, between which a lamp La is connected.
  • Rsh2 is connected between the second output terminal OT2 and the ground terminal GT. At a terminal between the first and the second resistive shunts Rshl, Rsh2 the output capacitor CO is connected.
  • the lamp La is a gas discharge lamp, in particular an Ultra High Pressure (UHP) gas discharge lamp. In operation, the DC voltage supplied by the power supply PS is converted to a
  • the output current is to be determined. Thereto, using a control circuit (not shown) the switching element SW is controlled based on the determined output current. For determining the output current, a voltage at a terminal of the first resistive shunt Rshl (i.e. the terminal not connected to the ground terminal) is determined. Since the output current flows through the output capacitor CO and the lamp La and then returns to ground, the output current generates a voltage drop across the first resistive shunt Rshl, which voltage drop results in a output current voltage V SMPS which is substantially proportional to the output current.
  • the control system may further be adapted for lighting control. Thereto, the control system may control a lamp current flowing through the lamp La.
  • the second resistive shunt Rsh2 is placed between the first resistive shunt Rshl and the lamp La. Since only the lamp current flows through the second resistive shunt Rsh2, a voltage drop across the second resistive shunt Rsh2 is substantially proportional to the lamp current.
  • a lamp current voltage V L at a terminal of the second resistive shunt Rsh2 connected to the lamp La is substantially equal to the sum of the voltage drop across the first resistive shunts Rshl and the voltage drop across the second resistive shunt Rsh2.
  • a differential measurement needs to be performed.
  • a lamp driver circuit comprises, compared to the circuit as illustrated in Fig. 1, a same circuit arrangement of a buck converter SMPS circuit.
  • a lamp driver circuit instead of two resistive shunts, only a single resistive shunt Rsh is present.
  • the resistive shunt Rsh is connected between the ground terminal GT and the lamp La (the second output terminal OT2), while the output capacitor CO is also connected to the ground terminal, such that the lamp current voltage V L at the lamp side of the resistive shunt Rsh is substantially equal to a voltage drop across the resistive shunt Rsh.
  • the voltage drop, and therefore the lamp current voltage V L is substantially proportional to the lamp current.
  • a series connection of a sensing capacitor CS and a sensing resistor RS is connected in parallel to the output capacitor CO. Due to the capacitive behavior, a current through the series connection is substantially proportional to a current flowing through the output capacitor CO.
  • the capacitance of the sensing capacitor CS is a factor N smaller than the capacitance of the output capacitor CO, thus equaling:
  • a current through the sensing capacitor CS is substantially a factor N smaller than a current flowing through the output capacitor CO.
  • the current flowing through the sensing capacitor CS flows also through the sensing resistor RS, thereby generating a voltage drop across the sensing resistor RS.
  • a voltage representative of the current flowing through the output capacitor CO i.e. the voltage drop across the sensing resistor RS
  • the resistance of the sensing resistor RS is a factor N larger than the resistance of the resistive shunt Rsh, thereby compensating for the factor N smaller current, which is due to the factor N smaller capacitance of the sensing capacitor as above explained.
  • the voltage at a node between the sensing capacitor CS and the sensing resistor RS is substantially equal to a sum of the lamp current voltage V L and the voltage drop across the sensing resistor RS, which is proportional to the output capacitor current.
  • the voltage at said node is substantially proportional to the output current of the SMPS circuit and is therefore used as the output current voltage VSMPS-
  • the output capacitor CO may have a capacitance of 1 ⁇ F; the sensing capacitor may have a capacitance of 1 nF, thus N being 1000; the resistance of the resistive shunt Rsh may be 25 m ⁇ and the resistance of the sensing resistor RS may be 25 ⁇ .
  • Fig. 3 illustrates a more accurate embodiment.
  • the series connection of the sensing capacitor CS and the sensing resistor RS is now connected between the first output terminal OTl and the ground terminal GT.
  • the resistive shunt Rsh is connected between the ground terminal GT and the lamp La (the second output terminal OT2) for determining a lamp current based on the voltage drop across the resistive shunt Rsh, which is equal to the lamp current voltage V L .
  • a series connection of a first resistor Rl and a second resistor R2 is connected.
  • the series connection is further connected to the second output terminal OT2.
  • a current flowing through the sensing capacitor CS is a factor N smaller than a current flowing through the output capacitor CO.
  • the current through the sensing capacitor CS is split in two parts. A first part flows through the sensing resistor RS and a second part flows through the series connection of the first and the second resistors Rl, R2: wherein I RS is the current flowing through the sensing resistor RS, Ico is the current flowing through the output capacitor CO, N is the factor as introduced in Eq. 1, and I R11R2 is the current flowing through the series connection of the first and the second resistor Rl, R2.
  • An output current voltage V SMPS equals a sum of a voltage drop across the second resistor R2 and the lamp current voltage V L .
  • the output current voltage V SMPS is substantially proportional to the current output by the SMPS circuit, in particular the current flowing through the inductor Ll, as is explained hereinafter.
  • the output capacitor may have a capacitance of 1 ⁇ F
  • N may be 1000
  • the sensing capacitor CS may have a capacitance of 1 nF
  • the resistive shunt Rsh may have a resistance of 25 m ⁇
  • the sensing resistor RS may have a resistance of 25 ⁇
  • the first and the second resistors Rl, R2 may each have a resistance of 1 k ⁇ , thereby satisfying Eq. 4.

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Circuit Arrangements For Discharge Lamps (AREA)

Abstract

A lamp driver circuit for operating a gas discharge lamp (La) is proposed, which comprises a switched mode power supply circuit (SMPS) and a first and a second output terminal (OT1, 0T2) for supplying a lamp current to the gas discharge lamp (La). The lamp driver circuit further comprises an output capacitor (CO) connected between the SMPS circuit and a ground terminal (GT) and comprises a resistive shunt (Rsh) connected between the ground terminal (GT) and the second output terminal (0T2) for determining the lamp current. An output current sensing circuit for determining a SMPS output current is comprised in the lamp driver circuit instead of a further resistive shunt, which would require a differential voltage measurement. The output current sensing circuit comprises a sensing resistor (RS) connected in series with a sensing capacitor (CS), the series connection being connected in parallel to the output capacitor.

Description

Lamp driver for operating a gas discharge lamp
FIELD OF THE INVENTION
The present invention relates to a lamp driver circuit for operating a gas discharge lamp and in particular to a lamp driver circuit comprising a shunt resistor for determining a lamp current for lighting control.
BACKGROUND OF THE INVENTION
Gas discharge lamps, in particular Ultra High Pressure (UHP) lamps, are nowadays used in beamers and projection television systems. Such applications require good lighting control in order to provide a suitable lighting condition. The quality of the output light depends inter alia on a current profile of a current supplied to the lamp. A lamp characteristic of the UHP lamp, in particular a dynamic characteristic, changes over its lifetime. Therefore, accurate control of the current through the UHP lamp over its entire lifetime may be difficult.
It has been proposed to use a microprocessor-based system to implement lighting control. For example, a strategy using iterative learning may be employed in a control method. In such a method, a control signal for a repeating task may be updated iteratively such that a difference between a desired characteristic of the lamp and a corresponding actual characteristic diminishes.
In the above-mentioned iterative learning control method a lamp current may be employed as the controlled lamp characteristic. In order to determine the actual lamp current it is known to incorporate a shunt, in particular a resistive shunt, in the lamp driver circuit. The lamp driver circuit, however, may be a switched mode power supply (SMPS) such as a buck converter or a boost converter. For controlling a SMPS an output current is to be determined. Thereto it is known to incorporate a further resistive shunt in the lamp driver circuit. As two resistive shunts are present, e.g. placed in a ground line, it is known to perform a differential voltage measurement on one of the resistive shunts in order to determine a voltage drop across the resistive shunt. Such a differential voltage measurement requires signal processing circuitry, e.g. comprising a differential amplifier. Thus, the straightforward current measurement using two resistive shunts results in a complicated and expensive lamp driver circuit.
OBJECT OF THE INVENTION It is an object of the present invention to provide a simple and cost-effective lamp driver circuit for operating a gas discharge lamp, which simple and cost-effective lamp driver circuit is suitable for determining a lamp current and a SMPS output current.
SUMMARY OF THE INVENTION The object is achieved in a lamp driver circuit according to claim 1. The lamp driver circuit comprises a switched mode power supply (SMPS) circuit. The lamp driver circuit comprises a first and a second output terminal for supplying a lamp current to a gas discharge lamp. The gas discharge lamp is connectable between the first and the second output terminal. The lamp driver circuit further comprises an output capacitor connected between the SMPS circuit and a ground terminal. The lamp driver circuit further comprises a resistive shunt connected between the ground terminal and the second output terminal for determining a lamp current and an output current sensing circuit for determining a SMPS output current. The output current sensing circuit comprises a sensing resistor connected in series with a sensing capacitor, which series connection is connected in parallel to the output capacitor.
The lamp current is accurately determinable, since the lamp current is determined using a resistive shunt. As one terminal of the resistive shunt is connected to a ground terminal, a voltage at the other terminal of the resistive shunt equals a voltage drop across the resistive shunt. Hence, the voltage at said other terminal is proportional to the current flowing through the lamp, i.e. the lamp current.
The SMPS output current is substantially equal to the sum of the lamp current and a current flowing through the output capacitor. In order to determine a voltage proportional to the SMPS output current, the series connection of the sensing capacitor and the sensing resistor is connected in parallel to the output capacitor. A current flowing through said series connection is substantially proportional to the current flowing through the output capacitor. A ratio between the output capacitor current and the current flowing through the series connection is substantially equal to the ratio between a capacitance of the output capacitor and a capacitance of the sensing capacitor. The current through the sensing resistor results in a voltage drop across the sensing resistor, which voltage drop is substantially proportional to the current through the output capacitor. Adding this voltage drop and the voltage drop across the resistive shunt results in a voltage that is proportional to the SMPS output current.
In an embodiment the series connection of the sensing capacitor and the sensing resistor is connected between the first output terminal and the second output terminal. In such an embodiment a voltage at a node between the sensing capacitor and the sensing resistor is substantially proportional to the SMPS output current. In this embodiment a strong SMPS output current signal is retrievable at said node. However, a small structural mismatch results due to the fact that the current flowing through the sensing capacitor and the sensing resistor also flows through the resistive shunt.
In an embodiment, the series connection of the sensing capacitor and the sensing resistor is connected between the first output terminal and the ground terminal. For adding the voltage drop across the resistive shunt and the voltage drop across the sensing resistor, the output current sensing circuit further comprises a series connection of a first resistor and a second resistor, which series connection is connected between the second output terminal and a first node between the sensing capacitor and the sensing resistor. In such an embodiment, a voltage at a second node located between the first resistor and the second resistor is substantially proportional to the SMPS output current. Preferably, the resistance of the series connection of the first and the second resistor is substantially larger than the resistance of the sensing resistor. In this embodiment only a negligible additional current, in addition to the lamp current, flows through the resistive shunt, resulting in an accurate lamp current measurement.
In order to enable the use of small components, in an embodiment, a factor N between the capacitance of the output capacitor and the capacitance of the sensing capacitor is selected relatively large, preferably larger than 10, more preferably the factor N = 1000, or larger.
In an embodiment wherein the capacitance of the output capacitor and the capacitance of the sensing capacitor differ by the factor N, a resistance of the sensing resistor may be a factor N larger than a resistance of the resistive shunt. Thus, the voltage drop across the resistive shunt and the voltage drop across the sensing resistor are of comparable magnitude and may therefore be added.
In an aspect of the present invention, a lamp assembly comprises a lamp driver circuit according to one of the above-described embodiments and a gas discharge lamp, in particular a Ultra High Pressure (UHP) gas discharge lamp. BRIEF DESCRIPTION OF THE DRAWINGS
Hereinafter, the present invention is elucidated with reference to non-limiting embodiments as illustrated in the appended drawings, in which Fig. 1 illustrates a prior art lamp driver circuit comprising two resistive shunts;
Fig. 2 illustrates a first embodiment of a lamp driver circuit according to the present invention; and
Fig. 3 illustrates a second embodiment of a lamp driver circuit according to the present invention.
DETAILED DESCRIPTION OF EXAMPLES
In the drawings, like reference numerals refer to like elements. Referring to Fig. 1, a prior art lamp driver circuit comprises a set of input terminals ITl, IT2 for receiving a DC voltage from a power supply PS. A switched mode power supply (SMPS) circuit comprised in the lamp driver circuit comprises a switching element SW, a diode Dl, an inductor Ll. The illustrated SMPS circuit is a buck converter, which is well known in the art. Therefore, a further detailed discussion of the above-mentioned elements suitable for use in the SMPS circuit is omitted, since, for example, a person skilled in the art will readily recognize that the switching element SW may be a semiconductor switch and the power supply PS may be a rectified mains voltage.
The lamp driver circuit is connected to ground at a ground terminal GT. The lamp driver circuit further comprises an output capacitor CO connected at an output of the SMPS circuit, i.e. output of the inductor Ll. The lamp driver circuit further comprises a first output terminal OTl and a second output terminal OT2, between which a lamp La is connected. A series connection of a first resistive shunt Rshl and a second resistive shunt
Rsh2 is connected between the second output terminal OT2 and the ground terminal GT. At a terminal between the first and the second resistive shunts Rshl, Rsh2 the output capacitor CO is connected. The lamp La is a gas discharge lamp, in particular an Ultra High Pressure (UHP) gas discharge lamp. In operation, the DC voltage supplied by the power supply PS is converted to a
DC voltage suitable for operating the lamp La. In order to control the output DC voltage and output current, the output current is to be determined. Thereto, using a control circuit (not shown) the switching element SW is controlled based on the determined output current. For determining the output current, a voltage at a terminal of the first resistive shunt Rshl (i.e. the terminal not connected to the ground terminal) is determined. Since the output current flows through the output capacitor CO and the lamp La and then returns to ground, the output current generates a voltage drop across the first resistive shunt Rshl, which voltage drop results in a output current voltage VSMPS which is substantially proportional to the output current.
The control system (not shown) may further be adapted for lighting control. Thereto, the control system may control a lamp current flowing through the lamp La. In order to determine the lamp current, the second resistive shunt Rsh2 is placed between the first resistive shunt Rshl and the lamp La. Since only the lamp current flows through the second resistive shunt Rsh2, a voltage drop across the second resistive shunt Rsh2 is substantially proportional to the lamp current. However, a lamp current voltage VL at a terminal of the second resistive shunt Rsh2 connected to the lamp La is substantially equal to the sum of the voltage drop across the first resistive shunts Rshl and the voltage drop across the second resistive shunt Rsh2. In order to determine the voltage drop across the second resistive shunt Rsh2 a differential measurement needs to be performed.
In order to prevent that a differential measurement is to be performed, in accordance with an embodiment of the present invention, a lamp driver circuit according to Fig. 2 comprises, compared to the circuit as illustrated in Fig. 1, a same circuit arrangement of a buck converter SMPS circuit. However, instead of two resistive shunts, only a single resistive shunt Rsh is present. The resistive shunt Rsh is connected between the ground terminal GT and the lamp La (the second output terminal OT2), while the output capacitor CO is also connected to the ground terminal, such that the lamp current voltage VL at the lamp side of the resistive shunt Rsh is substantially equal to a voltage drop across the resistive shunt Rsh. The voltage drop, and therefore the lamp current voltage VL, is substantially proportional to the lamp current.
A series connection of a sensing capacitor CS and a sensing resistor RS is connected in parallel to the output capacitor CO. Due to the capacitive behavior, a current through the series connection is substantially proportional to a current flowing through the output capacitor CO. Hereinafter, it is presumed that the capacitance of the sensing capacitor CS is a factor N smaller than the capacitance of the output capacitor CO, thus equaling:
CO CS = - (Eq. 1)
N
Consequently, a current through the sensing capacitor CS is substantially a factor N smaller than a current flowing through the output capacitor CO. The current flowing through the sensing capacitor CS flows also through the sensing resistor RS, thereby generating a voltage drop across the sensing resistor RS.
In order to be able to determine the current output by the SMPS circuit, i.e. the current output by the inductor Ll of the SMPS circuit, a voltage representative of the current flowing through the output capacitor CO, i.e. the voltage drop across the sensing resistor RS, is to be added to the lamp current voltage VL. TO allow the lamp current voltage VL and said voltage drop across the sensing resistor RS being added, these voltages need to be of comparable magnitude. Therefore, in an embodiment, the resistance of the sensing resistor RS is a factor N larger than the resistance of the resistive shunt Rsh, thereby compensating for the factor N smaller current, which is due to the factor N smaller capacitance of the sensing capacitor as above explained. Thus, in such an embodiment, the voltage at a node between the sensing capacitor CS and the sensing resistor RS is substantially equal to a sum of the lamp current voltage VL and the voltage drop across the sensing resistor RS, which is proportional to the output capacitor current. Hence, the voltage at said node is substantially proportional to the output current of the SMPS circuit and is therefore used as the output current voltage VSMPS-
In a practical embodiment, the output capacitor CO may have a capacitance of 1 μF; the sensing capacitor may have a capacitance of 1 nF, thus N being 1000; the resistance of the resistive shunt Rsh may be 25 mΩ and the resistance of the sensing resistor RS may be 25 Ω.
It is noted that in the embodiment as shown in Fig. 2 a number of second order effects may lead to a small and, depending on the application, acceptable structural mismatch in the determined current values compared to the actual current values. Fig. 3 illustrates a more accurate embodiment. In the embodiment of Fig. 3, compared to the embodiment of Fig. 2, the series connection of the sensing capacitor CS and the sensing resistor RS is now connected between the first output terminal OTl and the ground terminal GT. The resistive shunt Rsh is connected between the ground terminal GT and the lamp La (the second output terminal OT2) for determining a lamp current based on the voltage drop across the resistive shunt Rsh, which is equal to the lamp current voltage VL. At a first node between the sensing capacitor CS and the sensing resistor RS a series connection of a first resistor Rl and a second resistor R2 is connected. The series connection is further connected to the second output terminal OT2.
Presuming that Eq. 1 is still valid, a current flowing through the sensing capacitor CS is a factor N smaller than a current flowing through the output capacitor CO. In this embodiment, the current through the sensing capacitor CS is split in two parts. A first part flows through the sensing resistor RS and a second part flows through the series connection of the first and the second resistors Rl, R2:
Figure imgf000008_0001
wherein IRS is the current flowing through the sensing resistor RS, Ico is the current flowing through the output capacitor CO, N is the factor as introduced in Eq. 1, and IR11R2 is the current flowing through the series connection of the first and the second resistor Rl, R2. An output current voltage VSMPS equals a sum of a voltage drop across the second resistor R2 and the lamp current voltage VL. The output current voltage VSMPS is substantially proportional to the current output by the SMPS circuit, in particular the current flowing through the inductor Ll, as is explained hereinafter.
Presuming that the resistance of the sensing resistor RS is a factor N larger than a resistance of the resistive shunt Rsh: RS = N - Rsh (Eq. 3) and presuming that the resistance of the sensing resistor RS is insignificant compared to a resistance of the first resistor Rl :
RS « Rl (Eq. 4) and defining that
a ≡ — (Eq. 5) Rl it may be determined that
VSMPS = ) (Eq. 6)
Figure imgf000008_0002
wherein ILA is the current flowing through the lamp La. Selecting the resistance of the first and the second resistor Rl, R2 such that α = l, i.e. R1 = R2, and considering that the output current of the SMPS circuit is substantially equal to the current through the lamp lLa and the current through the output capacitor Ico, Eq. 6 becomes
T/ - Rs^ T m i\
" SMPS - ~Z~ ' 1SMPS 1^4- ' ) and thus the output current voltage VSMPS is substantially proportional to the output current. In a practical embodiment, the output capacitor may have a capacitance of 1 μF, N may be 1000, the sensing capacitor CS may have a capacitance of 1 nF, the resistive shunt Rsh may have a resistance of 25 mΩ, the sensing resistor RS may have a resistance of 25 Ω, and the first and the second resistors Rl, R2 may each have a resistance of 1 kΩ, thereby satisfying Eq. 4.
Although detailed embodiments of the present invention are disclosed herein, it is to be understood that the disclosed embodiments are merely exemplary of the invention, which can be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present invention in virtually any appropriately detailed structure. Further, the mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.
Further, the terms and phrases used herein are not intended to be limiting; but rather, to provide an understandable description of the invention. The terms "a" or "an", as used herein, are defined as one or more than one. The term another, as used herein, is defined as at least a second or more. The terms including and/or having, as used herein, are defined as comprising (i.e., open language). The term coupled, as used herein, is defined as connected, although not necessarily directly and not necessarily by means of wires.

Claims

CLAIMS:
1. Lamp driver circuit for operating a gas discharge lamp, the lamp driver circuit comprising: a switched mode power supply, SMPS, circuit; a first and a second output terminal for supplying a lamp current to the gas discharge lamp; an output capacitor connected between the SMPS circuit and a ground terminal; a resistive shunt connected between the ground terminal and the second output terminal for determining a lamp current; - an output current sensing circuit for determining a SMPS output current, the output current sensing circuit comprising a sensing resistor connected in series with a sensing capacitor, the series connection being connected in parallel to the output capacitor.
2. Lamp driver circuit according to claim 1, wherein the series connection of the sensing capacitor and the sensing resistor is connected between the first output terminal and the second output terminal, a voltage at a node between the sensing capacitor and the sensing resistor being substantially proportional to the SMPS output current.
3. Lamp driver circuit according to claim 1, wherein the series connection of the sensing capacitor and the sensing resistor is connected between the first output terminal and the ground terminal, the output current sensing circuit further comprising a series connection of a first resistor and a second resistor, the series connection of the first resistor and the second resistor being connected between the second output terminal and a first node between the sensing capacitor and the sensing resistor, a voltage at a second node between the first resistor and the second resistor being substantially proportional to the SMPS output current.
4. Lamp driver circuit according to claim 3, wherein a resistance of the first and/or the second resistor is substantially larger than a resistance of the sensing resistor.
5. Lamp driver circuit according to claim 1, wherein a capacity of the sensing capacitor is a factor N smaller than a capacity of the output capacitor.
6. Lamp driver circuit according to claim 5, wherein a resistance of the sensing resistor is a factor N larger than a resistance of the resistive shunt.
7. Lamp driver circuit according to claim 5 or 6, wherein the factor N is larger than 10, in particular N = 1000.
8. Lamp driver circuit according to claim 1, wherein the SMPS circuit is selected from the group comprising a buck converter, a boost converter, a buck-boost converter.
9. Lamp assembly, the lamp assembly comprising a lamp driver circuit according to claim 1 and a gas discharge lamp, in particular an Ultra High Pressure, UHP, gas discharge lamp.
PCT/IB2007/054961 2006-12-12 2007-12-07 Lamp driver for operating a gas discharge lamp Ceased WO2008072146A2 (en)

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EP07849369A EP2103194B1 (en) 2006-12-12 2007-12-07 Lamp driver for operating a gas discharge lamp
US12/517,811 US8120265B2 (en) 2006-12-12 2007-12-07 Lamp driver for operating a gas discharge lamp
AT07849369T ATE546029T1 (en) 2006-12-12 2007-12-07 LAMP CONTROL FOR THE OPERATION OF A GAS DISCHARGE LAMP
JP2009540916A JP2010512636A (en) 2006-12-12 2007-12-07 Lamp driver for operating gas discharge lamp

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ATE546029T1 (en) 2012-03-15
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EP2103194A2 (en) 2009-09-23

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