Igniter circuit for an HID lamp

Information

  • Patent Grant
  • 7982405
  • Patent Number
    7,982,405
  • Date Filed
    Tuesday, December 6, 2005
    18 years ago
  • Date Issued
    Tuesday, July 19, 2011
    13 years ago
Abstract
An igniter circuit (10) for an HID lamp (11) has a DC input (VBUS) for coupling to a source of DC voltage, and an output (23, 24) for coupling to the HID lamp. A resonant ignition circuit (12) operating at a controlled resonant frequency is coupled to the DC input for producing successive bursts of voltage having a frequency equal to the resonant frequency and having an amplitude that increases with time. The resonant ignition circuit (12) feeds the bursts of voltage across the output of the igniter until an HID lamp coupled thereto reaches breakdown.
Description
FIELD OF THE INVENTION

This invention relates to igniters for high intensity discharge lamps.


BACKGROUND OF THE INVENTION

The function of a high-intensity discharge (HID) electronic ballast is to supply ignition to the lamp for starting and then operating the lamp, such as a metal halide lamp. A metal halide lamp is a gas discharge lamp in which metal halides are enclosed, for example, in a quartz envelope.


To initiate its operation, a metal halide lamp demands a high ignition voltage. Once the lamp is ignited, the voltages falls to low voltage of the order of 20 V and the lamp it is then maintained for a short time (typically between 1-2 minutes) in so-called “current mode” where the current is constant and the voltage rises until the lamp reaches nominal power, whereafter the ballast serves to stabilize the power.


Prior art igniter circuits are known where an uncontrolled oscillator frequency is swept from a frequency that is less than the resonant frequency such that when it reaches resonance the voltage reaches maximum value and the lamp strikes. However, during this operation the frequency continues to rise and the voltage therefore falls.


SUMMARY OF THE INVENTION

It is an object of the invention to provide an igniter circuit for an HID lamp that employs a self-oscillating power supply for applying across the lamp a high ignition voltage that increases with time.


It is a further object to provide such an igniter circuit that is configured for coupling directly to an inverter having a half bridge topology for feeding low frequency current to the lamp after ignition.


These objects are realized in accordance with a first aspect of the invention by an igniter circuit for an HID lamp, the igniter circuit comprising:


a DC input for coupling to a source of DC voltage,


an output for coupling to the HID lamp, and


a resonant ignition circuit operating at a controlled resonant frequency coupled to said DC input for producing successive bursts of voltage having a frequency equal to the resonant frequency and having an amplitude that increases with time and for feeding said bursts of voltage across the output of the igniter until an HID lamp coupled thereto reaches breakdown.


According to a second aspect of the invention, there is provided a method for igniting a HID lamp, the method comprising:


using a resonant circuit connected across the lamp to generate successive bursts of voltage having a frequency equal to the resonant frequency and having an amplitude that increases with time; and


applying said bursts of voltage across the HID lamp until the lamp ignites, thereby loading the resonant circuit so that its Q factor falls sufficiently to stop the resonant circuit resonating.





BRIEF DESCRIPTION OF THE DRAWINGS

In order to understand the invention and to see how it may be carried out in practice, a preferred embodiment will now be described, by way of non-limiting example only, with reference to the accompanying drawings, in which:



FIG. 1 is a block diagram showing the functionality of an igniter circuit for an HID lamp in accordance with an exemplary embodiment of the invention;



FIG. 2 is a schematic circuit diagram of the igniter circuit shown functionally in FIG. 1;



FIG. 3 is a waveform showing graphically a series of ignition pulses fed to the with the igniter circuit shown in FIG. 2; and



FIG. 4 is a waveform showing graphically a resonant frequency voltage whose amplitude increases with time and that is applied to the HID lamp prior to ignition.





DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS


FIG. 1 is a block diagram showing the functionality of an igniter circuit 10 according to the invention for an HID lamp 11. The igniter circuit 10 is operated from a DC power source, VBUS, which is not itself part of the igniter circuit 10 and may be generated in manner well known to those skilled in the art. The DC power source, VBUS, is fed to a controlled self-oscillator 12 comprising a self oscillator 13 controlled by an ignition pulse control circuit 14. The HID lamp 11 is coupled to the controlled self-oscillator 12 which constitutes an igniter circuit for igniting the lamp. The lamp is powered by a power supply 15, which conveniently is coupled to the DC power source, VBUS, although it could be independent thereof. In order to disable operation of the igniter circuit after ignition of the HID lamp 11, a power sensor 16 is responsively coupled to the DC power source, VBUS, so as to sense the current supplied thereby. Before the lamp 11 ignites the current sensed by the power sensor 16 is low; but once the lamp 11 ignites it draws power from the DC power source, VBUS. The power sensor 16 thus serves to indicate whether or not the HID lamp 11 has ignited. The ignition pulse control circuit 14 is responsively coupled to the power sensor 16 so as to cease operation when the power sensor 16 senses that the HID lamp 11 has ignited. For the sake of completeness, although not relevant to the igniter circuit per se, the power sensor 16 serves a second function in that the power supply 15 includes a power regulator (not shown) that is responsive to the power sensed by the power sensor 16 for stabilizing the nominal power to the lamp 11.



FIG. 2 is a schematic circuit diagram showing in detail a preferred embodiment of the igniter circuit 10 shown in FIG. 1.


Resonant Ignition Circuit

The oscillator 13 comprises a drive transformer T1 having first, second and third windings 20, 21 and 22, respectively, which are connected in the correct polarity for positive feedback (oscillation). A first end of the first winding 20 is coupled to the source terminal of a first MOSFET M1 whose gate terminal is coupled via a resistor R1 to a second end of the first winding 20. The drain terminal of the first MOSFET M1 is coupled to VBUS, typically having a voltage of 400 VDC. A pair of zener diodes D1 and D2 is coupled back to back across the first winding 20, their anodes being commonly connected and their respective cathodes being connected to opposite ends of the first winding 20. The zener diodes D1, D2, limit the gate voltage fed to the MOSFET M1 and thereby ensure that when the resonant voltage increases, it does not damage the gate of the MOSFET M1.


In complementary trimmer, the first end of the second winding 21 is coupled via a resistor R2 to the gate terminal of a second MOSFET M2 whose source terminal is coupled to a second end of the second winding 21 and constitutes the ground rail, GND. The drain terminal of the second MOSFET M2 is coupled to the source terminal of the first MOSFET M1. A pair of zener diodes D3 and D4 is coupled back to back across the first winding 20, their anodes being commonly connected and their respective cathodes being connected to opposite ends of the second winding 21. The zener diodes D3 and D4 limit the gate voltage fed to the MOSFET M2 and thereby ensure that when the resonant voltage increases, it does not damage the gate of the MOSFET M2. The first end of the second winding 21 is coupled to an ‘ON’ control output of an ON-OFF splitter 25, its second end being coupled to GND. An ‘OFF’ control output of the ON-OFF splitter 25 is connected to the gate of the MOSFET M2. An input of the ON-OFF splitter 25 is connected to an output of the ignition pulse control circuit 14, as will be described in more detail below. The ON-OFF splitter 25 serves to convey an ignition pulse conveyed by the ignition pulse control circuit 14 to the winding 21 of the drive transformer T1 to enable the oscillation process; and to convey a disable signal to the gate of the MOSFET M2 to prevent oscillation after the lamp 11 has ignited.


A first end of the third winding 22 of the oscillator drive transformer T1 is connected to a first capacitor C1 connected in series with a first end of a resistor R3, whose second end is coupled to the common junction of a split winding of a transformer T2, comprising windings L1, L2. The coils L1 and L2 are wound such that a first end of the coil L1 is connected to a second end 23 of the coil L2, whose first end is connected to a first end of the HID lamp 11. A second end of the third winding 22 is connected to the common junction of the two MOSFETs M1 and M2, i.e. to the source of M1 and to the drain of M2.


The DC power source, VBUS, comprises pair of large series connected electrolytic capacitors C2 and C4 connected between VBUS and GND, their common junction 24 being connected to a second end of the HID lamp 11 and to the second end of the coil L1 via a capacitor C5. The capacitors C2 and C4 serve as storage capacitors for storing DC voltage for powering the controlled self-oscillator 12 and the power supply 15. The power supply 15 operates as a low frequency square wave current source controlled power shown as 26 in FIG. 2 that is connected to the common junction of the coil L1 and the capacitor C5. The low frequency square wave current source is produced in known manner by an inverter (not shown). Preferably, the inverter is a half-bridge topology of which the capacitors C2 and C4 are integral components. The junction of the capacitors C2 and C4 and the first end of the coil L2 constitute output terminals of the igniter circuit 10 across which the HID lamp 11 is coupled.


Having described the topology of the resonant ignition circuit 12, its operation will now be described.


The resonant ignition circuit is constituted by M1 and M2, R1, R2, D1, D2, D3, D4, T1, C1, R3, L1, C4 (short), C5 (short) and its resonant frequency f0 is determined by C1, L1 in accordance with the equation:







f
0

=

1

2

π



L






1
·
C






1








C4 and C5 have very low impedance at the resonant frequency and so practically behave as short circuits. The Q factor is determined by the values of R1, R2, R3. The resistors R1 and R2 together with the input capacitances of the gates of the two MOSFETs M1 and M2 create a phase shift which causes a reduction in the resonant voltage fed to the lamp.


The Q factor determines the maximum peak voltage that may be fed to the HID lamp 11 before breakdown, which may be several kilovolts, whereafter the voltage fed to the lamp falls to a low voltage, typically in the order of 20V and is maintained at constant current until it reaches the nominal power of the lamp.


A train of ignition pulses shown graphically in FIG. 3 at the resonant frequency f0 is fed to the junction between the source of M1 and the drain of M2 through the resonant circuit constituted by C1 and L1, so that the resonant circuit resonates with increasing amplitude for the duration of each ignition pulse as shown graphically in FIG. 4 due to the positive feedback produced by the windings of the drive transformer, T1. At the end of each ignition pulse, the amplitude of the resonant lamp voltage decreases until it reaches substantially zero until the arrival of the next ignition pulse, when the cycle is repeated. As noted, C4 has low impedance at the resonant frequency and acts as a short circuit.


When the lamp 11 starts to conduct, the lamp acts as a low impedance, and the current through the lamp fed by the low frequency current source 26 (corresponding to the power supply 15 shown in FIG. 1) flows through L1 and L2 which together operate as a choke, which filters some of the high frequency ripple. C5 acts as a first filter for removing the high frequency ripple superimposed on the low frequency current. C2 and C4 whose mid-point voltage is equal to half VBUS form part of a half bridge inverter that serves to supply low frequency current to the lamp 11 after ignition; and are thus integral components of the power supply shown as 15 in FIG. 1 and of the low frequency current source shown as 26 in FIG. 2.


Before lamp breakdown, the transformer T2 serves as the lamp igniter; and after breakdown when the lamp starts to conduct in the current mode, it serves as a choke for removing the high frequency ripple.


The object is to generate a high voltage waveform with increasing amplitude that is applied to the lamp as shown graphically in FIG. 4. When the lamp voltage reaches a certain voltage (1 kV-4 kV depending on lamp temperature), the lamp ignites. When this happens, the lamp impedance falls to a low value and loads the resonant circuit so that its Q factor falls significantly and it stops resonating. The self-oscillation circuit stops the oscillator coil T1 from oscillating.


Ignition Pulse Control Circuit

As noted above, the oscillator 13 stops oscillating when the HID lamp 11 ignites owing to the fact that the low lamp impedance after ignition loads the resonant circuit causing a marked reduction in its Q factor. However, rather than rely on this alone, it is considered preferable to disable the ignition circuit once the lamp has ignited, this being achieved by the igniter pulse control circuit 14. The igniter pulse control circuit 14 comprises a comparator 27 having a positive input to which a reference voltage signal PREF is fed and having a negative input coupled to the power sensor 16 so as to receive a voltage signal PIN that is proportional to the power across the HID lamp 11. Ignition pulses shown graphically in FIG. 3 having a duty cycle determined by TON and TOFF are fed to one input of a 2-input AND-gate 28 while the logic signal at the output of the comparator is fed to the second input of the AND-gate 28. Before the lamp starts conducting, PIN is low and the comparator output is logic HIGH; the AND-gate 28 therefore conveys the ignition pulses to the ON-OFF splitter 25. When the lamp ignites, PIN is larger than PREF and the output of the comparator 27 goes to LOW, whereupon the AND-gate 28 stops feeding the ignition pulses to the ON-OFF splitter 25.


The oscillator 13 is self-controlled to operate at the resonant frequency as determined by C1 and L1 such that although differences in the values of C1 and L1, as may occur in mass production owing to component tolerances will give rise to different resonant frequencies, the oscillator 13 will always operate at resonant frequency.


Moreover, the resonant frequency at which the oscillator 13 resonates is also a function of the parasitic capacitance of the wires connecting the HID lamp 11 to the resonant ignition circuit 12, being a function of their length. Therefore, the oscillator 13 resonates at resonant frequency regardless of the length of the wires connecting the HID lamp 11 to the resonant ignition circuit 12.

Claims
  • 1. An igniter circuit for an HID lamp, the igniter circuit comprising: a DC input for coupling to a source of DC voltage,an output for coupling to the HID lamp,a resonant ignition circuit including: an oscillator operating at a self-oscillating resonant frequency coupled to said DC input for producing successive bursts of voltage having a frequency equal to the resonant frequency and having an amplitude that increases with time and for feeding said bursts of voltage across the output of the igniter until an HID lamp coupled thereto reaches breakdown, so as to cause the lamp impedance to fall to a low value and load the resonant circuit so that its Q factor falls significantly and stops resonating thereby stopping the oscillator from oscillating;a current source having a low frequency component and high frequency component;a transformer comprising a first coil and a second coil connected in series with each other, the second coil being connected in series with the lamp, the first coil being part of the oscillator prior to ignition and, after ignition, serving to block the high frequency component so as to pass the low frequency component to the lamp; anda first capacitor having a first end coupled to the first coil and having a second end coupled to both the lamp and to a first end of a second capacitor having a second end connected to ground (GND), said first capacitor and second capacitor being configured for passing the high frequency component from the current source to GND.
  • 2. The igniter circuit according to claim 1, wherein the input includes a pair of storage capacitors that are adapted to store high voltage DC, one of said storage capacitors being constituted by the second capacitor.
  • 3. The igniter circuit according to claim 2, wherein the pair of storage capacitors serve to connect directly to respective outputs of a half-wave bridge rectifier.
  • 4. The igniter circuit according to claim 3, wherein said storage capacitors are integral components of an inverter having a half-bridge topology.
  • 5. The igniter circuit according to claims 1, wherein the ignition pulse control circuit is coupled to a sensor responsive to a function of power across the HID lamp for disabling the high voltage oscillator circuit upon ignition of the HID lamp.
  • 6. The igniter circuit according to claim 1, wherein the oscillator comprises: a drive transformer having a first winding, a second winding and a third winding connected for producing positive feedback,a first end of the first winding being coupled to the source terminal of a first MOSFET whose gate terminal is coupled via a resistor to a second end of the first winding,the drain terminal of the first MOSFET being coupled to the DC input,the first end of the second winding being coupled via a resistor to the gate terminal of a second MOSFET whose source terminal is coupled to a second end of the second winding and constitutes a ground rail,the drain terminal of the second MOSFET being coupled to the source terminal of the first MOSFET,the first end of the second winding being coupled to an ON control output of an ON-OFF splitter that is adapted to convey an ignition pulse conveyed by the ignition pulse control circuit to the second winding of the drive transformer to enable oscillation; and to convey a disable signal to the gate of the second MOSFET to prevent oscillation after the lamp has ignited,a second end of the second winding being coupled to GND,an OFF control output of the ON-OFF splitter being connected to the gate of the second MOSFET,an input of the ON-OFF splitter being connected to an output of the ignition pulse control circuit,a first end of the third winding of the oscillator drive transformer being connected to a first capacitor connected in series with a first end of a resistor,a second end of the resistor being coupled to a common junction of a split winding of a transformer comprising a first coil and a second coil wound such that a first end of the first coil is connected to a second end of the second coil,a first end of the second coil being connected to a first end of the HID lamp, anda second end of the third winding being connected to the source of the first MOSFET and to the drain of the second MOSFET.
  • 7. The igniter circuit according to claim 6, wherein the oscillator further comprises: a pair of zener diodes coupled back to back across the first winding, their anodes being commonly connected and their respective cathodes being connected to opposite ends of the first winding, anda pair of zener diodes coupled back to back across the first winding, their anodes being commonly connected and their respective cathodes being connected to opposite ends of the second winding.
  • 8. A method for igniting a HID lamp, the method comprising: using a self-oscillating resonant circuit connected across the lamp to generate successive bursts of voltage having a frequency equal to the resonant frequency and having an amplitude that increases with time;applying said bursts of voltage across the HID lamp until the lamp ignites, thereby loading the resonant circuit so that its Q factor falls sufficiently to stop the resonant circuit self-resonating;providing a current source having a low frequency component and a high frequency component;feeding the current source to the lamp through a transformer having a first coil and a second coil connected in series with each other and the second coil being connected in series with the lamp;prior to ignition, using the first coil as part of the oscillator for generating the resonant frequency; andafter ignition, using the first coil as part of a choke for blocking the high frequency component so as to feed the low frequency component of the current source to the lamp for maintaining the lamp operative while filtering the high frequency component.
  • 9. The method according to claim 8, further including substantially immediately disabling operation of the resonant circuit after lamp ignition.
  • 10. An igniter circuit for an HID lamp, the igniter circuit comprising: a DC input for coupling to a source of DC voltage,an output for coupling to the HID lamp,a resonant ignition circuit operating at a controlled resonant frequency coupled to said DC input for producing successive bursts of voltage having a frequency equal to the resonant frequency and having an amplitude that increases with time and for feeding said bursts of voltage across the output of the igniter until an HID lamp coupled thereto reaches breakdown;wherein the resonant ignition circuit includes an oscillator controlled by an ignition pulse control circuit coupled thereto and the oscillator comprises: a drive transformer having a first winding, a second winding and a third winding connected for producing positive feedback,a first end of the first winding being coupled to the source terminal of a first MOSFET whose gate terminal is coupled via a resistor to a second end of the first winding,the drain terminal of the first MOSFET being coupled to the DC input,the first end of the second winding being coupled via a resistor to the gate terminal of a second MOSFET whose source terminal is coupled to a second end of the second winding and constitutes a ground rail,the drain terminal of the second MOSFET being coupled to the source terminal of the first MOSFET,the first end of the second winding being coupled to an ON control output of an ON-OFF splitter that is adapted to convey an ignition pulse conveyed by the ignition pulse control circuit to the second winding of the drive transformer to enable oscillation; and to convey a disable signal to the gate of the second MOSFET to prevent oscillation after the lamp has ignited,a second end of the second winding being coupled to GND,an OFF control output of the ON-OFF splitter being connected to the gate of the second MOSFET,an input of the ON-OFF splitter being connected to an output of the ignition pulse control circuit,a first end of the third winding of the oscillator drive transformer being connected to a first capacitor connected in series with a first end of a resistor,a second end of the resistor being coupled to a common junction of a split winding of a transformer comprising a first coil and a second coil wound such that a first end of the first coil is connected to a second end of the second coil,a first end of the second coil being connected to a first end of the HID lamp, anda second end of the third winding being connected to the source of the first MOSFET and to the drain of the second MOSFET.
  • 11. The igniter circuit according to claim 10, wherein the oscillator further comprises: a pair of zener diodes coupled back to back across the first winding, their anodes being commonly connected and their respective cathodes being connected to opposite ends of the first winding, anda pair of zener diodes coupled back to back across the first winding, their anodes being commonly connected and their respective cathodes being connected to opposite ends of the second winding.
  • 12. The igniter circuit according to claim 10, wherein the ignition pulse control circuit is coupled to a sensor responsive to a function of power across the HID lamp for disabling the high voltage oscillator circuit upon ignition of the HID lamp.
  • 13. The igniter circuit according to claim 10, wherein the input includes a pair of storage capacitors that are adapted to store high voltage DC, one of said storage capacitors being constituted by the second capacitor.
  • 14. The igniter circuit according to claim 13, wherein the pair of storage capacitors serve to connect directly to respective outputs of a half-wave bridge rectifier.
  • 15. The igniter circuit according to claim 13, wherein said storage capacitors are integral components of an inverter having a half-bridge topology.
  • 16. The igniter circuit according to claims 10, wherein the ignition pulse control circuit is coupled to a sensor responsive to a function of power across the HID lamp for disabling the high voltage oscillator circuit upon ignition of the HID lamp.
Priority Claims (1)
Number Date Country Kind
167582 Mar 2005 IL national
PCT Information
Filing Document Filing Date Country Kind 371c Date
PCT/IL2005/001309 12/6/2005 WO 00 9/21/2007
Publishing Document Publishing Date Country Kind
WO2006/100661 9/28/2006 WO A
US Referenced Citations (174)
Number Name Date Kind
3636374 Sumi Jan 1972 A
3735398 Ross May 1973 A
3760414 Nicolson Sep 1973 A
3903891 Brayshaw Sep 1975 A
3997814 Toho Dec 1976 A
4005336 Casella Jan 1977 A
4007416 Szatmari Feb 1977 A
4076420 De Maeyer Feb 1978 A
4095140 Kirkhuff Jun 1978 A
4253046 Gerhard Feb 1981 A
4266165 Handler May 1981 A
4277728 Stevens Jul 1981 A
4289993 Harper Sep 1981 A
4318031 Lonseth Mar 1982 A
4320326 Banziger Mar 1982 A
4323149 Wyner Apr 1982 A
4334172 Wyner Jun 1982 A
4717863 Zeiler Jan 1988 A
4727297 Wolze Feb 1988 A
4763044 Nuckolls Aug 1988 A
4781175 McGreevy Nov 1988 A
4795945 Mayer Jan 1989 A
4862039 Kile Aug 1989 A
4888528 Byszewski Dec 1989 A
4896077 Dodd Jan 1990 A
4904903 Pacholok Feb 1990 A
4912374 Nagase Mar 1990 A
4920300 Scott Apr 1990 A
4952845 Veldman Aug 1990 A
4958107 Mattas Sep 1990 A
4959593 Joanins Sep 1990 A
4962336 Dodd Oct 1990 A
4983889 Roberts Jan 1991 A
4996464 Dodd Feb 1991 A
5053681 Budny Oct 1991 A
5057750 Farrall Oct 1991 A
5101142 Chatfield Mar 1992 A
5103140 Cocorna Apr 1992 A
5175476 Anderson Dec 1992 A
5192897 Vossough Mar 1993 A
5225742 Beasley Jul 1993 A
5229927 Vila-Masot Jul 1993 A
5319286 Laytem Jun 1994 A
5331253 Counts Jul 1994 A
5365151 Spiegel Nov 1994 A
5365152 Ozawa Nov 1994 A
5396152 Bognigk Mar 1995 A
5424617 Garbowicz Jun 1995 A
5428268 Melis Jun 1995 A
5430354 Garbowicz Jul 1995 A
5444333 Lau Aug 1995 A
5453667 Matsuda Sep 1995 A
5483127 Widmayer Jan 1996 A
5608296 Brown Mar 1997 A
5615093 Nalbant Mar 1997 A
5615100 Radecker Mar 1997 A
5623187 Caldiera Apr 1997 A
5631523 Rothenbuhler May 1997 A
5708330 Rothenbuhler Jan 1998 A
5736817 Rothenbuhler Apr 1998 A
5751120 Zeitler May 1998 A
5801494 Herres Sep 1998 A
5806055 Zinda Sep 1998 A
5825138 Diazzi Oct 1998 A
5886481 Flory Mar 1999 A
5914571 Beasley Jun 1999 A
5917287 Haederle Jun 1999 A
5936358 Okamoto Aug 1999 A
5945784 Mattas Aug 1999 A
5945787 Gorille Aug 1999 A
5949192 Kominami Sep 1999 A
5955843 Nuckolls Sep 1999 A
5962985 Buij Oct 1999 A
5962987 Statnic Oct 1999 A
5982108 Buij Nov 1999 A
5986412 Collins Nov 1999 A
5990599 Jackson Nov 1999 A
5990634 Brown Nov 1999 A
5994846 Blankers Nov 1999 A
6011360 Gradziki Jan 2000 A
6020691 Sun Feb 2000 A
6028397 Blankers Feb 2000 A
6031340 Brosius Feb 2000 A
6075326 Nostwick Jun 2000 A
6091208 Flory Jul 2000 A
6100649 Shoshan et al. Aug 2000 A
6100652 Konopka Aug 2000 A
6111359 Work et al. Aug 2000 A
6114814 Shannon Sep 2000 A
6144171 Clements Nov 2000 A
6144172 Sun Nov 2000 A
6157142 Moisin Dec 2000 A
6160362 Shone Dec 2000 A
6181076 Trestman Jan 2001 B1
6188180 Diamond Feb 2001 B1
6194845 Konopka Feb 2001 B1
6239559 Okamoto May 2001 B1
6259215 Roman Jul 2001 B1
6259615 Lin Jul 2001 B1
6294880 Deurloo Sep 2001 B1
6304041 Farkas Oct 2001 B1
6316881 Shannon Nov 2001 B1
6316885 Collins Nov 2001 B1
6316887 Ribarich Nov 2001 B1
6329761 Melis Dec 2001 B1
6344717 Lestician Feb 2002 B1
6359393 Brown Mar 2002 B1
6359394 Stein Mar 2002 B1
6369518 Kelly Apr 2002 B1
6369526 Pogadaev Apr 2002 B1
6373199 Erhardt Apr 2002 B1
6376999 Li Apr 2002 B1
6380694 Uchihashi et al. Apr 2002 B1
6392365 Zhou et al. May 2002 B1
6396722 Lin May 2002 B2
6417625 Brooks Jul 2002 B1
6429597 Flory Aug 2002 B1
6437515 Kamoi et al. Aug 2002 B1
6448720 Sun Sep 2002 B1
6483257 Henderson Nov 2002 B1
6498437 Chang Dec 2002 B1
6504313 Shen Jan 2003 B1
6518712 Weng Feb 2003 B2
6525491 Huber Feb 2003 B2
6555972 Lestician Apr 2003 B1
6593703 Sun Jul 2003 B2
6597128 Flory Jul 2003 B2
6608450 Lestician Aug 2003 B2
6608451 Collins Aug 2003 B2
6628090 Scollo Sep 2003 B1
6633138 Shannon Oct 2003 B2
6642673 Hudson Nov 2003 B2
6650067 Shloush Nov 2003 B1
6664790 Cook Dec 2003 B2
6667587 Chang Dec 2003 B1
6683422 Moyer Jan 2004 B1
6696803 Tao Feb 2004 B2
6707263 Prasad Mar 2004 B1
6734637 Ellams May 2004 B2
6756747 Hsieh Jun 2004 B2
6781327 Ohsawa Aug 2004 B2
6804129 Lin Oct 2004 B2
6822401 Borella Nov 2004 B2
6965204 Langeslag Nov 2005 B2
7110267 Lurkens Sep 2006 B2
7486028 Langeslag et al. Feb 2009 B2
20010030515 Huber Oct 2001 A1
20020047547 Flory Apr 2002 A1
20020047609 Weng Apr 2002 A1
20020074952 Hudson Jun 2002 A1
20020121866 Ellams Sep 2002 A1
20020140370 Sun Oct 2002 A1
20020145393 Hui Oct 2002 A1
20020167281 Buij Nov 2002 A1
20020171376 Rust Nov 2002 A1
20020180383 Gong Dec 2002 A1
20020190665 Sun Dec 2002 A1
20030006720 Borella Jan 2003 A1
20030038602 Lestician Feb 2003 A1
20030062853 Flory Apr 2003 A1
20030080694 Collins May 2003 A1
20030137257 Collins Jul 2003 A1
20030137260 Ohsawa Jul 2003 A1
20030161164 Shannon Aug 2003 A1
20030222586 Brooks Dec 2003 A1
20040061454 Prasad Apr 2004 A1
20040095076 Kastle May 2004 A1
20040113570 Ribavich Jun 2004 A1
20040130374 Dulaney Jul 2004 A1
20040155607 Rust Aug 2004 A1
20040183463 Sun et al. Sep 2004 A1
20040207335 Nerone Oct 2004 A1
20040257002 Gerardus Dec 2004 A1
20040257004 Deurloo Dec 2004 A1
Foreign Referenced Citations (88)
Number Date Country
0233605 Feb 1987 EP
0253163 Jan 1988 EP
0291223 May 1988 EP
0314077 Oct 1988 EP
0383385 Aug 1990 EP
0536535 Mar 1992 EP
0577105 Jun 1993 EP
0566310 Oct 1993 EP
0566815 Oct 1993 EP
0664663 Jan 1994 EP
0595414 May 1994 EP
0613326 Aug 1994 EP
0638918 Feb 1995 EP
0650313 Apr 1995 EP
0719591 Jul 1996 EP
0766499 Apr 1997 EP
0831517 Mar 1998 EP
0868115 Sep 1998 EP
0975204 Jan 2000 EP
1077591 Feb 2001 EP
1239708 Mar 2002 EP
1206169 May 2002 EP
1225791 Jul 2002 EP
1227706 Jul 2002 EP
1367864 Dec 2003 EP
1404163 Mar 2004 EP
1379112 Jul 2004 EP
1427263 Sep 2004 EP
01251597 Jun 1989 JP
4292898 Oct 1992 JP
4292899 Oct 1992 JP
04308691 Oct 1992 JP
05047484 Feb 1993 JP
05290988 May 1993 JP
6029006 Feb 1994 JP
06132087 May 1994 JP
70006888 Jan 1995 JP
08273856 Oct 1996 JP
10270188 Oct 1998 JP
200012251 Jan 2000 JP
2002260886 Sep 2002 JP
2002373511 Dec 2002 JP
200317284 Jan 2003 JP
2003163093 Jun 2003 JP
2003187996 Jul 2003 JP
8302537 Jul 1983 WO
9314559 Jul 1993 WO
9501712 Jan 1995 WO
9604770 Feb 1996 WO
9620578 Jul 1996 WO
9625022 Aug 1996 WO
9711580 Mar 1997 WO
9711583 Mar 1997 WO
9711585 Mar 1997 WO
9711586 Mar 1997 WO
9738561 Oct 1997 WO
9742795 Nov 1997 WO
9807301 Feb 1998 WO
9828836 Jul 1998 WO
9851133 Nov 1998 WO
9905735 Feb 1999 WO
9930538 Jun 1999 WO
9930538 Jun 1999 WO
9940757 Aug 1999 WO
0022889 Sep 1999 WO
0021341 Apr 2000 WO
0059268 Oct 2000 WO
0069224 Nov 2000 WO
0133916 May 2001 WO
0147325 Jun 2001 WO
0213222 Feb 2002 WO
0223958 Mar 2002 WO
0223959 Mar 2002 WO
0228152 Apr 2002 WO
0232194 Apr 2002 WO
0249399 Jun 2002 WO
02060228 Aug 2002 WO
02080630 Oct 2002 WO
02087290 Oct 2002 WO
02104083 Dec 2002 WO
03037043 May 2003 WO
03058590 Jul 2003 WO
03058591 Jul 2003 WO
03060619 Jul 2003 WO
03098978 Nov 2003 WO
2004008814 Jan 2004 WO
2004010743 Jan 2004 WO
2006100661 Sep 2006 WO
Related Publications (1)
Number Date Country
20100141164 A1 Jun 2010 US