Light tube and power supply circuit

Information

  • Patent Grant
  • 8247985
  • Patent Number
    8,247,985
  • Date Filed
    Monday, March 21, 2005
    20 years ago
  • Date Issued
    Tuesday, August 21, 2012
    13 years ago
Abstract
The present invention provides a light tube for illumination by a power supply circuit including a bulb portion and a pair of end caps disposed at opposite ends of the bulb portion. A plurality of light emitting diodes are disposed inside the bulb portion and in electrical communication with the pair of end caps for illuminating in response to electrical current to be received from the power supply circuit.
Description
FIELD OF THE INVENTION

The present invention relates to a light tube illuminated by LEDs (light emitting diodes) which are packaged inside the light tube and powered by a power supply circuit.


BACKGROUND OF THE INVENTION

Conventional fluorescent lighting systems include fluorescent light tubes and ballasts. Such lighting systems are used in a variety of locations, such as buildings and transit buses, for a variety of lighting purposes, such as area lighting or backlighting. Although conventional fluorescent lighting systems have some advantages over known lighting options, such as incandescent lighting systems, conventional fluorescent light tubes and ballasts have several shortcomings. Conventional fluorescent light tubes have a short life expectancy, are prone to fail when subjected to excessive vibration, consume high amounts of power, require a high operating voltage, and include several electrical connections which reduce reliability. Conventional ballasts are highly prone to fail when subjected to excessive vibration. Accordingly, there is a desire to provide a light tube and power supply circuit which overcome the shortcomings of conventional fluorescent lighting systems. That is, there is a desire to provide a light tube and power supply circuit which have a long life expectancy, are resistant to vibration failure, consume low amounts of power, operate on a low voltage, and are highly reliable. It would also be desirable for such a light tube to mount within a conventional fluorescent light tube socket.


SUMMARY OF THE INVENTION

A light tube for illumination by a power supply circuit including a bulb portion and a pair of end caps disposed at opposite ends of the bulb portion. A plurality of light emitting diodes are disposed inside the bulb portion and in electrical communication with the pair of end caps for illuminating in response to electrical current to be received from the power supply circuit.





BRIEF DESCRIPTION OF THE DRAWINGS

The description herein makes reference to the accompanying drawings wherein like reference numerals refer to like parts throughout the several views, and wherein:



FIG. 1 is a line drawing showing a light tube, in perspective view, which in accordance with the present invention is illuminated by LEDs packaged inside the light tube;



FIG. 2 is a perspective view of the LEDs mounted on a circuit board;



FIG. 3 is a cross-sectional view of FIG. 2 taken along lines 3-3;



FIG. 4 is a fragmentary, perspective view of one embodiment of the present invention showing one end of the light tube disconnected from one end of a light tube socket;



FIG. 5 is an electrical block diagram of a first power supply circuit for supplying power to the light tube;



FIG. 6 is an electrical schematic of a switching power supply type current limiter;



FIG. 7 is an electrical block diagram of a second power supply circuit for supplying power to the light tube;



FIG. 8 is an electrical block diagram of a third power supply circuit for supplying power to the light tube;



FIG. 9 is a fragmentary, perspective view of another embodiment of the present invention showing one end of the light tube disconnected from one end of the light tube socket; and



FIG. 10 is an electrical block diagram of a fourth power supply circuit for supplying power to the light tube.





DESCRIPTION OF THE PREFERRED EMBODIMENT


FIG. 1 is a line drawing showing a light tube 20 in perspective view. In accordance with the present invention, the light tube 20 is illuminated by LEDs 22 packaged inside the light tube 20. The light tube 20 includes a cylindrically shaped bulb portion 24 having a pair of end caps 26 and 28 disposed at opposite ends of the bulb portion. Preferably, the bulb portion 24 is made from a transparent or translucent material such as glass, plastic, or the like. As such, the bulb material may be either clear or frosted.


In a preferred embodiment of the present invention, the light tube 20 has the same dimensions and end caps 26 and 28 (e.g. electrical male bi-pin connectors, type G13) as a conventional fluorescent light tube. As such, the present invention can be mounted in a conventional fluorescent light tube socket (not shown).


The line drawing of FIG. 1 also reveals the internal components of the light tube 20. The light tube 20 further includes a circuit board 30 with the LEDs 22 mounted thereon. The circuit board 30 and LEDs 22 are enclosed inside the bulb portion 24 and the end caps 26 and 28.



FIG. 2 is a perspective view of the LEDs 22 mounted on the circuit board 30. A group of LEDs 22, as shown in FIG. 2, is commonly referred to as a bank or array of LEDs. Within the scope of the present invention, the light tube 20 may include one or more banks or arrays of LEDs 22 mounted on one or more circuit boards 30. In a preferred embodiment of the present invention, the LEDs 22 emit white light and, thus, are commonly referred to in the art as white LEDs. In FIGS. 1 and 2, the LEDs 22 are mounted to one surface 32 of the circuit board 30. In a preferred embodiment of the present invention, the LEDs 22 are arranged to emit or shine white light through only one side of the bulb portion 24, thus directing the white light to a predetermined point of use. This arrangement reduces light losses due to imperfect reflection in a convention lighting fixture. In alternative embodiments of the present invention, LEDs 22 may also be mounted, in any combination, to the other surfaces 34, 36, and/or 38 of the circuit board 30.



FIG. 3 is a cross-sectional view of FIG. 2 taken along lines 3-3. To provide structural strength along the length of the light tube 20, the circuit board 30 is designed with a H-shaped cross-section. To produce a predetermined radiation pattern or dispersion of light from the light tube 20, each LED 22 is mounted at an angle relative to adjacent LEDs and/or the mounting surface 32. The total radiation pattern of light from the light tube 20 is effected by (1) the mounting angle of the LEDs 22 and (2) the radiation pattern of light from each LED. Currently, white LEDs having a viewing range between 6° and 45° are commercially available.



FIG. 4 is a fragmentary, perspective view of one embodiment of the present invention showing one end of the light tube 20 disconnected from one end of a light tube socket 40. Similar to conventional fluorescent lighting systems and in this embodiment of the present invention, the light tube socket 40 includes a pair of electrical female connectors 42 and the light tube 20 includes a pair of mating electrical male connectors 44.


Within the scope of the present invention, the light tube 20 may be powered by one of four power supply circuits 100, 200, 300, and 400. A first power supply circuit includes a power source and a conventional fluorescent ballast. A second power supply circuit includes a power source and a rectifier/filter circuit. A third power supply circuit includes a DC power source and a PWM (Pulse Width Modulation) circuit. A fourth power supply circuit powers the light tube 20 inductively.



FIG. 5 is an electrical block diagram of a first power supply circuit 100 for supplying power to the light tube 20. The first power supply circuit 100 is particularly adapted to operate within an existing, conventional fluorescent lighting system. As such, the first power supply circuit 100 includes a conventional fluorescent light tube socket 40 having two electrical female connectors 42 disposed at opposite ends of the socket. Accordingly, a light tube 20 particularly adapted for use with the first power supply circuit 100 includes two end caps 26 and 28, each end cap having the form of an electrical male connector 44 which mates with a corresponding electrical female connector 42 in the socket 40.


The first power supply circuit 100 also includes a power source 46 and a conventional magnetic or electronic fluorescent ballast 48. The power source 46 supplies power to the conventional fluorescent ballast 48.


The first power supply circuit 100 further includes a rectifier/filter circuit 50, a PWM circuit 52, and one or more current-limiting circuits 54. The rectifier/filter circuit 50, the PWM circuit 52, and the one or more current-limiting circuits 54 of the first power supply circuit 100 are packaged inside one of the two end caps 26 or 28 of the light tube 20.


The rectifier/filter circuit 50 receives AC power from the ballast 48 and converts the AC power to DC power. The PWM circuit 52 receives the DC power from the rectifier/filter circuit 50 and pulse-width modulates the DC power to the one or more current-limiting circuits 54. In a preferred embodiment of the present invention, the PWM circuit 52 receives the DC power from the rectifier/filter circuit 50 and cyclically switches the DC power on and off to the one or more current-limiting circuits 54. The DC power is switched on and off by the PWM circuit 52 at a frequency which causes the white light emitted from the LEDs 22 to appear, when viewed with a “naked” human eye, to shine continuously. The PWM duty cycle can be adjusted or varied by control circuitry (not shown) to maintain the power consumption of the LEDs 22 at safe levels.


The DC power is modulated for several reasons. First, the DC power is modulated to adjust the brightness or intensity of the white light emitted from the LEDs 22 and, in turn, adjust the brightness or intensity of the white light emitted from the light tube 20. Optionally, the brightness or intensity of the white light emitted from the light tube 20 may be adjusted by a user. Second, the DC power is modulated to improve the illumination efficiency of the light tube 20 by capitalizing upon a phenomenon in which short pulses of light at high brightness or intensity to appear brighter than a continuous, lower brightness or intensity of light having the same average power. Third, the DC power is modulated to regulate the intensity of light emitted from the light tube 20 to compensate for supply voltage fluctuations, ambient temperature changes, and other such factors which effect the intensity of white light emitted by the LEDs 22. Fourth, the DC power is modulated to raise the variations of the frequency of light above the nominal variation of 120 to 100 Hz thereby reducing illumination artifacts caused by low frequency light variations, including interactions with video screens. Fifth, the DC power may optionally be modulated to provide an alarm function wherein light from the light tube 20 cyclically flashes on and off.


The one or more current-limiting circuits 54 receive the pulse-width modulated or switched DC power from the PWM circuit 52 and transmit a regulated amount of power to one or more arrays of LEDs 22. Each current-limiting circuit 54 powers a bank of one or more white LEDs 22. If a bank of LEDs 22 consists of more than one LED, the LEDs are electrically connected in series in an anode to cathode arrangement. If brightness or intensity variation between the LEDs 22 can be tolerated, the LEDs can be electrically connected in parallel.


The one or more current-limiting circuits 54 may include (1) a resistor, (2) a current-limiting semiconductor circuit, or (3) a switching power supply type current limiter.



FIG. 6 is an electrical schematic of a switching power supply type current limiter 56. The limiter 56 includes an inductor 58, electrically connected in series between the PWM circuit 52 and the array of LEDs 22, and a power diode 60, electrically connected between ground 62 and a PWM circuit/inductor node 64. The diode 60 is designed to begin conduction after the PWM circuit 52 is switched off. In this case, the value of the inductor 58 is adjusted in conjunction with the PWM duty cycle to provide the benefits described above. The switching power supply type current limiter 56 provides higher power efficiency than the other types of current-limiting circuits listed above.



FIG. 7 is an electrical block diagram of a second power supply circuit 200 for supplying power to the light tube 20. Similar to the first power supply circuit 100, the second power supply circuit 200 includes a conventional fluorescent light tube socket 40 having two electrical female connectors 42 disposed at opposite ends of the socket 40. Accordingly, a light tube 20 particularly adapted for use with the second power supply circuit 200 includes two end caps 26 and 28, each end cap having the form of an electrical male connector 44 which mates with a corresponding electrical female connector 42 in the socket 40.


In the second power supply circuit 200, the power source 46 supplies power directly to the rectifier/filter circuit 50. The rectifier/filter circuit 50, the PWM circuit 52, and the one or more current-limiting circuits 54 operate as described above to power the one or more arrays of LEDs 22. The rectifier/filter circuit 50, the PWM circuit 52, and the one or more current-limiting circuits 54 of the second power supply circuit 200 are preferably packaged inside the end caps 26 and 28 or the bulb portion 24 of the light tube 20 or inside the light tube socket 40.



FIG. 8 is an electrical block diagram of a third power supply circuit 300 for supplying power to the light tube 20. Similar to the first and second power supply circuits 100 and 200, the third power supply circuit 300 includes a conventional fluorescent light tube socket 40 having two electrical female connectors 42 disposed at opposite ends of the socket 40. Accordingly, a light tube 20 particularly adapted for use with the third power supply circuit 300 includes two end caps 26 and 28, each end cap having the form of an electrical male connector 44 which mates with a corresponding electrical female connector 42 in the socket 40.


The third power supply circuit 300 includes a DC power source 66, such as a vehicle battery. In the third power supply circuit 300, the DC power source 66 supplies DC power directly to the PWM circuit 52. The PWM circuit 52 and the one or more current-limiting circuits 54 operate as described above to power the one or more arrays of LEDs 22. In the third power supply circuit 300, the PWM circuit 52 is preferably packaged in physical location typically occupied by the ballast of a conventional fluorescent lighting system while the one or more current-limiting circuits 54 and LEDs 22 are preferably packaged inside the light tube 20, in either one of the two end caps 26 or 28 or the bulb portion 24.



FIG. 9 is a fragmentary, perspective view of another embodiment of the present invention showing one end of the light tube 20 disconnected from one end of the light tube socket 40. In this embodiment of the present invention, the light tube socket 40 includes a pair of brackets 68 and the light tube 20 includes a pair of end caps 26 and 28 which mate with the brackets 68.



FIG. 10 is an electrical block diagram of a fourth power supply circuit 400 for supplying power to the light tube 20. Unlike the first, second, and third power supply circuits 100, 200, and 300 which are powered through direct electrical male and female connectors 44 and 42, the fourth power supply circuit 400 is powered inductively. As such, the fourth power supply circuit 400 includes a light tube socket 40 having two brackets 68 disposed at opposite ends of the socket 40. At least one bracket 68 includes an inductive transmitter 70. Accordingly, a light tube 20 particularly adapted for use with the fourth power supply circuit 400 has two end caps 26 and 28 with at least one end cap including an inductive receiver or antenna 72. When the light tube 20 is mounted in the light tube socket 40, the at least one inductive receiver 72 in the light tube 20 is disposed adjacent to the at least one inductive transmitter 70 in the light tube socket 40.


The fourth power supply circuit 400 includes the power source 46 which supplies power to the at least one inductive transmitter 70 in the light tube socket 40. The at least one transmitter 70 inductively supplies power to the at least one receiver 72 in one of the end caps 26 and/or 28 of the light tube 20. The at least one inductive receiver 72 supplies power to the rectifier/filter circuit 50. The rectifier/filter circuit 50, PWM circuit 52, and the one or more current-limiting circuits 54 operate as described above to power the one or more arrays of LEDs 22. In this manner, the light tube 20 is powered without direct electrical connection.

Claims
  • 1. An LED lighting unit for replacing a conventional fluorescent tube between the opposed electrical receptacles of a fluorescent lighting fixture, comprising: an elongate support structure having a first end and a second end opposite said first end;a first end cap disposed upon said first end of said elongate support structure;a second end cap disposed upon said second end of said elongate support structure; wherein each of said first end cap and said second end cap includes a fluorescent light fixture receptacle connector extending from each said end cap and configured for installing within the opposed electrical receptacles of the fluorescent lighting fixture;a plurality of LEDs disposed along said elongate support structure in an electrical circuit with one another;a cover overlying the elongate support structure and forming a housing enclosing the plurality of LEDs;a battery supplying power to the plurality of LEDs;a pulse-width modulating circuit receiving DC power from said battery and supplying modulated power to said plurality of LEDs; andone or more current-limiting circuits coupled between said pulse-width modulating circuit and said plurality of LEDs;wherein said one or more current-limiting circuits comprises an inductor electrically connected in series between said pulse-width modulating circuit and said plurality of LEDs and a power diode electrically connected between ground and a node between said pulse-width modulating circuit and said inductor.
  • 2. The LED lighting unit according to claim 1 wherein at least certain of said plurality of LEDs are electrically connected in series with one another.
  • 3. The LED lighting unit according to claim 1 wherein at least certain of said plurality of LEDs are electrically connected in parallel.
  • 4. The LED lighting unit according to claim 1 wherein said elongate support structure is a circuit board.
  • 5. The LED lighting unit according to claim 1 wherein said plurality of LEDs are arranged in spaced-apart groups along one surface of said elongate support structure.
  • 6. An LED lighting unit for replacing a conventional fluorescent tube between the opposed electrical receptacles of a fluorescent lighting fixture, comprising: an elongate support structure having a first end and a second end opposite said first end;a first end cap disposed upon said first end of said elongate support structure;a second end cap disposed upon said second end of said elongate support structure; wherein each of said first end cap and said second end cap includes a fluorescent light fixture receptacle connector extending from each said end cap and configured for installing within the opposed electrical receptacles of the fluorescent lighting fixture;a plurality of LEDs disposed along said elongate support structure in an electrical circuit with one another;a cover overlying the elongate support structure and forming a housing enclosing the plurality of LEDs; and one or more current-limiting circuits coupled between said battery and said plurality of LEDs; wherein said one or more current-limiting circuits comprises an inductor electrically connected in series between said battery and said plurality of LEDs and a power diode electrically connected between ground and a node between said battery and said inductor;a battery supplying power to the plurality of LEDs;wherein said elongate support structure is a circuit board and said circuit board has an H-shaped cross-section.
  • 7. The LED lighting unit according to claim 6, further comprising: a pulse-width modulating circuit receiving DC power from said battery and supplying modulated power to said plurality of LEDs.
  • 8. The LED lighting unit according to claim 7, further comprising: one or more current-limiting circuits coupled between said pulse-width modulating circuit and said plurality of LEDs.
  • 9. The LED lighting unit according to claim 8 wherein said one or more current-limiting circuits comprises one of a resistor, a current-limiting semiconductor circuit or a switching power supply type current limiter.
  • 10. The LED lighting unit according to claim 8 wherein said one or more current-limiting circuits comprises an inductor electrically connected in series between said pulse-width modulating circuit and said plurality of LEDs and a power diode electrically connected between ground and a node between said pulse-width modulating circuit and said inductor.
  • 11. The LED lighting unit according to claim 7 wherein said pulse-width modulating circuit is configured to modulate the plurality of LEDs to emit light at a frequency higher than 120 Hz.
  • 12. The LED lighting unit according to claim 7 wherein said pulse-width modulating circuit is configured to modulate the plurality of LEDs to cyclically flash light from the LED lighting unit on and off.
  • 13. The LED lighting unit according to claim 6 wherein said plurality of LEDs are arranged in spaced-apart groups along one surface of said elongate support structure.
  • 14. An LED lighting unit for replacing a conventional fluorescent tube between the opposed electrical receptacles of a fluorescent lighting fixture, comprising: an elongate support structure having a first end and a second end opposite said first end;a first end cap disposed upon said first end of said elongate support structure;a second end cap disposed upon said second end of said elongate support structure; wherein each of said first end cap and said second end cap includes a fluorescent light fixture receptacle connector extending from each said end cap and configured for installing within the opposed electrical receptacles of the fluorescent lighting fixture;a plurality of LEDs disposed along said elongate support structure in an electrical circuit with one another;a cover overlying the elongate support structure and forming a housing enclosing the plurality of LEDs; and one or more current-limiting circuits coupled between said battery and said plurality of LEDs; wherein said one or more current-limiting circuits comprises an inductor electrically connected in series between said battery and said plurality of LEDs and a power diode electrically connected between ground and a node between said battery and said inductor;a battery supplying power to the plurality of LEDs;wherein said plurality of LEDs are arranged in spaced-apart groups along one surface of said elongate support structure.
  • 15. The LED lighting unit according to claim 14 wherein said cover is a hollow tube surrounding said elongate support structure.
  • 16. The LED lighting unit according to claim 14 wherein said battery generates DC power for a power supply coupled to said plurality of LEDs and providing regulated power to said plurality of LEDs using said DC power.
  • 17. The LED lighting unit according to claim 16 wherein said power supply is of a switching type.
  • 18. The LED lighting unit according to claim 16 wherein said power supply is packaged at least in part within said cover or in either one of said first end cap or said second end cap.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 09/782,375 filed Feb. 12, 2001, now U.S. Pat. No. 7,049,761 issued May 23, 2006, which claims the benefit of U.S. Provisional Application No. 60/181,744 filed Feb. 11, 2000.

US Referenced Citations (101)
Number Name Date Kind
3612855 Juhnke Oct 1971 A
3993386 Rowe Nov 1976 A
4102558 Krachman Jul 1978 A
4107581 Abernethy Aug 1978 A
4189663 Schmutzer et al. Feb 1980 A
4211955 Ray Jul 1980 A
4581687 Nakanishi Apr 1986 A
4597033 Meggs et al. Jun 1986 A
4607317 Lin Aug 1986 A
4661890 Watanabe et al. Apr 1987 A
4698730 Sakai et al. Oct 1987 A
4748545 Schmitt May 1988 A
4758173 Northrop Jul 1988 A
4810937 Havel Mar 1989 A
4912371 Hamilton Mar 1990 A
4941072 Yasumoto et al. Jul 1990 A
4943900 Gartner Jul 1990 A
5018054 Ohashi et al. May 1991 A
5027037 Wei Jun 1991 A
5036248 McEwan et al. Jul 1991 A
5103382 Kondo et al. Apr 1992 A
5136483 Schoniger et al. Aug 1992 A
5140220 Hasegawa Aug 1992 A
5151679 Dimmick Sep 1992 A
5303124 Wrobel Apr 1994 A
5321593 Moates Jun 1994 A
5365411 Rycroft et al. Nov 1994 A
D354360 Murata Jan 1995 S
5388357 Malita Feb 1995 A
5404094 Green et al. Apr 1995 A
5463280 Johnson Oct 1995 A
5463502 Savage, Jr. Oct 1995 A
5561346 Byrne Oct 1996 A
5575459 Anderson Nov 1996 A
5581158 Quazi Dec 1996 A
5607227 Yasumoto et al. Mar 1997 A
5608290 Hutchisson et al. Mar 1997 A
5622423 Lee Apr 1997 A
5655830 Ruskouski Aug 1997 A
5661645 Hochstein Aug 1997 A
5684523 Satoh et al. Nov 1997 A
5688042 Madadi et al. Nov 1997 A
5697695 Lin et al. Dec 1997 A
5726535 Yan Mar 1998 A
5731759 Finucan Mar 1998 A
5803579 Turnbull et al. Sep 1998 A
5803580 Tseng Sep 1998 A
5803729 Tsimerman Sep 1998 A
5810463 Kawahara et al. Sep 1998 A
5813751 Shaffer Sep 1998 A
5813753 Vriens et al. Sep 1998 A
5825051 Bauer et al. Oct 1998 A
5850126 Kanbar Dec 1998 A
5865529 Yan Feb 1999 A
5890794 Abtahi et al. Apr 1999 A
5917287 Haederle et al. Jun 1999 A
5921660 Yu Jul 1999 A
5924784 Chliwnyj et al. Jul 1999 A
5943802 Tijanic Aug 1999 A
5949347 Wu Sep 1999 A
5998928 Hipp Dec 1999 A
6007209 Pelka Dec 1999 A
6028694 Schmidt Feb 2000 A
6030099 McDermott Feb 2000 A
6056420 Wilson et al. May 2000 A
6068383 Robertson et al. May 2000 A
6072280 Allen Jun 2000 A
6135620 Marsh Oct 2000 A
6149283 Conway et al. Nov 2000 A
6158882 Bischoff, Jr. Dec 2000 A
6217190 Altman et al. Apr 2001 B1
6227679 Zhang et al. May 2001 B1
6238075 Dealey, Jr. et al. May 2001 B1
6252350 Alvarez Jun 2001 B1
6268600 Nakamura et al. Jul 2001 B1
6305109 Lee Oct 2001 B1
6305821 Hsieh et al. Oct 2001 B1
6325651 Nishihara et al. Dec 2001 B1
6362578 Swanson et al. Mar 2002 B1
6371637 Atchinson et al. Apr 2002 B1
6471388 Marsh Oct 2002 B1
6528954 Lys et al. Mar 2003 B1
6568834 Scianna May 2003 B1
6577072 Saito et al. Jun 2003 B2
6577794 Currie et al. Jun 2003 B1
6582103 Popovich et al. Jun 2003 B1
6621222 Hong Sep 2003 B1
6682205 Lin Jan 2004 B2
6712486 Popovich et al. Mar 2004 B1
6762562 Leong Jul 2004 B2
6853151 Leong et al. Feb 2005 B2
7014336 Ducharme et al. Mar 2006 B1
7161313 Piepgras et al. Jan 2007 B2
20020048174 Pederson Apr 2002 A1
20030076281 Morgan et al. Apr 2003 A1
20040085219 Pederson May 2004 A1
20040145490 Pederson Jul 2004 A1
20040212993 Morgan et al. Oct 2004 A1
20050041424 Ducharme Feb 2005 A1
20050099317 Pederson May 2005 A1
20070030683 Popovich et al. Feb 2007 A1
Foreign Referenced Citations (8)
Number Date Country
196 51 140 Jun 1997 DE
196 24 087 Dec 1997 DE
0 632 511 Jan 1995 EP
H6-54103 Jul 1994 JP
H8-162677 Jun 1996 JP
H11-135274 May 1999 JP
9945312 Sep 1999 WO
9957945 Nov 1999 WO
Related Publications (1)
Number Date Country
20050162093 A1 Jul 2005 US
Provisional Applications (1)
Number Date Country
60181744 Feb 2000 US
Continuations (1)
Number Date Country
Parent 09782375 Feb 2001 US
Child 11085744 US