An apparatus (10) for supplying regulated voltage d.c. electrical power to an LED array (12) includes a rectifier (32) responsive to a.c. power for generating rectified d.c. power and a power factor correcting and voltage regulating buck/boost switchmode converter (38) responsive to the rectified d.c. power for generating regulated voltage d.c. power to illuminate the LED array (12). A battery backup system (62) receives the a.c. power applied to the rectifier (32) for charging a rechargeable battery (66) and sensing an a.c. power failure. A switch-over relay (82) is connected between the battery backup system (62) and the rectifier. Upon sensing a failure of the a.c. power, the battery backup system (62) controls the switch-over relay (82) to connect the battery backup system (62) to the rectifier (32) to provide d.c. power to the switchmode converter (38) to illuminate the LED array (12). A half wave power detector (88) causes the apparatus (10) to reduce regulated d.c. power to dim the LED array (12).
|
0. 31. A conflict monitor compatibility circuit for use in traffic and pedestrian signaling applications, comprising:
a plurality of LEDs for emitting light in response to an electrical input adapted to be coupled to a source of a.c. line voltage through a solid state traffic controller switch for providing an electrical input voltage having an operating range with a lower limit voltage sufficient to activate the LEDs when the switch is on;
a transistor biased as a switch that has an essentially nonconductive condition whenever the electrical input voltage is at or above the operating range lower limit voltage and an essentially conductive condition if the electrical input voltage drops to a predetermined value below the operating range lower limit voltage; and
a low impedance load in series connection with the transistor, wherein:
the transistor in the essentially nonconductive condition prevents dissipation of power through the low impedance load whenever the electrical input voltage is within the operating range, and
the transistor in the essentially conductive condition couples the low impedance load to the electrical input for shunting leakage current from the solid state traffic controller switch when the switch is off.
0. 24. A power supply assembly for powering light emitting diodes (LEDs) in an outdoor line-connected signal, comprising:
an electrical input for coupling to a source of a.c. line voltage through a solid state traffic controller switch for providing an electrical input voltage having an operating range with a lower limit voltage sufficient to activate the LEDs when the switch is on;
a rectifier coupled to the electrical input and having a rectifier output;
a line voltage regulating switchmode power supply having a power supply input coupled to the rectifier output and a power supply output;
a plurality of LEDs coupled to the power supply output and having multiple current paths for emitting light in response to the power supply output; and
a conflict monitor compatibility circuit including a low impedance load and a transistor in series connection with the low impedance load, the transistor being biased as a switch having an essentially nonconductive condition whenever the electrical input voltage is at or above the operating range lower limit voltage and an essentially conductive condition if the electrical input voltage drops to a predetermined value below the operating range lower limit voltage, wherein:
the transistor in the essentially nonconductive condition prevents dissipation of power from the power supply output through the low impedance load whenever the electrical input voltage is within the operating range, and
the transistor in the essentially conductive condition couples the low impedance load to the electrical input for shunting leakage current from the solid state traffic controller switch when the switch is off.
0. 25. A power supply assembly for powering light emitting diodes (LEDs) in an outdoor line-connected signal, comprising:
an electrical input for coupling to a source of a.c. line voltage through a solid state traffic controller switch for providing an electrical input voltage having an operating range with a lower limit voltage sufficient to activate the LEDs when the switch is on;
a rectifier coupled to the electrical input and having a rectifier output;
a switchmode power supply for maintaining current and voltage waveforms substantially in phase and for providing a regulated current output with respect to variations in the input line voltage, the power supply having a power supply input coupled to the rectifier output and a power supply output;
a plurality of LEDs coupled to the power supply output and having multiple current paths for emitting light in response to the power supply output; and
a conflict monitor compatibility circuit including a low impedance load and a transistor in series connection with the low impedance load, the transistor being biased as a switch having an essentially nonconductive condition whenever the electrical input voltage is at or above the operating range lower limit voltage and an essentially conductive condition if the electrical input voltage drops to a predetermined value below the operating range lower limit voltage, wherein:
the transistor in the essentially nonconductive condition prevents dissipation of power from the power supply output through the low impedance load whenever the electrical input voltage is within the operating range, and
the transistor in the essentially conductive condition couples the low impedance load to the electrical input for shunting leakage current from the solid state traffic controller switch when the switch is off.
0. 26. A power supply assembly for powering light emitting diodes (LEDs) in an outdoor line-connected signal, comprising:
an electrical input for coupling to a source of a.c. line voltage through a solid state traffic controller switch for providing an electrical input voltage having an operating range with a lower limit voltage sufficient to activate the LEDs when the switch is on;
a rectifier coupled to the electrical input and having a rectifier output;
a switchmode power supply for improving poor power factor, whereby the power supply provides essentially constant current at a power supply output with respect to variations in line voltage input, and whereby current and voltage waveforms are maintained substantially in phase, the power supply having a power supply input coupled to the rectifier output and a power supply output;
a plurality of LEDs coupled to the power supply output and having multiple current paths for emitting light in response to the power supply output; and
a conflict monitor compatibility circuit including a low impedance load and a transistor in series connection with the low impedance load, the transistor being biased as a switch having an essentially nonconductive condition whenever the electrical input voltage is at or above the operating range lower limit voltage and an essentially conductive condition if the electrical input voltage drops to a predetermined value below the operating range lower limit voltage, wherein:
the transistor in the essentially nonconductive condition prevents dissipation of power from the power supply output through the low impedance load whenever the electrical input voltage is within the operating range, and
the transistor in the essentially conductive condition couples the low impedance load to the electrical input for shunting leakage current from the solid state traffic controller switch when the switch is off.
0. 1. An apparatus for supplying regulated voltage d.c. electrical power to an LED array comprising:
a rectifier means (32) having an input and an output, said rectifier means (32) being responsive to a.c. power at said input for generating rectified d.c. power at said output;
a power factor correction converter means (38) having an input connected to said output of said rectifier means (32) and an output, said power factor correction converter means (38) being responsive to said rectified d.c. power at said power factor correction converter means input for generating regulated voltage d.c. power at said power factor correction convener means output; and
an LED array (12) having an input connected to said output of said power factor correction converter means (38) for receiving said regulated voltage d.c. power to illuminate said LED array (12).
0. 2. The apparatus according to
0. 3. The apparatus according to
0. 4. The apparatus according to
0. 5. The apparatus according to
0. 6. The apparatus according to
0. 7. The apparatus according to
0. 8. The apparatus according to
0. 9. The apparatus according to
0. 10. The apparatus according to
0. 11. The apparatus according to
0. 12. The apparatus according to
0. 13. The apparatus according to
0. 14. An apparatus for supplying regulated voltage d.c. electrical power to an LED array comprising:
a power supply means (10) having an input and an output, said power supply means (10) being responsive to a.c. power at said input for generating regulated voltage d.c. power at said output to illuminate an LED array (12) connected to said power supply means output; and
a dimming detector means (88) having an input connected to said input of said power supply means (10) and an output connected to another input of said power supply means (10), said dimming detector means (88) being responsive to a dimming signal at said power supply means input for generating a control signal at said dimming detector means output and said power supply means (10) being responsive to said control signal for decreasing said regulated voltage d.c. power to dim the LED array (12).
0. 15. The apparatus according to
0. 16. The apparatus according to
0. 17. An apparatus for supplying regulated voltage d.c. electrical power to an LED array comprising:
a rectifier means (32) having an input and an output, said rectifier means (32) being responsive to a.c. power at said input for generating rectified d.c. power at said output;
a power factor correction converter means (38) having an input connected to said output of said rectifier means (32) and an output, said power factor correction converter means (38) being responsive to said rectified d.c. power at said power factor correction converter means input for generating regulated voltage d.c. power at said power factor correction converter means output;
a battery backup means (62) having an input for receiving a.c. power applied to said input of said rectifier means (32) and having an output at which d.c. power is generated; and
a switch-over means (82) connected to said output of said battery backup means (62) and to said input of said rectifier means (32), said battery backup means (62) being responsive to a failure of a.c. power at said battery backup means input for controlling said switchover means (82) to connect said battery backup means output to said rectifier means input to provide d.c. power to said power factor correction converter means (38) to illuminate an LED array connected to said output of said power factor correction converter means (38) and being responsive to a.c. power at said battery backup means input for controlling said switch-over means (82) to disconnect said battery backup means output from said rectifier means input.
0. 18. The apparatus according to
0. 19. The apparatus according to
0. 20. The apparatus according to
0. 21. The apparatus according to
0. 22. The apparatus according to
0. 23. An apparatus for supplying regulated voltage d.c. electrical power to an LED array comprising:
a rectifier means (32) having an input and an output, said rectifier means (32) being responsive to a.c. power at said input for generating rectified d.c. power at said output;
a power factor correcting and voltage regulating buck/boost switchmode converter (38) having an input connected to said output of said rectifier means (32) and an output, said switchmode converter (38) being responsive to said rectified d.c. power at said switchmode converter input for generating regulated voltage d.c. power at said switchmode converter output;
an LED array (12) having an input connected to said output of said switchmode converter (38) for receiving said regulated voltage d.c. power to illuminate said LED array (12);
a battery backup means (62) having an input for receiving a.c. power applied to said input of said rectifier means (32) and having an output at which d.c. power is generated; and
a switch-over means (82) connected to said output of said battery backup means (62) and to said input of said rectifier means (32), said battery backup means (62) being responsive to a failure of a.c. power at said battery backup means input for controlling said switchover means (82) to connect said battery backup means output to said rectifier means input to provide d.c. power to said switchmode converter (38) to illuminate said LED array (12) and being responsive to a.c. power at said battery backup means input for controlling said switch-over means (82) to disconnect said battery backup means output from said rectifier means input.
0. 27. The assembly according to
0. 28. The assembly of
0. 29. The assembly according to
0. 30. The assembly according to
0. 32. The assembly according to
0. 33. The assembly according to
0. 34. The assembly according to
0. 35. The assembly according to
0. 36. The assembly according to
0. 37. The conflict monitor compatibility circuit according
0. 38. The conflict monitor compatibility circuit according to
0. 39. The conflict monitor compatibility circuit according to
|
This application is the parent of a continuation reissue application filed Mar. 5, 2008, and accorded application Ser. No. 12/074,723.
The present invention relates generally to an apparatus for generating power to a light emitting diode array and, in particular, to a power supply for operating light emitting diode array traffic signals.
Light emitting diode (LED) arrays are becoming more common in many applications as they are used to replace less efficient incandescent lamps. Status annunciators, message boards, liquid crystal display back lights and traffic signals are common applications for LED arrays. In most of these uses, electrical power is obtained from a.c. mains (120 v.a.c., 60 Hz) and some form of power supply converts the alternating line voltage to d.c., or pulsing d.c., for powering the plurality of LEDs.
LEDs typically exhibit forward voltage drops on the order of 1.2 to 2.0 volts when driven at average currents of 20 to 25 ma. For purposes of efficiency, the LEDs are usually connected in series so that a higher power supply voltage can be used to light an array of LEDs.
In many applications where a relatively large number of LEDs are necessary to deliver substantial light output, several series strings of LEDs with a ballasting resistor in each string are normally connected in parallel. As shown in the
A non dissipative. unregulated power supply for LED signals is shown in
Several problems are associated with these prior art simple circuit topologies. The input current wave forms are generally badly distorted and the power factor is poor. Reasons for the poor power factor and high distortion relate to the discontinuous conduction of the diodes in the circuit feeding large capacitors. This phenomenon is well understood, and plagues many small off line power supplies. Until recently these concerns were essentially disregarded by the electrical power industry because the impact to the power grid was relatively small. Of course, as larger numbers of these low power appliances are connected to the power grid, the effect is no longer inconsequential. In fact, many utilities are placing limits on permissible power factor and distortion behavior of electrical devices connected to their lines.
LED traffic signals are being retrofitted in place of incandescent lamps primarily because of the energy savings common to LED signals. For example, an 8 inch diameter incandescent signal might consume 67 watts and its LED equivalent 14 watts, or a 12 inch diameter incandescent signal would consume 150 watts while its LED replacement would consume only 28 watts. The dramatic energy savings translate into greatly reduced operating cost, which is an important criterion, as electrical power is becoming more expensive. Also, in many parts of the country, electrical generating capacity is at its limits, and new capacity cannot be added because of environmental concerns. This strong interest in LED signals as an important energy conservation resource is clouded however by the poor power factor performance of commercially available signals.
Power factor (p.f.) is well understood in the electrical engineering community as the ratio of real power to real power plus reactive power, or more conveniently. p.f.=cos θ where θ is the angle in electrical degrees of the current-voltage phase offset. That is, in many reactive loads powered by sinusoidal (alternating) current, the voltage and current may be out of phase.
The apparent power that has to be delivered to a given load in volt-amperes (VA) is, therefore equal to the true power consumption of the device in Watts divided by the power factor. For example, an appliance with an internal power consumption of 100 Watts that exhibited a power factor of 0.4, would require 100/0.4 or 250 VA of energy from the power line and utility generator. Taken separately, the many small electrical appliances that are widely used have only a moderate effect on generating capacity. However in aggregate, a large number of small devices can have a significant impact on the power grid.
By means of example, a medium size city (San Francisco) may have some 2000 signalized intersections with a total of 16,000 mixed 8 inch and 12 inch traffic signals. If the existing incandescent signals with an average power consumption of 100 watts are replaced with LED variants of 20 watt rating, a significant power saving should result. The 1600 kilowatt (kW) load imposed by the incandescent signals should be reduced to 320 kw by the LED retrofit devices. However, if the LED signals exhibit an actual power factor of 0.3, the resulting load to the power grid is 320 kW divided by 0.3 p.f. or 1067 kW. The energy savings is then only 533 kW, which is the net mount of power that the utility can convert to other uses. Clearly then, the need for power factors close to unity is apparent. Another factor that directly influences the amount of power (apparent VA) that needs to be delivered to a given load is the total harmonic distortion of the current waveform supplying the device. True power factor is adversely affected by current or voltage distortion, and the significance of this influence is only now being widely accepted. There is shown in the
Harmonic distortion or deviation from true sinusoidal wave forms not only gives rise to further wasted energy, but increases the electromagnetic interference potential of the load. Radiated and conducted interference is a concern because of the interference potential with other services (radio communications for example).
Harmonic distortion is becoming more prevalent in power supplies as these devices are converted from inefficient linear operation to far more efficient switchmode operation. A wide variety of circuit topologies are used in modern switching power supplies such as thyristor and triac phase control, or bipolar or field effect transistor switches. A consequence of these solid state approaches is increased harmonic distortion and poor power factor behavior. In order to mitigate these problems, several approaches to power factor and distortion control have been developed that operate with and use the efficiency of the switchmode power supply itself. That is, instead of correcting for power factor in a separate functional device (that is connected between the power supply and line), the power factor and distortion correcting function is part of the switchmode power supply. A number of manufacturers of integrated circuits (Linear Technology, Silicon General, Motorola and Unitrode for example) offer monolithic devices that perform the power factor and distortion control function. A review of this art is presented in Power Supply Cookbook by Marty Brown, 1994, Butterworth-Heinemann.
The present invention concerns an apparatus for supplying regulated voltage d.c. electrical power to an LED array. The apparatus includes a rectifier having an input and an output, the rectifier being responsive to a.c power at the input for generating rectified d.c. power at the output, a power factor correction converter having an input connected to the rectifier output and an output, the power factor correction converter being responsive to the rectified d.c. power at the power factor correction converter input for generating regulated voltage, d.c. power at the power factor correction converter output, and an LED array having an input connected to the power factor correction converter output for receiving the d.c. power to illuminate the LED array. The power factor correction converter can be a power factor correcting and voltage regulating buck/boost switchmode converter.
A primary object of the present invention is to provide a power factor correcting, (boost buck/boost or buck) switchmode converter to power a line operated LED signal.
Another object of the present invention is to use the inherent pulse modulating nature of a switchmode power supply to provide voltage regulation to an LED array.
The apparatus according to the present invention also includes an adaptive clamp circuit connected to the rectifier input for eliminating leakage current problems. The adaptive clamp circuit has an input adapted to be connected to a pair of a.c. power lines, a pair of clamp circuit output lines connected to the adaptive clamp circuit input, a voltage sensing means connected across the adaptive clamp circuit input, and a controlled load means connected across the clamp circuit output lines and to the voltage sensing means. The voltage sensing means is responsive to a magnitude of a.c. voltage at the adaptive clamp circuit input lower than a predetermined magnitude for turning on the controlled load means to connect a low impedance load in the controlled load means across the clamp circuit output lines and the voltage sensing means is responsive to a magnitude of the a.c. voltage at the adaptive clamp circuit input equal to or greater than the predetermined magnitude for turning off the controlled load means to disconnect the low impedance load from the clamp circuit output lines.
It is also an objective of the present invention to eliminate leakage current problems by providing an adaptive clamp circuit.
Another feature of the present invention is to provide an adaptive line loading means or clamp that switches itself in or out of the circuit as needed.
The apparatus according to the present invention further includes a battery backup system having an input for receiving a.c. power applied to the rectifier input and having an output at which d.c. power is generated, and a switch-over relay connected to the battery backup system output and to the rectifier input, the battery backup system being responsive to a failure of a.c. power at the battery backup system input for controlling the switch-over relay to connect the battery backup system output to the rectifier input to provide d.c. power to illuminate the LED array and being responsive to a.c. power at the battery backup system input for controlling the switch-over relay to disconnect the battery backup system output from the rectifier input.
Another object of the present invention is the use of a d.c. power supply (instead of the a.c. power line) as a power backup that is activated upon a.c. power line loss.
The above, as well as other advantages of the present invention, will become readily apparent to those skilled in the art from the following detailed description of a preferred embodiment when considered in the light of the accompanying drawings in which:
As noted above, the elementary power supplies that are currently used for powering LED array signals do not meet current standards for efficiency, reliability and performance. The unregulated, resistively ballasted power supply shown in the
The use of capacitors as non-dissipative current limiters in a.c. circuits is well established, and is shown in the
There is shown in the
The power supply 10 has a pair of power input lines 22 for connection to a source (not shown) of a.c. power such as main power lines at a nominal 120 volts a.c. An input of an adaptive clamp circuit 24 can be connected to the lines 22 as an option. A problem peculiar to signals that are switched by means of solid state relays is the leakage current that can flow through the load when the solid state switch or relay is “OFF”. This phenomenon is common to triac and thyristor switches that are commonly employed in traffic signal controllers. While not apparent when incandescent signals are employed (because they are low impedance loads), the problems surface when relatively low power loads (such as LEDs) are connected to these same controllers. Typically, other safety devices used in traffic signal controllers such as conflict monitors must be “tricked” to reduce this leakage current. Commonly, a large capacitor is placed across the a.c. input leads to the LED load, in order to absorb the leakage current reactively. Of course, such provisions only aggravate the power factor problems.
An output of the adaptive clamp circuit 24 is connected by a pair of clamp circuit output lines 26 to an input of an electromagnetic interference (E.M.I.) filter 28. The E.M.I. filter 28 keeps conducted interference from feeding back into the power lines where it might cause problems to other circuitry on the line. An output of the filter 28 is connected by a pair of filter output lines 30 to an input of a rectifier means 32 which converts the incoming a.c. power to a pulsing d.c. power generated on a positive polarity rectifier output line 34 and a negative polarity rectifier output line 36. Although the rectifier means is shown as a full wave diode bridge rectifier, any type of rectifier can be used. The lines 34 and 36 are connected to an input of a power factor correction, buck/boost converter 38. The converter 38 includes a power factor correction (P.F.C.) integrated circuit (I.C.) controller 40, which is a commercial device available from many sources and functions by allowing current to charge a storage capacitor C (LARGE) only in phase with the rectified a.c. voltage thereby assuring a power factor close to unity. The control I.C. 40 also provides voltage regulation in the switchmode buck/boost converter by monitoring the output voltage and adjusting the high frequency on-off switching period of the pass element commensurately. Although a buck/boost converter is diagrammed, buck or boost topologies are also possible. Voltage output and current-mode control techniques are the primary differences in the various geometries, but these details are incidental to the functionality of the circuit.
A positive polarity output of the converter 38 is connected by a positive polarity converter output line 42 to the first input line 18 of the LED array 12. A negative polarity output of the converter 38 is connected by a negative polarity convener output line 44 to the second input line 20 of the LED array 12 through an optional pulse width modulated (P.W.M.) modulator 46.
The output voltage from the P.F.C. switch mode converter 38 is either fed directly to the LED array 12, or alternatively through the P.W.M. modulator 46. Such pulse modulation has been shown to be advantageous in certain LED signal applications. The functions of the switchmode P.F.C. converter 38 as the off line power supply are the same irrespective of the load. The obvious advantage of using a switching, voltage regulated power supply is efficiency. Line isolation, which is generally not provided by this transformerless design, is generally unnecessary for insulated LED signals, but a high frequency transformer could be incorporated. The intrinsic power factor correction provided by using the switchmode converter 38 in conjunction with the P.F.C. integrated circuit controller 40 is not only cost effective, but allows d.c. backup power to be used in case of line failure.
A primary aspect of the present invention is the use of a power factor correcting, (boost, buck/boost or buck) switchmode converter to power a line operated LED array signal 12. Another function of the present invention is to use the inherent pulse modulating nature of the switchmode power supply to provide voltage regulation to the LED array signal 12. Instead of using dissipative (heat producing) linear regulators for either voltage or current (to accommodate line voltage variations), the power factor and distortion controlling switchmode power supply 10 is used as an efficient voltage regulator. That is, the LED array 12, consisting of a large number of series-parallel connected LED devices 14, can be kept at essentially constant luminosity over a substantial range of input voltages. In actual practice, the output of such LED array signals has been kept within ±10% of nominal value over a power line variation of 85 volts to 140 volts (for a nominal 120 v.a.c. line).
It is also an objective of the present invention to eliminate leakage current problems by providing the adaptive clamp circuit 24 which is shown in more detail in the
The adaptive clamp circuit 24 is shown in more detail in the
The optional adaptive clamping circuit 24 is advantageously placed across the input terminals of the p.f.c., switchmode power supply 10 as shown in the FIG. 5. As noted above, as a consequence of using solid state relays or switches in signal controllers, the power to the signals is not fully disconnected (even when the signal should be off). This leakage current often causes problems with safety devices such as electronic conflict monitors. Additionally, these leakage currents may present problems during flashing operation of LED signals, as the power supply circuits may not be fully discharged between flashes. Switchmode, p.f.c. power suppliers of the type proposed for the present invention are particularly sensitive to such leakage currents and will be inhibited from flashing LEDs at an acceptable rate (55 to 60 flashes per minute).
In current practice, these leakage currents are minimized by “short circuiting” them by means of a reactive, non dissipative element. The input capacitor (typically 1-2 μF), as shown in the
Another feature of the present invention is to provide for an adaptive line loading means or clamp that switches itself in or out of circuit as needed. As shown in the
This adaptive clamp 24 can of course be used with other types of power supplies where the addition of reactive elements could degrade the power factor. The clamping circuit 24 works by using the sensing transistor Q1 and the Zener diode D5 (the voltage sensing means 48 of the
Another aspect of the present invention is the use of a d.c. input (instead of the a.c. power line) as a power backup feature that is activated upon power line loss. Conventional practice employs battery driven a.c. inverters to generate the backup power upon line failure. Such inverters are expensive, inefficient and are failure prone. The use of battery power (d.c.) to directly energize the regulated switchmode power supply that powers the LED array signal is very cost effective and energy efficient. The wide input voltage range of most switchmode power supplies allows the batteries to be used optimally as they can be virtually fully discharged in the power backup cycle yielding very good use of battery capacity. Lower cost, smaller batteries are therefore useable.
As noted previously, the use of a direct line operated, non-transformer isolated converter to power the LED array signal allows d.c. power to be used (instead of a.c.) in case of line failure. Using batteries without having to rely on an inverter to perform the d.c. to a.c. conversion is novel, extremely reliable, and cost effective. The importance of battery backup for critical traffic signals is obvious, and the need for reliability is also apparent. As shown in the
Because of the critical safety nature of these devices, an automatic battery testing circuit and load 68 is built into the battery backup system 62. Deterioration of the battery 66, which is inevitable ova time, is thereby monitored and degradation past a certain point is nagged or announced. The testing circuit 68 has an input connected to an output of the battery 66 for sensing battery voltage. An alarm signal line 70 is connected to an output of the circuit 68 for generating the alarm signal and a set flag signal line 72 is connected to another output of the circuit 68 for generating the set flag signal. A control line 74 is connected between an output of the circuit 68 and an input of the battery 66. Secondary batteries that are kept in float service for any length of time tend to degrade and loose capacity. This deterioration is far more apparent in high temperature environments, and can adversely affect the safety margins of the backup power supply. That is. instead of providing 8 to 10 hours of flashing red LED array signal backup service, a degraded battery might only last a few hours. Determining the actual condition or serviceability of a storage battery is difficult, because a measurement of terminal voltage does not necessarily indicate loss of capacity. It has been experimentally determined that a good measure of battery capacity can be made by loading the battery with a substantial current (typically 5-10 amperes) for several minutes and measuring the terminal voltage under load. Naturally the battery charger is inhibited during this test. This method is well recognized as a good diagnostic test as it depletes any “surface charge” on the electrodes and more accurately indicates remaining battery ampere-hours.
A voltage comparator circuit in the battery testing circuit and load 68 establishes an “accept” or “reject” level for the battery 66 as it is tested every 24 hours or so. In order to accommodate partly discharged cells, two sequential, battery tests that result in a “reject” are registered in a latch which may trigger a visual or audible alarm signal on the line 70. Alternatively, a relay or contact closure (flag) may be set to generate a signal on the line 72 so that a data modem can relay the degraded battery information to a central service facility. Of course, such calls or alarm signals are triggered well before the battery is no longer serviceable so that safety is not comprised.
A line failure detection circuit 76 has an input connected to the power lines 22 and another input connected to an output of the battery 66 to receive operating power from the battery. The circuit 76 initiates the power switch-over process whenever a.c. input power is disconnected. An output of the line failure detection circuit 76 is connected to an input of a time delay and restoration circuit 78 which has another input connected to an output of the battery 66 to receive operating power from the battery. The time delay function ensures that short, transient line dropouts are disregarded. An output of the time delay and restoration circuit 78 is connected to an input of a d.c. power switch-over and flasher circuit 80 which has another input connected to an output of the battery 66 to receive operating power from the battery. Outputs of the circuit 80 are connected to a first set of input terminals of a switch-over relay 82. The relay has a second set of terminals connected to red signal outputs of a traffic controller 84 having an input connected to the power lines 22. Output terminals of the switch-over relay 82 are connected to the input of the switchmode converter power supply 10 which is connected to the red LED array signal 12. Normally, the switch-over relay 82 is in the position shown to connect a.c. power on the lines 22 through the traffic controller 84 to the power supply 10.
Generally, line loss in excess of 250 msec will cause the d.c. power switch-over relay 82 to switch the output terminals to disconnect the power supply 10 and the red LED array signal 10 from the traffic controller 84 (and the a.c. feed) and connect them to the d.c. battery 66 through the d.c. power switch-over and flasher circuit 80. Note that the d.c. supply is flashed or pulsed by the circuit 80 at a nominal rate of 60 pulses per minute (1 Hz) to place all the red LED array signals at an intersection in a flashing mode, effecting a four way stop. While an electromechanical switch-over relay 82 is shown for complete isolation of the existing traffic controller 84 and the battery backup system 62, solid state devices could be used.
Whenever the line power is restored, the time delay and restoration circuit 78 will wait some period (typically 10-15 seconds) before the LED array signal 12 is switched back to the a.c. power mode. This delay avoids the many transients that usually accompany a.c. line restoration after a power outage. Note that no inverter is employed in this system, as is common practice in existing commercial hardware. The inefficiency and poor reliability of d.c. to a.c. converters is thereby avoided. Because the switchmode power supply 10 can accommodate wide variations in input voltage (both a.c. and d.c.) the storage battery 66 can be discharged virtually completely while maintaining essentially constant luminosity of the LED array signal 12.
Additionally, as shown in the
As noted above, the lack of input transformers or series capacitors before the full wave bridge, allows d.c. power to be applied at the input terminals of the power supply 10 in lieu of a.c. power. Since there are no reactive (a.c.) components in the input circuitry, proper operation of the switchmode converter is maintained, and output voltage regulation is still available. Obviously, the p.f.c. portion of the circuit 10 will be nonfunctional during operation on d.c. input power. As shown, the switchmode convener will provide an essentially constant output voltage (nom. 100 volts d.c.) to the LED array 12 over a range of a.c. input voltages from 85 volts r.m.s. to 140 volts r.m.s. and over a d.c. input voltage range of 38 volts d.c. to 65 volts d.c. The wide (input voltage) operating range allows rechargeable batteries to be used very efficiently, since their capacity can be fully utilized in the discharge cycle, as their terminal voltage drops.
As discussed above, LED signals are being used to replace incandescent lamps in many applications. Traffic signals are among the more common devices that are being upgraded for with LEDs because of the tremendous power savings and the dramatic improvement in service life. In most cases the incandescent lamps are merely replaced with an integral LED retrofit assembly that does not require any modification of the existing traffic signal housing or the drive and control circuitry associated with the signal. That is, users expect the LED retrofit lamps to operate normally without added modifications to the housing or traffic controller.
One aspect of this conversion to LED signals from incandescent lamps poses significant problems however. Many existing incandescent lamp traffic signals are dimmed at night to reduce glare and, of course, power consumption. LED signals can be dimmed by reducing the average current through the LED array. A problem arises however because existing traffic signal controllers dim incandescent signals by providing half-wave rectified a.c. to the devices. Normally the traffic lamps are powered by switched a.c. line power which has, in virtually all cases, a sinusoidal wave form. Simply rectifying this power allows the traffic signal controller to reduce the average voltage and current to the load in a loss free manner. This technique has been in common use for many years and has become the “defacto” standard dimming technique.
Most LED traffic signals do not work satisfactorily with half wave rectified a.c.; in fact, many simply do not light. Some LED lamp arrays which are equipped with regulated power supplies will illuminate satisfactorily when powered by half wave rectified a.c. current, but they do not dim. The regulated power supplies accept the half wave rectified a.c. line power and treat it merely as a low line voltage and correct for this phenomenon. The voltage impressed across the LED array is kept relatively constant in spite of such input voltage variations thereby keeping the LED luminous output essentially unchanged, i.e. undimmed.
Certain switchmode, regulating power supplies are able to power LED signals satisfactorily from even half wave rectified a.c. power supplies. A half wave detector circuit in the LED signal power supply can determine whether the traffic signal controller is sending a “dimming” command. Upon detection of this half wave signal, the switchmode power supply can be programmed or adjusted to reduce its output voltage to the LED array. By adjusting either the pulse width or the frequency (at constant pulse width) of the switchmode power supply, the output voltage (and/or current) can be reduced in an efficient, nondissipative manner.
Alternatively, the half wave detector can be used to change the average current through the LED array by reducing the effective pulse width of a pulse width modulation controller that drives the LEDs. In either method, the average LED current and intensity are reduced in response to the detection of a half wave rectified input current. In this way, the LED signal is “transparent” to the user who may now utilize the LED device in the same manner as conventional incandescent signals.
As shown in the
All such dimming methods have one key feature in common; the average current through the LED signal 12 is decreased in response to the detection of a half wave dimming signal impressed on the power supply input lines 22. The detection of half wave power by the detector 88 causes the LED power supply 10 to either adjust the output pulse width at constant frequency or adjust the frequency at constant pulse width. The power supply 10 can be any type of power supply which converts a.c. power to d.c. power suitable for illuminating the LED array 12.
The present invention is an apparatus 10 for supplying regulated voltage d.c. electrical power to an LED array including a rectifier means 32 having an input and an output, the rectifier means 32 being responsive to a.c. power at the input for generating rectified d.c. power at the output, a power factor correction converter means 38 having an input connected to the rectifier means 32 output and an output, the power factor correction converter means 38 being responsive to the rectified d.c. power at the power factor correction converter means input for generating regulated voltage, power factor corrected d.c. power at the power factor correction converter means output, and an LED array 12 having an input connected to the power factor correction converter means 38 output for receiving the power factor corrected d.c. power to illuminate the LED array 12. The power factor correction converter means 38 can be a power factor correcting and voltage regulating buck/boost switchmode converter.
The apparatus 10 includes a pulse width modulated modulator means 46 connected to the power factor correction converter means 38 output and the LED array 12 input for modulating the power factor corrected d.c. power and an electromagnetic interference filter means 28 connected to the full wave rectifier means 32 input for preventing conducted interference from feeding back onto a.c. power lines 22 connected to the rectifier means 32 input. The apparatus 10 also includes an adaptive clamp circuit means 24 connected to the rectifier means 32 input for eliminating leakage current problems. The adaptive clamp circuit means 24 has an input adapted to be connected to a pair of a.c. power lines 22, a pair of clamp circuit output lines 26 connected to the adaptive clamp circuit means 24 input, a voltage sensing means 48 connected across the adaptive clamp circuit means 24 input, and a controlled load means 50 connected across the clamp circuit output lines 26 and to the voltage sensing means 48. The voltage sensing means 48 is responsive to a magnitude of a.c. voltage at the adaptive clamp circuit means 24 input lower than a predetermined magnitude for turning on the controlled load means 50 to connect a low impedance load 60 in the controlled load means 50 across the clamp circuit output lines 26 and the voltage sensing means 48 is responsive to a magnitude of the a.c. voltage at the adaptive clamp circuit means 24 input equal to or greater than the predetermined magnitude for turning off the controlled load means 50 to disconnect the low impedance load 60 from the clamp circuit output lines 26.
The apparatus 10 further includes a battery backup means 62 having an input for receiving a.c. power applied to the rectifier means 32 input and having an output at which d.c. power is generated, and a switch-over means 82 connected to the battery backup means 62 output and to the rectifier means 32 input, the battery backup means 62 being responsive to a failure of a.c. power at the battery backup means 62 input for controlling the switch-over means 82 to connect the battery backup means 62 output to the rectifier means 32 input to provide d.c. power to illuminate the LED array 12 and being responsive to a.c. power at the battery backup means 62 input for controlling the switch-over means 82 to disconnect the battery backup means 62 output from the rectifier means 32 input. The switch-over means 82 can be an electromechanical relay. The battery backup means 62 includes a time delay and restoration means 78 responsive to application of a.c. power at the battery backup means 62 input for controlling the switch-over means 82 to disconnect the battery backup means 62 output from the rectifier means 32 input and connect the a.c. power to the rectifier means 32 input after a predetermined time delay. The battery backup means 62 also includes a d.c. power switch-over and flasher means 80 connected to the switch-over means 82 for pulsing the d.c. power at a predetermined rate to flash the LED array 12 and a synchronizing pulse generator means 86 connected to the d.c. power switch-over and flasher means 80 for imposing marker pulses on the d.c. power at a predetermined rate.
The apparatus 10 also includes a half wave power detector means 88 having an input connected to the input of the rectifier means 32 and an output connected to another input of the power factor correction converter means 38, the half wave power detector means being responsive to a dimming signal at the rectifier means input for generating a control signal at said half wave power detector means output and the power factor correction converter means 38 being responsive to the control signal for decreasing the regulated d.c. power to dim the LED array 12. If the apparatus 10 includes the pulse width modulated modulator means 46 connected to the power factor correction converter means 38 output and the LED array 12 input for modulating the regulated voltage d.c. power, the half wave power detector means 88 has its output connected to an input of the pulse width modulated modulator means 46 and is responsive to a dimming signal at the rectifier means input for generating a control signal at the half wave power detector means output and the pulse width modulated modulator means 46 is responsive to the control signal for decreasing the regulated d.c. power to dim the LED array 12.
In accordance with the provisions of the patent statutes, the present invention has been described in what is considered to represent its preferred embodiment. However, it should be noted that the invention can be practiced otherwise than as specifically illustrated and described without departing from its spirit or scope.
Patent | Priority | Assignee | Title |
10036549, | Oct 24 2008 | iLumisys, Inc. | Lighting including integral communication apparatus |
10054270, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
10120001, | May 11 2012 | OSAKA CITY UNIVERSITY | Power factor measurement device |
10161568, | Jun 01 2015 | iLumisys, Inc. | LED-based light with canted outer walls |
10176689, | Oct 24 2008 | iLumisys, Inc. | Integration of led lighting control with emergency notification systems |
10182480, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
10260686, | Jan 22 2014 | iLumisys, Inc. | LED-based light with addressed LEDs |
10342086, | Oct 24 2008 | iLumisys, Inc. | Integration of LED lighting with building controls |
10557593, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
10560992, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
10571115, | Oct 24 2008 | iLumisys, Inc. | Lighting including integral communication apparatus |
10690296, | Jun 01 2015 | iLumisys, Inc. | LED-based light with canted outer walls |
10713915, | Oct 24 2008 | iLumisys, Inc. | Integration of LED lighting control with emergency notification systems |
10932339, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
10966295, | Jul 09 2012 | iLumisys, Inc. | System and method for controlling operation of an LED-based light |
10973094, | Oct 24 2008 | iLumisys, Inc. | Integration of LED lighting with building controls |
11028972, | Jun 01 2015 | iLumisys, Inc. | LED-based light with canted outer walls |
11073275, | Oct 24 2008 | iLumisys, Inc. | Lighting including integral communication apparatus |
11102864, | Jun 15 2012 | ALEDDRA INC.; ALEDDRA INC | Solid-state lighting with remote tests and controls |
11116057, | Jun 15 2012 | ALEDDRA INC. | Solid-state lighting with remote controls |
11284491, | Dec 02 2011 | Lynk Labs, Inc. | Color temperature controlled and low THD LED lighting devices and systems and methods of driving the same |
11297705, | Oct 06 2007 | Lynk Labs, Inc. | Multi-voltage and multi-brightness LED lighting devices and methods of using same |
11317495, | Oct 06 2007 | Lynk Labs, Inc. | LED circuits and assemblies |
11333308, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
11428370, | Jun 01 2015 | iLumisys, Inc. | LED-based light with canted outer walls |
11528792, | Feb 25 2004 | Lynk Labs, Inc. | High frequency multi-voltage and multi-brightness LED lighting devices |
11566759, | Aug 31 2017 | Lynk Labs, Inc. | LED lighting system and installation methods |
11638336, | Nov 13 2012 | Lynk Labs, Inc. | AC light emitting diode and AC LED drive methods and apparatus |
11678420, | Feb 25 2004 | Lynk Labs, Inc. | LED lighting system |
11729884, | Oct 06 2007 | Lynk Labs, Inc. | LED circuits and assemblies |
11805579, | Apr 14 2016 | LEDVANCE GMBH | Light fixture with at least one LED |
11953167, | Aug 18 2011 | Lynk Labs, Inc. | Devices and systems having AC LED circuits and methods of driving the same |
8134304, | Jul 24 2009 | Novatek Microelectronics Corp. | Light source driving device capable of dynamically keeping constant current sink and related method |
8154223, | Sep 16 2009 | Novatek Microelectronics Corp. | Driving apparatus of light emitting diode and driving method thereof |
8159155, | Jul 23 2007 | SIGNIFY HOLDING B V | Light emitting unit arrangement and control system and method thereof |
8288969, | Sep 16 2009 | Novatek Microelectronics Corp. | Driving apparatus of light emitting diode and driving method thereof |
8427081, | Sep 16 2009 | Novatek Microelectronics Corp. | Driving apparatus of light emitting diode and driving method thereof |
8523394, | Oct 29 2010 | Ilumisys, Inc | Mechanisms for reducing risk of shock during installation of light tube |
8596813, | Jul 12 2010 | Ilumisys, Inc | Circuit board mount for LED light tube |
8716945, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
8773026, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
8807785, | May 23 2008 | iLumisys, Inc. | Electric shock resistant L.E.D. based light |
8840282, | Mar 26 2010 | iLumisys, Inc. | LED bulb with internal heat dissipating structures |
8866396, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
8870412, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
8870415, | Dec 09 2010 | Ilumisys, Inc | LED fluorescent tube replacement light with reduced shock hazard |
8894430, | Oct 29 2010 | iLumisys, Inc. | Mechanisms for reducing risk of shock during installation of light tube |
8901823, | Oct 24 2008 | Ilumisys, Inc | Light and light sensor |
8928025, | Dec 20 2007 | iLumisys, Inc. | LED lighting apparatus with swivel connection |
8946996, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
9006990, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9006993, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9013119, | Mar 26 2010 | iLumisys, Inc. | LED light with thermoelectric generator |
9072171, | Aug 24 2011 | Ilumisys, Inc | Circuit board mount for LED light |
9101026, | Oct 24 2008 | iLumisys, Inc. | Integration of LED lighting with building controls |
9163794, | Jul 06 2012 | Ilumisys, Inc | Power supply assembly for LED-based light tube |
9184518, | Mar 02 2012 | Ilumisys, Inc | Electrical connector header for an LED-based light |
9222626, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9267650, | Oct 09 2013 | Ilumisys, Inc | Lens for an LED-based light |
9271367, | Jul 09 2012 | iLumisys, Inc. | System and method for controlling operation of an LED-based light |
9285084, | Mar 14 2013 | iLumisys, Inc.; Ilumisys, Inc | Diffusers for LED-based lights |
9353939, | Oct 24 2008 | Ilumisys, Inc | Lighting including integral communication apparatus |
9395075, | Mar 26 2010 | iLumisys, Inc. | LED bulb for incandescent bulb replacement with internal heat dissipating structures |
9398661, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
9413263, | Aug 06 2014 | SIGNIFY NORTH AMERICA CORPORATION | Systems and methods for a transformerless power supply to limit heat generation at an output transistor via time varying current draws |
9416923, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9510400, | May 13 2014 | Ilumisys, Inc | User input systems for an LED-based light |
9574717, | Jan 22 2014 | Ilumisys, Inc | LED-based light with addressed LEDs |
9585216, | Oct 24 2008 | iLumisys, Inc. | Integration of LED lighting with building controls |
9635727, | Oct 24 2008 | iLumisys, Inc. | Light and light sensor |
9680393, | Aug 06 2014 | SIGNIFY NORTH AMERICA CORPORATION | Systems and methods for a transformerless power supply to limit heat generation at an output transistor via time varying current draws |
9739428, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9746139, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9752736, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9759392, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9777893, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9803806, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
9807842, | Jul 09 2012 | iLumisys, Inc. | System and method for controlling operation of an LED-based light |
9970601, | Feb 11 2000 | iLumisys, Inc. | Light tube and power supply circuit |
D692597, | Jan 18 2012 | iLumisys, Inc. | LED light tube |
D780348, | Jun 01 2015 | Ilumisys, Inc | LED-based light tube |
D781469, | Jul 07 2015 | iLumisys, Inc.; Ilumisys, Inc | LED light tube |
D811628, | Jun 01 2015 | iLumisys, Inc. | LED-based light tube |
D812252, | Jun 01 2015 | iLumisys, Inc. | LED-based light tube |
D815763, | Jul 07 2015 | iLumisys, Inc. | LED-based light tube |
D817523, | Jul 07 2015 | iLumisys, Inc. | LED-based light tube |
ER7685, | |||
RE46330, | Sep 16 2009 | Novatek Microelectronics Corp. | Driving apparatus of light emitting diode and driving method thereof |
Patent | Priority | Assignee | Title |
1662348, | |||
2503574, | |||
3421009, | |||
3456155, | |||
3473084, | |||
3500455, | |||
3611177, | |||
3670202, | |||
3705316, | |||
3787752, | |||
3872301, | |||
3873905, | |||
3952242, | Apr 11 1969 | Ricoh Co., Ltd. | Automatic voltage regulator with optical feedback |
3959711, | Dec 09 1974 | Technology Development Corporation | Pulse width modulated power supplies |
4001637, | Jun 12 1975 | Lutron Electronics Co., Inc. | Lamp ballast |
4012686, | Mar 18 1971 | Optotechnik, GmbH; Propper Manufacturing Company, Inc. | Power supply for illuminated instrument |
4037271, | Dec 03 1976 | Boschert Associates | Switching regulator power supply |
4052644, | Mar 19 1975 | Rollei-Werke Franke & Heidecke | Electronic flash unit with operational signal |
4090189, | May 20 1976 | General Electric Company | Brightness control circuit for LED displays |
4101808, | Sep 30 1975 | BANKERS TRUST COMPANY, AS AGENT | Lamp control circuit |
4109307, | May 04 1977 | GTE Sylvania Incorporated | High power factor conversion circuitry |
4135116, | Jan 16 1978 | The United States of America as represented by the Secretary of the Navy | Constant illumination control system |
4182977, | Jun 01 1978 | OPTRON INC , | Constant output light emitting device |
4190795, | Sep 09 1977 | Coberly & Associates | Constant intensity light source |
4190836, | Nov 15 1976 | Hitachi, Ltd. | Dynamic drive circuit for light-emitting diodes |
4211955, | Mar 02 1978 | Solid state lamp | |
4238707, | Jan 20 1978 | Thomson-CSF | Power supply system for a semiconductor light source |
4247854, | May 09 1979 | NCR Corporation | Gas panel with improved circuit for display operation |
4275335, | Mar 28 1979 | Minolta Camera Kabushiki Kaisha | Constant light intensity electronic flash device |
4298869, | Jun 29 1978 | Zaidan Hojin Handotai Kenkyu Shinkokai | Light-emitting diode display |
4319164, | Jul 30 1979 | Chemical Bank | Power factor compensating electroluminescent lamp DC/AC inverter |
4323895, | May 11 1979 | Regie Nationale des Usines Renault | Display device for dashboard of automobile |
4329625, | Jul 24 1978 | Zaidan Hojin Handotai Kenkyu Shinkokai | Light-responsive light-emitting diode display |
4342947, | Oct 14 1977 | Light indicating system having light emitting diodes and power reduction circuit | |
4347461, | Oct 23 1980 | Robert L., Elving | Incident illumination responsive light control |
4367464, | May 29 1979 | Mitsubishi Denki Kabushiki Kaisha | Large scale display panel apparatus |
4386281, | Jan 15 1981 | SGS-Thomson Microelectronics, Inc | Circuit for detecting loss of supply voltage |
4388578, | Jul 07 1980 | Cynex Manufacturing Corporation | Power factor controller |
4423478, | Jul 20 1981 | Xerox Corporation | Phase controlled regulated power supply |
4467246, | Aug 28 1980 | Canon Kabushiki Kaisha | Light quantity controller and input device |
4492899, | Aug 18 1981 | U S TRAFFIC CORPORATION | Solid state regulated power supply system for cold cathode luminous tube |
4495445, | Jun 06 1983 | RCA LICENSING CORPORATION, A DE CORP | Brightness control for a vacuum fluorescent display |
4568857, | Nov 09 1982 | Honeywell Ltd. | Fluorescent light controller |
4571506, | Mar 28 1984 | AT&T Bell Laboratories | LED Driver Circuit |
4581655, | Mar 31 1983 | Toshiba Denzai Kabushiki Kaisha | Video display apparatus |
4587459, | Dec 27 1983 | Light-sensing, light fixture control system | |
4598198, | May 21 1984 | Banner Engineering Corp. | Automatic power control for modulated LED photoelectric devices |
4645997, | Mar 13 1985 | KOLLMORGEN TECHNOLOGIES CORPORATION, CTC CORP REPUBLIC NATIONAL BANK BLDG , A CORP OF TEXAS | Transient free solid state automatic power factor correction |
4656365, | Jul 12 1985 | Sundstrand Corporation | Solid state power controller leakage current shunt circuit |
4673865, | Apr 04 1986 | Motorola, Inc. | Charge coupled LED driver circuit |
4677366, | May 12 1986 | PIONEER MAGNETICS, INC , 1745 BERKELEY STREET, SANTA MONICA, CA 90404 A CORP OF CA | Unity power factor power supply |
4712000, | Oct 21 1983 | Canon Kabushiki Kaisha | Rotary encoder with source-adjacent light sampling and control |
4717868, | Jun 08 1984 | AMI Semiconductor, Inc | Uniform intensity led driver circuit |
4719552, | Nov 22 1985 | U S PHILIPS CORPORATION | AC-DC converter triggered by variable frequency pulses |
4729076, | Nov 15 1984 | JAPAN TRAFFIC MANAGEMENT TECHNOLOGY ASSOCIATION, A CORP OF JAPAN; KOITO INDUSTRIES, LTD , A CORP OF JAPAN; STANLEY ELECTRIC CO , LTD , A CORP OF JAPAN UNDIVIDED ONE-THIRD INTEREST | Signal light unit having heat dissipating function |
4825351, | Nov 26 1986 | KABUSHIKI KAISHA TOSHIBA, 72, HORIKAWA-CHO, SAIWAI-KU, KAWASAKI-SHI, KANAGAWA-KEN, JAPAN | AC-DC converting apparatus having power factor improving circuit utilizing a photocoupler |
4837495, | Oct 13 1987 | BSR NORTH AMERICA LTD | Current mode converter with controlled slope compensation |
4845489, | Dec 23 1985 | Chrysler Motors Corporation | Electroluminescent display drive circuitry |
4849683, | Dec 07 1988 | TEMIC AUTOMOTIVE OF NORTH AMERICA, INC | Lamp driver circuit with controlled power over a range of power supply voltages |
4855890, | Jun 24 1987 | EMERSON NETWORK POWER, ENERGY SYSTEMS, NORTH AMERICA, INC | Power factor correction circuit |
4868669, | Jul 31 1986 | Ricoh Company, Ltd. | Integrated input/output device |
4891569, | Aug 20 1982 | Versatex Industries | Power factor controller |
4902936, | Nov 20 1986 | Sharp Kabushiki Kaisha | Light adjusting apparatus |
4929871, | Jun 16 1986 | Transformerless current-limiting circuit | |
4933605, | Jun 12 1987 | EMERGENT BUSINESS CAPITAL, INC | Fluorescent dimming ballast utilizing a resonant sine wave power converter |
4943902, | Nov 23 1987 | PREMIER POWER SYSTEMS, INC A CORP OF VIRGINIA | AC to DC power converter and method with integrated line current control for improving power factor |
4954822, | Sep 02 1988 | Traffic signal using light-emitting diodes | |
4958108, | Feb 14 1989 | GENERAL ELECTRIC CAPITAL CORPORATION AS SENIOR AGENT FOR SENIOR LENDERS | Universal fluorescent lamp ballast |
4969282, | Dec 02 1988 | KIZY, JOHN | Glass block illuminated display |
4970437, | Jul 10 1989 | OSRAM SYLVANIA Inc | Chopper for conventional ballast system |
4974141, | May 18 1988 | PREMIER POWER SYSTEMS, INC A CORP OF VIRGINIA | AC to DC power converter with input current waveform control for buck-boost regualtion of output |
4980812, | Nov 09 1989 | Powerware Corporation | Uninterrupted power supply system having improved power factor correction circuit |
4982139, | Apr 03 1989 | AT&T Bell Laboratories | Method and apparatus for controlling light intensity |
4988889, | Jul 03 1989 | SELF-POWERED LIGHTING, INC | Power source for emergency lighting systems |
5001620, | Jul 25 1988 | ASTEC INTERNATIONAL LIMITED, KAISER ESTATE | Power factor improvement |
5003454, | Jan 09 1990 | North American Philips Corporation | Power supply with improved power factor correction |
5004947, | Jan 21 1986 | Fluorescent lamp ballast with high power factor | |
5006975, | Nov 03 1989 | SEMICONDUCTOR COMPONENTS INDUSTRIES OF RHODE ISLAND, INC | Power factor correction circuit |
5008599, | Feb 14 1990 | PRESCOLITE MOLDCAST LIGHTING COMPANY | Power factor correction circuit |
5012161, | Jan 05 1989 | General Electric Company | Power factor correction circuit |
5012162, | Apr 13 1990 | Lockheed Martin Corp | Light emitting diode transmitter circuit with temperature compensation |
5019952, | Nov 20 1989 | General Electric Company | AC to DC power conversion circuit with low harmonic distortion |
5023521, | Dec 18 1989 | RADIONIC TECHNOLOGY, INC A CORP OF ILLINOIS | Lamp ballast system |
5030887, | Jan 29 1990 | High frequency fluorescent lamp exciter | |
5041766, | Jan 23 1989 | NILSSEN, OLE K , | Power-factor-controlled electronic ballast |
5045758, | Apr 25 1990 | INTERSECTION DEVELOPMENT CORPORATION | Solid state regulated power supply for luminescent lamp |
5047912, | Mar 09 1990 | International Rectifier Corporation | Four-terminal unity power factor electronic rectifier |
5048033, | Sep 04 1990 | Coherent, Inc | Method and apparatus for controlling the power supply of a laser operating in a pulse mode |
5075601, | Apr 25 1990 | INDICATOR CONTROLS CORPORATION, A CORP OF CA | Power supply dynamic load for traffic and pedestrian signal |
5089748, | Jun 13 1990 | Delphi Technologies Inc | Photo-feedback drive system |
5095305, | Aug 31 1988 | Toshiba Lighting & Technology Corporation | Large display apparatus using discharge lamps and discharge lamp load circuit for the large display apparatus |
5113337, | Feb 08 1991 | General Electric Company | High power factor power supply |
5134345, | Oct 31 1991 | General Electric Company | Feedback system for stabilizing the arc discharge of a high intensity discharge lamp |
5134355, | Dec 31 1990 | Texas Instruments Incorporated | Power factor correction control for switch-mode power converters |
5135160, | Aug 17 1990 | Opticon, Inc. | Portable bar code reader utilizing pulsed LED array |
5146398, | Aug 20 1991 | LED Corporation N.V. | Power factor correction device provided with a frequency and amplitude modulated boost converter |
5212428, | Oct 01 1990 | Koito Manufacturing Co., Ltd. | Lighting circuit for vehicular discharge lamp |
5235504, | Mar 15 1991 | EMERSON ELECTRIC CO A MO CORPORATION | High power-factor converter for motor drives and power supplies |
5258692, | Jun 02 1992 | Robertshaw Controls Company | Electronic ballast high power factor for gaseous discharge lamps |
5272327, | May 26 1992 | HEWLETT-PACKARD DEVELOPMENT COMPANY, L P | Constant brightness liquid crystal display backlight control system |
5293077, | Feb 29 1988 | Hitachi, Ltd.; Hitachi Microcomputer Engineering, Ltd. | Power switching circuit |
5309062, | May 20 1992 | ALP LIGHTING & CEILING PRODUCTS, INC | Three-way compact fluorescent lamp system utilizing an electronic ballast having a variable frequency oscillator |
5313187, | Oct 11 1989 | Societe Generale | Battery-powered flashing superluminescent light emitting diode safety warning light |
5317307, | May 22 1992 | INTEL CORPORATION, A CORPORATION OF DELAWARE | Method for pulse width modulation of LEDs with power demand load leveling |
5321600, | Oct 26 1992 | HE HOLDINGS, INC , A DELAWARE CORP ; Raytheon Company | Delta connected three phase AC-DC converter with power factor correction circuits |
5340974, | Dec 09 1991 | B F GOODRICH COMPANY, THE | Polychromatic source calibration by one or more spectrally filtered photodetector currents |
5349172, | Feb 27 1992 | Symbol Technologies, Inc | Optical scanning head |
5354977, | Oct 02 1992 | Symbol Technologies, Inc | Optical scanning head |
5359274, | Aug 20 1992 | North American Philips Corporation | Active offset for power factor controller |
5359276, | May 12 1993 | Unitrode Corporation | Automatic gain selection for high power factor |
5363020, | Feb 05 1993 | ENTERGY INTEGRATED SOLUTIONS, INC | Electronic power controller |
5367223, | Dec 30 1991 | Hewlett-Packard Company | Fluoresent lamp current level controller |
5371667, | Jun 14 1993 | Fuji Electrochemical Co., Ltd. | Electric power supply |
5391976, | Jul 28 1993 | American Telephone and Telegraph Company | Power factor control arrangement for an OLS based on quarter cycle averaged power flow |
5396153, | Dec 09 1993 | OSRAM SYLVANIA Inc | Protection circuit for electronic ballasts which use charge pump power factor correction |
5408084, | Feb 18 1993 | GN NETTEST | Method and apparatus for illumination and imaging of a surface using 2-D LED array |
5408403, | Aug 25 1992 | General Electric Company | Power supply circuit with power factor correction |
5420779, | Mar 04 1993 | Dell USA, L.P. | Inverter current load detection and disable circuit |
5430635, | Dec 06 1993 | Inshore Holdings, LLC | High power factor electronic transformer system for gaseous discharge tubes |
5436529, | Feb 01 1993 | Control and protection circuit for electronic ballast | |
5436553, | Sep 24 1993 | Tektronix, Inc. | Optical power conversion |
5438586, | Nov 30 1992 | Canon Kabushiki Kaisha | Apparatus with light-emitting element and method for producing it |
5446440, | Jan 06 1993 | Lederlite Corporation | Emergency sign and control circuit |
5449981, | Mar 10 1989 | BRUCE AEROSPACE, INC | Electronic ballast and power controller |
5459478, | Dec 27 1993 | Korry Electronics Co | Aircraft cockpit switch circuitry |
5463280, | Mar 03 1994 | ABL IP Holding, LLC | Light emitting diode retrofit lamp |
5489771, | Oct 15 1993 | University of Virginia Patent Foundation | LED light standard for photo- and videomicroscopy |
5495147, | Apr 15 1994 | LED light string system | |
5510680, | |||
5532918, | Jun 10 1992 | Digital Equipment Corporation | High power factor switched DC power supply |
5539198, | Sep 28 1993 | MERITOR LIGHT VEHICLE TECHNOLOGY, LLC A DELAWARE LIMITED LIABILITY COMPANY | Uniform sensitivity light curtain |
5550463, | May 20 1993 | Power supply connected in parallel with solid state switch for phase control of average power to a load | |
5563781, | Nov 24 1993 | Integrated Technology Corporation | Dual-mode power converter |
5572112, | May 23 1994 | Fujitsu Limited | Power supply unit |
5572416, | Jun 09 1994 | Lucent Technologies, INC | Isolated input current sense means for high power factor rectifier |
5587895, | Sep 07 1994 | PECO, INC | Electrical power supply with single output from range of input voltages |
5614812, | Mar 16 1995 | Franklin Electric Co. Inc. | Power supply with power factor correction |
5615101, | Dec 29 1994 | Lucent Technologies Inc | Power converter with high power factor |
5633629, | Feb 08 1995 | Relume Technologies, Inc | Traffic information system using light emitting diodes |
5635902, | Nov 16 1994 | HOCHSTEIN - EXECUTOR LEGAL REPRESENTATIVE, MARIE B | L.E.D. enhanced bus stop sign |
5638265, | Aug 24 1993 | Spinel LLC | Low line harmonic AC to DC power supply |
5646512, | Aug 15 1996 | Multifunction adaptive controls for tapswitches and capacitors | |
5650694, | Mar 31 1995 | Philips Electronics North America Corporation; U S PHILIPS CORPORATION | Lamp controller with lamp status detection and safety circuitry |
5654705, | Sep 06 1996 | PALFFY, JOHN | Apparatus for prompting pedestrians |
5661374, | Dec 14 1994 | Astronics Corporation | LED light strip with brightness/current draw control circuitry |
5663719, | Apr 29 1993 | ELECTRO-TECH S | LED traffic signal light with automatic low-line voltage compensating circuit |
5684368, | Jun 10 1996 | UNIVERSAL DISPLAY CORPORATION | Smart driver for an array of LEDs |
5719474, | Jun 14 1996 | Lockheed Martin Corp | Fluorescent lamps with current-mode driver control |
5734229, | Nov 29 1995 | BAVCO MANUFACTURING, CO INC | Back-up electrical system for portable table lamps |
5764039, | Nov 15 1995 | SAMSUNG ELECTRONICS CO , LTD | Power factor correction circuit having indirect input voltage sensing |
5765940, | Oct 21 1996 | Dialight Corporation | LED-illuminated stop/tail lamp assembly |
5767979, | May 22 1996 | SAMSUNG ELECTRONICS CO , LTD , A CORPORATION OF THE REPUBLIC OF KOREA | Led light source apparatus for scanner and method for controlling the same |
5782555, | Jun 27 1996 | Relume Technologies, Inc | Heat dissipating L.E.D. traffic light |
5783909, | Jan 10 1997 | Relume Technologies, Inc | Maintaining LED luminous intensity |
5785418, | Jun 27 1996 | Relume Technologies, Inc; FOY, DENNY | Thermally protected LED array |
5845987, | Oct 08 1996 | Illuminated accessory and device | |
5852348, | May 08 1997 | Christmas tree ornamental lighting system | |
5857767, | Sep 23 1996 | Relume Technologies, Inc | Thermal management system for L.E.D. arrays |
5929568, | Jul 08 1997 | Korry Electronics Co. | Incandescent bulb luminance matching LED circuit |
5934798, | Nov 12 1997 | TRUCK-LITE CO , LLC | Light emitting diode license lamp |
5936599, | Jan 27 1995 | AC powered light emitting diode array circuits for use in traffic signal displays | |
CA2142132, | |||
CA2142332, | |||
CA786714, | |||
DE472963, | |||
DE3535204, | |||
DE3644347, | |||
EP660648, | |||
EP585595, | |||
JP293921, | |||
JP472963, | |||
JP6317822, | |||
JP63231687, | |||
JP9143938, | |||
JP9204843, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Aug 24 1999 | Relume Corporation | (assignment on the face of the patent) | / | |||
Sep 27 2004 | Relume Corporation | CUETRONICS, INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015831 | /0349 | |
Mar 24 2008 | CUETRONICS, INC | Relume Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 020835 | /0109 | |
Jun 07 2011 | TRUSTEES OF THE RELUME CORPORATION UNDER AGREEMENT OF TRUST DATED JULY 15, 2009 | Relume Corporation | NUNC PRO TUNC ASSIGNMENT SEE DOCUMENT FOR DETAILS | 026421 | /0913 | |
Feb 13 2012 | Relume Corporation | AGREEMENT AND DECLARATION OF TRUST DATED JUNE 1, 2009 | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 027709 | /0308 | |
May 09 2014 | RELUME CORPORATION TRUST | WELLS, III, CHARLES, TEE | COURT ORDER SEE DOCUMENT FOR DETAILS | 033268 | /0814 |
Date | Maintenance Fee Events |
Date | Maintenance Schedule |
Feb 22 2014 | 4 years fee payment window open |
Aug 22 2014 | 6 months grace period start (w surcharge) |
Feb 22 2015 | patent expiry (for year 4) |
Feb 22 2017 | 2 years to revive unintentionally abandoned end. (for year 4) |
Feb 22 2018 | 8 years fee payment window open |
Aug 22 2018 | 6 months grace period start (w surcharge) |
Feb 22 2019 | patent expiry (for year 8) |
Feb 22 2021 | 2 years to revive unintentionally abandoned end. (for year 8) |
Feb 22 2022 | 12 years fee payment window open |
Aug 22 2022 | 6 months grace period start (w surcharge) |
Feb 22 2023 | patent expiry (for year 12) |
Feb 22 2025 | 2 years to revive unintentionally abandoned end. (for year 12) |