High efficiency light compatibility device
10470277 ยท 2019-11-05
Assignee
Inventors
Cpc classification
H05B45/56
ELECTRICITY
H05B47/115
ELECTRICITY
Y02B20/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01H9/54
ELECTRICITY
F21V19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B47/24
ELECTRICITY
Y02B20/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An anti-flicker and anti-glow switchable load apparatus to be installed in the light socket of a commonly powered electronic switching device, such as a motion activated light switch. An energy efficient light bulb or lamp, such as a cathode fluorescent lamp or light emitting diode is then electrically connected to the apparatus. A first embodiment of the present invention includes a switchable light source, a switchable load, a controller, and a voltage sensor. When the present invention in the first embodiment detects a higher voltage, thus indicating the lamp has been switched from the off state to the on state, the switchable load is disconnected, and the current is re-routed to pass through the energy efficient lamp.
Claims
1. An apparatus for stabilizing an energy-efficient light connected to a motion detector by redirecting current away from the energy-efficient light during an off-state, comprising: an electrical switch configured for directing current to a first electrical contact during an on-state and a second electrical contact during an off-state; an energy-efficient light electrically connected between the first electrical contact of the electrical switch and a common electrical node; an electrical resistive load electrically connected between the second electrical contact of the electrical switch and the common electrical node; a controller electrically connected to the electrical switch, wherein the controller directs the electrical switch to pass electrical current to the first electrical contact in response to a received on-state signal and the second electrical contact in response to a received off-state signal; and a motion detector connected electrically to the controller, wherein the motion detector sends an on-state signal to the controller in response to detected motion and sends an off-state signal to the controller in response to a lack of detected motion.
2. The apparatus of claim 1, further comprising: a housing having a threaded base that is configured to be screwed into a standard light bulb socket.
3. The apparatus of claim 1, wherein the controller includes a microprocessor.
4. The apparatus of claim 1, wherein the energy-efficient light is a CFL.
5. The apparatus of claim 1, wherein the energy-efficient light is an LED.
6. An apparatus for stabilizing an energy-efficient light connected to an external electrical switch by redirecting current away from the energy-efficient light during an off-state, comprising: an internal electrical switch configured for directing current to a first electrical contact during an on-state and a second electrical contact during an off-state; a receptacle for receiving an energy-efficient light, wherein the receptacle is electrically connected between the first electrical contact of the internal electrical switch and a common electrical node; an electrical resistive load electrically connected between the second electrical contact of the internal electrical switch and the common electrical node; and a controller electrically connected to an external electrical switch, wherein the controller directs the internal electrical switch to pass electrical current to the first electrical contact in response to a received on-state signal from the external electrical switch and the second electrical contact in response to a received off-state signal from the external electrical switch.
7. The apparatus of claim 6, wherein the external electrical switch is included within a motion detector connected electrically to the controller, and the motion detector sends an on-state signal to the controller in response to detected motion and sends an off-state signal to the controller in response to a lack of detected motion.
8. The apparatus of claim 6, wherein the receptacle includes an electrical socket.
9. The apparatus of claim 6, wherein the controller includes a microprocessor.
10. The apparatus of claim 6, further comprising: an energy-efficient light electrically connected to the receptacle.
11. The apparatus of claim 10, wherein the energy-efficient light is a CFL.
12. The apparatus of claim 6, wherein the receptacle includes exposed electrical contacts to be electrically connected to an energy-efficient light.
13. The apparatus of claim 6, further comprising an external electrical switch to signal the on-state and the off-state.
14. The apparatus of claim 13, wherein the external electrical switch includes an electronic timer to signal the on-state and the off-state.
15. The apparatus of claim 13, wherein the external electrical switch includes a wall mounted electronic timer to signal the on-state and the off-state.
16. The apparatus of claim 13, wherein the external electrical switch includes a dimmer switch.
17. The apparatus of claim 13, wherein the external electrical switch includes a photoelectric switch.
18. The apparatus of claim 13, wherein the external electrical switch is passive.
19. The apparatus of claim 13, wherein the external electrical switch is non-passive, thereby requiring an external power source for the external electrical switch to function properly.
20. The apparatus of claim 13, wherein the external electrical switch is a passive mechanical switch, thereby functioning properly without an external power source.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) Referring now to the drawings,
(13) In order to overcome this deficiency in the prior art, the present invention provides an anti-flicker or anti-glow switchable load apparatus 110 to carry the current during the off state, thus by-passing the energy efficient lamp 106 in the first embodiment of the invention, and minimizing current to the energy efficient lamp in the second embodiment of the present invention, thereby both first and second embodiments of the present invention preventing flickering or glowing of the energy efficient lamp 106. When the motion detector detects movement, and switches from an off state to an on state, thus providing increased voltage to the socket 105, the anti-flicker switchable load apparatus 110 detects the increased voltage, and re-directs or increases current flow, depending upon the embodiment of the invention, to the lamp 106 instead of a switchable load contained within the anti-flicker switchable load apparatus.
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(15) Block diagram 16 illustrates the internal electrical components of the anti-flicker apparatus 10 configured in accordance with a first embodiment of the present invention. Included in the anti-flicker apparatus 10 are a switchable load 20, a controller 22, a voltage sensor 24, and a switchable light source 23. In the illustrated embodiment, the switchable light source 25 is a Single-Pole Double-Through (SPDT) switch. The anti-flicker apparatus 10 is electrically connected between the light socket 12 and the energy efficient lamp 14. During the off state, a minimal current passes though the switchable load 20, thus preventing enough current to pass through the energy efficient lamp 14 to cause flicker or a soft glow. The voltage sensor 24 monitors the level of voltage between lines Hot (In) and Neutral (or ground). When the voltage level between lines Hot (In) and Neutral (or ground) increases to a level to indicate the electronic switch, such as a motion sensor, has switched from an off state to an on state, the controller 22 will disconnect the Hot (In) line from switchable load 20, and connect it to Hot (Out) line, thus re-directing all the current to the lamp 14.
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(17) When the motion detector detects movement and switches to the on state, the voltage level across nodes Hot (A) and Neutral (or ground) (B) increases significantly, which is detected by the normally open make before brake relay 26. Sensing the increased voltage, the relay 26 switches to the closed position C, thus allowing current to flow through line 29 to the lamp 14, and then line 27 changes to an open connection. This design eliminates power loss across the resistor 28 during the on state.
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(19) The block diagram 60 of the anti-flicker switchable load apparatus 50 includes a switchable load 62 with an integrated current sensor, a controller and local power supply 64, and a voltage sensor 66. Similar to the first embodiment, the switchable load 62 provides a path for the small current providing power to the motion detector during the off state. The voltage sensor 66 monitors the voltage level between the hot lead 53 and the neutral (or ground) lead 55. When the voltage level increases, indicating that the motion detector 52 has detected an object and switched from the off state to the on state, the switchable load/current sensor 62 detects the increase in voltage and signals the controller and local power supply 64. The controller and local power supply 64 then opens the switchable load 62, turning off current flow through the switchable load 62, which prevents wasting power in the suitable load, since the energy efficient lamp 56 is fully on. When a decrease in voltage is detected by the voltage sensor 66, thus signaling the motion detector 52 has switched back to an off state, the controller and local power supply 64 detects the voltage drop from the voltage sensor 66 and closes the switchable load 62 to re-direct current through the switchable load. This reduces the voltage to the CCFL, thus keeping it from falsely firing.
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(21) The diode bridge B1 converts 120 volts RMS to full wave 180 VDC. The resistor R1, diode D1, capacitor C2, and zener diode D2 create a 3.3v power supply to power the microprocessor 70. The microprocessor 70 monitors the voltage across nodes E and F via sense line 72, which is located between the resistor bridge R4 and R5. The microprocessor also monitors the current by measuring the voltage across R2A to determine the current through the load when Q1 is active. The microprocessor 70 is programmed to control the switchable load 62 to provide power for the motion detector 52 in the off state. When the controller has switched off the load and the motion detector is on, the controller monitors the voltage across nodes E and F via sense line 71, which is located between the resistor bridge R4 and R5. The microprocessor 70 is programmed to control the switchable load to turn back on when the voltage is too low.
(22) The switchable load 62 includes the mosfet Q1 and the resistive load bank R2. The mosfet Q1 has a shunt resistor R3 on the gate to ensure the mosfet Q1 is off during power up. The microprocessor 70 activates the mosfet Q1 when current flow is necessary to provide power to the motion detector 52 and shuts off when the motion detector 52 has turned on the light 56 so it does not waste power and overheat the resistive load bank. The microprocessor 70 also utilizes the current sensor to determine when the motion detector has turned on and current is larger than when it is in a quiescent state. This is accomplished though the gate control line 71 in
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(25) Various types of parasitic load control devices were examined by the inventors of the present invention which were not compatible with high efficiency bulbs, in particular, a series of motion detect switches were reviewed in detail. When the device is in motion detector mode and the lamp is supposed to be off, the flickering occurs. It appears the switch is designed so that when the device is in motion detector mode the Resistor Capacitor (RC) network is not in parallel with the load. This explains why the flickering occurs when the lamp is supposed to be off. In the motion sensing mode the device is not compatible, presumably since the RC network is switched out allowing the quiescent current to reach the high efficiency bulb.
(26) The inventors of the present invention determined that a method of preventing the quiescent current from reaching the high efficiency bulb is to shunt the current, diverting it to another path within the circuit or lowering the current below the threshold of causing the various types of high efficiency bulbs to false start.
(27) Shunting methods can range from simple to complex designs to accomplish this task. The most common ways to sense current are a resistive shunt, the current transformer and the Hall Effect current sensor.
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(30) As shown in
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(33) The microprocessor U1 monitors the current to determine the load when Q1 is active. The microprocessor U1 is programmed to control the switchable load to provide power for the external device when it is in the off state. When the external device has turned on, the controller 200 detects the increase in current and switches off the load. When the controller 200 has switched off the load and the motion detector is on, the controller 200 monitors the voltage detector to determine if the external device has turned off the power. When this happens the controller 200 re-asserts the load to provide power to the external device.
(34) It should also be understood that the present invention is not limited to the specifically illustrated package designs. For example, the present invention also can be located within light socket fixture box, typically located within the ceiling of a home. Further, the present invention can be incorporated into various types of electronics switches, in addition to electronic switches such as motion detectors and electronic timers.