This application claims priority of Chinese application no. 200810090481.4, filed on Apr. 16, 2008.
1. Field of the Invention
The invention relates to an encoding device, a lamp, and a controlled lighting system, more particularly to an encoding device for a light-emitting-diode (LED) lamp, a lamp, and a controlled lighting system.
2. Description of the Related Art
Referring to
Referring to
The conventional control system is adapted to control color emitted by a LED 82 in a lamp 8, and is coupled electrically to an adapter 63 that converts an alternating current (AC) power input into a direct current (DC) power output. The conventional control system includes an encoding device 71, and a decoding device 81 built into the lamp 8. Referring to
Referring to
Referring to
The decoder 92 receives the output signal through the transmission line, and controls brightness of the gas discharge light bulb 94 according to the waveform of the output signal. The decoder 92 is not configured to control the color of the light emitted by the gas discharge light bulb 94.
The object of the present invention is to provide an encoding device for a light-emitting-diode lamp, a lamp, and a controlled lighting system, which simplify the configuration of the lamp, reduce the required amount of wires, and shorten the time for installing a lighting network.
According to one aspect of the present invention, there is provided an encoding device for a light-emitting-diode (LED) lamp. The encoding device is adapted to receive an alternating current (AC) voltage input and display data related to a light-emitting operation, and comprises a rectifier and an encoder.
The rectifier rectifies the AC voltage input to result in a rectified signal.
The encoder generates an encoded signal from the rectified signal and the display data. The encoded signal has an amplitude corresponding to a magnitude of the rectified signal, and a waveform corresponding to the display data. The encoded signal has a plurality of consecutive signal regions of equal time durations. Each of the signal regions has one of first and second states. The waveform of the signal region having the first state is a positive half-cycle of an AC sinusoidal wave. The waveform of the signal region having the second state is a low potential waveform.
According to another aspect of the present invention, there is provided a lamp adapted For receiving an encoded signal that includes a power component and a signal component related to a light-emitting operation. The lamp comprises a light-emitting-diode (LED) unit and a decoding device. The decoding device includes a direct current converter for extracting a direct current voltage from the encoded signal, a detecting circuit for extracting a wave signal in digital form from the encoded signal, a processor for generating decoded data related to a light-emitting operation of the LED unit in accordance with the wave signal extracted by the detecting circuit, and a driver for driving the LED unit according to the direct current voltage from the direct current converter and the decoded data from the processor.
According to yet another aspect of the present invention, there is provided a controlled lighting system adapted to receive an alternating current (AC) voltage input and display data related to a light-emitting operation. The controlled lighting system comprises an encoding device and a lamp.
The encoding device includes a rectifier and an encoder. The rectifier rectifies the AC voltage input to result in a rectified signal. The encoder generates an encoded signal from the rectified signal and the display data. The encoded signal has an amplitude corresponding to a magnitude of the rectified signal, and a waveform corresponding to the display data. The encoded signal has a plurality of consecutive signal regions of equal time durations. Each of the signal regions has one of first and second states. The waveform of the signal region having the first state is a positive half-cycle of an AC sinusoidal wave. The waveform of the signal region having the second state is a low potential waveform.
The lamp includes a light-emitting-diode (LED) unit and a decoding device. The decoding device includes a direct current converter for extracting a direct current voltage from the encoded signal, a detecting circuit for extracting a wave signal in digital form from the encoded signal, a processor for generating decoded data related to a light-emitting operation of the LED unit in accordance with the wave signal extracted by the detecting circuit, and a driver for driving the LED unit according to the direct current voltage from the direct current converter and the decoded data from the processor.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
a) to 10(i) are timing diagram of various signals in the controlled lighting system of the preferred embodiment; and
a) to 11(e) are timing diagrams of various signals in another controlled lighting system of this invention that incorporates a modified encoding device.
Referring to
The encoding device 1 generates an encoded signal (see
The encoding device 1 includes a rectifier 11, a zero-crossing detecting circuit 12, a direct current regulator 13, an encoder 14, and a resistor 15.
In this embodiment, the rectifier 11 is a full wave rectifier, receives the AC voltage input 5 (see
The rectified signal from the rectifier 11 has a waveform that includes a plurality of consecutive regions of equal time durations. The waveform in each of the regions of the rectified signal is a positive half-cycle of the AC sinusoidal wave. The amplitude of the rectified signal is determined by the AC voltage input 5. In particular, the amplitude of the rectified signal increases with an increase in the amplitude of the AC voltage input 5.
The zero-crossing detecting circuit 12 detects zero voltage points in the AC voltage input 5 to generate a first trigger signal (see
The direct current regulator 13 regulates the rectified signal to result in a direct current voltage that is provided to the encoder 14.
The encoder 14 includes a control circuit 141 and aswitch 142. The control circuit 141 receives the direct current voltage from the direct current regulator 13, and generates a control signal (see
The amplitude of the encoded signal corresponds to a magnitude of the rectified signal. The waveform of the encoded signal corresponds to the display data. The waveform of the encoded signal has a plurality of consecutive signal regions of equal time durations. Each of the signal regions has one of first and second states. The waveform of the signal region having the first state is a positive half-cycle of an AC sinusoidal wave. The waveform of the signal region having the second state is a low potential waveform.
When the display data has a value of 1, the waveform of a corresponding one of the signal regions of the encoded signal has the first state, and an amplitude of the corresponding signal region having the first state increases with an increase in the amplitude of the rectified signal. On the other hand, when the display data has a value of 0, the waveform of a corresponding one of the signal regions of the encoded signal has the second state.
In one implementation of the encoder 14, each time the encoder 14 receives one of the pulses of the first trigger signal, the encoder 14 processes a corresponding bit of the display data. If the processed bit of the display data is 1, the control circuit 141 selects the first trigger signal for output as the control signal. On the other hand, if the processed bit of the display data is 0, the control circuit 141 selects the low potential waveform for output as the control signal. In this embodiment, the switch 142 is a silicon-controlled rectifier. When the switch 142 is triggered by the control signal, the rectified signal is outputted as the encoded signal until the rectified signal has zero amplitude or until the switch 142 is triggered once again by the control signal.
Referring to
Since the amplitude of the encoded signal corresponds to the magnitude of the rectified signal, which in turn is related to the amplitude of the AC voltage input 5, and since the waveform of the encoded signal corresponds to the display data, the encoded signal simultaneously presents a power component (corresponding to the AC voltage input 5) and a signal component related to a light-emitting operation (corresponding to the display data). Therefore, only one transmission line is required by the encoding device 1 to connect with an input port of a lamp to achieve the object of illumination control, thereby overcoming the drawbacks associated with the use of two twisted-pair lines to transmit power and control signals, respectively.
Referring to
The isolating circuit 21 isolates noise from the encoded signal prior to receipt of the encoded signal by the direct current converter 22.
The direct current converter 22 extracts a direct current voltage from the processed encoded signal received from the isolating circuit 21. The direct current voltage is used to power operations of the processor 24 and the driver 25.
The detecting circuit 23 includes a zero-crossing detecting circuit for detecting zero voltage points in the encoded signal and for generating a wave signal (see
The processor 24 detects a level of the wave signal and generates multi-bit recovered data (see
In this embodiment, when the wave signal is at a high potential level at a rising edge of the second trigger signal, the bit of the recovered data generated by the processor 24 is a 1. On the other hand, when the wave signal is at a low potential level at a rising edge of the second trigger signal, the bit of the recovered data generated by the processor 24 is a 0. While detection is conducted at the rising edge of the second trigger signal in this embodiment, the detection may be conducted at a falling edge of the second trigger signal or when the second trigger signal is at the high potential level in other embodiments of the invention.
The processor 24 includes an inverter 241 for inverting the recovered data to obtain the decoded data (see
The driver 25 receives the direct current voltage from the direct current converter 22 and the decoded data from the processor 24. The driver 25 drives the LED unit 3 such that the latter changes the color of light emitted thereby or maintains the color of light emitted thereby according to the decoded data.
It should be noted herein that the encoding device 1 and the lamp of the controlled lighting system of this invention could be sold separately.
In sum, the encoding device 1 for a LED lamp, the lamp, and the controlled lighting system according to the present invention utilize the encoder 14 to generate an encoded signal that combines the AC voltage input 5 and the display data, so that a single transmission line is sufficient to connect the encoding device 1 to an input port of the lamp for illumination control. Moreover, since the encoding device 1 receives the AC voltage input 5 directly, there is no need for an adapter in this invention. Furthermore, this invention simplifies the configuration of the lamp, reduces the required amount of wires, and shortens the time for installing a lighting network.
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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2008 1 0090481 | Apr 2008 | CN | national |
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Number | Date | Country | |
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20090261750 A1 | Oct 2009 | US |