The present invention relates to a light emitting diode system, and especially relates to a light emitting diode system with light signals carried via power lines.
For the existing light emitting diode lamp string generating the light signals, the additional light signal generation circuit has to be arranged to generate the light signals carried via power lines. Arranging the additional light signal generation circuit will result in the additional cost problem. Therefore, how to effectively reduce the cost of the additional light signal generation circuit is the goal of the current technology.
In order to solve the above-mentioned problems, an object of the present invention is to provide a light emitting diode system with light signals carried via power lines.
In order to achieve the object of the present invention mentioned above, the light emitting diode system of the present invention includes a light emitting diode lamp string, a signal voltage unit and a control unit. The light emitting diode lamp string comprises a plurality of light emitting diode units and receives power supplied through the power lines to light. The signal voltage unit is electrically connected to the light emitting diode lamp string. The control unit is electrically connected to the signal voltage unit. The control unit is configured to drive the signal voltage unit to adjust a voltage of the light emitting diode lamp string continuously and repeatedly so the voltage of the light emitting diode lamp string is a predetermined voltage, to form the light signal comprising a plurality of pulse waves to send the light signal to the light emitting diode lamp string. When each of the light emitting diode units receives the light signal, each of the light emitting diode units is configured to perform a conversion and a decoding for the light signal to obtain a lighting mode of the light signal, and then each of the light emitting diode units is configured to light based on the lighting mode.
The advantage of the present invention is to generate the light signals easily to drive the light emitting diodes to perform changing lighting. Therefore, the cost of the light signal generation circuit is saved.
Please refer to the detailed descriptions and figures of the present invention mentioned below for further understanding the technology, method and effect disclosed by the present invention to achieve the predetermined purpose of the present invention. The purpose, features and characteristics of the present invention can be understood well and in details. However, the figures are only for references and descriptions, but the present invention is not limited by the figures.
Please refer to following detailed description and figures for the technical content of the present invention.
The control unit 104 is configured to drive the signal voltage unit 102 to adjust a voltage of the light emitting diode lamp string 20 continuously and repeatedly so the voltage of the light emitting diode lamp string 20 is a predetermined voltage, to form the light signal comprising a plurality of pulse waves to send the light signal to the light emitting diode lamp string 20. When each of the light emitting diode units 202 receives the light signal, each of the light emitting diode units 202 is configured to perform a conversion and a decoding for the light signal to obtain a lighting mode of the light signal, and then each of the light emitting diode units 202 is configured to light based on the lighting mode.
In an embodiment of the present invention, the control unit 104 controls a conduction rate of the signal voltage unit 102 to change a voltage of the power output side 10204 to generate the light signal, and then the light emitting diode lamp string 20 receives the light signal to perform changing lighting. The light signal is used to control a lighting pattern of the light emitting diode lamp string 20. The light signal can comprise a plurality of pulse waves to drive the light emitting diode lamp string 20 to achieve various lighting patterns (for examples, changing colors, fast blinking, slowly blinking, marquee effect and so on). The light emitting diode units 202 are two-pin point-controlled lamps. The signal voltage unit 102 shown in
In the embodiment shown in
The controlling side Zener diode 10402 is used to supply power to the control unit 104. The related art control unit utilizes the voltage drop of the related art resistor as the driving voltage. However, because the input voltage is high, the temperature of the related art resistor is very high and dangerous. The controlling side Zener diode 10402 of the present invention replaces the related art resistor to supply power to the control unit 104 to avoid the high temperature of the related art resistor. The present invention utilizes the cathode reverse connection characters of the controlling side Zener diode 10402 and utilizes the reverse breakdown voltage, so that the driving voltage of the control unit 104 is supplied by reducing the original input high voltage. Namely, the present invention utilizes the stable voltage and current characters of the controlling side Zener diode 10402 to solve the high temperature problem of the related art.
The alternating-current-to-direct-current converter 122, the controlling side Zener diode 10402, the signal voltage unit 102 and the light emitting diode lamp string 20 are connected in series. The control unit 104, the controlling side Zener diode 10402 and the controlling side capacitor 10404 are connected in parallel. The method for fetching power for the control unit 104 of the present invention is that the controlling side Zener diode 10402 is connected to the light emitting diode lamp string 20 in series. The voltage is divided by the controlling side Zener diode 10402 and the light emitting diode lamp string 20, so that there is no temperature problem. The second connector 154 is connected to the first connector 126, so that the light emitting diode system 10 can comprise more light emitting diode lamp strings 20.
The control unit 104 utilizes the voltage-dividing resistor circuit RR (for example, the internal circuit of the control unit 104 renders that the connection point of the first voltage-dividing resistor R1 and the second voltage-dividing resistor R2 is connected to ground or not connected to ground) to generate the control voltage to determine the conduction rate. In the circuit design, according to the electrical characteristics of the signal voltage unit 102 (for example, the P type metal oxide semiconductor field effect transistor), the resistance values of the first voltage-dividing resistor R1 and the second voltage-dividing resistor R2 are determined. For example but the present invention is not limited to, the first voltage-dividing resistor R1 is 6000 ohms, the second voltage-dividing resistor R2 is 4000 ohms, and the conduction rate of the P type metal oxide semiconductor field effect transistor is fifty percent.
Please refer to
Moreover, when the light emitting diode lamp string 20 receives the light signal, each light emitting diode unit 202 can utilize a first signal to determine and interpret the meaning of the light signal to perform changing lighting, wherein the first signal comprises the pulse waves meeting the predetermined voltage. Namely, the pulse wave is regarded as the digital signal “1” and the duration t1 is regarded as the digital signal “0”. A plurality of the digital signals “1” and “0” are combined as the light signal to drive the light emitting diode unit 202 to perform changing lighting. In another embodiment, the light emitting diode unit 202 utilizes the quantity of the duration t1 to determine and interpret the meaning of the light signal to perform changing lighting. Namely, the pulse wave is regarded as the digital signal “0” and the duration t1 is regarded as the digital signal “1”. In this embodiment, the pulse waves do not need to meet the predetermined voltage.
The present invention determines the duration t1 mentioned above, so that the present invention does not have the related art problems. The present invention can improve the ability to determine and interpret the light signal to increase the accuracy.
Moreover, the light emitting diode unit 202 mentioned above comprises an address and data identifier 1101 to perform the conversion and the decoding for the light signal. The address and data identifier 1101 receives the light signal and converts the light signal into digital signals to drive the light emitting diode unit 202 to light, glimmer or flash colorfully or sparklingly, or light fade-in and fade-out.
Moreover, in an embodiment of the present invention, the signal voltage unit 102 is a switch electrically connected to a positive side of the light emitting diode lamp string 20. In another embodiment of the present invention, the signal voltage unit 102 is electrically connected to a negative side of the light emitting diode lamp string 20, as shown in following
The signal voltage unit 102 sends a first voltage through the voltage output side VO to the negative side of the light emitting diode lamp string 20. When the control unit 104 sends a control signal to the signal voltage unit 102 and the control signal is a high-level voltage, a voltage of the negative side of the light emitting diode lamp string 20 is the first voltage and the high-level voltage. When the control unit 104 sends the control signal to the signal voltage unit 102 and the control signal is a low-level voltage, the voltage of the negative side of the light emitting diode lamp string 20 is the first voltage and the low-level voltage. Therefore, the voltage of the negative side of the light emitting diode lamp string 20 has high-low changes.
When the control unit 104 sends a control signal to the second transistor 130 and the control signal is a high-level voltage (to turn on the second transistor 130), the negative side of the light emitting diode lamp string 20 is connected to ground. When the control unit 104 sends the control signal to the second transistor 130 and the control signal is a low-level voltage (to turn off the second transistor 130), a voltage of the negative side of the light emitting diode lamp string 20 is a first voltage which is provided by the signal voltage unit 102 through the voltage output side VO. Therefore, the voltage of the negative side of the light emitting diode lamp string 20 has high-low changes.
The signal voltage unit 102 sends a first voltage through the voltage output side VO to the negative side of the light emitting diode lamp string 20. When the control unit 104 sends a control signal to the second transistor 130 and the control signal is a high-level voltage (to turn on the second transistor 130), a voltage of the negative side of the light emitting diode lamp string 20 is the first voltage. When the control unit 104 sends the control signal to the second transistor 130 and the control signal is a low-level voltage (to turn off the second transistor 130), the voltage of the negative side of the light emitting diode lamp string 20 is the first voltage and a Zener voltage which is provided by the regulator side Zener diode 134. Therefore, the voltage of the negative side of the light emitting diode lamp string 20 has high-low changes.
The advantage of the present invention is to generate the light signals easily to drive the light emitting diodes to perform changing lighting. Therefore, the cost of the light signal generation circuit is saved.
Although the present invention has been described with reference to the preferred embodiment thereof, it will be understood that the invention is not limited to the details thereof. Various substitutions and modifications have been suggested in the foregoing description, and others will occur to those of ordinary skill in the art. Therefore, all such substitutions and modifications are intended to be embraced within the scope of the invention as defined in the appended claims.
This application is a Continuation-in-Part of co-pending application Ser. No. 15/455,564, filed on Mar. 10, 2017. The entire contents of which are hereby incorporated by reference.
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Number | Date | Country | |
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Parent | 15455564 | Mar 2017 | US |
Child | 15848748 | US |