The exemplary embodiments of the present invention relate to a dual-purpose lamp. More specifically, the exemplary embodiments of the present invention relate to a dual-purpose lamp that can provide multiple illuminating functions.
As the light-emitting diode (LED) is becoming more and more common, most recent illumination apparatuses use the LED as a light source. The illuminating functions of the lamp on the market nowadays are quite limited. A lamp having two purposes can emit only white light and yellow light for general illumination and for night illumination. Regardless of whether a lamp is used for general illumination or night illumination, the color, brightness, and the chroma of the emitted light cannot be changed, so the functions of traditional lamps are quite limited.
The main object of the present invention is to provide a dual-purpose lamp that can provide multiple illuminating functions.
In order to achieve the aforementioned object, the dual-purpose lamp of the present invention comprises a power-converting module, a light-emitting module and a control unit. The power-converting module is used for generating a direct current. The light-emitting module is electrically connected with the power-converting module. The light-emitting module comprises an illuminative light-emitting body and a scenario light-emitting body, and the illuminative light-emitting body and the scenario light-emitting body are connected with each other in parallel. The control unit is electrically connected with the power-converting module and is used for controlling the power-converting module to adjust the brightness of the illuminative light-emitting body when light is being emitted, and it is also used to adjust the color, the brightness, or the chroma of the scenario light-emitting body when light is emitted.
According to one embodiment of the present invention, the control unit of the present invention is used for generating a pulse controlling signal. The pulse controlling signal is used for controlling a working period for which the power-converting module outputs the direct current to the light-emitting module. By controlling the working period, the control unit controls the illuminative light-emitting body to emit light or not and adjusts the brightness of the illuminative light-emitting body when light is emitted, or it controls the scenario light-emitting body to emit light or not and adjusts the color, the brightness, or the chroma of the scenario light-emitting body when light is emitted.
According to one embodiment of the present invention, the dual-purpose lamp further comprises a plurality of switch devices. Each switch device is connected respectively with the illuminative light-emitting body and the scenario light-emitting body in series, and each switch device is used for making the illuminative light-emitting body or the scenario light-emitting body emit light or not.
According to one embodiment of the present invention, the dual-purpose lamp further comprises a plurality of flip flops. Each flip flop has a first end and a second end. The first end of each flip flop is electrically connected with a switch device connected to the illuminative light-emitting body, and the second end of each flip flop is electrically connected with a switch device connected to the scenario light-emitting body.
According to one embodiment of the present invention, the control unit of the present invention is electrically connected with each switch device, and the control unit is further used for controlling each switch device to make the illuminative light-emitting body or the scenario light-emitting body emit light or not.
According to one embodiment of the present invention, the illuminative light-emitting body of the present invention comprises a plurality of white LEDs, and the scenario light-emitting body comprises a red LED, a green LED and a blue LED.
The exemplary embodiment(s) of the present invention will be understood more fully from the detailed description given below and from the accompanying drawings of various embodiments of the invention, which, however, should not be taken to limit the invention to the specific embodiments, but are for explanation and understanding only.
For facilitating understanding and clarifying the object, characteristics and advantages of the present invention, the following specific embodiments and figures of the present invention are presented to provide a detailed description.
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The power-converting module 10 is electrically connected with the alternating current source 90. In the first embodiment of the present invention, the power-converting module 10 includes a rectifier 11, a wave filter 12 and a plurality of DC converters 13. The rectifier 11 is used for converting the alternating current generated by the alternating current source 90 into direct current. The wave filter 12 is electrically connected with the rectifier 11, and the wave filter 12 is used for filtering the noise of the electronic signal. The plurality of DC converters 13 is connected with the wave filter 12 in series, and the DC converters 13 are connected with one another in parallel. Each DC converter 13 is used for generating a stable direct current. Since the aforementioned devices are well known, those skilled in the art are familiar with the circuit structure and the theory, and, thus, no further description will be provided here.
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In the first embodiment of the present invention, the control unit 40 is electrically connected with the power-converting module 10 and the plurality of switch devices 30. The control unit 40 is used for controlling each switch device 30 to be enabled or disabled to control the illuminative light-emitting body 21 or the scenario light-emitting body 22 to emit light or not. The control unit 40 is further used for generating a pulse controlling signal, such that the control unit 40 controls a working period for which each DC converter 13 of the power-converting module 10 outputs the direct current to the light-emitting module 20 by the pulse controlling signal with the functions of adjusting the brightness of the illuminative light-emitting body, or adjusting the color, the brightness or the chroma of the scenario light-emitting body through adjusting the working period. It has to be noted here that in the present embodiment, each switch device 30 is controlled by the control unit 40, but control of the switch devices 30 is not limited only to the control unit 40. The switch device 30 can also be controlled by mechanical button switches or electronic switches. In the specific embodiment of the present invention, the control unit 40 can be a Microcontroller Unit (MCU), but the present invention is not limited therein. Since Pulse Width Modulation is a well-known technique, and since those skilled in the art can easily understand how to control the brightness of the LED when light is emitted by controlling the working period for which a constant current is output, no further description will be provided here.
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In practice, for the aforementioned third embodiment of the circuit, assume that each switch device 30 is enabled when the input signal is at a high level and disabled when the input signal is at a low level (i.e., 1 on, 0 off). Then, if the user wants the lamp turned on in illuminating mode, inputting a high level signal (input 1) through the control unit 40 will enable each switch device 30 connected with the white LEDs 211, 212, 213 in series, and, thus, the white LEDs 211, 212, 213 will emit light. At the same time, the high level signal will be converted into a low level signal (1 to 0), processed and output by the flip flop 50, and the switch devices 30 connected with the red LED 221, the green LED 222 and the blue LED 223 in series will not be enabled due to the inputting of the low level signal, so the scenario light-emitting body 22 will not emit light. Therefore, the user can switch between the illuminative light-emitting body 21 and the scenario light-emitting body 22 with only a single controlling signal.
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In summary, regardless of the function, the way and result of the present invention are shown to have technical characteristics different from those of the prior arts. However, the aforementioned embodiments are intended only for illustrating the principle and the result of the present invention and not for limiting the range of the present invention. It will be obvious to those skilled in the art that, based upon the descriptions herein, changes and modifications may be made without departing from this invention and its broader aspects. Therefore, the appended claims are intended to encompass within their scope all such changes and modifications as are within the true spirit and scope of the exemplary embodiments of the present invention.
Number | Date | Country | Kind |
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102213168 U | Jul 2013 | TW | national |
Number | Name | Date | Kind |
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20080001547 | Negru | Jan 2008 | A1 |
20130154484 | Xu | Jun 2013 | A1 |
Number | Date | Country |
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WO2008157772 | Dec 2008 | WO |
Entry |
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Yates, D. “20-Led Display from a 10-Led DVM”, Electronics World + Wireless World, Jan. 1, 1991, p. 28, vol. 97, No. 1659, Sutton, Surrey, Great Britain. |
Number | Date | Country | |
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20150015163 A1 | Jan 2015 | US |