1. Field of the Invention
The invention relates to an AC LED device and, more particularly, to a high reliability and long lifetime AC LED device.
2. Description of Related Art
As the widespread use of LED, an AC LED has been developed for being directly connected to an AC power supply terminal, so as to overcome the problem that LED cannot be powered by AC power directly. However, there are still some problems needed to be improved in AC LED manufacturing process; for example, the reverse bias voltage in AC LED may cause LED to generate reverse high voltage leakage current.
As shown in
Besides, the LED blocks of the conventional AC LED are not turned on to illuminate at the same time. When the AC power 10 is in the positive half-cycle, only the LED blocks “a”, “e” and “c” are turned on to illuminate. When the AC power 10 is in the negative half-cycle, only the LED blocks “b”, “e” and “d” are turned on to illuminate. Consequently, there are no more than two-thirds of the AC LED blocks in the conventional arrangement to be turned on to illuminate. Further, owing to that the LED blocks of the conventional AC LED are turned on and off alternately, it is likely to generate light flash as the illuminations of the LED blocks are changed alternately.
Therefore, it is desirable to provide an improved AC LED device to mitigate the aforementioned problems.
The object of the present invention is to provide an AC LED device to overcome the reverse bias high voltage leakage current and light flash generated from the conventional bridge-rectifier configured AC LED device.
To achieve this object, there is provided a high reliability and long lifetime AC LED device, which comprises: an LED group composed of a plurality of LED micro-chips connected in series and having an anode and a cathode; a rectifier diode group composed of a first rectifier diode, a second rectifier diode, a third rectifier diode and a forth rectifier diode, each rectifier diode having an anode and a cathode, the cathode of the first rectifier diode being connected to the cathode of the second rectifier diode and the anode of the LED group, the anode of the second rectifier diode being connected to the cathode of the third rectifier diode, the anode of the third rectifier diode being connected to the anode of the forth rectifier diode and the cathode of the LED group, the cathode of the forth rectifier diode being connected to the anode of the first rectifier diode; and an AC power source electrically connected to the anode of the first rectifier diode and the cathode of the third rectifier diode of the rectifier diode group; wherein the AC power source provides a positive half-cycle voltage and a negative half-cycle voltage, and the rectifier diode group enables the LED group to be turned on both in the positive half-cycle voltage and the negative half-cycle voltage.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
With reference to
With reference to
As the 48 LED micro-chips are connected in series, there are an anode 22a and a cathode 22b in the LED group 22. Each of the rectifier diodes 211-214 has an anode and a cathode. The cathode 211b of the first rectifier diode 211 is connected to the cathode 212b of the second rectifier diode 212 and the anode 22a of the LED group 22. The anode 212a of the second rectifier diode 212 is connected to the cathode 213b of the third rectifier diode 213. The anode 213a of the third rectifier diode 213 is connected to the anode 214a of the forth rectifier diode 214 and the cathode 22b of the LED group 22. The cathode 214b of the forth rectifier diode 214 is connected to the anode 211a of the first rectifier diode 211.
With the high reliability and long lifetime AC LED device of the present invention, when the AC power source 20 is in the positive half-cycle, the first rectifier diode 211 and the third rectifier diode 213 are turned on, so as to enable the LED group 22 to be turned on. Similarly, when the AC power source 20 is in the negative half-cycle, the second rectifier diode 212 and the forth rectifier diode 214 are turned on, so as to enable the LED group 22 to be turned on. Therefore, the rectifier diode group 21 enables the LED group 22 to be turned on both in the positive half-cycle and negative half-cycle so as to illuminate all LED micro-chips 2201-2248 of the LED group 22.
Furthermore, when the AC power source 20 is in the positive half-cycle, the current passes through the first rectifier diode 211, the LED group 22 and the third rectifier diode 213. The second rectifier diode 212 and the forth rectifier diode 214 are turned off, and thus bear a reverse voltage respectively. When the AC power source 20 is in the negative half-cycle, the current passes through the second rectifier diode 212, the LED group 22 and the forth rectifier diode 214. The first rectifier diode 211 and the third rectifier diode 213 are turned off, and thus bear a reverse voltage respectively.
The high reliability and long lifetime AC LED device of the present invention is provided with the rectifier diodes 211-214 that could bear reverse voltage up to 600-1000V, and the reverse leakage current of the rectifier diodes 211-214 is reduced to the scale of several μA. Therefore, the use of the rectifier diodes 211-214 in accordance with the present invention can avoid the reverse bias breakdown leakage current generated by the reverse bias high voltage leakage current generated by the bridge-rectifier configured AC LED micro-chips of the conventional AC LED device, so as to extend the light-emitting lifetime and enhance the reliability.
Although the present invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
Number | Date | Country | Kind |
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098218531 | Oct 2009 | TW | national |