This non-provisional application claims priority under 35 U.S.C. ยง119(a) on Patent Application No(s). 103142343 filed in Taiwan, R.O.C. on Dec. 5, 2014, the entire contents of which are hereby incorporated by reference.
1. Field of the Invention
The present invention relates to the field of LED driving circuits, and more particularly to an LED driving circuit of a multi-stage switch bulb lamp capable of controlling the power for linear dimming.
2. Description of the Related Art
Illumination system is indispensible to our daily life and provided as a light aid in dark places. In order to provide appropriate brightness in an environment, a conventional dimmer is generally designed with a three-stage switch to adjust the brightness of a bulb, so as to provide different illumination levels according to the change of the natural light source and improve the convenience of use.
With reference to
In view of the problems of the conventional LED bulb lamps, the inventor of the present invention designed and developed an LED bulb lamp with a multi-stage switch for switching the power within a rated range to perform a linear dimming, so as to achieve the effects of adjusting the lamp to an optimized illumination level and saving power.
In view of the aforementioned problems of the prior art, it is a primary objective of the present invention to provide an LED driving circuit of a multi-stage switch bulb lamp with a multi-stage switch power control mechanism for changing the brightness of an LED or an LED bulb lamp by the switch and dimming the lamp linearly within a rated power range, so that the invention can adjust the lamp to the best brightness and save power in different environmental conditions.
To achieve the aforementioned objective, the present invention provides an LED driving circuit of a multi-stage switch bulb lamp with a large power mode, a middle power mode and a small power mode, comprising: a power modulation module, further comprising a first input unit, a second input unit, a first switch, a second switch, a first transistor, a second transistor, a first resistor, a second resistor, a third resistor, a fourth resistor and a capacitor, wherein the first resistor, the second resistor, the third resistor and the fourth resistor have a resistance of R21, R22, R23, and R24 respectively; the first input unit is electrically coupled to the first switch, and the second input unit is electrically coupled to the second switch; the first switch and the second switch are respectively and electrically coupled to the first transistor and the second transistor; the first resistor and the second resistor are connected in series to form a first voltage dividing node, and the first transistor is electrically coupled to the first voltage dividing node; the other end of the second resistor and the third resistor are connected in series to form a reference voltage node and have a reference voltage, and the first transistor and the second transistor are electrically coupled to the reference voltage node; the other end of the third resistor and the fourth resistor are connected in series to form a second voltage dividing node, and the second transistor is electrically coupled to the second voltage dividing node, and the other end of the fourth resistor is electrically coupled to the capacitor, and the other end of the capacitor is electrically coupled to the reference voltage node; thereby, when the first switch is on and the second switch is off, the large power mode is enabled, wherein the reference voltage of the large power mode is 2.5*(R23+R24)/(R21+R23+R24); when both of the first switch and the second switch are off, the middle power mode is enabled, wherein the reference voltage of the middle power mode is 2.5*(R23+R24)/(R21+R22+R23+R24); when both of the first switch and the second switch are on, the small power mode is enabled, wherein the reference voltage of the small power mode is 2.5*R24/(R21+R22+R24); and the first switch and the second switch may be switched to change the value of the reference voltage to control the power of the LED driving circuit of a multi-stage switch bulb lamp.
The aforementioned LED driving circuit of a multi-stage switch bulb lamp further comprises a rectification module, a conversion module and a control module, wherein and the first input unit and the second input unit are respectively and electrically coupled to the rectification module, the rectification module is electrically coupled to the conversion module, the conversion module is electrically coupled to a plurality of light emitting diodes (LEDs) and generates a driving voltage to drive the LEDs, the other end of the capacitor is electrically coupled to the control module, and the control module is electrically coupled to the conversion module to control the power of the LEDs in different stages and dim the lamp within a power range. The invention determines the use of a particular power mode according to the environmental condition and applies the dimming mechanism to adjust the light and brightness to the most appropriate status.
In the aforementioned LED driving circuit, the conversion module includes a boost inductor and a conducting diode installed therein, and the rectification module is electrically coupled to the boost inductor, and the other end of the boost inductor is electrically coupled to the conducting diode, and the other end of the conducting diode is electrically coupled to the LEDs to output the driving voltage to the LEDs.
In the aforementioned LED driving circuit, the power modulation module further includes a sample voltage source electrically coupled to the other end of the first resistor and the control module to provide a sample signal to the control module, and the sample signal is provided to the control module and serves as a basis for signal comparison.
In the aforementioned LED driving circuit, the control module further includes a controller electrically coupled to the sample voltage source for receiving the sample signal, and the controller is electrically coupled to the other end of the capacitor for receiving the reference voltage.
In the aforementioned LED driving circuit, an end of the conducting diode is electrically coupled to the controller, and the other end of the conducting diode is electrically coupled to the controller through a switch, and the controller is electrically coupled to the LEDs for receiving from the LEDs to detect whether the driving voltage is too high.
In the aforementioned LED driving circuit, the sample voltage source is electrically coupled to the controller for providing the sample signal to the controller, and the sample signal is provided to the controller and serves as a basis for signal comparison.
The LED driving circuit of a multi-stage switch bulb lamp of the present invention switches the first switch and the second switch to change the value of the reference voltage to control the power of the LED driving circuit of a multi-stage switch bulb lamp, and the LED driving circuit may be applied to an LED bulb lamp or an LED, and the control module dims the LED driving circuit of a multi-stage switch bulb lamp within a rated power range, so that the present invention can adjust the lamp to the best brightness and save power in different environmental conditions.
The aforementioned and other objectives, technical characteristics and advantages of the present invention will become apparent with the detailed description of preferred embodiments and the illustration of related drawings as follows.
With reference to
If the first switch 33 is ON and the second switch 34 is OFF, the large power mode will be enabled, wherein the reference voltage of the large power mode is 2.5*(R23+R24)/(R21+R23+R24); if both first switch 33 and second switch 34 are OFF, the middle power mode will be enabled, wherein the reference voltage of the middle power mode is 2.5*(R23+R24)/(R21+R22+R23+R24); and if both first switch 33 and second switch 34 are ON, the small power mode will be enabled, wherein the reference voltage of the small power mode is 2.5*R24/(R21+R22+R24). By switching the first switch 33 and the second switch 34, the value of the reference voltage can be changed to control the power of the LED driving circuit of a multi-stage switch bulb lamp 1, so as to achieve the effect of controlling the power in three stages (Large, Middle, and Small) to change the illumination brightness of the LEDs 6.
With reference to
In
In
Further, an end of the conducting diode 42 is electrically coupled to the controller 51 for detecting whether the voltage outputted from the boost inductor 41 to the conducting diode 42 is too high. The other end of the conducting diode 42 is electrically coupled to the controller 51 through a switch 52 for adjusting the brightness of the LEDs 6.
In
In the LED driving circuit of a multi-stage switch bulb lamp 1 in accordance with the present invention, the first switch 33 and the second switch 34 may be switched to generate a bias voltage to the first transistor 35 and the second transistor 36, and the voltage dividing status of the first resistor 370, the second resistor 371, the third resistor 372 and the fourth resistor 373 may be changed to adjust the value of the reference voltage to control the power of the LED driving circuit of a multi-stage switch bulb lamp 1, and the present invention may be applied to an LED bulb lamp or an LED driving circuit, and the conducting diode 42 has the effect of preventing the driving voltage from feeding from the LEDs 6 back to the rectification module 2, and the control module 5 detects the driving voltage of the LEDS 6 and adjust the driving voltage to effectively prevent the LEDS 6 from being burned or damaged. In the meantime, the control module 5 and the conversion module 4 provide the effect of adjusting power of the LED driving circuit of a multi-stage switch bulb lamp 1 in different stages, and perform a linear dimming effect precisely within a power range. We take the following three occasions for example. The large power mode is adopted for reading that requires a higher brightness, and the linear dimming effect is used to adjust the brightness to a comfortable and non-glare condition, so that our eyes will not less susceptible to fatigue. The middle power mode is adopted for dining that requires a soft and warm light, and the light is dimmed linearly to maintain a good dining atmosphere. The small power mode is adopted for sleeping, and the light is adjusted to an appropriate brightness for sleeping according to a user's personal preference. In summation, the invention can adjust the lamp to the best brightness and save power in different environmental conditions.
Number | Date | Country | Kind |
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103142343 | Dec 2014 | TW | national |