1. Technical Field
The present disclosure relates to an illumination device, and particularly to a light emitting diode (LED) lamp providing an adjustable color temperature.
2. Description of Related Art
At present, light emitting diodes (LEDs) are widely used due to high brightness, wide color gamut and rapid response speed. With the rapid development of decorative illuminations for both commercial and residential purposes, the demand for using LEDs in lamps for decorative illuminations is ever increasing.
It is important for the decorative illuminations to have a sufficient light energy in a correct color temperature since the color temperature affects the sensation of user's eyes. Thus, there is a need for a lamp which can emit light with an adjustable color temperature. However, the function of most conventional LED lamps for adjusting the color temperature is achieved by varying pulse width modulation (PWM) signals supplied thereto. Therefore, drive circuit for the LED lamps must include a PWM drive chip and many complicated peripheral circuits, which disadvantageously affects an illumination efficiency of the LED lamps and increases costs.
It is thus desirable to provide an LED lamp which can overcome the described limitations.
Reference will now be made to the drawing figures to describe the present LED lamp in detail.
Referring to
The LED light source 10 includes a circular substrate 11 and a plurality of LEDs 12 mounted on the substrate 11. Referring to
The envelope 20 is a hollow hemisphere shape, and defines an opening at a bottom side thereof. The envelope 20 connects a periphery edge of the substrate 11 to seal the opening, thereby defining a sealed receiving space therebetween for receiving the LED light source 10 therein.
The heat sink 30 is integrally made of a metal with good heat conductivity such as aluminum, copper or an alloy thereof. The heat sink 30 includes a circular top surface 31, a circular bottom surface 32 larger than the top surface 31 and a tapered side surface 33 interconnected between the top and bottom surfaces 31, 32. The LED light source 10 is mounted on the top surface 31. A plurality of axially grooves 35 is defined in the side surface 33 of the heat sink 30. The grooves 35 are equally spaced from each other along a circumference direction of the side surface 33 of the heat sink 30. The grooves 35 can increase an outer surface area of the heat sink 30, to thus promote a heat dissipation performance of the heat sink 30. An elongated cutout 36 is defined at a bottom portion of the side surface 33 of the heat sink 30.
The first adjustment button 50 is received in the elongated cutout 36. The first adjustment button 50 is slideable along the elongated cutout 36, to adjust a color temperature of the LED lamp 90. The second adjustment button 55 is located at one side of the first adjustment button 50. The second adjustment button 55 is rotatablely around a central axis thereof, to adjust an intensity of the LED lamp 90. Alternatively, the first adjustment button 50 can be a rotatable button like the second adjustment button 55; and the second adjustment button 55 can be a slideable button like the first adjustment button 50.
The connecting head 40 is electrically connected with the LED light source 10, and mounted on the bottom surface 32 of the heat sink 30. When used, the connecting head 40 of the LED lamp 90 electrically connects a direct current (DC) power source 60 (
Referring back to
Each of the first and second variable resistors 80, 85 includes a resistance track 84, 89 with resistance coil wound around thereon, first and second connecting posts 82, 83, 87, 88 at two opposite ends of the resistance track 84, 89, respectively, and a slider 81, 86 moveable along the resistance track 84, 89 to change a resistance between the slider 81, 86 and a corresponding connecting post 82, 83, 87. The first and second connecting posts 82, 83 of the first variable resistor 80 connect the cathode of the first LED string 101 and the cathode of the second LED string 102, respectively. The slider 81 of the first variable resistor 80 connects one of the connecting posts, i.e., the first connecting post 87 in this embodiment, of the second variable resistor 85. With this configuration, the resistance between the first connecting post 82 and the slider 81 of the first variable resistor 80 is connected in series with the first LED string 101, and the resistance between the second connecting post 83 and the slider 81 of the first variable resistor 80 is connected in series with the second LED string 102. The slider 86 of the second variable resistor 85 connects the negative pole of the DC power source 60. Thus, the resistance between the first connecting post 87 and the slider 86 of the second variable resistor 85 is connected in series between the LED light source 10 and the DC power source 60.
The slider 81 of the first variable resistor 80 is connected with the first adjustment button 50. When the first adjustment button 50 is moved upwardly along the elongated cutout 36, the slider 81 of the first variable resistor 80 follows the first adjustment button 50 to move along the resistance track 84 towards the first connecting post 82. Thus, the resistance connected in series with the first LED string 101 is decreased, and the resistance connected in series with the second LED string 102 is increased. Accordingly, a first electric current flowing through the first LED string 101 is increased, to thereby increase a light intensity of light emitted from the first LED string 101; simultaneously, a second electric current flowing through the second LED string 102 is decreased, to thereby decrease a light intensity of light emitted from the second LED string 102. Due to a light of the LED lamp 90 is a combination of the light of the first LED string 101 and the light of the second LED string 102, when the light intensity of the first LED string 101 is increased and the light intensity of the second LED string 102 is decreased, the color temperature of the LED lamp 90 is more closer to the color temperature of the first LED string 101, such that the color temperature of the LED lamp 90 is increased.
On the contrary, when the first adjustment button 50 is moved downwardly along the elongated cutout 36, the slider 81 of the first variable resistor 80 follows the first adjustment button 50 to move along the resistance track 84 towards the second connecting post 83. Thus, the resistance connected in series with the first LED string 101 is increased, and the resistance connected in series with the second LED string 102 is decreased. Accordingly, the first electric current flowing through the first LED string 101 is decreased, to thereby decrease the light intensity of the first LED string 101, and the second electric current flowing through the second LED string 102 is increased, to thereby increase the light intensity of the second LED string 102. When the light intensity of the second LED string 102 is increased and the light intensity of the first LED string 101 is decreased, the color temperature of the LED lamp 90 is much closer to the second LED string 102, such that the color temperature of the LED lamp 90 is decreased.
The slider 86 of the second variable resistor 85 is connected with the second adjustment button 55. When the second adjustment button 55 is rotated in a clockwise direction, the resistance between the first connecting post 87 and the slider 86 of the second variable resistor 85 is increased. Thus, a total electric current, which is equal to a sum of the first electric current and the second electric current, flowing through the LED light source 10 is decreased. Due to the second variable resistor 85 is connected in series with each of the first and second LED strings 1021, 102, both of the first electric current and the second electric current are decreased, thus a brightness of the LED lamp 90 is decreased. Contrarily, when the second adjustment button 55 is rotated in an anticlockwise direction, the resistance between the first connecting post 87 and the slider 86 of the second variable resistor 85 is decreased. Thus, both of the first and second electric currents are increased, and the brightness of the LED lamp 90 is increased.
In the present disclosure, the LED lamp 90 includes the first variable resistor 80 interconnected between the first and second LED strings 101, 102, with one portion of resistance of the variable resistor 80 connected in series with the first LED string 101 and the remaining portion of the resistance of the variable resistor 80 connected in series with the second LED string 102, such that when the portion of the resistance of the variable resistor 80 in connection with the first LED string 101 is increased (decreased) to decrease (increase) the first electric current flowing through the first LED string 101, the remaining portion of the resistance of the variable resistor 80 in connection with the second LED string 123 is decreased (increased) to increase (decrease) the second electric current flowing through the second LED string 102. Therefore, a ratio of light intensities of the first LED string 101 and the second LED string 102 is changeable, to thereby change the color temperature of the LED lamp 90. The circuit 100 is simple and includes only a few electronic components, which enables the LED lamp 90 to have a color temperature adjustable function with a low cost.
Referring to
Referring to
It is to be understood, however, that even though numerous characteristics and advantages of various embodiments have been set forth in the foregoing description, together with details of the structures and functions of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
| Number | Date | Country | Kind |
|---|---|---|---|
| 99125670 A | Aug 2010 | TW | national |
| Number | Name | Date | Kind |
|---|---|---|---|
| 4298869 | Okuno | Nov 1981 | A |
| 6149283 | Conway et al. | Nov 2000 | A |
| 20040195983 | Toyota et al. | Oct 2004 | A1 |
| 20060186827 | Ragonesi et al. | Aug 2006 | A1 |
| 20090009100 | Rooymans | Jan 2009 | A1 |
| 20100072919 | Wei et al. | Mar 2010 | A1 |
| 20100244713 | Lee et al. | Sep 2010 | A1 |
| Number | Date | Country | |
|---|---|---|---|
| 20120032597 A1 | Feb 2012 | US |