1. Field of Invention
The present invention relates to a lighting module and, more particularly, to an LED-based lighting module for emitting white light with easily adjustable color temperature.
2. Related Prior Art
A light-emitting diode (“LED”) is low in consumption of energy and high in efficiency of illumination. Therefore, a lot of efforts have been made on LEDs for illumination.
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Furthermore, the wavelength of light from an LED is determined by the structure of and materials used in an epitaxial layer and, most importantly, matching of lattices. Hence, there is serious drift of the wavelength because of high temperature of semiconductor. When the LED-based lighting module is just turned on, it emits reddish white light because the efficiency of the red LED 1 is high. After some time, it emits bluish white light for increasing efficiency of the blue LED 3. The color temperature has changed. As shown in the spectrum, the thermal drift to a cold color from a warm color is too big to retain white balance of the color-mixture and the luminance of the light.
Another conventional LED-based lighting module includes a white LED as a primary light source and red, green and blue LEDs for compensating the color temperature of light emitted from the white LED. That is, at least one of the red, green and blue LEDs is turned on and the intensity thereof is controlled to compensate the color temperature of the light emitted from the white LED when there is optical decay because of deteriorating of fluorescent powder used in the white LED. However, the color temperature cannot be compensated precisely. Moreover, the control over the intensity of an LED by the control over a current provided to the LED is difficult.
The present invention is therefore intended to obviate or at least alleviate the problems encountered in prior art.
It is the primary objective of the present invention to provide an LED-based lighting module for emitting white light with easily adjustable color temperature
To achieve the foregoing objective, the lighting module includes a substrate and at least three red light-emitting diode packages, three green light-emitting diode packages and three blue light-emitting diode packages provided on the substrate. Each of the light-emitting diode packages includes a light-emitting diode chip, a lens for wrapping the light-emitting diode chip and scattering particles spread in the lens. A lampshade is used to support the substrate. A conductive device is connected to the lampshade and electrically connected to the substrate for conducting electricity to the substrate from an external power supply.
Other objectives, advantages and features of the present invention will become apparent from the following description referring to the attached drawings.
The present invention will be described via detailed illustration of embodiments versus prior art referring to the drawings.
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Each of the red LED packages 20 includes a red LED chip 21, a lens 22 and scattering particles 23. Given a certain current, the red LED chip 21 emits red light. The lens 22 is made of a transparent material such as epoxy, silicone and glass. The lens 22 is used to wrap the LED chip 21. The scattering particles 23 are scatter in the lens 22. The red LED packages 20 are provided on the substrate 10, in predetermined positions. The red LED packages 20 are electrically connected to the substrate 10 so that the former is actuated to emit red light with electricity from the latter.
Similarly, each of the green LED packages 30 includes a green LED chip, a lens 32 and scattering particles 33. The GL LED packages 30 are electrically connected to the substrate 10. The GL LED packages 30 are located in predetermined positions on the substrate 10.
Similarly, each of the blue LED packages 40 includes a blue LED chip, a lens 42 and scattering particles 43. The BL LED packages 40 are electrically connected to the substrate 10. The BL LED packages 40 are located in predetermined positions on the substrate 10.
The scattering particles used in the LED packages 20, 30 and 40 are made of at least one highly reflective or scattering material. For example, they can be made of silver, calcium carbonate (CaCO3) and/or silicon dioxide (SiO2), alone or in combination with resin.
The lampshade 50 is made of an opaque material. The lampshade 50 is provided around the substrate 10 for support and protection. The lampshade 50 is located on a non-illuminating side of the LED packages 20, 30 and 40.
The conductive device 60 includes a shell 61 and two pins 62. The shell 61 is made of an isolating material. The pins 62 are made of a conductive material. The shell 61 is connected to the lampshade 50. The pins 62 are extended through the shell 61, i.e., each of the pins 62 is formed with an end electrically connected to the substrate 10 and another end for electric connection to a socket of the mains for example. Thus, electricity can be provided to the LED packages 20, 30 and 40 from the mains through the pins 62 and the substrate 10.
The red LED packages 20 emit red light beams. The green LED packages 30 emit green light beams. The blue LED packages 40 emit blue light beams. The numbers and positions of the scattering particles disposed in the lens of each of the LED packages 20, 30 and 40 is carefully determined so that the scattering particles cause the LED packages 20, 30 and 40 to cast similar light beams that almost completely overlap one another, leaving small color blocks. The color blocks are too small to be observed by humans. That is, the red light, the green light and the blue light are well mixed into white light. The numbers and positions of the scattering particles respectively used in the LED packages 20, 30 and 40 are different from one another.
Furthermore, since there are several red LED packages 20, several green LED packages 30 and several blue LED packages 40 on the substrate 10, they can be replaced with one another or their positions can be changed to adjust the color temperature from cold to warm. For example, color temperature for indoor use can be different from color temperature for outdoor use. The color temperature of the light emitted from the lighting module 100 can easily be adjusted without having to use a complicated mechanism to change currents or voltages provided to the LED packages.
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In the LED-based lighting modules 200 and 300, light-enhancing elements 70 and 70′ are used, respectively. However, a scattering element may be used instead of the light-enhancing elements in another embodiment. The scattering element includes a panel and scattering particles scattered in the panel. The panel is made of a transparent material such as epoxy, silicone and glass. The scattering particles are made of at least one highly reflective or scattering material. For example, they can be made of silver, calcium carbonate (CaCO3) and/or silicon dioxide (SiO2), alone or in combination with resin. The scattering element can further scatter the light and mix the colors of the light so that color blocks are eliminated.
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Secondly, fourth-color LED packages 90 are provided on the substrate 10 in addition to the LED packages 20, 30 and 40. The fourth-color LED packages 90 are used to emit a fourth color of light. Like the LED packages 20′, 30′ and 40′, each of the LED packages 90 includes an LED chip, a lens and scattering particles.
The LED packages 90 may emit light with a wavelength of 560 nm to 610 nm. Light with a wavelength of 560 nm to 610 nm is yellow light. Yellow light is mixture of red light with green light. Yellow light can be mixed with blue light into white light.
Alternatively, the LED packages 90 may emit light with a wavelength of 470 nm to 500 nm. Light with a wavelength of 470 nm to 500 nm is bluish green light.
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The present invention has been described via the detailed illustration of the embodiments. Those skilled in the art can derive variations from the embodiments without departing from the scope of the present invention. Therefore, the embodiments shall not limit the scope of the present invention defined in the claims.