1. Field of the Invention
The present invention relates to a phototherapy device and, more particularly, to a phototherapy device suitable for the application of light in low intensity.
2. Description of Related Art
With the improvement of the quality of the life, the cosmetology industry has developed quickly and phototherapy that can be used for treatment of acne, spot whitening, scar removal, wrinkle removal and whitening has become popular. A medicine journal reported that propionibacterium acnes, which cause redness and inflammation associated with acne, contain porphyrin, and free radicals can be generated by reaction between blue light (its wavelength ranges from about 400 nm to 470 nm) and porphyrin to eradicate propionibacterium acnes so as to reduce redness and inflammation associated with acne. In addition, red light (its wavelength ranges from about 600 nm to 700 nm) is helpful for wound healing and anti-inflammation; yellow light (its wavelength ranges from about 550 nm to 600 nm) can improve the circulation of skin cells and promote the regeneration of skin cells; and green light (its wavelength ranges from about 500 nm to 550 nm) can be used to regulate the function of skin glands and oil secretion and inhibit acne. Thereby, phototherapy can be performed by using light of a desired wavelength according to personal requirement to achieve a cosmetology or treatment object.
In addition to laser and pulsed light, ordinary light or LED light has been developed in phototherapy in place of the above-mentioned light of high intensity. However, the practical application of LED light has some problems. For example, the intensity of LED light is low and LED light sources of low performance cannot achieve therapy. On the other hand, LED light sources of high performance are disadvantageous to the development of portable phototherapy systems with reduced volume and weight and thereby cannot be used in place of pulsed light.
Thereby, it is desirable to develop an LED phototherapy device of significantly reduced volume and weight, which is suitable for home use.
The object of the present invention is to provide a portable phototherapy device in which a light source of low intensity is used to achieve phototherapy effect.
To achieve the object, the present invention provides a phototherapy device driven by a power supply, including: an LED module, driven by the power supply to emit therapeutic light; and a polarizer, disposed in a direction toward which the therapeutic light is emitted by the LED module.
Accordingly, the present invention uses a polarizer to enhance transmittance of therapeutic light, such that therapeutic light can be transmitted to the depths of illuminated sites to achieve phototherapy effect even using light of low intensity. Thereby, the phototherapy device according to the present invention can use a light source of low intensity to significantly reduce its volume and weight and thus can be self-applied by users.
The phototherapy device according to the present invention may further include: a housing having a light outlet, where the polarizer is disposed at the light outlet of the housing and the LED module is disposed in an interior of the housing.
The phototherapy device according to the present invention may connect to an outer power supply or use a battery as a power supply to drive the LED module. Herein, the battery may be a rechargeable battery, an ordinary battery or a micro battery. Preferably, the phototherapy device according to the present invention uses a battery as a power supply and thereby is advantageous to a portable design. Accordingly, in the present invention, the housing of the phototherapy device may have a power supply receiving part to receive the power supply.
In the present invention, the LED module may include at least one LED component and a circuit board, where the LED component electrically connects to the circuit board and the circuit board electrically connects to the power supply to drive the LED component. Herein, the phototherapy device according to the present invention may further include a control module, which electrically connects to the circuit board to switch the LED component into a bright or dark state.
In the present invention, the LED module may include a plurality of LED components capable of emitting therapeutic lights with various wavelengths. For example, the LED components may emit therapeutic lights of 400-440 nm, 440-470 nm, 500-550 nm, 550-600 nm, 600-700 nm and 700-1000 nm, respectively. Accordingly, users can switch the LED components respectively into a bright or dark state by operating the control module to make the LED module emit therapeutic light with a desired wavelength according to personal requirement.
In the present invention, the polarizer may be a linear polarizer, such that therapeutic light emitted by the LED module can be transformed into linearly polarized light.
In the present invention, the intensity of therapeutic light emitted by the LED module may range from about 2 mW/cm2 to about 4 mW/cm2 to be advantageous to a portable design.
Hereafter, examples will be provided to illustrate the embodiments of the present invention. Other advantages and effects of the invention will become more apparent from the disclosure of the present invention. It should be noted that these accompanying figures are simplified. The quantity, shape and size of components shown in the figures may be modified according to practically conditions, and the arrangement of components may be more complex. Other various aspects also may be practiced or applied in the invention, and various modifications and variations can be made without departing from the spirit of the invention based on various concepts and applications.
With reference to
With reference to
As shown in
For example, if users want to treat acne through therapeutic light of 440 nm to 470 nm, they can press the switch component 141 corresponding to the LED component 121 to allow the LED component 121 to emit therapeutic light of 440 nm to 470 nm. If users want to use therapeutic light of 500 nm to 550 nm to reduce darkness of skin, they can press the switch component 144 to switch the pressed switch component 141 into a non-pressed state and thereby control the LED component 121 not to emit therapeutic light, and then press the switch component 142 corresponding to the LED component 122 to allow the LED component 122 to emit therapeutic light of 500 nm to 550 nm. Similarly, in the case of using therapeutic light of 600 nm to 700 nm to promote wound healing, users can first press the switch component 144 to control the LED component 122 not to emit therapeutic light, and then press the switch component 143 corresponding to the LED component 123 to allow the LED component 123 to emit therapeutic light of 600 nm to 700 nm. Also, users can press two or more switch components simultaneously to allow the LED module 12 to emit therapeutic lights of two or more wavelengths. Finally, these pressed switch components can be switched into being non-pressed by pressing the switch component 144 to make the LED module 12 not emit any therapeutic light.
Please refer to
Please refer to
The results for inhibiting propionibacterium acnes were observed by illuminating propionibacterium acnes with blue LED light (400-420 nm and 460 nm) in various intensities. First, propionibacterium acnes were cultured at the regions A, B and C of the dish 3 in the absence of oxygen, as shown in
From Table 1, it can be known that the polarizer can enhance the transmittance of light and achieve therapeutic effect even using light of low intensity.
The above examples are intended for illustrating the embodiments of the subject invention and the technical features thereof, but not for restricting the scope of protection of the subject invention. The scope of the subject invention is based on the claims as appended.
Number | Date | Country | Kind |
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099118785 | Jun 2010 | TW | national |