The present invention relates in general to a structure improvement of a far infrared radiator and a projection head thereof, and more particularly, to a far infrared radiator which radiates far infrared light with lower energy, such that the patient under thermal treatment will not feel the heat.
Far infrared light is decoupled from infrared light. The components of infrared light include near infrared light, mid infrared light and far infrared light. The far infrared light having longer wavelength and lower energy is most applicable to human bodies, animals and vegetables. Far infrared light is a type of electromagnetic wave, and the human body is an organic entity, which is also a radiator of far infrared. Therefore, the far infrared light has very sufficient warming effect to human body. In addition, the far infrared light can penetrate deep into the skin and the subcutaneous tissues of the human body. It thus accelerates blood circulation to maintain a certain body temperature. Therefore, the far infrared light has been broadly applied in medical treatment.
The far infrared light can be quickly absorbed by the human body, and the far infrared light deep inside the human body generates vibration of atoms and molecules and thermal reaction by resonance. Therefore, the temperature of the subcutaneous tissues is increased to cause vasodilatation and accelerate blood circulation. Thereby, congested blood such as bruise that disturbs metabolism can be removed. The tissue is revived, and the growth of enzyme is accelerated. The old material and cytotoxic accumulated in the human can be metabolized with water via the glands.
However, the near infrared light carried by the infrared light has a shorter wavelength, such that higher thermal energy is released thereby. The skin radiated by the near infrared light for a long time will be burned thereby. Further, the crystal of eyes will be deformed or damaged by radiation of near infrared light. In the conventional medical equipment providing infrared treatment, the near infrared light has not been effectively filtered or blocked. Therefore, it is inevitable to harm the patient due to the high thermal energy.
To resolve the drawbacks of the conventional design, a covering layer is coated on a projection head of an infrared radiator, such that the near infrared light with higher energy is blocked, while only the far infrared light with lower energy passes through. Therefore, the patient under treatment only feels a warm temperature. Application of the fomentation for a long period of time will not burn the skin or cause deformation of crystals of eyes of the patient.
The covering layer is mixed by ceramic powders, high-temperature adhesive and water to cover a high-resistant wiring (nickel/chromium). When the projection head is conducted to a source power to generate a visible infrared light beam, the near infrared light that has a higher energy is blocked by the covering layer. Therefore, the patient under thermal treatment will not feel excessive heat.
These and other objectives of the present invention will become obvious to those of ordinary skill in the art after reading the following detailed description of preferred embodiments.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The above objects and advantages of the present invention will be become more apparent by describing in detail exemplary embodiments thereof with reference to the attached drawings in which:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
The frame 1 is fabricated from ceramic material, for example. The frame 1 is hollow and comprises a continuous grooves 11 formed along an exterior surface thereof to receive the high-resistant wiring 2 therein. Two openings 12 extending through the frame 1 are formed at two opposing ends of the groove 11, such that two ends of the high-resistant wiring 2 can be inserted inside of the frame 1. To dispose the frame 1 on a lamp base (not shown), the bottom edge of the frame 1 includes a recessed portion 13 to be engaged with connection structure of the lamp base.
The high-resistant wiring 2 is preferably fabricated from nickel-chromium (Ni—Cr) material, for example. The high-resistant wiring 2 is embedded in the groove 11 to wind about the frame 1. The ends of the high-resistant wiring 2 are inserted into the frame 1 through the openings 12. The ends of the high-resistant wiring 2 may further extend to connect a power supply through the lamp base. Thereby, an infrared radiation containing visible light can be generated.
The covering layer 3 is coated on a surface of the above frame 1 to cover the high-resistant wiring 2 therein. The covering layer 3 is fabricated from a mixture of ceramic powders, high-temperature adhesive, and water, for example. The covering layer 3 is operative to block the near infrared light contained in the infrared radiation generated by the high-resistant wiring 2, such that only the far infrared light with lower energy will emanate through the covering layer 3 to serve as the medical radiation source.
Referring to
As the near infrared light has a shorter wavelength, large amount of heat is generated thereby. Therefore, the skin or crystals of the patient under the radiation of the near infrared light for a significant period of time will be easily injured. On the contrary, the far infrared light has a longer wavelength, such that the energy is lower. Therefore, the skin will not be injured after a long period of radiation of far infrared light. Further, the far infrared radiation is advantageous in blood circulation, metabolism, and balance of PH value for the human body.
The covering layer 3 wrapping the high-resistant wiring 2 therein effectively blocks the near infrared light with higher energy. Therefore, even when the infrared radiation directly radiates on the skin or eyes of a patient for a period of time, the skins or crystals of the patient will not be injured by such radiation.
After assembly as mentioned above, the conducting terminal 41 of the lamp base 4 may transmits a power to the high-resistant wiring 2, such that a far infrared radiation is generated and radiating on the lampshade 5. The far infrared radiation is then reflected from the lampshade 5 to the human body to achieve medical treatment. During the treatment, the patient will not feel high temperature or excessive heat. The injury of skin or crystals of eyes caused by excessive amount of heat is prevented.
Referring to
While the present invention has been particularly shown and described with reference to preferred embodiments thereof, it will be understood by those of ordinary skill in the art the various changes in form and details may be made therein without departing from the spirit and scope of the present invention as defined by the appended claims.