The present invention relates to a high-efficiency generator of controlled-spectrum radiation.
Generation of controlled-spectrum radiation can be used in multiple applications, such as for example for the production of high-efficiency lamps with a high quality of light or else for illuminating photovoltaic cells with radiation that can be converted by the photovoltaic cells with maximum efficiency or for biological applications.
The object of the present invention is to provide a controlled-spectrum radiation generator that will enable optimization of the efficiency of emission.
According to the present invention, said object is achieved by a generator of radiation having the characteristics forming the subject of Claim 1. The present invention moreover regards a thermo-photovoltaic device for the production of electrical energy and a high-efficiency lighting device that use such a generator of radiation.
The present invention will now be described in detail with reference to the attached drawings, which are provided purely by way of non-limiting example and in which:
With reference to
The generator of radiation 10 comprises a black body 18 set in the focus of the reflecting surface 14.
One end of the hollow body 12 is closed by a plane filter 20 orthogonal to the axis 16. The filter 20 is a non-dissipative filter designed to transmit radiation with a wavelength comprised in a pre-set band and to reflect towards the paraboloidal surface 14 the radiation with a wavelength falling outside the pre-set band. The internal space of the hollow body 10 is isolated from the outside and is in conditions of sub-atmospheric pressure, with a pressure as close as possible to zero. In this way, the hollow body 10 forms a substantially adiabatic cavity.
The generator of radiation 10 is associated to means for heating the black body 18 to a temperature of emission of electromagnetic radiation.
Set between the black body 18 and the filter 20 is a mirror 22 with a reflecting surface having a paraboloidal shape. The black body 18 is set in the focus of the mirror 22. The mirror 22 is set to prevent the radiation emitted by the black body 18 from reaching the filter 20 directly. The radiation emitted by the black body 18 that is intercepted by the mirror 22 is again reflected onto the black body 18.
When the black body 18 is heated to a temperature of emission of electromagnetic radiation, it emits a wide-spectrum radiation. The radiation emitted by the black body 18 is reflected by the paraboloidal surface 14 in a direction parallel to the longitudinal axis 16, as indicated by the arrows 24 in
The filter 20 transmits only the radiant energy comprised in a pre-set band of wavelengths. The remaining energy is reflected substantially without any dissipation on the internal surface 14 of the body 12. Since the radiation reflected by the filter 20 is parallel to the axis 16, the paraboloidal reflecting surface 14 concentrates on the black body 18 the reflected radiation coming from the filter 20.
In this way, almost all the energy emitted by the black body 18 is emitted on the outside of the generator 10 in the form of collimated radiation with a wavelength comprised in a pre-set band, corresponding to the passband of the filter 20.
In the embodiment illustrated in
In the embodiment illustrated in
Of course, without prejudice to the principle of the invention, the details of construction and the embodiments may vary widely with respect to what has been described and illustrated herein, without thereby departing from the scope of the invention as defined by the ensuing claims.
Number | Date | Country | Kind |
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TO2009A000190 | Mar 2009 | IT | national |