This application claims priority of Taiwanese Invention Patent Application No. 107147469, filed on Dec. 27, 2018.
The disclosure relates to a lamp device, more particularly to a lamp device for a vehicle.
Referring to
The first support member 12 is made of steel and has a polished reflecting surface 121. The reflecting surface 121 has a reflectivity of less than 60% for visible light. The reflecting module 13 includes a semi-reflecting film 131 and a second support member 132 that the semi-reflecting film 131 is formed on. The second support member 132 is made of a transparent material. The semi-reflecting film 131 has a reflectivity of approximately 40% to 80% for visible red light of wavelength ranging from 575 nm to 675 nm. The light emitting unit 14 includes a plurality of light emitting members 141 mounted in a ring shape on the first support member 12 and emitting visible red light.
The light pattern produced by the conventional lamp device is shown in
Even though the conventional lamp device can produce the three dimensional tunnel-like visual effect, the number of the inner rings of the virtual images is lacking, resulting a relative large dark region 16 in the center of the light pattern. Moreover, even though the semi-reflecting film 131 achieves semi-reflection with visible red light, it is unable to achieve the same for visible lights of other colors.
Therefore, the object of the disclosure is to provide a lamp device that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, a lamp device includes a reflecting unit and a light emitting unit.
The reflecting unit includes a first reflecting module and a second reflecting module. The first reflecting module is configured to reflect light towards the second reflecting module and has a reflectivity that is substantially over 70% for light of wavelength ranging from 550 nm to 800 nm. The second reflecting module is configured to reflect light towards the first reflecting module and has a reflectivity that substantially ranges from 50% to 75% for light of wavelength ranging from 460 nm to 700 nm.
The light emitting unit is connected to the reflecting unit and configured to emit light toward the reflecting unit in such a way that at least a part of the light emitted by the light emitting unit is reflected from one of the first reflecting module and the second reflecting module.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment and variations with reference to the accompanying drawings, of which:
Before the present invention is described in greater detail, it should be noted that where considered appropriate, reference numerals or terminal portions of reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
Referring to
The embodiment of the lamp device includes a lamp seat 21 adapted to be mounted to a vehicle, a lamp shield 23 mounted on the lamp seat 21 and cooperating with the lamp seat 21 to define a lamp space 22, a reflecting unit 3 mounted to the lamp seat 21 and received in the lamp space 22, and a light emitting unit 4 disposed on the reflecting unit 3. Light emitted from the light emitting unit 4 projects toward the lamp shield 2. The design and structure of the lamp seat 21 and the lamp shield 23 are well known to those skilled in the art and are omitted for the sake of brevity.
The reflecting unit 3 includes a first reflecting module 31 and a second reflecting module 32.
The first reflecting module 31 is configured to reflect light towards the second reflecting module 32 and has a reflectivity that is substantially over 70% for light of wavelength ranging from 550 nm to 800 nm. The first reflecting module 31 includes a first support member 33 and an aluminum film 34 deposited by evaporation on the first support member 33 and disposed between the first support member 33 and the second reflecting module 32. In this embodiment, the first support member 33 is substantially quadrilateral-shaped. The first support member 33 may be made of steel.
In this embodiment, the aluminum film 34 is formed on the first support member 33 through electron beam evaporation technique under pressure of 10−5 Torr and temperature of 60° C., using aluminum as a target and at an evaporation rate of 20 {acute over (Å)} per second. Referring further to
The second reflecting module 32 is connected to the first reflecting module 31, configured to reflect light towards the first reflecting module 31, and has a reflectivity that substantially ranges from 50% to 75% for light of wavelength ranging from 460 nm to 700 nm. The second reflecting module 32 includes a second support member 35 that is light-transmissible and coupled to the first reflecting module 31, a light-transmissible shielding member 36 coupled to the second support member 35 and being opposite to the first reflecting module 31, and a reflecting film 37 that is deposited by evaporation on the second support member 35, opposite to the first reflecting module 31, and disposed between the second support member 35 and the light-transmissible shielding member 36.
In this embodiment, the second support member 35 is made of a light-transmissible material such as acrylics, and includes a plate portion 351 that may be substantially quadrilateral-shaped, and a supporting portion 352 extending from a periphery of the plate portion 351 toward the lamp seat 21 to be mounted to the lamp seat 21. The plate portion 351 includes a first surface 353 for the reflecting film 37 to be deposited on, and a second surface 354 opposite to the first surface 353 and facing the first reflecting module 31. In certain embodiments, the second surface 354 may be concave to achieve desired optical effects, but may vary in actual practice depending on differing needs.
The shielding member 36 is similar in shape to the second support member 35 but larger in size such that it shields over the rear of and protects the second support member 35 and the reflecting film 37.
The reflecting film 37 has a reflectivity substantially between 50% and 75% for light of wavelength ranging from 460 nm to 700 nm, and includes a first deposited layer 371 formed on the second support member 35, and second, third, fourth, fifth, sixth, seventh, eighth and nine deposited layers 372, 373, 374, 375, 376, 377, 378, 379 stacked in order on the first deposited layer 371 in a direction away from the second support member 35.
The reflecting film 37 is formed layer-by-layer using the electron beam evaporation technique, under a pressure of 10−5 torr and a temperature of 80° C., using either silica or titanium oxide targets, and at the evaporation rate of 8 {acute over (Å)} per second.
In this embodiment, each of the first, third, fifth, seventh and ninth deposited layers 371, 373, 375, 377, 379 is exemplified to be made of titanium dioxide and has a refractive index of 2.28. Each of the second, fourth, sixth, and eighth deposited layers 272, 274, 276, 278 is exemplified to be made of silica and has a refractive index of 1.45.
In this embodiment, the first deposited layer 371 has a thickness of 28.6 nm, the second deposited layer 372 has a thickness of 19.5 nm, the third deposited layer 373 has a thickness of 64.1 nm, the fourth deposited layer 374 has a thickness of 165.0 nm, the fifth deposited layer 375 has a thickness of 102.6 nm, the sixth deposited layer 376 has a thickness of 94.4 nm, the seventh deposited layer 377 has a thickness of 60.8 nm, the eighth deposited layer 378 has a thickness of 96.7 nm, and the ninth deposited layer 379 has a thickness of 60.0 nm.
Referring to
In particular, for visible red light of wavelength ranging from 575 nm to 675 nm, when the angles of incidence are 0°, 30°, and 60°, the values of average reflectivity are respectively 68.2%, 69.1%, and 63.4%.
The light emitting unit 4 is connected to the reflecting unit 3 and configured to emit light toward the reflecting unit 3 in such a way that at least a part of the light emitted by the light emitting unit 4 is reflected from one of the first reflecting module 31 and the second reflecting module 32. In this embodiment, the light emitting unit 4 is connected to the first reflecting module 31 and emits the light toward the second reflecting module 32. The light emitting unit 4 includes a plurality of light emitting members 41 mounted to an outer ring portion of the first support member 33. In this embodiment, the light emitting members 41 are exemplified to be light emitting diodes that emit visible red light of wavelength ranging from 575 nm to 675 nm directed towards the first reflecting module 31.
Referring to
The aluminum film 34 of the embodiment has an average reflectivity of over 85% for light of wavelength ranging from 550 nm to 800 nm, which is higher than that of the conventional lamp device (less than 60%). The higher reflectivity allows the energy decay rate of the light to be reduced. Hence, in comparison to the light pattern of the conventional lamp device (see
Moreover, since the reflecting film 37 of the embodiment has reflectivity of 50% to 75% for light of wavelength ranging from 460 nm to 700 nm, even if the light emitting members 41 of this embodiment are changed to emit visible light of a different color from red, the light pattern of
Referring to
The values of reflectivity of three combined film modules each including the aluminum module 34 and the deposited film(s) 38 of the first, second and third variations of the embodiment, respectively, for light of varying wavelength are shown in
Referring to
In sum, the lamp device of the disclosure has the following benefits:
1. The first reflecting module 31 can reduce the energy decay rate of light and cooperate with the second reflecting module 32 to increase the number of virtual images, thus reducing the size of the dark region 5.
2. The reflectivity/partial reflecting effect of both the first and second reflecting module 31, 32 are consistently desirable for light of wavelength ranging from 550 nm to 700 nm, thus the lamp device of this disclosure may be used with a variety of colors and in a wider variety of situations.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment and variations. It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects, and that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
While the disclosure has been described in connection with what are considered the exemplary embodiment and variations, it is understood that this disclosure is not limited to the disclosed embodiment and variations but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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107147469 | Dec 2018 | TW | national |