FIELD OF INVENTION
[0001] The present invention is related to an optical apparatus and more particularly related
to an optical apparatus with LED modules.
BACKGROUND
[0003] Some optical devices provide special light effect for required function.
[0004] For example, spotlight devices are used for generating a focus light to particularly
placing light beam on a desired object like a painting or a dinner table. Even for
the same spotlight function, different parameters may provide different light effects.
[0005] Therefore, it would be a technical challenge to design a simpler structure of spotlight
device and would be even better if heat dissipation and assembling factors are also
considered in such design. Particularly, if flexibility is also provided, it would
be even more beneficial.
SUMMARY OF INVENTION
[0006] The invention is an optical apparatus as defined in claim 1.
[0007] In a specific example, the optical apparatus may further include a metal cup. The
LED plate is placed upon a surface of the metal cup for heat dissipation.
[0008] In a specific example, the optical apparatus may further include a metal dome.
[0009] The metal dome is placed inside and adjacent to the dome portion of the cup body.
In a specific example, the dome portion of the cup body may have a plurality of transparent
rib lens on an exterior surface of the dome portion. Such design may help heat dissipation
and also improve appearance of the overall optical apparatus.
[0010] In a specific example, the optical apparatus may further include a metal cup. The
LED plate is placed upon a surface of the metal cup for heat dissipation. In addition,
the metal cup and the metal dome are formed together as a single body.
[0011] In a specific example, the optical apparatus may further include a metal tube. The
metal tube is placed inside and adjacent to the tube portion of the cup body for performing
heat dissipation of the driver plate.
[0012] According to the invention, the central lens is composed of a plurality of micro
lens. The plurality of micro lens are arranged to form the focus beam together.
[0013] In addition, the plurality of micro lens may be disposed at an inner side of the
lens plate facing to the LED plate. In other words, the protrusion surface is facing
to the LED modules instead of exposing outside in such design option.
[0014] According to the invention, the surrounding lens is composed of a plurality of polygonal
lens. For example, such polygonal lens helps light diffusion so as to provide a better
overall light effect of the optical apparatus.
[0015] According to the invention, the peripheral lens is composed of a plurality of rib
lens being arranged adjacent to each other. Such rib lens may help collecting light
emitting to the peripheral area to increase overall light efficiency.
[0016] In a specific example, the central lens, the surrounding lens and the peripheral
lens may be made of Polycarbonate material. In addition, the cup body may also be
made of Polycarbonate material. Such design helps further down cost the overall optical
apparatus and simplify manufacturing complexity.
[0017] In a specific example, the two metal pins are molded with the bottom portion of the
cup body. For example, when the cup body is to be molded in a molding device, the
metal pins are placed in the molding device so that when the molding of the cup body
is completed, the metal pins are integrated with the cup body immediately. This helps
simplify manufacturing process and also helps more reliably fix the metal pins with
the cup body.
[0018] In a specific example, the two input terminals of the driver plate are inserted into
the two metal pins respectively. For example, the two metal pins have holes and the
input terminals are plugged into the holes of the metal pins.
[0019] In a specific example, the LED plate has two connectors have elastic force to fix
the output terminals of the driver plate when the output terminals of the driver are
plugged into the two connectors. For example, the two connectors may be designed as
clips or springs.
[0020] In a specific example, the lens plate is replaceable to another lens plate with different
focus beam characteristic. For example, screw grooves or clips are provided at the
connection portion of the lens plate and the cup body so that users may change different
lens plate with different focus beam characteristic by themselves. This is very helpful
to increase value of such optical apparatus, because users may buy one such optical
apparatus set and use in different needs or scenarios.
[0021] Specifically, a detachable connection structure like screw or clips may be designed
so that users may change a different lens plate to fit their needs. For example, a
user may buy such spotlight apparatus with a number of lens plates with different
central lens settings. The user may replace the default lens plate with another lens
plate, e.g. to emit a more wide light beam or a narrower light beam. In addition,
different colors of lens plate may be designed so that users may change a different
color filter to affect the light beam from such spotlight apparatus.
[0022] In a specific example, there is a neck portion between the dome portion and the tube
portion. There is a first distance between where the LED plate is disposed and the
neck portion. There is a second distance between the top peripheral and the neck portion.
The first distance is smaller than half of the second distance and larger than one
fourth of the second distance.
[0023] In another example, the LED plate is placed at the neck portion.
[0024] In another specific example, there are diffusion optical structures formed on the
dome portion and the tube portion, e.g. to increase overall light output and to prevent
visual exposing of the components of the spotlight apparatus.
[0025] In another specific example, the two metal pins have openings respectively for receiving
the two input terminals of the driver plate. In other words, the two input terminals
may not need to be welded but just plugged into the metal pins. This helps significant
decrease manufacturing cost.
[0026] In another specific example, the two metal pins are metal hollow tubes. For example,
the two metal pins are cylinder shape with central opening.
[0027] In another specific example, a portion of the input terminals of the driver plate
is deformed when the input terminals are inserted into the openings of the two metal
pins to keep better connection between the input terminals and the two metal pins.
The input terminal may be made with elastic metal so that when the input terminals
are plugged into the metal pins, the input terminals has form changing and increasing
force to fix to the metal pins.
[0028] In another specific example, the two metal pins are molded with the bottom portion
of the cup body. For example, the metals are not connected to the bottom portion of
the cup body by screw structures. Instead, the metal pins are placed in a molding
device while molding the bottom portion of the cup body.
[0029] In a specific example, the dome portion, the tube portion and the bottom portion
of the cup body are together formed with Polycarbonate(PC) material as a single body.
Please note that other plastic or material may be adopted if they allow light to go
through.
[0030] In another specific example, the two metal pins are inserted in a molding device
when the molding device is used for produce the cup body so that the two metal pins
are molded with the bottom portion of the cup body.
[0031] In a specific example, the lens plate is made of Polycarbonate material as a single
body. In other words, the cup body and the lens plate may be made of same PC material
thus making the overall cost even lower.
[0032] According to the invention, the tube portion of the cup body has a track trench for
guiding and inserting the driver plate. With such design, the driver plate may be
reliably fixed to the tube portion of the cup body.
[0033] In a specific example, the driver plate has a base plate with metal material for
heat dissipation. For example, the base plate may be made of aluminum.
[0034] To further increase heat dissipation, heat dissipation gel may be applied between
the track trench and the driver plate to enhance heat dissipation.
[0035] Alternatively, heat dissipation glue may be applied between the track trench and
the driver plate to enhance heat dissipation and connection reliability between the
track trench and the driver plate.
[0036] In a specific example, the lens plate has a transparent hollow cup facing the LED
modules.
[0037] In an example, the optical apparatus may further have a metal dome, the metal dome
being placed inside and adjacent to the dome portion of the cup body. The bottom of
the metal dome may have a peripheral area connecting to the metal cup for help heat
dissipation.
[0038] In another example, a plurality of protrusion structures are arranged regularly on
an exterior surface of the dome portion of the cup body. For example, the protrusion
structures form associated of lens facing to the corresponding metal dome inside the
dome portion. With such design, heat dissipation is further achieved while the metal
cup has better appearance.
[0039] In another example, the bottom surface of the metal cup has at least one through
hole and the output terminals go through the through hole to connect to the LED plate.
The metal cup may have several parts with one part connecting to the LED plate and
another part connecting to the driver plate to perform heat dissipation from different
sources. In the LED apparatus, the driver plate and the LED plate are two major heat
sources that needs heat dissipation.
[0040] In another example, the bottom surface of the metal cup has at least one through
hole and the driver plate goes through the through hole to electrically connected
to the LED plate.
[0041] In another example, the central lens of the lens plate has a plurality of micro optical
structures for forming a focus light beam by guiding optical path of the LED plate.
Compared with one single lens, such micro optical structure may prevent uncomfortable
light effect when people stare at the LED apparatus.
[0042] In a specific example, the plurality of micro optical structures are formed in a
back side facing to the LED plate. Furthermore, a top side of the central lens oppositeto
the back side of the central lens has a smooth surface without protrusion structure.
In other words, the top surface of the LED apparatus exposing outside may be well
protected without hurting the lens during movement or installation. Besides, it would
be easier to clean the surface of the LED apparatus.
[0043] In a specific example, the LED modules are placed under the central lens.
[0044] In a specific example, the dome portion has a detachable structure for replacing
the lens plate to another lens plate to change light beam effect of the lens plate.
BRIEF DESCRIPTION OF DRAWINGS
[0045]
Fig. 1 illustrates an exploded diagram of components of a LED apparatus embodiment
according to the present invention.
Fig. 2A illustrates a not claimed example of a lens plate.
Fig. 2B illustrates side view of Fig. 2A.
Fig. 3 illustrates a cup body embodiment.
Fig. 4 illustrates a diagram of metal pins and input terminals.
Fig. 5 is a side view of the spot light embodiment of Fig. 1 when the spotlight is
assembled.
Fig. 6 illustrates another embodiment with a metal dome.
Fig. 7A, Fig. 7B and Fig. 7C illustrate another embodiment with a metal tube.
Fig. 8 illustrates an embodiment of central lens, surrounding lens and peripheral
lens structure.
DETAILED DESCRIPTION
[0046] Please refer to Fig. 1 and Fig. 5. Fig. 1 illustrates an exploded diagram of components
of anopticalapparatus. Fig. 5 illustrates a side view of cross-sectional diagram of
the components of Fig. 1 when they are assembled together.
[0047] The spotlight apparatus has a LED plate 103, a lens plate 101, a cup body 105, a
driver plate 104, a pair of screws 102 for fixing the components.
[0048] The LED plate 103 has a plurality of LED modules, a metal plate and two connectors.
The plurality of LED modules and the two connectors are mounted on the metal plate.
The LED modules may each be a single LED chip or multiple LED chips formed as a module.
[0049] Please refer to Fig. 2A and Fig. 2B, which illustrate a lens plate example. In Fig.
2A and Fig. 2B, the lens plate is a circular shape and has a central lens 201 and
a plurality of micro optical structures 202 around the central lens. Micro optical
structures are patterns including concave or other structure that may guide or change
light paths to achieve certain optical effect. Fig. 2B is a side view of Fig. 2A.
The lens plate 20 has a transparent hollow cup 203 structure for guiding light entering
the central lens 201. The central lens 201 may be made of a single lens or multiple
lens that generates the effect of creating a spotlight beam.
[0050] Different lens plate may be prepared for generating spotlight apparatuses with different
light beam characteristics while the other components kept unchanged.
[0051] Therefore, a detachable connection structure like screw or clips may be designed
so that users may change a different lens plate to fit their needs. For example, a
user may buy such spotlight apparatus with a number of lens plates with different
central lens settings. The user may replace the default lens plate with another lens
plate, e.g. to emit a more wide light beam or a narrower light beam. In addition,
different colors of lens plate may be designed so that users may change a different
color filter to affect the light beam from such spotlight apparatus.
[0052] Please refer back to Fig. 1. The cup body 105 has a dome portion 1051, a tube portion
1053 and a bottom portion, which facing to and integrated with two metal pins 1054.
The dome portion 1051 and the tube portion 1053 are manufactured together as a single
body. The lens plate 101 is fixed to a top peripheral end of the dome portion 1051
of the cup body 105. The LED plate 103 is disposed inside the dome portion 1051 so
that a portion of light emitting from the LED modules running through the central
lens of the lens plate 101 to form a focus light beam and another portion of light
emitting from the LED modules running through the plurality of micro optical structures
to form soft light. The plurality of micro optical structures may be designed to diffuse
the light or made of tiny cave, blocks or dots. The central lens may also be made
of multiple lens structures instead of a single lens.
[0053] In addition, a metal cup 107 is used for mounting the LED plate 103. A bottom surface
of the metal cup is attached to the back side of the LED plate for heat dissipation
for heat generated by the LED plate. The metal cup 107 has peripheral portion for
increasing heat dissipation area. Fins or other structures may also be applied to
design the metal cup 107. Furthermore, the peripheral portion of the metal cup 107
may be designed to engage with the dome portion 1051 of the cup body to increase heat
dissipation effect.
[0054] The driver plate 104 contains driver circuits, two output terminals and two input
terminals.
[0055] The two metal pins 1054 are integrated to the bottom portion of the cup body 105.
The two input terminals 1041 of the driver plate 104 are inserted into the two metal
pins 1054 and the two output terminals 1042 connected to the LED plate 103.
[0056] In a specific example, there is a neck portion 1052 between the dome portion and
the tube portion.
[0057] Please also refer to Fig. 3. There is a first distance 302 between where the LED
plate 312 is disposed and the neck portion 311. There is a second distance 301 between
the top peripheral 313 and the neck portion 311. The first distance 302 is smaller
than half of the second distance 301 and larger than one fourth of the second distance
301. For example, the first distance 302 is about 1/3 of the second distance 301.
Such arrangement makes both light efficiency and heat dissipation for leaving space
for heat movement.
[0058] In another specific example, there are diffusion optical structures formed on the
dome portion and the tube portion, e.g. to increase overall light output and to prevent
visual exposing of the components of the spotlight apparatus.
[0059] In another specific example, the two metal pins have openings respectively for receiving
the two input terminals of the driver plate. In other words, the two input terminals
may not need to be welded but just plugged into the metal pins. This helps significant
decrease manufacturing cost.
[0060] In another specific example, the two metal pins are metal hollow tubes. For example,
the two metal pins are cylinder shape with central opening.
[0061] In another specific example, a portion of the input terminals of the driver plate
is deformed when the input terminals are inserted into the openings of the two metal
pins to keep better connection between the input terminals and the two metal pins.
The input terminal may be made with elastic metal so that when the input terminals
are plugged into the metal pins, the input terminals has form changing and increasing
force to fix to the metal pins.
[0062] In another specific example, the two metal pins are molded with the bottom portion
of the cup body. For example, the metals are not connected to the bottom portion of
the cup body by screw structures. Instead, the metal pins are placed in a molding
device while molding the bottom portion of the cup body.
[0063] In a specific example, the dome portion, the tube portion and the bottom portion
of the cup body are together formed with Polycarbonate (PC) material as a single body.
Please note that other plastic or material may be adopted if they allow light to go
through.
[0064] Please refer to Fig. 4, which illustrates interaction between an input terminal of
a driver plate 401 and a metal pins 402. The front end of the input terminal is inserted
into a hole of the metal pins 402. In addition, a deformation of the inserted portion
of the input terminal 401 would help fixing better for the input terminal 401 and
the metal pins 402. In another specific example, the two metal pins are inserted in
a molding device when the molding device is used for produce the cup body so that
the two metal pins are molded with the bottom portion of the cup body.
[0065] In a specific example, the lens plate is made of Polycarbonate material as a single
body. In other words, the cup body and the lens plate may be made of same PC material
thus making the overall cost even lower.
[0066] The tube portion of the cup body has a track trench for guiding and inserting the
driver plate. With such design, the driver plate may be reliably fixed to the tube
portion of the cup body.
[0067] In a specific example, the driver plate has a base plate with metal material for
heat dissipation. For example, the base plate may be made of aluminum.
[0068] To further increase heat dissipation, heat dissipation gel may be applied between
the track trench and the driver plate to enhance heat dissipation.
[0069] Alternatively, heat dissipation glue may be applied between the track trench and
the driver plate to enhance heat dissipation and connection reliability between the
track trench and the driver plate.
[0070] In a specific example, the lens plate has a transparent hollow cup facing the LED
modules.
[0071] Please refer to Fig. 6, which illustrates a cross sectional view of another embodiment.
In Fig. 6, the LED apparatus has a lens plate 601, a cup body 604, a driver plate
607, a metal cup 603 and a LED plate 606. In addition, the LED apparatus further has
a metal dome 602. The metal dome 602 is placed inside and adjacent to the dome portion
of the cup body 604. A bottom portion of the metal dome 604 may contact with the metal
cup 603 for helping carrying heat to the dome portion of the cup body 604. The metal
dorm 602 may have a dome shape similar to the dome portion of the cup body 604 so
that these two components may contact to each other to perform heat dissipation.
[0072] Please refer to Fig. 7A, Fig. 7B and Fig. 7C, which illustrate another embodiment
with a metal tube 72 inside and adjacent to the tube portion of the cup body 71. Please
also note that in this embodiment, the metal cup and the metal dome 73 are formed
together as a single body. The metal tube 72 may also be made together with the metal
dome to form a single body.
[0073] Please refer to Fig. 8, which illustrates a lens plate of the optical apparatus of
the invention. According to the invention, the central lens 801 is surrounded by a
surrounding lens 802. The surrounding lens 802 is further surrounded by a peripheral
lens 803. The central lens 801 has a plurality of micro lens for together forming
a focus beam while the surrounding lens 802 and the peripheral lens 803 are used for
generating other light effect like light diffusion. The surrounding lens 802 has a
plurality of polygonal lens and the peripheral lens 803 has a plurality of rib lens.
[0074] Rib lens refer to an elongated lens for guiding light direction to a desired effect.
Such rib lens may also be disposed outside or inside the tube portion of the cup body
to gain better heat dissipation or visual appearance.
[0075] The embodiments mentioned above should not be interpreted as limitation for the present
invention. The invention is defined by the claims.
1. An optical apparatus for forming a focus beam, comprising:
a LED plate (103) comprising a plurality of LED modules;
a lens plate (101), comprising a central lens (801), a surrounding lens (802) and
a peripheral lens (803), the surrounding lens (802) surrounding the central lens (801),
the peripheral lens (803) surrounding the surrounding lens (802), the LED modules
being located below the central lens (801) for the central lens (801) to generate
the focus light beam, the surrounding lens (802) and the peripheral lens (803) for
generating two light effects not the same as the central lens (801) does, the central
lens (801), the surrounding lens (802) and the peripheral lens (803) being made of
a single body with plastic material;
a cup body (105), the cup body (105) comprising a dome portion (1051), a tube portion
(1053) and a bottom portion, the dome portion (1051) and the tube portion (1053) being
manufactured together as a single body with the plastic material, the lens plate (101)
being fixed to a top peripheral end of the dome portion (1051) of the cup body (105),
the LED plate (103) being disposed inside the dome portion (1051);
a driver plate (104) containing driver circuits, two output terminals (1042) and two
input terminals (1041);
and two metal pins (1054) integrated to the bottom portion of the cup body (105),
the two input terminals (1041) of the driver plate (104) connected with the two metal
pins (1054) and the two output terminals (1042) connected to the LED plate (103);
the tube portion (1053) of the cup body (105) has a track trench for guiding and inserting
the driver plate (104);
characterized in that:
the central lens (801) is composed of a plurality of micro lens, the plurality of
micro lens are arranged to form the focus beam together;
the surrounding lens (802) is composed of a plurality of polygonal lens; and
the peripheral lens (803) is composed of a plurality of rib lens being arranged adjacent
to each other.
2. The optical apparatus of claim 1, further comprising a metal cup (107), the LED plate
(103) is placed upon a surface of the metal cup (107) for heat dissipation.
3. The optical apparatus of claim 1, further comprising a metal dome (602), the metal
dome (602) being placed inside and adjacent to the dome portion of the cup body (604).
4. The optical apparatus of claim 3, wherein the dome portion of the cup body has a plurality
of transparent rib lens on an exterior surface of the dome portion.
5. The optical apparatus of claim 4, further comprising a metal cup, the LED plate (103)
is placed upon a surface of the metal cup for heat dissipation, the metal cup and
the metal dome are formed together as a single body.
6. The optical apparatus of claim 1, further comprising a metal tube (72), the metal
tube (72) being placed inside and adjacent to the tube portion of the cup body (71)
for performing heat dissipation of the driver plate (104).
7. The optical apparatus of claim 1, wherein the plurality of micro lens are disposed
at an inner side of the lens plate (101) facing to the LED plate (103).
8. The optical apparatus of claim 1, wherein the central lens (801), the surrounding
lens (802) and the peripheral lens (803) are made of Polycarbonate material.
9. The optical apparatus of claim 1, wherein the two metal pins (1054) are molded with
the bottom portion of the cup body (105).
10. The optical apparatus of claim 1, wherein the two input terminals (1041) of the driver
plate (104) are inserted into the two metal pins (1054) respectively.
11. The optical apparatus of claim 1, wherein the LED plate (103) has two connectors for
receiving and clipping the two output terminals (1042) of the driver plate (104).
12. The optical apparatus of claim 1, wherein the lens plate (101) is replaceable to another
lens plate with different focus beam characteristic.
1. Optische Vorrichtung zum Bilden eines Fokussierungsstrahls, umfassend:
eine LED-Platte (103), die eine Vielzahl von LED-Modulen umfasst;
eine Linsenplatte (101), die eine zentrale Linse (801), eine äußere Linse (802) und
eine periphere Linse (803) umfasst, wobei die äußere Linse (802) die zentrale Linse
(801) umgibt, die periphere Linse (803) die äußere Linse (802) umgibt und die LED-Module
unter der zentralen Linse (801) angeordnet sind, damit die zentrale Linse (801) den
fokussierten Lichtstrahl erzeugt, die äußere Linse (802) und die periphere Linse (803)
zum Erzeugen von zwei Lichteffekten, die nicht die gleichen sind wie die der zentralen
Linse (801), wobei die zentrale Linse (801), die äußere Linse (802) und die periphere
Linse (803) aus einem einzigen Körper aus Kunststoffmaterial hergestellt sind;
einen Schalenkörper (105), wobei der Schalenkörper (105) einen kuppelförmigen Abschnitt
(1051), einen Röhrenabschnitt (1053) und einen Bodenabschnitt umfasst, wobei der kuppelförmige
Abschnitt (1051) und der Röhrenabschnitt (1053) zusammen als ein einziger Körper aus
Kunststoffmaterial hergestellt sind, wobei die Linsenplatte (101) an einem oberen
Umfangsende des kuppelförmigen Abschnitts (1051) des Schalenkörpers (105) befestigt
ist, und wobei die LED-Platte (103) innerhalb des kuppelförmigen Abschnitts (1051)
angeordnet ist;
eine Treiberplatte (104), die Treiberschaltungen, zwei Ausgangsanschlüsse (1042) und
zwei Eingangsanschlüsse (1041) enthält;
und zwei Metallstifte (1054), die in den unteren Teil des Schalenkörpers (105) integriert
sind, wobei die beiden Eingangsanschlüsse (1041) der Treiberplatte (104) mit den beiden
Metallstiften (1054) verbunden sind und die beiden Ausgangsanschlüsse (1042) mit der
LED-Platte (103) verbunden sind;
der Rohrabschnitt (1053) des Schalenkörpers (105) eine Führungsrinne zum Führen und
Einsetzen der Treiberplatte (104) aufweist;
dadurch gekennzeichnet, dass:
die zentrale Linse (801) aus einer Vielzahl von Mikrolinsen zusammengesetzt ist, wobei
die Vielzahl von Mikrolinsen so angeordnet ist, dass sie zusammen den Fokusstrahl
bilden;
die äußere Linse (802) aus einer Vielzahl von polygonalen Linsen besteht; und
die periphere Linse (803) besteht aus einer Vielzahl von Rippenlinsen, die nebeneinander
angeordnet sind.
2. Optische Vorrichtung nach Anspruch 1, die ferner eine Metallschale (107) umfasst,
wobei die LED-Platte (103) auf einer Oberfläche der Metallschale (107) zur Wärmeableitung
angeordnet ist.
3. Optische Vorrichtung nach Anspruch 1, die ferner eine Metallkuppel (602) umfasst,
wobei die Metallkuppel (602) innerhalb des Kuppelteils des Schalenkörpers (604) und
angrenzend an diesen angeordnet ist.
4. Optische Vorrichtung nach Anspruch 3, wobei der Kuppelteil des Schalenkörpers eine
Vielzahl von transparenten Rippenlinsen auf einer Außenfläche des Kuppelteils aufweist.
5. Optische Vorrichtung nach Anspruch 4, die ferner einen Metallbecher umfasst, wobei
die LED-Platte (103) zur Wärmeableitung auf einer Oberfläche des Metallbechers angeordnet
ist und der Metallbecher und die Metallkuppel zusammen als ein einziger Körper ausgebildet
sind.
6. Optische Vorrichtung nach Anspruch 1, die ferner eine Metallröhre (72) umfasst, wobei
die Metallröhre (72) im Inneren und angrenzend an den Röhrenabschnitt des Schalenkörpers
(71) angeordnet ist, um die Wärmeableitung der Treiberplatte (104) durchzuführen.
7. Optische Vorrichtung nach Anspruch 1, wobei die mehreren Mikrolinsen an einer Innenseite
der Linsenplatte (101) angeordnet sind, die der LED-Platte (103) zugewandt ist.
8. Optische Vorrichtung nach Anspruch 1, wobei die zentrale Linse (801), die äußere Linse
(802) und die periphere Linse (803) aus einem Polycarbonatmaterial hergestellt sind.
9. Optische Vorrichtung nach Anspruch 1, bei der die beiden Metallstifte (1054) mit dem
unteren Teil des Schalenkörpers (105) gegossen sind.
10. Optische Vorrichtung nach Anspruch 1, bei der die beiden Eingangsanschlüsse (1041)
der Treiberplatte (104) jeweils in die beiden Metallstifte (1054) eingesetzt sind.
11. Optische Vorrichtung nach Anspruch 1, wobei die LED-Platte (103) zwei Anschlüsse zur
Aufnahme und zum Einklemmen der beiden Ausgangsanschlüsse (1042) der Treiberplatte
(104) aufweist.
12. Optische Vorrichtung nach Anspruch 1, wobei die Linsenplatte (101) durch eine andere
Linsenplatte mit einer anderen Fokusstrahlcharakteristik ersetzt werden kann.
1. Appareil optique pour former un faisceau de focalisation, comprenant :
une plaque de DEL (103) comprenant une pluralité de modules de DEL ;
une plaque de lentilles (101), comprenant une lentille centrale (801), une lentille
environnante (802) et une lentille périphérique (803), la lentille environnante (802)
entourant la lentille centrale (801), la lentille périphérique (803) entourant la
lentille environnante (802), les modules LED étant situés sous la lentille centrale
(801) pour que la lentille centrale (801) génère le faisceau lumineux de focalisation,
la lentille environnante (802) et la lentille périphérique (803) pour générer deux
effets lumineux différents de ceux de la lentille centrale (801), la lentille centrale
(801), la lentille environnante (802) et la lentille périphérique (803) étant constituées
d'un seul corps en matière plastique ;
un corps de coupelle (105), le corps de coupelle (105) comprenant une partie de dôme
(1051), une partie de tube (1053) et une partie de fond, la partie de dôme (1051)
et la partie de tube (1053) étant fabriquées ensemble comme un corps unique avec la
matière plastique, la plaque de lentille (101) étant fixée à une extrémité périphérique
supérieure de la partie de dôme (1051) du corps de coupelle (105), la plaque de DEL
(103) étant disposée à l'intérieur de la partie de dôme (1051);
une plaque d'attaque (104) contenant des circuits d'attaque, deux bornes de sortie
(1042) et deux bornes d'entrée (1041) ;
et deux broches métalliques (1054) intégrées à la partie inférieure du corps de coupelle
(105), les deux bornes d'entrée (1041) de la plaque d'attaque (104) étant connectées
aux deux broches métalliques (1054) et les deux bornes de sortie (1042) étant connectées
à la plaque de DEL (103) ;
la portion de tube (1053) du corps de coupelle (105) présente une tranchée de guidage
pour guider et insérer la plaque d'attaque (104) ;
caractérisé en ce que
la lentille centrale (801) est composée d'une pluralité de microlentilles, la pluralité
de microlentilles est disposée pour former ensemble le faisceau de focalisation ;
la lentille périphérique (802) est composée d'une pluralité de lentilles polygonales
; et
la lentille périphérique (803) est composée d'une pluralité de lentilles nervurées
disposées de manière adjacente les unes aux autres.
2. L'appareil optique de la revendication 1, comprenant en outre une coupelle métallique
(107), la plaque de DEL (103) est placée sur une surface de la coupelle métallique
(107) pour la dissipation de la chaleur.
3. L'appareil optique de la revendication 1, comprenant en outre un dôme métallique (602),
le dôme métallique (602) étant placé à l'intérieur et adjacent à la partie dôme du
corps de la coupelle (604).
4. L'appareil optique de la revendication 3, dans lequel la partie dôme du corps de la
coupelle a une pluralité de lentilles nervurées transparentes sur une surface extérieure
de la partie dôme.
5. L'appareil optique de la revendication 4, comprenant en outre une coupelle métallique,
la plaque de LED (103) est placée sur une surface de la coupelle métallique pour la
dissipation de la chaleur, la coupelle métallique et le dôme métallique sont formés
ensemble comme un seul corps.
6. Appareil optique selon la revendication 1, comprenant en outre un tube métallique
(72), le tube métallique (72) étant placé à l'intérieur et de manière adjacente à
la partie de tube du corps de coupelle (71) pour effectuer une dissipation de chaleur
de la plaque de conducteur (104).
7. Appareil optique selon la revendication 1, dans lequel la pluralité de microlentilles
est disposée sur un côté intérieur de la plaque de lentilles (101) faisant face à
la plaque de DEL (103).
8. Appareil optique selon la revendication 1, dans lequel la lentille centrale (801),
la lentille environnante (802) et la lentille périphérique (803) sont réalisées en
matériau Polycarbonate.
9. Appareil optique de la revendication 1, dans lequel les deux broches métalliques (1054)
sont moulées avec la partie inférieure du corps de la coupelle (105).
10. Appareil optique selon la revendication 1, dans lequel les deux bornes d'entrée (1041)
de la plaque de commande (104) sont insérées respectivement dans les deux broches
métalliques (1054).
11. L'appareil optique de la revendication 1, dans lequel la plaque de LED (103) a deux
connecteurs pour recevoir et clipper les deux bornes de sortie (1042) de la plaque
d'attaque (104).
12. Appareil optique selon la revendication 1, dans lequel la plaque de lentilles (101)
est remplaçable par une autre plaque de lentilles avec une caractéristique de faisceau
focalisé différente.