Technical field of the invention
[0001] The present invention relates to a lighting device equipped with one or more lighting
modules, preferably using LEDs as a light source and having a cooling system that
allow in use the outer lens or transparent cover of the lighting device, which closes
frontally the housing body of the lighting device, to be defrosted and/or the eventual
condensation to be eliminated.
Technical Background
[0002] Lighting devices for vehicles provided with one or more lighting modules arranged
inside a housing body having a frontal inlet opening closed by a lens or a transparent
cover are well known. In such devices, especially during winter time and/or depending
on the weather conditions, it may happen that some condensation or ice forms on the
lens/cover, which may hinder the photometric performances of the lighting device.
Moreover, if the condensation forms on the inner side of the lens/cover, this may
cause also damages to the electronic components and/or to the reflective surfaces
of the lighting modules.
[0003] EP2148133 discloses a lighting device comprising two superimposed lighting modules arranged
within an housing body; in the vertical space between the two lighting modules is
arranged a radiator including a plurality of parallel fins laterally spaced apart
to each other; a fan arranged at the rear of the lighting device and inside the housing
body sucks the air present within the housing body from the top and the bottom of
the housing body and delivers it through the radiator fins, which are crossed in the
direction of their width, and toward the inner surface of a lens or transparent cover
closing an inlet opening arranged at the front of the housing body.
[0004] The lighting device disclosed in
EP2148133 is far from being satisfactory: first of all, the device is bulky and difficult to
be assembled; secondly, the thermal efficiency of the cooling system including the
radiator and the fan is quite low, so that the heat taken away from the light source,
usually a LED, of the lighting modules and delivered towards the front lens or cover
is insufficient to provide a correct defrost in winter. Moreover, also the condensation
on the lens/cover is not well removed since the warm air is directed only against
a middle section (in the vertical direction) of the lens, so that the upper and lower
sections of the lens/cover may remain wet.
WO 2012/013601 A1 and
WO 2016/110573 A1 disclose further lighting devices of the prior art.
Summary of the invention
[0005] The object of the present invention is to provide a lighting device for vehicles
having one or more lighting modules, preferably using LEDs as the light source, that
is compact, simple and cost-effective in construction and highly reliable, while ensuring
at the same time on one side an optimal dissipation of the heat generated by the LEDs
and on the other side, and above all, the complete elimination of any condensation
on the front lens/cover and the complete defrost of the same in wintertime.
[0006] According to the invention, therefore, a lighting device for vehicles including at
least one cooled lighting module is provided having the features set out in the appended
claims.
Brief description of the drawings
[0007] Further features and advantages of the present invention will become more apparent
from the following description of one non-limiting embodiment thereof, made with reference
to the figures in the accompanying drawings, in which:
- figure 1 shows schematically a three quarter front perspective view of a lighting
device according to the invention;
- figure 2 shows in an enlarged scale, a three quarter rear perspective schematic view
of a radiator element of one cooled lighting module of the lighting device of figure
1;
- figure 3 shows schematically and in perspective view from the rear a cooled lighting
module of the lighting device of figure 1; and
- figure 4 shows schematically a sectioned side elevation view of the lighting device
of figure 1.
Detailed description
[0008] With reference to figures 1 and 4, reference numeral 1 indicates as a whole a lighting
device for a vehicle consisting, in the non-limiting embodiment shown, in a vehicle
headlight/headlamp, which is only schematically shown. It is however to be intended
that what will be described can be applied to any vehicle lighting device.
[0009] The lighting device 1 comprises a generally cup-shaped housing body 2 designed to
be mounted on a vehicle, known and not shown for sake of simplicity.
[0010] Housing body 2 is made of synthetic plastic material by injection molding and has
a front inlet opening 3 in use facing opposite to the vehicle and along a driving
direction of the vehicle, closed by a transparent cover 4, which may either be a "terse"
lens (i.e. without optical functions - as in the preferred example shown) or an optical
lens having optical functions, e.g. prismed.
[0011] According to the present invention, housing body 2 carries at the interior thereof
at least one lighting module 5 shown in details in figures 3 and 4. Of course, the
housing body 2 may carry within it more than one lighting module 5 or modules similar
to module 5 (e.g. two or three, arranged side by side) that may be visible from the
outside through the inlet opening 3 and the transparent cover 4.
[0012] In the non-limiting example shown (figure 4) the lighting device 1 is equipped with
one single lighting module 5, which is stationary, and with one or more rotating lighting
modules 11, known and not shown in details for sake of simplicity.
[0013] The modules 5 and 11 are arranged facing the inlet opening 3 of the cup-shaped housing
body 2 and the front transparent screen/cover 4 closing the inlet opening 3.
[0014] One lighting module 5 according to the present invention is shown in more details
in figure 3 and 4; according to the invention, the lighting module 5 is a cooled lighting
module comprising at least one light source 6 and a radiator element 7 better shown
in an enlarged scale in figure 2.
[0015] The radiator element 7 is operatively associated to the at least one light source
6 to remove the heat generated in use by the at least one light source 6.
[0016] In the non-limiting, but preferred, embodiment shown the cooled lighting module 5
is provided with two light sources 6, both consisting of LEDs; the LEDs 6 are mounted
on a printed circuit board 8 also carrying the necessary electronics. The printed
circuit board 8 is mounted rigid against the radiator element 7, in thermal contact
thereof, e.g. by means of clipping elements and/or of a thermal adhesive.
[0017] According to one aspect of the present invention, each cooled lighting module 5 further
comprises a diverter screen element 10 assembled directly onto the radiator element
7, rigid therewith and spaced apart therefrom.
[0018] The diverter screen element 10 delimits together with the radiator element 7 and
within the housing body 2 a non-linear channel 12 arranged substantially immediately
at the rear of the at least one light source 6. For "immediately at the rear of the
at least one light source 6" it is to be intended that the non-linear channel 12 is
divided from the two light sources 6 solely by the printed circuit board 8 to which
the light sources 6 are attached and by a substantially flat base plate 13 of the
radiator element 7, which constitutes one of the lateral walls of the non-linear channel
12. For "non-linear" it is to be intended that channel 12 is not rectilinear, but
describes a turn.
[0019] The non-linear channel 12 has a first and a second open end, opposite to each other,
indicated respectively with the reference numbers 14 and 15.
[0020] The second open end 15 faces the transparent cover or lens 4, as well shown in figure
4.
[0021] According to a strongly preferred feature of the invention, each cooled lighting
module 5 further comprises a motorized fan 16 of any known and suitable type, operatively
associated to the radiator element 7 and designed to generate an air flow F (schematically
indicated by the arrows in figure 4) within the housing body 2 to lap against the
radiator element 7.
[0022] According to a further feature of the invention, the first open end 14 of the non-linear
channel 12 is arranged immediately in front of the fan 16.
[0023] The fan 16 of each cooled lighting module 5 is arranged at the bottom of the housing
body 2 and at the rear of the respective at least one light source 6, in the embodiment
shown immediately at the rear of the base plate 13 of the radiator element 7, and
immediately beneath the first open end 14 of the non-linear channel 12.
[0024] The non-linear channel 12 extends from the bottom upwards so that the second open
end 15 of the non-linear channel 12 is arranged above the at least one light source
6.
[0025] In particular, the second open end 15 of the non-linear channel 12 faces an upper
portion 18 of the transparent cover or lens 4 (see figure 4).
[0026] The non-linear channel 12 and the transparent cover or lens 4 are designed such that
the air flow F generated by the fan 16 laps against the radiator element 7 in a direction
of a development in length of the radiator element 7 itself, namely in a substantially
vertical direction, from the bottom upwards.
[0027] Moreover, both the non-linear channel 12 and of the cover or lens 4 are designed
so that the air flow F generated by the fan 16 laps against an inner surface 19 of
the transparent cover or lens 4 from the top downwards.
[0028] As it is well shown in figure 2, the radiator element 7 is provided with a plurality
of radiating fins 20 which extend in cantilever manner from the base plate 13 on a
side opposite to the at least one (two on the example shown) light source 6 and towards
the diverter screen element 10 for almost the full width of the non-linear channel
12. With the expression
"for almost the full width of the non-linear channel 12" it is intended that the radiating fins 20 project from the base plate 13 and towards
the diverter screen element 10 for more than two thirds of the total width of the
non-linear channel 12 measured in a direction transverse to, and substantially perpendicular
to, the base plate 13, namely in the plane of the sheet in figure 4.
[0029] The radiating fins 20 moreover extend in length (i.e. in a direction substantially
perpendicular to that of their extension in cantilever fashion from the base plate
13) along the full length of the radiator element 7, in a direction substantially
perpendicular to an optical axis O of the cooled lighting module 5 (figure 4) along
which the light generated by the lighting module 5 is delivered in use.
[0030] The diverter screen element is designed such that a cross section of the first open
end 14 of the non-linear channel 12 is oriented substantially perpendicular to the
optical axis 0 and such that the non-linear channel 12 is curved at right angle in
an upper section 21 thereof, so that the cross-section of the second open end 15 of
the non-linear channel 12 is oriented substantially parallel to the optical axis O.
In particular, the upper section 21 is curves in a continuous manner, according to
a radius, since an upper portion 21b of the diverter screen element is shaped curved,
according to a substantially cylindrical geometry having a symmetry axis A parallel
to the base plate 13 and perpendicular to the radiating fins 20.
[0031] According to the preferred embodiment shown, the diverter screen element 10 is assembled
onto the radiator element 7 by means of removable retaining elements, e.g. by screws
22, housed in seats 23 provided in the diverter screen element 10.
[0032] In particular, the diverter screen element 10 is assembled onto the radiator element
7 directly on a couple of radiating fins 20 arranged adjacent opposite lateral sides
23 of the radiator element 7 and each flanked towards the opposite lateral sides 23
of the radiator element 7 by at least another one radiating fin 20. Such radiating
fins 20 bearing the diverter screen element 10 are provided with internally threaded
cylindrical embossment 25 to receive the screws 22.
[0033] The radiator element 7 is made of a metal alloy, preferably of an aluminum based
light alloy, while the diverter screen element 10 is made of a synthetic plastic material,
in particular resistant to heat, for example a thermosetting resin. It has been found
that the combination of the above two materials gives rise to the best performances
and allow an easy assembly and disassembly of the lighting module 5.
[0034] Preferably, the printed circuit board 8 with the LEDs 6, the radiator element 7 and
the diverter screen element 10 form a self-supporting unit which may be assembled
and disassembled to/from the rest of the lighting device 5 in one single operation;
the fan 16, on the contrary, is supported by a bottom wall 26 of the housing body
2 as a separate and independent element.
[0035] Last but not least, the housing body 2 is designed so as to provide an air flow passage
27 for the air flow F all around each at least one cooled lighting module 5.
[0036] The air flow passage 27 connects the second open end 15 of the non-linear channel
12 to the first open end 14 thereof, and flanks the inner surface 19 of the transparent
cover or lens 4 from the top to the bottom thereof.
[0037] Owing to the specific design described above, the heat generated in use by the LEDs
6 is removed immediately and efficiently by means of the radiator element 7 and, above
all, by the air flow F which is directed by the diverter screen element 10 directly
and solely through the radiating fins 20 and along a curved trajectory in a turbulent
motion, which increase the heat exchange coefficient
[0038] Moreover, such heat so efficiently removed is not dispersed within the housing body
2, but is directed by the diverter screen element 10 against the upper section (the
top) of the cover/lens 4; owing to the presence of the air flow passage 27, moreover,
the hot air flow F is made to lap the whole surface of the cover/lens 4 from the top
downwards: such a direction of lapping allows all the eventual drops of humidity to
be efficiently removed since they are made to run along the inner surface 19 towards
the bottom wall 26, were they are collected, if not evaporated before. The heat distribution
obtainable on the lens/cover 4 owing to the diverter screen element 10, finally, has
proved experimentally to be able to efficiently defrost the lens/cover 4 even in cold
winters.
[0039] All the aims of the invention are therefore accomplished.
1. A lighting device (1) for a vehicle such as a headlight or a headlamp, comprising
a cup-shaped housing body (2) designed to be mounted on a vehicle body and at least
one cooled lighting module (5) arranged within the housing body facing a front inlet
opening (3) thereof closed by a transparent cover or lens (4); each cooled lighting
module comprising at least one light source (6) and a radiator element (7) operatively
associated to the at least one light source to remove the heat generated in use by
the at least one light source; wherein:
i)- each cooled lighting module further comprises a diverter screen element (10) assembled
directly onto the radiator element (7), rigid therewith and spaced apart therefrom;
ii)- the diverter screen element delimiting with the radiator element a non-linear
channel (12) arranged immediately at the rear of the at least one light source; and
iii)- the non-linear channel (12) having a first and a second open end (14,15), opposite
to each other; characterized in that
iv)- the non-linear channel (12) is delimited by the diverter screen element within
the housing body;
v)- the second open end (15) faces the transparent cover or lens (4);
vi)- the housing body (2) is designed so as to provide an air flow passage (27) for
an air flow (F) all around the at least one cooled lighting module (5),
vii)- the air flow passage (27) connecting the second open end (15) of the non-linear
channel (12) to the first open end (14) thereof, and flanking an inner surface (19)
of the transparent cover or lens (4) from the top to the bottom thereof, so that
viii)- the air flow (F) is made to lap the whole surface of the cover/lens (4) from
the top downwards allowing eventual drops of humidity to be efficiently removed.
2. A lighting device (1) according to claim 1, characterized in that each cooled lighting module further comprises a fan (16) operatively associated to
the radiator element (7) and designed to generate said air flow (F) within the housing
body to lap against the radiator element, the first open end (14) of the non-linear
channel being arranged immediately in front of the fan (16).
3. A lighting device (1) according to claim 2, characterized in that the fan (16) of each cooled lighting module is arranged at the bottom of the housing
body and at the rear of the respective at least one light source (6), immediately
beneath the first open end (14) of the non-linear channel; the latter extending upwards,
the second open end (15) of the non-linear channel being arranged above the at least
one light source (6).
4. A lighting device (1) according to claim 2 or 3, characterized in that the second open end (15) of the non-linear channel (12) faces an upper portion (18)
of the transparent cover or lens, the non-linear channel (12) and the transparent
cover or lens (4) being designed such that the air flow generated by the fan (16)
laps against the radiator element (7) in a direction of a development in length of
the radiator element, from the bottom upwards and against the inner surface (19) of
the transparent cover or lens from the top downwards.
5. A lighting device (1) according to anyone of the preceding claims, characterized in that the radiator element (7) is provided with a plurality of radiating fins (20) which
extend on a side opposite to the at least one light source and towards the diverter
screen element (10) for almost the full width of the non-linear channel; the radiating
fins extending in length along the full length of (20) the radiator element in a direction
substantially perpendicular to an optical axis (0) of the cooled lighting module.
6. A lighting device (1) according to claim 5, characterized in that the diverter screen element (10) is designed such that a cross section of the first
open end (14) of the non-linear channel is oriented substantially perpendicular to
the optical axis (0) and such that the non-linear channel (12) is curved at right
angle in an upper section (21) thereof so that the cross-section of the second open
(15) end of the non-linear channel is oriented substantially parallel to the optical
axis (0).
7. A lighting device (1) according to claim 5 or 6, characterized in that the diverter screen element (10) is assembled by means of removable retaining elements
(22) directly on a couple of radiating fins (20) arranged adjacent opposite lateral
sides (23) of the radiator element and each flanked towards the opposite lateral sides
of the radiator element by at least another one radiating fin (20).
8. A lighting device (1) according to anyone of the preceding claims, characterized in that the radiator element (7) is made of a metal alloy, preferably of an aluminum based
light alloy, and in that the diverter screen element (10) is made of a synthetic plastic material.
9. Vehicle provided with a lighting device (1) according to anyone of the preceding claims.
1. Beleuchtungsvorrichtung (1) für ein Fahrzeug, wie etwa ein Fahrscheinwerfer oder ein
Hauptscheinwerfer, umfassend einen becherförmigen Gehäusekörper (2), der zur Anbringung
an einer Fahrzeugkarosserie konstruiert ist, und mindestens ein gekühltes Beleuchtungsmodul
(5), das innerhalb des Gehäusekörpers zu einer vorderen Einlassöffnung (3) desselben
weisend angebracht ist, die durch eine transparente Abdeckung oder ein Scheinwerferglas
(4) verschlossen ist; wobei jedes gekühlte Beleuchtungsmodul mindestens eine Lichtquelle
(6) und ein Kühlelement (7) umfasst, das mit der mindestens einen Lichtquelle wirkverbunden
ist, um die im Betrieb von der mindestens einen Lichtquelle erzeugte Wärme abzuführen,
wobei:
i) jedes gekühlte Beleuchtungsmodul ferner ein Ablenkschirmelement (10) umfasst, das
direkt auf dem Kühlelement (7) von diesem beabstandet und mit diesem starr verbunden
montiert ist;
ii) das Ablenkschirmelement mit dem Kühlelement einen nichtlinearen Kanal (12) begrenzt,
der unmittelbar an der Rückseite der mindestens einen Lichtquelle angeordnet ist;
und
iii) der nichtlineare Kanal (12) ein erstes und ein zweites offenes Ende (14, 15)
aufweist, die einander gegenüber liegen;
dadurch gekennzeichnet, dass
iv) der nichtlineare Kanal (12) durch das Ablenkschirmelement innerhalb des Gehäusekörpers
begrenzt ist;
v) das zweite offene Ende (15) zu der transparenten Abdeckung oder dem Scheinwerferglas
(4) weist;
vi) der Gehäusekörper (2) so konstruiert ist, dass er einen Luftkanal (27) für einen
Luftstrom (F) um das gesamte mindestens eine gekühlte Beleuchtungsmodul (5) vorsieht,
vii) der Luftkanal (27) das zweite offene Ende (15) des nichtlinearen Kanals (12)
mit seinem ersten offenen Ende (14) verbindet und eine innere Oberfläche (19) der
transparenten Abdeckung oder des Scheinwerferglases (4) von der Oberseite bis zur
Unterseite desselben flankiert, sodass
viii) der Luftstrom (F) veranlasst wird, die gesamte Oberfläche der Abdeckung/des
Scheinwerferglases (4) von oben nach unten zu überstreichen, was es ermöglicht, eventuelle
Feuchtigkeitstropfen wirksam zu entfernen.
2. Beleuchtungsvorrichtung (1) nach Anspruch 1, dadurch gekennzeichnet, dass jedes gekühlte Beleuchtungsmodul ferner ein Gebläse (16) umfasst, das mit dem Kühlelement
(7) wirkverbunden ist und so konstruiert ist, dass es den Luftstrom (F) innerhalb
des Gehäusekörpers erzeugt, sodass er das Kühlelement überstreicht, wobei das erste
offene Ende (14) des nichtlinearen Kanals unmittelbar vor dem Gebläse (16) angeordnet
ist.
3. Beleuchtungsvorrichtung (1) nach Anspruch 2, dadurch gekennzeichnet, dass das Gebläse (16) jedes gekühlten Beleuchtungsmoduls an der Unterseite des Gehäusekörpers
und an der Rückseite der jeweiligen mindestens einen Lichtquelle (6) unmittelbar unter
dem ersten offenen Ende (14) des nichtlinearen Kanals angeordnet ist; wobei sich letzterer
nach oben erstreckt und das zweite offene Ende (15) des nichtlinearen Kanals oberhalb
der mindestens einen Lichtquelle (6) angeordnet ist.
4. Beleuchtungsvorrichtung (1) nach Anspruch 2 oder 3, dadurch gekennzeichnet, dass das zweite offene Ende (15) des nichtlinearen Kanals (12) zu einem oberen Teil (18)
der transparenten Abdeckung oder des Scheinwerferglases weist, wobei der nichtlineare
Kanal (12) und die transparente Abdeckung oder das Scheinwerferglas (4) so konstruiert
sind, dass der von dem Gebläse (16) erzeugte Luftstrom das Kühlelement (7) in Richtung
einer Abwicklung der Länge des Kühlelements von der Unterseite nach oben und gegen
die Innenfläche (19) der transparenten Abdeckung oder des Scheinwerferglas von oben
nach unten überstreicht.
5. Beleuchtungsvorrichtung (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Kühlelement (7) mit einer Vielzahl von Kühlrippen (20) versehen ist, die sich
auf einer der mindestens einen Lichtquelle gegenüberliegenden Seite und zu dem Ablenkschirmelement
(10) hin über beinahe die gesamte Breite des nichtlinearen Kanals erstrecken; wobei
die Kühlrippen sich in der Länge über die gesamte Länge des (20) Kühlelements in einer
zu einer optischen Achse (O) des gekühlten Beleuchtungsmoduls im Wesentlichen senkrechten
Richtung erstrecken.
6. Beleuchtungsvorrichtung (1) nach Anspruch 5, dadurch gekennzeichnet, dass das Ablenkschirmelement (10) so konstruiert ist, dass ein Querschnitt des ersten
offenen Endes (14) des nichtlinearen Kanals im Wesentlichen senkrecht zu der optischen
Achse (O) ausgerichtet ist, und so, dass der nichtlineare Kanal (12) in seinem oberen
Abschnitt (21) im rechten Winkel gekrümmt ist, sodass der Querschnitt des zweiten
offenen Endes (15) des nichtlinearen Kanals im Wesentlichen parallel zu der optischen
Achse (O) ausgerichtet ist.
7. Beleuchtungsvorrichtung nach Anspruch 5 oder 6, dadurch gekennzeichnet, dass das Ablenkschirmelement (10) mittels entfernbarer Halteelemente (22) direkt auf einigen
Kühlrippen (20) montiert ist, die einander gegenüberliegenden seitlichen Seiten (23)
des Kühlelements benachbart angeordnet sind und jeweils zu den entgegengesetzten seitlichen
Seiten des Kühlelements hin durch mindestens eine weitere Kühlrippe (20) flankiert
sind.
8. Beleuchtungsvorrichtung (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Kühlelement (7) aus einer Metalllegierung, vorzugsweise aus einer leichten Legierung
auf Aluminiumbasis hergestellt ist, und dass das Ablenkschirmelement (10) aus einem
synthetischen Kunststoffmaterial hergestellt ist.
9. Fahrzeug, versehen mit einer Beleuchtungsvorrichtung (1) nach einem der vorhergehenden
Ansprüche.
1. Dispositif d'éclairage (1) pour un véhicule comme un phare ou un projecteur, comprenant
un corps de logement cupuliforme (2) conçu pour être monté sur un corps de véhicule
et au moins un module d'éclairage refroidi (5) agencé à l'intérieur du corps de logement
faisant face à une ouverture d'entrée avant (3) de celui-ci fermée par un couvercle
transparent ou une lentille (4) ; chaque module d'éclairage refroidi comprenant au
moins une source lumineuse (6) et un élément rayonnant (7) associé opérationnellement
à l'au moins une source lumineuse pour enlever la chaleur générée en utilisation par
l'au moins une source lumineuse ; dans lequel :
i)- chaque module d'éclairage refroidi comprend en outre un élément d'écran déflecteur
(10) assemblé directement sur l'élément rayonnant (7), rigide avec celui-ci et espacé
de celui-ci ;
ii)- l'élément d'écran déflecteur délimitant avec l'élément rayonnant un canal non
linéaire (12) agencé immédiatement à l'arrière de l'au moins une source lumineuse
; et
iii)- le canal non linéaire (12) comportant des première et seconde extrémités ouvertes
(14, 15), à l'opposé l'une de l'autre ;
caractérisé en ce que
iv)- le canal non linéaire (12) est délimité par l'élément d'écran déflecteur à l'intérieur
du corps de logement ;
v)- la seconde extrémité ouverte (15) fait face au couvercle transparent ou à la lentille
(4) ;
vi)- le corps de logement (2) est conçu de manière à fournir un passage d'écoulement
d'air (27) pour un écoulement d'air (F) tout autour de l'au moins un module d'éclairage
refroidi (5),
vii)- le passage d'écoulement d'air (27) reliant la seconde extrémité ouverte (15)
du canal non linéaire (12) à la première extrémité ouverte (14) de celui-ci, et bordant
une surface intérieure (19) du couvercle transparent ou de la lentille (4) depuis
le haut jusqu'au bas de celui-ci, de sorte que
viii)- l'écoulement d'air (F) soit constitué pour recouvrir toute la surface du couvercle/de
la lentille (4) depuis le haut vers le bas en permettant à d'éventuelles gouttelettes
d'humidité d'être efficacement enlevées.
2. Dispositif d'éclairage (1) selon la revendication 1, caractérisé en ce que chaque module d'éclairage refroidi comprend en outre un ventilateur (16) associé
opérationnellement à l'élément rayonnant (7) et conçu pour générer ledit écoulement
d'air (F) à l'intérieur du corps de logement pour effleurer l'élément rayonnant, la
première extrémité ouverte (14) du canal non linéaire étant agencée immédiatement
devant le ventilateur (16).
3. Dispositif d'éclairage (1) selon la revendication 2, caractérisé en ce que le ventilateur (16) de chaque module d'éclairage refroidi est agencé au bas du corps
de logement et à l'arrière de l'au moins une source lumineuse (6) respective, immédiatement
au-dessous de la première extrémité ouverte (14) du canal non linéaire ; celui-ci
s'étendant vers le haut, la seconde extrémité ouverte (15) du canal non linéaire étant
agencée au-dessus de l'au moins une source lumineuse (6).
4. Dispositif d'éclairage (1) selon la revendication 2 ou 3, caractérisé en ce que la seconde extrémité ouverte (15) du canal non linéaire (12) fait face à une partie
supérieure (18) du couvercle transparent ou de la lentille, le canal non linéaire
(12) et le couvercle transparent ou la lentille (4) étant conçus de sorte que l'écoulement
d'air généré par le ventilateur (16) effleure l'élément rayonnant (7) dans une direction
d'un développement dans la longueur de l'élément rayonnant, depuis le bas vers le
haut et la surface intérieure (19) du couvercle transparent ou de la lentille depuis
le haut vers le bas.
5. Dispositif d'éclairage (1) selon l'une quelconque des revendications précédentes,
caractérisé en ce que l'élément rayonnant (7) est pourvu d'une pluralité d'ailettes de rayonnement (20)
qui s'étendent sur un côté opposé à l'au moins une source lumineuse et vers l'élément
d'écran déflecteur (10) sur presque toute la largeur du canal non linéaire ; les ailettes
de rayonnement s'étendant en longueur sur toute la longueur de l'élément rayonnant
(20) dans une direction sensiblement perpendiculaire à un axe optique (O) du module
d'éclairage refroidi.
6. Dispositif d'éclairage (1) selon la revendication 5, caractérisé en ce que l'élément d'écran déflecteur (10) est conçu de sorte qu'une coupe transversale de
la première extrémité ouverte (14) du canal non linéaire soit orientée sensiblement
perpendiculairement à l'axe optique (O) et de sorte que le canal linéaire (12) soit
incurvé à angle droit dans une section supérieure (21) de celui-ci de sorte que la
coupe transversale de la seconde extrémité ouverte (15) du canal non linéaire soit
orientée sensiblement parallèlement à l'axe optique (O).
7. Dispositif d'éclairage (1) selon la revendication 5 ou 6, caractérisé en ce que l'élément d'écran déflecteur (10) est assemblé au moyen d'éléments de retenue amovibles
(22) directement sur une paire d'ailettes de rayonnement (20) agencées adjacentes
à des côtés latéraux opposés (23) de l'élément rayonnant et chacune bordée vers les
côtés latéraux opposés de l'élément rayonnant par au moins une autre ailette de rayonnement
(20).
8. Dispositif d'éclairage (1) selon l'une quelconque des revendications précédentes,
caractérisé en ce que l'élément rayonnant (7) est constitué d'un alliage métallique, de préférence d'un
alliage léger d'aluminium, et en ce que l'élément d'écran déflecteur (10) est constitué d'une matière plastique synthétique.
9. Véhicule pourvu d'un dispositif d'éclairage (1) selon l'une quelconque des revendications
précédentes.