Technical Field
[0001] The present description relates to lighting devices.
[0002] One or more embodiments may refer to lighting devices employing electrically-powered
solid-state lighting sources, e.g. LED sources.
[0003] One or more embodiments may find employment in LED-based high-power lighting systems,
e.g. for street lighting applications.
Technological Background
[0004] In operation, lighting devices employing solid-state light radiation sources, e.g.
comprising a support board "populated" with an array of LED sources, produce a certain
amount of heat which may be considerable in high-power light radiation sources.
[0005] Therefore, measures must be adopted to facilitate heat dissipation, enabling i.a.
the preservation of the lighting device performances in time.
[0006] In this respect, a widespread solution consists in coupling heat sinks to the light
radiation sources mounted on the support boards.
[0007] This solution has been commonly used for more traditional light radiation sources,
e.g. halogen lamps or high-intensity discharge (HID) lamps. These lighting sources,
however, are adapted to withstand rather high operating temperatures.
[0008] In the case of LED light radiation sources, in order to dissipate the heat generated
by LEDs while keeping them at the correct temperature, the support board carrying
the LEDs may be coupled to a thermally conductive support adapted to dissipate heat
(e.g. being configured as a finned heat sink) or, generally speaking, to remove heat,
by transferring it towards a further component adapted to exchange energy with media
having a lower temperature (e.g. radiators or the like).
[0009] These solutions may however be difficult to implement.
[0010] More specifically, the invention relates to a lighting device having the features
set forth in the preamble of claim 1, which is known, e.g. from
EP 1 741 975 A2. Also documents
US 2009/279301 A1 and
EP 2 833 058 A1 are of interest for the invention.
Object and Summary
[0011] One or more embodiments aim at providing a solution enabling the dissipation of the
heat produced by light radiation sources such as LED sources, while overcoming the
previously outlined drawbacks.
[0012] According to one or more embodiments, said object may be achieved thanks to a lighting
device having the features specifically set forth in claim 1 that follows.
[0013] The claims are an integral part of the technical teaching provided herein with reference
to the embodiments.
[0014] One or more embodiments may envisage dissipating the heat produced by a light radiation
source such as a LED source by resorting to an active component (such as a fan or
a blower) adapted to act as a ventilation aeriform (e.g. air) pumping source, and
sized so as to be arranged in the vicinity of the light radiation source(s), e.g.
on the support board (e.g. a Printed Circuit Board, PCB) accommodating the light radiation
source(s).
[0015] In one or more embodiments, said active component may be small-sized and adapted
to be mounted onto the support board in a similar way as the light radiation sources
are mounted thereon (e.g. via SMD mounting technologies).
Brief Description of the Figures
[0016] One or more embodiments will now be described, by way of non-limiting example only,
with reference to the annexed Figures, wherein:
- Figure 1 is a perspective view of a lighting device according to one or more embodiments,
and
- Figure 2 is a partially cutaway perspective view of a lighting device according to
embodiments.
[0017] It will be appreciated that, for clarity and simplicity of illustration, the Figures
may not be all drawn to the same scale.
Detailed Description
[0018] In the following description, various specific details are given to provide a thorough
understanding of various exemplary embodiments according to the present specification.
The embodiments may be practiced without one or several specific details, or with
other methods, components, materials, etc. In other instances, well-known structures,
materials, and operations are not shown or described in detail to avoid obscuring
various aspects of the embodiments.
[0019] Reference throughout this specification to "one embodiment" or "an embodiment" means
that a particular feature, structure, or characteristic described in connection with
the embodiment is included in at least one embodiment. Thus, the possible appearances
of the phrases such as "in one embodiment" or "in an embodiment" in various places
throughout this specification are not necessarily all referring to the same embodiment.
Furthermore, particular features, structures or characteristics may be combined in
any suitable manner in one or more embodiments.
[0020] The headings provided herein are for convenience only, and therefore do not interpret
the extent of protection or scope of the embodiments.
[0021] In the Figures, reference 10 denotes a lighting device comprising a casing 12, e.g.
of a metal or moulded plastic material, optionally having good heat-dissipating features.
[0022] In one or more embodiments, casing 12 may have a general bowl-like shape, so as to
be adapted to accommodate, e.g. centrally, a support board 14 e.g. substantially similar
to a Printed Circuit Board (PCB).
[0023] In one or more embodiments, board 14 may have a circular shape, adapted to be mirrored
by a substantially corresponding shape of casing 12. Of course, the choice of such
shape does not limit the embodiments in any way.
[0024] In one or more embodiments, support board 14 may host at least one light radiation
source, e.g. an array of electrically-powered light radiation sources 16.
[0025] In one or more embodiments, the light radiation source(s) 16 may comprise solid-state
light radiation sources, e.g. LED sources.
[0026] In one or more embodiments, the light radiation source (s) may be high-power sources,
so that they may be employed e.g. in street lighting applications: the reference to
this applicability must not however be construed as limiting the embodiments.
[0027] Figure 1 also shows, mounted onto a further board 18 e.g. in the shape of a crescent,
electronic components 20 adapted to perform supply and/or control functions on source(s)
16.
[0028] In one or more embodiments, casing 12 may be externally provided with fins 120, adapted
to favour heat dissipation from casing 12 towards the external environment.
[0029] In one or more embodiments, as exemplified in Figure 2, casing 12 may be associated
with a (e.g. finned) heat sink 140, which in one or more embodiments is adapted to
be placed in (wide) surface contact with board 14, so as to favour heat dissipation
from board 14 itself.
[0030] In one or more embodiments, device 10 may comprise one or more aeriform (e.g. air)
pumping sources 22, adapted to act onto board 14 in the vicinity of light radiation
source(s) 16, in order to create a ventilation flow as schematically represented by
arrows F in Figure 2.
[0031] In one or more embodiments, pumping source(s) 22 may be mounted onto support board
14 together with radiation source(s) 16.
[0032] In one or more embodiments, pumping source(s) 22 may be interspersed, e.g. at regular
positions, in the array of light radiation sources 16.
[0033] For example, Figure 1 shows a possible embodiment having an array comprising several
tens of light radiation sources 16, arranged according to a general octagonal configuration.
[0034] Four pumping sources 22 may be provided and distributed around the central area of
the array of light radiation sources 16, so that each pumping source 22 "covers" about
one quarter of the arrayed light radiation sources 16.
[0035] In one or more embodiments, source(s) 22 are small-sized (both in the case of a fan
and in the case of an e.g. centrifugal blower).
[0036] Said sources may be mounted onto board 14 for example via technologies (e.g. SMD
technologies) substantially similar to those used to mount sources 16 onto board 14.
[0037] As exemplified in Figure 2, in one or more embodiments casing 12 (wherein, thanks
to the action of sources 22, an ventilation flow F is produced) may host a reflector,
and/or may be closed at the distal end thereof by a closing screen 24, through which
the light radiation of sources 16 is projected towards the outside: the inner volume
of casing 12 may thus be a closed space, within which the ventilation flow F takes
place.
[0038] As visible e.g. in Figure 2, the reflector may be received within casing 12 with
a portion of casing 12 being external to the reflector. One or more embodiments may
envisage, at the "proximal" light input end and/or at the "distal" light output end
with reference to the reflector, the presence of ventilation openings or passageways,
through which air may flow between the inner space and the outer space of the reflector,
the latter being the portion of casing 12 outside the reflector.
[0039] One or more embodiments may therefore envisage a solution wherein the light radiation
source(s) 16 and the aeriform pumping source(s) 22 are arranged on support board 14,
such pumping sources 22 being adapted to act directly on light radiation source(s)
16 and not on a heat sink.
[0040] One or more embodiments may therefore operate according to a principle different
from transferring heat from sources 16 towards board 14 and from the latter towards
a heat sink such as 140.
[0041] It was observed that, in the implementation of said traditional, so to say "static"
system, heat tends to form layers in the area surrounding source (s) 16, thus originating
a mechanism which does not favour heat dissipation.
[0042] Thanks to the presence of pumping source(s) 22, one or more embodiments involve moving
the air in the vicinity of source(s) 16, therefore transferring heat from the close
neighbourhood of board 14 to the other regions of casing 12, e.g. towards screen 24.
[0043] The latter may optionally be a diffusive screen, or simply a screen adapted to protect
device 10 against the penetration of external agents (e.g. having an IP protection
degree).
[0044] Thus, in one or more embodiments, thermal energy may be transferred to the outside:
- via a heat sink, such as heatsink 140 optionally coupled to board 14,
- via the walls of casing 12 (which may be finned, as exemplified at 120 in Figure 1),
- via closing screen 24.
[0045] In one or more embodiments, the mechanism described herein - with an active role
played by ventilation sources 22 - may therefore be used either alone or in hybrid
solutions, wherein said mechanism may be added to traditional dissipating mechanisms
(e.g. a finned heat sink associated with board 14, a finned casing, etc.) and may
cooperate therewith.
[0046] In one or more embodiments, ventilation sources 22 are adapted to be mounted onto
board 14 in the same way as the other electrical components of device 10, in conditions
which are practically invisible from the outside.
[0047] This solution for transferring heat towards the outside is particularly beneficial
e.g. in ceiling installations, e.g. with devices 10 adapted to act as downlights,
in conditions wherein the convective action of a heatsink such as heatsink 140 may
be poor.
[0048] One or more embodiments may therefore be employed in environments which do not in
themselves favour heat dissipation towards the outside, e.g. in the case of a device
10 mounted into a false ceiling.
[0049] In one or more embodiments, source(s) 22 may comprise (micro)fans or micro(blowers)
available e.g. from SEPA Europe GmbH of Breisgau in Eschbach (Germany) or from Sunonweath
Electric Machine Industry Co., Ltd. of Kaohsiung City, Taiwan.
[0050] Without prejudice to the basic principles, the implementation details and the embodiments
may vary, even appreciably, with respect to what has been described herein by way
of non-limiting example only, without departing from the extent of protection.
[0051] The extent of protection is defined by the annexed claims.
1. A lighting device (10), including:
- a support board (14),
- at least one electrically-powered light radiation source (16) arranged on said support
board (14),
- at least one aeriform pumping source (22) active on said board (14) in the vicinity
of said at least one radiation source (16),
- a casing (12) surrounding said at least one light radiation source (16), said at
least one pumping source (22) activatable to promote air flow within said casing (12),
wherein said casing (12) includes a reflector surrounding said at least one light
radiation source (16),
characterized in that said at least one light radiation source (16) and said at least one pumping source
(22) are arranged in said reflector.
2. The lighting device (10) of claim 1, wherein said at least one pumping source (22)
is arranged on said support board (14).
3. The lighting device (10) of claim 1 or claim 2, including an array of electrically
powered light radiation sources (16) with said at least one pumping source (22) interspersed
in said array.
4. The lighting device (10) of claim 3, including a plurality of said pumping sources
(22) interspersed in said array.
5. The lighting device (10) of any of the previous claims, wherein said at least one
pumping source (22) includes a fan or a blower.
6. The lighting device (10) of any of the previous claims, wherein said at least one
pumping source (22) is mounted on said board (14) by SMD mounting.
7. The lighting device (10) of any of the previous claims, including a heat sink (140)
coupled with said support board (14) opposed said at least one light radiation source
(16).
8. The lighting device (10) of any of the previous claims, including a casing (12) of
a finned (120) type.
9. The lighting device (10) of claim 1, wherein said casing (12) includes a front screen
(24) closing said casing (12), wherein said casing (12) and said front screen (24)
provide a closed space around said at least one light radiation source (16).
10. The lighting device (10) of claim 9, including said front screen (24) closing said
reflector.
11. The lighting device (10) of any of claim 1 or claim 10, including a heat sink (140)
coupled with said reflector opposed said at least one light radiation source (16).
12. The lighting device (10) of any of claims 1, 10 and 11, including, at the input and/or
output end of the reflector, ventilation passageways between the inner space and the
outer space of the reflector.
1. Beleuchtungsvorrichtung (10), beinhaltend:
- eine Trägerplatte (14),
- zumindest eine elektrisch betriebene Lichtstrahlungsquelle (16), die auf der Trägerplatte
(14) angeordnet ist,
- zumindest eine Luftpumpenquelle (22), die auf der Platte (14) in der Nähe der zumindest
einen Strahlungsquelle (16) aktiv ist,
- ein Gehäuse (12), welches die zumindest eine Lichtstrahlungsquelle (16) umgibt,
wobei die zumindest eine Pumpenquelle (22) aktivierbar ist, um einen Luftstrom innerhalb
des Gehäuses (12) zu fördern, wobei das Gehäuse (12) einen Reflektor beinhaltet, welcher
die zumindest eine Lichtstrahlungsquelle (16) umgibt,
dadurch gekennzeichnet, dass die zumindest eine Lichtstrahlungsquelle (16) und die zumindest eine Pumpenquelle
(22) in dem Reflektor angeordnet sind.
2. Beleuchtungsvorrichtung (10) nach Anspruch 1, wobei die zumindest eine Pumpenquelle
(22) auf der Trägerplatte (14) angeordnet ist.
3. Beleuchtungsvorrichtung (10) nach Anspruch 1 oder Anspruch 2, einschließlich einer
Anordnung von elektrisch betriebenen Lichtstrahlungsquellen (16) mit der zumindest
eine Pumpenquelle (22) durchsetzt in der Anordnung.
4. Beleuchtungsvorrichtung (10) nach Anspruch 3, einschließlich einer Vielzahl von den
Pumpenquellen (22) durchsetzt in der Anordnung.
5. Beleuchtungsvorrichtung (10) nach irgendeinem der vorhergehenden Ansprüche, wobei
die zumindest eine Pumpenquelle (22) einen Ventilator oder ein Gebläse beinhaltet.
6. Beleuchtungsvorrichtung (10) nach irgendeinem der vorhergehenden Ansprüche, wobei
die zumindest eine Pumpenquelle (22) auf der Platte (14) durch SMD-Montage montiert
ist.
7. Beleuchtungsvorrichtung (10) nach irgendeinem der vorhergehenden Ansprüche, einschließlich
einer Wärmesenke (140), die mit der Trägerplatte (14) gegenüber der zumindest einen
Lichtstrahlungsquelle (16) gekoppelt ist.
8. Beleuchtungsvorrichtung (10) nach irgendeinem der vorhergehenden Ansprüche, einschließlich
eines Gehäuses (12) von einer gerippten (120) Art.
9. Beleuchtungsvorrichtung (10) nach Anspruch 1, wobei das Gehäuse (12) einen Frontbildschirm
(24) beinhaltet, welcher das Gehäuse (12) verschließt, wobei das Gehäuse (12) und
der Frontbildschirm (24) einen geschlossenen Raum um die zumindest eine Lichtstrahlungsquelle
(16) bereitstellen.
10. Beleuchtungsvorrichtung (10) nach Anspruch 9, einschließlich des Frontbildschirms
(24), welcher den Reflektor einschließt.
11. Beleuchtungsvorrichtung (10) nach irgendeinem der Ansprüche 1 oder 10, einschließlich
einer Wärmesenke (140), die mit dem Reflektor gegenüber der zumindest einen Lichtstrahlungsquelle
(16) gekoppelt ist.
12. Beleuchtungsvorrichtung (10) nach irgendeinem der Ansprüche 1, 10 und 11, einschließlich,
bei dem Eingangs- und/oder dem Ausgangsende des Reflektors, Ventilationsdurchgangswegen
zwischen dem inneren Raum und dem äußeren Raum des Reflektors.
1. Un dispositif d'éclairage (10), comprenant :
- une carte support (14),
- au moins une source de rayonnement lumineux alimentée électriquement (16) agencée
sur ladite carte support (14),
- au moins une source de pompage gazeux (22) active sur ladite carte (14) au voisinage
de ladite au moins une source de rayonnement (16),
- un boitier (12) entourant ladite au moins une source de rayonnement lumineux (16),
ladite au moins une source de pompage (22) étant activable pour entrainer un flux
d'air à l'intérieur dudit boitier (12), ledit boitier (12) comprenant un réflecteur
entourant ladite au moins une source de rayonnement lumineux (16),
caractérisé en ce que ladite au moins une source de rayonnement lumineux (16) et ladite au moins une source
de pompage (22) sont agencées dans ledit réflecteur.
2. Le dispositif d'éclairage (10) de la revendication 1, dans lequel ladite au moins
une source de pompage (22) est agencée sur ladite carte support (14).
3. Le dispositif d'éclairage (10) de la revendication 1 ou de la revendication 2, comprenant
un réseau de sources de rayonnement lumineux alimentées électriquement (16) avec ladite
au moins une source de pompage (22) intercalée dans ledit réseau.
4. Le dispositif d'éclairage (10) de la revendication 3, comprenant une pluralité desdites
sources de pompage (22) intercalées dans ledit réseau.
5. Le dispositif d'éclairage (10) de l'une des revendications précédentes, dans lequel
ladite au moins une source de pompage (22) comprend un ventilateur ou une soufflerie.
6. Le dispositif d'éclairage (10) de l'une des revendications précédentes, dans lequel
ladite au moins une source de pompage (22) est montée sur ladite carte (14) par montage
CMS.
7. Le dispositif d'éclairage (10) de l'une des revendications précédentes, comprenant
un drain thermique (140) couplé à ladite carte support (14) à l'opposé de ladite au
moins une source de rayonnement (16).
8. Le dispositif d'éclairage (10) de l'une des revendications précédentes, comprenant
un boitier (12) d'un type à ailettes (120).
9. Le dispositif d'éclairage (10) de la revendication 1, dans lequel ledit boitier (12)
comprend un écran frontal (24) fermant ledit boitier (12), ledit boitier (12) et ledit
écran frontal (24) formant un espace clos autour de ladite au moins une source de
rayonnement lumineux (16).
10. Le dispositif d'éclairage (10) de la revendication 9, incluant la fermeture dudit
réflecteur par ledit écran frontal (24).
11. Le dispositif d'éclairage (10) de l'une d'entre la revendication 1 ou la revendication
10, comprenant un drain thermique (140) couplé audit réflecteur à l'opposé de ladite
au moins une source de rayonnement lumineux (16).
12. Le dispositif d'éclairage (10) de l'une des revendications 1, 10 et 11, comprenant,
à l'extrémité d'entrée et/ou de sortie du réflecteur, des passages de ventilation
entre le volume intérieur et le volume extérieur du réflecteur.