OVEN LIGHT
20170059143 ยท 2017-03-02
Inventors
Cpc classification
F21V29/87
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/0044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/85
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C15/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/307
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B6/6444
ELECTRICITY
International classification
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/77
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/85
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An oven light including an attachment sleeve which is attachable in a recess of a cooking cavity wall; a light permeable cover which closes the recess of the cooking cavity wall; an illuminant which is arranged behind the light permeable cover and whose emitted light is used for illuminating the cooking cavity, wherein the illuminant is formed by at least one LED which emits light in a light cone (K), wherein the LED is arranged on a cooling element which dissipates operating heat of the LED, wherein a heat barrier is arranged between the cover and the LED and protects the LED from a cooking temperature, wherein the light cone penetrates an arrangement plane of the heat barrier, characterized in that the heat barrier includes at least one in particular light permeable heat shield with an opening through which light of the LED propagates in a direction towards the cover.
Claims
1. An oven light comprising: an attachment sleeve which is attachable in a recess of a cooking cavity wall; a light permeable cover which closes the recess of the cooking cavity wall; an illuminant which is arranged behind the light permeable cover and whose emitted light is used for illuminating the cooking cavity, wherein the illuminant is formed by at least one LED which emits light in a light cone, wherein the LED is arranged on a cooling element which dissipates operating heat of the LED, wherein a heat barrier is arranged between the cover and the LED and protects the LED from a cooking temperature, wherein the light cone penetrates an arrangement plane of the heat barrier, and wherein the heat barrier includes at least one light permeable heat shield with an opening through which light of the LED propagates in a direction towards the cover.
2. The oven light according to claim 1, wherein the opening of the light permeable heat shield essentially corresponds to a contour of the light cone in the arrangement plane of the heat shield with respect to shape or width.
3. The oven light according to claim 2, wherein the heat barrier includes plural disc shaped heat shields which are arranged between the LED and the cover and which respectively have a different distance from the LED, and wherein the opening of each heat shield essentially corresponds to the contour of the light cone in a respective arrangement plane with respect to shape or width.
4. The oven light according to claim 3, wherein the heat shields are connected with each other and the heat barrier includes support devices for the cooling element at an end of the heat barrier oriented away from the cover.
5. The oven light according to claim 1, wherein an opening proximal to the LED forms a support for a reflector and/or optics.
6. The oven light according to claim 1, wherein the attachment sleeve includes support devices for the heat barrier.
7. The oven light according to claim 1, wherein each heat shield is formed from a highly temperature resistant plastic material.
8. The oven light according to claim 1, wherein each heat shield is made from a mineral material.
9. The oven light according to claim 7, wherein a surface of the heat shield oriented towards the cover is configured heat reflecting.
10. The oven light according to claim 1, wherein the cover, the attachment sleeve, the heat barrier, the LED and the cooling element form a preassembled component.
11. The oven light according to claim 1, wherein the attachment sleeve has a light reflecting inner surface.
12. The oven light according to claim 8, wherein the mineral material is mica.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] An improved understanding of the invention and additional advantages can be derived from the subsequent description of an advantageous embodiment with reference to drawing figures:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027] In the figures an oven light is designated overall with the reference numeral 10.
[0028] As illustrated in the exploded view in
[0029] Thus, the attachment sleeve 11 has first retaining devices 21 and positioning pins 22 at ends oriented towards the LED 15. The first retaining devices 21 are used for fixating a heat barrier 14 at the attachment sleeve 11. The heat barrier 14 includes positioning openings 23 that are associated with the positioning pins 22. The positioning pins 22 engage the positioning openings 23 in order to fixate the heat barrier 14 at the attachment sleeve 11. The retaining devices 21 fixate the heat barrier 14 at the attachment sleeve 11.
[0030] The oven light 10 furthermore includes a cooling element 24 on which the LED 15 is arranged with its circuit board. The cooling element 24 is used for dissipating operating heat from the LED 15 to the ambient air. In order to assure good light yield and in order to influence the light emitted by the LED 15 a reflector 25 and an optical element 26 are provided.
[0031] The heat barrier 14 includes 3 heat shields that are arranged offset from each other and which are designated with reference numerals 27-29. The heat shields 27 and 28 and 28 and 29 are configured pane shaped and attached at one another through spacers 30 so that a respective air gap 31 is formed between the first heat shield 27 and the second heat shield 28 and between the second heat shield 28 and the third heat shield 29.
[0032] Eventually the heat barrier 14 includes second retaining elements 32 at its end oriented towards the LED 15 wherein the second retaining elements can for example be configured as interlocking elements. The interlocking elements are used for fixating the cooling element 24 at the heat barrier 14, wherein the LED circuit board is supported between the heat barrier 14 and the cooling element 24. Thus, a separate attachment of the LED circuit board at the cooling element 24 is not required.
[0033] In the first embodiment of the invention according to
[0034]
[0035] An essential element of the oven light 10 according to the invention is a novel configuration of the heat barrier 14. This portion of the invention is now described with reference to
[0036] LEDs essentially provide oriented light so that the LED 15 emits a cone shaped beam bundle with a defined opening angle. The light cone K in
[0037] Each heat shield 27 through 29 is arranged respectively in an arrangement plane E1-E3 and the non illustrated cover 12. The light cone K passes through each of these arrangement planes E1-E3, wherein its enveloping lines define surfaces in the respective plane E1-E3 that have approximately identical contours but different sizes. The respective surface is an image of the light beam contour in the respective plane E1-E3.
[0038] In order to provide unimpeded light passage through the heat shields 27-29 the openings 35-37 are provided in the respective heat shield 27-29. Thus, the opening 35-37 of each heat shield 27-29 with respect to shape and/or width essentially corresponds to the contour of the light cone K in the respective arrangement plane E1-E3. Put differently a surface is cut out in a shape of an opening 35-37 in the respective heat shields 27-29 wherein the opening is defined by the enveloping lines which intersect the respective arrangement plane E1-E3.
[0039] With an increasing distance of the heat shield 27-29 from the LED 15 the respective openings 35-37 become larger. Accordingly the opening 35 of the first heat shield 27 is the smallest opening, the opening 36 of the second heat shield 28 is larger corresponding to the expanding light cone. In the embodiment according to
[0040] When the respective opening 35-37 in the respective arrangement plane E1-E3 corresponds to the contour of the light cone K in the respective arrangement plane E1-E3 also the edge beams of the light cone K will run freely through the respective openings 35-37. When statements are made that the openings with respect to contour and/or width essentially correspond to the contour of the light cone in the respective arrangement plane, this means that the applicant has certain latitude when practicing the invention. On the one hand side it is conceivable that the openings 35-37 are slightly larger than required corresponding to the dimensions of the light cone K in the respective arrangement plane E1-E3. This helps to compensate for production tolerances in the LEDs 15 which can lead to slightly varying opening angles of the light cones K. Furthermore this helps to counter arrangement tolerances between the LED 15 and the heat shields 27-29 in the sense of a maximum light yield.
[0041] By the same token it is conceivable, however, that the openings 35-37 are configured narrower. Thus, a loss of light power occurs through shadowing of the peripheral beams of the light cone K. In turn, however, the heat shielding is improved. It is also well known that LEDs 15 do not necessarily emit light in a shape of a circular cone so that deviations from the cone contour of the LED 15 facilitate influencing the contour of the actually exiting light cone K. When using typical LEDs 15 which emit light in a shape of a circular cone deviations from the circular cone contour can be used to influence a desired exit contour of the light cone K.
[0042] It is apparent from
[0043] It is provided to produce the heat shields 27-29 from a material with low heat conductivity, so that a transfer of heat radiation from a heat shield 27 through 29 to another heat shield 27-29 is as small as possible. High temperature resistant plastic materials, for example from the group of liquid crystal polymers have proven suitable. Mineral materials, however, are particularly suitable, in particular layered minerals for example mica. In addition to low heat conductivity of the materials it is furthermore provided that air circulates along the gaps 31 between the heat shields 27-29 wherein the air is also used for heat dissipation. Eventually heat shielding can be significantly improved in that surfaces of the heat shields 27-29 oriented towards the cover 12 are provided with a heat reflecting coating.
[0044] To sum it all up the advantage of all embodiments of the invention is that contrary to the prior art stacking plural pane shaped heat shields 27-29 behind one another in different arrangement planes, E1-E3 minimizes the heat radiation emitted by the cooking cavity in view of maximum light yield. This is achieved by the invention in that each heat shield 27-29 is only opened far enough as required by the light cone K emitted by the LED 15, whereas the remaining surface portions are closed.
[0045] The embodiments of the oven light 10 in
[0046] Using mineral materials for producing the heat shields 27-29 necessitates certain configurative changes due to the material properties which are considered in the second embodiment according to
[0047]
[0048] It is illustrated based on
REFERENCE NUMERALS AND DESIGNATIONS
[0049] 10 oven light [0050] 11 attachment sleeve [0051] 12 light permeable cone [0052] 13 cover glass [0053] 14 heat barrier [0054] 15 LED [0055] 16 external thread [0056] 17 shaft [0057] 18 protrusion [0058] 19 interlocking lobe [0059] 20 collar [0060] 21 first retaining device [0061] 22 positioning pin [0062] 23 positioning opening [0063] 24 cooling element [0064] 25 reflector [0065] 26 optical element [0066] 27 first heat shield [0067] 28 second heat shield [0068] 29 third heat shield [0069] 30 spacer [0070] 31 air gap [0071] 32 second retaining device [0072] 33 support clamp [0073] 34 optics support [0074] 35 openings of 27 [0075] 36 opening of 28 [0076] 37 opening of 29 [0077] 38 annular wall [0078] 39 support flange [0079] 40 annular flange [0080] 41 bar [0081] K light cone [0082] L light beam [0083] dL direct light [0084] iL indirect light [0085] W heat radiation [0086] E1-E3 arrangement planes