A LIGHT ASSEMBLY AND A VEHICLE DESIGN ELEMENT INCLUDING SUCH A LIGHT ASSEMBLY
20180202626 ยท 2018-07-19
Inventors
- Sam THODAY (Sheidow Park, South Australia, AU)
- Brad GIBSON (Calista, Western Australia, AU)
- Daniel FLYNN (Morphett Vale, South Australia, AU)
- Simon BELCHER (South Plympton, South Australia, AU)
Cpc classification
G09F13/04
PHYSICS
F21S43/249
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/243
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R13/005
PERFORMING OPERATIONS; TRANSPORTING
F21S43/241
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B6/0021
PHYSICS
G09F13/06
PHYSICS
F21S43/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2104/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S43/241
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R13/00
PERFORMING OPERATIONS; TRANSPORTING
F21S43/243
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/249
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light assembly for a vehicle design element includes a light guide, the light guide including a plurality of light receiving surfaces; and a plurality of light sources, the light sources being arranged adjacent to and directed towards respective light receiving surfaces, where the light guide is shaped to define an annular base lying in a first plane and at least one circumferential flange or cylinder disposed generally orthogonal, or inwardly or outwardly splayed to the first plane, the flange or cylinder extending away from the annular base towards a viewable annular light exit, the base including a plurality of shaped elements extending away from the first plane, each shaped element defining one of the light receiving surfaces for receiving incident light from a respective adjacent light source, where a plurality of the light receiving surfaces are orientated substantially transverse to the base.
Claims
1-17. (canceled)
18. A light assembly for a vehicle design element, the assembly comprising: a light guide, the light guide comprising a plurality of light receiving surfaces; and a plurality of light sources comprising light emitting diodes (LEDs) on a circuit board, the light sources being arranged adjacent to and directed towards respective light receiving surfaces, wherein the light guide is shaped to define an annular base lying in a first plane and at least one circumferential flange or cylinder disposed generally orthogonal, or inwardly or outwardly splayed to the first plane, the flange or cylinder extending away from the annular base towards a viewable annular light exit, and the base comprises a plurality of shaped elements in form of disconnections, recesses, holes or wedge-shaped protrusions, extending away from the first plane, each shaped element defining one of the light receiving surfaces for receiving incident light from a respective adjacent light source, and a plurality of the light receiving surfaces are orientated substantially transverse to the base.
19. The light assembly of claim 18, wherein the light guide transitions from the base to the flange or cylinder, sharply with a radius of less than 10% of a height of the flange or cylinder, the sharp transition facilitating internal reflection of light emitted from the light sources.
20. The light assembly of claim 18, wherein the light guide is shaped to comprise two spaced-apart circumferential flanges, each flange extending away from the annular base towards a viewable annular light exit, the two viewable annular light exits radially spaced apart from each other.
21. The light assembly of claim 18, wherein the light guide is shaped to comprise two spaced apart circumferential cylinders, each cylinder extending away from the annular base towards a viewable annular light exit, the two viewable light exits radially spaced apart from each other.
22. The light assembly of claim 18, wherein the circumferential flanges or cylinders are non-continuous to provide disconnections such that circumferential light entry points at disconnected surfaces on the circumference of the flanges or cylinders are provided.
23. The light assembly of claim 18, wherein the annular light exit comprises a plurality of steps, the steps promoting internal reflection.
24. The light assembly of claim 18, wherein the light guide is substantially transparent and without any visible discrete optic features in an un-lit state, while being diffusive in a lit state.
25. The light assembly of claim 18, wherein the light guide is substantially transparent and non-diffusive in both a lit and un-lit state, while the circumferential flanges or cylinders are substantially transparent in an un-lit state, while being diffusive in a lit state.
26. The light assembly of claim 18, wherein a housing is provided behind the light guide, which at least one of incorporates transitional reflective optics that vary the amount of light reflected back into the circumferential flanges or cylinders, and comprises a black material.
27. The light assembly of claim 18, wherein the light guide also features a bridging member, manufactured from the same material as the light guide, which is located inside and bisects the substantially annular shape of the light guide, and the bridging member has first and second ends which are disposed as light receiving surfaces and a light emitting surface along its major surface.
28. The light assembly of claim 27, wherein the bridging member has a substantially trapezoidal cross-section.
29. The light assembly of claim 18, wherein at least one of the printed circuit board has an annular shape, and the printed circuit board is coated white around the plurality of LEDs.
30. The light assembly of claim 28, wherein the printed circuit board comprises additional light sources positioned adjacent to the light receiving surfaces to direct light into the bridging member.
31. The light assembly of claim 27, wherein the bridging member is used in conjunction with a garnish, the garnish comprising cut-outs in the form of lettering or a logo.
32. The light assembly of claim 18, wherein the lens has an outer component made from a clear material, and an inner component which is at least one of over moulded on the inner surface of the outer component and made from opaque material.
33. The assembly of claim 15, wherein at least one of the inner or outer component joins to the housing, and the inner component sits on top of the printed circuit board and the shaped elements.
34. A vehicle design element including a light assembly according to claim 18.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0040] Embodiments of the present invention will be discussed with reference to the accompanying drawings wherein:
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[0060] In the following description, like reference characters designate like or corresponding parts throughout the figures.
DESCRIPTION OF EMBODIMENTS
[0061] Referring now to
[0062] Referring now to
[0063] Referring now to
[0064] Whilst the flanges 24, 25 appear perpendicular to the base 21, equally they could be splayed inwardly or outwardly without changing the functionality of the light guide 20. It can be seen that the light guide transitions from the base to the flanges sharply, the sharp transition facilitating internal reflection of light through the light guide. In the preferred embodiment, this transition would have a radius of less than 2% of the height of the flange, however it is appreciated that an alternative embodiment with a transition radius of less than 10% of the height of the flange would still produce desirable results.
[0065] In the case of the circumferential cylinders, these could be placed at different angles to the annular base, dependant on the position of final light output required and inner and outer cylinders can have various configurations of diameters.
[0066] The wedge shaped protrusions 22 are equally spaced around the base 21 in pairs, with each pair having their respective light receiving surfaces 23 adjacent one another, and wherein in use, each light receiving surface 23 is orientated substantially orthogonal to the base 21 and will receive light from one of the plurality of LEDs, which are positioned adjacent to said receiving surfaces 23.
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[0070] The lens 40 is made of an outer component 41 and an inner component 42. The outer component 41 may be manufactured from a clear polycarbonate (PC) and the inner component 42 may be overmolded on to the inner surface of the outer component 41, using opaque PC. The lens inner component 42 material optic properties can be selected to increase or decrease the reflected light back into the light guide 20. A highly reflective material will increase the final light output level, a non-reflective material will reduce the overall final light output level of the light assembly. The lens 40 is configured such that the outer or inner component 41 and 42 joins to the housing 10 and the inner component 42 sits over the top of the PCB 30 and wedge shaped protrusions 22 such that it masks the PCB, and LEDs from being directly viewable through the lens 40.
[0071] Referring now to
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[0073] Referring now to
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[0075] Referring now to
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[0077] The light guide 120 is referred to as a particle filled lens to distinguish it from a crystal clear lens (or light guide) used in the manufacture of a traditional light guide. In a traditional light guide, light is transmitted from a light source to a point at some distance from the source with minimal loss by total internal reflection.
[0078] In this particle filled light guide 120, the transmission of light from the light source to the light exiting surfaces 126 and 127, is achieved through a combination of the use of internal reflection and light scattering particles. Internal reflection is encouraged through the geometry of the light guide 120, wherein light rays enter the light guide through the plurality of light receiving surfaces 123, and are guided through the wedge shaped protrusions 122 and into the base 121.
[0079] As can be seen in
[0080] As would be appreciated, the implementation of the stepped light exits 126 and 127, of this embodiment is for the purpose of promoting internal reflection within the light guide 120 when the light guide 120 is to sit below a sloped lens 140. Should the light guide 120 have instead featured a sloped light exit to match the lens 140, a large amount of light rays would have exited the light guide 120 at an undesirable location and/or angle.
[0081] Most light rays that enter the light guide 120 will encounter light scattering particles that alter the direction of the light rays. The effect of this light scattering is that light rays will spread throughout the light guide 120, further encouraging the light rays to exit through the light exiting surfaces 126 and 127 and also ensuring that an even distribution of light output occurs.
[0082] In the embodiment of the circumferential cylinder light guide 120 and light entry points at disconnected surfaces on the circumference of the cylinders, the annular base could be manufactured from non-diffusing clear material to promote total internal reflection and minimise losses through the annular base. The cylinders are then manufactured from particle filled, diffusing clear material to scatter the light and exit it through the light exit surfaces.
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[0084] A proportion of light rays will scatter at an angle and direction that do not match the light exit windows of the lens 40. The efficiency of the light assembly can be increased by reflecting these light rays from the lens inner component material 41 or the housing material 10 back into the light guide 20a. These reflected light rays then have an opportunity to be scattered in a direction that does match the light exit windows of the lens.
[0085] Additionally, focusing optical geometry 12 can be included in the housing 10 to increase the amount of reflected light rays back into the light tubes. This geometry can be varied around the circumference of the light cylinders to improve the homogeneity of the overall light output of the light assembly.
[0086] The light scattering particles may be titanium dioxide particles of sufficient size and concentration such that the light guide appears transparent when un-lit while providing a substantially uniform luminous intensity surface output when lit.
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[0088] In this embodiment, a PCB includes additional LEDs positioned adjacent to the light receiving surfaces 227a, 227b to direct light into the bridging member 227, wherein when lit, will provide a substantially uniform luminous intensity surface output. The bridging member 227 can be used in conjunction with the garnish (which covers the bridging member 227) to illuminate additional detail. For example, the garnish could feature cut-outs in the form of lettering or a logo, which would then be illuminated by the illuminated bridging member 227.
[0089] Throughout the specification and the claims that follow, unless the context requires otherwise, the words comprise and include and variations such as comprising and including will be understood to imply the inclusion of a stated integer or group of integers, but not the exclusion of any other integer or group of integers.
[0090] The reference to any prior art in this specification is not, and should not be taken as, an acknowledgement of any form of suggestion that such prior art forms part of the common general knowledge.
[0091] It will be appreciated by those skilled in the art that the invention is not restricted in its use to the particular application described. Neither is the present invention restricted in its preferred embodiment with regard to the particular elements and/or features described or depicted herein. It will be appreciated that the invention is not limited to the embodiment or embodiments disclosed, but is capable of numerous rearrangements, modifications and substitutions without departing from the scope of the invention as set forth and defined by the following claims.
[0092] For instance, the light output can either be completely annular, or partially annular, additionally, the light output does not have to be perfectly annular, the same homogenous light output could be achieved with a light guide shaped to define an elliptical annular, smooth square, or similar base with circumferential flanges. The circumferential flanges may describe a complete circumference or alternatively maybe non-continuous describing a part circumference.
[0093] Please note that the following claims are provisional claims only, and are provided as examples of possible claims and are not intended to limit the scope of what may be claimed in any future patent applications based on the present application. Integers may be added to or omitted from the example claims at a later date so as to further define or re-define the invention.
REFERENCE SIGNS
[0094] 1 light assembly [0095] 10 housing [0096] 12 focusing opical geometry [0097] 20, 20a light guide [0098] 21 annular base [0099] 22 protrusions [0100] 23, 23a light receiving surfaces [0101] 24 outer circumferential flange [0102] 24a outer circumferential cylinder [0103] 25 inner circumferential flange [0104] 25a inner circumferential cylinder [0105] 26, 26a outer light exits [0106] 27, 27a inner light exists [0107] 30 printed circuit board [0108] 40, 40a lens [0109] 41, 41a outer component [0110] 42, 42a inner component [0111] 100 badge assembly [0112] 110 housing [0113] 120 light guide [0114] 121 annular base [0115] 122 protrusions [0116] 123 light receiving surfaces [0117] 124 non-continuos outer circumferential flange [0118] 125 non-continuos inner circumferential flange [0119] 126 stepped outer light exits [0120] 127 stepped inner light exists [0121] 130 printed circuit board [0122] 131 LED light source [0123] 140 lens [0124] 150 garnish [0125] 220 light guide [0126] 227 bridging member [0127] 227a, 227b light receiving surfaces [0128] 227c light emitting surface