LIGHT GUIDES WITH LOW REFRACTIVE COATING TO BE USED IN WATER
20190331851 ยท 2019-10-31
Inventors
- Abraham Rudolf Balkenende (Heeze, NL)
- Bart Andre Salters (Eindhoven, NL)
- Roelant Boudewijn Hietbrink (Utrecht, NL)
- Willem-Jan Arend De Wijs (Oss, NL)
Cpc classification
B63B59/08
PERFORMING OPERATIONS; TRANSPORTING
B08B17/02
PERFORMING OPERATIONS; TRANSPORTING
G02B6/0066
PHYSICS
International classification
B08B17/02
PERFORMING OPERATIONS; TRANSPORTING
B01J19/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention provides a light guide element (1300) comprising a light guide (300) and a layer element (30), wherein the light guide (300) comprises a light guide face (301) and wherein the layer element (30) comprises an optical layer (310), wherein said optical layer (310) is in contact with at least part of the light guide face (301), wherein the optical layer (310) has a first index of refraction (n1) smaller than 1.36 at 280 nm, wherein the light guide (300) comprises a UV radiation transmissive light guide material (305).
Claims
1. A light guide element comprising a light guide and a layer element, wherein the light guide comprises a light guide face and wherein the layer element comprises an optical layer, wherein said optical layer is in contact with at least part of the light guide face, wherein the optical layer has a first index of refraction (n1) smaller than 1.36 at 280 nm, wherein the light guide comprises a UV radiation transmissive light guide material.
2. The light guide element according to claim 1, wherein the optical layer is a patterned optical layer with one or more first regions comprising an optical layer material with a first layer thickness (h1) and one or more second regions comprising said optical layer material with a second layer thickness (h2) in the range of 0h2<h1, and wherein the optical layer comprises a UV radiation transmissive optical layer material.
3. The light guide element according to claim 1, wherein the first index of refraction (n1) is equal to or smaller than 1.30 at 280 nm, wherein the optical layer is a porous optical layer having a porosity in the range of 5-70%.
4. The light guide element according to claim 1, wherein the optical layer material comprises a sol-gel material.
5. The light guide element according to claim 1, wherein the layer element comprises a layer stack comprising said optical layer and further comprising a second layer in contact with at least part of said optical layer, and wherein the second layer comprises a UV radiation transmissive optical layer material.
6. The light guide element according to claim 1, comprising a second light guide face, wherein a distance (h3) between the first light guide face and the second light guide face defines a thickness of the light guide, wherein the light guide element further comprises a third layer in contact with at least part of the second light guide face.
7. The light guide element according to claim 5, wherein the second layer comprises one or more of (a) a silicone and (b) a fluoropolymer, wherein the second layer is configured to impede ingress of UV-light absorbing organic molecules into the light guide, and wherein the third layer has one or more functionalities selected from the group consisting of (a) reflective for UV radiation, (b) adhesive for adhering the light guide to an object, (c) reinforcing the light guide element, and (d) protective for the light guide.
8. The light guide element according to claim 1, wherein the light guide comprises a closed cavity filled with a UV radiation transmissive liquid, wherein the light guide comprises a first material comprising silicone, wherein the first material defines the cavity, and wherein the UV radiation transmissive liquid comprises water.
9. An anti-biofouling system comprising the light guide element according to claim 1 and a light source, wherein the anti-biofouling system comprises a radiation exit window comprising said light guide face, wherein the light source is configured to provide said UV radiation into the light guide, and wherein the radiation exit window is configured to transmit at least part of said UV radiation.
10. The anti-biofouling system according to claim 9, wherein the light source comprises a light emitting face, wherein the light emitting face is configured within the light guide.
11. The anti-biofouling system according to claim 9, wherein the light guide further comprises optical structures configured to provide an even distribution of the UV radiation downstream from said radiation exit window.
12. The anti-biofouling system according to claim 9, wherein the light guide comprises a closed cavity filled with a UV radiation transmissive liquid, wherein the light guide comprises a first material comprising silicone, wherein the first material defines the cavity, wherein the UV radiation transmissive liquid comprises water, and wherein the first index of refraction (n1) is equal to or smaller than 1.30 at 280 nm.
13. An object that during use is at least partly submerged in water, the object comprising the anti-biofouling system according to claim 9, wherein the anti-biofouling system is configured to irradiate with UV radiation during an irradiation stage one or more of (i) a part of an external surface of said object and (ii) water adjacent to said part of said external surface.
14. A method of providing an anti-biofouling system as defined in claim 9 to an object, that during use is at least temporarily exposed to water, the method comprising providing the anti-biofouling system to the object with the anti-biofouling system configured to provide said UV radiation to one or more of a part of an external surface of the object and water adjacent to said part.
15. A method of preventing and/or reducing biofouling at an external surface of an object, the external surface during use of the object being at least temporarily exposed to water, the method comprising generating UV radiation by an anti-biofouling system and providing said UV radiation to the external surface of the object and water adjacent to the external surface, wherein the anti-biofouling system comprises a light guide element according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0133] Embodiments of the invention will now be described, by way of example only, with reference to the accompanying schematic drawings in which corresponding reference symbols indicate corresponding parts, and in which:
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[0137] The drawings are not necessarily to scale.
DETAILED DESCRIPTION OF THE EMBODIMENTS
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[0139] The layer element 30 comprises an optical layer 310. The optical layer 310 is in contact with at least part of the light guide face 301. The optical layer is in physical contact with at least part of the light guide face. Especially, the optical layer 310 has a first index of refraction n1 smaller than 1.36 at 280 nm. Further, the light guide 300 comprises a UV radiation transmissive light guide material 305 (such as a silicone). The optical layer 310 comprises an optical layer material 315. This optical layer material 315 is especially transmissive for UV radiation but has an index of refraction smaller than water. In this way, the layer reduces outcoupling from the UV radiation when the light guide element 1300 is applied in aquatic environments, and may enhance outcoupling of radiation at other parts of the light guide face. The optical layer 310 is configured on the downstream window side 232. Here, by way of example the light guide 300 comprises optical structures 7. These may be within the guide or at the faces of the light guide 300. The optical structures 7 may be configured to provide an even distribution of the UV radiation 221 escaping from the UV emitting element 210. Here, the light sources 220 are depicted as being comprised by the light guide element 1300; however, this is not necessarily the case (see also
[0140] The light guide element 1300 in combination with the light source(s) 220 can e.g. be used as lighting module for anti-fouling of a (protected) surface. Such module may comprise (thus) at least one light source for generating an anti-fouling light, an optical medium for distributing at least part of the anti-fouling light through the optical medium, the optical medium comprising an emission surface for emitting the distributed anti-fouling light in a direction away from the protected surface when the lighting module is arranged in, on and/or near the protected surface. The the emission surface may be a substantially planar surface. The emission surface is the UV radiation exit window 230 including the layer element 30/is the light guide face 301 including the layer element 30.
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[0142] The UV-emitting element 210 comprises one or more light sources 220 and may thus especially be configured to irradiate with said UV radiation 221 during an irradiation stage one or more of (i) said part 111 of said external surface 11 and (ii) water adjacent to said part 111 of said external surface 11. The former variant applies especially the embodiment of
[0143] Hence, the UV-emitting element 210 comprises a UV radiation exit window 230 and the UV-emitting element 210 is configured to provide said UV radiation 221 downstream from said UV radiation exit window 230 of said UV-emitting element 210.
[0144] As indicated above, the term vessel, indicated with reference 1, may e.g. refer to e.g. a boat or a ship (ref. 10a in
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[0151] Further, here by way of example a first region and a second region are indicated. Also more than two different regions may be applied
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[0157] For instance, in this schematically depicted embodiment the light source 220 are at least partially, here essentially entirely, embedded in the light guide 300. Hence, the light source(s) comprise a light emitting face 227, wherein the light emitting face 227 is configured within the light guide 300. Especially, the light emitting face is the die of a solid state light source (220).
[0158] Further, the light guide element 1300 comprises a first stack 30, comprising at least a layer, here by way of example two layers, wherein a first layer is the optical layer 310, and wherein a second layer 320 may e.g. be used as protective layer. The optical layer 310 is in contact with the first light guide surface 301. The optical layer material 315 and the second layer material, indicated with reference 325, is especially transmissive for UV radiation.
[0159] Alternatively or additionally, a second stack 130, comprising a least a layer, here by way of example a single layer, indicated as third layer 330, is available. The layer stack, here the third layer 130, is in contact with the second light guide surface 301. The third layer may comprise third layer material 335, which may in embodiments be identical to the optical layer material 315, but which in other embodiments may be essentially reflective, and/or which may in other embodiments be adhesive. For instance, the third layer 330 may be applied to arrange the light guide element 1300, more precisely the light guide layer 300 to an external surface 11 of an object.
[0160] The light guide 300 has a first light guide surface 301. When the first layer element 30 is available, the external surface of the light guide element 1300 is now effectively a surface of an external layer, herein indicated as 1301. Hence, reference 1301 indicates an outer layer of the light guide element 1300. The radiation exit window can be considered the layer (stack) between first light guide surface 301 and the outer layer 1301.
[0161] Hence, there may be a top layer or top foil and/or there may be a bottom layer or top foil. The former may be indicated more general as optical layer, or may be more general be comprised by a layer stack. The latter may be indicated more general as third layer, or may be more general comprise by a second layer stack.
[0162] The top foil/layer may especially be applied to protect the light carrier against mechanical damage. Further, it may be to be sufficiently transparent for UVC.
[0163] The optical layer, or the (first) layer stack may provide protection against chemical intrusion of unwanted molecules which may destroy the transparency of the light carrier.
[0164] The second layer may especially have a good resistance against tear. The second layer may have a lower refraction index compared to silicone to propagate the UVC light further through the silicone before it is emitted to the surface. This becomes more important if the silicone layer is very thin (2 mm) or if the silicone is highly transparent. This effect may also be obtained by adding a sol-gel layer, as embodiment of the optical layer, in between the light carrier and the top foil (see also above).
[0165] The bottom foil may especially be applied to reflect light back to the surface, into the light guide. The third layer may be a chemical interface enabling us to attach other layers to it at the bottom side, such as lead frames carrying wires and electronics.
[0166] Also the third layer may have a lower refraction index compared to silicone to propagate the UVC light further through the silicone before it is emitted to the surface. This effect may also be obtained by adding a sol-gel layer (see also above), as embodiment of the optical layer, in between the light carrier and the third layer.
[0167] Suitable materials for the second layer or for the third layer or for both the second layer and the third layer may be selected from the group of PET (Polyethylene terephthalate) and FEP (Fluorinated ethylene propylene). Other materials may also be possible, such as one or more of fluorinated ethylene, fluorinated propylene, fluorinated ethylene propylene, and fluorinated propylene acetate. Alternatively or additionally, suitable materials for the second layer or for the third layer or for both the second layer and the third layer may be selected from silicone materials (but different from the light guide material in embodiments wherein the light guide material would also comprise a silicone). The materials of the second layer and third layer may be different.
[0168] Hence, amongst others, the invention provides a light guide element 1300 as defined herein, comprising a second light guide face 302, wherein a distance h3 between the first light guide face 301 and the second light guide face 302 defines a thickness of the light guide 300. Especially, the light guide element 1300 may further comprise a third layer 330 in contact with at least part of the second light guide face 302. Alternatively or additionally, the light guide element 1300 as defined herein, may include the second layer 320, wherein the second layer 320 comprises in embodiments one or more of (a) a silicone and (b) a fluoropolymer. Especially, the second layer 320 is configured to impede ingress of UV-light absorbing organic molecules into the light guide 300. The optional third layer 330 may in embodiments have one or more functionalities selected from the group consisting of a reflective for UV radiation, b adhesive for adhering the light guide 300 to an object, c reinforcing the light guide element 1300, and d protective for the light guide 300.
[0169] The term plurality especially refers to two or more.
[0170] The term substantially herein, such as in substantially all light or in substantially consists, will be understood by the person skilled in the art. The term substantially may also include embodiments with entirely, completely, all, etc. Hence, in embodiments the adjective substantially may also be removed. Where applicable, the term substantially may also relate to 90% or higher, such as 95% or higher, especially 99% or higher, even more especially 99.5% or higher, including 100%. The term comprise includes also embodiments wherein the term comprises means consists of. The term and/or especially relates to one or more of the items mentioned before and after and/or. For instance, a phrase item 1 and/or item 2 and similar phrases may relate to one or more of item 1 and item 2. The term comprising may in an embodiment refer to consisting of but may in another embodiment also refer to containing at least the defined species and optionally one or more other species.
[0171] Furthermore, the terms first, second, third and the like in the description and in the claims, are used for distinguishing between similar elements and not necessarily for describing a sequential or chronological order. It is to be understood that the terms so used are interchangeable under appropriate circumstances and that the embodiments of the invention described herein are capable of operation in other sequences than described or illustrated herein.
[0172] The devices herein are amongst others described during operation. As will be clear to the person skilled in the art, the invention is not limited to methods of operation or devices in operation.
[0173] It should be noted that the above-mentioned embodiments illustrate rather than limit the invention, and that those skilled in the art will be able to design many alternative embodiments without departing from the scope of the appended claims. In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. Use of the verb to comprise and its conjugations does not exclude the presence of elements or steps other than those stated in a claim. The article a or an preceding an element does not exclude the presence of a plurality of such elements. The invention may be implemented by means of hardware comprising several distinct elements, and by means of a suitably programmed computer. In the device claim enumerating several means, several of these means may be embodied by one and the same item of hardware. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.
[0174] The invention further applies to a device comprising one or more of the characterizing features described in the description and/or shown in the attached drawings. The invention further pertains to a method or process comprising one or more of the characterizing features described in the description and/or shown in the attached drawings.
[0175] The various aspects discussed in this patent can be combined in order to provide additional advantages. Furthermore, some of the features can form the basis for one or more divisional applications.