The following relates generally to illumination arts, lighting arts, solid state lighting arts, and related arts, and find particular application in conjunction with LED lighting systems and, in particular, traffic signals. However, it is to be appreciated that the present exemplary embodiments are amenable to other like applications.
LED signals, such as LED traffic signals, present numerous advantages over incandescent lamp traffic signals. The use of LEDs provides a power consumption savings and extremely long life compared to incandescent light sources. The long life span of the LED signals leads to improved reliability and lower maintenance costs.
Due to the large number of existing incandescent traffic signals, most LED signals are designed for incandescent lamps. In order to meet existing signal standards and/or allow retrofitting into signals originally manufactured for use with incandescent light sources, LED signals mimic the front housing diameter and depth restrictions of the prior incandescent signals. To allow for an easy retrofit without requiring significant changes to the preexisting AC power distribution and logic circuits, LED signal assemblies typically incorporate a power supply to drive the LEDs at a lower, controlled, direct current power level.
LED signal lamps generally include a housing designed to be retrofit into existing incandescent traffic light signals, and is closed with a cover. Since the LED signal lamps are implemented substantially outside subject to nature's elements, it is important that the lamp is impervious to water. Typically, signal lamps are designed such that a watertight seal is created between the housing and cover with the use of an o-ring or gasket, such as is described in U.S. Pat. No. 7,237,924, the disclosure of which is fully incorporated herein. The o-ring provides a dust and water-resistant seal and is preferably made of EPDM material. However, the use of an o-ring or gasket creates the need for additional parts and therefore increases cost of production. It is therefore desirable to create an LED signal lamp capable of forming a watertight seal between the housing and cover without the use of an o-ring or gasket, thereby reducing costs and part count, while improving ease of assembly.
In accordance with one aspect of the present disclosure, a waterproof LED lamp is disclosed. The waterproof LED lamp includes a housing having one or more LEDs disposed within the housing. The housing comprises a housing base including a body with a first opening, the first opening having an edge surrounded by a first sealing portion. The housing further includes an optical cover comprising a shell having a second opening, the second opening having a border surrounded by a second sealing portion. The second sealing portion is configured to be removably inserted into the first sealing portion, forming a water-tight seal between the housing base and the optical cover.
In accordance with another aspect of the present disclosure, a method for forming a watertight seal in an LED signal lamp having a housing is provided. The housing includes a housing base with a first sealing portion and an optical cover with a second sealing portion. The method comprises providing the first sealing portion with a rim, the rim including a first lip extending from the innermost portion of the rim, a second lip extending from the outermost portion of the rim, and two central lips extending between said inner and outer lips, and providing the second sealing portion with a flange, the flange including an outer lip located on an outer edge of the flange and an inner lip extending from an inner edge of the flange. The method further includes removably inserting the inner lip between the central lips, forming a first seal between the first and second sealing portions and extending the outer lip around the second lip, forming a second seal between the first and second sealing portions.
In accordance with yet another embodiment, a watertight sealing arrangement for an LED lamp is provided. The watertight sealing arrangement comprises a first sealing portion positioned on a housing base, the sealing portion comprising a rim extending outwardly from the housing base and including an innermost portion having a first lip extending therefrom, an outermost portion having a second lip extending therefrom, and at least two central lips extending therebetween. The sealing arrangement further includes a second sealing portion located on an optical cover, the second sealing portion comprising a flange extending outwardly from the optical cover, the flange having an inner lip and an outer lip. The second sealing portion is configured to form at least one water-tight seal with the first sealing portion.
Referring to
The housing assembly 12 preferably comprises two complementary, generally semi-circular portions, a base portion and an optical cover portion 16, each designed to mate with the other, forming a sealed housing that is impervious to water. Although it is preferred that each housing assembly portion comprises a generally semi-circular configuration, other shapes and configurations may alternatively be implemented depending on particular design needs. The housing base 14, best illustrated in
A second lip 44 extends from the outermost portion of the rim 40 away from the housing base 14 in the same direction as the first lip 42. Two central lips 46 are located between the first 42 and second lips 44 of the rim 40 and extend away from the housing base 14 in the same direction as the first 42 and second lips 44. The central lips 46 spaced apart from one another a distance consistent with the width of the inner lip 34 of the flange 30, such that the central lips 46 are configured to removably accept the inner lip 34, as best illustrated in
Moreover, first lip 42 preferably has a height that is greater than the heights of any of the central lips 46 and second lip 44, such that as the optical element 16 is mated with the housing base 14, the first lip 42 extends into the optical element opening. The first lip 42 creates an additional barrier protecting the internal components from any potential water or other environmental elements that may manage to get through the first seal.
As the inner lip 34 is inserted between the central lips 46, the outer lip 32 of the optical cover 16 fits securely around the outside of the second lip 44 of the rim 40, forming a second sealing arrangement between the optical cover 16 and housing base 16, which is further illustrated in
One issue encountered in molding applications for parts with large diameters, such as signal lamps having diameters of generally about 200-300 mm, is that the parts often come out of a mold having a generally oval shape, rather than being perfectly circular. This may cause difficulty when trying to mate two parts, since the mating aspects of the parts may not perfectly align as required for successful mating. Often this leads to part-waste, since parts that are unable to form a necessary whole are useless. The present optimized sealing method overcomes this issue by designing at least one of the housing assembly portions to be flexible to allow for deformation during the mating process. By providing at least one of the housing assembly portions with flexibility, it can be manipulated into mating with a complementary housing assembly portions, even if the parts are not perfectly circular. As such, the housing assembly portions will be capable of successfully mating together and part waste will be reduced.
Once the housing assembly portions are mated, the portions may optionally be further secured together with the use of upper clips 52 located in one or more locations around the optical cover 16, as illustrated in
In another exemplary aspect of the disclosure, a method is provided for forming such a watertight seal in the present LED signal lamp housing 12 assembly. The method includes molding the housing assembly portions in such as manner as to provide the housing base portion 14 and the optical cover portion 16 with sealing portions capable of mating and providing a watertight seal, without the need for an o-ring, gasket, or the like. The housing base 14 is provided with a first sealing portion 22 with a rim 40 including a first lip 42 extending from the innermost portion of the rim 22, a second lip 44 extending from the outermost portion of the rim 40, and two or more central lips 46 extending between the inner and outer lips. The optical cover 16 is provided with a second sealing portion 26 having a flange 30 that includes an outer lip 32 located on an outer edge of the flange and an inner lip 34 extending from an inner edge of the flange 30. The inner lip 34 of the flange 30 may be removably inserted between the central lips 46. A self-locking interaction between the tapers of the central lips 46 and inner lip 34. This self-locking interaction creates a first seal between the optical element and the housing base. The outer lip 32 of the flange may then be extended around the second lip 44, forming a second seal between the optical element 16 and housing base 14. The housing preferably includes one of the two seals, although both of the two seals do not need to be present to form a water-tight seal. At least one of the housing assembly portions is preferably constructed out of flexible material, such that the portions can be deformed in order to achieve one or both of the seals.
The invention has been described with reference to the preferred embodiments. Obviously, modifications and alterations will occur to others upon reading and understanding the preceding detailed description. It is intended that the invention be construed as including all such modifications and alterations.
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Number | Date | Country | |
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20120250307 A1 | Oct 2012 | US |