The present invention relates to lighting fixtures. More specifically, the invention relates to lighting fixtures using LED strips.
An LED strip light (also known as LED tape or ribbon light) is a flexible circuit board with an adhesive backing and populated by surface mounted light-emitting diodes (SMD LEDs) and other components. Traditionally, LED strip lights have been used solely in accent lighting, backlighting, task lighting, and decorative lighting applications. However, a significant increase in luminous-efficacy—a measure of how well a light source produces visible light (lumens/watt)—and higher-power SMDs have allowed LED strip lights to be used in applications such as high brightness task lighting, fluorescent and halogen lighting fixture replacements, indirect lighting applications, manufacturing processes lighting, set and costume design, and even for growing plants. The ease of use of LED lighting strips has boosted the creativity of lighting designers and opened the door for the creation of many new and different lighting fixtures and lighting designs.
The linear strip of SMD LEDs does have some drawbacks. While the strips can be easily connected along a straight line, forming angled connections has been problematic. As shown in
Further, the cost of using and concealing a plurality of these connectors in a lighting fixture adds significant costs. In a field where customized lighting displays are already costly, “dark gaps” are not a welcomed feature.
Until the invention of the present application, these and other problems in the prior art went either unnoticed or unsolved by those skilled in the art. The present invention provides an angled connector for LED lighting strips which functions with the associated device without sacrificing portability, design, style or affordability.
100061 There is disclosed herein an improved LED light strip connector which avoids the disadvantages of prior devices while affording additional structural and operating advantages. A lighting fixture made using the improved connectors is also set forth.
Generally speaking, the connector comprises an electrical insulator pad, and a plurality of solder-less connector terminal pairs arranged on the insulator pad. The terminal pairs are arranged such that when two LED light strips are connected, a distance between an end LED on the first strip and an end LED on the second strip is approximately the same as a distance between adjacent equally-spaced LEDs on the surface of both the first and second LED strips.
As to a lighting fixture, the device is comprised of at least first and second LED light strips having a plurality of LEDs equally-spaced a distance on an upper surface, and at least a first solder-less connector for connecting the first and second LED light strips together at an angle to form a non-linear light source. The non-linear light source is retained within a housing having an opening through which light from LEDs can be directed. A transparent lens covers the opening and at least first and second adjacent LED light strips are at an angle to one another and a distance between an end LED on the first adjacent LED light strip when connected to a first solder-less connector and an end LED on the second adjacent LED light strip when connected to the first solder-less connector is approximately the same as a distance between equally-spaced LEDs on the surface of both the first and second LED strips. This configuration eliminates dark gaps at the corners of the fixture.
These and other aspects of the invention may be understood more readily from the following description and the appended drawings.
For the purpose of facilitating an understanding of the subject matter sought to be protected, there are illustrated in the accompanying drawings, embodiments thereof, from an inspection of which, when considered in connection with the following description, the subject matter sought to be protected, its construction and operation, and many of its advantages should be readily understood and appreciated.
While this invention is susceptible of embodiments in many different forms, there is shown in the drawings and will herein be described in detail at least one preferred embodiment of the invention with the understanding that the present disclosure is to be considered as an exemplification of the principles of the invention and is not intended to limit the broad aspect of the invention to any of the specific embodiments illustrated.
Referring to
Referring to
Generally speaking, the lighting fixture 12 of the present invention is comprised of a plurality of LED light strips 20, each light strip having a plurality of LEDs 24 equally-spaced a distance on an upper surface, angled strip connectors 10, a housing 32, a cover (preferably transparent or semi-transparent) 34 to allow light to pass, and wiring (not shown) to bring the necessary electric current from a source to power the lighting fixture 12.
Such light strips 20 are well-known in the art, being comprised of a substrate 50 with a plurality of equally-spaced LEDs 24 and other components electrically connected in a linear fashion. The strips 20 can be cut to almost any length leaving end contacts 40 (
A housing 32 is used to retain, protect, and conceal the non-linear light source, while allowing light to pass through an opening 36. A lens covering 34, preferably transparent or semi-transparent, may be used to cover the opening 36. The terminal pairs 30 are positioned on the substrate such that adjacent LED light strips 20a and 20b are at an angle to one another and a distance between an end LED 24a on a first adjacent LED light strip 20a and an end LED 24b on a second adjacent LED light strip 20b is in the range of about 0.25 to about 2 times the distance between equally-spaced LEDs on the surface of both the first and second LED strips.
Exemplary embodiments of the subject angled connector and lighting fixtures are described below with reference to the relevant drawing figures.
As can be seen in
Similarly,
In a preferred embodiment, the terminal pairs 30/130 are made from high-conductivity beryllium copper of about 0.012 inch thickness with a 1-3 micrometer (gm) gold plate over a 150-350 micrometer (μm) electroless nickel plate. The substrate 50/150 is preferably a commercial grade thermally-conductive insulator pad, such as the Cho-Therm T441 product made by Parker Hannifin Corp. Chomerics Division in Woburn, Mass.
The matter set forth in the foregoing description and accompanying drawings is offered by way of illustration only and not as a limitation. While particular embodiments have been shown and described, it will be apparent to those skilled in the art that changes and modifications may be made without departing from the broader aspects of applicants' contribution. The actual scope of the protection sought is intended to be defined in the following claims when viewed in their proper perspective based on the prior art.