Modular light emitting diode fixture having enhanced interconnect pins between modular components
11067256 · 2021-07-20
Assignee
Inventors
Cpc classification
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S2/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S4/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to modular LED fixtures that have improved electrical connection between modular components of the fixture. The improved electrical connection is achieved through pins having a non-flat head, such as a generally hemispherical head.
Claims
1. A modular light emitting diode lighting fixture comprising: a power converter to convert alternating current power to a direct current power; a first connecting element coupled to the power converter and comprising at least one first transfer junction connecting element; a light emitting diode lighting circuit device coupled to the power converter through the first connecting element, the light emitting diode lighting circuit device comprising: at least one light emitting diode; at least one second transfer junction connecting element; and a polarity circuit coupled to the at least one second transfer junction connecting element and the at least one light emitting diode and configured to maintain the voltage across the at least one light emitting diode in a first polarity regardless of the polarity of the voltage across the at least one second transfer junction connecting element, wherein the at least one first transfer junction connecting element comprising transfer junction contact elements selected from a group comprising a pin or a pad, and the at least one second transfer junction connecting element comprising transfer junction contact elements selected from a group comprising a pin or a pad, wherein the first and second transfer contact elements are electrically coupled by contact between at least two pins and at least two pads, the pins having a substantially hemispherical head for contacting the pads.
2. The modular light emitting diode lighting fixture of claim 1 wherein the pad is substantially flat.
3. The modular light emitting diode fixture of claim 1 wherein the first connecting element is a hub having at least two transfer junction connecting elements, and wherein each of the at least two transfer junction connecting elements comprises at least two transfer junction contact elements configured as pads.
4. The modular light emitting diode fixture of claim 1 wherein the first connecting element is a hub having at least two transfer junction connecting elements, and wherein each of the at least two transfer junction connection elements comprises at least two transfer junction contact elements configured as pins.
5. The modular light emitting diode fixture of claim 1 wherein the first connecting element is an elongated connecting member having at least two transfer junction connecting elements arranged with transfer junction contact elements facing outwards, and wherein each of the at least two transfer junction connecting elements comprises at least two transfer junction contact elements configured as pads.
6. The modular light emitting diode fixture of claim 1 wherein the first connecting element is an elongated connecting member having at least two transfer junction connecting elements arranged with transfer junction contact elements facing outwards, and wherein each of the at least two transfer junction connecting elements comprises at least two transfer junction contact elements configured as pins.
7. The modular light emitting diode fixture of claim 1 wherein the pins are rigid and the mechanical coupling between the first connecting element and the light emitting diode lighting circuit device supplies the force need to maintain the electrical coupling.
8. The modular light emitting diode fixture of claim 1 wherein the pins comprise a body portion, a head portion, and a base portion of different cross-sections, the base portion coupled to the body portion and the head portion housed at least partially within the body portion and configured to reciprocate in and out of the body portion.
9. The modular light emitting diode fixture of claim 8 further comprising a spring housed within the body portion of the pins and configured to apply mechanical force against the head portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
DETAILED DESCRIPTION
(16) Modular LED light fixtures that can be quickly installed and avoid the need to manually wire each LED element during installation are disclosed. The modular LED light fixtures prevent installation of LED elements in a reversed bias configuration and, thus, eliminate installation errors and decrease installation time. Because the LED fixtures are modular, they can easily be shipped, and the need to assemble the LED light fixtures before shipping is eliminated.
(17) A modular LED light fixture may be an LED lighting fixture having a power source that converts AC power to DC power. One or more connecting elements may connect the power source to the LED lighting elements of the LED fixture. For example, a connecting element may be couple to the power source. The connecting element will have at least one transfer junction having a transfer junction connecting element. A light emitting diode lighting circuit device containing an LED lighting element may be coupled to the power source and the connecting element. The light emitting diode lighting circuit device has, for example, at least one LED lighting element, such as a light emitting diode, at least one transfer junction having a transfer junction connecting element, and a polarity circuit coupled to the transfer junction connecting element and the light emitting diode. The polarity circuit is configured to maintain the voltage across the at least one light emitting diode in a first polarity regardless of the polarity of the voltage across a corresponding transfer junction connecting element.
(18) The transfer junction connecting element of the light emitting diode lighting circuit device may have transfer junction contact elements that are either pins or pads for coupling with the pins or pads of a transfer junction connecting element of a connecting element, such as a hub or an elongated connecting member. If the transfer junction connecting element of a transfer junction has pins, then it will couple with a transfer junction connecting element that has pads and vice versa. The mechanical coupling of the pins and pads also serves as an electrical coupling to power the LED lighting elements. The light emitting diode lighting circuit device is powered by contact between at least two pins and at least two pads, and the pins have a non-flat terminal end, such as a substantially round or hemispherical terminal end, for contacting the pads. The substantially rounded or hemispherical terminal end or head provides superior electrical conductivity.
(19) With reference to
(20) A wire 110 couples the power converter 105 to the interface device 115. The wire 110 may be any commercially available wire adequate to support the current draw and weight of the LED light fixture 100. The wire 110 may be mechanically coupled to the interface device 115. The mechanical couple between the wire 110 and the interface device 115 may be with a mechanical gripping of the wire or other method such as using an adhesive affixing the wire to the interface device 115. The wire 110 may further include both an inner wire or wires for creating an electrical connection between the power source 105 and the remainder of the LED light fixture 100 and an outer shield or supporting wire capable of bearing the weight of the LED light fixture 100. In this case, the outer shield or supporting wire will be mechanically coupled to the interface 115 for the purpose of supporting the LED light fixture 100, and the inner wire or wires will be coupled to the interface device 115 merely for establishing an electrical connection between the power source 105 and the interface device 115. In some cases, the weight may be distributed between the inner wire or wires and the sheath or support wire. In such a case, the inner wire or wires will be electrically and mechanically coupled to the interface device 115 such that they are each capable of bearing a portion of the weight of the LED light fixture 100 without compromising the electrical connection between the power converter 105 and the interface device 115.
(21) As illustrated in
(22) Alternatively, as will be described in more detail below with reference to various connecting elements, such as elongated connecting members, the interface device 318 may be configured to have a transfer junction comprising a receiving portion configured to receive the transfer junction structure described with reference to transfer junction 320. In such a case, pins would protrude the surface of the transfer junction connecting element 322 and connect to one or more wires for supplying power from the power converter 305.
(23) Returning to
(24)
(25)
(26) The transfer junction connecting element of the connecting element 120 is recessed with pins protruding from its outward facing surface.
(27)
(28) Alternatively, the body portion 904 may be hollow with the head portion 902 extending telescopically outward from the body portion 904. The head portion 902 may reciprocate axially relative to the body portion 904 to change the amount of the head portion 902 extending out from the hollow body portion 904. A spring 908 in the hollow body portion 904 may be configured to apply a mechanical force against both the base portion 906 and the head portion 902 so as to fully extend the head portion 902 out of the body portion 904 when no counteracting force is applied to the head portion 902. The spring 908 may, for example, maintain the head portion 902 in a fully extended position by applying a force to an annular base of the head portion 902, which may have a greater radius than the portion of the head portion 902 extending out of the body portion 904. The head portion 902 extending from the body portion 904 may extend through an opening with an inner radius that is slightly larger than the outer radius of the extending head portion 902. The clearance between the two can allow freedom of movement but also provide axial guidance without lateral movement. The pin retaining surface receives the force of the spring through the annular base of the head portion 902.
(29) It has been found that the non-flat, and preferably the hemispherical, pin head structure of the pin 900 provides superior connectivity over other pin structures in modular LED light fixtures, such as the modular LED light fixture 100, 200 because they maintain a superior electrical connection with the pads under various installation conditions. The electrical connections between connecting elements and between connecting elements and light emitting diode lighting circuit devices in connection with the disclosed embodiments are achieved by mechanical contact between a pair of pins and a pair of pads, and that it is the mechanical contact between the pins and the pads that establishes the electrical connection that supplies power from the power converter 105 (205, 305, 405) to the LED lighting elements. Poor contact at any transfer junction compromises electrical power supplied to all transfer junctions electrically downstream of the transfer junction having poor contact, and thus, a proper connection is desired at each transfer junction so that the LED fixture operates at its intended capacity, including as a usefulness light source and as a decorative lighting fixture with aesthetic value. Thus, the length of pin and/or the bias of the spring should be coordinated to ensure there is a good connection without damage to the pads. If the pin is too short and/or the spring is too weak, the connection may not be good. If the pin is too long, it may damage the pad and other interface.
(30) As seen in
(31) The connecting elements (125, 145, 214, 222, 230, 244, 410, 580) are hubs. A hub connects to elongated connecting members, for example 120, 140, and between elongated connecting members, for example 120, 140, and light emitting diode lighting circuit devices, for example 130, 160, 165. Both elongated connecting members and hubs have screw receiving portions designed to overlap when, for example, a transfer junction of a hub is slid into a receiving portion of an elongated connecting member. The set screw receiving portions are labelled (non-exhaustively) through the figures as 426, 428, 430, 432, 522, 526, 528, 530, 532, 604, 608, 612, 616, 624, 626, 628, 630, 632, 634, 640, 642, 644, 646, 730, 732, 734, 736, 808, 810. Set screws 422, 424, 520, 524, 824, 826 are used to complete the mechanical coupling between connecting elements and between connecting elements and light emitting diode lighting circuit devices. The screws may alternatively be push fasteners that snap into the screw receiving portions or rivets.
(32)
(33)
(34) The transfer junction connecting elements 710, 712 are fastened to the hub 700 via screws 722, 724 and 726, 728. The transfer junction connecting elements 710, 712 have transfer junction contact elements configured as pads 718, 720 and 714, 716. The pads 714, 716, 718, 720 are substantially flat and configured to be contacted by a pin to transmit an electrical current. The side of the transfer junction connecting elements 710, 712 facing inward towards the body 705 of the hub 700 is configured to be coupled to wire such as wires 738, 740 of
(35) A light emitting diode lighting circuit device (such as 130, 160 and 165 of
(36) When the light emitting diode lighting circuit device 800 is connected to a hub or an elongated connecting member, the voltage received from the hub or the elongated connecting member creates a voltage across the pins 820, 822 that may be in either a forward bias or a reverse bias relative to the LED lighting element 812. Without the polarity circuit 816, connecting the light emitting diode lighting circuit device 800 to power supplied from a hub or elongated connecting member would run the risk of incorrectly installing the light emitting diode lighting circuit device 800, and thus, the LED lighting element 812 in reserve bias. As described above, installing LED lighting elements in a reverse bias may increase assembly time and risk burning out the LED lighting element 812 when a modular LED light fixture is powered.
(37) However, the polarity circuit 816 prevents the LED lighting element 812 from receiving a voltage in a reversed bias by providing a forward bias voltage to the LED lighting element 812 regardless of polarity of the voltage input into the polarity circuit 816 from the pins 820, 822. The polarity of the voltage across the input 1202, 1204 of the polarity circuit 816 illustrated in 1200a of
(38)
(39) Those skilled in the art will recognize that a wide variety of modifications, alterations, and combinations can be made with respect to the above described embodiments without departing from the scope of the disclosure. Such modifications, alterations, and combinations are to be viewed as being within the ambit of the present disclosure.