The present invention relates generally to vehicle lights that use light emitting diodes (LEDs). More specifically, the invention relates to an LED lamp with a heat sink.
In recent years it has become popular to use LED lighting to provide illumination for automobiles, including especially headlights, fog lights, taillights, signal lights, and emergency indicators. LED lights can be superior to filament or gas bulbs in terms of efficiency, life span, size, directional control, light intensity and light quality. High intensity LED lights, especially when used for headlights and fog lights generate a significant amount of heat in their semiconductor junctions. This heat can cause problems such as melting or otherwise deteriorating the LED light itself, or its surroundings. In extreme cases the heat can create a fire risk.
To address the excessive heat problem, it has been known to provide fans or to make a large body out of heavy rigid materials to disperse the heat. Fans are not ideal because fans consume energy, take up valuable space, make noise, and tend to wear out before the LED lighting element. Using a large rigid body to act as a heat sink is also problematic because of cost and space requirements. What is needed is a mechanism for removing heat from semiconductor junctions without using a fan and without using a large rigid body.
According to one embodiment, the present invention is directed to an LED lamp with a heat sink. The lamp includes a wire harness adapted for connection to an electrical system. First and second circuit boards are electrically connected to the wire harness. The circuit boards are mounted on opposite sides of the heat conducting member. A first light emitting diode is provided on the first circuit board, and a second light emitting diode is provided on the second circuit board. A flexible heat sink comprises a flexible metal belt mechanically connected to the heat conducting member. The flexible metal belt may be made from a flexible metal fabric, such as a braided metal band. The braided metal band may be folded into first and second loops. The flexible heat sink may include a first and a second braided metal band, and wherein the first and second braided metal bands are crimped to the heat conducting member with the heat conducting member sandwiched between the braided metal bands. The braided metal band may be made from copper strands. The braided metal band may be made from tinned copper strands. The heat conducting member may be a copper bar. The circuit boards may be mounted on the heat conducting member by a heat conducting adhesive. The circuit boards may be mounted to the heat conducting member with the light emitting diodes proximate to a first end of the heat conducting member and the flexible heat sink connected at a second end of the heat conducting member opposite from the first end of the heat conducting member. The light emitting diodes may produce at least 1100 lumens. The LED lamp may be free from fans. The LED lamp may include a mounting base, wherein the circuit boards and the heat conducting member are enclosed within the mounting base, wherein the mounting base has openings to accommodate the light emitting diodes, and wherein the flexible metal belt extends outwardly out of the mounting base. The electrical system may be an automotive electrical system, and the mounting base may be adapted for attachment to an automobile headlight.
According to another embodiment, the flexible metal belt may be made from a plurality of flexible metal sheets. The flexible metal sheets may be made from aluminum. The flexible metal sheets may have a plurality of holes. Each hole may have a raised edge to prevent the flexible metal sheets from sticking to one another, thereby preventing significant losses in the overall surface area of the flexible heat sink. The holes may each belong to a row or column of holes, each flexible metal sheet may have multiple rows or columns of holes, and the multiple rows or columns of holes may be positioned parallel to one another. In between each of the rows or columns of holes may be a fold in the flexible metal sheet, the fold being raised from each of the flexible metal sheets in the direction opposite the direction that the raised edges of the holes have been raised. The LED lamp may also include a mounting housing, wherein the circuit boards and the heat conducting member are enclosed within the mounting housing, wherein the mounting housing has openings to accommodate the light emitting diodes, and wherein the flexible metal sheets extend outwardly out of the mounting housing. The mounting housing may be comprised of a plurality of stackable metal discs, and the flexible metal sheets may be secured between the stackable metal discs. The mounting housing may be configured such that at least one of the flexible metal sheets is positioned between each of the stackable metal discs such that the stackable metal discs are at least partially separated from one another. Additionally, the flexible metal sheets may form two flexible wings, the flexible wings being installable at any position around a central axis of the mounting housing and being adapted such that the flexible wings do not operationally interfere with the components of an automobile.
According to another embodiment, the flexible metal sheets may be stamped or embossed.
According to another embodiment, the present invention is directed to a method of installing an LED lamp into a light fixture. An LED lamp is provided that has a light emitting diode on a circuit board, a heat conducting member supporting the circuit board, a flexible heat sink made from a flexible metal belt attached to the heat conducting member, and a mounting body enclosing the circuit board and heat conducting member. The flexible heat sink is shaped in to a desired shape to fit in a space behind the light fixture. The mounting housing is mounted in the light fixture with the light emitting diode on a front side of the fixture and the flexible heat sink in the space behind the light fixture. The flexible metal belt may be braided copper or a plurality of flexible metal sheets made from aluminum.
In manufacturing the LED lamp 10 of
As best seen in the cross-sectional view of
To form the finished LED lamp 10 of
The tower body 12 may include features near the light emitting diode openings 16 that shape the light emitted by the lamp 10. For example, as best seen in
The tower body 12 may also include molded-in features that aid in mounting the lamp 10 in place. For example, as best seen in
When mounting the lamp 10 in a socket or other fixture space, the flexible heat sink 24 can be molded and deformed to best fit in the available space. The loops 26 of the flexible heat sink 24 are preferably spread apart as much as the space permits to increase the surface area and to allow a greater volume of air between the loops 26. The ability of the loops 26 to take on a variety of shapes is a significant advantage for the present invention. The flexible metal fabric, such as braided copper, that is used to form the flexible heat sink 24 has some memory, but will generally retain the new shape given in deforming the flexible heat sink 24 to install it. When installing the lamp 10 it is desirable to spread out the loops 26 both in terms of making the loops 26 larger to increase the space between the surfaces of the flexible heat sink 24 and in terms of making the strand wider to increase the surface area.
In use, the heat created by the junctions of the light emitting diodes 18 will be transferred into the heat conducting member 32. Because the heat conducting member 32 is made from an excellent heat conducting material, such as copper, the vast majority of the generated heat energy will be transferred to the flexible heat sink 24 by conduction. The flexible heat sink 24 relies on its large surface area to dissipate the heat by convection and some radiation into the space behind the light fixture. Therefore, even lamps that produce 2500 lumens or more of light may be utilized without fans and without large rigid bodies to dissipate the heat energy. This allows for greater flexibility in mounting locations, reduced costs, greater durability, and less noise.
The flexible metal sheets 44 may have a plurality of holes 46. The holes 46 may have varying shapes, sizes, and positions within the flexible metal sheets 44. However, in the preferred embodiment, the holes 46 are circular in nature and are all the same size. Each hole 46 has a raised edge 48 to prevent the flexible metal sheets 44 from sticking to one another, thereby preventing significant losses in the overall surface area of the flexible heat sink 24. The holes 46 may each belong to a row or column of holes, wherein each hole 44 of the same row or column is spaced equidistantly from one another. Additionally, each flexible metal sheet may have multiple rows or columns of holes, and the multiple rows or columns of holes may be positioned parallel or perpendicular to one another (e.g. the holes 44 could form the shape of a cross). Even further still, in between each of the rows or columns of holes 46, there may be a fold 50 in the flexible metal sheet. The fold 50 may be raised from the flexible metal sheets 44 in the direction opposite the direction that the raised edges 48 of the holes 46 have been raised.
The LED lamp 10 may also include a mounting housing 52. The circuit boards 30 and the heat conducting member 32 may be enclosed within the mounting housing 52. The mounting housing 52 may also have openings 16 to accommodate the light emitting diodes 18. The flexible metal sheets 44 may extend outwardly out of the bottom of the mounting housing 52. The flexible metal sheets 44 may extend out of the side of the mounting housing 52 (as shown in
The mounting housing 52 may be comprised of a plurality of stackable metal discs 54. The stackable metal discs may be stacked using fastening means, such as a screw 56 (the fastening means shown in
Again, the LED lamp 10 may be adapted for use as a headlight in an automobile. In the embodiment shown in
As used herein, the term “automobile” is used to generically refer to wheeled motor vehicles of all types. While the expected primary use of the invention is in over-the-road passenger vehicles such as cars, sport utility vehicles, and pick-ups, it is contemplated that the invention may be useful in other vehicles such as industrial vehicles, over-the-road semi-tractors, agricultural vehicles, and the like. It is also contemplated that the LED lamp with heat sink described herein may be useful in other applications such as boating, home and industrial uses.
The invention has been shown and described above with the preferred embodiments, and it is understood that many modifications, substitutions, and additions may be made which are within the intended spirit and scope of the invention. From the foregoing, it can be seen that the present invention accomplishes at least all of its stated objectives.
The Present Application is a Continuation-in-Part Application of co-pending U.S. patent application Ser. No. 15/006,026, filed on Jan. 25, 2016, which claims priority to U.S. patent application Ser. No. 14/805,602, filed Jul. 22, 2015. These patent applications are herein incorporated by reference in their entirety, including without limitation, the specification, claims, and abstract, as well as any figures, tables, or drawings thereof.
Number | Name | Date | Kind |
---|---|---|---|
8746927 | Nepple et al. | Jun 2014 | B1 |
20120201043 | DiPenti | Aug 2012 | A1 |
20140063829 | Kushalappa et al. | Mar 2014 | A1 |
Number | Date | Country |
---|---|---|
303209998 | May 2015 | CN |
2015085921 | May 2015 | JP |
1528469 | Jul 2015 | JP |
Entry |
---|
Canadian Patent and Trademark Office, “Non-final Office Action”, issued in connection with Canadian Patent Application No. 2,909,296, dated Mar. 7, 2016. |
“LED Headlight Kit—H10 LED Headlight Bulbs Conversion Kit with Flexible Tinned Copper Braid”, retrieved Nov. 2, 2016, https://www.superbrightleds.com/moreinfo/led-headlight-bulbs-conversion-kits/led-headlight-kit-h10-led-headlight-bulbs-conversion-kit-with-flexible-tinned-copper-braid/2217/5003/. |
Super Bright LEDs, “LED Headlight Kit How to Install LED Headlight Bulbs Conversion Kit,” https://www.youtube.com/watch?v=Fn3M1Zb8eZY&feature=youtu.be video on webpage dated Feb. 24, 2015, accessed Nov. 3, 2016. |
http://web.archive.org/web/20160123155954/http://www.xenondepot.com/H9-LED-headlight-kit-p/h9-led-hl.htm webpage dated Jan. 23, 2016, retrieved Nov. 3, 2016. |
Unipower International Group, “The Evolution of Unipower Led Headlight”, brochure. |
Photograph purported to be of UpCarLight public disclosure at Automechanika Shanghai Trade Show Dec. 2014. |
Upcarlight, “1 No. fan design G5 LED headlight kits 2500LM”, e-mail brochure, Dec. 10, 2014. |
WeissLicht Illustro LED Headlight/Fog Light Bulb, retrieved Nov. 5, 2015, https://jlevisw.com/Accessories-for-BMW/Lighting/Fog-and-Head-Lights/Illustro-LED-Headlight-Fog-Light-Bulb/. |
LED Headlight Kit 9005 LED Headlight Bulbs Conversion Kit with Flexible Tinned Copper Braid, retrieved Nov. 5, 2015 from https://www.superbrightleds.com/moreinfo/h-series-bulbs/led-headlight-kit-9005-led-headlight-bulbs-coversion-kit-with-flexible-tinned-copper-braid/2213/5000/?utm_source=googlebase&utm_. |
Number | Date | Country | |
---|---|---|---|
20180023795 A1 | Jan 2018 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 14805602 | Jul 2015 | US |
Child | 15006026 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 15006026 | Jan 2016 | US |
Child | 15720517 | US |