This invention pertains generally to a heat management system, and more particularly to a LED heat management system.
Many lights use incandescent lamps. However, incandescent lamps or bulbs are less efficient than light emitting diodes (LEDs). LEDs are more efficient than incandescent lights and may have a longer life than incandescent lights. In order to prolong the life of LEDs, efficient dissipation of the heat generated by the LEDs is necessary.
Generally, in one aspect, a heat management system includes a support surface having a first side and a second side. A first heatsink is coupled to the second side of the support surface and has a main body and a plurality of heat fins extending from the main body. A second heatsink has a heat pipe sleeve that is in thermal connectivity with and surrounded by a plurality of heat fins on the second heatsink. A heat pipe is affixed adjacent the second side of the support surface and has a heat absorbing end and a heat releasing end. The heat absorbing end is in thermal connectivity with the first heatsink and extends between a pair of the fins of the first heatsink. The heat releasing end is in thermal connectivity with and surrounded by the heat pipe sleeve of the second heatsink.
In some embodiments the heat management system further includes a second heat pipe having a heat absorbing end and a heat releasing end. The heat absorbing end of the second heat pipe extends between a pair of the fins of the first heatsink. In some versions of these embodiments the second heatsink has a second heat pipe sleeve in thermal connectivity with and surrounded by the plurality of heat fins and the heat releasing end of the second heat pipe is in thermal connectivity with and surrounded by the second heat pipe sleeve of the second heatsink
In some embodiments the heat absorbing end of the heat pipe is in contact with the main body of the first heatsink. In some versions of these embodiments the heat absorbing end of the heat pipe is in contact with a contoured heat pipe seat extending from the main body of the first heatsink. In some versions of these embodiments the heat management system further includes a heat pipe clamp coupled to the first heatsink; the heat pipe clamp having at least one leg portion extending between a pair of the fins of the first heatsink. The heat absorbing end of the first heat pipe is compressed between the heat pipe seat of the first heatsink and the leg portion of the heat clamp.
In some embodiments the heat management system further includes a flexible neck member having a first end and a second end, the first end is coupled to the second heatsink. In some versions of these embodiments the first end of the flexible neck member surrounds the second heatsink and is in thermal connectivity with the second heatsink. In some versions of these embodiments the heat management system further includes a mounting base coupled to the flexible neck member proximal the second end thereof.
Generally, in another aspect, a heat management system includes a support surface having a first side and a second side. A plurality of light emitting diodes may be coupled to the first side of the support surface. A first heatsink is coupled to the second side of the support surface. The first heatsink has a main body and a plurality of heat fins extending from the main body. A second heatsink has a hollow interior and a plurality of heat fins radially extending around the hollow interior. The hollow interior houses a first heat pipe sleeve and a second heat pipe sleeve. The first heat pipe sleeve and the second heat pipe sleeve are in thermal connectivity with the plurality of heat fins. A first and second heat pipe each have a heat absorbing end and a heat releasing end. Each heat absorbing end of the first and the second heat pipe are in thermal connectivity with the first heatsink and extend between a pair of the fins of the first heatsink. The heat releasing end of the first heat pipe is in thermal connectivity with and surrounded by the first heat pipe sleeve of the second heatsink. The heat releasing end of the second heat pipe is in thermal connectivity with and surrounded by the second heat pipe sleeve of the second heatsink.
In some embodiments the heat absorbing end of each heat pipe is in contact with a corresponding heat pipe seat extending from the main body of the first heatsink. In some versions of these embodiments the heat management system further includes a heat pipe clamp coupled to the first heatsink. The heat pipe clamp has a first and second leg portion. Each leg portion extends between a pair of the fins of the first heatsink. The heat absorbing end of each heat pipe is compressed between a corresponding heat pipe seat of the first heatsink and a corresponding leg portion of the heat clamp.
In some embodiments the heat management system further includes a flexible neck member having a first end and a second end, the first end is coupled to the second heatsink. In some versions of these embodiments the first end of the flexible neck member surrounds the second heatsink and is in thermal connectivity with the second heatsink.
Generally, in another aspect, a flexible LED luminaire having a heat management system includes a support surface having a first side and a second side. A plurality of light emitting diodes are coupled to the first side of the support surface and electrically connected to a power source. A first heatsink is coupled to the second side of the support surface. A second heatsink is provided having a first heat pipe sleeve. A first heat pipe is provided having a heat absorbing end and a heat releasing end. The heat absorbing end is in thermal connectivity with the first heatsink and the heat releasing end is in thermal connectivity with and surrounded by the first heat pipe sleeve of the second heatsink. A housing surrounds the first heatsink. A flexible neck member has a first end coupled to the second heatsink and a second end distal the first end. A mounting base is coupled to the flexible member proximal the second end thereof.
In some embodiments the flexible LED luminaire further includes a second heat pipe having a heat absorbing end and a heat releasing end. The heat absorbing end is in thermal connectivity with the first heatsink. In some versions of these embodiments the heat releasing end of the second heat pipe is in thermal connectivity with and surrounded by a second heat pipe sleeve of the second heatsink.
In some embodiments the first heatsink has a plurality of heat fins and the heat absorbing end of the first heat pipe extends between the heat fins.
In some embodiments the first end of the flexible neck member surrounds the second heatsink.
In some embodiments the housing has a plurality of vents therethrough.
It is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless limited otherwise, the terms “connected,” “coupled,” “in communication with” and “mounted,” and variations thereof herein are used broadly and encompass direct and indirect connections, couplings, and mountings. In addition, the terms “connected” and “coupled” and variations thereof are not restricted to physical or mechanical connections or couplings. Furthermore, and as described in subsequent paragraphs, the specific mechanical configurations illustrated in the drawings are intended to exemplify embodiments of the invention and that other alternative mechanical configurations are possible.
With reference to
Flexible neck 60 has a first end 62 coupled to head 20 and a second end 64 coupled to ballast housing 72. Flexible neck 60 may be adjusted to and temporarily fixed at a plurality of orientations to enable head 20 to be directed toward a desired illumination area. Flexible neck 60 may be readjusted to and temporarily fixed to another orientation as desired. In some embodiments of luminaire 10 flexible neck 60 may house electrical wiring that extends from mounting base 70 to head 20. In some embodiments of luminaire 10 flexible neck 60 may be constructed from a metal having desirous heat distribution properties such as, but not limited to, stainless steel or aluminum.
With continuing reference to
A first heatsink 40 is couple to and in thermal connectivity with support surface 32. In some embodiments heatsink 40 may be constructed from a metal having desirable heat distribution properties, such as, but not limited to, aluminum. Heatsink 40 has a main body portion 42 and a plurality of heat fins 44 extending away from main body portion 42. A thermal layer 33 is provided between support surface 32 and first heatsink 40 to aid in heat dissipation. In some embodiments thermal layer 33 may be a thermal pad and in other embodiments thermal layer 33 may be a thermal compound, such as, but not limited to a thermal silicon paste. Thermal layer 33 may be omitted in other embodiments if not desired for heat dissipation. Two heat pipes 46 each have a heat absorbing end 47 and a heat releasing end 48. In some embodiments heat pipes 46 are constructed from Copper or Aluminum and filled with a coolant such as, but not limited to, water, ethanol, or acetone. Heat absorbing end 47 of each heat pipe 46 is in thermal connectivity with first heatsink 40 and extends between two heat fins 44. In the depicted embodiment two heat pipe seats 43 are provided, each extending from main body portion 42 between two heat fins 44. Heat absorbing end 47 of each heat pipe 46 is received in a corresponding heat pipe seat 43. A heat pipe clamp 45 may be coupled to first heatsink 40 and secured to appropriately compress heat absorbing end 47 of each heat pipe 46 between heat pipe clamp 45 and heat pipe seat 43. Heat pipe clamp 45 may absorb some heat from heatsink 40 and transfer heat to heat pipes 46 through contact with heat pipes 46. Heat pipe seats 43 generally conform to the contour of each heat pipe absorbing end 47 to increase the surface area that is contacting heat absorbing end 47. In other embodiments heat pipe seats 43 may be modified to provide more or less surface area, to correspond to a different shape of heat pipe absorbing end 47, or may be omitted. In some embodiments heat pipe clamp 45 may be omitted and heat pipes 46 may be otherwise maintained in position.
First heatsink 40 dissipates heat generated by the LEDs provided on support surface 32. Some of the heat is dissipated by main body 42 and some is dissipated by heat fins 44. Some of the heat is transferred from heatsink 40 to heat pipe absorbing end 47 of each heat pipe 46. Each heat pipe 46 transfers heat from heat absorbing end 47 to heat dissipating end 48 which is housed in a second heatsink 50. Second heatsink 50 has two heat pipe sleeves 52 that are in thermal connectivity with and surrounded by a plurality of heat fins 54. In some embodiments second heatsink 50 may be constructed from a metal having desirable heat distribution properties, such as, but not limited to, aluminum. Heat is transferred from heat dissipating end 48 of each heat pipe 46 to heat pipe sleeves 52, heat fins 54, and other portions of second heat sink 50. Heat may also be transferred from first heatsink 40 and/or second heatsink 50 to housing 22 and dissipated into the external environment. Wiring 5 may extend from neck 60 through second heatsink 50 to provide power to the LEDs 35 on support surface 32.
With particular reference to
First heatsink 40, heat pipes 46, and second heatsink 50 provide efficient heat dissipation for LEDs 35 mounted on support surface 32. Although first heatsink 40, heat pipes 46, and second heatsink 50 have been described in detail herein, many variations are possible. For example, in some embodiments only one heat pipe 46 may be provided, or heat pipes 46 may be coupled to one another at their heat absorbing ends 46 to form one continual heat pipe. For example, in other embodiments more than two heat pipes 46 may be provided. Also, for example, in some embodiments only a single heat pipe sleeve 52 may be provided in second heatsink 50 and it may surround just a single heat pipe 64 or it may surround multiple heat pipes 64.
The foregoing description has been presented for purposes of illustration. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teaching. It is understood that while certain forms of the LED heat management system have been illustrated and described, it is not limited thereto except insofar as such limitations are included in the following claims and allowable functional equivalents thereof.
This application claims priority to and benefit under 35 U.S.C. §119(e) to U.S. Provisional App. No. 61/142,115, filed on Dec. 31, 2008, entitled LED Heat Management System, the entire contents of which are hereby incorporated by reference.
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Number | Date | Country | |
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61142115 | Dec 2008 | US |