Active cooling device
09587820 ยท 2017-03-07
Assignee
Inventors
- Karl Kristian Udris (Cleveland, OH, US)
- Glenn Howard Kuenzler (Beachwood, OH, US)
- Jeremias Anthony Martins (Twinsburgh, OH, US)
Cpc classification
F21V29/63
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/75
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/238
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/63
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An active cooling device in the form of a torsional, oscillating synthetic jet is provided. Fins are oscillated in a manner that creates a flow of air that can be used to cool an electronic device such as a lamp. Embodiments of the active cooling device can be compact and readily incorporated within heat sinks of different sizes and configurations. The flow of air can be provided as jets of air distributed over multiple directions as may be desirable with certain electronics such as an omnidirectional lamp.
Claims
1. An active cooling device, the active cooling device defining radial and circumferential directions, the active cooling device comprising: a plurality of fins spaced apart from each other along a circumferential direction of the cooling device and rotatable about an axis of rotation; a housing defining a plurality of chambers positioned adjacent to each other along the circumferential direction, each of the plurality of chambers formed at least in part by opposing walls that extend along the radial direction, each chamber defining at least two openings for air flow in and out of the chamber, wherein at least one fin from the plurality of fins is movably positioned within each chamber; and an oscillating device positioned at least partially within the housing and radially inward of the plurality of fins, the plurality of fins connected with the oscillating device, the oscillating device structured for causing the plurality of fins to rotate back and forth along the circumferential direction so as to create air flow through the openings in each chamber; the device further comprising a plurality of light emitting devices supported by the housing and positioned outside of the plurality of chambers of the housing, wherein the at least two openings are spaced apart on sides of light emitting devices.
2. The active cooling device as in claim 1, wherein the oscillating device further comprises: a magnetic field generator; and a magnet positioned within a magnetic field provided by the magnetic field generator and configured for rotating along the circumferential direction about the axis of rotation; and a torsional element supporting the magnet within the magnetic field, the torsional element configured for applying a restorative torque to the magnet along the circumferential direction about the axis of rotation.
3. The active cooling device as in claim 1, wherein the oscillating device further comprises: a bobbin defining an interior space; a coil wrapped around the bobbin and configured for creating a magnetic field; at least one magnet positioned within the interior space and configured for rotating along the circumferential direction about the axis of rotation, wherein the plurality of fins are configured to rotate with the at least one magnet; a pair of torsional elements positioned at opposing ends of the least one magnet and positioned along the axis of rotation, the torsional elements connected between the bobbin and the magnet so as to suspend the magnet within the bobbin.
4. The active cooling device as in claim 3, wherein the pair of torsional elements each comprises a spring or spring-like element configured for storing and releasing potential energy as the magnet is rotated back and forth about the axis of rotation.
5. The active cooling device as in claim 3, further comprising a magnet housing into which the at least one magnet is received, wherein the pair of torsional elements are connected to the magnet housing.
6. The active cooling device as in claim 5, further comprising a ring extending about the circumferential direction and attached to the magnet housing, wherein the plurality of fins are attached to the ring.
7. The active cooling device as in claim 1, wherein the at least two openings of each chamber are spaced apart from each other along the circumferential direction and positioned relative to the fin in each chamber such that the direction of air flow alternates between the at least two openings as the plurality of fins are rotated back and forth.
8. The active cooling device as in claim 1, wherein each fin extends linearly along the radial direction.
9. The active cooling device as in claim 1, wherein the housing comprises a heat sink for an electronic device.
10. The active cooling device as in claim 1, wherein the plurality of light emitting devices comprise a plurality of LEDs spaced apart along the circumferential direction.
11. A lamp comprising the active cooling device of claim 1.
12. An active cooling device, comprising: a housing defining an internal compartment and a plurality of chambers positioned proximate to each other along a circumferential direction, the plurality of chambers positioned radially outward of the internal compartment, each of the plurality of chambers formed at least in part by opposing walls that extend along a radial direction, each chamber of the plurality of chambers having at least two openings spaced apart from each other along the circumferential direction; a plurality of fins mechanically connected to each other, each fin positioned in one of the plurality of chambers, the plurality of fins rotatable within the plurality of chambers and about an axis of rotation so as to create a flow of air through the at least two openings; and an oscillating device positioned at least partially within the internal compartment of the housing and radially inward of the plurality of fins, the plurality of fins connected with the oscillating device, the oscillating device structured for causing the plurality of fins to rotate back and forth along the circumferential direction so as to create air flow through the openings in each chamber; the device further comprising a plurality of light emitting devices supported by the housing and positioned outside of the plurality of chambers of the housing, wherein the at least two openings are spaced apart on sides of light emitting devices.
13. The active cooling device as in claim 12, wherein the oscillating device further comprises: a bobbin defining an interior space; a coil wrapped around the bobbin and configured for creating a magnetic field; at least one magnet positioned within the interior space and configured for rotating along the circumferential direction about the axis of rotation, wherein the plurality of fins are configured to rotate with the at least one magnet; and a pair of torsional elements positioned at opposing ends of the least one magnet and positioned along the axis of rotation, the torsional elements connected between the bobbin and the magnet so as to suspend the magnet within the bobbin.
14. The active cooling device as in claim 12, wherein the oscillating device further comprises: a magnetic field generator; and a magnet positioned within the magnetic field provided by the magnetic field generator and configured for rotating along the circumferential direction about the axis of rotation; and a torsional element supporting the magnet within the magnetic field, the torsional element configured for rotation along the circumferential direction about the axis of rotation.
15. The active cooling device as in claim 14, wherein the torsional element comprises a spring or spring-like element configured for storing and releasing potential energy as the magnet is rotated back and forth about the axis of rotation.
16. The active cooling device as in claim 14, further comprising a magnet housing into which the at least one magnet is received, wherein the torsional element is connected to the magnet housing.
17. The active cooling device as in claim 14, further comprising a fin support element extending about the circumferential direction and attached to the magnet housing, wherein the plurality of fins are attached to the fin support element.
18. The active cooling device as in claim 12, wherein the at least two openings of each chamber are spaced apart from each other along the circumferential direction and positioned relative to the fin in each chamber such that the direction of air flow alternates between the at least two openings as the plurality of fins are rotated back and forth.
19. A lamp comprising: a plurality of LEDs; and an active cooling device; wherein the active cooling device defines radial and circumferential directions, the active cooling device comprising: a plurality of fins spaced apart from each other along a circumferential direction of the cooling device and rotatable about an axis of rotation; a housing defining a plurality of chambers positioned adjacent to each other along the circumferential direction, each chamber defining at least two openings for air flow in and out of the chamber, wherein at least one fin from the plurality of fins is movably positioned within each chamber; and an oscillating device positioned at least partially within the housing and radially inward of the plurality of fins, the plurality of fins connected with the oscillating device, the oscillating device structured for causing the plurality of fins to rotate back and forth along the circumferential direction so as to create air flow through the openings in each chamber; and wherein the plurality of LEDs are supported by the housing and spaced apart along the circumferential direction and positioned outside of the plurality of chambers of the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A full and enabling disclosure of the present invention, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE INVENTION
(11) Reference now will be made in detail to embodiments of the invention, one or more examples of which are illustrated in the drawings. Each example is provided by way of explanation of the invention, not limitation of the invention. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Thus, it is intended that the present invention covers such modifications and variations as come within the scope of the appended claims and their equivalents.
(12)
(13) Active cooling device 101 includes a housing 102 (
(14) As shown in
(15) As shown in
(16) Referring specifically now to
(17) By using the oscillating device 120 to provide a cyclic movement of fins 114 between the first and second phases, active cooling device 101 cools housing 102 and, therefore, lamp 100 or another electronic device in which it is configured. The frequency of oscillation between the first and second phases can be controlled to determine the level of cooling desired.
(18) Fins 114 can be constructed to have profile that closely matches the cross-sectional shape of chamber 116. For example, as shown in
(19) Referring now to
(20) A pair of torsional elements 130 and 131 are positioned at opposing ends of magnet 128 along the axis of rotation A-A. The torsional elements 130 and 131 are connected between the bobbin 124 and the magnet housing 138 and rotatably support or suspend the magnet 128 within the magnetic field created by magnetic field generator 122. Referring to
(21) A variety of components may be used for torsional elements 130 and 131. In one exemplary embodiment, torsional elements 130 and 131 act as bearings that allow the free rotation of magnet 128 about axis A-A. In such an embodiment, torsional elements 130 and 131 do not assist in causing magnet 128 to rotate. Instead, magnet 128 rotates only under the effects of the magnetic field created by generator 122.
(22) In another embodiment, torsional elements 130 and 131 are constructed from a spring or spring-like element such as wound metal coils or a resilient material, e.g., resilient silicone. For this construction, torsional elements 130 and 131 provide for storing and releasing energy during the oscillation of magnet 128 and, therefore, oscillation of fins 114 about axis A-A as generator 122 creates a cyclic, magnetic field.
(23) For example, in the position shown in
(24)
(25) Lamp 100 includes a heat sink in the form of housing 102, which is constructed from an upper portion 104 and a lower portion 106 in a manner similar to the embodiments of
(26) Heat sink housing 102 includes an active cooling device in a manner previously described so as to create a flow of air through a plurality of openings 118 that are spaced apart along circumferential direction C with some openings 118 at different locations along axial direction defined by axis of rotation A-A. Openings 118 allow for a flow of air between the inside of housing 102 and the environment external to housing 102. For example, air may flow into, or out of, housing 102 through openings 118, as previously described. With this exemplary embodiment, openings 118 are spaced apart on both axial sides of light emitting elements 119i.e. they may be both above and below light emitting elements 119 when lamp 100 is oriented as shown in
(27) Heat sink housing 102 may be constructed from a variety of high thermal conductivity materials that will promote the transfer of heat from the thermal load provided by light emitting elements 119 to the ambient environment and thereby reduce the temperature rise that would otherwise result from the thermal load. Exemplary materials can include metallic materials such as alloy steel, cast aluminum, extruded aluminum, and copper, or the like. Other materials can include engineered composite materials such as thermally-conductive polymers as well as plastics, plastic composites, ceramics, ceramic composite materials, nano-materials, such as carbon nanotubes (CNT) or CNT composites. Other configurations may include a plastic heat sink body comprising a thermally conductive (e.g., copper) layer disposed thereupon, such as disclosed in US Patent Publication 2011-0242816, hereby incorporated by reference. Exemplary materials can exhibit thermal conductivities of about 50 W/m-K, from about 80 W/m-K to about 100 W/m-K, 170 W/m-K, 390 W/m-K; or, from about 1 W/m-K to about 50 W/m-K.
(28) As stated above, lamp 100 includes a plurality of light emitting elements 119 that are positioned about heat sink 102 and are spaced apart along the circumferential direction C. The embodiment illustrated includes eight LEDs spaced apart circumferentially about the periphery of heat sink 102. Other numbers of LEDs may be used as well including, for example, six and seven. In addition, other types of light emitting elements 119 other than LED-based elements may be used.
(29) A plurality of optical elements 121 are positioned over the LEDs 118. Optical elements 121 receive light from LEDs 119 and help distribute the same. As used herein, the term optical elements may generally refer to one or more of diffusers, reflectors, and/or any associated light management elements such as e.g., lenses; or combinations thereof; or the like. For example, optical elements 121 may be constructed as diffusers that are made from materials (glass, polymers such as polycarbonates, or others) that help scatter light received from LEDs. Again, the lamp of
(30) This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they include structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.