US20070086189A1 - LED Assembly with Vented Circuit Board - Google Patents
LED Assembly with Vented Circuit Board Download PDFInfo
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- US20070086189A1 US20070086189A1 US11/538,790 US53879006A US2007086189A1 US 20070086189 A1 US20070086189 A1 US 20070086189A1 US 53879006 A US53879006 A US 53879006A US 2007086189 A1 US2007086189 A1 US 2007086189A1
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- Prior art keywords
- led
- leds
- circuit board
- layer
- thermal
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09F—DISPLAYING; ADVERTISING; SIGNS; LABELS OR NAME-PLATES; SEALS
- G09F9/00—Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements
- G09F9/30—Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements
- G09F9/33—Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements being semiconductor devices, e.g. diodes
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09F—DISPLAYING; ADVERTISING; SIGNS; LABELS OR NAME-PLATES; SEALS
- G09F13/00—Illuminated signs; Luminous advertising
- G09F13/20—Illuminated signs; Luminous advertising with luminescent surfaces or parts
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K1/00—Printed circuits
- H05K1/02—Details
- H05K1/0201—Thermal arrangements, e.g. for cooling, heating or preventing overheating
- H05K1/0203—Cooling of mounted components
- H05K1/0209—External configuration of printed circuit board adapted for heat dissipation, e.g. lay-out of conductors, coatings
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/06—Thermal details
- H05K2201/064—Fluid cooling, e.g. by integral pipes
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/09—Shape and layout
- H05K2201/09818—Shape or layout details not covered by a single group of H05K2201/09009 - H05K2201/09809
- H05K2201/0989—Coating free areas, e.g. areas other than pads or lands free of solder resist
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/10—Details of components or other objects attached to or integrated in a printed circuit board
- H05K2201/10007—Types of components
- H05K2201/10106—Light emitting diode [LED]
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/10—Details of components or other objects attached to or integrated in a printed circuit board
- H05K2201/10431—Details of mounted components
- H05K2201/1056—Metal over component, i.e. metal plate over component mounted on or embedded in PCB
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2203/00—Indexing scheme relating to apparatus or processes for manufacturing printed circuits covered by H05K3/00
- H05K2203/08—Treatments involving gases
- H05K2203/081—Blowing of gas, e.g. for cooling or for providing heat during solder reflowing
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2203/00—Indexing scheme relating to apparatus or processes for manufacturing printed circuits covered by H05K3/00
- H05K2203/11—Treatments characterised by their effect, e.g. heating, cooling, roughening
- H05K2203/1178—Means for venting or for letting gases escape
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K3/00—Apparatus or processes for manufacturing printed circuits
- H05K3/22—Secondary treatment of printed circuits
- H05K3/28—Applying non-metallic protective coatings
Definitions
- the invention relates to lighting units using light emitting diodes (LEDs). More particularly, the invention relates to a light emitting diode assembly with a vented circuit board.
- LEDs light emitting diodes
- LEDS Light-emitting diodes
- display assemblies having LEDs generate heat as electric current flows through the devices. The heat must be dissipated or removed to prevent overheating. Cooling a display assembly is important in order to preserve its functionality and efficiency. Furthermore, display assemblies when used in outdoor environments may be exposed to wind forces that affect loading on the assemblies.
- PCT publication WO2004019657 One approach for cooling an LED display assembly is shown in PCT publication WO2004019657. The publication generally shows a coolant fluid which cools LEDs using a mesh design.
- a printed circuit board assembly includes a plurality of LEDs disposed in a grid pattern at junctions in which the junctions are interconnected by adjacent bridges defining air vents.
- a plurality of vents enables air to pass through the printed circuit board assembly, thus reducing wind resistance and promoting cooling.
- a printed circuit board assembly in another variation, includes a plurality of LED modules, each LED module being disposed at a corresponding junction, the junctions being connected to bridges in which adjacent bridges define air vents for allowing air to pass through.
- the bridges and junctions include a multilayer substrate having an insulating layer and a thermal cooling layer in thermal communication with the LED modules.
- the insulating layer may include a plurality of fluid openings configured for fluid convective heat transfer with the thermal cooling layer.
- a printed circuit board assembly includes a plurality of LED modules and a multilayer substrate.
- the multilayered substrate may have an external insulating layer and a thermal cooling layer in thermal communication with the LED modules.
- the external insulating layer includes a plurality of openings which exposes the thermal cooling layer for fluid convective heat transfer.
- a printed circuit board assembly includes a plurality of LEDs having a dome.
- the LEDs may be disposed in a grid pattern at junctions being interconnected by bridges defining air vents.
- the bridges include a substrate for activating the LEDs and the substrate includes a front side including the LEDs and an opposing a rear side. Aerodynamic members configured to reduce air pressure are disposed on the second side of the substrate corresponding to location of the junctions. In this way, wind loading may be reduced for multiple directions.
- FIG. 1 illustrates a perspective view of a printed circuit board assembly according to one or more aspects of the present invention.
- FIG. 2 illustrates a frontal elevation view of the printed circuit board assembly of FIG. 1 .
- FIG. 3 illustrates an enlarged view of the printed circuit board assembly of FIG. 1 with LED modules.
- FIG. 4 illustrates an enlarged view of a printed circuit board assembly similar to FIG. 3 , with the LED modules according to one or more aspects of the present invention.
- FIG. 5 illustrates a first rear perspective view of an LED module according to one or more aspects of the present invention.
- FIG. 6 illustrates a front perspective view of the LED module of FIG. 5 according to one or more aspects of the present invention.
- FIG. 7 illustrates a second rear perspective view of a LED module according to one or more aspects of the present invention.
- FIG. 8 illustrates a perspective view of an alternative embodiment of a printed circuit board assembly according to one or more aspects of the present invention.
- FIG. 9 illustrates a schematic diagram of one possible decoder-conductor arrangement for energizing components of a LED module according to one or more aspects of the present invention.
- FIG. 10 illustrates an enlarged view of the PCB assembly of FIG. 1 with a first heat dissipation feature according to one or more aspects of the present invention.
- FIG. 11 illustrates an enlarged view of the PCB assembly of FIG. 1 with a second heat dissipation feature according to one or more aspects of the present invention.
- FIG. 12 illustrates an enlarged view of the PCB assembly of FIG. 1 with a third heat dissipation feature according to one or more aspects of the present invention.
- FIG. 13 illustrates a partial schematic section view of the printed circuit board assembly taken along line 13 - 13 of FIG. 10 .
- FIG. 14 illustrates a schematic diagram of a conductor-LED module arrangement according to one or more aspects of the present invention.
- FIG. 15 illustrates a partial schematic section view of an alternative multilayer substrate arrangement according to one or more aspects of the present invention.
- FIG. 16 illustrates a partial schematic section diagram of an alternative multilayer substrate arrangement according to one or more aspects of the present invention.
- FIG. 17 illustrates a partial schematic diagram of an alternative PCB assembly according to one or more aspects of the present invention.
- FIG. 18 illustrates a partial schematic diagram of a PCB assembly with roughness members according to one or more aspects of the present invention.
- FIGS. 1-4 illustrate an embodiment of a printed circuit board (PCB) assembly 2 including an array or grid pattern of light emitting diode (LED) modules 4 mounted thereon.
- the LED modules 4 are disposed at intersecting junctions 5 of the PCB assembly 2 in a generally perpendicular X-direction and Y-direction based on a Cartesian coordinate system.
- the junctions 5 are interconnected by a plurality of bridges 17 defining vents 22 , which may be drilled or routed in the printed circuit board.
- printed circuit board is used for ease of reference, it should be understood that other types of circuit boards other than printed boards may be used, and such boards are intended to be encompassed within the term “printed circuit board” or PCB. Examples may include embedded wires, ribbon cables, or similar structures.
- FIGS. 5-7 illustrate an embodiment of an LED module 4 according to one or more aspects of the present invention.
- LED module 4 may include one or more LEDs 6 a - d disposed within the interior cavity of a removable translucent dome or cap 8 .
- the cap is optional and may not be required in all applications.
- the LED module 4 may have more or fewer LEDs depending on the acceptability for the intended use.
- an LED module may consist of a single LED mechanically attached by, for example, soldering to the circuit board.
- the dome 8 may be formed of several alternative materials, such as a translucent plastic or glass. Various materials may be selected for atmospheric environments based on the intended use. An appropriate material and thickness characteristics enables the dome 8 to protect the LED 6 a - d against physical impingement from flying projectiles in the air or rain, and may help in reducing aerodynamic drag on the assembly. Dome 8 can be optically neutral to preserve the optical characteristics of the LED 6 a - d, such as field-of-view focusing. Alternatively, dome 8 may also have optical properties that enhance those of the LED 6 a - d , such as lowering the side leakage. The material may also protect the LEDs 6 a - d from UV damage that may discolor the optical material or other internal components.
- the UV protection helps to mitigate brightness reduction of the LEDs 6 a - d over time due to exposure to external UV wavelengths.
- the dome 8 may be removably mounted via a friction-fit engagement to a base member 10 .
- dome 8 may be mounted to the base member 10 in other ways, such as in a snap-fit or threaded engagement.
- the removable arrangement of the dome 8 provides access for field or bench-level maintenance, such as replacement or upgrade to the LED 6 a - d or other components of LED module 4 .
- LED modules may be removed from the PCB assembly for maintenance and the like.
- the LED module may be attached to the board by a hinge or similar mechanism such that it can be opened without being removed.
- base member 10 includes extension members or protrusions 12 that may be utilized for mounting the LED module 4 to the PCB assembly 2 .
- the extension members 12 may provide a partial heat transfer path for cooling the LED module 4 in conjunction with PCB 2 assembly substrates.
- the base member 10 may be composed of a number of alternative materials, including copper, aluminum, or a mixture of metal particulates suspended in a plastic material, carbon fibers or other well known material that provides thermal conductivity without electrical connection.
- the base member 10 may have an annular or circular shape.
- base member 10 may be formed in several shape configurations depending on the intended use of the LED module 4 .
- a peripheral surface of the base member 10 may retain a sealing member 14 .
- the sealing member 14 may be configured to prevent debris and other external environmental components from entering into the interior cavity of the LED module 4 formed between the dome 8 and base member 10 .
- the sealing configuration with the dome 8 also provides protection of the LEDs 6 a - d against environmental conditions, such as temperature, humidity, salt, acid rain and the like.
- the sealing member 14 can be formed in several shapes and mounted to the base member 10 using conventional methods and techniques.
- the sealing member 14 can be formed as an annular ring, such as an O-ring. Further, the sealing member 14 may be composed of a resilient material, such as rubber or a synthetic rubber. For mounting arrangements, the sealing member 14 may be adhesively bonded to the base member 10 . Alternatively, the sealing member 14 can provide compression forces for a friction fit engagement with the base member 10 .
- each LED 6 a - d includes two electrical leads 16 physically connected to respective electrical conductors.
- Lead material and length may be selected to maximize thermal connection between LED and circuit board for heat dissipation, as discussed in more detail below.
- leads 16 are shown, the LED module may have other alternative configurations.
- the LED module may be surface mounted or a direct-on-die arrangement on the PCB assembly substrate. In such a surface mount configuration, the leads are connected to electrical conductors or traces.
- a single LED may be placed at each junction, and may be selectively illuminated by energizing a corresponding X-wire conductor and Y-wire conductor, such that the LED at the junction of the X-wire conductor and Y-wire conductor causes the LED to be illuminated.
- more than one LED may be affixed to each junction, such that a single X-wire conductor and Y-wire conductor when energized cause all of the LEDs at the junction to be illuminated.
- a plurality of X-wire conductors and a plurality of Y-wire conductors overlap at the junction, such that more than one pair of conductors is available to selectively illuminate one or more LEDs at the junction.
- Drivers of various types may be used in association with the LEDS, such that signaling is provided on one set of conductors while power is provided by means of other conductors.
- multiple LEDs at the junction may be selectively energized by means of a decoder that decodes signals on corresponding X-wire conductors and Y-wire conductors such that a larger number of LEDs can be selectively illuminated using a smaller number of conductors.
- the LED module 4 may include a decoder unit 18 which may be configured for control of energizing or de-energizing each respective LED 6 a - d through MOSFET gating or other means.
- Each decoder unit 18 may be responsive to computer readable commands intended for controlling each LED 6 a - d.
- each LED 6 a - d within the module 4 may be energized simultaneously for increased illumination and brightness characteristics depending on the intended application.
- applications that may utilize the PCB assembly 2 could be a vehicular or aircraft traffic signage; large screen video displays; and computerized video billboards and the like.
- each decoder unit 18 may have six leads for various logic control functions with a computer and the like.
- the LED module 4 may include a heat resistor 20 disposed between the LEDs 6 a - d.
- the heat resistor 20 may be energized when defogging or deicing of the dome 8 or other internal components is needed.
- one of the decoder units 18 may be configured to control the heat resistor 20 .
- a separate electrical conductor connected to a switch may control operation of the heat resistor 20 .
- the PCB assembly at the junctions 5 may include electrical conductors 11 a - c and 13 a - b.
- the conductors may be provided in a two-by-three array for selectively energizing the intended LED 6 a - d within the LED module 4 . More or fewer conductors may be used depending on the desired configuration.
- Conductor 11 c can be used for providing power or other signals to the decoder unit 18 .
- the decoder unit 18 may be connected to the electrical conductors 11 a - c and 13 a - b in a conventional manner to enable control of LEDs 6 a - d.
- FIG. 14 illustrates one possible arrangement of conductors and an LED module 4 at the junction 5 without a decoder unit controlling the LED module.
- the PCB assembly 2 may be constructed in a multilayered arrangement in which the different conductive layers include conductors in the X-direction and the Y-direction, separated by an insulating layer.
- FIG. 14 shows a two-by-two array of conductors x 1 , x 2 and conductors y 1 , y 2 disposed on different conductive layers for energizing LEDs 6 a - d. In operation, each LED 6 a - d may be energized in a number of different configurations.
- LED 6 a may be energized with conductor x 1 and conductor y 1 ; LED 6 b may be illuminated with conductor x 1 and conductor y 2 . LED 6 c can be illuminated with conductor x 2 and conductor y 2 . LED 6 d may be energized by conductor x 2 and conductor y 1 . Nonetheless, all the conductors x 1 - 2 and y 1 - 2 may be used to illuminate all the LEDs 6 a - d for increased brightness. While LED modules with four LEDs have been shown, a single LED may be disposed at the junctions and operate with or without a decoder unit. In this approach, the LEDs 6 a - d can be addressable by the conductor arrangement.
- FIGS. 10-12 illustrate alternative arrangements of the PCB assembly 2 for providing heat dissipation for cooling the LED modules.
- the PCB assembly 2 includes thermodynamic cooling features and aerodynamic features, such as a plurality of air vents 22 .
- the vents 22 enable air to pass through the PCB assembly 2 to reduce wind pressure on the PCB assembly and may assist with heat dissipation. This vent configuration advantageously enables the PCB assembly to be implemented in high environments and prevents excessive wind loading. Additionally the air vents 22 are configured for removing the heat generated by the LED modules 4 and other electrical components. The cooling exchange provided by the vents 22 reduces localized hot spots in the PCB assembly 2 .
- the junctions 5 are connected by bridges 17 in which the air vents 22 are defined between the bridge and junctions.
- the multilayer substrate includes the bridges 17 .
- the air vents 22 are devoid of material between four adjacent junctions 5 and bridges 17 .
- the air vents 22 are generally shaped as a square configuration. Nonetheless, other shapes are possible.
- the bridges 17 have a width smaller than the diameter of the junctions 5 .
- a ratio of the width of the bridges to the diameter of the junctions is less than one. This is one way of controlling the size of the vents by controlling the width of the bridges 17 .
- this configuration reduces wind pressure on the PCB assembly 2 . In an exposed environment, the air may flow through the vents 22 for passive cooling of the LED modules 4 by way of natural convection.
- fluidic cooling of the PCB assembly 2 can be implemented by providing a cooling fluid of sufficient velocity and a volume to flow over the LED modules 4 and through the fluid vents 22 .
- the cooling fluid may flow in a direction parallel to a plane formed by the X-direction and Y-direction.
- the cooling fluid with sufficient volume and velocity may flow primarily through the air vents 22 by being directed generally perpendicular of the plane of the PCB assembly 2 .
- a cooling fluid may be a gas, such as ambient air, drawn external to the PCB assembly 2 in an enclosed arrangement.
- the cooling fluid could be recirculated air after heat is removed via an air conditioning device (not shown). The heat is removed from LED modules 4 by convection.
- FIG. 8 shows an alternative PCB assembly 2 ′ with large size vents 26 to promote additional air passing through PCB assembly and additional cooling of the LED modules 4 .
- the size of the vents 26 are controlled by the width of the bridges 6 ′ and the length. This configuration enables more air to pass through the vents 26 for reducing wind loading and subsequent stress on the structure.
- PCB assembly 2 ′ has similar components of PCB assembly 2 .
- PCB assembly 2 ′ may be used with other aspects of heat dissipation and aerodynamic features of the present invention.
- the size of the vents is many times the size of each LED module, thus providing a minimal cross-section to wind.
- FIG. 13 shows a section view of the PCB assembly 2 taken along line 13 - 13 of FIG. 10 .
- the PCB assembly 2 may be constructed in a multilayered arrangement comprising a plurality of layers 2 a - g.
- layers 2 a , 2 c , 2 e and 2 g may be composed of a dielectric insulator.
- a thermal conductive layer 2 b may be disposed between the outer layer 2 a and a dielectric insulator layer 2 c .
- a first electrical conductive layer 2 d may be disposed between dielectric insulator layers 2 c and 2 e .
- a second electrical conductive layer 2 f may be disposed between insulator layers 2 e and 2 g .
- the substrate may have more or fewer layers and other arrangements of the layers are possible.
- the sidewalls 7 may also be the outer layer 2 a of the multilayer substrate.
- the PCB assembly 2 may be manufactured using conventional multilayered conductor techniques.
- the leads 16 of LEDs 6 a may extend through holes in the dielectric layer 2 a , thermal conductive layer 2 b , and dielectric layers 2 c , 2 e to the conductive layers 2 d and 2 f .
- each lead 16 may be same length and the holes may include metal deposits through conventional manufacturing methods to enable electrical current to flow from the conductor layers to each lead 16 .
- the thermal conductive layer 2 b may the thermally insolated from the leads 16 and the holes.
- the dielectric outer layer 2 a of the PCB assembly 2 may have a plurality of fluid openings 24 for exposing a thermal conductive layer 2 b for air communication to increase the effective convective contact area to allow heat dissipation of the LED modules 4 .
- the openings 24 are devoid of a dielectric material so as to form pathways in which a flowing cooling fluid, such as air, may contact the thermal conductive layer 2 b to receive heat. In such an arrangement, the air may enter the opening 24 and the air is prevented from flow through the PCB by the thermal conductive layer 2 b .
- the openings 24 may have a circular shape. Nevertheless, the openings 24 may have other shapes depending on a desired cooling performance with respect to the convective contact area. For example, the shapes may be square, rectangular, triangular, oval, and the like.
- the openings 24 may be in the form of the slots in the dielectric outer layer 2 a .
- the openings 24 may be disposed on the top surface of the PCB assembly substrate.
- the openings 24 may be located on a sidewall 7 in the vents 22 of the PCB assembly substrate.
- the sidewall 7 arrangement of the opening 24 in combination with a cooling fluid, such as air, flowing through the vents 22 provides an incremental heat transfer advantage by enabling increased fluid exchange with the thermal conductive layer 2 b .
- the material of the thermal layer 2 b may have an appropriate heat transfer coefficient based on the heat generating characteristics of the LED modules 4 .
- the thermal conductive layer 2 b can be composed of a number of alternative materials, including a copper, aluminum, or a mixture of metal particulates suspended in a plastic material.
- the thermal coefficient of thermal expansion of the conductive layer and dielectric layers would be matched to take into account any thermal induced mechanical stress.
- small holes may extend all the way through the substrate in the bridge 17 so air can pass through the bridge. The small holes may be placed proximate to the LED modules to close proximity to the location of heat generation. In this way, there is the possibility of obtaining improved heat dissipation.
- the thermal conductive layer 2 b may be physically connected to the base member 10 , in particular to the protrusions 12 of the LED module 4 .
- the base member 10 may serve as a heat sink with respect to the LEDs 6 a - d.
- the thermal conductive layer 2 b may be a lower temperature than the LED module 4 .
- a resultant thermal temperature differential enables the heat generated by the LED 6 a - d to be transferred to the base member 10 and to the thermal conductive layer 2 b .
- a thermoelectric cooling module (not shown) may be used to lower the temperature of the thermal conductive layer 2 b . This creates an enhanced heat sink performance for the thermal layer.
- the thermoelectric cooling module may be powered with the conductors from layers 2 d and 2 f.
- FIG. 16 illustrates a section view of an alternative multilayer substrate 50 with an LED 32 .
- LED 32 includes a cathode lead 52 and an anode lead 54 for receiving electrical power.
- the lead 52 of LED 32 may be connected to trace layer 50 b .
- the lead 54 of LED 32 may extend to trace layer 50 d .
- the thermally conductive layer(s) 50 a and 50 c may be disposed in close proximity to the trace/layer 50 b which is thermally and electrically connected to the cathode lead 52 of the LED.
- either side of the trace layer 50 b can be sandwiched by the thermal layer(s) 50 a and 50 c to provide maximum thermal dissipation and/or heat sinking.
- Thermal layer 50 c may be disposed between the trace layer 50 b and layer 50 d .
- a single thermal conductive layer may simultaneously provide heat transfer benefits for both trace layers. This configuration may also reduce the thickness of the substrate 50 .
- Multilayer substrate 50 may be used with PCB assembly 2 shown in FIGS. 1-4 and the air vents 22 for maximum heat conduction.
- the thermal conductive layer 50 a and 50 c may be composed of various materials which provide thermal conduction yet high electrical resistance, including polymeric, polymeric blends, or carbon fibers.
- FIG. 12 illustrates an alternative heat dissipation arrangement including an outer exposed layer 30 which may serve both electrical and thermal conductive functions.
- the convective contact area is increased for cooling the LED module or LEDs in the cooling configuration.
- the layer 30 may serve as an electrical conductor for the LED module or LEDs.
- FIG. 15 illustrates a section view of an alternative multilayer substrate 34 with an LED 32 .
- Multilayer substrate 34 includes an exposed upper layer 34 a that serves as both an electrical conductor and a thermal conductor for heat dissipation.
- Upper layer 34 a may include one or more conductors in the X-direction.
- a bottom electrical conductive layer 34 c may include one or more conductors in the Y-direction.
- a dielectric insulating layer 34 b may be disposed between the layer 34 a and layer 34 c .
- LED 32 includes two lead 36 , 38 for receiving electrical power. The lead 36 of LED 32 may be connected to upper layer 34 a .
- the lead 38 of LED 32 may extend through holes in layer 34 a , and dielectric layer 34 b to the conductive layer 34 c . While a single LED is shown, the inventive aspects can be practiced with multiple LEDs or LED modules. Multilayer substrate 34 may be used with PCB assembly 2 shown in FIGS. 1-4 and the heat dissipation vents 22 . In this embodiment, electrically and thermally conductive layer 34 a assists in dissipating heat from LED 32 .
- layer 34 a may comprise a thermally conductive layer that has poor electrical conducting qualities, thus helping to dissipate heat while acting as an electrical insulator.
- Layer 34 b could then be used as the electrical path to LED 32 , and another layer 34 d (not shown) would act as the other electrical conductor.
- LED leads 36 and 38 would be connected to layers 34 b and 34 d (not shown) for electrical connectivity.
- FIG. 17 illustrates a partial schematic diagram of an alternative PCB assembly 60 with a two-sided aerodynamic configuration which provides a benefit of reducing wind pressure.
- the substrate 62 has a front side 64 and rear side 66 .
- the LED module 32 may mounted on the front side 64 and the LED module 32 may include a dome 8 .
- the rear side of the PCB assembly 60 may include an aerodynamic member 68 for reducing wind pressure.
- the PCB assembly 60 includes air vents (not shown) for enabling air to pass through the PCB. Air flowing towards the LED module 32 of dome 8 can reduce air pressure, and air flowing in an opposite direction also has reduced resistance with respect to the structure.
- the aerodynamic member may comprise various shapes such as a hemispherical shape or a nose cone shape.
- the bridge 17 may include a plurality of roughness members 70 on the surface of the multilayer substrate.
- the roughness members 70 protrude from the surface of the substrate.
- the members 70 can have a variety of shapes, such as hemispherical and the like. These roughness members 70 may be provided to promote small air turbulence to reduce the boundary layer for reducing the insulating effects of the air and promote increased heat transfer from the thermal layer to the air.
- roughness members 70 may increase the interaction of the air with the thermal layer to improved passive cooling.
- One of ordinary skill in the air may embodiment computational fluid mechanics and the like for specific dimensional characteristics.
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- Engineering & Computer Science (AREA)
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- General Physics & Mathematics (AREA)
- Theoretical Computer Science (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Arrangement Of Elements, Cooling, Sealing, Or The Like Of Lighting Devices (AREA)
- Led Device Packages (AREA)
- Cooling Or The Like Of Semiconductors Or Solid State Devices (AREA)
Abstract
Description
- This application is a divisional application of U.S. patent application Ser. No. 10/847,343, filed May 18, 2004 and entitled “LED Assembly with Vented Circuit Board,” the contents of which are incorporated herein by reference.
- The invention relates to lighting units using light emitting diodes (LEDs). More particularly, the invention relates to a light emitting diode assembly with a vented circuit board.
- Light-emitting diodes (LEDS) have been used for signs and other types of illuminated displays for many years. As a byproduct of operation, display assemblies having LEDs generate heat as electric current flows through the devices. The heat must be dissipated or removed to prevent overheating. Cooling a display assembly is important in order to preserve its functionality and efficiency. Furthermore, display assemblies when used in outdoor environments may be exposed to wind forces that affect loading on the assemblies. One approach for cooling an LED display assembly is shown in PCT publication WO2004019657. The publication generally shows a coolant fluid which cools LEDs using a mesh design.
- In one variation, a printed circuit board assembly includes a plurality of LEDs disposed in a grid pattern at junctions in which the junctions are interconnected by adjacent bridges defining air vents. A plurality of vents enables air to pass through the printed circuit board assembly, thus reducing wind resistance and promoting cooling.
- In another variation, a printed circuit board assembly includes a plurality of LED modules, each LED module being disposed at a corresponding junction, the junctions being connected to bridges in which adjacent bridges define air vents for allowing air to pass through. The bridges and junctions include a multilayer substrate having an insulating layer and a thermal cooling layer in thermal communication with the LED modules. The insulating layer may include a plurality of fluid openings configured for fluid convective heat transfer with the thermal cooling layer.
- In yet another variation, a printed circuit board assembly includes a plurality of LED modules and a multilayer substrate. The multilayered substrate may have an external insulating layer and a thermal cooling layer in thermal communication with the LED modules. The external insulating layer includes a plurality of openings which exposes the thermal cooling layer for fluid convective heat transfer.
- In yet another variation, a printed circuit board assembly includes a plurality of LEDs having a dome. The LEDs may be disposed in a grid pattern at junctions being interconnected by bridges defining air vents. The bridges include a substrate for activating the LEDs and the substrate includes a front side including the LEDs and an opposing a rear side. Aerodynamic members configured to reduce air pressure are disposed on the second side of the substrate corresponding to location of the junctions. In this way, wind loading may be reduced for multiple directions. Other variations are described in more detail herein.
- A more complete understanding of the present invention and the advantages thereof may be acquired by referring to the following description in consideration of the accompanying drawings, in which like reference numbers indicate like features, and wherein:
-
FIG. 1 illustrates a perspective view of a printed circuit board assembly according to one or more aspects of the present invention. -
FIG. 2 illustrates a frontal elevation view of the printed circuit board assembly ofFIG. 1 . -
FIG. 3 illustrates an enlarged view of the printed circuit board assembly ofFIG. 1 with LED modules. -
FIG. 4 illustrates an enlarged view of a printed circuit board assembly similar toFIG. 3 , with the LED modules according to one or more aspects of the present invention. -
FIG. 5 illustrates a first rear perspective view of an LED module according to one or more aspects of the present invention. -
FIG. 6 illustrates a front perspective view of the LED module ofFIG. 5 according to one or more aspects of the present invention. -
FIG. 7 illustrates a second rear perspective view of a LED module according to one or more aspects of the present invention. -
FIG. 8 illustrates a perspective view of an alternative embodiment of a printed circuit board assembly according to one or more aspects of the present invention. -
FIG. 9 illustrates a schematic diagram of one possible decoder-conductor arrangement for energizing components of a LED module according to one or more aspects of the present invention. -
FIG. 10 illustrates an enlarged view of the PCB assembly ofFIG. 1 with a first heat dissipation feature according to one or more aspects of the present invention. -
FIG. 11 illustrates an enlarged view of the PCB assembly ofFIG. 1 with a second heat dissipation feature according to one or more aspects of the present invention. -
FIG. 12 illustrates an enlarged view of the PCB assembly ofFIG. 1 with a third heat dissipation feature according to one or more aspects of the present invention. -
FIG. 13 illustrates a partial schematic section view of the printed circuit board assembly taken along line 13-13 ofFIG. 10 . -
FIG. 14 illustrates a schematic diagram of a conductor-LED module arrangement according to one or more aspects of the present invention. -
FIG. 15 illustrates a partial schematic section view of an alternative multilayer substrate arrangement according to one or more aspects of the present invention. -
FIG. 16 illustrates a partial schematic section diagram of an alternative multilayer substrate arrangement according to one or more aspects of the present invention. -
FIG. 17 illustrates a partial schematic diagram of an alternative PCB assembly according to one or more aspects of the present invention. -
FIG. 18 illustrates a partial schematic diagram of a PCB assembly with roughness members according to one or more aspects of the present invention. - In the following description of the various embodiments, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration various embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized and structural and functional modifications may be made without departing from the scope of the present invention.
-
FIGS. 1-4 illustrate an embodiment of a printed circuit board (PCB)assembly 2 including an array or grid pattern of light emitting diode (LED)modules 4 mounted thereon. In one arrangement, theLED modules 4 are disposed at intersectingjunctions 5 of thePCB assembly 2 in a generally perpendicular X-direction and Y-direction based on a Cartesian coordinate system. The junctions 5 (seeFIG. 3 ) are interconnected by a plurality ofbridges 17 definingvents 22, which may be drilled or routed in the printed circuit board. While the terminology “printed circuit board” is used for ease of reference, it should be understood that other types of circuit boards other than printed boards may be used, and such boards are intended to be encompassed within the term “printed circuit board” or PCB. Examples may include embedded wires, ribbon cables, or similar structures. -
FIGS. 5-7 illustrate an embodiment of anLED module 4 according to one or more aspects of the present invention.LED module 4 may include one ormore LEDs 6 a-d disposed within the interior cavity of a removable translucent dome orcap 8. The cap is optional and may not be required in all applications. Moreover, while fourLEDs 6 a-d are shown, theLED module 4 may have more or fewer LEDs depending on the acceptability for the intended use. In one variation, an LED module may consist of a single LED mechanically attached by, for example, soldering to the circuit board. - The
dome 8 may be formed of several alternative materials, such as a translucent plastic or glass. Various materials may be selected for atmospheric environments based on the intended use. An appropriate material and thickness characteristics enables thedome 8 to protect theLED 6 a-d against physical impingement from flying projectiles in the air or rain, and may help in reducing aerodynamic drag on the assembly.Dome 8 can be optically neutral to preserve the optical characteristics of theLED 6 a-d, such as field-of-view focusing. Alternatively,dome 8 may also have optical properties that enhance those of theLED 6 a-d, such as lowering the side leakage. The material may also protect theLEDs 6 a-d from UV damage that may discolor the optical material or other internal components. The UV protection helps to mitigate brightness reduction of theLEDs 6 a-d over time due to exposure to external UV wavelengths. Thedome 8 may be removably mounted via a friction-fit engagement to abase member 10. Alternatively,dome 8 may be mounted to thebase member 10 in other ways, such as in a snap-fit or threaded engagement. The removable arrangement of thedome 8 provides access for field or bench-level maintenance, such as replacement or upgrade to theLED 6 a-d or other components ofLED module 4. LED modules may be removed from the PCB assembly for maintenance and the like. - Various techniques may be implemented to permit an LED module to be serviced without being completely removed. For example, the LED module may be attached to the board by a hinge or similar mechanism such that it can be opened without being removed.
- In one variation,
base member 10 includes extension members orprotrusions 12 that may be utilized for mounting theLED module 4 to thePCB assembly 2. In one configuration, theextension members 12 may provide a partial heat transfer path for cooling theLED module 4 in conjunction withPCB 2 assembly substrates. Thebase member 10 may be composed of a number of alternative materials, including copper, aluminum, or a mixture of metal particulates suspended in a plastic material, carbon fibers or other well known material that provides thermal conductivity without electrical connection. - With continued reference to
FIGS. 5-7 , in one arrangement, thebase member 10 may have an annular or circular shape. Alternatively,base member 10 may be formed in several shape configurations depending on the intended use of theLED module 4. A peripheral surface of thebase member 10 may retain a sealingmember 14. The sealingmember 14 may be configured to prevent debris and other external environmental components from entering into the interior cavity of theLED module 4 formed between thedome 8 andbase member 10. The sealing configuration with thedome 8 also provides protection of theLEDs 6 a-d against environmental conditions, such as temperature, humidity, salt, acid rain and the like. The sealingmember 14 can be formed in several shapes and mounted to thebase member 10 using conventional methods and techniques. For example, the sealingmember 14 can be formed as an annular ring, such as an O-ring. Further, the sealingmember 14 may be composed of a resilient material, such as rubber or a synthetic rubber. For mounting arrangements, the sealingmember 14 may be adhesively bonded to thebase member 10. Alternatively, the sealingmember 14 can provide compression forces for a friction fit engagement with thebase member 10. - With reference to
FIGS. 5 and 7 , eachLED 6 a-d includes twoelectrical leads 16 physically connected to respective electrical conductors. Lead material and length may be selected to maximize thermal connection between LED and circuit board for heat dissipation, as discussed in more detail below. While leads 16 are shown, the LED module may have other alternative configurations. For example, the LED module may be surface mounted or a direct-on-die arrangement on the PCB assembly substrate. In such a surface mount configuration, the leads are connected to electrical conductors or traces. - In the most basic configuration, a single LED may be placed at each junction, and may be selectively illuminated by energizing a corresponding X-wire conductor and Y-wire conductor, such that the LED at the junction of the X-wire conductor and Y-wire conductor causes the LED to be illuminated. In other embodiments, more than one LED may be affixed to each junction, such that a single X-wire conductor and Y-wire conductor when energized cause all of the LEDs at the junction to be illuminated. In yet other embodiments, a plurality of X-wire conductors and a plurality of Y-wire conductors (e.g., two in each direction) overlap at the junction, such that more than one pair of conductors is available to selectively illuminate one or more LEDs at the junction. Drivers of various types may be used in association with the LEDS, such that signaling is provided on one set of conductors while power is provided by means of other conductors.
- In some embodiments, multiple LEDs at the junction may be selectively energized by means of a decoder that decodes signals on corresponding X-wire conductors and Y-wire conductors such that a larger number of LEDs can be selectively illuminated using a smaller number of conductors.
- The
LED module 4 may include adecoder unit 18 which may be configured for control of energizing or de-energizing eachrespective LED 6 a-d through MOSFET gating or other means. Eachdecoder unit 18 may be responsive to computer readable commands intended for controlling eachLED 6 a-d. Alternatively, eachLED 6 a-d within themodule 4 may be energized simultaneously for increased illumination and brightness characteristics depending on the intended application. For example, applications that may utilize thePCB assembly 2 could be a vehicular or aircraft traffic signage; large screen video displays; and computerized video billboards and the like. - In the arrangement shown in
FIGS. 5 and 7 , eachdecoder unit 18 may have six leads for various logic control functions with a computer and the like. One of ordinary skill would recognize that eachdecoder unit 18 may have more or fewer electrical leads for carrying out the intended control operation. TheLED module 4 may include aheat resistor 20 disposed between theLEDs 6 a-d. Theheat resistor 20 may be energized when defogging or deicing of thedome 8 or other internal components is needed. If desired, one of thedecoder units 18 may be configured to control theheat resistor 20. Alternatively, a separate electrical conductor connected to a switch (not shown) may control operation of theheat resistor 20. - With reference to
FIG. 9 , in one arrangement, the PCB assembly at thejunctions 5 may include electrical conductors 11 a-c and 13 a-b. The conductors may be provided in a two-by-three array for selectively energizing the intendedLED 6 a-d within theLED module 4. More or fewer conductors may be used depending on the desired configuration.Conductor 11 c can be used for providing power or other signals to thedecoder unit 18. Thedecoder unit 18 may be connected to the electrical conductors 11 a-c and 13 a-b in a conventional manner to enable control ofLEDs 6 a-d. -
FIG. 14 illustrates one possible arrangement of conductors and anLED module 4 at thejunction 5 without a decoder unit controlling the LED module. In one embodiment, thePCB assembly 2 may be constructed in a multilayered arrangement in which the different conductive layers include conductors in the X-direction and the Y-direction, separated by an insulating layer.FIG. 14 shows a two-by-two array of conductors x1, x2 and conductors y1, y2 disposed on different conductive layers for energizingLEDs 6 a-d. In operation, eachLED 6 a-d may be energized in a number of different configurations. For example,LED 6 a may be energized with conductor x1 and conductor y1;LED 6 b may be illuminated with conductor x1 and conductor y2.LED 6 c can be illuminated with conductor x2 and conductor y2.LED 6 d may be energized by conductor x2 and conductor y1. Nonetheless, all the conductors x1-2 and y1-2 may be used to illuminate all theLEDs 6 a-d for increased brightness. While LED modules with four LEDs have been shown, a single LED may be disposed at the junctions and operate with or without a decoder unit. In this approach, theLEDs 6 a-d can be addressable by the conductor arrangement. -
FIGS. 10-12 illustrate alternative arrangements of thePCB assembly 2 for providing heat dissipation for cooling the LED modules. ThePCB assembly 2 includes thermodynamic cooling features and aerodynamic features, such as a plurality of air vents 22. Thevents 22 enable air to pass through thePCB assembly 2 to reduce wind pressure on the PCB assembly and may assist with heat dissipation. This vent configuration advantageously enables the PCB assembly to be implemented in high environments and prevents excessive wind loading. Additionally the air vents 22 are configured for removing the heat generated by theLED modules 4 and other electrical components. The cooling exchange provided by thevents 22 reduces localized hot spots in thePCB assembly 2. - As can be seen in
FIGS. 1-4 and 10-12, thejunctions 5 are connected bybridges 17 in which the air vents 22 are defined between the bridge and junctions. The multilayer substrate includes thebridges 17. The air vents 22 are devoid of material between fouradjacent junctions 5 and bridges 17. As can be seen in theFIGS. 10-12 , the air vents 22 are generally shaped as a square configuration. Nonetheless, other shapes are possible. Thebridges 17 have a width smaller than the diameter of thejunctions 5. A ratio of the width of the bridges to the diameter of the junctions is less than one. This is one way of controlling the size of the vents by controlling the width of thebridges 17. Advantageously, this configuration reduces wind pressure on thePCB assembly 2. In an exposed environment, the air may flow through thevents 22 for passive cooling of theLED modules 4 by way of natural convection. - In an enclosed arrangement, fluidic cooling of the
PCB assembly 2 can be implemented by providing a cooling fluid of sufficient velocity and a volume to flow over theLED modules 4 and through the fluid vents 22. The cooling fluid may flow in a direction parallel to a plane formed by the X-direction and Y-direction. Alternatively, the cooling fluid with sufficient volume and velocity may flow primarily through the air vents 22 by being directed generally perpendicular of the plane of thePCB assembly 2. A cooling fluid may be a gas, such as ambient air, drawn external to thePCB assembly 2 in an enclosed arrangement. Alternatively, the cooling fluid could be recirculated air after heat is removed via an air conditioning device (not shown). The heat is removed fromLED modules 4 by convection. -
FIG. 8 shows analternative PCB assembly 2′ with large size vents 26 to promote additional air passing through PCB assembly and additional cooling of theLED modules 4. The size of thevents 26 are controlled by the width of thebridges 6′ and the length. This configuration enables more air to pass through thevents 26 for reducing wind loading and subsequent stress on the structure.PCB assembly 2′ has similar components ofPCB assembly 2.PCB assembly 2′ may be used with other aspects of heat dissipation and aerodynamic features of the present invention. As can be seen inFIG. 8 , the size of the vents is many times the size of each LED module, thus providing a minimal cross-section to wind. -
FIG. 13 shows a section view of thePCB assembly 2 taken along line 13-13 ofFIG. 10 . With reference toFIG. 13 , thePCB assembly 2 may be constructed in a multilayered arrangement comprising a plurality oflayers 2 a-g. In such an arrangement, layers 2 a, 2 c, 2 e and 2 g may be composed of a dielectric insulator. A thermalconductive layer 2 b may be disposed between theouter layer 2 a and adielectric insulator layer 2 c. A first electricalconductive layer 2 d may be disposed betweendielectric insulator layers conductive layer 2 f may be disposed betweeninsulator layers FIG. 10-12 , the sidewalls 7 may also be theouter layer 2 a of the multilayer substrate. ThePCB assembly 2 may be manufactured using conventional multilayered conductor techniques. The leads 16 ofLEDs 6 a may extend through holes in thedielectric layer 2 a, thermalconductive layer 2 b, anddielectric layers conductive layers conductive layer 2 b may the thermally insolated from theleads 16 and the holes. - With reference to
FIGS. 10, 11 and 13, in one arrangement, the dielectricouter layer 2 a of thePCB assembly 2 may have a plurality offluid openings 24 for exposing a thermalconductive layer 2 b for air communication to increase the effective convective contact area to allow heat dissipation of theLED modules 4. Theopenings 24 are devoid of a dielectric material so as to form pathways in which a flowing cooling fluid, such as air, may contact the thermalconductive layer 2 b to receive heat. In such an arrangement, the air may enter theopening 24 and the air is prevented from flow through the PCB by the thermalconductive layer 2 b. InFIGS. 10 and 13 , theopenings 24 may have a circular shape. Nevertheless, theopenings 24 may have other shapes depending on a desired cooling performance with respect to the convective contact area. For example, the shapes may be square, rectangular, triangular, oval, and the like. - As shown in
FIG. 11 , theopenings 24 may be in the form of the slots in the dielectricouter layer 2 a. Theopenings 24 may be disposed on the top surface of the PCB assembly substrate. Alternatively, theopenings 24 may be located on a sidewall 7 in thevents 22 of the PCB assembly substrate. The sidewall 7 arrangement of theopening 24 in combination with a cooling fluid, such as air, flowing through thevents 22 provides an incremental heat transfer advantage by enabling increased fluid exchange with the thermalconductive layer 2 b. The material of thethermal layer 2 b may have an appropriate heat transfer coefficient based on the heat generating characteristics of theLED modules 4. The thermalconductive layer 2 b can be composed of a number of alternative materials, including a copper, aluminum, or a mixture of metal particulates suspended in a plastic material. The thermal coefficient of thermal expansion of the conductive layer and dielectric layers would be matched to take into account any thermal induced mechanical stress. If desired, small holes may extend all the way through the substrate in thebridge 17 so air can pass through the bridge. The small holes may be placed proximate to the LED modules to close proximity to the location of heat generation. In this way, there is the possibility of obtaining improved heat dissipation. - With reference to
FIG. 13 , to transfer heat from theLED module 4, the thermalconductive layer 2 b may be physically connected to thebase member 10, in particular to theprotrusions 12 of theLED module 4. In one configuration, thebase member 10 may serve as a heat sink with respect to theLEDs 6 a-d. The thermalconductive layer 2 b may be a lower temperature than theLED module 4. Thus, a resultant thermal temperature differential enables the heat generated by theLED 6 a-d to be transferred to thebase member 10 and to the thermalconductive layer 2 b. To enhance cooling of thePCB assembly 2, in one embodiment, a thermoelectric cooling module (not shown) may be used to lower the temperature of the thermalconductive layer 2 b. This creates an enhanced heat sink performance for the thermal layer. The thermoelectric cooling module may be powered with the conductors fromlayers -
FIG. 16 illustrates a section view of an alternative multilayer substrate 50 with anLED 32.LED 32 includes acathode lead 52 and ananode lead 54 for receiving electrical power. Thelead 52 ofLED 32 may be connected to tracelayer 50 b. Thelead 54 ofLED 32 may extend to tracelayer 50 d. To maximize the heat dissipation performance, the thermally conductive layer(s) 50 a and 50 c may be disposed in close proximity to the trace/layer 50 b which is thermally and electrically connected to thecathode lead 52 of the LED. As shown inFIG. 16 , either side of thetrace layer 50 b can be sandwiched by the thermal layer(s) 50 a and 50 c to provide maximum thermal dissipation and/or heat sinking.Thermal layer 50 c may be disposed between thetrace layer 50 b andlayer 50 d. Hence, a single thermal conductive layer may simultaneously provide heat transfer benefits for both trace layers. This configuration may also reduce the thickness of the substrate 50. - While a single LED is shown, the inventive aspects can be practiced with multiple LEDs or LED modules. Multilayer substrate 50 may be used with
PCB assembly 2 shown inFIGS. 1-4 and the air vents 22 for maximum heat conduction. The thermalconductive layer -
FIG. 12 illustrates an alternative heat dissipation arrangement including an outer exposedlayer 30 which may serve both electrical and thermal conductive functions. In this arrangement, the convective contact area is increased for cooling the LED module or LEDs in the cooling configuration. Thelayer 30 may serve as an electrical conductor for the LED module or LEDs. -
FIG. 15 illustrates a section view of analternative multilayer substrate 34 with anLED 32.Multilayer substrate 34 includes an exposedupper layer 34 a that serves as both an electrical conductor and a thermal conductor for heat dissipation.Upper layer 34 a may include one or more conductors in the X-direction. A bottom electricalconductive layer 34 c may include one or more conductors in the Y-direction. A dielectric insulating layer 34 b may be disposed between thelayer 34 a andlayer 34 c.LED 32 includes twolead lead 36 ofLED 32 may be connected toupper layer 34 a. Thelead 38 ofLED 32 may extend through holes inlayer 34 a, and dielectric layer 34 b to theconductive layer 34 c. While a single LED is shown, the inventive aspects can be practiced with multiple LEDs or LED modules.Multilayer substrate 34 may be used withPCB assembly 2 shown inFIGS. 1-4 and the heat dissipation vents 22. In this embodiment, electrically and thermallyconductive layer 34 a assists in dissipating heat fromLED 32. - In another variation,
layer 34 a may comprise a thermally conductive layer that has poor electrical conducting qualities, thus helping to dissipate heat while acting as an electrical insulator. Layer 34 b could then be used as the electrical path toLED 32, and another layer 34 d (not shown) would act as the other electrical conductor. In this variation, LED leads 36 and 38 would be connected to layers 34 b and 34 d (not shown) for electrical connectivity. -
FIG. 17 illustrates a partial schematic diagram of analternative PCB assembly 60 with a two-sided aerodynamic configuration which provides a benefit of reducing wind pressure. In this configuration, thesubstrate 62 has afront side 64 andrear side 66. TheLED module 32 may mounted on thefront side 64 and theLED module 32 may include adome 8. The rear side of thePCB assembly 60 may include anaerodynamic member 68 for reducing wind pressure. ThePCB assembly 60 includes air vents (not shown) for enabling air to pass through the PCB. Air flowing towards theLED module 32 ofdome 8 can reduce air pressure, and air flowing in an opposite direction also has reduced resistance with respect to the structure. The aerodynamic member may comprise various shapes such as a hemispherical shape or a nose cone shape. - Other configurations of the PCB assembly are possible to increasing heat dissipation. In one arrangement shown in
FIG. 18 , thebridge 17 may include a plurality ofroughness members 70 on the surface of the multilayer substrate. Theroughness members 70 protrude from the surface of the substrate. Themembers 70 can have a variety of shapes, such as hemispherical and the like. Theseroughness members 70 may be provided to promote small air turbulence to reduce the boundary layer for reducing the insulating effects of the air and promote increased heat transfer from the thermal layer to the air. Thus, in the embodiments of exposing the thermal layer to the air,roughness members 70 may increase the interaction of the air with the thermal layer to improved passive cooling. One of ordinary skill in the air may embodiment computational fluid mechanics and the like for specific dimensional characteristics. - While the present invention has been described with reference to preferred embodiments, it will be understood by those of ordinary skill in the art that various changes may be made and equivalents may be substituted for elements without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular feature or material to the teachings of the invention without departing from the scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed, but that the invention will include all embodiments falling within the scope of the appended claims.
Claims (4)
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US11/538,790 US20070086189A1 (en) | 2004-05-18 | 2006-10-04 | LED Assembly with Vented Circuit Board |
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US10/847,343 US7138659B2 (en) | 2004-05-18 | 2004-05-18 | LED assembly with vented circuit board |
US11/538,790 US20070086189A1 (en) | 2004-05-18 | 2006-10-04 | LED Assembly with Vented Circuit Board |
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US11/538,790 Abandoned US20070086189A1 (en) | 2004-05-18 | 2006-10-04 | LED Assembly with Vented Circuit Board |
US11/538,779 Abandoned US20070086188A1 (en) | 2004-05-18 | 2006-10-04 | LED Assembly with Vented Circuit Board |
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Also Published As
Publication number | Publication date |
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US20070086187A1 (en) | 2007-04-19 |
US20070086188A1 (en) | 2007-04-19 |
WO2005119633A1 (en) | 2005-12-15 |
US7138659B2 (en) | 2006-11-21 |
US20070081341A1 (en) | 2007-04-12 |
US20050258446A1 (en) | 2005-11-24 |
US7315049B2 (en) | 2008-01-01 |
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