MODULAR LED LINE LIGHT
20170074471 ยท 2017-03-16
Inventors
- Peter Panek (Cork, IE)
- John Sexton (Cork, IE)
- Kieran Lynch (Cork, IE)
- John Brett (Cork, IE)
- Jan Kievits (Cork, IE)
Cpc classification
G05B2219/37113
PHYSICS
F21V29/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V17/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S2/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S4/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B45/14
ELECTRICITY
F21V5/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F21S2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V17/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S4/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A modular LED line light, the modular LED line light comprising: at least one line light module, the at least one line light module comprising: a U-shaped body comprising a base and two opposing side walls extending from the base, the base comprising an interior surface and an exterior surface; at least one LED array disposed on the interior surface of the U-shaped body; a rail for receiving the at least one line light module, the rail comprising a first surface and a second surface, wherein the first surface is configured to receive the exterior surface of the base of the U-shaped body of the at least one light module; and a cooling tube for receiving a cooling fluid for removing heat from the at least one line light module, the cooling tube being disposed between the exterior surface of the base of the U-shaped body and the first surface of the rail.
Claims
1. A modular LED line light, said modular LED line light comprising: at least one line light module, said at least one line light module comprising: a U-shaped body comprising a base and two opposing side walls extending from the base, said base comprising an interior surface and an exterior surface; and at least one LED array disposed on said interior surface of said U-shaped body; a rail for receiving said at least one line light module, said rail comprising a first surface and a second surface, wherein said first surface is configured to receive said exterior surface of said base of said U-shaped body of said at least one light module; and a cooling tube for receiving a cooling fluid for removing heat from said at least one line light module, said cooling tube being disposed between said exterior surface of said base of said U-shaped body and said first surface of said rail.
2. A modular LED line light according to claim 1 wherein at least one of said exterior surface of said base of said U-shaped body and said first surface of said rail comprises a recess for receiving said cooling tube.
3. A modular LED line light according to claim 2 wherein said exterior surface of said base of said U-shaped body and said first surface of said rail both comprise a recess for receiving said cooling tube.
4. A modular LED line light according to claim 3 wherein said recess in said exterior surface of said base of said U-shaped body and said recess in said first surface of said rail are both aligned with one another when said at least one light module is received on said rail.
5. A modular LED line light according to claim 1 wherein said cooling tube comprises at least two legs disposed substantially parallel to one another.
6. A modular LED line light according to claim 1 wherein said modular LED line light comprises a plurality of line light modules, and further wherein said rail is configured to receive said plurality of line light modules and said cooling tube is configured to remove heat from said plurality of line light modules.
7. A modular LED line light according to claim 1 wherein said at least one line light module is releasably mounted to said rail.
8. A modular LED line light according to claim 7 wherein said at least one line light module is releasably mounted to said rail using at least one screw.
9. A modular LED line light according to claim 1 wherein said modular LED line light comprises a plurality of line light modules, wherein said rail is configured to receive said plurality of line light modules and said cooling tube is configured to remove heat from said plurality of line light modules, wherein each line light module is secured to said rail, and further wherein each line light module is secured to an adjacent line light module using a connector which extends from that line light module to the adjacent line light module.
10. A modular LED line light according to claim 9 wherein said at least one line light module is secured to said rail using at least one screw, and further wherein said connector is secured to each of the adjacent line light modules using at least one screw.
11. A modular LED line light according to claim 1 wherein said modular LED line light comprises a plurality of line light modules, and further wherein said modular LED line light further comprises a common bus bar which delivers electrical power to said plurality of line light modules.
12. A modular LED line light according to claim 11 wherein said common bus bar comprises two copper rods, and further wherein each of said copper rods is electrically connected to each of said plurality of line light modules.
13. A modular LED line light according to claim 12 wherein each copper rod is connected to each of said line light modules using a clip.
14. A modular LED line light according to claim 13 wherein each of said clips is adjustably mounted to a copper rod.
15. A modular LED line light according to claim 14 wherein each of said clips is longitudinally and rotatably adjustable relative to said copper rod.
16. A modular LED line light according to claim 13 further comprising at least one insulating sleeve disposed on a copper rod between two of said clips.
17. A modular LED line light according to claim 12 wherein said two copper rods are disposed outboard of said side walls of said U-shaped bodies of said plurality of line light modules.
18. A modular LED line light according to claim 11 wherein each of said plurality of line light modules comprises an LED driver board for driving said at least one LED array of that line light module, and further wherein said LED driver board is disposed outboard of said side walls of said U-shaped bodies of said plurality of line light modules.
19. A modular LED line light according to claim 1 wherein said at least one line light module further comprises at least one micro lens array for receiving the optical output of said at least one LED array, and a macro lens for receiving the optical output of said at least one micro lens array.
20. A modular LED line light according to claim 19 wherein said at least one LED array comprises a plurality of LEDs substantially aligned along a line axis, wherein said at least one micro lens array collimates the light from said at least one LED array perpendicular to said line axis, and further wherein said macro lens collimates the light from said at least one micro lens array parallel to said line axis.
21. A modular LED line light according to claim 20 wherein the intensity profile of the light from said at least one LED array is balanced vis--vis the collimation provided by said at least one micro lens array and said macro lens so as to provide a near-uniform intensity profile along the length of the beam of light passing through said macro lens.
22. A modular LED line light according to claim 1 wherein said modular LED line light comprises a plurality of line light modules, and further wherein said modular LED line light comprises a controller board for controlling operation of said plurality of line light modules.
23. A modular LED line light according to claim 22 wherein said controller board assigns a unique ID number to each of said plurality of line light modules.
24. A modular LED line light according to claim 23 wherein said controller board automatically assigns a unique ID number to each of said plurality of line light modules when powering on said modular LED line light.
25. A modular LED line light according to claim 23 wherein said controller board assigns a unique ID number to each of said plurality of line light modules in a serial manner, starting at a first line light module and then progressing through each of the remaining line light modules in sequence.
26. A modular LED line light according to claim 23 wherein, when said controller board assigns a unique ID number to a given line light module, the ID numbers of all of the line light modules downstream of the line light module which is currently being assigned its unique ID number are reset in preparation for receiving their own unique ID numbers.
27. A modular LED line light, said modular LED line light comprising: a plurality of line light modules, each of said line light modules comprising: a U-shaped body comprising a base and two opposing side walls extending from the base, said base comprising an interior surface and an exterior surface; and at least one LED array disposed on said interior surface of said U-shaped body; a rail for receiving said plurality of line light modules, said rail comprising a first surface configured to receive said exterior surfaces of said bases of said U-shaped bodies of said plurality of light modules; and a common bus bar which delivers electrical power to said plurality of line light modules, wherein said common bus bar comprises two copper rods, wherein each of said copper rods is electrically connected to each of said plurality of line light modules using a clip, wherein each of said clips is longitudinally and rotatably adjustable relative to said copper rod, and wherein said two copper rods are disposed outboard of said side walls of said U-shaped bodies of said plurality of line light modules.
28. A modular LED line light, said modular LED line light comprising: at least one line light module, said at least one line light module comprising: a U-shaped body comprising a base and two opposing side walls extending from the base, said base comprising an interior surface and an exterior surface; and at least one LED array disposed on said interior surface of said U-shaped body; at least one micro lens array for receiving the optical output of said at least one LED array; and a macro lens for receiving the optical output of said at least one micro lens array; wherein said at least one LED array comprises a plurality of LEDs substantially aligned along a line axis, wherein said at least one micro lens array collimates the light from said at least one LED array perpendicular to said line axis, and further wherein said macro lens collimates the light from said at least one micro lens array parallel to said line axis; and a rail for receiving said at least one line light module, said rail comprising a surface configured to receive said exterior surface of said base of said U-shaped body of said at least one light module.
29. A modular LED line light, said modular LED line light comprising: a plurality of line light modules, each of said line light modules comprising: a U-shaped body comprising a base and two opposing side walls extending from the base, said base comprising an interior surface and an exterior surface; and at least one LED array disposed on said interior surface of said U-shaped body; a rail for receiving said plurality of line light modules, said rail comprising a first surface configured to receive said exterior surfaces of said bases of said U-shaped bodies of said plurality of light modules; and a controller board for controlling operation of said plurality of line light modules, wherein said controller board automatically assigns a unique ID number to each of said plurality of line light modules when powering on said modular LED line light, and further wherein said controller board assigns a unique ID number to each of said plurality of line light modules in a serial manner, starting at a first line light module and then progressing through each of the remaining line light modules in sequence.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0052] These and other objects and features of the present invention will be more fully disclosed or rendered obvious by the following detailed description of the preferred embodiments of the invention, which is to be considered together with the accompanying drawings wherein like numbers refer to like parts, and further wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0069] The present invention comprises the provision and use of a novel modular LED line light.
[0070] 1. General Overview
[0071] In accordance with the present invention, there is provided a novel modular LED line light 5 (see
[0072] Looking next at
[0073] For each application, mounting rail 45 and U-shaped cooling tube 50 are manufactured specifically to the length of the line light required. In other words, if a 2 meter line light is required, a 2 meter mounting rail 45 is used, with a U-shaped cooling tube 50 running the length of the 2 meter mounting rail. Each of the individual light modules 55 are designed with a pre-set length, for example, 100 mm. Thus, for a 2 meter line light, twenty 100 mm individual light modules 55 would be used, set end-to-end along the length of mounting rail 45.
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[0075] As discussed above, and looking now at
[0076] The following sections discuss various additional aspects of the present invention in further detail.
[0077] 2. Optical Aspects
[0078] For certain industrial applications, line lights need to work across a wide range of working distances, for example, from 500 mm to 1500 mm.
[0079] LEDs typically have wide emission angles (see
[0080] To work at a wide range of working distances (e.g., from 500 mm to 1500 mm), a line light needs to have a much wider depth of field than a conventional line light. For the purposes of the present invention, depth of field is considered to be the distance between the nearest object and the furthest object giving a focused image.
[0081] To widen the depth of field, the aperture size of the line light needs to be increased. However, utilizing a conventional cylindrical macro lens in the line light with an increased aperture size can result in poorly collimated light. See
[0082] It is important to note that there is a careful balance between (i) how much light is collimated versus (ii) the uniformity required for the intensity of the line of light. More particularly, a conventional line light typically produces non-uniform line intensity across the length of the line of light (see
[0083] In order to increase the uniformity of the intensity of light along the length of the line of light, the emission angle of the LEDs in LED array 35 must be lowered by further collimating the light through a micro lens array 80 of selected design. In a conventional line light, the various lens components (i.e., the micro lenses of micro lens array 80 and the macro lens 85) are typically designed to collimate the light parallel to the line of LED array(s) 35 used in the line light. See
[0084] 3. Electronic Aspects
[0085] The electronic system of novel modular LED line light 5 generally comprises a power distribution system, a control system and an LED driver board. Each of these will hereinafter be discussed in further detail.
[0086] A. Power Distribution System
[0087] Typically, in LED-based lighting systems, charge capacitors are used to build up current so that lower input power levels can be utilized. For example, if the LED array(s) 35 require(s) 2 A of current, then a current of 1 A can be directed to LED driver board 30 and stored in charge capacitors on LED driver board 30 until the capacitors reach the requisite 2 A. The required current of 2 A is then released to LED array 35 by LED driver board 30. However, such charge capacitors can add considerably to the cost of the system and can increase the size of the system. On the other hand, if charge capacitors are omitted, then the input current needs to match the current actually required by LED array 35. However, high voltage power supplies are generally expensive. In addition to the foregoing, in many OEM systems, the footprint available for the power supply is limited and traditional cabling solutions require a lot of space for cabling, crimping, screws, etc., while also adding significantly to the cost of the system. These types of systems also tend to suffer from aggregated voltage drops along the length of the line light such that, at the far end of the line light, there may be an excessive voltage drop resulting in uneven light intensity profiles along the length of the line of light. Compensating for this problem with more current may not be possible due to the voltage limits on electronic devices. Therefore, it is desirable to have a high current power distribution method that is relatively inexpensive and is adaptable to limited spaces.
[0088] With the present invention, power is distributed from power supply 10 to LED driver board 30 using a cost-effective bus bar 100. See
[0089] B. Control System
[0090] LED driver board 30 is controlled by a 4-channel control system whose lines run the length of the LED driver boards. The interface used to connect the control system into constant current drivers 115 (FIG. 27) of LED driver board 30 use a CAN-BUS communication protocol. LED driver board 30 is designed so that the CAN-BUS runs from one LED driver board 30 to an adjacent LED driver board 30 along the length of modular LED line light 5, extending from one line light module 55 to the adjacent line light module 55. If an individual line light module 55 is removed and replaced with a new line light module 55, the new line light module 55 can be easily connected into the CAN-BUS. The CAN-BUS is used to send the data instructions to constant current drivers 115 of LED driver board 30 so as to control operation of the LED array 35 of that line light module 55. Individual line light modules 55 are connected together via 4-pin right angle socket connectors 117 (
[0091] Using this electronic design, the strobe line can be used as a dual use line. First, it allows for a significant degree of misalignment between assembled line light modules 55, making efficient electrical connections repeatable and easy to achieve. Second, the strobe line is used for auto-enumeration of the individual line light modules 55. More particularly, software is used to assign a unique ID to each line light module 55 using the strobe line. In order for modular LED line light 5 to function correctly, each line light module 55 in the modular LED line light 5 needs to be given a unique ID number so that the correct power and/or control signals can be sent to the LED array 35 of that line light module 55. If modular LED line light 5 has no unique ID numbers for its individual line light modules 55, undesired effects can occur. For example, if a user moves the line light modules 55 around within a modular LED line light 5, or if old line light modules 55 are replaced with new line light modules 55, the new line light modules 55 might not turn on or they could emit an unwanted power, spectral or strobe profile.
[0092] One method to provide each line light module 55 with a unique ID is to have a physical button located on each line light module 55 which, when pressed, assigns a unique ID number to that line light module 55. However, due to space constraints and mechanical design restrictions (e.g., the modular LED line light 5 may comprise a protective outer housing which can make it impractical to physically access the line light modules 55), it would be preferable to assign (or reassign) unique IDs to the individual line light modules 55 automatically when a line light module 55 is switched on, or control the ID assignment process via software. The ID assignment process is sometimes also referred to as the enumeration process.
[0093] An auto-enumeration process could, for example, be initiated every time modular LED line light 5 is powered up. Controller board 25 sends an ID number signal to each line light module 55. The ID number signal runs along the strobe line, e.g., control bar 120 (
[0094] C. LED Driver Board
[0095] In accordance with the present invention, a highly integrated LED driver board 30 is provided that connects directly into its associated LED array 35 (which is typically formed on a substrate) using no wiring. This reduces cost and footprint requirements. Current sensing, voltage sensing, control of intensity and strobing are all carried out on a single power chip wired directly to the integrated circuits (IC's) of LED driver board 30. Each LED driver board 30 consists of two quadrupole constant current driver IC's 115, wherein each quadrupole constant current driver IC 115 has 4 outputs. Each output can control an LED chain of LED array 35. The two quadrupole constant current driver IC's 115 drive 8 chains of LEDs on each line light module.
[0096] Each quadrupole constant current driver chip 115 has four outlets so it can drive 4 LED strings.
[0097] The solution utilized with the present invention is to move the sense resistor R.sub.s to a different location in the layout. See
[0098] As discussed above, the line light must frequently operate in a harsh environment, and the LED line light is liquid-cooled to eliminate the need for cooling fans. However, if the liquid-cooling fails, the electrical components on LED driver board 30 may be irreparably damaged, resulting in extremely high replacement costs for users utilizing multi-module systems. Modular LED line light 5 therefore needs to be robust enough to withstand liquid-cooling failure.
[0099] To this end, LED driver board(s) 30 of the present invention is (are) designed with rooting techniques designed to efficiently remove heat from the devices. A number of solder-filled via's, thermal traces and pads are provided to remove heat from power components such as the inductors L, the constant current drivers 115 and the LEDs of LED array 35 so that heat is dissipated in all dimensions. Thermal traces are commonly used to convey high currents, but in this circuit thermal traces have a dual purpose, in the sense that they are also removing heat from devices. In combination with software control, modular LED line light 5 can operate without any damage to the LED driver board 30 up to 140 C. in the absence of liquid cooling. At 140 C., the software automatically triggers the line light to gently shut down, thereby reducing the risk of damage to the entire light system. These features work in combination with a resettable fuse (not shown, but which will be apparent to those skilled in the art in view of the present invention) to ensure a reliable and long life for modular LED line light 5.
[0100] A number of features are included to allow testing and debugging to easily take place via visual cues using onboard LEDs. Status LEDs located on the LED driver board 30 flash if a certain part of the circuit is not working correctly. Exemplary measurements include thermal sensing, local voltage verification, ID/strobe line function, status lights, overheating and shorting sensors. As the LED driver board 30 is on the outside of the mechanical housing, this means diagnostics can be completed quickly and easily.
[0101] Modular LED Lights Having Non-Linear Configurations
[0102] In the foregoing discussion, the present invention is discussed in the context of providing a light engine used for a line scan application (i.e., a light providing a 1D line of illumination). However, it will be obvious to those skilled in the art that the present invention can also be utilized for other applications and/or in other lighting systems having other form factors (e.g., an area light, a ring light, a spot light, etc.).
Modifications of the Preferred Embodiments
[0103] It should be understood that many additional changes in the details, materials, steps and arrangements of parts, which have been herein described and illustrated in order to explain the nature of the present invention, may be made by those skilled in the art while still remaining within the principles and scope of the invention.