Device and method for retrofitting or converting or adapting series circuits
09554444 ยท 2017-01-24
Assignee
Inventors
Cpc classification
F21V23/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B20/72
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
Y10T29/49117
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
F21S8/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Method and device for adapting a series constant power system to operate constant voltage lighting.
Claims
1. A device configured to allow a constant current system power source to supply power to a constant voltage load, the device comprising: a primary coil configured to be connected to a constant current type power source circuit; a secondary coil configured to be connected to the constant voltage load; and wherein the coils are wound on a split C-core comprising a first core gap and a second core gap; wherein the primary coil is wound on a first side of the core across the first core gap and the secondary coil is wound on a second side of the core across the second core gap; and wherein the secondary coil has a higher number of windings than the primary coil.
2. The device according to claim 1 further wherein: the constant current system power source is a 6.6 A constant current series type power source; and the constant voltage load is a LED lamp or a high-intensity discharge (HID) lamp.
3. The device according to claim 2 further comprising: an outlet operationally connected to the secondary coil, and able to receive a plug from any compatible constant voltage device, allowing the device to be temporarily attached to the constant voltage load.
4. The device according to claim 1 further wherein: the core is an iron (or ferromagnetically analogous) split C-core.
5. The device according to claim 1 further wherein: the core is an iron (or ferromagnetically analogous) split c-core gapped with insulating material on both sides.
6. The device according to claim 1, wherein the device is configured to provide an effectively constant voltage output whilst having a constant current input by having an input inductance that is relatively low compared to the output inductance and thereby configured to limit the voltage from the input to the output under secondary open circuit conditions.
7. The device according to claim 4, further wherein the device is configured so that the output voltage at the output terminals will not rise to high levels when the output is open circuit.
8. The device according to claim 4, wherein the device comprises a sealed unit having two input connections for connecting in a series to constant current source and at least one output connection that is configured to provide an effectively constant voltage output.
9. The device according to claim 1, wherein the device is not electrically coupled directly to a digital control device configured to control the voltage output.
10. A device configured to allow a constant current system power source to supply power to a constant voltage device, the device comprising: a primary coil configured to receive power from a 6.6 A constant current series power source; a secondary coil configured to be connected to a constant voltage load; and wherein the coils are wound on a split C-core comprising a first side with a first gap and second side with a second gap, wherein the primary coil is wound a first number of turns on the first side of the core and the secondary coil is wound a second number of turns on the second side of the core, wherein the first number of turns is less than the second number of turns; an electrical insulator disposed upon the primary coil; and an electrical insulator in the first gap and in the second gap; whereby the of the insulated primary coil and insulated core gap core regulate coupling between the primary and secondary coils.
11. The device according to claim 10, wherein the first gap or second gap is an adjustable gap, thereby providing for regulation of a voltage present in the secondary winding.
12. The device according to claim 10, where the insulator in the first gap or in the second gap comprises an insulating shim located in the core gap.
13. The device according to claim 10, further including a protective encasement disposed about the split C-core, the primary coil, and the secondary coil.
14. The device according to claim 10, further comprising an electrical outlet in electrical contact with the secondary coil and adapted to releasably receive a connection plug of constant voltage device.
15. The device according to claim 10, wherein the constant voltage device is a LED lamp or a high-intensity discharge lamps (HID) lamp.
16. The device according to claim 10, wherein the 6.6 A constant current series power source is a street lighting power source or an airport lighting system power source.
17. The device of claim 1, wherein the primary coil is not wound across the second core gap or the secondary coil is not wound across the first core gap.
18. The device of claim 1, wherein the secondary coil provides a constant voltage output.
19. The device of claim 1, wherein the device comprises a constant current to constant voltage transformer.
20. The device of claim 1, wherein the secondary coil is directly connected to the constant voltage load.
21. The device of claim 10, wherein the primary coil is not wound across the second core gap or the secondary coil is not wound across the first core gap.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF SPECIFIC EMBODIMENTS
(10) Before describing the present invention in detail, it is to be understood that this invention is not limited to particular compositions or systems, which can, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting. As used in this specification and the appended claims, the singular forms a, an and the include plural referents unless the content and context clearly dictates otherwise. Thus, for example, reference to a device includes a combination of two or more such devices, and the like.
(11) Unless defined otherwise, technical and scientific terms used herein have meanings as commonly understood by one of ordinary skill in the art to which the invention pertains. In general any methods and materials similar or equivalent to those described herein can be used in practice or for testing of the invention as will be understood in the art.
(12) Unless specifically defined otherwise, words indicating or characterizing operational states should be understood to include any normally expected operational variations. Thus, a constant current or constant voltage in operational terms will not generally be precisely constant, but will vary within some acceptable limitations. Thus, terms used herein shall have meanings as commonly understood by one of ordinary skill in the art to which the invention pertains.
Description of Example Embodiments
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(16) As with
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(18) In one type of example system, a series regulator 10 can be used to take power from a primary feeder 11 as is generally understood in the art. The output of 10 feeds a series circuit 9. In an incandescent fixture, such as 1, series line 9 can be directly connected to the lamp or can be connected using various improvements for series lighting systems such as discussed above. An HID fixture such as 2 will generally be used with a ballast such as 6 to match the current of the series circuit to the HID lamp. In specific systems, the primary of the ballast is connected to the series line.
(19) A number of types of modern lighting fixtures, e.g., the LED fixture 3, need a line voltage (e.g., an effectively constant 120V) input. Therefore, specific embodiments use a transformer such as 7, placed in such a way as to allow installation or retrofitting of individual light fixtures, such as at the base of the pole. In specific embodiments, the primary coil of the transformer is connected to the series line, the secondary is connected to the lighting fixture. Depending on the configuration, line voltage wires 8 may run up and optionally inside the pole as illustrated.
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(23) Transformer
(24) According to specific embodiments, some municipal lighting systems and similar systems use constant current series systems with, typically in the United States, a 6.6 A constant current series source. To allow such systems to run line voltage devices (e.g. 120V or 240V street light heads), specific embodiments utilize a specific dual coil constant current to constant voltage or series to multiple transformer as described herein. This transformer may also be referred to as a coupled inductors transformer.
(25) A transformer, in general, is a well known circuit element that that transfers electrical energy from one circuit to another circuit through inductance via the transformer's coils. In general, a varying current in the primary coil creates a varying magnetic flux in the transformer's core and thus a varying magnetic field through the secondary coil. This varying magnetic field induces a varying voltage in the secondary coil. When a load is connected to the secondary coil, current will flow in this coil, and electrical energy will be transferred from the primary circuit through the transformer to the load. In an ideal transformer, the induced voltage in the secondary (V.sub.s) is in proportion to the primary voltage (V.sub.p) and is given by the ratio of the number of turns in the secondary (N.sub.s) to the number of turns in the primary (N.sub.p), generally as follows:
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(27) By appropriate selection of the ratio of turns, a transformer can enable an alternating current (AC) voltage to be stepped up by making N.sub.s greater than N.sub.p, or stepped down by making N.sub.s less than N.sub.p. An early transformer design used an adjustable gap to regulate the voltage present in the secondary winding.
(28) In some transformers increased flux leakage is desired, and long magnetic paths, air gaps, or magnetic bypass shunts may deliberately be introduced in a transformer design to limit the short-circuit current it will supply. Leaky transformers may be used to supply loads that exhibit negative resistance, such as electric arcs, mercury vapor lamps, and neon signs or for safely handling loads that become periodically short-circuited.
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(30) In both
(31) According to specific embodiments of a transformer as described herein, the transformer provides the added benefit that the secondary voltage will not rise to high levels if the secondary is open circuit compared to conventional current transformers, because the gap limits the primary inductance, which limits the primary voltage, which in turn, limits the secondary voltage.
(32) In further embodiments, in order to fulfill particular demanding insulation requirements to allow for easy retrofitting of existing lighting systems and to minimize the chance of high voltage appearing on the secondary coil under a fault condition, several additional design features may be incorporated into specific embodiments, such as one or more of: (1) Incorporation into the transformer of a C-core configured so that the physical separation between primary and secondary coils is maximized, thus increasing insulation strength. The C-core has been determined to provide advantages to alternatives such as an EI core, for example, where both windings are next to each other. (2) Incorporation into the transformer of lead-out wires on opposite sides of the overall enclosed device thereby further increasing physical separation between primary and secondary coils. (3) Incorporation into the primary coil of extra insulation (e.g., polyester tape or other insulation material) on the bobbin side and optionally also on the outside of the coil, increasing insulation strength between the primary winding and the core. According to specific embodiments, adding insulation to the bobbin, as well as wrapping the exterior of the completed primary winding with polyester tape increases the insulation of the primary coil from the surrounding environment. (4) In particular embodiments, the whole core is encased into a protective substance to make a sealed solid body, such as potted in a UL94 V-0 specified epoxy. The sealed solid body provides ease and safety of installation during retrofitting as well as during use of the transformer. (5) In particular embodiments, the primary lead-out wires are #8 stranded 5 kV rated. While this is much thicker than would be specified according to expected voltage or amperage requirements, in particular embodiments, it provides the advantages of Safety in fault conditions To match existing construction specifications for series ballasts
(33) According to specific embodiments, the transformer design incorporates a combination of features to more easily facilitate retrofitting or adaptation of pre-existing series systems.
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(35) It shall be understood that the above specific description applies to one configuration of transformer operating at the parameters given. Different output voltages or current requirements may require different dimensions, windings, operating temperatures, etc. These variations will be understood by a person of skill in the art having benefit of this disclosure thereby allowing a variety of sizes and capacities of transformers to be constructed as provided herein.
(36) While the C-core transformer discussed above has thus far proven to be the preferred device for retrofitting constant current series systems to constant voltage systems, other devices may be used that perform generally as described herein. For example, various digital voltage and current control devices can be configured and/or programmed to provide operation as described herein. Similarly, a switching power supply of suitable design can be configured to perform a similar function in specific applications.
(37) While municipal lighting systems are one use of the invention, the invention has other uses where constant current power sources are in use. A particular area of interest is in airfield power systems.
(38) Airfield lighting power systems include typically series wired systems for powering the runway, taxiway and apron marker lights on an airfield. These are the lights embedded in the surface and on stalks and towers adjacent to the runway and taxiways, that denote the center and edges of these areas, and other information that pilots use to navigate, for example lighted signs and wind cones. In most cases, airfield lighting uses low-wattage incandescent or LED lighting sources, with individual constant current to constant current isolation transformers at each fixture location.
(39) It is sometimes desired to operate other electrical devices in runway/taxiway areas where no other power source is available. Previous power adapters have been used to provide a more constant voltages. (potentially ranging between 80 and 300v on secondary). An transformer as described herein provides a much more steady voltage at a given primary amperage. The specific characteristics of constant current series systems as described above are essentially the same for the airport lighting described above.
(40) One key difference between airfields and street lighting series systems is the ability to dim airfield lighting. Regulators on airfield systems are frequently designed with multiple steps (from 6.6 A down to 2.8 A), allowing an incoming pilot to adjust the light levels to a comfortable brightness. Making this adjustment changes the amperage on the series circuit. Some lights on the system must stay at the same brightness, even when others are dimmed. Wind cones, for example, typically need to stay lit at a constant level of brightness. Wind cones and lighted signs may benefit from conversion to more modern LED sources requiring constant voltage. Transformer as described herein can be used for this purpose within an established secondary voltage range.
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(42) To allow for easy retrofitting or adapting of existing series installations, a transformer according to specific embodiments provides terminations with type, gauge and insulation of lead-out wires needed for particular lighting systems.
(43) Size and Dimensions
(44) As illustrated herein, specific embodiments of STM's can be mounted within a light fixture, on the top of a light fixture, or underneath a light fixture. Using the teachings provided herein, transformers of the appropriate size to optimize the ease of retrofitting existing series systems can be provided. These sizes may vary depending on the installation. One prototype transformer has approximate dimensions of 2.53.56 and weighs approximately 5 lbs. Thus the total dimensions L+W+H is 12 inches. Another prototype transformer has approximate dimensions of 1.534 and weighs less than approximately 5 lbs. Another prototype transformer has approximate dimensions less than 2.53.56 and weighs less than approximately 5 lbs. Another prototype transformer has approximate dimensions greater than 2.53.56 and weighs more than approximately 5 lbs.
Other Embodiments
(45) The invention has now been described with reference to specific embodiments. Other embodiments will be apparent to those of skill in the art. The general structure and techniques, and more specific embodiments which can be used to effect different ways of carrying out the more general goals are described herein. It is understood that the examples and embodiments described herein are for illustrative purposes and that various modifications or changes in light thereof will be suggested by the teachings herein to persons skilled in the art and are to be included within the spirit and purview of this application and scope of the claims.
(46) All publications, patents, and patent applications cited herein or filed with this application, including any references filed as part of an Information Disclosure Statement, are incorporated by reference in their entirety.
(47) Although only a few embodiments have been disclosed in detail above, other embodiments are possible and the inventor (s) intend these to be encompassed within this specification. The specification describes specific examples to accomplish a more general goal that may be accomplished in another way. This disclosure is intended to be exemplary, and the claims are intended to cover any modification or alternative which might be predictable to a person having ordinary skill in the art.
(48) Also, the inventors intend that only those claims which use the words means for are intended to be interpreted under 35 USC 112, sixth paragraph. Moreover, no limitations from the specification are intended to be read into any claims, unless those limitations are expressly included in the claims.
(49) Where a specific numerical value is mentioned herein, it should be considered that the value may be increased or decreased by 20%, while still staying within the teachings of the present application, unless some different range is specifically mentioned. Where a specified logical sense is used, the opposite logical sense is also intended to be encompassed.