tubular electrodeless lamp

By employing multiple electromagnetic sources to uniformly ionize and heat the bulb composition, the discharge lamp achieves increased brightness and flexibility in bulb shape, addressing non-uniform energy distribution and hot spots in existing electrodeless lamps.

JP7796042B2Active Publication Date: 2026-01-08LUMARTIX SA
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Patent Information

Application Number
JP2022566367
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-29
Filing Date
2021-04-27
Publication Date
2026-01-08
Estimated Expiration
2041-04-27

AI Technical Summary

Technical Problem

Existing electrodeless discharge lamps suffer from non-uniform distribution of electromagnetic energy, leading to limited brightness and restricted bulb shapes, particularly in elongated or complex geometries, and hot spot formation.

Method used

The use of multiple electromagnetic energy sources coupled to a single bulb within a discharge lamp, with each source positioned to ensure uniform ionization and heating across the bulb, allowing for various shapes and independent power control of each bulb.

Benefits of technology

This approach enhances brightness and uniformity of illumination, prevents hot spots, and allows for a wider range of bulb shapes and spectral control, including elongated and complex designs.

✦ Generated by Eureka AI based on patent content.

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Abstract

An electrodeless discharge lamp (100) employs one or more stationary light-emitting bulbs (21, 211, 212, 213) within a common conductive shield to contain the electromagnetic excitation fields provided by multiple sources. Each bulb can be excited by several electromagnetic radiation sources or by an individual electromagnetic radiation source. The lamp's tubular structure, employing two magnetron or transistor electromagnetic wave sources facing each other at the end of the tubular bulb, is particularly suited for installation in the focal line of a parabolic bowl reflector. Some variations incorporate bulbs of different compositions, and excitation levels can be independently set to control the spectrum of the emitted light.
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Description

[Technical Field]

[0001] The present invention relates to discharge lamps, particularly electrodeless discharge lamps, in which a light-emitting plasma is generated by one or more electromagnetic (EM) energy waves in the range between radio frequency (HF) and microwave. [Background technology]

[0002] Related technologies High-intensity discharge (HID) lamps are known for their high efficiency in converting energy into visible light. Compared to traditional incandescent or halogen lamps, HID lamps have a favorable specific heat, making them suitable for a variety of applications requiring as much visible light per watt as possible. Such applications include lighting for streets, sports venues, stadiums, commercial buildings, and exhibitions, as well as artificial lighting systems for plant growth and solar power plant inspection.

[0003] A discharge lamp essentially consists of a transparent bulb containing a chemical composition that can be excited to a light-emitting state by a suitable energy source. Traditionally, HID lamps are powered by electrical energy, where an electric discharge is passed between two tungsten electrodes, usually made from tungsten, and through the chemical composition, which heats and ionizes into a plasma that emits light. The composition contains an inert carrier gas, preferably a noble gas such as neon, xenon, argon, or krypton, and an active ingredient, also called a fill material, which is usually a metal salt, e.g., a metal halide.

[0004] By eliminating electrodes and providing electromagnetic rather than electrical energy to excite the chemical composition, metal components can be completely eliminated from the light bulb. This offers several advantages. First, the glass-metal interface within the bulb is avoided, reducing costs and extending the bulb's lifespan. Furthermore, a wider variety of active ingredients, such as sulfur, selenium, tellurium, etc., that are chemically incompatible with metal electrodes, can be utilized for light generation.

[0005] The electromagnetic radiation source that powers an electrodeless plasma discharge lamp can be an electromagnetic generator, frequently a microwave source such as a magnetron, or a solid-state device such as a transistor, emitting electromagnetic radiation in an appropriate band of the electromagnetic spectrum, such as one of the ISM radio bands, including the 6.78 MHz, 13.56 MHz, 27.12 MHz, 40.68 MHz, 433 MHz, 915 MHz, 2.45 GHz, or 5.8 GHz bands. Magnetron and transistor amplifiers are readily available at affordable prices and are therefore often the preferred choice of power source for plasma lamps.

[0006] To avoid hot spot formation and overheating of the bulb material, a common problem in electrodeless discharge lamps, the bulb is typically kept rotating, which causes various operational and stability problems.

[0007] EP 2721631 A1 proposes a solution to overcome the need for rotation. The stationary bulb described therein is equipped with a dielectric rod that connects the electromagnetic wave source to the bulb and ensures better temperature distribution within the plasma bulb. The present invention utilizes the approach disclosed in this prior art document.

[0008] Despite the better temperature management achieved in EP 2 721 631 A1, the distribution of electromagnetic energy, e.g., microwaves, throughout the bulb is not perfectly uniform, and areas of different heated and ionized plasma continue to limit discharge lamp performance, particularly brightness. Also, better absorption of electromagnetic energy in specific areas can contribute to energy attenuation in bulbs with elongated shapes or more geometrically complex bulbs. The brightness of a discharge lamp is limited by the power of the electromagnetic wave source and by the thermal limitations of the bulb envelope. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] European Patent Application Publication No. 2721631 Summary of the Invention [Problem to be solved by the invention]

[0010] It is an object of the present invention to provide an electromagnetically powered electrodeless discharge lamp with increased brightness. It is a further object of the present invention to expand the range of suitable bulb shapes for said discharge lamp.

[0011] BRIEF DISCLOSURE OF THE INVENTION According to the invention, these objects are achieved by the subject matter of the claims and in particular by the independent claims.

[0012] In particular, the objects of the present invention are achieved by an electrodeless discharge lamp for providing visible and / or infrared and / or UV radiation, the lamp comprising: an electrically conductive enclosure that is at least partially transparent to visible and / or infrared and / or UV radiation; one or more stationary light-emitting bulbs within the electrically conductive enclosure, the one or more bulbs being filled with a composition that emits light when in a plasma state; and a plurality of electromagnetic wave sources, each having an output terminal, that radiate an electromagnetic field to ionize and heat the composition within the one or more bulbs, causing the bulbs to attain a plasma state.

[0013] The dependent claims deal with optional but not essential features that may be advantageous, such as a conductive covering having at least one section constituted by a conductive mesh, a light bulb made of fused silica, an electromagnetic wave source in the microwave range, one or more dielectric rods aligned with one of the output terminals of the electromagnetic wave source and positioned between each output terminal and the light bulb, acting as a dielectric waveguide for the electromagnetic field and connecting the electromagnetic wave source to the light bulb, at least one of the stationary light bulbs being electromagnetically connected to two or more electromagnetic wave sources, a plurality of stationary light bulbs filled with compositions having different emission spectra and connected to different electromagnetic wave sources, the electromagnetic wave sources being operable at independently settable variable power levels, a cross-shaped light bulb or a star-shaped light bulb, a tubular light bulb with one or two electromagnetic wave sources at its end, and a concave or parabolic concentrator.

[0014] Several light-emitting compositions can be utilized within the scope of the present invention, among which compositions in which the first active component is composed of a mixture of an inert gas, an antimony halide or a bismuth halide, and the second active component is composed of one or more halides or mixtures of halides of In, Sn, Ag, Cu, Pb, Fe, Hg, Co have provided beneficial results.

[0015] In contrast to what is known in the prior art, the present invention achieves increased brightness over existing electrodeless discharge lamps by coupling multiple electromagnetic energy sources to one or more bulbs in a discharge lamp comprised of a single electromagnetic cavity. The electromagnetic energy sources are adapted to ionize and heat a chemical composition within the bulb, converting it into a light-emitting plasma state.

[0016] The electromagnetic energy source may include a radio frequency (RF) source in the HF to ultra-high frequency (UHF) range and / or a microwave (MW) source, such as one or a pair of transistors or magnetron tubes that generate electromagnetic waves at a desired frequency and strength. Hereinafter, the energy source will be referred to as a magnetron for simplicity. However, the present invention is not limited to a magnetron as the electromagnetic energy source.

[0017] The use of multiple magnetrons or other electromagnetic sources also allows for much more freedom in design, particularly with regard to the shape of the plasma bulb, whereas conventional bulbs are essentially limited to spherical, ellipsoidal, or short tubular shapes due to the distribution of electromagnetic energy throughout the bulb.

[0018] With the present invention, an elongated bulb can be utilized for tubular lamps or for more complex designs such as cross-shaped lamps, star-shaped lamps, etc. Preferably, the magnetrons that emit the incident waves are positioned at the distal ends of each end of the shape.

[0019] Distributed positioning of the electromagnetic wave sources allows for more uniform ionization and heating of the composition within the elongated bulb. Because the electromagnetic waves emitted by these multiple electromagnetic wave sources originate from different locations relative to the bulb, better uniformity can be achieved throughout the bulb's unique shape. This further reduces the risk of generating localized temperature hot spots, while allowing for higher and more uniform heating and ionization across the plasma. This in turn prevents the temperature limits of the bulb material, preferably fused silica, from being exceeded in the hot spot area.

[0020] The use of multiple electromagnetic sources in a discharge lamp also offers the possibility of using several distinct bulbs, each of which can be enclosed in the same conductive envelope, with each bulb being connected to an independent electromagnetic source.

[0021] Electrodeless discharge lamps featuring multiple separate bulbs, each powered by its own associated magnetron or transistor, offer some operational flexibility. For example, different ionizing compositions can be selected for each bulb. Such different compositions can have various spectral characteristics. As a result, each bulb can emit a different spectrum of light depending on which of the bulbs is lit.

[0022] Moreover, because the composition within each bulb is lit by an individually attached electromagnetic radiation source, setting the power level of the electromagnetic radiation source therefore offers a further mechanism for adjusting or increasing the brightness of an electrodeless plasma lamp. [Brief explanation of the drawings]

[0023] Exemplary embodiments of the present invention are disclosed herein and illustrated by the following drawings.

[0024] [Figure 1] 1 shows a schematic representation of a known discharge lamp; [Figure 2] 1 shows a schematic representation of a known discharge lamp; [Figure 3] 1 is a schematic diagram of one embodiment of the present invention, using three magnetrons for operating a spherical discharge lamp. [Figure 4] 1 is a schematic diagram of a further embodiment of the present invention, featuring an elongated bulb of a discharge lamp lit by two magnetrons positioned at the ends of the discharge lamp. [Figure 5a] FIG. 1 is a schematic diagram of one embodiment of the present invention, showing the location of a plasma bulb within an electromagnetic enclosure within a collector, illustrating an embodiment in which the plasma bulb is completely surrounded by the electromagnetic enclosure. [Figure 5b]FIG. 1 is a schematic diagram of one embodiment of the present invention, illustrating the position of a plasma bulb within an electromagnetic shroud within a collector, where the shroud has a half-dome shape that connects to the convex curvature of the collector, and where the enclosure thus formed by the shroud and collector contains the plasma bulb. [Figure 6] FIG. 10 is a schematic diagram of a further possible embodiment of the present invention, showing a cross-shaped bulb of a discharge lamp with a magnetron positioned at each of the ends of the discharge lamp. [Figure 7] FIG. 1 is a schematic diagram of a further possible embodiment of the present invention, showing a discharge lamp featuring two distinct, elongated, linearly arranged bulbs with their own magnetrons encased within an electromagnetic shroud. [Figure 8] FIG. 1 is a schematic diagram of a further possible embodiment of the present invention, showing a discharge lamp featuring three separate elongated bulbs with their own individual magnetrons arranged in a Y-shape and encased within an electromagnetic enclosure. DETAILED DESCRIPTION OF THE INVENTION

[0025] Examples of the present invention 1, a known discharge lamp 20 uses a dielectric rod 22 for improved energy transfer to a bulb 21. The present invention, in its preferred embodiments, shares the features described in the prior art document. The present invention also preferably, but not necessarily, utilizes a dielectric rod 22 to benefit from its advantages for temperature management within the bulb.

[0026] 2 shows a known variation of a discharge lamp in which the magnetron 41 has an output terminal 47 supported by a ceramic isolator 48 and connected to a 3 / 4 wavelength waveguide 82. The bulb 21 includes a dielectric quartz rod 22 manufactured integrally with the bulb 21, which is inserted into the waveguide 82 and held in place by a collet 85 or any suitable fastening means.

[0027] The discharge lamp 20 of the present invention includes a stationary, sealed bulb 21 filled with a chemical composition suitable for producing radiation when in an ionized and heated plasma state 35. The chemical composition includes an inert gas, such as a noble gas, and an active component that defines the spectral characteristics of the emitted light. The radiation emitted by the plasma 35 is in the visible, infrared, and / or ultraviolet (UV) spectral range. The bulb 21 of the discharge lamp 20 is at least partially transparent to visible, infrared, or UV radiation.

[0028] Suitable chemical compositions for discharge lamps include photoactive components known in the prior art. Due to the absence of electrodes or metal parts in the bulb of RF or MW powered discharge lamps, active components that are not chemically compatible with metallic materials can also be used as active components in inert atmospheres. Such alternative active components include sulfur, selenium, tellurium, etc.

[0029] In a preferred embodiment, the active component of the present invention comprises a first active component consisting of a mixture of antimony halides or bismuth halides, and a second active component consisting of one or more halides or a mixture of halides of In, Sn, Ag, Cu, Fe, Pb, Hg, and Co, in an inert gas.

[0030] Bulb 21 can be made from any suitable material that meets the temperature and pressure requirements for its application in an electrodeless discharge lamp. A preferred material for bulb 21 is fused silica. Alternatively, fused quartz, fused silica, SiO2, or any other suitable material can be utilized. To be suitable for its application, the bulb material must be able to withstand typical operating temperatures of 600°C to 900°C and internal pressures of 0.1 MPa to 2 MPa.

[0031] The bulb 21 is placed within a concentrator 51 and within a metal mesh electromagnetic enclosure 53. The concentrator 51 preferably has reflective walls to concentrate the light generated within the bulb 22 into a beam at the desired aperture, and is electrically conductive to prevent microwave transmission outside the lamp assembly. The metal mesh enclosure is an electrically conductive covering 53 that confines the electromagnetic field within the lamp 20 and is mechanically and electrically connected to the lamp 20 by any suitable means. The enclosure 53 may also, in one variant, be realized using any suitable transparent, translucent, or light-transmitting substrate onto which a thin conductive layer is deposited.

[0032] The discharge lamp further comprises a plurality of electromagnetic wave sources 411, 412, 413, 414, each having an output terminal 43 that emits an electromagnetic field to ionize and heat the chemical composition contained within the bulb.

[0033] In a preferred embodiment, the incident electromagnetic frequency or frequencies are in the microwave range and are produced by a magnetron tube or transistor 41. The magnetron output terminal 43 is suitable for coupling to a standard wavelength waveguide 82. The output terminal typically exhibits a coaxial transmission line 46 having a center conductor closed by a cap with an opening 44 or closed within the bore of a quarter wavelength waveguide. The cooling fins 42 are preferably cooled by forced airflow from a fan (not shown).

[0034] 1, the bulb 21 rests on a dielectric rod 22, which is in turn axially attached to a quartz socket 25, the inside dimensions of which correspond to the outside dimensions of the microwave terminal 43, so that the microwave terminal can fit within the socket 25. The socket is slightly longer than the terminal so that an air gap 19 remains between the inner wall of the socket 25 and the terminal 43.

[0035] 3 shows one possible embodiment of a multi-magnetron discharge lamp 100 in which multiple magnetrons 411, 412, and 413 can be arranged to increase the electromagnetic energy delivered to the spherical bulb and hence the brightness of the luminous ionized plasma in plasma region 35. The bulb is enclosed within electromagnetic envelope 53, which is penetrated by wavelength waveguide 82 and collet 85.

[0036] The light bulb of the present invention is a stationary light-emitting bulb. In a preferred embodiment, electromagnetic waves are transmitted to the bulb through dielectric rods 221, 222, and 223. The dielectric rods are aligned with the output terminals of the magnetron or transistor antenna and are located between the respective output terminals and the bulb. The dielectric rods physically connect the magnetron and the bulb. As shown in FIG. 2, the dielectric rods can be held within the internal cavity of the wavelength waveguide 82 and collar 85.

[0037] The dielectric rods 221, 222, 223 enhance the efficiency of energy transfer between the magnetron or transistor amplifier and the bulb, acting as a dielectric waveguide for the electromagnetic field and thus allowing the bulb to be operated in a stationary mode.

[0038] The embodiment shown in Figure 4 shows the preferred location of two magnetrons or transistor amplifiers 411 and 412 in a tubular bulb. To ensure uniform ionization and heating of the plasma throughout the elongated bulb, two magnetrons are installed at its ends. An energy source at each end allows the bulb to expand in size to this tubular shape.

[0039] High brightness long tubular bulbs are particularly suitable for applications where a fairly bright, uniformly high brightness is desired. For example, elongated bulbs can be arranged parallel to a planar surface to essentially provide a rectangular or other shaped light-emitting surface.

[0040] As shown in Figure 5, the plasma bulb 21 is positioned at the center of the concentrator 51. The shape of the concentrator is suitable for directing the reflected light toward its open mouth. Preferred shapes are a concave, elliptical, or radial bowl, where the curvature of the bowl can be selected to define the opening of the reflected light beam.

[0041] As shown in Figure 5a, the conductive enclosure 53 can completely surround the plasma bulb 21. Alternatively, as shown in Figure 5b, the enclosure can contact the inner wall of the conductive region of the collector 51 to provide an enclosed space in which the plasma bulb 21 is contained.

[0042] Homogeneous illumination of a discharge lamp with several tubular extensions can be achieved by placing a magnetron or transistor amplifier at the end of each extension. The number of tubular extensions is not limited. In Figure 6, a cross-shaped lamp is shown, each of whose ends uses a magnetron or transistor amplifier 411, 412, 413, 414. Additional tube shapes, such as star-shaped, ring-shaped, etc., are possible for a single plasma lamp powered by multiple magnetrons.

[0043] The present invention is not limited to the use of a single bulb within a discharge lamp. In fact, multiple plasma bulbs 211, 212, each powered by a magnetron 411, 412, can be included within the discharge lamp 100. Each magnetron or transistor amplifier can be independently operated at a selected power level and frequency. Preferably, the bulbs share the same enveloping conductive envelope 53. Figures 7 and 8 show possible embodiments of such a multi-plasma bulb discharge lamp. This arrangement is suitable for a variety of different shapes, including the more elongated shape shown in Figure 7 and the Y-shape shown in Figure 8.

[0044] The active ingredients in each individual bulb of a multi-bulb discharge lamp can be different. This allows the excitation levels to be individually set to control the spectrum of the emitted light. The lamp displays different color spectrums for its lit bulbs. Differential adjustment of the individual bulbs allows for continuous brightness control of the bulbs, or a "dimming effect," to be introduced or expanded. A degree of dimming is possible through adjustment of the power of the ignition source. The use of multiple sources widens the range of adjustable brightness. Additionally, multiple sources allow for greater precision or finer adjustment across the luminous intensity range.

[0045] As demonstrated in Figures 3, 4 and 6, the multiple electromagnetic wave sources of the discharge lamp claimed in this invention can be electromagnetically coupled to one stationary bulb. In another embodiment, as shown in Figures 7 and 8, multiple electromagnetic wave sources are coupled to one bulb each, where multiple bulbs are contained within one discharge lamp. [Explanation of symbols]

[0046] Reference Numbers Used in the Drawings 19 void 20. Discharge lamp 21. Light bulb 22 Dielectric rod 23 Light diffusion film 25 sockets 35 Plasma Region 41 Magnetron 42 Cooling fins 43 Terminal / electromagnetic wave launcher (partial cross section) 44 Opening 46 Coaxial Line 47 RF terminal 48 Insulator 51 Concentrator 52 Support collar 53 Electromagnetic Cover 82 3 / 4 wavelength waveguide 85 Colette 100 Multi-magnetron discharge lamp 211 First Light Bulb 212 Second Light Bulb 213 The Third Light Bulb 221 First Dielectric Rod 222 Second dielectric rod 223 Third Dielectric Rod 411 First Magnetron 412 Second Magnetron 413 Third Magnetron

Claims

1. 1. An electrodeless discharge lamp (100) for providing visible radiation, infrared radiation, and / or UV radiation, comprising: an electrically conductive casing (53) that is at least partially transparent to visible radiation, infrared radiation, and / or UV radiation; at least one stationary light-emitting bulb (21, 211, 212, 213) inside the electrically conductive casing (53) that is filled with a composition that emits light when in a plasma state; and a plurality of electromagnetic wave sources (411, 412, 413, 414) each having an output terminal that radiates an electromagnetic field to ionize and heat the composition in one or more bulbs, bringing them into a plasma state, the stationary light-emitting bulb having several tubular extensions, an electromagnetic wave source at each end of the tubular extensions, and the stationary light-emitting bulb having a cross or star shape.

2. 2. The electrodeless discharge lamp (100) of claim 1, wherein the conductive covering has at least one region formed by a conductive mesh (53).

3. 10. The electrodeless discharge lamp (100) of claim 1, wherein the bulb is made of fused quartz.

4. 10. The electrodeless discharge lamp (100) of claim 1, wherein the source of electromagnetic radiation is between the radio frequency and microwave ranges.

5. 10. The electrodeless discharge lamp (100) of claim 1, wherein the composition of at least one bulb includes a first active component comprised of a mixture of an inert gas, an antimony halide, or a bismuth halide, and a second active component comprised of one or more halides or mixtures of halides of In, Sn, Ag, Cu, Fe, Pb, Co, and Hg.

6. 2. The electrodeless discharge lamp (100) of claim 1, comprising one or more dielectric rods (221, 222, 223, 224) aligned with one of the output terminals of the electromagnetic wave source and positioned between the respective output terminal and the bulb (21, 211, 212, 213), functioning as a dielectric waveguide for the electromagnetic field and connecting the electromagnetic wave source to the bulb (21, 211, 212, 213).

7. 2. The electrodeless discharge lamp (100) of claim 1, wherein at least one of the stationary light-emitting bulbs (21) is electromagnetically coupled to two or more electromagnetic wave sources (411, 412, 413, 414).

8. 2. The electrodeless discharge lamp (100) of claim 1, comprising a plurality of stationary light-emitting bulbs (211, 212, 213), each filled with a different composition having a different emission spectrum and connected to a different electromagnetic wave source (411, 412, 413), the electromagnetic wave sources being operable at variable power levels, and the power levels of the electromagnetic wave sources being set independently of one another.

9. 2. The electrodeless discharge lamp (100) according to claim 1, wherein the stationary light-emitting bulb (21, 211, 212, 213) has an essentially tubular shape and is electromagnetically coupled to one electromagnetic wave source (411, 412, 413) at one end, or to one electromagnetic wave source (411, 412) at each of two ends.

10. 10. An electrodeless discharge lamp (100) according to claim 9, comprising a concave or parabolic concentrator (51).

11. 11. The electrodeless discharge lamp (100) of claim 10, wherein the concentrator (51) has at least one electrically conductive portion, and the electrically conductive portion of the concentrator (51) is part of the electrically conductive cover (53).

Citation Information

Patent Citations

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