Claims
- 1. A discharge lamp comprising a ceramic discharge vessel enclosing a discharge space, said discharge vessel including within said discharge space an ionizable material comprising a metal halide, a first and second discharge electrode feedthrough means, and a first and second current conductor connected to said first and second discharge electrode feedthrough means, respectively;
said lamp having a molybdenum coil wrapped around the discharge vessel and at least a portion of the electrode feed through means, and having a power range of about 150 W to about 1000 W and exhibiting one or more of a characteristic selected from the group consisting of a CCT (correlated color temperature) of about 3800 to about 4500 K, a CRI (color rendering index) of about 70 to about 95, a MPCD (mean perceptible color difference) of about ±10, and a luminous efficacy up to about 85-95 lumens/watt.
- 2. A lamp as claimed in claim 1 retrofit with ballasts designed for high pressure sodium or quartz metal halide lamps.
- 3. A discharge lamp having a power range of about 150 W to about 1000 W and comprising a ceramic discharge vessel enclosing a discharge space, said discharge vessel including within said discharge space an ionizable material comprising a metal halide, a first and second discharge electrode feedthrough means, and a first and second current conductor connected to said first and second discharge electrode feedthrough means, respectively;
wherein the ceramic discharge vessel includes an arc tube comprising:
a cylindrical barrel having a central axis and a pair of opposed end walls, a pair of ceramic end plugs extending from respective end walls along said axis, a pair of lead-ins extending through respective end plugs, said lead-ins being connected to respective electrodes which are spaced apart in said central barrel, wherein the electrode feedthrough means each have a lead-in of niobium which is hermetically sealed into the arc tube, a central portion of molybdenum/aluminum cermet, a molybdenum rod portion and a tungsten tip having a winding of tungsten, and wherein said lamp has a molybdenum coil attached to the arc tube and at least a portion of the ceramic end plugs.
- 4. A lamp as claimed in claim 3, wherein the arc tube has a molybdenum coil wrapped around a substantial portion and around at least a portion of the ceramic end plugs.
- 5. A lamp as claimed in claim 4, wherein the discharge space contains an ionizable filling of an inert gas, a metal halide, and mercury.
- 6. A lamp as claimed in claim 5 wherein, said discharge vessel has a ceramic wall and is closed by a ceramic plug, said electrode feedthrough means including at least one tungsten electrode which is connected to a niobium electric current conductor by means of a leadthrough element which projects into the ceramic plug with a tight fit, is connected thereto in a gastight manner by means of a sealing ceramic and has a part formed from aluminum and molybdenum which forms a cermet at the area of the gastight connection.
- 7. A lamp as claimed in claim 5, wherein, said discharge vessel has a ceramic wall and is closed by a ceramic plug, said electrode feedthrough means including at least one tungsten electrode which is connected to a niobium electric current conductor by means of a leadthrough element which projects into the ceramic plug with a tight fit, is connected thereto in a gastight manner by means of a sealing ceramic and has a first part formed from aluminum and molybdenum which forms a cermet at the area of the gastight connection and a second part which is a metal part and extends from the cermet in the direction of the electrode.
- 8. A lamp as claimed in claim 7, wherein the metal part is a molybdenum rod.
- 9. A lamp as claimed in claim 5, wherein the arc tube has an aspect ratio (IL/ID) in the range of about 3.3 to about 6.2.
- 10. A lamp as claimed in claims 6 and 7, wherein the electrode has a tip extension in the range of about 0.2 to about 0.5 mm; the cermet contains at least about 35 wt. % Mo with the remainder being Al2O3, and the as sealing ceramic flow completely covers the Nb connector.
- 11. A lamp as claimed in claim 10, wherein the arc tube and the electrode feedthrough means have the following characteristics for a given lamp power:
- 12. A lamp as claimed in claim 11, wherein said metal halide comprises the following salts of 6-25 wt % NaI, 5-6 wt % TlI, 34-37 wt % CaI2, 11-18 wt % DyI3, 11-18 wt % HoI3, and 11-18 wt % TmI3.
- 13. A lamp as claimed in claim 12, wherein the ionizable filling is a mixture of about 99.99% of Xenon and a trace amount of Kr-85 radioactive gas.
- 14. A lamp as claimed in claim 12, wherein the ionizable filling is a one or more rare gases, such as Neon, Argon, Krypton and Xenon.
- 15. A lamp as claimed in claim 12, wherein the ionizable filling is Xenon.
- 16. A lamp as claimed in claims 1, 5, and 13, having a power range of about 150 W to about 1000 W and 100V to 263V, and one or more of the following characteristics: a lumen maintenance of >80%, a color temperature shift <200 K from 100 to 10,000 hours, and lifetime of about 10,000 to about 25,000 hours.
- 17. A design space of parameters for the design and construction of a discharge lamp comprising a discharge vessel, having a molybdenum coil wrapped around the discharge vessel and at least a portion of the electrode feed through means, and having a power range of about 150 W to about 1000 W and comprising a ceramic discharge vessel enclosing a discharge space, said discharge vessel including within said discharge space an ionizable material comprising a metal halide, a first and second discharge electrode feedthrough means, and a first and second current conductor connected to said first and second discharge electrode feedthrough means, respectively;
said design space including at least one of the following parameters:
(i) the arc tube length, diameter and wall thickness limits of said discharge lamp correlated to and expressed as functions of lamp power, and/or color temperature, and/or lamp voltage; and (ii) the electrode feedthrough structure limits used to conduct electrical currents with minimized thermal stress on the arc tube correlated to and expressed as a function of lamp current.
- 18. A design space as claimed in claim 17, wherein said parameters also include:
(i) a general aspect ratio of the inner length (IL) to the inner diameter (ID) of the arc tube body is higher than that of ceramic metal halide lamps having a power of less than about 150 W; (ii) the upper and lower limits of electrode rod diameter correlated to and expressed as a function of lamp current; and (iii) a composition range of the salts correlated to and expressed as a function of color temperature and lamp voltage.
- 19. A design space as claimed in claim 18, wherein said design parameters include the following characteristics for the design of an arc tube and electrode feedthrough means for a given lamp power:
- 20. A method for the design and construction of a discharge lamp having a molybdenum coil wrapped around the discharge vessel and at least a portion of the electrode feed through means, and having a power range of about 150 W to about 1000 W and comprising a ceramic discharge vessel enclosing a discharge space, said discharge vessel including within said discharge space an ionizable material comprising a metal halide, a first and second discharge electrode feedthrough means, and a first and second current conductor connected to said first and second discharge electrode feedthrough means, respectively;
which method comprises the steps of determining the dimensions of the arc tube of the discharge vessel and the electrode feedthrough means structure using a design space of claim 17.
- 22. A method for the design and construction of a discharge lamp having a a molybdenum coil wrapped around the discharge vessel and at least a portion of the electrode feed through means, and having power range of about 150 W to about 1000 W and comprising a ceramic discharge vessel enclosing a discharge space, said discharge vessel including within said discharge space an ionizable material comprising a metal halide, a first and second discharge electrode feedthrough means, and a first and second current conductor connected to said first and second discharge electrode feedthrough means, respectively;
which method comprises the steps of determining the dimensions of the arc tube of the discharge vessel and the electrode feedthrough means structure using a design space of claim 18.
- 23. A method for the design and construction of a discharge lamp having a molybdenum coil wrapped around the discharge vessel and at least a portion of the electrode feed through means, and having a power range of about 150 W to about 1000 W and comprising a ceramic discharge vessel enclosing a discharge space, said discharge vessel including within said discharge space an ionizable material comprising a metal halide, a first and second discharge electrode feedthrough means, and a first and second current conductor connected to said first and second discharge electrode feedthrough means, respectively;
which method comprises the steps of determining the dimensions of the arc tube of the discharge vessel and the electrode feedthrough means structure using a design space of claim 19.
- 24. A method as claimed in claim 23, including the further design parameter that the metal halide comprises the following salts of 6-25 wt % NaI, 5-6 wt % TlI, 34-37 wt % CaI2, 11-18 wt % DyI3, 11-18 wt % HoI3, and 11-18 wt % TmI3.
- 25. A method as claimed in claim 24, including the further design parameter that the ionizable filling is a mixture of about 99.99% of Xenon and a trace amount of Kr-85 radioactive gas.
- 26. A method as claimed in claim 25, including the further design parameter that the discharge vessel has a ceramic wall and is closed by a ceramic plug, said electrode feedthrough means including at least one tungsten electrode which is connected to a niobium electric current conductor by means of a leadthrough element which projects into the ceramic plug with a tight fit, is connected thereto in a gastight manner by means of a sealing ceramic and has a part formed from aluminum and molybdenum which forms a cermet at the area of the gastight connection.
- 27. A method as claimed in claim 25, including the further design parameter that the discharge vessel has a ceramic wall and is closed by a ceramic plug, said electrode feedthrough means including at least one tungsten electrode which is connected to a niobium electric current conductor by means of a leadthrough element which projects into the ceramic plug with a tight fit, is connected thereto in a gastight manner by means of a sealing ceramic and has a first part formed from aluminum and molybdenum which forms a cermet at the area of the gastight connection and a second part which is a metal part and extends from the cermet in the direction of the electrode.
- 28. A method as as claimed in claim 27, wherein the metal part is a molybdenum rod.
- 29. A method as claimed in claims 26 and 27, wherein the electrode has a tip extension in the range of about 0.2 to about 0.5 mm; the cermet contains at least about 35 wt. % Mo with the remainder being Al2O3, and the as sealing ceramic flow completely covers the Nb connector.
- 30. A method as claimed in claim 20 wherein the lamp produced has a power range of about 150 W to about 1000 W and 100V to 263V, and one or more of the following characteristics: a lumen maintenance of >80%, a color temperature shift <200 K from 100 to 10,000 hours, and lifetime of about 10,000 to about 25,000 hours.
RELATED APPLICATION
[0001] This application is a divisional application of our U.S. Serial No. (Disclosure No. 702263) filed of even date herewith for “150W-1000W MasterColor® Ceramic Metal Halide Lamp Series with Color Temperature about 4000 K, for High Pressure Sodium or Quartz Metal Halide Retrofit Applications.”