Claims
- 1. A light source for instrumentation and the like, having instantaneous turn-on and substantially constant spectrally coherent output level, comprising:
- a vapor lamp,
- a heat sink block, said block having a light passage communicating with said lamp for passage of radiation from the lamp to said block,
- means for heating said block,
- control means for the heater means, including temperature responsive means on said block to maintain the block adjacent the temperature responsive means substantially at a predetermined temperature,
- output level control means for adjusting illumination output of the lamp, including light responsive means to receive illumination from said lamp and to control current through the lamp in accordance with illumination output level,
- said illumination output level control means includes a spectral filter for discriminating output wavelength, whereby illumination output is maintained at a predetermined wavelength, and
- lamp current control means for adjusting heater current through said lamp in response to said temperature responsive means and said illumination output level control means,
- whereby the illumination output level of said vapor lamp is instantly set and maintained by controlling lamp temperature and current.
- 2. A light source according to claim 1, wherein:
- said light source being a cold cathode arc-discharge lamp for producing radiation at substantially constant intensity, and
- said heater control means is adapted to maintain said lamp at a temperature of 70 .degree. C.
- 3. A light source according to claim 1, and further comprising:
- means for directing the light source to a contaminated environment, and
- means for observing any change in lamp current resulting from light flux absorption by the environment.
- 4. A light source according to claim 3, wherein:
- said lamp contains a gaseous vapor material containing a low atomic number element selected among zinc, cadmium, nickel, nitrogen, sodium, argon, and mercury.
- 5. A method for testing for environmental contamination by a metal such as lead, arsenic, mercury, or zinc, comprising the steps of:
- providing a light source as defined in claim 1,
- providing a filter cell containing molecules of a metal for which the environment is to be tested,
- directing the light source to a contaminated environment, and observing any change in lamp current resulting from light flux absorption by the environment at the wavelength of the metal in the cell.
- 6. A light source for instrumentation and the like, having instantaneous turn-on and substantially constant spectrally coherent-output level, comprising:
- a vapor lamp,
- a power supply to excite and provide current to said vapor lamp,
- current sensing means to sense changes in anode current in the vapor lamp, said current sensing means being connected to said power supply and to the lamp and being adapted to compensate for changes in said anode current,
- a heat sink block, said block having a light passage communicating with said lamp for passage of radiation from the lamp to said block,
- means for heating said block,
- control means for the heater means, including temperature responsive means on said block to maintain the block adjacent the temperature responsive means substantially at a predetermined temperature,
- output level control means for adjusting the illumination output of the lamp, including light responsive means to receive illumination from said lamp and to control current through the lamp in accordance with illumination output level,
- control means for maintaining the light output level of the lamp, said control means including a spectral filter and light responsive means to receive illumination from the lamp and maintain a constant current to the lamp,
- lamp temperature control means including a temperature sensor and a heater connected to said power supply for adjusting the current through said heater in response to changes in temperature of said lamp, whereby lamp temperature and a predetermined output level of spectrally coherent illumination, are instantly set and maintained, and
- lamp current control means for adjusting heater current through said lamp in response to said temperature responsive means and said illumination output level control means,
- whereby the illumination output level of said vapor lamp is instantly set and maintained by controlling lamp temperature and current.
- 7. A light source for instrumentation and the like, having instantaneous turn-on and substantially constant spectrally coherent output level, comprising:
- a vapor lamp,
- a heat sink block, said block having a light passage communicating with said lamp for passage of radiation from the lamp to said block,
- means for heating said block,
- heater control means adapted to maintain said lamp at a temperature of 70.degree. C.,
- said light source being a cold cathode arc-discharge lamp for producing radiation at substantially constant intensity,
- control means for the heater means, including temperature responsive means on said block to maintain the block adjacent the temperature responsive means substantially at a predetermined temperature,
- output level control means for adjusting the illumination output of the lamp, including light responsive means to receive illumination from said lamp and to control current through the lamp in accordance with illumination output level,
- means for maintaining a thermoelectric device in thermal contact with a cold spot, whereby resonant line outputs are increased by depletion of mercury vapor in the lamp to correspondingly reduce reabsorption of photons by mercury atoms,
- means for controlling cold spot temperature in correlation with the current passing through the lamp to allow the intensity of spectral lines to increase to their maximum near the point of mercury starvation of the lamp to enable variation of the intensity of said spectral lines over the operating current range of the lamp without fall-off of intensity,
- means for maintaining the cold spot at a temperature in a region between low and medium pressure mercury lamps, whereby vapor pressure is sufficiently high that the resonant line outputs at 185 and 254 nanometers become suppressed and broadened, while a 365 nanometer line and other non-resonant lines increase in intensity,
- means for maintaining the cold spot temperature constantly in correlation with the lamp current,
- means for varying output of the 365 nanometer line by adjusting lamp current,
- means for setting the cold spot temperature to a predetermined value at which the 365 nanometer line intensity is two to ten times the intensity available in a normal low-pressure operating mode,
- means for precisely controlling the cold spot temperature in the region between low and medium pressure operation by heating between the lamp cold spot and the thermoelectric device, and
- lamp current control means for adjusting heater current through said lamp in response to said temperature responsive means and said illumination output level control means,
- whereby the illumination output level of said vapor lamp is instantly set and maintained by controlling lamp temperature and current.
- 8. A light source according to claim 7, and further including the step of:
- providing real-time temperature control decreasing the heater current to maintain the cold spot at the set temperature as the lamp current is increased to provide more 365 nm output.
- 9. A light source according to claim 7, wherein there is no fall-off of intensity caused by low intensity mercury lamps operating under uncontrolled ambient conditions.
- 10. A method according to claim 7, and further including:
- measuring temperature between the heater and the cold spot to provide real-time temperature control, and
- decreasing heater current to maintain the cold spot at the predetermined temperature with lamp current increase to provide increased 365 nm output.
- 11. A method of operation of a vapor lamp for instantaneously available output at a specified level, comprising the steps of:
- providing a vapor lamp as defined in claim 7,
- measuring the illumination output of the lamp at a specified level, and
- adjusting electrode power to the vapor lamp to maintain the specified level.
- 12. A method according to claim 11, and further comprising:
- discriminating the output wavelength of the lamp by filtering illumination output through a transmissive spectral filter.
- 13. A method of operation of a vapor lamp to provide a wavelength selective mode of operation, comprising the steps of:
- maintaining a thermoelectric device in thermal contact with a cold spot at a selected temperature by setting the cold spot at said temperature to increase the 185 and 254 resonant line outputs due to the depletion of mercury vapor, while correspondingly reducing the reabsorption of 185 and 254 nm photons by mercury atoms,
- controlling the temperature of the cold spot in correlation with current through the lamp to allow the intensity of the spectral lines to increase to the maximum near the point of mercury starvation of the lamp to enable variation of the intensity of said spectral lines over the operating current range of the lamp without fall-off of intensity,
- maintaining the cold spot at a higher temperature in a region between low and medium pressure operation mercury lamps, whereby the vapor pressure is sufficiently high that the resonant line outputs at 185 and 254 nanometers become suppressed and broadened, while a 365 nanometer line and other non-resonant lines increase in intensity,
- maintaining the cold spot temperature constant in correlation with the lamp current,
- varying the output of the 365 nanometer line by adjusting the lamp current,
- setting the cold spot temperature to the predetermined value at which the 365 nanometer line intensity is two to ten times the intensity available in a normal low-pressure operating mode, and
- controlling precisely the cold spot temperature in the region between low and medium pressure operation by heating between the lamp cold spot and the thermoelectric device.
- 14. A method of operation of a metal vapor lamp to provide a precise mode of operation, comprising the steps of:
- setting a cold spot at a predetermined temperature at about the melting point of the metal,
- maintaining a thermoelectric device in thermal contact with the cold spot,
- controlling the predetermined cold spot temperature in correlation with the current passing through the lamp to enable the intensity of the spectral output to be increased and held at a maximum without thermal run-away and without radical lamp operation experienced without precise cold spot temperature control,
- controlling lamp spectral emission output by adjusting the lamp current, and
- controlling precisely the cold spot temperature in the region required for stable lamp operation by heating between said cold spot and the thermoelectric device, while measuring temperature between the heater and the cold spot to provide real-time temperature control.
- 15. A method according to claim 14, and further comprising:
- bringing and holding the cold spot to a constant higher temperature in correlation with the lamp current, at which higher temperature other modes of operation of the lamp can be provided.
- 16. A method according to claim 14, wherein said metal vapor lamp utilizes a metal selected among lead, arsenic, and selenium.
- 17. A method according to claim 14, and further comprising:
- decreasing heater current to maintain the cold spot at the predetermined temperature with increase of lamp current to provide increased spectral line output.
- 18. A lamp adapted for pre-heating to provide instantaneous energizing and provide substantially constant spectrally coherent output, said lamp comprising:
- a vapor lamp operable at such an elevated temperature that vapor pressure is stabilized and ion flow is controlled to produce radiation of predetermined wavelength,
- heat sink means defining first, second and third socket openings, and a passage for directing radiant energy from the lamp and through the heat sink means,
- electrical heater means connected with the second socket opening for pre-heating the lamp to provide said elevated temperature prior to operation of the lamp, said elevated lamp temperature being substantially that of the heat-sink means,
- thermistor means connected with said third socket opening and responsive to temperature changes in the temperature of said heat sink means to provide accurate control of said electrical heater means, and
- illumination control means for maintaining the output of the lamp at substantially constant wavelength and intensity.
- 19. A lamp according to claim 18, wherein:
- said illumination control means comprises a spectral filter,
- said spectral filter being disposed between the lamp and said light responsive means to expose the light responsive means only to light of the wavelength passed by the spectral filter,
- means controlled by said light responsive means for adjusting current through the lamp to maintain lamp output substantially constant.
- 20. A lamp according to claim 18, wherein:
- said heat sink means comprises a heater block, and further including:
- cooling fins on said heater block for air cooling of the heater block.
- 21. A lamp according to claim 18, wherein:
- said elevated temperature to which said heat sink is elevated is 70.degree. C., and
- the lamp is a mercury-argon lamp.
- 22. A method of operating a glow discharge lamp to provide substantially instantaneously available output at a predetermined level, said method comprising:
- preheating the lamp to a predetermined operating temperature,
- applying predetermined anode power, current and voltage levels to the lamp upon said predetermined lamp output level being attained,
- measuring illumination output of the lamp at said levels, and adjusting said anode power to maintain said specified levels, and
- discriminating the output wave length by providing transmissive spectral filter means.
- 23. The method according to claim 22, and further including:
- providing said vapor lamp with glowing gas discharge by material selected from the group comprising mercury, zinc, sodium, cadmium, argon, and neon.
RELATED APPLICATIONS
This application is a continuation-in-part of application Ser. No. 08/503,623 filed Jul. 18, 1995, now abandoned, which is a continuation of Ser. No. 08/341,694 filed Nov. 15, 1994, now abandoned, which is a continuation of Ser. No. 08/201,060 filed Feb. 24, 1994, now abandoned, which is a continuation of Ser. No. 08/047,168 filed Apr. 14, 1993, now abandoned, which is a continuation of Ser. No. 07/702,417, filed May 20, 1991, now abandoned.
US Referenced Citations (8)
Continuations (4)
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341694 |
Nov 1994 |
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201060 |
Feb 1994 |
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47168 |
Apr 1993 |
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702417 |
May 1991 |
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Continuation in Parts (1)
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503623 |
Jul 1995 |
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