Claims
- 1. A probe for simultaneously measuring viscosity and temperature of a hot liquid, comprising:(a) a buffer rod comprising a refractory material acoustical waveguide comprising a first inner refractory material encased in a second outer refractory material, said buffer rod having a first and second end, said second end comprising a buffer rod probe surface, wherein the inner refractory material is a high temperature resistant, reduced heat sink material selected from the group consisting of alumina, silicon carbide and mixtures thereof; and (b) an ultrasonic shear wave generating transducer at the first end of the buffer rod; wherein said ultrasonic shear wave generating transducer emits shear waves that are in part transmitted and in part reflected at the interface between the two refractory materials; and wherein the shear waves reflected at the interface between the two refractory materials provide a reference signal that can be used to measure time differences.
- 2. The probe of claim 1, wherein said first end is provided with a means for cooling said transducer.
- 3. The probe of claim 1, wherein the transducer is piezoelectric.
- 4. The probe of claim 1, wherein said probe measures the temperature and viscosity of said hot liquid at the buffer rod probe surface.
- 5. The probe of claim 1, wherein said liquids are at a temperature of 500° Celsius to 1600° Celsius.
- 6. The probe of claim 1, wherein said probe can measure viscosities from 0-2000 poise.
- 7. The probe of claim 1, wherein said transducer, has a frequency range of from 1-25 MHZ.
- 8. The probe of claim 1, wherein said buffer rod dimension is 0.1-25 inches long and 0.2-5 inches wide.
- 9. The probe of claim 1, wherein said outer refractory material is a high temperature material selected from the group consisting of molybdenum, inconel and tantalum.
- 10. A method for simultaneously determining viscosity and temperature of a molten material, comprising:(1) inserting the second end of the probe of claim 1 into said molten material; (2) causing said shear wave generating transducer to emit shear waves through said waveguide to said molten material, wherein said shear waves shear a surface of said molten material and are reflected; (3) detecting reflections of said shear waves through said transducer, and determining said viscosity and temperature of said molten material by comparing a time difference between said shear waves emission and reflection detection to determine temperature and by comparing amplitude of said reflection to determine viscosity.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a regular National application claiming priority from Provisional Application, U.S. application Ser. No. 60/046,262 filed May 12, 1997.
Government Interests
This invention was made with U.S. Government support under contract number DE-FG02-93CH0575 awarded by the Department of Energy. The U.S. Government may have certain rights in this invention.
US Referenced Citations (12)
Non-Patent Literature Citations (1)
Entry |
Langdon, R.M., “Vibratory Process Control Transducers,” Marconi Rev (GB), vol. 43, No. 218 (Third Quarter 1980), pp. 156-175. |
Provisional Applications (1)
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Number |
Date |
Country |
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60/046262 |
May 1997 |
US |