Claims
- 1. An apparatus for determining atmospheric conditions based on the calculation of the layered average Richardson number, Ri.sub.L, comprising:
- a) first temperature measurement means for measuring a plurality of temperatures at an altitude Z.sub.1 ;
- b) means, responsive to the first temperature measurement means, for calculating .gradient.T, the vector temperature gradient, over the altitude Z.sub.1 ;
- c) wind shear computational means, responsive to the means for calculating the vector temperature gradient, for determining .DELTA.V/.DELTA.z, the vertical wind shear, where V is the horizontal wind vector;
- d) second temperature measurement means for determining .DELTA..theta./.DELTA.z, the vertical lapse rate of the potential temperature, where .theta. is the potential temperature and z is the vertical direction:
- e) calculation means, responsive to the wind shear computational means and the second temperature measurement means, for calculating Ri.sub.L using the equation: ##EQU13## where g is acceleration due to gravity; and f) calculation means responsive to the wind shear computational means for calculating .epsilon., the strength of the turbulence, using the equation: ##EQU14##
- 2. The apparatus of claim 1 further comprising means for predicting clear air turbulence, comprising: means for comparing Ri.sub.L against a threshold value;
- means for determining whether .epsilon. is increasing or decreasing; and
- means for indicating the probability for clear air turbulence when Ri.sub.L is equal to or less than the threshold value and .epsilon. is increasing.
- 3. The apparatus of claim 2 wherein the threshold value is 0.5.
- 4. An apparatus for determining atmospheric conditions based on the calculation of the layered average Richardson number, Ri.sub.L, comprising:
- a) first temperature measurement means for measuring a plurality of temperatures at an altitude Z.sub.1, where the first temperature measurement means comprises a passive millimeter wave detector or a passive micrometer wave detector;
- b) means, responsive to the first temperature measurement means, for calculating .gradient.T, the vector temperature gradient, over the altitude Z.sub.1 ;
- c) wind shear computational means, responsive to the means for calculating the vector temperature gradient, for determining .DELTA.V/.DELTA.z, the vertical wind shear, where V is the horizontal wind vector;
- d) second temperature measurement means for determining .DELTA..theta./.DELTA.z, the vertical lapse rate of the potential temperature, where .theta. is the potential temperature and z is the vertical direction; and
- e) calculation means, responsive to the wind shear computational means and the second temperature measurement means, for calculating Ri.sub.L using the equation: ##EQU15## where g is acceleration due to gravity.
- 5. The apparatus of claim 4 where the passive millimeter wave detector or a passive micrometer wave detector comprises means for detecting radiation L(.lambda.) having a wavelength .lambda. from a predetermined direction and the first temperature measurement means further comprises computational means, responsive to the detector, for computing a value T.sub.eff representing the temperature of the atmosphere at an effective range R.sub.eff from the detector.
- 6. A method for determining atmospheric conditions based on the calculation of the layered average Richardson number, Ri.sub.L, comprising the steps of:
- a) measuring a plurality of temperatures at an altitude Z.sub.1 ;
- b) in response to the measurement of a plurality of temperatures, calculating .gradient.T, the vector temperature gradient, over the altitude Z.sub.1 ;
- c) in response to the vector temperature gradient, determining .DELTA.V/.DELTA.z, the vertical wind shear, where V is the horizontal wind vector;
- d) determining .DELTA..theta./.DELTA.z, the vertical lapse rate of the potential temperature, where .theta. is the potential temperature and z is the vertical direction;
- e) in response to the determination of vertical wind shear and vertical lapse rate of the potential temperature, calculating Ri.sub.L using the equation: ##EQU16## where g is acceleration due to gravity; and f) in response to the determination of wind shear, calculating .epsilon., the strength of the turbulence, using the equation: ##EQU17##
- 7. The method of claim 6 further comprising the step of predicting clear air turbulence, comprising the steps of: comparing Ri.sub.L against a threshold value;
- determining whether .epsilon. is increasing or decreasing; and
- indicating the probability for clear air turbulence when Ri.sub.L is equal to or less than the threshold value and .epsilon. is increasing.
- 8. The method of claim 7 where step of comparing Ri.sub.L against a threshold value comprises the step of comparing Ri.sub.L against a threshold value of 0.5.
- 9. A method for determining atmospheric conditions based on the calculation of the layered average Richardson number, Ri.sub.L, comprising the steps of:
- a) measuring a plurality of temperatures at an altitude Z.sub.1, where the step of measuring a plurality of temperatures comprises the steps of
- detecting radiation L(.lambda.) having a wavelength .lambda. from a predetermined direction; and
- computing a value T.sub.eff representing the temperature of the atmosphere at an effective range R.sub.eff ;
- b) in response to the measurement of a plurality of temperatures, calculating .gradient.T, the vector temperature gradient, over the altitude Z.sub.1 ;
- c) in response to the vector temperature gradient, determining .DELTA.V/.DELTA.z, the vertical wind shear, where V is the horizontal wind vector;
- d) determining .DELTA..theta./.DELTA.z, the vertical lapse rate of the potential temperature, where .theta. is the potential temperature and z is the vertical direction; and
- e) in response to the determination of vertical wind shear and vertical lapse rate of the potential temperature, calculating Ri.sub.L using the equation: ##EQU18## where g is acceleration due to gravity.
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. patent application, Ser. No. 09/083,484 filed on May 22, 1998 which is a divisional of pending U.S. application, Ser. No. 08/808,589, filed on Feb. 28, 1997 which claims the benefit of U.S. Provisional Application No. 60/013,312 filed on Mar. 8, 1996, all of which are incorporated by reference herein.
US Referenced Citations (47)
Foreign Referenced Citations (2)
Number |
Date |
Country |
0 488 004 |
Jun 1992 |
EPX |
1288104 |
Sep 1972 |
GBX |
Non-Patent Literature Citations (3)
Entry |
Bender et al, Journal of Applied Meterology, vol. 15, Nov. 1996. |
Temperature Gradients and Clear-Air Turbulence Probabilities--pp. 1193-1199. |
Tandon et al.; Journal of Materials Science Letters 12; 1993; pp. 1182-1184. |
Divisions (1)
|
Number |
Date |
Country |
Parent |
808589 |
Feb 1997 |
|
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
083484 |
May 1998 |
|