Claims
- 1. A method of determining at least one of an oil fraction and a water fraction of a fluid flow stream having a width l, said method comprising:
- a) directing a first number of photons of a first predetermined wavelength at said fluid flow stream, said first predetermined wavelength being chosen to be a wavelength where the absorptions of said oil and said water are substantially identical, wherein the absorption coefficients of said oil and said water at said wavelength are known;
- b) detecting a second number of photons of said first predetermined wavelength which pass through said fluid flow stream; and
- c) determining, from said first number and second number, said width l, and said absorption coefficients of said oil and said water at said first predetermined wavelength, at least one of said oil fraction and said water fraction of said fluid flow stream.
- 2. A method according to claim 1, wherein:
- said at least one of said oil fraction and said water fraction is determined at said determining step substantially according to I/I.sub.0 .perspectiveto..sub.e -f.sub.w .alpha.'.sub.w l.sub.e -f.sub.o .alpha.'.sub.o l where I is said second number, I.sub.0 is said first number, f.sub.w is said water fraction, f.sub.o is said oil fraction, .alpha.'.sub.w is said absorption coefficient of said water at said first predetermined wavelength, .alpha.'.sub.o is said absorption coefficient of said oil at said first predetermined wavelength, and f.sub.w +f.sub.o =1.
- 3. A method according to claim 2, wherein:
- said first predetermined wavelength is chosen from wavelengths of approximately 1200, 1710, and 1735 nanometers.
- 4. A method according to claim 3, wherein:
- said first predetermined wavelength is approximately 1710 nanometers.
- 5. A method according to claim 1, wherein:
- said first predetermined wavelength is chosen from wavelengths of approximately 1200, 1710, and 1735 nanometers.
- 6. A method according to claim 5, wherein:
- said first predetermined wavelength is approximately 1710 nanometers.
- 7. A method according to claim 1, further comprising:
- d) directing a third number of photons of a second predetermined wavelength at said fluid flow stream, said second predetermined wavelength being chosen to be sufficiently close to said first predetermined wavelength such that the absorption of said flow stream is substantially linear with the oil fraction of said flow stream to photons having wavelengths between said first and second wavelengths, wherein said absorption coefficients of said water and said oil are known at said second predetermined wavelength; and
- e) detecting a fourth number of photons of said second predetermined wavelength which pass through said fluid flow stream, wherein
- said determining step further utilizes said third and fourth numbers and said absorption coefficients of said water and said oil at said second predetermined wavelength.
- 8. A method according to claim 7, wherein:
- said at least one of said water fraction and said oil fraction is determined at said determining step according to
- .DELTA.OD=f.sub.o [(OD.sub.o,a -OD.sub.o,b)-(OD.sub.w,a -OD.sub.w,b)]+(OD.sub.w,a -OD.sub.w,b),
- where OD.sub.o,a, OD.sub.o,b, OD.sub.w,a, and OD.sub.w,b are respectively said optical densities of said oil at said first wavelength and at said second wavelength, and said optical densities of said water at said first wavelength and at said second wavelength, f.sub.o is said oil fraction, and .DELTA.OD is the difference between a first quotient and a second quotient, said first quotient being the negative of a logarithm of said second number divided by said first number, and said second quotient being the negative of a logarithm of said fourth number divided by said third number.
- 9. A method according to claim 8, wherein:
- both said water fraction and said oil fraction are determined according to f.sub.o +f.sub.w =1, where f.sub.w is said water fraction.
- 10. A method according to claim 8, wherein:
- said first predetermined wavelength is chosen from wavelengths of approximately 1200, 1710, and 1735 nanometers.
- 11. A method according to claim 10, wherein:
- said first predetermined wavelength is chosen to be approximately 1710 nanometers, and said second predetermined wavelength is chosen to be approximately 1650 nanometers.
- 12. A method according to claim 7, wherein:
- said first predetermined wavelength is chosen from wavelengths of approximately 1200, 1710, and 1735 nanometers.
- 13. A method according to claim 12, wherein:
- said first predetermined wavelength is chosen to be approximately 1710 nanometers, and said second predetermined wavelength is chosen to be approximately 1650 nanometers.
- 14. A method according to claim 7, further comprising:
- f) directing a fifth number of photons of a third predetermined wavelength at said fluid flow stream, said third predetermined wavelength being chosen to be a wavelength where the optical density of said water is very large; and
- g) detecting a sixth number of photons of said third predetermined wavelength which pass through said fluid flow stream, wherein said sixth number divided by said fifth number provides an indication of the percentage of said fluid flow stream comprised of oil slugs, wherein said fluid flow stream is comprised of said oil slugs and a fluid flow stream remainder.
- 15. A method according to claim 14, wherein:
- said at least one of said water fraction and said oil fraction is determined at said determining step according to
- .DELTA.OD=f.sub.o [(OD.sub.o,a -OD.sub.o,b)-(OD.sub.w,a -OD.sub.w,b)]+(OD.sub.w,a -OD.sub.w,b),
- where OD.sub.o,a, OD.sub.o,b, OD.sub.w,a, and OD.sub.w,b are respectively said optical densities of said oil at said first wavelength and at said second wavelength, and said optical densities of said water at said first wavelength and at said second wavelength, f.sub.o is said oil fraction of said fluid flow stream remainder, and .DELTA.OD is the difference between a first quotient and a sum of a second quotient and an optical density representing said oil slugs, said first quotient being the negative of a logarithm of said second number divided by said first number, said second quotient being the negative of a logarithm of said fourth number divided by said third number.
- 16. A method according to claim 14, wherein:
- said first predetermined wavelength is chosen from wavelengths of approximately 1200, 1710, and 1735 nanometers, and
- said third predetermined wavelength is approximately 1900 nanometers.
- 17. A method according to claim 14, wherein:
- said oil fraction in said fluid flow stream is equal to said percentage of said fluid flow stream comprised of oil slugs plus f.sub.o.
- 18. A method according to claim 1, further comprising:
- d) directing a third number of photons of a second predetermined wavelength at said fluid flow stream, said second predetermined wavelength being chosen to be a wavelength where both said oil and said water have very little absorption; and
- e) detecting a fourth number of photons of said second predetermined wavelength which pass through said fluid flow stream, wherein
- said determining step further utilizes said third and fourth numbers.
- 19. A method according to claim 18, wherein:
- said at least one of said oil fraction and said water fraction is determined at said determining step according to OD.perspectiveto.f.sub.w .alpha..sub.w l+f.sub.o .alpha..sub.o l where OD is a difference between a first quotient and a second quotient, said first quotient being equal to the negative of a logarithm of said second number divided by said first number, and said second quotient being equal to the negative of a logarithm of said fourth number divided by said third number, and f.sub.w is said water fraction, f.sub.o is said oil fraction, .alpha..sub.w is related to said absorption coefficient of said water at said first predetermined wavelength, .alpha..sub.o is related to said absorption coefficient of said oil at said first predetermined wavelength, and f.sub.w+f.sub.o =1.
- 20. A method according to claim 18, wherein:
- said first predetermined wavelength is chosen from wavelengths of approximately 1200, 1710, and 1735 nanometers.
- 21. A method according to claim 20, wherein:
- said second wavelength is chosen to be approximately 1100 nanometers.
- 22. A method according to claim 1, further comprising:
- d) directing a third number of photons of a second predetermined wavelength at said fluid flow stream, said second predetermined wavelength being chosen to be a wavelength where the optical density of said water is very large; and
- e) detecting a fourth number of photons of said second predetermined wavelength which pass through said fluid flow stream, wherein said fourth number divided by said third number provides an indication of the percentage of oil slugs in said fluid flow stream.
- 23. A method according to claim 22, wherein:
- said step of determining further utilizes said third and fourth numbers.
- 24. A method according to claim 23, wherein:
- said second predetermined wavelength is approximately 1900 nanometers.
- 25. A method of determining at least one of an oil fraction and a water fraction of a fluid flow stream having a width l, said method comprising:
- a) directing a first number of photons of a first predetermined wavelength at said fluid flow stream, said first predetermined wavelength being chosen to be a wavelength where the optical density of said water is very large;
- b) detecting a second number of photons of said first predetermined wavelength which pass through said fluid flow stream;
- c) directing a third number of photons of a second predetermined wavelength at said fluid flow stream, said second predetermined wavelength being chosen to be a wavelength where the optical densities of said water and said oil per unit path length are different from each other and neither is very large;
- d) detecting a fourth number of photons of said second predetermined wavelength which pass through said fluid flow stream; and
- e) determining, from said first, second, third, and fourth numbers, said width l, and the absorption coefficients of said oil and said water at said second predetermined wavelength, at least one of said oil fraction and said water fraction of said fluid flow stream.
- 26. A method according to claim 25, wherein:
- said second number divided by said first number provides an indication of the percentage of said fluid flow stream comprised of oil slugs, wherein said fluid flow stream is comprised of said oil slugs and a fluid flow stream remainder.
- 27. A method according to claim 26, wherein:
- an oil fraction of said fluid flow stream remainder is determined according to one of
- I/I.sub.0 =e.sup.-f.sbsp.w.sup..alpha..sbsp.w.sup.l e.sup.-f.sbsp.o.sup..alpha..sbsp.o.sup.l
- and
- OD.perspectiveto.f.sub.w .alpha..sub.w l+f.sub.o .alpha..sub.o l
- where f.sub.w and f.sub.o are said water and oil fractions of said fluid flow stream remainder, and .alpha..sub.o ' and .alpha..sub.w ' are respectively the absorption coefficients of oil and water at said second predetermined wavelength, and .alpha..sub.o =.alpha..sub.o ' .log.sub.10 e, and .alpha..sub.w =.alpha..sub.w ' .log.sub.10 e.
- 28. A method according to claim 27, wherein:
- said oil fraction in said fluid flow stream is equal to said oil fraction of said fluid flow stream remainder plus said oil slug percentage.
- 29. A method according to claim 25, wherein:
- said first and second predetermined wavelengths are approximately 1900 nanometers and 1400 nanometers respectively.
Parent Case Info
This is a continuation-in-part of Ser. No. 07/955,100, filed Oct. 1, 1992, and assigned to the assignee hereof now U.S. Pat. No. 5,266,800.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
4707603 |
Miemala et al. |
Nov 1987 |
|
4994671 |
Safinya et al. |
Feb 1991 |
|
5105085 |
McGuire et al. |
Apr 1992 |
|
5107118 |
Murray, Jr. et al. |
Apr 1992 |
|
Foreign Referenced Citations (2)
Number |
Date |
Country |
53-148495 |
Dec 1978 |
JPX |
256335 |
Mar 1970 |
SUX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
955100 |
Oct 1992 |
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