Claims
- 1. Device for measuring the propagation time of an acoustic wave in a continuous phase of a two-phase mix (28) comprising the continuous phase and a dispersed phase forming droplets (40) in the continuous phase, the device comprising:an electro-acoustic transducer (12) capable of emitting acoustic waves (30) and outputting a reception signal of reflected acoustic waves; means for using the transducer signals to determine a propagation time starting from signals output by the transducer; and means for focusing the acoustic waves into a focusing area and the frequency of the acoustic waves being adjusted to cause reflection of the waves on droplets of the dispersed phase, substantially located within the focusing area.
- 2. Device according to claim 1, in which the focusing means comprise an acoustic lens (16) with an emission face (18).
- 3. Device according to claim 2, in which the emission face (18, 111) of the acoustic lens comprises at least a concave portion (18a, 118a) capable of focusing the acoustic waves and a plane portion (18b, 118b) capable of reflecting the non-focused waves.
- 4. Device according to claim 3, in which the acoustic lens comprises a first piezoelectric element (112a) associated with the concave part (118a) of the emission face, and a second piezoelectric element (112b) associated with the plane part (118b) of the emission face.
- 5. Device according to claim 4, in which the lens also comprises a reference diopter (150) associated with the second piezoelectric element (118b).
- 6. Device according to claim 3, in which the acoustic lens comprises a region made of an impedance matching material (154) with a free, plane surface flush with the plane part of the emission face.
- 7. Device according to claim 6, in which the impedance matching material fits into a cavity (152) formed in the acoustic lens from the emission face.
- 8. Device according to claim 2, in which the emission face comprises an anti-reflection coating.
- 9. Device according to claim 2, in which means for using the transducer signals are capable of setting up a delay time between a first reflection signal (62) on the emission face of the lens and a second reflection signal (64) on a droplet of the dispersed phase in response to the same emitted acoustic wave.
- 10. Device according to claim 2, in which the means for using the signals comprise means for measuring an amplitude of a signal reflected on at least one portion of the emission face of the acoustic lens to determine a reflection power Rc of the continuous medium.
- 11. Device according to claim 1, in which the means for using the signals are also capable of determining an acoustic propagation velocity Vc in the continuous phase using the equation: vc=2FTwhere F is a focal distance of the focusing means and T is the wave propagation time.
- 12. Device according to claim 1, in which the means for using the signals also comprise means for measuring an amplitude of a signal reflected on a droplet of the dispersed phase in order to determine a reflection power between the continuous phase and the dispersed phase.
- 13. Process for determining propagation parameters of an acoustic wave in the continuous phase a two-phase mix (28) comprising the continuous phase and a dispersed phase forming droplets (40) in the continuous phase, the process comprising:acoustic waves (30) focused in a focusing area are emitted in the continuous phase, the frequency of the acoustic wave being adjusted to enable a reflection on droplets of the dispersed phase, located approximately in the focusing area, first reflection signals of the waves on the droplets are recorded, a propagation time of the wave is determined from the reflection signals, and the propagation velocity is calculated from the propagation time and an acoustic wave focusing distance.
- 14. Process according to claim 13, in which second reflection signals of an acoustic wave reflected at an interface between an acoustic lens of an electro-acoustic transducer and the continuous phase are recorded, and a reflection power Rc of the continuous medium is also determined from a measurement of the amplitude of the said second signals.
- 15. Process according to claim 14, in which an acoustic impedance Zc of the continuous phase is also determined, using the following equation: ZC=ZL1-RC1+RC,where ZL is an acoustic impedance (known) of the material from which the acoustic lens is made.
- 16. Process according to claim 15, in which a density ρc of the continuous phase is also determined from the acoustic impedance Zc and the acoustic propagation velocity of the wave in the continuous phase using the following equation: ρ c=ZCVC
- 17. Process according to claim 15 in which a refection power RD between the continuous phase and the dispersed phase is determined from a measurement of the amplitude of said first reflection signals and an acoustic impedance ZD of the dispersed phase is further calculated using the following equation: ZD=ZC1-RD1+RD
- 18. Process according to claim 13, in which a reflection power RD between the continuous phase and the dispersed phase is determined from a measurement of the amplitude of said first reflection signals.
Priority Claims (1)
Number |
Date |
Country |
Kind |
98 08404 |
Jul 1998 |
FR |
|
Parent Case Info
This application is a national phase of PCT/FR99/01574 which was filed on Jun. 30, 1999 and was not published in English.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/FR99/01574 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO00/02040 |
1/13/2000 |
WO |
A |
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
4497208 |
Oja et al. |
Feb 1985 |
A |
4726221 |
Tavlarides et al. |
Feb 1988 |
A |
5628937 |
Oliver et al. |
May 1997 |
A |
Foreign Referenced Citations (4)
Number |
Date |
Country |
0671547 |
Sep 1995 |
EP |
0671547 |
Sep 1995 |
EP |
2478314 |
Sep 1981 |
FR |
WO9404907 |
Mar 1994 |
WO |