Claims
- 1. Sonochemical reactor comprising:
a. A reactor volume confined by external walls with internal dimensions establishing resonance of ultrasonic waves in the liquid contained within the reactor volume. b. A high power ultrasonic transducer. c. A horn, of a longitudinal dimension (length) directly proportional to whole number of half-wavelengths, attached to the transducer and outwardly emitting ultrasonic energy into the reactor volume. d. An internal cavity of said horn characterized by resonant properties and providing, in accordance with Poisson's effect, an efficient transformation of longitudinal ultrasonic oscillations received from the transducer into transversal ultrasonic oscillations of the external walls of the horn (Push-Pull effect) in such a way that the distribution of ultrasonic energy throughout the reactor volume is homogeneous.
- 2. Sonochemical reactor according to claim 1, wherein said reactor volume is of a cylindrical shape with the distance between the external surface of said horn and the internal surface of said walls directly proportional to a whole number of half-wavelengths of sound in the contained liquid.
- 3. Sonochemical reactor according to claim 1, wherein the distance between said horn extremity (horn tip) and the bottom surface of said reactor volume is equal to whole number of half wavelengths of ultrasound in the contained liquid.
- 4. Sonochemical reactor according to claim 1, wherein said ultrasonic transducer is of a magnetostrictive type.
- 5. Sonochemical reactor according to claim 4, wherein the power emitted by said transducer is higher than 1 kW, preferably 5 kW or more.
- 6. Sonochemical reactor according to claim 1, wherein the length of said horn in the direction of longitudinal ultrasonic wave propagation is equal to whole number of half wavelengths of ultrasound in the horn material.
- 7. Sonochemical reactor according to claim 1, wherein said horn is of a cylindrical shape.
- 8. Sonochemical reactor according to claims 7, wherein the internal cavity of said horn is of a cylindrical shape, coaxial with external emitting surface of horn.
- 9. Sonochemical reactor according to claim 8, wherein the internal cavity comprises a plurality of cylindrically shaped sections of differing diameters.
- 10. Sonochemical reactor according to claim 9, wherein the internal cavity comprises a central section of larger diameter and two end sections of smaller diameter.
- 11. Sonochemical reactor according to claim 10, wherein said horn comprises the following elements:
a. a cylindrical body element comprising the central section of the internal cavity and a smaller diameter end section of internal cavity. b. a cylindrical plug element of smaller diameter comprising a second smaller diameter end section of internal cavity which is screwed to the main element by a thread connection.
- 12. Sonochemical processor for material treatment in said sonochemical reactor according to claim 1, wherein treated liquid contained in said reactor volume is excited by a homogeneous ultrasonic wave as emitted from said horn; said homogeneous ultrasonic wave producing cavitation bubbles homogeneously distributed throughout the entire reactor volume; said homogenous distribution of cavitation bubbles providing sonochemical reactions with improved efficiency.
- 13. Sonochemical processor of claim 12 for the production of nano-products, wherein a starting material is subjected to ultrasonic waves.
- 14. Sonochemical processor of claim 13, wherein the starting material comprises a solution (or suspension or emulsion) of a metal salt, and a process further comprising the precipitation of nano-powder material from said solution.
- 15. Sonochemical processor of claim 13, wherein the nano-powder material is a metal.
- 16. Sonochemical processor of claim 13, wherein the nano-powder material is a metal oxide or a metal hydroxide.
- 17. Sonochemical processor of claim 16, wherein the nano-powder material is chosen from the group consisting of FeO, Fe2O3, Fe3O4, NiO, Ni2O3, CuO, Cu2O, Ag2O, CoO, Co2O3, Fe(OH)3, Co(OH)3, NiO(OH), BaTiO3, and mixtures thereof.
- 18. Sonochemical processor of claim 15, wherein the nano-powder material is chosen from the group consisting of Fe, Co, Cu, Ag, Ni, Pd, and mixtures thereof.
- 19. Sonochemical processor of claim 13, wherein the starting material further comprises a reagent chosen from the alkali hydroxide and metal group of materials.
- 20. Method comprising the step of using a sonochemical reactor according to claim 1 for accelerating a chemical reaction.
- 21. Method according to claim 20, wherein the reaction includes the formation of a metal oxide or hydroxide from a corresponding metal salt.
- 22. Method according to claim 20, wherein the reaction includes the formation of a metal from a corresponding metal salt or oxide.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 144638 |
Jul 2001 |
IL |
|
RELATED APPLICATION
[0001] This application is a continuation of International Application PCT/IL02/00560, filed Jul. 11, 2002, the contents of which are here incorporated by reference in their entirety; priority is claimed under 35 USC 120.
Continuations (1)
|
Number |
Date |
Country |
| Parent |
PCT/IL02/00560 |
Jul 2002 |
US |
| Child |
10767955 |
Jan 2004 |
US |