Nova Patents
EP0899017B1

Liquid atomization process

Abstract

This record has no abstract on file.

EP0899017B1, drawing sheet 1
Sheet 1 of 15

Term

Term ended

Expired 18 February 2017, 9.6 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

21 claims: 11 independent, 10 dependent

  1. 1
    A device for atomizing a liquid, comprising:a feeding source (1) comprising an opening at a first end for adding liquid to an internal channel of the feeding source, which channel leads to an exit opening for the expulsion therefrom of liquid;a pressure chamber (3) having a first opening (4) for the entry of gas into the pressure chamber and a second opening (6) for the exit of gas from the pressure chamber, the second opening (6) being positioned downstream of said exit opening, characterised in that the exit opening of the feeding source (1) is positioned in the pressure chamber (3) and in that the exit opening of the feeding source (1) and the second opening (6) of the pressure chamber (3) are so constructed and arranged that, in use, liquid flowing out of the exit opening of the feeding source will pass through and out of the second opening in a continuous, steady capillary microjet (6) to break up downstream by effect of capillary instability.
  2. 5
    The device of any one of the preceding claims, wherein the exit opening of the feeding source (1) is positioned at a point in the range (H) of about 0.2 mm to about 0.5 mm from the second opening of the pressure chamber (3).
  3. 6
    The device of any one of the preceding claims, having inserted therein a liquid formulation having a dynamic viscosity in the range of from about 10 -4 to about 1 kg/m/sec.
  4. 9
    A liquid atomization procedure, comprising:forcing a liquid through a channel of a feeding source (1) in a manner which causes the liquid to be expelled from an exit opening;and forcing a gas through a pressure chamber (3), in which chamber the exit opening of the feeding source (1) is positioned, the gas being forced in a manner which causes the gas to exit the pressure chamber from an opening (6) positioned in line with the flow path of liquid expelled from the exit opening of the feeding source;wherein a stable liquid-gas interface is maintained and the liquid forms a continuous, stable capillary jet (6) between the feeding source exit opening and the opening of the pressure chamber (3) to the outside, and wherein the microjet breaks up downstream by effect of capillary instability.
  5. 13
    The procedure of any one of claims 9 to 12, wherein the gas is forced through the opening of the pressure chamber (3) at a rate in the range of from about 50 m/sec to about 2000 m/sec.
  6. 14
    The procedure of any one of claims 9 to 12, wherein the gas is forced through the opening of the pressure chamber (3) at a rate in the range of from about 100 to 500 m/sec.
  7. 15
    The procedure of any one of claims 9 to 14, wherein the liquid is expelled from a circular exit opening having a diameter (D o ) in the range of from about 0.1 mm to about 0.4 mm and wherein the opening in the pressure chamber is circular and positioned directly in front of the exit opening of the feeding source and has a diameter (d o ) in the range of about 0.1 mm to 0.25 mm.
  8. 16
    A liquid atomization procedure, comprising:feeding liquid through a feeding source (1) to an outlet;feeding gas through an orifice (6) positioned downstream of the feeding source outlet in a direction parallel to a direction of flow out of the feeding source outlet;wherein the gas is fed into a pressure chamber (3) in which the outlet is positioned, and the feeding of liquid and feeding of gas are each at a rate relative to each other so as to maintain a continuous, stable capillary microjet of liquid which exits the orifice and breaks up downstream by effect of capillary instability to form aerosolized particles.
  9. 19
    The procedure of any one of claims 16, 17 and 18, wherein the aerosolized particles formed are uniform in size to the extent of having a relative size standard deviation of 10 to 30%.
  10. 20
    The procedure of any one of claims 9 and 11 to 19, wherein the liquid has a viscosity in the range of from 10 -4 to 1 kg/m/sec.
  11. 21
    The procedure of any one of claims 9 to 20, wherein the stable capillary jet (6) has a diameter d j which diameter is defined by the formula d j = 4γ ρ g ν g   2 wherein γ is the surface tension of the liquid, ρ is the density of the liquid and ν g is the velocity of the gas.