Claims
- 1. In a nozzle having a stream shaping means positioned within a cylindrical nozzle body along the longitudinal axis thereof, said nozzle body having an outer and an inner nozzle wall, said nozzle having an upstream end and a downstream end, and having a plurality of vanes extending between the stream shaping means and the inner nozzle wall to hold the stream shaping means fixed relative to the nozzle body, each of said vanes having a first end and a second end, the improvement comprising:
- arranging all of said vanes in a forward-raked attitude wherein the first end of each of said vanes is positioned at the inner nozzle wall, and the other end of each of said vanes is fixed to said stream shaping means, each of said vanes positioned so that said first vane end is located upstream of said other vane end, all of said vanes arranged to act upon a fluid passing through the nozzle to impart a rotation to said fluid, whereby said fluid is discharged from the downstream nozzle end as a rotating columnar stream.
- 2. The nozzle of claim 1 wherein a surface of each of said vanes is shaped such that the pressure on a fluid passing through the nozzle is less on one side of each vane than on the other vane side.
- 3. The nozzle of claim 1 wherein each of said vanes is aligned parallel to said stream shaping means, and wherein the thickness of each of said vanes decreases, thereby producing a thinning of said vanes, upstream to downstream, over a substantial portion of the fluid contacting surface of one vane side.
- 4. The nozzle of claim 3 wherein the thinning of said vanes is uniform, upstream to downstream, and the extent of vane thinning, expressed as a negative slope, is in the range of 0.01 to 0.05.
- 5. The nozzle of claim 4 wherein the slope direction of the thinned vane area is deflected inward, toward the nozzle center, at an angle ranging between 1.degree. and 10.degree..
- 6. The nozzle of claim 1 wherein said stream shaping means includes a head portion and a cylindrical body portion; and wherein said vanes are arranged in two sets, one set upstream of the other set, each set including at least three identical vanes.
- 7. The nozzle of claim 6 wherein each vane in said upstream set terminates at its downstream end in a rectangular projection having a protruding ear, said projection arranged to fit through a slot in the wall of said body portion, and said ear arranged to lock said vane in place within said slot.
- 8. The nozzle of claim 6 wherein each vane in said downstream set terminates at its downstream end in a rectangular projection having a protruding ear, said projection arranged to fit through a slot in the wall of said body portion and said ear arranged to lock said vane in place within said slot, and wherein the other end of each said vane terminates in a face arranged to rest along the inner surface of said nozzle body.
- 9. The nozzle of claim 6 wherein the upstream end of said nozzle body is joined to a boss member, said boss having an axially aligned bore of smaller diameter than that of said nozzle body, the exterior of said boss having three sections, an upstream, a center and a downstream section, each of a different diameter, the downstream section sized to fit within the upstream end of said nozzle body, and wherein the head portion of said stream shaping means in configured as a cone having an apex and a base, the apex angle of said cone being less than 75.degree., and the cone base being positioned adjacent the downstream end of said boss member.
- 10. The nozzle of claim 9 wherein said upstream boss section is of smaller diameter than is said downstream section, wherein said center section is-larger than is said downstream section, and wherein a plurality of inclined channels are provided between a first boss face formed between said upstream and center boss sections, and a second boss face extending between said axially aligned bore and the exterior of said downstream boss section, said channels allowing fluid communication between the interior and the exterior of said nozzle.
- 11. The nozzle of claim 9 including spring means disposed within the body portion of said stream shaping means, and arranged to allow said head portion to move axially, relative to said body portion, as fluid flow within the nozzle is increased.
- 12. The nozzle of claim 11 wherein said spring means is restrained within said body portion between the rectangular projections of said upstream vanes and the rectangular projections of said downstream vanes.
- 13. The nozzle of claim 1 wherein said vanes are configured to impart one full revolution to a fluid column expelled from the nozzle end for every 10 to 50 nozzle diameters.
- 14. A method for extinguishing fire comprising:
- passing a stream of water through a nozzle, the cross-sectional area of said nozzle increasing in a stepwise fashion as the water progresses through the nozzle;
- directing the water to the inner nozzle wall as it passes a point whereat the nozzle cross-sectional area increases to thereby form a water layer flowing along the inner nozzle wall, and a zone of reduced pressure in the nozzle interior;
- aspirating air from outside of the nozzle, through said water layer, and into said zone of reduced pressure by way of ports located in the nozzle wall at that point whereat the cross-sectional area increases, to thereby supersaturate the water stream with nitrogen;
- imparting a rotation to the water and air as the streams progress down the nozzle;
- discharging a columnar stream of water, supersaturated in nitrogen, from the nozzle; and
- directing the stream onto a fire.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 08/037,647 entitled "Aspirating Nozzle and Accessory Systems Therefor" which was filed on Mar. 26, 1993 and issued as U.S. Pat. No. 5,330,105 on Jul. 19, 1994.
US Referenced Citations (3)
Foreign Referenced Citations (1)
Number |
Date |
Country |
941630 |
Jan 1949 |
FRX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
037647 |
Mar 1993 |
|