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6- Nozzles 3/8" Do-It-Yourself outdoor Cooling Sys (kit)
for Cooling Kit for Green House, Atriums, Tropical garden and Play area
 
Stock # 20Psi Nozzles
$ 17.99 each
Image:
Salient Features:
Low Pr nozzle
  • able to generate a very fine spray from a liquid due to the energy supplied by a pressurized gas. The droplet size (mass median diameter) depends of geometrical parameters (mainly the orifice diameter), the properties of the fluids (mainly the liquid properties) and the working conditions (liquid flow rate and gas pressure drop through the orifice).

    Flowtec has supplied tested nozzles with orifice diameters ranging from 100 to 800 microns. Many materials have been used for both the capillary tubing and the orifice, including metals (stainless steel, brass, aluminum and platinum) and polymers (PEEK, PFA, ABS). Since our nozzles are based on a purely mechanical technology, every material can be used for the manufacturing of their parts, as far as they are chemically compatible with the fluids that will be atomized

  • Flow Blurring is the most efficient technology in the world for liquid atomization.  Its particular but simple geometry produces a highly turbulent mixing between a gas and liquid leading to the generation of a spray of extremely fine droplets.  Basically, the nozzle consists of capillary tubing aligned with an orifice placed in front of and at a certain distance of its tip. The liquid is supplied through the capillary tubing and a pressurized gas surrounding its tip generates a spray that goes out through the exit orifice..

Technical Data

The droplet size (mass median diameter) and distribution depends on geometrical parameters (mainly the orifice diameter and shape), the properties of the fluids (mainly the liquid properties) and the working conditions (liquid flow rate and gas pressure drop through the orifice).

The following tables illustrate varying outputs of certain standard nozzles. Additional output variations are achieved with different parameters such as liquid viscosity, gas density, nozzle geometry and materials.

 

Orifice Size: 400 mm
Liquid: Water @ 15 °C

AVERAGE DROPLET SIZE (mm)

Gas: Air @ 15 °C Gas Pressure
    0.69 Bar (10 psi) 1.03 Bar (15 psi) 1.38 Bar (20 psi) 1.72 Bar (25 psi) 2.07 Bar (30 psi)
Liquid Flow 5 ml/min 20 15 12 10 9
10 ml/min
35
24
20
17
14
15 ml/min 52 36 28 23 20
20 ml/min
72
49
38
31
26
25 ml/min 96 64 49 39 33
Orifice Size: 500 mm
Liquid: Water @ 15 °C

AVERAGE DROPLET SIZE (mm)

Gas: Air @ 15 °C Gas Pressure
  0.69 Bar (10 psi) 1.03 Bar (15 psi) 1.38 Bar (20 psi) 1.72 Bar (25 psi) 2.07 Bar (30 psi)
Liquid Flow 5 ml/min 19 14 12 10 9
10 ml/min 31 23 18 15 13
15 ml/min 43 31 25 21 18
20 ml/min 56 40 32 26 22
25 ml/min 68 48 38 31 26
Orifice Size: 600 mm
Liquid: Water @ 15 °C

AVERAGE DROPLET SIZE (mm)

Gas: Air @ 15 °C Gas Pressure
  0.69 Bar (10 psi) 1.03 Bar (15 psi) 1.38 Bar (20 psi) 1.72 Bar (25 psi) 2.07 Bar (30 psi)
Liquid Flow 5 ml/min 18 13 11 10 8
10 ml/min 29 21 17 14 12
15 ml/min 40 29 23 19 16
20 ml/min 51 36 29 24 20
25 ml/min 62 44 35 29 24

We have defined a mathematical model to estimate an example droplet size:

techdata

If we interpret this equation we can conclude the following things:

  • Q ↑ » d50↑ : larger liquid flow rates generate larger drops
  • ΔPg↑ » d50↓ : larger gas pressures generate smaller droplets
  • D: there is an optimum orifice diameter above which the droplet size increases slightly.
 
 
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