Machine and process for providing a pressurized liquid stream with dissolved gas
A machine and process for providing a gas liquid mixture are described. The process can include providing a pressurized fluid stream; and subjecting the fluid stream to a series of alternating flow regions that include a plurality of laminar flow regions and turbulent flow regions. The machine can include a flow path from a pressure vessel to an ejection point, where the flow path includes a plurality of alternating flow characteristic regions.
1. A liquid-gas saturation machine comprising:
a pressure vessel that includes,
above a mid-line, a gas nozzle adapted for the addition of a gas to an interior volume of the pressure vessel and a liquid atomizer adapted for the addition of a liquid to the interior volume of the pressure vessel;
below the mid-line, a fluid outlet positioned above a bottom of the pressure vessel and a clean-out port positioned at or adjacent to the bottom of the pressure vessel; and
a flow path fluidly connected to the fluid outlet, the flow path including a plurality of alternating flow characteristic regions;
wherein the alternating flow characteristic regions are laminar flow regions and turbulent or transitional flow regions;
wherein the alternating flow characteristic regions are distinguished by a Reynolds number value of at least about 500; and
wherein the flow path is provided by a tube that has an internal diameter of about 1 mm to about 25 mm.
2. The machine of claim 1 , wherein the tube includes an inlet section fluidly connected to the fluid outlet, an alternating series of bent and straight sections fluidly connected to the inlet section, and an outlet section fluidly connected to the alternating series of bent and straight sections;
wherein the bent section is adapted to provide turbulent or transitional flow, and the straight section is adapted to provide laminar flow; and
wherein the bent section provides a bent section flow Reynolds number, the straight section provides a straight section flow Reynolds number, and where the bent section flow Reynolds number is at least 500 greater than the straight section flow Reynolds number.
3. The machine of claim 2 , wherein the inlet section and the outlet section are parallel.
4. The machine of claim 2 , wherein the bent sections affect a change in direction of a flow though adjoining laminar sections of about 60 to about 270 degrees.
5. The machine of claim 1 , wherein the flow path includes at least 5 alternating flow characteristic regions.
6. The machine of claim 1 , wherein the flow path is provided by a tube that has an approximately constant internal diameter.
7. The machine of claim 1 , wherein the tube has an internal diameter of about 1 mm to about 2 mm.
8. The machine of claim 1 , wherein the tube has an internal diameter of about 1 mm to about 25 mm and wherein the internal diameter alternates between a first internal diameter and a second internal diameter.
9. A liquid-gas saturation machine comprising:
a pressure vessel fluidly connected to a tube which provides a flow path that has a plurality of alternating flow characteristic regions;
the tube that having an internal diameter of about 1 mm to about 25 mm.
10. The machine of claim 9 further comprising a plurality of tubes in a parallel arrangement, each providing a flow path that has a plurality of alternating flow characteristic regions; and having an internal diameter of about 1 mm to about 25 mm.
11. The machine of claim 10 , wherein the plurality of tubes includes at least 3 tubes.
12. The machine of claim 9 , wherein the tube includes an alternating series of bent and straight sections; the bent sections adapted to provide turbulent or transitional flow, and the straight sections adapted to provide laminar flow, wherein the bent sections affect a change in direction of a flow though adjoining laminar sections of about 60 to about 270 degrees.
13. The machine of claim 9 , wherein the tube is linear and has an internal diameter which alternates between a first internal diameter and a second internal diameter; wherein the alternating flow characteristic regions coincide with the alternating internal diameter.
14. A process comprising:
providing a pressurized fluid stream that includes a mixture of a gas and a liquid; and then
passing the pressurized fluid stream through a flow path that includes a plurality of alternating and equally-spaced laminar flow regions and turbulent flow regions; and
wherein the flow path is provided by a tube that has an internal diameter of about 1 mm to about 25 mm.
15. The process of claim 14 further comprising dividing the pressurized fluid stream into a plurality of fluid streams and passing each through a flow path that includes a plurality of equally-spaced laminar flow regions and turbulent flow regions.
16. The process of claim 14 , wherein the pressurized fluid stream is a saturated mixture of the gas and the liquid which is substantially free of bubbles.
17. The process of claim 14 , wherein the liquid is water; and wherein the gas is selected from the group consisting of oxygen, ozone, nitrogen, carbon dioxide, carbon monoxide, hydrogen, methane, ethane, ethylene, propane, propene, butane, n-butene, iso-butene, and a mixture thereof.
18. The process of claim 14 further comprising subjecting the fluid stream to at least 5 of alternating flow regions and then providing the fluid stream to a reservoir solution; wherein the liquid is water, and wherein the reservoir solution is at least 75 wt. % water.
19. The process of claim 18 , wherein the fluid stream has a temperature and wherein the reservoir has a temperature; further comprising equilibrating the temperature of the fluid stream and the temperature of the reservoir such that a temperature differential between the fluid stream and the reservoir at a location where the fluid stream is provided to the reservoir is less than about 5° C.