Claims
- 1. A system for the disinfection of water streams encountered in marine applications and contaminated by the presence of microorganisms and biological contaminants, solids, heavy metals and organic/inorganic compounds, comprising:
means for exposing a stream of air to short-wavelength ultraviolet radiation, whereby ions of oxygen and nitrogen are formed in said stream of air; means for electrolysis of at least a part of said salt water stream to be disinfected, whereby chlorine ions are produced in situ in said at least part of said salt water stream; means for mixing said stream of air containing ions of oxygen and nitrogen with said at least a part of said salt water stream containing chlorine ions formed in situ, forming a stream of water containing said ions of oxygen, nitrogen, and chlorine and means for mixing said stream of water containing said ions of oxygen, nitrogen, and chlorine with said stream of water to be disinfected.
- 2. The system of claim 1, wherein said means for electrolysis of at least a part of said water stream to be disinfected comprises a vessel containing a number of spaced parallel plates of conductive material, alternating ones of said plates being connected to a source of direct current, such that an electric field exists between alternating pairs of plates, whereby salt in said vessel is electrolyzed, releasing ionized chlorine.
- 3. The system of claim 1, wherein said means for exposing a stream of air to short-wavelength ultraviolet radiation comprises an elongated tubular member having an air intake at one end and an outlet for a stream of air containing ionized atoms at the other end, a number of lamps for emitting short-wavelength ultraviolet radiation extending within said tubular member, and a power supply for energizing said lamps.
- 4. The system of claim 3, wherein said tubular member is lined with UV-reflective material, whereby said UV is repeatedly reflected.
- 5. The system of claim 4, wherein baffles of UV-reflective material are further disposed between said lamps.
- 6. The system of claim 3, wherein said air stream containing ionized atoms is withdrawn from one end of a hollow cylindrical member disposed within said tubular member, and wherein a rod member is disposed coaxially within said hollow cylindrical member, an AC potential being applied across said hollow cylindrical member and said rod member.
- 7. The system of claim 3, wherein said tubular member comprises an aluminum tube fitted with first and second end caps defining a closed cylindrical member.
- 8. The system of claim 7, further comprising a water jacket member fitted around said aluminum tube, and arranged to be sealed with respect to said first and second end caps, whereby cooling water can flow around said aluminum tube. A permanent magnet may be inserted into the tube or produced with electro magnetism.
- 9. The system of claim 2, wherein said stream of air containing ionized oxygen and nitrogen is mixed with the stream of water to be treated before admission of said stream of water to be treated to a settling vessel, wherein solids can settle out for removal, and wherein said stream of water flows from said settling vessel to said vessel containing a number of spaced parallel plates of conductive material, alternating ones of said plates being connected to a direct current power supply, whereby ionized chlorine is released by electrolysis and mixed with said stream of water, and whereby solids remaining in said stream of water are agglomerated on said spaced parallel plates.
- 10. The system of claim 2, wherein the material of said spaced parallel plates includes at least one of aluminum, stainless steel, Rhodium, other rare metals, and rare earth metals for removing heavy metals through chemical reaction.
- 11. The system of claim 1, wherein said means for mixing said stream of ionized gas with said stream of water to be disinfected comprises a section of pipe along which said stream of water is passed, and a number of injector assemblies connected to said section of pipe, each injector assembly being connected to said means for exposing a stream of air to short-wavelength ultraviolet radiation, whereby ions of oxygen and nitrogen are formed in said stream of air, and to said means for electrolysis of at least a part of said salt water stream to be disinfected, whereby chlorine ions are produced in situ in said at least part of said salt water stream, whereby each injector assembly comprises said means for mixing said stream of water containing chlorine ions with said stream of air containing ions of oxygen and nitrogen.
- 12. A method for the disinfection of water encountered in marine applications, containing salt and contaminated by the presence of microorganisms and biological contaminants, comprising the steps of:
exposing a stream of air to short-wavelength ultraviolet radiation, whereby ions of oxygen and nitrogen are formed in said stream of air; electrolyzing salt in at least a portion of said stream of water to be disinfected, whereby a stream of water containing chlorine ions is produced; mixing said stream of water containing chlorine ions with said stream of air containing ions of oxygen and nitrogen, forming a stream of water containing ions of oxygen, nitrogen and chlorine, and mixing said stream of water containing ions of oxygen, nitrogen and chlorine with said stream of water to be disinfected, whereby said microorganisms and biological contaminants are destroyed.
- 13. The method of claim 12, wherein said step of electrolyzing salt in at least a portion of said stream of water to be disinfected is performed by disposing said portion of said stream of water to be disinfected in a vessel containing a number of spaced parallel plates of conductive material, and connecting alternating ones of said plates to a source of direct current, such that an electric field exists between alternating pairs of plates, whereby salt in said vessel is electrolyzed, releasing ionized chlorine.
- 14. The method of claim 13, wherein the conductive material of said plates contains aluminum, stainless steel, Rhodium, other rare metals, and rare earth metals, for removing heavy metals through chemical reaction.
- 15. The method of claim 12, wherein said step of exposing a stream of air to short-wavelength ultraviolet radiation is performed by admitting said stream of air into an elongated tubular member having an air intake at one end and an outlet for a stream of air containing ionized atoms at the other end, wherein a number of lamps for emitting short-wavelength ultraviolet radiation are located within said tubular member, and energizing said lamps.
- 16. The method of claim 15, wherein said tubular member is lined with UVreflective material, whereby said UV is repeatedly reflected until absorbed by gas atoms in said stream of air.
- 17. The method of claim 16, wherein baffles of said UV-reflective material are further disposed between said lamps.
- 18. The method of claim 15, wherein said air stream containing ionized atoms is withdrawn from one end of a hollow cylindrical member disposed within said tubular member, and wherein a rod member is disposed coaxially within said hollow cylindrical member, and comprising the further step of applying an AC potential across said hollow cylindrical member and said rod member.
- 19. The method of claim 15, wherein said tubular member comprises an aluminum tube fitted with first and second end caps defining a closed cylindrical volume, wherein a water jacket member is fitted around said aluminum tube, and sealed with respect to said first and second end caps, and comprising the further step of causing cooling water to flow around said aluminum tube.
- 20. The method of claim 13, comprising the further steps of mixing said stream of air containing ionized oxygen and nitrogen with the stream of water to be treated before admission of said stream of water to be treated to a settling vessel, wherein solids can settle out for removal, and causing said stream of water to flow from said settling vessel to said vessel containing a number of spaced parallel plates of conductive material, alternating ones of said plates being connected to a direct current power supply, whereby ionized chlorine is released in situ by electrolysis and mixed with said stream of water, and whereby solids remaining in said stream of water are agglomerated by the electric field extending between said spaced parallel plates.
- 21. The method of claim 12, wherein said step of mixing said mixed gas stream with said stream of water to be disinfected is performed employing a section of pipe along which said stream of water is passed, wherein a number of injector assemblies are connected to said section of pipe, and by connecting each injector assembly to said stream of air having been exposed to short-wavelength ultraviolet radiation, whereby said stream of air contains ions of oxygen and nitrogen, and to means for producing a stream of water containing chlorine ions, whereby said chlorine ions are mixed in each injector assembly with said stream of air containing ions of oxygen and nitrogen.
- 22. Apparatus for the disinfection of water encountered in marine applications and contaminated by the presence of microorganisms and biological contaminants, and for removal of destroyed organisms and other solids therefrom, comprising:
means for exposing a stream of air to short-wavelength ultraviolet radiation, whereby ions of oxygen and nitrogen are formed in said stream of air; a vessel having a lower settling zone, and an upper electrolysis zone; said vessel having an inlet communicating with said lower settling zone, for admission of said stream of air containing ions of oxygen and nitrogen, and admission of a stream of water to be disinfected, said stream containing at least a minimum content of salt, forming a brine, a number of spaced parallel plates of conductive material being disposed in said electrolysis zone of said vessel, a source of direct current connected to alternating ones of said plates, such that an electric field exists between alternating pairs of plates, whereby brine in said vessel is electrolyzed, releasing ionized chlorine, whereby said ionized chlorine and said ions of oxygen and nitrogen destroy microorganisms and biological contaminants in said water, said destroyed microorganisms and biological contaminants being agglomerated on said plates, together with other solids in said water stream, wherein said direct current applied to alternating ones of said plates is reversed in polarity from time to time, whereby lighter portions of said destroyed microorganisms and biological contaminants and other solids tend to float upwardly and form a foam on the surface of water in said vessel, and heavier portions of said destroyed microorganisms and biological contaminants and other solids tend to fall downwardly and settle in said settling zone of said vessel.
- 23. The vessel of claim 22, wherein a weir is provided at the upper portion of said vessel, for separating said foam from disinfected water.
- 24. The vessel of claim 22, wherein the material of said spaced parallel plates contains at least one of aluminum, stainless steel, Rhodium, other rare metals, and rare earth metals, for removing heavy metals through chemical reaction.
- 25. A method of treating water encountered in marine applications in which NI—OX gases are injected into the water being treated via a venturi, and wherein the water was previously treated with Clorin gas or post treated with Clorin gas.
- 26. A method as in claim 25, wherein the water is split into two waste streams, one enters a static mixing pipe, and the other is treated with chlorine and NI—OX and returned to the static mixing pipe via an air pump or a venturi system.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority from Provisional Application Serial No. 60/278,477, filed Mar. 26, 2001, which is incorporated by reference herein.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60278477 |
Mar 2001 |
US |