Saline wastewater treatment system using solar-assisted heat pump
US-2024083794-A1 · Mar 14, 2024 · US
US9745207B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9745207-B2 |
| Application number | US-201214125424-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 20, 2012 |
| Priority date | Jun 24, 2011 |
| Publication date | Aug 29, 2017 |
| Grant date | Aug 29, 2017 |
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The invention concerns a treated water purification system ( 107 ) comprising a water flow loop ( 110 ), said loop ( 110 ) being closed onto a tank ( 10 ) of treated water to purify, and said loop ( 110 ) successively comprising, in the direction of flow of the water downstream of the tank ( 10 ), at least one pump means ( 102 ), at least one first filtration means ( 103 ), at least one second filtration means ( 104 ) and at least one point of use (U), the system ( 107 ) being characterized in that it further comprises at least one diversionary pipe ( 112 ) linking the first filtration means ( 103 ) to the tank ( 10 ), and a loop return pipe ( 114 ) linking the second filtration means ( 104 ) to the tank ( 10 ). Method for use of such a system.
Opening claim text (preview).
The invention claimed is: 1. A treated water purification system comprising a water flow loop, said loop being closed onto a tank of treated water to purify, and said loop successively comprising, in the direction of flow of the water downstream of the tank, at least one pump, at least one first filter comprising a first membrane having a feed side and a retentate side and producing a permeate, at least one second filter comprising a second membrane through which said permeate from said first membrane is directed and passes and at least one point of use connected to said permeate from said second membrane, said second membrane having a retentate side, the system further comprising at least one diversionary pipe connected to said retentate side of said first membrane and linking the first filter to the tank, and a loop return pipe connected to said retentate side of said second membrane and linking the second filter to the tank, wherein the diversionary pipe is configured such that below 30% of the flow of the water capable of flowing in the flow loop passes via said diversionary pipe, wherein residual gas that has accumulated in said first and second filters is returned to the atmosphere at the tank, wherein all retentate from said retentate side of said first membrane is returned to said tank via said diversionary pipe, and all retentate from said retentate side of said second membrane is returned to said tank via said loop return pipe, and wherein at least one UV sterilizer is mounted in said tank or on said flow loop. 2. A system according to claim 1 , wherein the at least one pump is associated with a valve present on the loop return pipe. 3. A system according to claim 1 , wherein the second filter is an absolute microfilter. 4. A system according to claim 1 , wherein the first filter is an ultrafiltration filter. 5. A system according to claim 1 , wherein the first and second filters are provided as a disposable module. 6. A system according to claim 1 , wherein said first membrane is connected to said diversionary pipe via a first purge outlet, said second membrane is connected to said loop return pipe via a second purge outlet, and wherein said first and second purge outlets are positioned upwardly. 7. A system according to claim 1 , wherein there is a UV sterilizer mounted in said tank and a UV sterilizer mounted on said flow loop. 8. A method of purifying treated water comprising making the treated water flow in a closed water flow loop, said method comprising supplying the loop with treated water and placing water in storage by supplying at least one tank present on said loop, the purifying method comprising filtering with at least one first filter comprising a first membrane, and filtering with at least one second filter comprising a second membrane, said second filter filtering permeate from said first filter, the method comprising at least one point of use of permeate produced in said at least one second filter, said method further comprising purging a feed side of the first filter of air by causing part of the water flowing in the loop to flow in a diversion pipe from the loop linking the first filter to the tank, and purging a feed side of the second filter of air by causing water flowing in the loop to flow between the second filter and the tank, wherein all of the water flowing in the diversion pipe linking the first filter to the tank is returned to said tank, and sterilizing the water in storage in said tank with a UV sterilizer in said tank, or sterilizing the water in said flow loop with a UV sterilizer mounted on said flow loop. 9. A purifying method according to claim 8 , wherein the method further comprises sterilizing said water in said water flow loop with a UV sterilizer mounted in said water flow loop, and sterilizing the water in storage in said tank with a UV sterilizer in said tank.
Portable or detachable small-scale multistage treatment devices, e.g. point of use or laboratory water purification systems · CPC title
Chemistry & Metallurgy · mapped topic
using large scale industrial sized filters · CPC title
Multistage treatment of water, waste water or sewage · CPC title
by ultrafiltration or microfiltration · CPC title
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