Remineralization System and Method
20200398223 ยท 2020-12-24
Inventors
- Ahmed Saleh Mohammed ALAMOUDI (Al-Jubail, SA)
- Nikolay VOUTCHKOV (Winter Springs, FL, US)
- Seungwon IHM (Al-Khobar, SA)
Cpc classification
B01D2313/28
PERFORMING OPERATIONS; TRANSPORTING
B01D61/0271
PERFORMING OPERATIONS; TRANSPORTING
B01D2311/25
PERFORMING OPERATIONS; TRANSPORTING
B01D61/026
PERFORMING OPERATIONS; TRANSPORTING
C02F1/68
CHEMISTRY; METALLURGY
Y02A20/124
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02A20/131
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D2311/08
PERFORMING OPERATIONS; TRANSPORTING
C02F1/001
CHEMISTRY; METALLURGY
International classification
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system and method for producing high quality potable water by re-mineralization of desalinated water is provided. The retentate rejected from a nanofiltration unit becomes a source of mineral-rich divalent ions for mixing with the desalinated water being produced by a desalination unit, thereby reducing or eliminating the need for separate supply from outside sources of chemicals needed to obtain potable water that meets various drinking water standards. The nanofiltration unit may be located in a desalination upstream and/or downstream of the desalination unit, and the amount of flow of the nanofiltration retentate supplied to the re-mineralization unit relative to the amount of desalinated water flow may be adjusted to achieve the desired potable water quality.
Claims
1. A re-mineralization system, comprising: a nanofiltration unit; a desalination unit; and a re-mineralization unit, wherein the nanofiltration unit is configured to receive at least a first portion of a saline source stream, the desalination unit is configured to receive at least a first portion of a nanofiltration permeate stream and to produce a desalinated water stream, and the re-mineralization unit is configured introduce at least a first portion of a nanofiltration retentate discharge stream into at least a first portion of the desalinated water stream.
2. The re-mineralization system of claim 1, wherein an amount of the first portion of the nanofiltration retentate discharge stream relative to an amount of the first portion of the desalinated water stream introduced in the re-mineralization unit is sufficient to convert the desalinated water into potable water conforming to a drinking water standard.
3. The re-mineralization system of claim 2, further comprising: a pretreatment unit upstream of the nanofiltration unit and the desalination unit, wherein the pretreatment unit is configured to receive a source saline water stream and discharge pretreated saline water to the nanofiltration unit, the desalination unit, or both the nanofiltration unit and the desalination unit.
4. The re-mineralization system of claim 3, wherein a first portion of the pretreated saline water is received by the nanofiltration unit, and the desalination unit receives a second portion of the pretreated saline water.
5. The re-mineralization system of claim 2, further comprising: at least one concentration unit between the nanofiltration unit and the re-mineralization unit.
6. The re-mineralization system of claim 3, further comprising: at least one concentration unit between the nanofiltration unit and the re-mineralization unit.
7. The re-mineralization system of claim 4, further comprising: at least one concentration unit between the nanofiltration unit and the re-mineralization unit.
8. The re-mineralization system of claim 5, wherein the at least one concentration unit includes a brine concentrator, an additional nanofiltration unit or an additional desalination unit, or a combination of two or more of the brine concentrator, the additional nanofiltration unit and the additional desalination unit.
9. The re-mineralization system of claim 6, wherein the at least one concentration unit includes a brine concentrator, an additional nanofiltration unit or an additional desalination unit, or a combination of two or more of the brine concentrator, the additional nanofiltration unit and the additional desalination unit.
10. The re-mineralization system of claim 7, wherein the at least one concentration unit includes a brine concentrator, an additional nanofiltration unit or an additional desalination unit, or a combination of two or more of the brine concentrator, the additional nanofiltration unit and the additional desalination unit.
11. A re-mineralization system, comprising: a nanofiltration unit; a desalination unit; and a re-mineralization unit, wherein the desalination unit is configured to receive at least a first portion of a saline source stream and to produce a desalinated water stream and a desalination unit retentate discharge stream, the nanofiltration unit is configured to receive at least a first portion of the desalination unit retentate discharge stream from the desalination unit, and the re-mineralization unit is configured introduce at least a first portion of a nanofiltration retentate discharge stream into at least a first portion of the desalinated water stream.
12. The re-mineralization system of claim 11, further comprising: a pretreatment unit upstream of the nanofiltration unit and the desalination unit, wherein the pretreatment unit is configured to receive a source saline water stream and discharge pretreated saline water to the nanofiltration unit, the desalination unit, or both the nanofiltration unit and the desalination unit.
13. The re-mineralization system of claim 12, wherein all of the pretreated saline water is received by the desalination unit.
14. The re-mineralization system of claim 11, further comprising: at least one concentration unit between the nanofiltration unit and the re-mineralization unit.
15. The re-mineralization system of claim 12, further comprising: at least one concentration unit between the nanofiltration unit and the re-mineralization unit.
16. The re-mineralization system of claim 11, wherein the at least one concentration unit includes a brine concentrator, an additional nanofiltration unit or an additional desalination unit, or a combination of two or more of the brine concentrator, the additional nanofiltration unit and the additional desalination unit.
17. The re-mineralization system of claim 12, wherein the at least one concentration unit includes a brine concentrator, an additional nanofiltration unit or an additional desalination unit, or a combination of two or more of the brine concentrator, the additional nanofiltration unit and the additional desalination unit.
18. A re-mineralization system, comprising: an ion-selective membrane unit; a desalination unit; and a re-mineralization unit, wherein the ion-selective unit is configured to receive a saline source stream, the desalination unit is configured to produce a desalinated water stream, the re-mineralization unit is configured introduce at least a first portion of an ion-selective retentate discharge stream into at least a first portion of the desalinated water stream.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023]
[0024] In this example, saline source water 110 passes through an initial pre-treatment process 120, such as debris removal, prior to some or all of the source water being input into the NF unit 130. If only a portion of the source water is to be treated by the NF unit 130, the remainder may bypass the NF unit via line 131 to be supplied to the downstream desalination unit 140. The desalination unit 140 further separates the saline water it receives into a desalination retentate stream 141 and a desalination permeate (desalinated water) stream 142.
[0025] In the NF unit 130, the source water is separated by membrane into a high divalent ion-concentration retentate stream that is rejected from the unit via discharge line 132, and into a low divalent ion-concentration permeate stream 133 that is input to the desalination unit 140, along with any bypass source water flow through line 131. A portion of the NF retentate stream 134 that is discharged via line 132 may be diverted via line 135 for use in the post-treatment re-mineralization unit 150.
[0026] At the re-mineralization unit 150 the desalination unit permeate stream 142 is mixed with the portion of the NF retentate discharge stream diverted via line 135 to treat the desalinated water to generate the output potable water stream 160.
[0027] The fluid flows and energy consumed in this desalination process should be balanced as necessary to maximize potable water production at the lowest operating cost. In one embodiment of the present invention, the desalinated water stream from the desalination unit 140 has a system TDS of 50 ppm and a pH of 5.2, with an estimated LSI value of 6.7. The NF retentate stream 132 has a TDS of 47,895 ppm (the dissolved solids being very rich in divalent ions useful in re-mineralizing desalinated water, either in the same desalination plant or a different desalination or in another water reclamation/wastewater treatment facility). In this example, a typical 1.1% volume mix of NF retentate 132 to the desalinated water 142 results in the mixed desalinated water and NF retentate having at least: (i) a better LSI value to protect receiving water piping against corrosion; (ii) elevated mineral content adequate to meet the drinking water quality requirements of the World Health Organization, US EPA drinking water regulations, and European Union drinking water standards; and (iii) an increase of the total amount of water produced by the desalination facility.
[0028] Example operating parameters in this embodiment are shown in Table 3, below. Note that the pH and LSI of the re-mineralized water in Table 3 could be further adjusted by adding CO.sub.2 (from thermal desalination evaporator or other source), or other known methods, to reach the pH range of 6.5 to 9.0, and an LSI value close to neutral or a bit positive (e.g., +0.1-+0.3).
TABLE-US-00003 TABLE 3 Re-mineralized Water Saline (Desalinated WHO Source Water Desalinated NF Water + 1.1% Drinking Water (Seawater) Water Retentate NF Retentate) Guidelines pH 8.1 5.2 6.1 NL** TDS* 35607 50 47895 570 1,000 Ca 410 0.7 820 9.6 Hardness (Ca + Mg 1310 0.4 2948 32.5 Mg) 40 Na 10900 16.6 12263 149.8 NL K 390 0.6 439 5.4 NL HCO.sub.3 152 0.5 285 3.6 NL SO.sub.4 2740 0.4 6508 71.2 NL Cl 19700 29.3 24625 296.9 No health-based guideline B 4.6 0.5 9 0.6 2.4 LSI 6.7 4.0 NL *TDS and ions in ppm; **NL: No Limit
[0029] In a further embodiment, NF may be used to treat only a small portion of the source seawater, either after pretreatment or installed separately and independently of the desalination system, in order to produce NF retentate desirably rich in calcium and magnesium to be utilized in the re-mineralization process.
[0030] The present invention's use of an NF retentate discharge stream which is rich is divalent ions for re-mineralization of desalinated water is applicable to desalination plants that process source brackish water, seawater and/or wastewater, and is not limited to NF processing solely upstream of a desalination process. For example, in another embodiment of the present invention as illustrated in
[0031] In this embodiment saline source water 210 passes through an initial pre-treatment process 220 prior the source water being directed to a desalination unit 240. The desalination unit 240 separates the saline water it receives into a desalination retentate stream 241 and a desalination permeate (desalinated water) stream 242. At least a portion of the desalination retentate stream 241 enters a NF unit 230, which separates the desalination retentate into an NF high divalent ion retentate stream that is rejected from the unit via discharge line 232, and into a low divalent ion-concentration NF permeate stream 233. The NF permeate stream 233 may be separately utilized in other processes, or may be recycled to the inlet of the desalination unit 240 to maximize desalinated water production and, due to its low divalent ion concentration, to assist in decreasing deposit and scale formation in the desalination unit. If only a portion of the source water is to be treated by the NF unit 230, the remainder may bypass the NF unit via line 243.
[0032] A portion of the NF retentate stream 234 that is discharged via line 232 may be diverted via line 235 for use in the post-treatment re-mineralization unit 250. At the re-mineralization unit 250, the desalination unit permeate stream 242 (i.e., the desalinated water) is mixed with the portion of the NF retentate discharge stream diverted via line 235 to treat the desalinated water to generate the output potable water stream 260.
[0033] Another embodiment similar to the
[0034]
[0035] Another embodiment of the present invention is arranged as in the
[0036] In the present invention, the desalinated water quality is highly dependent on the desalination system performance, and the quality of the water being input into the system. Similarly, the NF retentate quality is also highly dependent on the NF membrane performance and the NF system configuration and operating conditions. Consequently, the 1.1% mixing of NF retentate in the foregoing embodiments is only an example. The mixing rate may be adjusted as necessary to meet the desired end-product drinking water qualities.
[0037] The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Because such modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.
LISTING OF REFERENCE LABELS
[0038] 1 desalinated water [0039] 2 branch [0040] 3 CO.sub.2 gas [0041] 4 CO.sub.2 absorber [0042] 5 limestone filter [0043] 6 degasifier [0044] 7 chlorine gas [0045] 8 NaOH [0046] 9 potable water [0047] 110 source water [0048] 120 pretreatment unit [0049] 130 nanofiltration unit [0050] 131 bypass line [0051] 132 NF retentate discharge line [0052] 133 NF permeate stream [0053] 134 NF retentate stream [0054] 135 NF retentate branch line [0055] 140 desalination unit [0056] 141 desalination retentate discharge [0057] 142 desalinated water [0058] 150 re-mineralization unit [0059] 160 potable water [0060] 170 desalination or brine concentrator [0061] 171 concentrator permeate [0062] 172 concentrator retentate [0063] 173 diverted concentrator retentate stream line [0064] 210 source water [0065] 220 pretreatment unit [0066] 230 nanofiltration unit [0067] 232 NF retentate discharge line [0068] 233 NF permeate stream [0069] 234 NF retentate stream [0070] 235 NF retentate branch line [0071] 240 desalination unit [0072] 241 desalination retentate discharge [0073] 242 desalinated water [0074] 243 bypass line [0075] 250 re-mineralization unit [0076] 260 potable water