| Literature DB >> 24957170 |
Mark Mullett1, Roberta Fornarelli2, David Ralph3.
Abstract
Two nanofiltration membranes, a Dow NF 270 polyamide thin film and a TriSep TS 80 polyamide thin film, were investigated for their retention of ionic species when filtering mine influenced water streams at a range of acidic pH values. The functional iso-electric point of the membranes, characterized by changes in retention over a small pH range, were examined by filtering solutions of sodium sulphate. Both membranes showed changes in retention at pH 3, suggesting a zero net charge on the membranes at this pH. Copper mine drainage and synthetic solutions of mine influenced water were filtered using the same membranes. These solutions were characterized by pH values within 2 and 5, thus crossing the iso-electric point of both membranes. Retention of cations was maximized when the feed solution pH was less than the iso-electric point of the membrane. In these conditions, the membrane has a net positive charge, reducing the transmission rate of cations. From the recoveries of a range of cations, the suitability of nanofiltration was discussed relative to the compliance with mine water discharge criteria and the recovery of valuable commodity metals. The nanofiltration process was demonstrated to offer advantages in metal recovery from mine waste streams, concomitantly enabling discharge criteria for the filtrate disposal to be met.Entities:
Year: 2014 PMID: 24957170 PMCID: PMC4085618 DOI: 10.3390/membranes4020163
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Iso-electric point (IEP) of different commercial nanofiltration (NF) membranes as measured in the existing literature.
| Authors | Membrane | pH range | Solution | IEP |
|---|---|---|---|---|
| Childress and Elimelech [ | NF 70 | 2–9 | 0.01 M NaCl | 4 |
| 0.01 M NaCl + 0.001 M CaCl2 | 3–3.5 | |||
| 0.01 M NaCl + 0.001 M Na2SO4 | 4 | |||
| 0.01 M NaCl + 0.001 M MgSO4 | – | |||
| TFCS | 2–9 | 0.01 M NaCl | 3 | |
| 0.01 M NaCl + 0.001 M CaCl2 | 3.5 | |||
| 0.01 M NaCl + 0.001 M Na2SO4 | 3 | |||
| 0.01 M NaCl + 0.001 M MgSO4 | 3 | |||
| Hagmeyer and Gimbel [ | Desal 5 DK | 3–11 | 0.002 M KCl | 4 |
| NTR-729 | 3–11 | 0.002 M KCl | 4 | |
| Childress and Elimelech [ | NF 55 | 3–9 | 0.01 M NaCl | 3.2 |
| 0.01 M NaCl + 2 mg L−1 humic acids | no IEP | |||
| 0.01 M NaCl + 1 mM surfactants | no IEP | |||
| Tanninen | NF 270 | – | 0.001 M KCl | 3.3 |
| Desal 5 DK | – | 0.001 M KCl | 4.1 | |
| Desal KH | – | 0.001 M KCl | 4.9 | |
| BTP-NF-1 | – | 0.001 M KCl | 6 | |
| BTP-NF-2 | – | 0.001 M KCl | 5.4 | |
| Artug [ | NF 270 | 2.5–7 | 0.001 M NaCl | 2.8 |
| 0.001 M CaCl2 | 3.5 | |||
| NF 90 | 2.5–7 | 0.001 M NaCl | 4.3 | |
| 0.001 M CaCl2 | 4.3 | |||
| NF PES 10 | 2.5–7 | 0.001 M NaCl | 3.4 | |
| 0.001 M CaCl2 | 3.5 | |||
| NF 2 | 2.5–7 | 0.001 M NaCl | 3.2 | |
| 0.001 M CaCl2 | 2.9 |
Composition of mine water (MW) samples. MW A: provided by a copper mine in Western Australia. MW B and MW C: samples recreated based on the analytical composition of MW A. MW D: sample prepared from MW C by titrating the pH down from 4.10 to 2.60. NM: parameter not measured.
| Parameter | Unit | MW A | MW B | MW C | MW D |
|---|---|---|---|---|---|
| pH | – | 4.56 | 5.50 | 4.10 | 2.60 |
| Aluminium, Al3+ | mg L−1 | 14 | 0.4 | NM | NM |
| Calcium, Ca2+ | mg L−1 | 480 | 260 | 280 | 270 |
| Copper, Cu2+ | mg L−1 | 410 | 270 | 610 | 590 |
| Iron, Fe3+ | mg L−1 | 0.14 | 0.02 | NM | NM |
| Potassium, K+ | mg L−1 | 310 | 340 | NM | NM |
| Magnesium, Mg2+ | mg L−1 | 770 | 870 | 900 | 900 |
| Manganese, Mn3+ | mg L−1 | 440 | 420 | 530 | 500 |
| Sodium, Na+ | mg L−1 | 2000 | 3000 | 3800 | 3600 |
| Sulphate, SO42− | mg L−1 | 6900 | 8700 | 10,500 | 10,200 |
| Chloride, Cl− | mg L−1 | 2300 | NM | 3000 | 2900 |
Details of experimental tests conducted on four mine influenced water samples and two nanofiltration membranes.
| Type of Test | Feed Sample | NF Membrane | Feed Flow (L h−1) | Feed Temperature (°C) | Feed Pressure (bar) | Permeate Flux Rate (L m−2 h−1) |
|---|---|---|---|---|---|---|
| IEP Test | NaCl-Na2SO4 | NF 270 | 200 | 37 ± 4.1 | 20 ± 0.0 | 130 ± 0.0 |
| IEP Test | NaCl-Na2SO4 | TS 80 | 225 | 25 ± 0.0 | 10 ± 0.5 | 33 ± 5.8 |
| Feed pH Test | MW A | NF 270 | 200 | 25 ± 0.6 | 7 ± 1.2 | 32 ± 2.5 |
| Feed pH Test | MW B | TS 80 | 225 | 25 ± 0.5 | 19 ± 2.8 | 35 ± 4.6 |
| Recovery Test | MW C | TS 80 | 225 | 25 ± 1.2 | 23 ± 5.0 | 32 ± 2.0 |
| Recovery Test | MW C | NF 270 | 225 | 25 ± 0.5 | 10 ± 2.7 | 34 ± 0.9 |
| Recovery Test | MW D | TS 80 | 225 | 25 ± 0.5 | 22 ± 6.2 | 33 ± 1.6 |
| Recovery Test | MW D | NF 270 | 225 | 25 ± 0.8 | 10 ± 1.9 | 34 ± 1.5 |
Figure 1Schematic diagram of lab-scale NF unit test.
Figure 2Ion rejection as a result of the IEP Tests. Tested feed solution: sodium chloride and sodium sulphate solutions. Tested membrane: NF 270 and TS 80.
Figure 3Ion rejection at varying feed pH as a result of the MW Tests. Tested feed solution: MW A. Tested membrane: NF 270 membrane. (a) Rejection of multivalent ions. Significant (p-value < 0.05) decreasing trends of cation rejections are shown for a pH higher than three; (b) Rejection of sodium ion.
Figure 4Ion rejection at varying feed pH as a result of MW Tests. Tested feed solution: MW B. Tested membrane: TS 80 membrane. (a) Rejection of multivalent ions; (b) Rejection of sodium ion.
The results of the Recovery Tests. Tested feed solution: MW D at pH 2.60 and MW C at pH 4.10. Tested membrane: NF 270 and TS 80.
| Ion | Recovery Test on MW D (feed pH = 2.60; recovery = 70%) | Recovery Test on MW C (feed pH = 4.10; recovery = 70%) | Discharge Criteria (mg L−1) | Estimated permeate concentration second pass (mg L−1) | ||||
|---|---|---|---|---|---|---|---|---|
| Rejection (%) | Permeate Concentration (mg L−1) | Rejection (%) | Permeate Concentration (mg L−1) | Feed pH = 2.60 | Feed pH = 4.10 | |||
| TS 80 | ||||||||
| Ca2+ | 98 | 5.7 | 95 | 13 | 50 | 0.1 | 0.6 | |
| Cu2+ | 97 | 15 | 94 | 34 | 1–50 | 0.4 | 1.9 | |
| Mg2+ | 97 | 28 | 94 | 53 | 50 | 0.9 | 3.1 | |
| Mn3+ | 97 | 13 | 95 | 29 | 0.005–0.5 | 0.3 | 1.6 | |
| Na+ | 94 | 200 | 87 | 490 | – | 11 | 63 | |
| SO42− | 98 | 246 | 95 | 510 | 250–1000 | 6 | 25 | |
| Cl− | 84 | 470 | 78 | 650 | – | 76 | 141 | |
| NF 270 | ||||||||
| Ca2+ | 94 | 12 | 93 | 19 | 50 | 0.7 | 1.3 | |
| Cu2+ | 94 | 27 | 91 | 47 | 1–50 | 1.7 | 4.3 | |
| Mg2+ | 95 | 38 | 95 | 49 | 50 | 1.9 | 2.6 | |
| Mn3+ | 95 | 20 | 94 | 27 | 0.005–0.5 | 1.0 | 1.6 | |
| Na+ | 52 | 1300 | 50 | 1600 | – | 626 | 800 | |
| SO42− | 94 | 480 | 95 | 450 | 250–1000 | 31 | 22 | |
| Cl− | 4 | 2200 | −8 | 2800 | – | 2104 | 3015 | |
Figure 5Copper mass balance calculated for (a) MW D at pH = 2.60 and for (b) MW C at pH = 4.10. The feed flow rate and volumetric recovery are fixed at 100 kL h−1 and 70%, respectively.