| Literature DB >> 24593865 |
Ahmad Rahimpour1, Mohsen Jahanshahi, Majid Peyravi.
Abstract
The treatment of the yeast industry wastewater was investigated by nanofiltration (NF) membrane process on a pilot scale. Two wastewaters were used as feed: (i) dilute wastewater with COD 2000 mg/L and (ii) concentrate wastewater with COD 8000 mg/L. The permeate flux, COD retention, color and electrical conductivity (EC) removal were evaluated in relation to trans-membrane pressure and long-term filtration. A linear growth in permeate flux was found with increasing in trans-membrane pressure for wastewaters. In addition, the COD retention, color and EC removal increased with trans-membrane pressure enhancement. The results obtained from the long-term nanofiltration of dilute wastewater indicated that the permeate flux decreased from 2300 L/day to 1250 L/day and COD retention increased from 86% to 92%. The quality of the permeate in term of COD is lower than the discharge standard in river (200 mg/L). Thus, this process is useful for treatment of wastewaters produced by yeast industry.Entities:
Year: 2014 PMID: 24593865 PMCID: PMC3973883 DOI: 10.1186/2052-336X-12-55
Source DB: PubMed Journal: J Environ Health Sci Eng
Characteristics of dilute and concentrate wastewaters
| pH | 6.5 | 6.0 |
| COD, mg/L | 2000 ± 100 | 8000 ± 220 |
| SS, mg/L | 43 ± 5 | 180 ± 15 |
| Color, Pt-Co† | 6400 ± 140 | 14000 ± 660 |
| Conductivity, mS/cm | 3200 ± 110 | 9880 ± 400 |
† Platinum - Cobalt.
Characteristics of hollow fiber ultrafiltration cartridge
| Membrane type | Out-to-In hollow fiber |
| Membrane material | PP(Polypropylene) |
| Housing | UPVC/ABS |
| Pore size | 0.1~0.2 μm |
| Fiber OD/IN | OD450 μm,ID3500 μm |
| Ventilation rate of N2 | ≥7.0 × 10–2 cm3/cm2.cmHg |
| Porosity rate | 40~50% |
| Strength | 12 MPa |
| Product water turbidity | ≤ 0.2 NTU |
| Product water | SDI ≤ 3 |
| TOC removing rate | 20% ~ 50% |
Figure 1Nanofiltration system for yeast wastewater treatment: (a) flow diagram (b) image.
Figure 2Effect of trans-membrane pressure on permeate flux of pilot plan.
Figure 3Effect of trans-membrane pressure on COD retention of pilot plan.
Figure 4The relationship between color removal and trans-membrane pressure.
Figure 5Effect of trans-membrane pressure on EC retention of pilot plan.
Figure 6The permeate flux and COD retention of pilot plan during long-term filtration.