| Literature DB >> 28018482 |
Zachary T Fica1, Ronald C Sims1.
Abstract
BACKGROUND: Biofilm-based microalgal growth was determined as functionpan>s of organpan>ic chemical loading anpan>d pan> class="Chemical">water temperature utilizing dairy wastewater from a full-scale dairy farm. The dairy industry is a significant source of wastewater worldwide that could provide an inexpensive and nutrient rich feedstock for the cultivation of algae biomass for use in downstream processing of animal feed and aquaculture applications. Algal biomass was cultivated using a Rotating Algal Biofilm Reactor (RABR) system. The RABR is a biofilm-based technology that has been designed and used to remediate municipal wastewater and was applied to treat dairy wastewater through nutrient uptake, and simultaneously provide biomass for the production of renewable bioproducts.Entities:
Keywords: Arrhenius; Biofilm; Dairy wastewater; Nutrient uptake; Organic carbon; Temperature correction coefficient
Year: 2016 PMID: 28018482 PMCID: PMC5159987 DOI: 10.1186/s13036-016-0039-y
Source DB: PubMed Journal: J Biol Eng ISSN: 1754-1611 Impact factor: 4.355
Composition of influent Caine Dairy wastewater and cultivated biomass from the RABR system. (Analysis by Chemtech-Ford Laboratories – Sandy, UT)
| Chemical composition | Watera (mg L-1) | Biomassb (mg kg-1 dry wt.) |
|---|---|---|
| Total organic carbon | 1200 | 648500 |
| Total nitrogen | 155c | 140400 |
| Total phosphorus | 12 | 19100 |
| Aluminum | 7.67 | 776 |
| Boron | 1.73 | 132 |
| Barium | 0.63 | 75.7 |
| Cobalt | 0.03 | 1.96 |
| Chromium | 0.42 | 45.3 |
| Copper | 3.05 | 85.2 |
| Iron | 6.80 | 624 |
| Manganese | 0.67 | 107 |
| Molybdenum | 0.09 | 27 |
| Sodium | 460 | 23455 |
| Nickel | 0.25 | 24.1 |
| Lead | 0.05 | 6.41 |
| Silica | 106 | 5572 |
| Strontium | 1.18 | 125 |
| Zinc | 1.15 | 116 |
aDairy wastewater influent stream
bProduced algae-based biofilm
cTotal Kjeldahl Nitrogen (Organic nitrogen, ammonia, and ammonium)
Fig. 1Laboratory scale RABRs. Each set of three RABRs represents a different organic carbon concentration, and all reactors are held at a constant temperature. This experimental design was replicated at three different temperatures, for a total of 27 different reactors. The rectangular base of each RABR contains 1 L of wastewater and the cylindrical portion of the reactors (76 mm diameter, 200 mm length) rotates at approximately 8 rpm. Biofilm accumulates on the cotton rope surface of the cylinder
Summary of the Analysis of Variance (ANOVA) results for the effect of temperature and organic carbon concentration on productivity of RABR based algae biofilm
| Source | Sum of squared deviations | Degrees of freedom | Mean square | F-Statistic |
|
|---|---|---|---|---|---|
| Temperature | 14.12 | 2 | 7.06 | 8.87 |
|
| TOC Concentration | 30.2 | 2 | 15.1 | 18.98 |
|
| Interaction | 0.88 | 4 | 0.22 | 0.28 |
|
| Error | 14.32 | 18 | 0.8 | ||
| Total | 59.52 | 26 |
Fig. 2Arrhenius plot of RABR productivity (g · m-2 day-1) as a function of temperature (K). The slope of the best fit line for each concentration represents where R = 8.314 J K − 1 mol − 1 and E was calculated (Table 3)
Temperature correction coefficients, activation energies, and constants of biofilm productivity and nutrient uptake at three levels of organic loading (TOC)
| Level of TOC (mg/L) | Symbol | 1200 | 600 | 300 |
|---|---|---|---|---|
| Biomass Productivity (g m-2 day-1) | K | 8.69 | 6.44 | 5.15 |
| Activation Energy (J K-1 mol-1) | Ea | 6473 | 9739 | 5440 |
| Temperature Correction Coefficient (unitless) | Θ | 1.0096 | 1.0145 | 1.0081 |
| Nitrogen Uptake Rate (mg m-2 day-1) | KN | 1.22 | 0.91 | 0.723 |
| Nitrogen Correction Coefficient (unitless) | ΘN | 1.0098 | 1.0151 | 1.0078 |
| Phosphorus Uptake Rate (mg m-2 day-1) | KP | 0.17 | 0.12 | 0.1 |
| Phosphorus Correction Coefficient (unitless) | ΘP | 1.0101 | 1.0149 | 1.0116 |
Fig. 3Areal biofilm productivity as a function of organic carbon concentration at three different temperatures. Error bars represent ± 95% confidence interval. n = 3 for each data point. n = 27 for entire system
Fig. 4Areal biofilm productivity (AFDW) as a function of temperature at three levels of organic loading. Error bars represent ± 95% confidence interval. n = 3 for each data point. n = 27 for entire system