Kinetics of Cometabolic Transformation of 4-chlorophenol and Phenol Degradation by Pseudomonas putida Cells in Batch and Biofilm Reactors
Abstract
:1. Introduction
2. Description of Models
2.1. Kinetic Model for Phenol in Batch Reactor
2.2. Kinetic Model for 4-CP in Batch Reactor
2.3. Kinetic Model for Phenol Plus 4-CP in Batch Reactor
2.4. Conceptual Basis of Phenol and 4-CP Concentration Profiles in Biofilm Reactor
2.5. Kinetic Model for Cometabolic Biodegradation in Biofilm Reactor
3. Materials and Methods
3.1. Chemicals
3.2. P. putida Cells Inoculum
3.3. Mineral Salt Medium
3.4. Analytical Methods
3.5. Batch Experiments
3.6. Continuous-Flow Biofilm Bioreactor
4. Results and Discussion
4.1. Phenol Biodegradation and Cell Growth
4.2. 4-CP Transformation by Resting Cells
4.3. Phenol Degradation and 4-CP Transformation in Batch Experiments
4.4. Phenol Degradation and 4-CP Transformation in the Biofilm Process
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Symbol | Parameters Description (unit) | Value | Remarks |
---|---|---|---|
Reactor porosity (dimensionless) | 0.56 | measured | |
Shear-loss coefficient of biofilm (d−1) | 0.0564 | calculated | |
Total surface area of glass beads (cm2) | 1.384 × 104 | calculated | |
Effective diffusivity of phenol in the glass bead (cm2 d−1) | 0.759 | calculated | |
Effective diffusivity of 4-CP in the glass bead (cm2 d−1) | 0.689 | calculated | |
Mass-transfer coefficient of phenol (cm d−1) | 249.64 | calculated | |
Mass-transfer coefficient of 4-CP (cm d−1) | 233.91 | calculated | |
Self-inhibition constant of phenol (mg L−1) | 228.5 | calculated | |
Self-inhibition constant of 4-CP (mg L−1) | 53.4 | calculated | |
Half-saturation constant of phenol (mg L−1) | 78.38 | calculated | |
Half-saturation constant of 4-CP (mg L−1) | 1.048 | calculated | |
Competitive inhibition coefficient by phenol (mg L−1) | 6.75 | measured | |
Competitive inhibition coefficient by 4-CP (mg L−1) | 9.27 | measured | |
Influent flow rate (mL d−1) | 6.272 × 103 | measured | |
First-order endogenous decay rate (h−1) | 5.99 × 10−3 | calculated | |
True transformation capacity (mg 4-CP [mg cell] −1) | 4.34 | calculated | |
Concentration of phenol in the feed (mg L−1) | 200 | measured | |
Concentration of 4-CP in the feed (mg L−1) | 25 | measured | |
Effective working volume (mL) | 1.568 × 103 | measured | |
Maximum specific utilization rate of phenol (h−1) | 0.512 | measured | |
Maximum specific utilization rate of 4-CP (h−1) | 0.246 | measured | |
Initial biofilm thickness (cm) | 4 × 10−5 | assumed | |
Density of P. putida biofilm (mg mL−1) | 9.47 | calculated | |
Initial concentration of suspended P. putida cells in the reactor (mg L−1) | 6.83 | measured | |
Growth yield of cell on phenol (mg cell [mg phenol]−1) | 0.618 | measured |
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Lin, Y.-H. Kinetics of Cometabolic Transformation of 4-chlorophenol and Phenol Degradation by Pseudomonas putida Cells in Batch and Biofilm Reactors. Processes 2021, 9, 1663. https://doi.org/10.3390/pr9091663
Lin Y-H. Kinetics of Cometabolic Transformation of 4-chlorophenol and Phenol Degradation by Pseudomonas putida Cells in Batch and Biofilm Reactors. Processes. 2021; 9(9):1663. https://doi.org/10.3390/pr9091663
Chicago/Turabian StyleLin, Yen-Hui. 2021. "Kinetics of Cometabolic Transformation of 4-chlorophenol and Phenol Degradation by Pseudomonas putida Cells in Batch and Biofilm Reactors" Processes 9, no. 9: 1663. https://doi.org/10.3390/pr9091663
APA StyleLin, Y.-H. (2021). Kinetics of Cometabolic Transformation of 4-chlorophenol and Phenol Degradation by Pseudomonas putida Cells in Batch and Biofilm Reactors. Processes, 9(9), 1663. https://doi.org/10.3390/pr9091663