| Literature DB >> 26426032 |
Ranran Li1, Zhihong Zou2.
Abstract
An integrated approach using the inverse method and Bayesian approach, combined with a lake eutrophicationEntities:
Keywords: Bayesian approach; eutrophication; inverse method; water environmental capacity
Mesh:
Substances:
Year: 2015 PMID: 26426032 PMCID: PMC4626964 DOI: 10.3390/ijerph121012212
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
The posterior decay rate for TN (S, 1/a) and TP (S, 1/a) and their standard deviations (SD) and Monte Carlo (MC) errors of the Taihu Lake.
| 5% | 25% | Mean | 75% | 95% | SD | MC Error | |
|---|---|---|---|---|---|---|---|
| 1.728 | 1.805 | 1.861 | 1.914 | 2.0 | 0.08329 | 0.0003863 | |
| 4.148 | 4.464 | 4.698 | 4.918 | 5.32 | 0.3579 | 0.001441 |
Figure 1Model fitting results for TN (a) and TP (b) between observed data and simulated data with mean S, 5% and 95% credible level values of S.
Water quality Targets (annually average value (mg/L)) for TN and TP.
| 2015 | 2020 | |
|---|---|---|
| TN | 2.2 (inferiorV) | 2.0 (IV) |
| TP | 0.06 (IV) | 0.05 (III) |
Note: The figures in parentheses show that the corresponding water quality rank in GB3838-2002.
WEC and load reduction ratio of Taihu Lake in 2011.
| TN | TP | |||
|---|---|---|---|---|
| WEC (t/a) | Load Reduction Ratio | WEC (t/a) | Load Reduction Ratio | |
| 5% | 46743 | 19.87% | 1918 | 42.02% |
| 25% | 47494 | 18.59% | 2002 | 39.48% |
| Mean | 48040 | 17.65% | 2064 | 37.60% |
| 75% | 48556 | 16.76% | 2123 | 35.83% |
| 95% | 49394 | 15.33% | 2230 | 32.60% |
Figure 2ADC in 2015 and 2020 and corresponding reduction ratio at different confidence levels for TN (a) and TP (b).