| Literature DB >> 24860659 |
Abstract
The aim of the work is a description of the rheological behaviour of thickened sewage sludge. The sample of thickened sludge was collected from the wastewater treatment plant, where pressure flotation unit is used for a process of thickening. The value of dry matter of collected sample was 3.52%. Subsequently the sample was diluted and the rheological properties of individual samples were obtained. Several types of rheological tests were used for the determination of the sample. At first the hysteresis loop test was performed. The next test was focused on the time-dependency, i.e. measurement of dependence of dynamic viscosity on the time at constant shear rate. Further dependence dynamic viscosity on the temperature was performed. Then the activation energy was obtained from measured values. Finally, the hysteresis areas were counted and measured values were evaluated with use of Herschel-Bulkley mathematical model.Entities:
Keywords: Herschel-Bulkley; Mathematical model; Pressure flotation; Rheology; Sewage sludge
Year: 2014 PMID: 24860659 PMCID: PMC4013819 DOI: 10.1186/2052-336X-12-72
Source DB: PubMed Journal: J Environ Health Sci Eng
Figure 1Thickened sludge structure.
Figure 2Thickened sludge structure.
Description of samples
| A | Non-diluted |
| B | Diluted in rate 1:1 |
| C | Diluted in rate 1:2 |
| D | Diluted in rate 1:9 |
Base characteristics of measured samples
| A | 3.52 | 96.48 | 65.33 | 34.67 |
| B | 1.69 | 98.31 | 63.21 | 36.79 |
| C | 1.30 | 98.70 | 63.22 | 36.78 |
| D | 0.61 | 99.39 | 63.00 | 37.00 |
Figure 3Hysteresis loop of thickened sludge at various of dilutation rates – temperature 10°C.
Figure 4Hysteresis loop of thickened sludge at various of dilutation rates – temperature 20°C.
Figure 5Hysteresis loop of thickened sludge at various of dilutation rates – temperature 30°C.
Hysteresis area
| A | - 1323.05 | - 1272.96 | - 1211.56 |
| B | - 205.06 | - 203.23 | - 194 |
| C | - 104.21 | - 97.61 | - 94.62 |
| D | - 22.93 | - 20.04 | - 17.96 |
Figure 6Dependence of dynamic viscosity on the time at constant shear rate (50 s ) and at the constant temperature (10°C).
Figure 7Dependence of dynamic viscosity on the time at constant shear rate (50 s ) and at the constant temperature (20°C).
Figure 8Dependence of dynamic viscosity on the time at constant shear rate (50 s ) and at the constant temperature (30°C).
Evaluating Herschel-Bulkley model for non-diluted sewage sludge
| A | 10 | 0.98002 | 0.80686 | 3.1671 | 4.8647 | 0.38979 |
| 20 | 0.99519 | 0.35269 | 2.4858 | 4.1851 | 0.39726 | |
| 30 | 0.9945 | 0.3567 | ** | 5.4786 | 0.34439 | |
| B | 10 | 0.93507 | 0.25183 | 1.7391 | 0.15084 | 0.70647 |
| 20 | 0.99693 | 0.049395 | 1.2548 | 0.16706 | 0.66263 | |
| 30 | 0.99806 | 0.035527 | 1.2437 | 0.14173 | 0.67471 | |
| C | 10 | 0.98335 | 0.066535 | 0.65045 | 0.08747 | 0.68346 |
| 20 | 0.99873 | 0.01605 | 0.42062 | 0.12119 | 0.59243 | |
| 30 | 0.99184 | 0.036811 | 0.32042 | 0.18062 | 0.4988 | |
| D | 10 | 0.98472 | 0.016815 | 0.11033 | 0.00887 | 0.87658 |
| 20 | 0.97756 | 0.015108 | 0.19508 | 0.00048 | 1.4314 | |
| 30 | 0.94222 | 0.019159 | 0.21201 | 0.00005 | 1.8729 |
*relating to yield stress.
**makes no sense rheologically.
Activation energy of individual samples
| A | 0.9498 | 8871 |
| B | 0.9876 | 9411 |
| C | 0.9888 | 8389 |
| D | 0.9949 | 11556 |