| Literature DB >> 27879817 |
Miloš B Rajkovic1, Caslav M Lacnjevac2, Nebojsa R Ralevic3, Mirjana D Stojanović4, Dragan V Tosković5, Gordana K Pantelic6, Nikola M Ristic7, Sasa Jovanic8.
Abstract
The analysis of water quality, regarding the content of metals, especially heavy and radioactive ones, has been carried out in an indirect way, by testing scale formed in a hot-water heater, using water from the water-supply network of the city of Belgrade - the district of New Belgrade. The determination of the composition and the structure of the scale has resulted in its complete identification, and its crystallochemical formula has been defined. It has unequivocally been established that the obtained results are within the tolerance boundary with the results acquired by a conventional analysis of water, when it is a matter of very low concentrations. The presence of radioactive elements of uranium and strontium in a scale sample has been found and the way of their penetrating its composition and structure has been explained. Applying the fractional extraction method, uranium has been established to be of an anthropogenic origin.Entities:
Keywords: Drinking water; X-ray diffraction analysis and gamma-spectrometry.; scale; scanning electron microscopy
Year: 2008 PMID: 27879817 PMCID: PMC3673413 DOI: 10.3390/s8042188
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
| Metal | Correction type | |
|---|---|---|
| Pb | D2 | 217.00 |
| Cd | 228.80 | |
| Cu | 324.75 | |
| Zn | 213.86 | |
| Ni | 232.00 | |
| Co | 240.73 | |
| Mn | 279.48 | |
| Fe | 248.30 | |
| Cr | 357.87 |
Results of the scale sample analysis.
| Calcium, as CaO | 48.90 | 104.85 | – | 200 |
| Magnesium, as MgO | 5.43 | 9.82 | – | 50 |
| Sodium, as Na2O | 0.034 | 0.076 | 16.4 | 150 |
| Potassium, as K2O | 0.0072 | 0.02 | 1.6 | 12 |
| Iron, as Fe2O3 | 0.084 | 0.18 | 0.02 | 0.05 |
| Manganese, as MnO | 20 ppm | 6 μg/dm3 | 2 μg/dm3 | 0.05 |
| Silicon, as SiO2 | 1.14 | 1.60 | – | – |
| Aluminium, as Al2O3 | 0.07 | 0.11 | – | – |
| Lead, as Pb | 0.0033 | 9.9 μg/dm3 | 9 μg/dm3 | 0.01 |
| Zinc, as Zn | 0.023 | 0.07 | 0.04 | 3.0 |
| Copper, as Cu | 0.134 | 0.40 | 7 μg/dm3 | 2.0 |
| Strontium, as Sr | – | – | – | 2.0 |
| Uranium, as U | 2.03 ppm | 0.609 μg/dm3 | – | – |
| Nickel, as Ni | 20 ppm | 6 μg/dm3 | 5 μg/dm3 | 20 μg/dm3 |
| Cadmium, as Cd | 6 ppm | 1.8 μg/dm3 | 1 μg/dm3 | 5 μg/dm3 |
| Chromium, as Cr | 10 ppm | 3 μg/dm3 | 3 μg/dm3 | 50 μg/dm3 |
| Mercury, as Hg | – | – | < 0.3 μg/dm3 | 0.01 |
| Arsenic, as As | – | – | 6 μg/dm3 | 0.01 |
| Cobalt, as Co | – | – | 4 μg/dm3 | – |
| Sulfur, as S | 0.14 | 0.42 | – | |
| Volatilisation loss at 1000°C | 44.01 | 132.03 | – | |
| Total amounts of inorganic substances in drinking water | 99.98 | 117.56 | 251.71 |
Figure 1.SEM photograph of the hot-water heater scale sample (magnification of 2.00 kx).
Figure 2.SEM photograph of the hot-water heater scale sample (magnification of 3.00kx).
Figure 3.SEM photograph of the hot-water heater scale sample (magnification of 3.50kx) Fractional extraction method for the determination of the uranium origin.
Content of uranium in the hot-water heater scale sample obtained from drinking water.
| Fraction I | Water-soluble and measurably adsorbed | < 0.01 | 0.0049 |
| Fraction II | Specifically adsorbed and bound to carbonates | 0.56 | 27.58 |
| Fraction III | Bound to manganese and iron oxides | 1.23 | 60.59 |
| Fraction IV | Bound to organic matter | < 0.01 | 0.0049 |
| Fraction V | Structurally bound to silicates | 0.24 | 11.82 |
Content, in %, individual fractions of total uranium content in the scale sample
Figure 4.Spectrum of the hot-water heater scale sample.
Measurement results of gamma-emitter activity concentration in the scale sample (in Bq/kg).
| 30.4 ± 5.2 | 1.5 ± 0.5 | 10.2 ± 1.7 | 1.1 ± 0.5 | < 1.1 | < 0.49 | < 0.15 |
Figure 5.X-ray diffractogram of the hot-water heater scale powder.
X-ray diffractogram of the scale powder.
| 1 | 4.2117 | 4.2201 | 1 1 0 | |
| 2 | 3.9877 | 3.9900 | 0 2 0 | |
| 3 | 3.8154 | 3.8101 | 01 1̄ 2 | |
| 4 | 3.7531 | 3.7530 | 1 0 1 | |
| 5 | 3.3967 | 3.3950 | 1 1 1 | |
| 6 | 3.2806 | 3.2719 | 0 2 1 | |
| 7 | 2.9987 | 3.0060 | 1 0 1̄ 4 | |
| 8 | 2.8002 | 2.8010 | 0 0 0 6 | |
| 9 | 2.6964 | 2.7330 | 1 2 1 | |
| 10 | 2.7009 | 2.7000 | 0 1 2 | |
| 11 | 2.6585 | 2.6600 | 0 3 0 | |
| 12 | 2.4798 | 2.4787 | 2 0 0 | |
| 13 | 2.4725 | 2.4780 | 1 1 2̄ 0 | |
| 14 | 2.4124 | 2.4121 | 0 3 1 | |
| 15 | 2.3720 | 2.3711 | 1 1 2 | |
| 16 | 2.3431 | 2.3434 | 1 3 0 | |
| 17 | 2.3297 | 2.3300 | 0 2 2 | |
| 18 | 2.2765 | 2.2760 | 2 0 1 | |
| 19 | 2.2619 | 2.2600 | 1 1 2̄ 3 | |
| 20 | 2.1891 | 2.1900 | 2 1 1 | |
| 21 | 2.1084 | 2.1084 | 1 2 2 | |
| 22 | 2.0749 | 2.0750 | 2 0 2̄ 2 | |
| 23 | 1.9770 | 1.9770 | 2 2 1 | |
| 24 | 1.9938 | 1.9930 | 0 4 0 | |
| 25 | 1.9505 | 1.9500 | 0 3 2 | |
| 26 | 1.9077 | 1.9080 | 0 2 2̄ 4 | |
| 27 | 1.9137 | 1.9140 | 0 0 3 | |
| 28 | 1.8835 | 1.8840 | 0 1 1̄ 8 | 0 4 1 |
| 29 | 1.8534 | 1.8540 | 1 1 1̄ 6 | |
| 30 | 1.8608 | 1.8610 | 0 1 3 | |
| 31 | 1.8765 | 1.8765 | 2 0 2 | |
| 32 | 1.8499 | 1.8499 | 1 4 0 | |
| 33 | 1.8266 | 1.8270 | 2 1 2 | |
| 34 | 1.8151 | 1.8150 | 1 3 2 | |
| 35 | 1.7422 | 1.7420 | 1 1 3 | |
| 36 | 1.7253 | 1.7260 | 0 2 3 | |
| 37 | 1.6112 | 1.6100 | 2 1 3̄ 1 | |
| 38 | 1.4898 | 1.4900 | 1 1 2̄ 9 | |
| 1 | 4.2117 | 4.2201 | 1 1 0 | |
| 2 | 3.9877 | 3.9900 | 0 2 0 | |
| 39 | 1.4000 | 1.4000 | 0 0 0 12 |
Parameters of the elementary cell Ǻ and the standard values.
| 4.945(2) | 4.9597(7) | 4.942 | 4.9896 | 4.962 | |
| –//– | 7.975(1) | –//– | –//– | 7.968 | |
| 16.80(1) | 5.7411(7) | 16.85 | 17.0610 | 5.743 | |
| 355.8(2) | 227.09(4) | 356.53 | 367.85 | 227.11 | |
| 3.0060 | 3.395 | 3.004 | 3.0355 | 3.397 | |
| 3.397 | 1.157 | 3.409 | 3.419 | 1.157 | |
Content of MgCO3 (mol %) in calcite based on the different crystallographic parameters.
| [ | Δ2θ | 9.20 |
| [ | Δ | 10.24 |
| [ | 10.50 | |
| [ | 11.92 | |
| [ | 10.72 | |
| [ | 10.90 | |
| [ | 12.70 | |
| [ | Vo | 10.20 |
| [ | Vo | 11.90 |
| [ | 12.20 | |
| Mean value MgCO3 (mol %) | ||
Content of FeCO3 and MnCO3 based on A2θ° i Δd(14).
| Δ2θ° [ | Δ20° | 0.995 | 1.90 | – |
| Δ | Δ | 0.03 | – | 1.80 |
Total content of Mg calcite and aragonite defined through different crystallographic parameters and the number of cations based on 6 atoms of oxygen (O).
| FeCO3 | 1.90 | – | Fe2+ | 0.032 | – |
| MnCO3 | 1.80 | – | Mn2+ | 0.031 | – |
| MgCO3 | 11.05 | – | Mg2+ | 0.258 | – |
| CaCO3 | 85.25 | 97.86 | Ca2+ | 1.678 | 1.970 |
| SrCO3 | – | 2.13 | Sr2+ | – | 0.030 |
| Σ | 100.0 | 99.99 | 1.999 | 2.000 |
Content of SrCO3, PbCO3 and BaCO3 (mol %) in aragonite depending on the parameters of the elementary cell.
| [ | ||
| 1.8 | 98.2 | |
| 2.8 | 97.2 | |
| 1.8 | 98.2 | |
| [ | ||
| 0 | 100 | |
| 0 | 100 | |
| 0 | 100 | |
| [ | ||
| 0 | 100 | |
| 0 | 100 | |
| 0 | 100 | |