Biosynthesis of obligate adsorbent and its usage in adsorbing to eliminate As and Cr from water
A technology of microorganisms and deionized water, which is applied in the field of environmental engineering, can solve the problem that the adsorption capacity and selective adsorption capacity cannot be combined, and achieve the effects of fine particles, good sedimentation performance, and low energy consumption
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Embodiment 1
[0029] The biosynthesis of embodiment 1 Schwittmann's stone:
[0030] Add 6.95kg FeSO to the reactor 4 ·7H 2 O and 250L deionized water, stirring to dissolve the iron salt and adjusting the pH to 2.5 with sulfuric acid, inoculated with Thiobacillus ferrooxidans LX 5 ), so that its number reaches 10 7 ~10 8 per ml, under normal temperature and pressure (28±2°C and one standard atmospheric pressure), ventilate and stir for 1-3 days. The precipitate was collected by filtration, washed with deionized water acidified with sulfuric acid (pH1.0-3.0) for 2-3 times, and then rinsed with deionized water for 2-3 times until there was no SO in the filtered filtrate. 4 2- until. Bake at 55-80° C. for 2-3 hours to obtain 1.29 kg of dry product (the product is reddish-brown amorphous solid particles), with a yield of 54%.
[0031] The invention relates to microorganisms used for catalytic oxidation synthesis of Schwittmannite is Thiobacillus ferrooxidans LX 5 ), which is a strain pre...
Embodiment 2
[0033] Embodiment 2 Schwittman stone adsorption removes Cr(VI) in waste water
[0034] (1) Operation steps: add the adsorbent Schwittmannite to 5-1000mg Cr(VI) / L wastewater according to 0.5% of the treated water, and use 0.2-1.0mol / L dilute HNO 3 or NaOH to adjust the pH value of the Cr(VI) wastewater containing the adsorbent Schwittmannite to 7.0, shake (180r / min) or stir for 3h at constant temperature and pressure (28±2°C and one standard atmospheric pressure), and then sample and centrifuge Filter and measure the pH value and Cr(VI) concentration of the filtrate.
[0035] (2) Analysis of results: The pH value was measured with a precision digital pH meter [PHS-2TC (0.01)], and the Cr(VI) was measured with a diphenylcarbazide colorimetric method. According to the change of Cr(VI) concentration in the solution before and after the experiment, the removal rate and maximum adsorption capacity of Cr(VI) were calculated. After analysis and calculation, the maximum capacity of Sc...
Embodiment 3
[0037] Embodiment 3 Schwittman stone adsorption removes Cr(VI) in the wastewater where multiple ions coexist
[0038] (1) The influence of coexisting heavy metal ions on the adsorption and removal of Cr(VI):
[0039] According to 0.5% of the treated water, add the adsorbent Schwittmannite to the Zn containing 50mg / L 2+ 、Cu 2+ 、Cd 2+ And in electroplating wastewater with a concentration of 10-200mg / L Cr(VI), the main anion is SO 4 2- . Use 0.2~1.0mol / L dilute HNO 3 or NaOH to adjust the pH value of the wastewater containing the adsorbent Schwittmannite to 5.0, oscillate (rotate at 180r / min) or stir for 3 hours at constant temperature and pressure (28±2°C and one standard atmospheric pressure), take samples and centrifugally filter them, and use PE3100 Determination of Zn by Atomic Absorption Spectrophotometer 2+ 、Cu 2+ 、Cd 2+ The Cr(VI) content was determined by the diphenylcarbazide colorimetric method, and the adsorption removal rate and adsorption amount of heavy me...
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