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韩剑宏  倪文  江翰 《化工环保》2004,24(2):86-90
研究了低温条件下硬硅钙石二次粒子对UASB反应器污泥颗粒化的影响规律。结果表明,硬硅钙石二次粒子可保证厌氧初期细菌所需的碱度,提高系统的耐缓冲能力,有利于维持系统正常的挥发性脂肪酸浓度,促进高浓度颗粒化污泥的形成,提高处理效率。  相似文献   
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对硬硅钙石间歇培养颗粒污泥处理含铅废水进行了实验研究,通过单因素分析说明Pb2 、二次粒子投加量及颗粒污泥量三者间相互作用的最佳运行参数,结果表明,营养液为100 mL的条件下,污泥量为120 mL、铅浓度为60 mg/L、硬硅钙石投加量为4 g的条件下可保持颗粒污泥的活性,铅的去除率较高,为连续运行的反应器(容积负荷为18 g COD/L·d)提供了工艺条件.  相似文献   
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硬硅钙石二次粒子培养颗粒污泥并用于处理含铅废水进行了实验研究。结果表明 ,硬硅钙石二次粒子利于培养出高活性的颗粒污泥 ,颗粒污泥对含铅废水具有较高的去除能力 ,铅的去除率在 90 %以上。颗粒污泥的活性、温度和废水的含铅浓度是影响处理的主要因素 ,对其去除机理进行了分析。颗粒污泥处理Pb2 + ≤ 10 0mg/L的含铅试水 ,处理后的铅浓度达到排放标准。  相似文献   
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Xonotlite was synthesized and tested for phosphate removal and recovery from synthetic solution in a batch mode. The e ects of pH, initial calcium concentration, bicarbonate concentration on phosphate removal through crystallization were examined. The morphology and X-ray di raction (XRD) pattern of xonotlite before and after crystallization confirmed the formation of crystalline hydroxyapatite. The results indicated that the crystallization product had a very high P content (> 10%), which is comparable to phosphate rock at the dosage of 50–200 mg xonotlite per liter, with a maximum P content of 16.7%. The kinetics of phosphate removal followed the second-order reaction equation. The phosphate removal ability increased with increasing pH. The precipitation of calcium phosphate took place when pH was higher than 7.2, whereas the crystallization occurred at pH 6.0. A high calcium concentration could promote the removal of phosphate via crystallization, while a high bicarbonate concentration also enhanced phosphate removal, through that the pH was increased and thus induced the precipitation process. When xonotlite was used to remove phosphate from wastewater, the removal e ciency could reach 91.3% after 24 h reaction, with removal capacity 137 mg/g. The results indicated that xonotlite might be used as an e ective crystal seed for the removal and recovery of phosphate from aqueous solution.  相似文献   
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