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Inactivation of Clostridium perfringens Spores in Anaerobically Digested Biosolids During BioElectroTM Disinfection Process

机译:在BioElectroTM消毒过程中厌氧消化的生物固体中的产气荚膜梭菌孢子失活

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摘要

Treatment of municipal liquid wastes generates immense quantities of sludges that demands environmentally safe disposal or reuse. The past 40 years have seen the emergence of an increasing desire worldwide to attenuate the disposal of biosolids to landfills and to promote the options of the agricultural application of this by-product as soil conditioner and fertilizer. Consequently, post-treatment steps are commonly required as a means to adapt biosolids to the requirements of environmental legislations. Conventional methods are not generally effective enough; hence, novel and emerging methods are continually being sought. udThis study was initiated to develop an eco-efficient process that produces a pathogen-free biosolids product which can be used beneficially for land applicationudto meet or better stringent public health and environmental concerns. To achieve this goal BioElectroTM, an enhanced 2D electric field process, was developed. The biosolids treatment experiments were performed at the average initial temperature, pH and ORP of 18°C, 8.17 and -57.3 mV, respectively. Clostridium perfringens spores in anaerobically digested biosolids were used as the bioindicator to assess the eficiency of BioElectroTM process. It was evident that electrical field intensityudbetween 2.5-2.8 (V/cm) was capable of reducing the number of viable C. perfringens spores below ceiling levels (>3 LRs). udFurthermore, the mechanism of disinfection during BioElectroTM process was evaluated. Statistically significant effects of electric field intensity (E) and applied enhancement agents were ascertained at each time interval using multiple linear regression (MLR). Moreover, the shape of inactivation curves resulting from theudBioElectroTM treatment showed a triphasic pattern, starting with a short linear part at low treatment times, followed by a shoulder or a lag period and finally a first-order inactivation kinetics. This was explained by effects of multiple stressors and mechanism of disinfection during the BioElectroTM treatment. Ultrastructural analyses using transmission electron microscope were performedudto investigate physiological changes in the fitness of treated spores. It was observed that electric field can be considered as an inducing factor in activating and con-udsequent germination of dormant spore, and that can be responsible for shoulder formation in survival curves.udAlso, an empirical model was developed by non-linear programming approach to quantify disinfection kinetics of BioElectroTM disinfection process. The proposedudmodel was able to predict the spore inactivation very accurately.
机译:处理城市液体废物会产生大量的污泥,需要对环境安全的处置或再利用。在过去的40年中,世界范围内出现了越来越多的需求,要求减少将生物固体运往垃圾填埋场,并促进将这种副产品作为土壤改良剂和肥料在农业上的应用。因此,通常需要后处理步骤,以使生物固体适应环境法规的要求。常规方法通常不够有效;因此,不断寻求新颖和新兴的方法。 ud开始这项研究的目的是开发一种生态高效的过程,该过程可生产出不含病原体的生物固体产品,该产品可有益地用于土地应用,从而满足或更严格的公共卫生和环境关注。为了实现这一目标,开发了增强型2D电场过程BioElectroTM。生物固体处理实验分别在平均初始温度,pH和ORP分别为18°C,8.17和-57.3 mV的条件下进行。厌氧消化的生物固体中的产气荚膜梭菌孢子被用作生物指示剂,以评估BioElectroTM工艺的效率。明显的是,电场强度在2.5-2.8(V / cm)之间能够减少低于上限水平(> 3 LRs)的产气荚膜梭菌孢子的数量。 ud此外,还评估了BioElectroTM过程中的消毒机理。使用多元线性回归(MLR)在每个时间间隔确定了电场强度(E)和施加的增强剂的统计学显着效果。此外, udBioElectroTM处理产生的失活曲线的形状呈三重模式,从低处理时间的短线性部分开始,接着是肩峰或滞后期,最后是一级失活动力学。这是由BioElectroTM治疗过程中多种压力源和消毒机制的作用所解释的。进行了使用透射电子显微镜的超微结构分析,以调查处理过的孢子适应性的生理变化。观察到电场可以被认为是激活和随后休眠孢子萌发的诱导因素,并且可以导致生存曲线中的肩部形成。 ud此外,还通过非线性编程建立了经验模型量化BioElectroTM消毒过程消毒动力学的方法。提出的 udmodel能够非常准确地预测孢子的失活。

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