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一种准确且可靠的强化污水污泥管道水流的方法。

An accurate and robust method for intensification of wastewater sludge pipe flow.

作者信息

Yousuf Noman, Kurukulasuriya Nimmi, Chryss Andrew, Rudman Murray, Rees Catherine, Usher Shane, Farno Ehsan, Lester Daniel, Eshtiaghi Nicky

机构信息

Chemical and Environmental Engineering, RMIT University, VIC 3000, Australia.

CSIRO Minerals Resources, Clayton, VIC 3168, Australia.

出版信息

Sci Total Environ. 2024 Nov 1;949:175143. doi: 10.1016/j.scitotenv.2024.175143. Epub 2024 Jul 29.

DOI:10.1016/j.scitotenv.2024.175143
PMID:39084373
Abstract

Globally, environmental impacts and population growth are driving the process intensification of wastewater treatment plants (WWTPs) via transition from conventional (2-3 wt% solids) to highly concentrated (4-6 wt% solids) wastewater sludges (HCWS). This presents an industrial challenge as HCWS are complex, non-Newtonian materials whose viscosity increases nonlinearly with solids concentration. This viscosity increase is particularly relevant for sludge pipe flow as it leads to considerable pumping pressure that ultimately limits the feasibility of pipe flow transportation. Hence, process intensification demands accurate prediction of HCWS turbulent pipe flow to design and optimise pumping infrastructure and piping systems. Such prediction requires accurate rheological characterisation of HCWS and numerical prediction of HCWS turbulent pipe flow, neither of which has been achieved to date due to respective limitations associated with benchtop rheometry and numerical turbulence models. We address these challenges by first developing accurate methods for rheological characterisation of HCWS via laminar flow of digested sludge at various solids concentrations (2-5 %) in a fully instrumented pipe loop facility at a large-scale WWTP. These rheological parameters are used in direct numerical simulation (DNS) computations (that avoid turbulence models) of turbulent pipe flow of HCWS. These predictions are then validated against turbulent flow pipe loop data. This method yields accurate (2-15 % error) predictions of HCWS turbulent pipe flow, compared with up to ∼75 % error for conventional pipe flow correlations. This validation highlights the need for accurate rheological characterisation and numerical simulation to predict HCWS pipe flow and provides a sound basis for the intensification and optimisation of WWTP pipeline systems.

摘要

在全球范围内,环境影响和人口增长正推动着污水处理厂(WWTPs)的工艺强化,即从传统的(固体含量2 - 3 wt%)向高浓度(固体含量4 - 6 wt%)废水污泥(HCWS)转变。这带来了一项工业挑战,因为HCWS是复杂的非牛顿材料,其粘度随固体浓度呈非线性增加。这种粘度增加对于污泥管道流动尤为重要,因为它会导致相当大的泵送压力,最终限制了管道流动输送的可行性。因此,工艺强化需要准确预测HCWS的湍流管道流动,以设计和优化泵送基础设施及管道系统。这种预测需要对HCWS进行准确的流变学表征以及对HCWS湍流管道流动进行数值预测,但由于与台式流变仪和数值湍流模型相关的各自局限性,迄今为止这两者都尚未实现。我们通过首先开发准确的方法来解决这些挑战,该方法通过在大型污水处理厂的全仪器化管道回路设施中,对不同固体浓度(2 - 5%)的消化污泥进行层流来对HCWS进行流变学表征。这些流变学参数被用于HCWS湍流管道流动的直接数值模拟(DNS)计算(避免使用湍流模型)。然后将这些预测结果与湍流管道回路数据进行验证。与传统管道流动相关性高达约75%的误差相比,该方法对HCWS湍流管道流动的预测误差为2 - 15%,较为准确。这种验证突出了准确的流变学表征和数值模拟对于预测HCWS管道流动的必要性,并为污水处理厂管道系统的强化和优化提供了坚实的基础。

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