4.4 Article

Impact of flow hydrodynamics and pipe material properties on biofilm development within drinking water systems

期刊

ENVIRONMENTAL TECHNOLOGY
卷 41, 期 28, 页码 3732-3744

出版社

TAYLOR & FRANCIS LTD
DOI: 10.1080/09593330.2019.1619844

关键词

Biofilm; biofouling; drinking water distribution; flow hydrodynamics; pipe material

资金

  1. Engineering and Physical Sciences Research Council studentship
  2. Natural Environment Research Council [NE/J011177/1]
  3. NERC [NE/F01600X/1, NE/J011177/1] Funding Source: UKRI

向作者/读者索取更多资源

The aim of this study was to investigate the combined impact of flow hydrodynamics and pipe material on biofilm development in drinking water distribution systems (DWDS). Biofilms were formed on four commonly used pipe materials (namely polyvinyl chloride, polypropylene, structured wall high-density polyethylene and solid wall high-density polyethylene) within a series of purpose built flow cell reactors at two different flow regimes. Results indicate that varying amounts of microbial material with different morphologies were present depending on the pipe material and conditioning. The amount of microbial biomass was typically greater for the biofilms conditioned at lower flows. Whereas, biofilm development was inhibited at higher flows indicating shear forces imposed by flow conditions were above the critical levels for biofilm attachment. Alphaproteobacteria was the predominant bacterial group within the biofilms incubated at low flow and represented 48% of evaluated phylotypes; whilst at higher flows, Betaproteobacteria (45%) and Gammaproteobacteria (33%) were the dominant groups. The opportunistic pathogens, Sphingomonas and Pseudomonas were found to be particularly abundant in biofilms incubated at lower flows, and only found within biofilms incubated at higher flows on the rougher materials assessed. This suggests that these bacteria have limited ability to propagate within biofilms under high shear conditions without sufficient protection (roughness). These findings expand on knowledge relating to the impact of surface roughness and flow hydrodynamics on biofilm development within DWDS. [GRAPHICS] .

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