Quantifying microplastic fluvial flux from a coastal watershed-A microplastic rating curve approach.

IF 8.4 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Clare Murphy-Hagan, Andrew B Gray, Samiksha Singh, Hannah Hapich, Win Cowger
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Abstract

As primary conveyers of dissolved and solid materials from the terrestrial to the marine sphere, rivers are dominant transport pathways for both natural and anthropogenic particles, including plastics. Given rising concern over the ubiquity, persistence, and harmful effects of plastics, it follows that researchers are modeling global microplastic fluvial fluxes in an effort to understand the source, transport, and fate of plastic in the environment. However, there are significant data gaps contributing to uncertainty in flux estimates, including selective particle bias introduced through collection methods, failure to account for flow-field variation, and poor characterization of concentrations across the discharge regime. Furthermore, these types of models do not translate well to the local watershed scale, where the potential utility of accurate flux data is the highest. To address this, we modeled the microplastic concentration-discharge behavior near the outlets of two tributaries to Upper Newport Bay, California, USA, using samples collected as part of a flow-integrated fluvial monitoring campaign. Representative microplastics concentrations collected from a range of flows were paired with streamflow discharges and fit with rating curves. By integrating over the 2021 Water Year discharge record, we calculated a total flux to the Bay of 23-41 billion microplastics and found that despite the infrequency of rainfall in the region, the majority of the total microplastic load was transported during stormflows at each site.

沿海流域微塑料河流通量的量化——微塑料评级曲线法。
作为从陆地到海洋的溶解和固体物质的主要运输工具,河流是包括塑料在内的自然和人为颗粒的主要运输途径。鉴于对塑料无处不在、持续存在和有害影响的日益关注,研究人员正在模拟全球微塑料河流通量,以努力了解塑料在环境中的来源、运输和命运。然而,存在重大的数据缺口,导致通量估算的不确定性,包括通过收集方法引入的选择性颗粒偏差,未能考虑流场变化,以及对整个排放状态浓度的描述不佳。此外,这些类型的模式不能很好地转化为当地流域尺度,在那里精确通量数据的潜在效用是最高的。为了解决这个问题,我们模拟了美国加利福尼亚州上纽波特湾两条支流出口附近的微塑料浓度-排放行为,使用了作为流量综合河流监测活动的一部分收集的样本。从一系列水流中收集的具有代表性的微塑料浓度与水流排放量配对,并与评级曲线拟合。通过整合2021年水年的排放记录,我们计算了流入海湾的230亿至410亿微塑料的总通量,并发现尽管该地区降雨频率不高,但每个地点的大部分微塑料总量都是在暴雨期间运输的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Environmental Management
Journal of Environmental Management 环境科学-环境科学
CiteScore
13.70
自引率
5.70%
发文量
2477
审稿时长
84 days
期刊介绍: The Journal of Environmental Management is a journal for the publication of peer reviewed, original research for all aspects of management and the managed use of the environment, both natural and man-made.Critical review articles are also welcome; submission of these is strongly encouraged.
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