Multi-Scale Numerical Analysis of the Field Efficiency of an Ocean Plastic Cleanup Array

Author:

Sainte-Rose Bruno1,Lebreton Laurent2,de Lima Rego Joao3,Kleissen Frank3,Reisser Julia1

Affiliation:

1. The Ocean Cleanup, Delft, Netherlands

2. The Modelling House, Wellington, New Zealand

3. Deltares, Delft, Netherlands

Abstract

The impact of plastic pollution on marine ecosystems and global economy has been drawing public concern since the end of the 20th century. To mitigate this issue, The Ocean Cleanup (TOC) Foundation is developing technologies to extract, prevent, and intercept plastic debris from coastal and oceanic environments. The core technology being optimized is the use of floating booms placed perpendicular to the main ocean plastic flow so it can concentrate plastic debris to a point where it can be extracted, shipped and processed in a cost-effective manner. In order to optimize the system’s field efficiency (i.e. mass of ocean plastic captured per length of floating boom), a multi-scale approach has been elaborated, where temporal and spatial scales span over several orders of magnitude. Here we introduce this general multi-scale method alongside its assumptions and multi-scale models. We then describe two application examples, the first corresponding to our coastal pilot in the Japanese island of Tsushima and the second related to our main cleanup target area: the so-called Great Pacific Garbage Patch, situated between Hawaii and the US west coast.

Publisher

American Society of Mechanical Engineers

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Philosophieren mit der philosophiedidaktischen Drehscheibe;Philosophische Bildung in Schule und Hochschule;2024

2. Design of actuator of marine garbage cleaning vessel based on ocean wave driving;Journal of Physics: Conference Series;2022-11-01

3. Floating Solid Waste Collection System Using Free Vortex Flow;Lecture Notes in Mechanical Engineering;2021

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