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A Carbon Footprint Evaluation Method for Offshore Floating Wind Installations

机译:海上浮动风装置的碳足迹评估方法

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Carbon footprint is becoming increasingly important on the business agenda. For a floating wind project dedicated to providing clean energy, an engineering study was performed to present a case and gain additional knowledge on how to develop a green execution model related to the wind turbine substructure and mooring system. Emission calculations, sensitivity analysis, sourcing strategy development, material usage and transportation assessment were used to quantify the environmental benefits and carbon reduction of the various combinations and scenarios. The carbon footprint calculations and project execution method presented in this paper can be a reference for sustainable practices in future floating or conventional wind energy projects. The study showed that floating concrete substructure carbon footprint may be considered lower than a floating steel substructure. The mooring system, which is the same for both types of substructures, accounted for a significant portion of the carbon emissions. Logistics accounts for a large share of emissions: How and where goods are procured and transported are as important as the material selected. Locally fabricated items made from greener certified materials are preferred. Use of environmentally friendly concrete in substructure fabrication and suction anchors in glass reinforced plastic (GRP) are two typical examples of more sustainable approaches. Floating wind in combination with a green project execution model is a relatively new concept. Performance of the study showed that internal communication and promotion of carbon footprint awareness are essential for the project team's success. Emissions may deviate from what is initially anticipated. Moreover, it is vital to apply a green execution model to the establishment of cross-company communication and a focused task force. To ensure engagement from team members and reduce bureaucracy, positive reporting of carbon reduction considerations during project execution is recommended. This emphasizes the psychology of a team buy-in based on positive experiences and rewards for considering climate considerations.
机译:碳足迹对商业议程越来越重要。对于专用于提供清洁能源的浮动风力项目,进行了工程研究,以呈现案例并获得关于如何开发与风力涡轮机下部结构和系泊系统相关的绿色执行模型的额外知识。排放计算,敏感性分析,采购策略发展,材料使用和运输评估用于量化环境效益和碳减少各种组合和情景。本文提出的碳足迹计算和项目执行方法可以是未来浮动或传统风能项目中可持续实践的参考。该研究表明,浮动混凝土亚结构碳足迹可以被认为低于浮动钢结构。与两种类型的子结构相同的系泊系统,占碳排放的很大一部分。物流占据大量排放量:如何以及运输货物的采购和运输方式与所选材料一样重要。局部制造的物品优先于绿色认证材料。在玻璃增强塑料(GRP)中使用环境友好的混凝土和玻璃增强塑料(GRP)的吸入锚是更可持续的方法的两个典型例子。浮动风与绿色项目执行模型相结合是一个相对较新的概念。该研究的表现表明,内部沟通和促进碳足迹意识对项目团队的成功至关重要。排放可能偏离最初预期的内容。此外,将绿色执行模型应用于建立跨公司通信和集中的工作组至关重要。为确保团队成员参与并减少官僚主义,建议在项目执行期间的碳减排考虑的正面报告。这强调了基于积极经验和奖励的团队买入的心理学,以考虑气候考虑。

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