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Chemo-physico-mechanical characteristics of corrosion products and their correlation with corrosion control in geothermal environments

Chemo-physico-mechanical characteristics of corrosion products and their correlation with corrosion control in geothermal environments
地热环境中腐蚀产物的化学物理机械特性及其与腐蚀控制的相关性
批准号:
2751709
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

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中文摘要
翻译
地热能是一种广泛认可的可再生能源,可在全球范围内提供可靠的基本负荷发电。提取地热水用作能源至关重要,其使用在世界范围内不断增加。开发可再生地热能源的一个问题是产生酸性盐水,这导致生产设备的过度腐蚀。这项研究将提高我们的基本理解,碳钢暴露于人工地热盐水的腐蚀行为和腐蚀机制的影响下溶解的二氧化碳在酸性条件下。工作的重点是表征和理解地热系统中形成的腐蚀产物的化学,物理和机械性能,并将其与为底层钢提供的保护程度相关联。该项目将涉及培训和使用高温高压系统(高压灭菌器),以模拟地热系统中遇到的恶劣条件。该项目将涉及使用电化学方法(即电化学阻抗谱法)监测腐蚀产物的形成,并确定其特性/对现场腐蚀机制的影响,以及真实的时间。这种详细的原位分析将通过一套非原位分析方法(断层扫描,XRD,显微镜)来支持,以全面了解腐蚀产物结构及其与钢基材保护的关系。
英文摘要
Geothermal energy is a widely recognised renewable energy resource that provides reliable base load generation worldwide. The extraction of geothermal water for use as an energy source is of paramount importance and its usage is increasing worldwide. A problem in exploiting renewable geothermal energy sources is the production of acidic brine, that leads to excessive corrosion of production equipment. This study will improve our fundamental understanding regarding the corrosion behaviour and the corrosion mechanism of carbon steel exposed to an artificial geothermal brine influenced by dissolved carbon dioxide under acidic conditions. The focus of the work is directed towards characterising and understanding the chemical, physical and mechanical properties of corrosion products that form in geothermal systems, and relating these to the degree of protection provided to the underlying steel. The project will involve the training and use of high temperature-high pressure systems (autoclaves) to replicate the harsh conditions encountered in geothermal systems. The project will involve use of electrochemical methods (namely, electrochemical impedance spectroscopy) to monitor the formation of corrosion products and determine their characteristics/influence on corrosion mechanisms in-situ, and in real time. This detailed in-situ analysis will be supported via a suite of ex-situ analytical methods (tomography, XRD, microscopy) to develop a comprehensive understanding of the corrosion product structure and its relationship to steel substrate protection.
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