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High temperature oxidation of copper and copper aluminium alloys: Impact on furnace side wall cooling systems.

机译:铜和铜铝合金的高温氧化:对炉侧壁冷却系统的影响。

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摘要

The high temperature oxidation behaviours of copper and dilute Cu-Al alloys were investigated. Experiments were carried out by: (i) Oxidizing under various oxygen potentials at different temperatures using a combined TG-DTA apparatus. (ii) Oxidizing in a muffle furnace (in air) at different temperatures for extended periods of time. The oxidation mechanisms were evaluated based upon the kinetic data obtained as well as by X-ray diffraction and microscopical (SEM and optical) analyses.; It was found that oxidation of copper strongly depends on the temperature. Two distinct mechanisms were encountered. Between 300 and 500°C, the oxidation rate is controlled by lateral growth of the oxide on the metal surface, whereas between 600 and 1000°C oxidation is controlled by lattice diffusion of copper ions through the oxide scale. On the other hand, the partial pressure of oxygen only has a small effect on the oxidation of copper.; Alloy oxidation is also dependent on the temperature. As temperature increases, more aluminium is required to protect copper from being oxidized. It was shown that if the amount of oxygen that dissolves in the alloy exceeds the solubility limit of oxygen in copper, an internal oxidation layer will develop, leading to the formation of a tarnishing scale. On the other hand if the oxygen content in the alloy lies below the solubility limit of oxygen in copper, no oxidation products will form since a tight protective alumina layer will form on the alloy surface. Surface phenomena may affect the oxidation behaviour of dilute Cu-Al alloys.; Immersion tests in molten copper matte and copper converting slag, using laboratory scale cooling elements with various copper based materials, were conducted. Results from these tests showed that alloying copper with 3 to 4 wt% Al decreases the oxidation rate of pure copper by 4 orders of magnitude; however due to a significant drop in thermal conductivity, the ability to extract heat is compromised, leading to possible failures. Composite coolers were also tested and although their thermal conductivity is limited, they still are able to extract heat at a considerable rate.
机译:研究了铜和稀铜铝合金的高温氧化行为。通过以下方法进行实验:(i)使用组合式TG-DTA设备在不同的氧气电位,不同的温度下进行氧化。 (ii)在马弗炉中(在空气中)在不同温度下长时间氧化。基于获得的动力学数据以及通过X射线衍射和显微镜(SEM和光学)分析来评估氧化机理。发现铜的氧化强烈地依赖于温度。遇到了两种不同的机制。在300至500°C之间,氧化速率由金属表面上氧化物的侧向生长控制,而在600至1000°C之间,氧化速率由铜离子通过氧化物垢的晶格扩散控制。另一方面,氧的分压对铜的氧化作用很小。合金的氧化也取决于温度。随着温度升高,需要更多的铝来保护铜免于氧化。已经表明,如果溶解在合金中的氧的量超过了氧在铜中的溶解度极限,则会形成内部氧化层,从而导致失去光泽的水垢的形成。另一方面,如果合金中的氧含量低于氧在铜中的溶解度极限,则不会形成氧化产物,因为会在合金表面形成紧密的保护性氧化铝层。表面现象可能会影响稀铜铝合金的氧化行为。使用带有各种铜基材料的实验室规模的冷却元件,对熔融铜哑光和铜转化炉渣进行了浸入测试。这些测试的结果表明,将铜与3至4 wt%的Al合金化可将纯铜的氧化速率降低4个数量级。但是,由于热导率的显着下降,吸热能力受到损害,可能导致故障。还对复合式冷却器进行了测试,尽管其导热系数受到限制,但它们仍然能够以相当高的速率吸收热量。

著录项

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 245 p.
  • 总页数 245
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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