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Development of High-Strength and High-Electrical-Conductivity Aluminum Alloys for Power Transmission Conductors

机译:用于动力传动导体的高强度和高电导率铝合金的开发

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Using the current processing methods for aluminum conductors, any addition to mechanical strength negatively impacts their electrical conductivity (EC). This trade-off can be seen in common aluminum conductors such as AA1350-H19 which has a relatively high EC (~61% IACS), but low tensile strength (~180 MPa), as opposed to AA6201-T81 having a lower EC (~52.5%IACS) and higher tensile strength (~330 MPa). Presented in this work is the development of new low-cost, scalable 6000-series aluminum conductors with superior combination of mechanical strength and electrical conductivity. By optimizing the thermo-mechanical processing of the aluminum alloy, a synergetic strengthening from precipitation and strain hardening mechanisms is achieved, while the EC loss is minimized. The formation of the strengthening Mg-and Si-rich phase is significantly improved by controlling the Mg and Si concentrations as well as adding inoculant elements to accelerate precipitation kinetics, thus also increasing the alloy's strength. Two alloys stand out in particular: (i) Al-0.7 Mg-0.3Si-0.08Bi aged at 200 °C for 7 h (ultimate tensile strength = 426 MPa and EC = 52.7% IACS); and (ii) Al-0.7 Mg-0.3Si-0.01Sn aged at 200 °C for 4 h (ultimate tensile strength = 445 MPa and EC = 48.2%IACS).
机译:使用电流处理方法对于铝导体,对机械强度的任何添加产生负面影响它们的电导率(EC)。在普通的铝导体中可以看出,诸如AA1350-H19的常见铝导体(〜61%IACS),但抗拉强度低(〜180MPa),而不是具有下EC的AA6201-T81( 〜52.5%IACS)和较高的拉伸强度(〜330MPa)。在这项工作中提出是开发新的低成本,可伸缩的6000系列铝导体,具有卓越的机械强度和导电性的组合。通过优化铝合金的热机械加工,实现了沉淀和应变硬化机制的协同加强,而EC损耗最小化。通过控制Mg和Si浓度以及加入沉淀动力学的接种元件来显着改善强化Mg-&Si的相的形成,从而增加了合金的强度。两种合金特别脱颖而出:(i)Al-0.7mg-0.3si-0.08bi在200℃下老化7小时(极限拉伸强度= 426MPa和Ec = 52.7%IACS); (ii)Al-0.7mg-0.3si-0.01sn,在200℃下老化4小时(极限拉伸强度= 445MPa和Ec = 48.2%IACS)。

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