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Strategies to improve the performance of three-phase induction motor driven systems

机译:改善三相感应电动机驱动系统性能的策略

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摘要

Electric motor driven systems (EMODS) account for over 40% of global electrical energy demand, i.e., 7400 TWh per year, and for about 70% of the demand for industrial electrical energy, being by far the most important electrical load. Furthermore, EMODS offer today large efficiency improvement potential, on average within 20% to 30%. If the energy saving potential associated with EMODS becomes effective, the consumption of a huge amount of fossil fuels can be avoided. The greenhouse gas emissions can significantly be reduced at zero or even negative costs, since the efficiency improvement measures in EMODS are, in general, cost-effective. Therefore, EMODS can play a key role in helping many countries’ efforts to meet the post-Kyoto targets. This can strongly contribute to combat climate change and fossil fuel dependency of modern economies, providing that, at the same time, other measures are implemented, namely the promotion of renewable energies. If all EMODS were optimized, energy cost savings could reach 65-100 G€ per year worldwide and a huge amount of greenhouse gas emissions could be avoided. Nowadays, in the scope of world energy issues, the importance of the performance improvement of EMODS is evident. However, in most cases, the investment in energy efficiency is not yet a major concern in new plants or during refurbishment.This thesis is meant to be a contribution on that scope, offering several comprehensive overviews and novel contributions on different EMODS-related topics. Briefly, recent developments and strategies to improve the performance of EMODS integrating three-phase induction motors, which account for the largest majority of the industrial electric motors, are addressed, including technical, economical, and policy aspects. The focus is on the efficiency and reliability of EMODS, being discussed several related topics such as motor performance, variable-speed drives, power quality, mechanical transmission, and system design. The end-use or mechanical-load devices are not analysed in terms of intrinsic performance, although the speed variation impact on the respective required power is taken into account. Motor efficiency and life-cycle cost related aspects are analysed, and information regarding motor standards, eco-design and market transformation, is presented. The impact of motor speed variation and inverters on EMODS efficiency and reliability is also addressed, including a comparison between 2-level and 3-level voltage-source inverters. Regarding three-phase induction motors, useful methods for in-field motor load estimation are analysed, being proposed a number of improvements in some well-known methods. Novel considerations on stator winding specifications and connectionmode change, as a function of the motor actual operating conditions, for both two-connection (delta or star) and multi-connection motors, are presented, including the discussion of theoretical, simulation (motor models), and implementation issues. Regarding the stator winding connection-mode management, besides the general proposed methodology, it is also proposed a novel electronic device for that purpose. Methodologies for stator winding optimization and/or customization, particularly useful for the rewinding process, including a tutorial and a user-friendly stator winding redesign software to help rewinders to improve motor performance for each particular situation, are proposed. Due to its present relevance, power quality impact on line- and inverter-fed motors is also discussed. A number of considerations on motor and EMODS reliability, including a comprehensive and extensive analysis on bearing currents and on voltage transients associated with inverter-fed motors, are presented.The most important contributions were previously published in national and international journals and/or conference proceedings. Some of the topics addressed in this thesis are still under research and future publications on them are expected.
机译:电动机驱动系统(EMODS)占全球电能需求的40%以上,即每年7400 TWh,约占工业电能需求的70%,是迄今为止最重要的电能负载。此外,如今EMODS具有巨大的效率提升潜力,平均在20%到30%之间。如果与EMODS相关的节能潜力变得有效,则可以避免大量化石燃料的消耗。由于EMODS中的效率提高措施通常具有成本效益,因此可以以零甚至负成本的方式显着减少温室气体排放。因此,EMODS可以在帮助许多国家努力实现后京都目标方面发挥关键作用。如果同时采取其他措施,即促进可再生能源,这可以极大地有助于应对气候变化和现代经济对矿物燃料的依赖。如果对所有EMODS进行优化,全球每年可节省65-100 G€的能源成本,并可避免大量的温室气体排放。如今,在世界能源问题的范围内,提高EMODS性能的重要性显而易见。然而,在大多数情况下,对能源效率的投资仍不是新工厂或翻新过程中的主要问题。本论文旨在对该领域做出贡献,提供有关EMODS相关主题的多个综合概述和新颖贡献。简而言之,解决了包括三相感应电动机在内的改进EMODS性能的最新发展和策略,三相感应电动机在工业电动机中占最大比例,包括技术,经济和政策方面。重点是EMODS的效率和可靠性,并讨论了几个相关主题,例如电动机性能,变速驱动器,功率质量,机械传动和系统设计。尽管考虑了速度变化对相应所需功率的影响,但并未根据最终性能来分析最终用途或机械负载设备。分析了与电动机效率和生命周期成本相关的方面,并提供了有关电动机标准,生态设计和市场转型的信息。还解决了电动机速度变化和逆变器对EMODS效率和可靠性的影响,包括2电平和3电平电压源逆变器之间的比较。对于三相感应电动机,分析了用于现场电动机负载估算的有用方法,并提出了一些众所周知的方法的许多改进。提出了针对两种连接(三角形或星形)和多连接电动机的定子绕组规格和连接方式变化(取决于电动机实际运行条件)的新考虑,包括理论,仿真(电动机模型)的讨论,以及实施问题。关于定子绕组连接模式管理,除了一般提出的方法外,还为此目的提出了一种新颖的电子设备。提出了用于定子绕组优化和/或定制的方法,特别是对重绕过程有用的方法,包括一个教程和一个用户友好的定子绕组重设计软件,以帮助重绕器针对每种特殊情况提高电机性能。由于其当前的相关性,还讨论了电源质量对进线和逆变器供电的电动机的影响。提出了许多关于电机和EMODS可靠性的考虑因素,包括对与逆变器供电的电机相关的轴承电流和电压瞬变的全面而广泛的分析。 。本文中讨论的某些主题仍在研究中,预计将来会发表有关这些主题的文章。

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