Research on modifying inverter controls in utility-scale renewables to emulate synchronous-generator voltages/currents under faults to retain existing protection infrastructure
研究修改公用事业规模可再生能源中的逆变器控制,以模拟故障下的同步发电机电压/电流,以保留现有的保护基础设施
基本信息
- 批准号:1936560
- 负责人:
- 金额:$ 45.17万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2020
- 资助国家:美国
- 起止时间:2020-01-01 至 2022-12-31
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
For combating the climate crisis, generating electricity from renewable resources, such as wind and solar, is essential. These resources are economical primarily in large scales and are often located far away from the metropolitan areas, hence need transmission lines. Protective relays are installed on these transmission lines to detect faults caused either by lighting or other short circuits, and disconnect faulted lines. The existing protection equipment is designed for electricity that is generated in power plants using conventional sources such as coal and natural gas. However, this protection infrastructure will not work with the existing control methods used in renewables-based generation. With many states opting to move towards hundred-percent generation by renewables, all existing protective relays will need to be replaced. The objective of the proposed research is to allow the existing protection equipment, such as relays, to continue to be used even as the electricity generation transitions from conventional sources to renewables, by controlling the renewable-based generation such that it emulates the conventional generation in the event of a fault. This will avoid incurring the huge cost of the system-wide upgrade of the protection infrastructure. The proposed approach is based on first determining the type of fault that has occurred and then to take appropriate action such that the existing relays perform as they do in the case of conventional sources. This research will be a very important step in keeping the cost of renewables low in order to enhance their penetration into the utility grid. It will be transformative in advancing knowledge in the critical field of protecting the transmission infrastructure and becoming a norm used by hardware equipment manufacturers. This research is at the intersection of power electronics, power systems, and controls, and will be very educational for the next generation of power engineers.The objective of this proposal is to find a solution to the real and immediate need to enhance the integration of utility-scale renewables. Existing inverters of utility-scale renewable resources, such as PVs and wind, are controlled to generate balanced three-phase currents even during unbalanced faults. However, to operate, the commonly-used protection relays depend upon unbalanced currents that are generated, such as by the synchronous generators of conventional power plants during unbalanced faults. With the increasing penetration of such inverter-based resources, toward the goal of hundred-percent renewables, the existing protection schemes will not work. The proposed research is on injecting appropriate unbalanced current during faults so that the use of the existing transmission-protection infrastructure continues, without having to incur the huge cost of the system-wide upgrade of the protection infrastructure. The proposed approach is based on first identifying the type of fault that has occurred and then to inject the appropriate currents to make the relays operate, knowing only the inverter terminal voltages and the transformer-winding configuration. The proposed control scheme is based on emulating the time-tested behavior of conventional generators during faults, thus requiring no modifications in the existing protection infrastructure, i.e., the inverters operate based solely based on local measurements. This research will thoroughly investigate and develop the control scheme by software emulation and hardware verification. The research will also examine the impact of this control on the inverter components. The aim of the technology transfer is that the control scheme becomes a norm that can be mandated by transmission-system owners and independent power producers, who in turn, would require it of inverter manufacturers.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
为了应对气候危机,利用风能和太阳能等可再生资源发电至关重要。这些资源主要是大规模经济的,并且通常远离大都市地区,因此需要输电线路。在这些输电线路上安装保护继电器,以检测由照明或其他短路引起的故障,并断开故障线路。现有的保护设备是为发电厂使用煤和天然气等传统能源发电而设计的。然而,这种保护基础设施将不适用于可再生能源发电中使用的现有控制方法。随着许多州选择转向100%可再生能源发电,所有现有的保护继电器都需要更换。拟议研究的目的是允许现有的保护设备,如继电器,继续使用,即使发电从传统来源过渡到可再生能源,通过控制可再生能源发电,使其在发生故障时模仿传统发电。这将避免全系统保护基础设施升级的巨额费用。所提出的方法是基于第一次确定已经发生的故障的类型,然后采取适当的行动,使现有的继电器执行,因为他们在传统的源的情况下。 这项研究将是保持可再生能源低成本的重要一步,以提高其在公用电网中的渗透率。它将在保护传输基础设施的关键领域推动知识的进步,并成为硬件设备制造商使用的规范。 这项研究是在电力电子,电力系统和控制的交叉点,并将是非常教育的下一代电力engineer.The本提案的目标是找到一个解决方案的真实的和迫切需要,以提高公用事业规模的可再生能源的整合。公用事业规模的可再生资源(如PV和风力)的现有逆变器被控制为即使在不平衡故障期间也能产生平衡的三相电流。然而,为了操作,常用的保护继电器依赖于在不平衡故障期间例如由常规发电厂的同步发电机产生的不平衡电流。随着这种基于逆变器的资源的日益普及,朝着百分之百可再生能源的目标,现有的保护计划将无法工作。拟议的研究是在故障期间注入适当的不平衡电流,以便继续使用现有的传输保护基础设施,而不必承担保护基础设施的系统范围升级的巨大成本。所提出的方法是基于第一次识别的类型的故障发生,然后注入适当的电流,使继电器操作,只知道逆变器端电压和变压器绕组配置。所提出的控制方案是基于模拟传统发电机在故障期间经过时间测试的行为,因此不需要修改现有的保护基础设施,即,逆变器仅基于本地测量来操作。本研究将借由软体模拟与硬体验证,深入探讨与发展控制方案。该研究还将研究这种控制对逆变器组件的影响。技术转让的目的是使控制方案成为传输系统所有者和独立电力生产商可以强制执行的规范,而这些所有者和独立电力生产商反过来又会要求逆变器制造商执行该规范。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
项目成果
期刊论文数量(0)
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Ned Mohan其他文献
A comparative evaluation of harmonic reduction techniques in three-phase utility interface of power electronic loads
电力电子负载三相市电接口谐波抑制技术对比评价
- DOI:
10.1109/ias.1993.299016 - 发表时间:
1993 - 期刊:
- 影响因子:0
- 作者:
Rastogi;Rajendra Naik;Ned Mohan - 通讯作者:
Ned Mohan
Improved Module Power and Loss Balancing Through Carrier-Reassignment PWM in a 17-Level CHB-Based EV Charger
通过基于 17 级 CHB 的 EV 充电器中的载波重新分配 PWM 改进模块功率和损耗平衡
- DOI:
10.1109/iecon51785.2023.10312218 - 发表时间:
2023 - 期刊:
- 影响因子:0
- 作者:
Little Pradhan;Renuka Varma;D. Venkatramanan;Prince Kumar;Ned Mohan;Abhijit Kshirsagar - 通讯作者:
Abhijit Kshirsagar
Ned Mohan的其他文献
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{{ truncateString('Ned Mohan', 18)}}的其他基金
Workshop of ECE Department Heads "Combating Climate Change: Can it also help the ECE Renaissance?". To be held at the University of Minnesota. April 19-20, 2019.
欧洲经委会部门负责人研讨会“应对气候变化:它也能帮助欧洲经委会复兴吗?”。
- 批准号:
1915952 - 财政年份:2019
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
Workshops for Facilitating Faculty to Teach Electric Energy Courses for Combating Climate Change. To Be Held at The University of Minnesota.
促进教师教授应对气候变化的电能课程的研讨会。
- 批准号:
1808160 - 财政年份:2018
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
Workshops on Reforming Graduate/Undergraduate Curriculum in Electric Energy Systems with Emphasis on Sustainability. To be held in 2015, 2016 and 2017.
以可持续发展为重点的电能系统研究生/本科生课程改革研讨会。
- 批准号:
1341336 - 财政年份:2013
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
ONR/NSF-Sponsored Workshops on Reforming Graduate/Undergraduate Curriculum in Electric Energy Systems
ONR/NSF 赞助的电能系统研究生/本科生课程改革研讨会
- 批准号:
1137653 - 财政年份:2011
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
Collaborative Research: An Innovative Instructional Strategy for Widespread Dissemination of Electric Energy Systems Curriculum as a Model in STEM Education
协作研究:广泛传播电能系统课程的创新教学策略,作为 STEM 教育的典范
- 批准号:
0942168 - 财政年份:2010
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
ONR/NSF-Sponsored Workshop: Reforming Electric Energy Systems Curriculum : 3 Workshops; 1st to be held in Wash, DC Feb 12-15 2009
ONR/NSF 赞助的研讨会:改革电能系统课程:3 个研讨会;
- 批准号:
0831058 - 财政年份:2008
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
Novel Control of Doubly-Fed Induction Generators for Wind Energy Systems Connected to Weak Grids
弱电网风能系统双馈感应发电机的新型控制
- 批准号:
0245550 - 财政年份:2003
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
State-of-the-Art Practices and Educational Materials for Revitalizing Power Electronics and Electric Drives Curricula
振兴电力电子和电力驱动课程的最先进实践和教材
- 批准号:
0231119 - 财政年份:2003
- 资助金额:
$ 45.17万 - 项目类别:
Continuing Grant
Faculty Workshop on Teaching of First Courses on Power Electronics and Electric Drives.
关于电力电子和电力驱动第一门课程教学的教师研讨会。
- 批准号:
0004201 - 财政年份:2001
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
A Novel, Cost-Effective, High Performance Utility Interface for Distributed Generation
用于分布式发电的新颖、经济高效、高性能实用程序接口
- 批准号:
0099880 - 财政年份:2001
- 资助金额:
$ 45.17万 - 项目类别:
Standard Grant
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