频监控和控制在基于广域测量系统的电力系统恢复毕业论文外文翻译.doc
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1、外文资料翻译Frequency Monitoring and Control during Power System Restoration Based on Wide Area Measurement SystemFrequency control during power system restoration has not been strongly addressed. Operators are often concerned with the offline sizing of load and generation steps, but, nowadays, the introd
2、uction of Wide Area Measurement System (WAMS) makes it possible to monitor the stability of power system online. The constraints of WAMS operation result in some changes in power system frequency control. This paper proposes a novel methodology for frequency control and monitoring during the early s
3、teps of power system restoration based on WAMS. Detailed load modeling is achieved based on the static load modeling approach. Power generators modeling is also accomplished utilizing the single machine equivalent of the power system based on PMU measurements. Simulation results of the presented met
4、hodology on the 39 bus New England power system clearly show the effectiveness and applicability of the proposed method. The simulation results show that the presented approach has a completely acceptable precision and an outstanding speed with less than 0.05% error. The outstanding speed of the pre
5、sented approach along with the result precision will result in a great promotion in power system restoration methodologies.1. Introduction The problem of restoring power systems after a complete or partial blackout is as old as the power industry itself. Restoration of a power system after a system
6、blackout is a complex, delicate, and time-consuming problem 1.System restoration after total blackout requires coordination of units, loads and transmission system, and the associated characteristics. Furthermore, various constraints imposed in generating restoration plans must be considered 2.Nowad
7、ays, new technologies provide powerful new capabilities in areas such as largescale system analysis, communication and control, data management, artificial intelligence, and allied disciplines. Planning of power system restoration is a combinational problem 2. This issue also involves restrictions a
8、nd conditions that make it more complicated for operators to judge rendering it. A system to provide answers to this issue with sufficient speed which is appropriate for practical applications has not been developed with such conventional techniques as optimization algorithms.Quick restoration of po
9、wer system after a blackout is a significant part of system operation. In the early stages of power system restoration, the black start units are of the greatest interest because they will produce power for the auxiliaries of the thermal units without black start capabilities. The black start units
10、are usually those with combustion turbines or hydroelectric units 36.Frequency is an important parameter in power systems, and accurate real-time measured frequency is highly desirable to understand the dynamics of power systems. Throughout the power system restoration, very large steps of power gen
11、erators loading are prone to result in frequency protection trips and consequently, prolong the whole process of power system restoration.Operators are often concerned with the size of loading steps of power generators but nowadays, the introduction of Wide Area Measurement System (WAMS) which utili
12、zes pharos measurement units (PMUs) leads to online power system monitoring and control. Several major utilities have shown an interest in the synchronous phasor measurement technology application. These include Hydro-Qubec, American Electric Power, the New York Power Authority, Electricite de Franc
13、e (EDF), and many utilities of the Western Systems Coordinating Council (WSCC)such as Bonneville Power Administration (BPA) and Southern California Edison Company 7, 8.Based on the constraints of WAMS operation, power system frequency control differs from those of the older generations of power syst
14、em operation and control. The main tasks which can be fully accomplished through WAMS include early recognition of large and small signal instabilities and maximization of load restoration amount 9.It is necessary to make the frequency control system during power system restoration be more effective
15、, which requires the location and the magnitude of all generations and loads. During power system restoration, both generation and load profiles are constantly changing however the conventional approaches for frequency control and protection have only one set point for all scenarios. Offline power g
16、enerators loading optimization is a common practice for electric power utilities in order to prevent dangerous imbalance between load and generation and strong frequency deviations during power system restorations. Major drawback of conventional approaches for frequency control during power system r
17、estoration is that local protection devices do not have a system view, and, therefore, they are not able to take optimized and coordinated actions. Even in the case of frequency control and monitoring, in which the frequency itself is a system index, the actions are taken locally on predefined desig
18、n rules. Carrying out improper actions during power system restoration, especially in the early stages, will prolong the overall process. Generators loading is one of the most important parameters should be managed considering power system operational constraints, load characteristics, and so forth.
19、 Offline scheduling of generators load pickup could not guarantee that the actions will not cause further problems.A necessity exists to develop a frequency control and monitoring approach during power system restoration based on WAMS that can customize frequency control algorithms dynamically in re
20、sponse to any system condition. Proper coordination of power system operation characteristics, especially WAMS characteristics encountering power system frequency control and monitoring, and power system restoration planning is the main objective of the paper.This paper presents a systematic method
21、for power system frequency monitoring and control during power system restoration based on WAMS. The presented approach which consists of detailed load modeling and power generators loading optimization is to prevent dangerous imbalance between the load and generation and strong frequency deviations
22、 through power system restorations with a practically acceptable speed and accuracy. Compared with the conventional power system restoration approaches which utilize offline power generators loading optimization, the presented approach optimizes the generators loading just based on the current state
23、 of power system which results in a safe, smooth, and quick restoration.Utilization of WAMS provides the operation system prediction of a practically precise load and generation modeling; in order to achieve detailed load model, static load modeling approach is utilized. Power generators modeling is
24、 also accomplished utilizing the single machine equivalent of the power system based on PMU measurements. Such a high degree of precision in load and power generation modeling could not be achieved without using WAMS.Proper coordination of load and power generation models leads to a reasonable estim
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