IEEE 3004 1-2013 en Recommended Practice for the Application of Instrument Transformers in Industrial and Commercial Power Systems《工业和商业电力系统中仪器互感器用IEEE推荐实施规程》.pdf
《IEEE 3004 1-2013 en Recommended Practice for the Application of Instrument Transformers in Industrial and Commercial Power Systems《工业和商业电力系统中仪器互感器用IEEE推荐实施规程》.pdf》由会员分享,可在线阅读,更多相关《IEEE 3004 1-2013 en Recommended Practice for the Application of Instrument Transformers in Industrial and Commercial Power Systems《工业和商业电力系统中仪器互感器用IEEE推荐实施规程》.pdf(48页珍藏版)》请在麦多课文档分享上搜索。
1、 IEEE 3004 STANDARDS:PROTECTION +1 978 750 8400. Permission to photocopy portions of any individual standard for educational classroom use can also be obtained through the Copyright Clearance Center. Copyright 2013 IEEE. All rights reserved. ivNotice to users Laws and regulations Users of IEEE Stand
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14、andards Association. Copyright 2013 IEEE. All rights reserved. viParticipants At the time this IEEE recommended practice was completed, the Protection and the secondary winding is connected to protective devices, instruments, meters, or control devices. Ideally, CTs change the magnitude of the curre
15、nt being measured without changing the phase angle or wave shape of the current. Practically, however, the output of CTs does contain some error and distortion, and dealing with these errors and distortion is one of the primary challenges in applying CTs. 4.1 Equivalent circuit for current transform
16、ers To understand the performance and application of CTs, it is necessary to start with an equivalent circuit. The circuit shown in Figure 1 is representative, although variations on this circuit may be found in various texts. Figure 1 Equivalent circuit for a CT In this equivalent circuit, Ipis the
17、 primary system current Isis the secondary current fed to the meters or relays N is the nominal turns ratio of the CT R+jZL is the impedance of the CT secondary winding and leads, and the secondary wiring to the loads (meters or relays) applied to the CT IEEE Std 3004.1-2013 IEEE Recommended Practic
18、e for the Application of Instrument Transformers in Industrial and Commercial Power Systems Copyright 2013 IEEE. All rights reserved. 4 Zbis the impedance of the load (meters or relays) Vsis the voltage across the CT secondary Ieis the exciting current drawn by the iron core of the CT There are seve
19、ral important relationships depicted in this equivalent circuit. First, the secondary current produced by the CT is not equal to the primary current, divided by the CT turns ratio. Instead, there is an error due to the need to supply exciting current to the CT core. This relationship can be expresse
20、d algebraically as eps INII (1) Secondly, the secondary voltage, Vs, is a function of the secondary current and the total secondary burden impedance, including both external elements (the impedances of meters, relays, and interconnecting wiring) and the internal impedance of the CT secondary winding
21、. LjRZIV bss Z (2) The third important relationship is that the exciting current, Ie, is a function of the CT secondary voltage, Vs. However, this is not a linear relationship, but rather is defined by a curve, called the CT secondary excitation characteristic, that represents the non-linear behavio
22、r of the iron core of the CT. Figure 2 depicts an idealized CT secondary excitation characteristic. Typically, the excitation characteristics are plotted on log-log paper. Therefore, even though some portions of the curve appear to be linear (i.e., a straight line), the relationship is actually non-
23、linear. Figure 2 Idealized CT secondary excitation characteristic The secondary excitation characteristic is derived from the hysteresis characteristic of the ferrous core of the CT. As Vsbecomes large, there comes a point when the CT essentially becomes unable to sustain further increases in Vs. Re
24、ferring to the equivalent circuit, further increases in Ip/N translate almost completely to increases in exciting current, Ie. At that point, the CT is said to be saturated. Practical secondary excitation characteristics are usually published by CT manufacturers in the form of excitation current ver
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