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Prime-mover speed governors for interconnected systems

机译:互连系统的原动机调速器

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System operating requirements, from the standpoint of frequency and tie-line loading, are continually becoming more rigorous and receiving more widespread attention. Supplementary controls have been developed to assist in the solution of these problems — but the speed governors of the prime movers still constitute the backbone of system control. This paper outlines the general problems encountered; gives definitions of terms for both steam and hydro governors and discusses the performance characteristics of these two general classes of prime movers. As a result of discussions with several operating groups certain definite conclusions were reached for prime-mover governor characteristics on the larger systems, viz., dead band should be as small as practicable; uniform incremental regulation desirable; adjustable regulation not necessary; similar rates of response not necessary and accurate response to supplementary control desirable. These conclusions are supported by the analytical work presented in the companion paper.7 A summary of the reasoning supporting these conclusions under the subjects of stability, dead band, regulation, response, short circuits, and tie-line swings is included. Introduction During the past several years the interconnected power system has come into being and has expanded rapidly to the point where some of these systems now comprise several million kilovolt-amperes of connected capacity. Many problems have appeared and of these, two important and closely associated ones, speed and load control, have continued to receive increased attention. In most cases large portions of these systems are tied together by tie lines of relatively small capacity and as a result power flow across the ties must be carefully controlled. Frequency control is being widely used in varying degrees of refinement and automatic tie-line control is being used in more and more locations.1,12,13,14 The control associated with these two pro- lems is usually applied in the form of relatively slow supplementary adjustments to the normal action of the basic speed governors, which still constitute the backbone of system control. It is logical, then, as system operation becomes more refined and the requirements more rigorous, that more attention2,3,4 be given to the characteristics of the speed governing mechanisms. During this same period special instruments8,9,10 for accurately measuring small changes in system frequency have been developed and these instruments have been used to advantage by several groups in analyzing governor performance.
机译:从频率和联络线负载的角度来看,系统的运行要求越来越严格,受到越来越广泛的关注。已经开发了辅助控制来帮助解决这些问题,但是原动机的调速器仍然构成系统控制的基础。本文概述了遇到的一般问题。给出了蒸汽调速器和水力调速器的术语定义,并讨论了这两种原动机的性能特征。与数个工作组进行讨论的结果,对于较大系统上的原动机调速器特性得出了确定的结论,即死区应尽可能小。需要统一的增量调节;无需调节;不需要相似的响应率,而需要对补充控制的准确响应。这些结论得到随附文件中分析工作的支持。 7 在稳定性,死区,调节,响应,短路和联络线等主题下,支持这些结论的理由的摘要。包括秋千。引言在过去的几年中,互连的电源系统已经形成并迅速扩展,以致这些系统中的某些系统现在包含数百万千瓦安培的连接容量。出现了许多问题,其中速度和负载控制这两个重要且密切相关的问题继续受到越来越多的关注。在大多数情况下,这些系统的大部分通过容量相对较小的连接线连接在一起,因此必须小心控制连接线上的功率流。频率控制已广泛用于不同程度的改进,并且自动联络线控制正在越来越多的位置使用。 1,12,13,14 与这两个问题相关的控制是通常以相对缓慢的补充调整的形式应用于基本调速器的正常动作,这些仍然构成系统控制的基础。因此,顺理成章的是,随着系统操作变得越来越细化和要求越来越严格,对调速机构的特性给予更多的关注 2,3,4 。在同一时期,已经开发出用于精确测量系统频率微小变化的专用仪器 8,9,10 ,并且这些仪器已被多个小组利用来分析调速器性能。

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