An integrated PMU architecture for power system applications

dc.contributor.authorAalam, M.K.
dc.contributor.authorShubhanga, K.N.
dc.date.accessioned2026-02-04T12:27:56Z
dc.date.issued2022
dc.description.abstractTime synchronized phasors obtained using Phasor Measurement Units (PMU) spread across wide areas have revolutionized power system monitoring and control. These synchronized measurements must be accurate and fast in order to comply with the latest IEEE standards for synchrophasor measurements. The speed at which a PMU provides an output depends on the group delay associated with that PMU and the permissible group delay in-turn decides the utility of a PMU for either control or measurement application. Based on the group delay compensation techniques, in the literature, two individual types of PMUs, such as causal and non-causal PMUs have been introduced. This paper presents an approach where both causal and non-causal PMUs are combined in an integrated PMU architecture. This method not only illustrates the group delay performance of two PMUs in a single module, but also can be used for multiple functions. In this environment several PMU algorithms have been compared with respect to their group delays and their effect on the response time. Application of the integrated PMU architecture to a four-machine 10-bus power system has been demonstrated using a six-input PMU with three-phase voltage and current signals as inputs. Different causal compensation schemes are introduced due to the availability of voltage and current-based frequency and ROCOF signals. Impact of these compensation schemes on PMU accuracy is evaluated through the Total Vector Error (TVE) index. The influence of these compensation schemes on measurements like power and impedance is also investigated. Finally, outputs from the integrated PMU architecture are fed into a Power System Stabilizer (PSS) to control the small-signal stability performance of a power system during dynamic conditions. © 2021 Walter de Gruyter GmbH, Berlin/Boston.
dc.identifier.citationInternational Journal of Emerging Electric Power Systems, 2022, 23, 4, pp. 465-495
dc.identifier.issn1553779X
dc.identifier.issn21945756
dc.identifier.urihttps://doi.org/10.1515/ijeeps-2021-0151
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/22496
dc.publisherDe Gruyter Open Ltd
dc.subjectComputer architecture
dc.subjectElectric power system control
dc.subjectEnergy transfer
dc.subjectGroup delay
dc.subjectIEEE Standards
dc.subjectPhase measurement
dc.subjectCausal and non-causal phasor measurement unit
dc.subjectCompensation scheme
dc.subjectIEEE standard for synchrophasor measurement
dc.subjectIEEE standards
dc.subjectIntegrated phasor measurement unit architecture
dc.subjectPower
dc.subjectPower System Stabilizer
dc.subjectPower systems application
dc.subjectSynchrophasor measurements
dc.subjectWide area measurement system
dc.subjectPhasor measurement units
dc.titleAn integrated PMU architecture for power system applications

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