International Peer-Reviewed JournalOpen AccessISSN 2456-8880
irejournals@gmail.com+91-7433024337

Home / Current Issue / Paper 1709287

1709287PublishedVol 8 · Issue 12

Design and Development of Micro Phase Measurement Unit for Synchro-Phasor Measurement Used in The Next Generation Resilient Micro-Grid

Sufyaan Ashfaque Sayed Rohit Kiran Raut Dr. Rajendra R. Sawant Dr. Swati Lavand Prof. Harshal Gosavi

Subject area: Science,Engineering and Technology  ·  Area of research: Electrical and Electronics

Abstract

This paper introduces the design and implementation of a Micro Phase Measurement Unit (PMU) tailored for synchrophasor measurements, addressing the growing need for resilience in future microgrids[1]. The proposed device is constructed using the TMS320F28069M Launchpad from Texas Instruments, providing a space-efficient and effective solution ideal for distributed energy networks. To ensure precise time synchronization, the system incorporates an L89 NavIC receiver that generates a Pulse Per Second (PPS) signal, enabling accurate timestamping crucial for synchrophasor applications. Furthermore, bespoke software implementing Discrete Fourier Transform (DFT) and Fast Fourier Transform (FFT) algorithms has been created to measure and evaluate input current phasors in real-time. This integrated approach improves phase measurement accuracy and computational performance, which are vital for efficient monitoring and management of resilient microgrid operations. Empirical findings validate the viability and durability of the developed PMU, emphasizing its potential to support advanced grid functionalities and future resilient power systems.

Keywords

Phasor-Measurement, Micro-Grid, Gridresilience, Synchrophasor, Distribution Networks.

How to cite this paper

Sufyaan Ashfaque Sayed, Rohit Kiran Raut, Dr. Rajendra R. Sawant, Dr. Swati Lavand, Prof. Harshal Gosavi "Design and Development of Micro Phase Measurement Unit for Synchro-Phasor Measurement Used in The Next Generation Resilient Micro-Grid" Iconic Research And Engineering Journals Volume 8 Issue 12 2025 Page 1237-1242
Sufyaan Ashfaque Sayed, Rohit Kiran Raut, Dr. Rajendra R. Sawant, Dr. Swati Lavand, Prof. Harshal Gosavi "Design and Development of Micro Phase Measurement Unit for Synchro-Phasor Measurement Used in The Next Generation Resilient Micro-Grid" Iconic Research And Engineering Journals, vol. 8, no. 12, Jun. 2025
Sufyaan Ashfaque Sayed, Rohit Kiran Raut, Dr. Rajendra R. Sawant, Dr. Swati Lavand, Prof. Harshal Gosavi (2025). Design and Development of Micro Phase Measurement Unit for Synchro-Phasor Measurement Used in The Next Generation Resilient Micro-Grid. Iconic Research And Engineering Journals, 8(12).
Sufyaan Ashfaque Sayed, Rohit Kiran Raut, Dr. Rajendra R. Sawant, Dr. Swati Lavand, Prof. Harshal Gosavi "Design and Development of Micro Phase Measurement Unit for Synchro-Phasor Measurement Used in The Next Generation Resilient Micro-Grid" Iconic Research And Engineering Journals, vol. 8, no. 12, Jun. 2025.
@article{1709287,
      author = {Sufyaan Ashfaque Sayed, Rohit Kiran Raut, Dr. Rajendra R. Sawant, Dr. Swati Lavand, Prof. Harshal Gosavi},
      title = {Design and Development of Micro Phase Measurement Unit for Synchro-Phasor Measurement Used in The Next Generation Resilient Micro-Grid},
      journal = {Iconic Research And Engineering Journals},
      year = {2025},
      volume = {8},
      number = {12},
      pages = {1237-1242},
      issn = {2456-8880},
      url = {https://www.irejournals.com/formatedpaper/1709287.pdf},
      abstract = {This paper introduces the design and implementation of a Micro Phase Measurement Unit (PMU) tailored for synchrophasor measurements, addressing the growing need for resilience in future microgrids[1]. The proposed device is constructed using the TMS320F28069M Launchpad from Texas Instruments, providing a space-efficient and effective solution ideal for distributed energy networks. To ensure precise time synchronization, the system incorporates an L89 NavIC receiver that generates a Pulse Per Second (PPS) signal, enabling accurate timestamping crucial for synchrophasor applications. Furthermore, bespoke software implementing Discrete Fourier Transform (DFT) and Fast Fourier Transform (FFT) algorithms has been created to measure and evaluate input current phasors in real-time. This integrated approach improves phase measurement accuracy and computational performance, which are vital for efficient monitoring and management of resilient microgrid operations. Empirical findings validate the viability and durability of the developed PMU, emphasizing its potential to support advanced grid functionalities and future resilient power systems.},
      keywords = {Phasor-Measurement, Micro-Grid, Gridresilience, Synchrophasor, Distribution Networks.},
      month = {June},
  }