NUMERICAL SIMULATION FOR OPTIMISING OF INLET AND OUTLET POSITIONS FOR MECHANICAL VENTILATION AND HEAT DISSIPATION A Case Study to Improve Ventilation in an Indoor 110 kV Substation

Haomai Zhang, Ling Wang, Peng Yang*, Yingwen Liu*, Chao Zhu, Lv Wang, Hua Zhong

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

Efficient ventilation and heat dissipation in indoor substations are crucial for the stable operation of transformers. This study investigates the impact of inlet and outlet positions on ventilation and heat dissipation performance in a 110 kV indoor substation using CFD. A model of the 110 kV main transformer chamber is developed. Twelve combinations of inlet and outlet positions are analysed. Inlet positions include side walls parallel to radiators, side walls perpendicular to radiators and both side walls perpendicular to radiators. Outlet positions include the top of the chamber, the side of the inlet, adjacent to the inlet, and opposite inlet. Results demonstrate that locating outlets at the top of the chamber reduces transformer temperature by 0.5–1.6 ℃ and increases energy utilization by 8.6%–24.8% regardless of inlet position. Two opposite inlets perpendicular to radiators allows even air distribution between radiators. This configuration reduces transformer temperature by 3.4 °C when the outlet is located at the top of the chamber. Overall, the optimal ventilation design involves top chamber outlets and inlets on opposite walls perpendicular to radiators.

Original languageEnglish
Pages (from-to)4545-4563
Number of pages19
JournalThermal Science
Volume28
Issue number6
DOIs
Publication statusPublished - 2024
Externally publishedYes

Keywords

  • CFD
  • heat dissipation
  • indoor substation ventilation
  • inlet and outlet positions
  • transformer cooling

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