DocumentCode :
1761363
Title :
Dynamic Thermal Modeling of MV/LV Prefabricated Substations
Author :
Degefa, Merkebu Z. ; Millar, R.J. ; Lehtonen, Matti ; Hyvonen, P.
Author_Institution :
Dept. of Electr. Eng., Aalto Univ., Aalto, Finland
Volume :
29
Issue :
2
fYear :
2014
fDate :
41730
Firstpage :
786
Lastpage :
793
Abstract :
With the expansion and infilling of urban areas, the demand for electric power is driving the design and capacity of distribution substations to their thermal limits. Distribution transformer substations are increasingly required to be compact, reliable, safe, and intelligent. To efficiently utilize city space and to support the intermittent load flows imposed by smart-grid features, such as distributed generation, the transformers are expected to operate close to or occasionally over their ratings, with stalled or little air circulation inside the safety enclosure. Dynamic thermal models with physically validated convection and radiation heat-transfer components are essential for the real-time thermal rating of substations. Natural convection via the air inside the cabin to the outside ambient air plays the major role in cooling down a transformer. In this study a scale model of a prefabricated substation is examined to draft a numerical solution which is based on stack ventilation principles. A clear and expandable first principle approach is used to quantify heat transfer through ventilation openings. Measurements from actual cabins and 3-D finite element method simulations are used to validate the numerical model.
Keywords :
cooling; electrical safety; finite element analysis; load flow; natural convection; smart power grids; transformer substations; ventilation; 3D finite element method; MV-LV prefabricated substation; cooling; distributed generation; distribution transformer substation; dynamic thermal model; dynamic thermal modeling; electric power demand; radiation heat-transfer components; real-time thermal rating; safety enclosure; smart-grid features; stack ventilation principle; Atmospheric modeling; Heat transfer; Oil insulation; Substations; Thermal resistance; Ventilation; Hot-spot temperature; indoor substation; natural ventilation; online monitoring; prefabricated substation; thermal rating;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2013.2276941
Filename :
6585846
Link To Document :
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