Author:
Bagheri-Sadeghi Nojan,Helenbrook Brian T.,Visser Kenneth D.
Abstract
Abstract. The design of a ducted wind turbine modeled using an actuator disc was
studied using Reynolds-averaged Navier–Stokes (RANS) computational fluid dynamics (CFD) simulations. The design
variables included the rotor thrust coefficient, the angle of attack of the
duct cross section, the radial gap between the rotor and the duct, and the
axial location of the rotor in the duct. Two different power coefficients,
the rotor power coefficient (based on the rotor swept area) and the total
power coefficient (based on the exit area of the duct), were used as
optimization objectives. The optimal value of thrust coefficients for all
designs was nearly constant, having a value between 0.9 and 1. The rotor
power coefficient was sensitive to rotor gap but was insensitive to the
rotor's axial location for positions ranging from upstream of the throat to
nearly half the distance down the duct. Compared to the design that maximized
rotor power coefficient, the design for maximal total power coefficient was
characterized by a smaller angle of attack, a smaller rotor gap, and a
downstream placement of the rotor. The insensitivity of power output to the
rotor position implies that a rotor placed further downstream in the duct
could produce the same power with a considerably smaller duct exit area and
thus a greater total power coefficient. The design for that maximized total
power coefficient exceeded Betz's limit with a total power coefficient of
0.67.
Funder
New York State Energy Research and Development Authority
Subject
Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment
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