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This paper shows proven possibility of using CFD for designing rotor type of recuperation systems.
The article shows the methodology of verification of CFD calculation for rotor type of recuperation based on Flakt Woods Eq system.
The motor, equipped with YBCO bulks as trapped field magnets and copper coils as armature windings, is an eight-poled synchronous motor of outer rotor type.
The quantity of collected EVs is affected by centrifuging speed and time, so these parameters must be optimized for each rotor type.
Table 1 Experimental rotors features Rotor type Rotor A Rotor B Number of blades 3 3 Blade airfoil NACA 4415 NACA 4415 Rotor diameter (D) (m) 0.45 0.225 Hub diameter (d) (m) 0.108 0.054 Rotational speed (n) (r/min) 1000 2450 Wind speed (V w) (m/s) 5 30 5–30 Tip speed ratio 1 7 1–7 On design power (W) 25 10 Chord (c) (m) Variable Variable Twist Variable Variable.
Consequently, different frequency domains were present, similar to experimental findings for mother rotor type VF (61).
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As an example, hydropower rotors are complex and largely rely on computational analysis of geometries for single rotor types.
A 12 kW vertical axis H-rotor type wind turbine has been designed and constructed at Uppsala University.
In this paper, we design an outer-rotor type multipolar switched reluctance (SR) motor, and examine an application of the SR motor to an electric vehicle (EV).
In particular, H-rotor type vertical axis wind turbines (VAWTs) are considered as one of the most attractive solutions due to simplicity and ease of manufacturing.
The aim of this work is to design and optimize the site specific H-rotor type VAWT using the blade element momentum theory (BEM) and a double multiple stream tube model.
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