Abstract
The paper presents a general approach to the steady-state efficiency analysis of one degree of freedom (1-DOF) speed increasers with one or two inputs, and one or two outputs, applicable to wind, hydro and marine-current power generating systems. The mechanical power flow, and the efficiency of this type of complex speed increasers, are important issues in the design and development of new power-generating systems. It is revealed that speed increases, with in-parallel transmission of the mechanical power from the wind or water rotors to the electric generator, have better efficiency than serial transmissions, but their efficiency calculus is still a challenging problem, solved in the paper by applying the decomposition method of complex speed increasers into simpler component planetary gear sets. Therefore, kinematic, steady-state torque and efficiency equations are derived for a generic 1-DOF speed increasers with two inputs and two outputs, obtained by connecting in parallel two gear mechanisms. These equations allow any speed increaser to be analysed with two inputs and one output, with one input and two outputs, and with one input and one output. We discuss a novel design of a patent-pending planetary-gear speed increaser, equipped with a two-way clutch, which can operate (in combination with the pitch adjustment of the rotors blades) in four distinct configurations. It was found that the mechanical efficiency of this speed increaser in the steady-state regime is influenced by the interior kinematic ratios, the input-torque ratio and by the meshing efficiency of its individual gear pairs. The efficiency of counter-rotating dual-rotor systems was found to be the highest, followed by systems with counter-rotating electric generator, and both have higher efficiency than conventional systems with one rotor and one electric generator with fixed-stator.
Highlights
Among the renewable energy technologies, hydro and wind energy conversion systems currently have the largest share of electrical power generation worldwide [1,2]
The paper proposes a generic class of 1-DOF transmissions, with two inputs and two outputs, employing two planetary gear mechanisms connected in parallel
The input-output torque ratio kt > 0 is controlled by the blade-pitch angle of either or both rotors R1 and R2, while the clutch is set to connect carrier H to GS; Variant V2: a system with two inputs and one output (L = 3), in which the output is connected to the electric-generator rotor GR, and stator GS is fixed by the clutch as shown in Figure 4b-right; Variant V3: a system with one input and two outputs (L = 3), obtained from V1 by deactivating the secondary rotor R2; of 18
Summary
Among the renewable energy technologies, hydro and wind energy conversion systems currently have the largest share of electrical power generation worldwide [1,2]. Have resorted to a wide variety of innovative solutions of speed increasers, such as variable such as variable transmissions [23], differential transmissions with electric motor speed control [24], transmissions [24], or novel planetary or novel planetary gears [25,26,27,28] In spite of their larger size and lower efficiency, compared to their gears [25,26,27,28]. The paper proposes a generic class of 1-DOF transmissions, with two inputs and two outputs, employing two planetary gear mechanisms connected in parallel. The performance study of the transmission is outlined in this paper by using bivariate plots
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