Wind energy devices, systems, and methods
Abstract
Wind energy systems and devices comprise a nacelle, a rotor driven alternator housed in the nacelle, a rotor connected to the alternator, and a load control system in communication with the alternator. The rotor includes a rotor hub and three or more rotor blades, and each blade has a foil shape and is connected to the rotor hub by a full foil attachment mechanism. The alternator is configured to operate at low rpm and to increase rotation speed without a step-up mechanism. The load control system is configured to anticipate changes in wind speed and adjust alternator load such that when wind speed increases the load control system adjusts the alternator load to optimize rotor rpm and optimize tip-speed ratio.
Claims
exact text as granted — not AI-modified1 . A wind energy system comprising:
a nacelle; a rotor driven alternator housed in the nacelle; a rotor connected to the alternator, the rotor including a rotor hub and three or more rotor blades, each blade being connected to the rotor hub; and a load control system in communication with the alternator, the load control system configured to anticipate changes in wind speed and adjust alternator load such that when wind speed increases the load control system adjusts the alternator load to optimize rotor rpm and optimize tip-speed ratio.
2 . The wind energy system of claim 1 wherein the load control system adjusts the alternator load by reducing magnetic field strength of the alternator.
3 . The wind energy system of claim 1 wherein the load control system includes an overload protection system configured to anticipate and monitor for overload conditions.
4 . The wind energy system of claim 3 wherein when the overload protection system detects an overload condition the overload protection system manages alternator excitation, rotor rpm, rotor pitch, rotor azimuth, and/or lay down.
5 . The wind energy system of claim 4 wherein the overload protection system manages alternator excitation, rotor rpm, rotor pitch, rotor azimuth, and/or lay down by negating power.
6 . The wind energy system of claim 1 further comprising a mast, the nacelle being mounted to the mast.
7 . The wind energy system of claim 1 further comprising an anemometer in communication with the load control system.
8 . The wind energy system of claim 1 wherein the three or more rotor blades comprise five rotor blades.
9 . The wind energy system of claim 1 wherein each rotor blade has a foil shape and is connected to the rotor hub by a full foil attachment mechanism.
10 . The wind energy system of claim 1 wherein the alternator is configured to operate at low rpm and to increase rotation speed without a step-up mechanism.
11 . A wind energy system comprising:
a nacelle; a rotor driven alternator housed in the nacelle, the alternator being configured to operate at low rpm and to increase rotation speed without a step-up mechanism; a rotor hub connected to the alternator; three or more rotor blades, each blade being connected to the rotor hub; and a load control system in communication with the alternator, the load control system configured to anticipate changes in wind speed and adjust alternator load.
12 . The wind energy system of claim 11 wherein the alternator includes one or more field coils.
13 . The wind energy system of claim 11 wherein the alternator includes 48 poles.
14 . The wind energy system of claim 11 wherein the alternator is configured to operate at about 50-160 rpm.
15 . The wind energy system of claim 11 wherein the alternator defines an air gap of about 10/1000 inches.
16 . The wind energy system of claim 11 wherein when wind speed increases the load control system adjusts the alternator load to optimize rotor rpm and optimize tip-speed ratio.
17 . A wind energy system comprising:
a nacelle; a rotor driven alternator housed in the nacelle; a rotor hub connected to the alternator; three or more rotor blades, each blade having a foil shape and being connected to the rotor hub by a full foil attachment mechanism; and a load control system in communication with the alternator, the load control system configured to anticipate changes in wind speed and adjust alternator load.
18 . The wind energy system of claim 17 wherein the full foil attachment mechanism is a slipper fitting defining a shape corresponding to the foil shape of each blade.
19 . The wind energy system of claim 18 wherein the foil shape extends substantially the entire length of each blade.
20 . The wind energy system of claim 17 wherein the three or more rotor blades comprise five rotor blades.Join the waitlist — get patent alerts
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