The present invention relates generally to a compressor of a turbine engine, and more particularly to a starter/generator integrated into a compressor of a gas turbine engine.
Most integrated electric machines are built around the same design. A typical rotor assembly is secured to the turbine engine rotor and the stator supported by the bearing structure. These designs typically require additional space claim—resulting in a longer engine. The present invention employs existing structure in the compressor for additional functionality.
Prior systems employing the open rotor concept for power generation in the rotating reference include hub generator and shaft generator designs. A hub generator is an axial flux machine using contra-rotation of hubs to generate power. Non ideal diameter gives low utilization relative to the structure size. The design requires outer structure to act as containment. A shaft generator is a radial flux machine using high differential speed with respect to a sun gear to generate power. The design produces a hot environment that is likely to require an oil jacket and AOHE (air oil heat exchanger). There is also the risk of oil fire (machine or cable failures) which could split machines either side of the gearbox.
With the foregoing problems and concerns in mind, it is the general object of the present invention to provide a compressor section of a turbine engine which employs existing rotating machinery to generate needed electrical power as well as to start the turbine engine via a high pressure shaft.
In an aspect of the present invention, a turbine engine compressor comprises a rotor including rotating compressor discs. Magnets are positioned on the rotating compressor discs. Electrical coils are positioned in a stationary guide vane internal ring so as to create an electric machine providing starting torque to a rotor, and/or generating electrical energy once the rotor is rotating.
With reference to
An electrical coil 20 is disposed in the stationary frame 12, and more particularly in at least one of the plurality of vanes 14. As shown in
Electrical conductors 26 disposed within the stationary frame 12, and more particularly within the same vane as the coil 20 are coupled to each end of the coil. The electrical conductors 26 extend from the coil 20 in a direction radially outwardly from the axis of rotation 22 for easy electrical access.
With reference to
An electrical coil 120 is disposed in the stationary frame 112, and more particularly in at least one of the plurality of vanes 114. As shown in
Electrical conductors 126 disposed within the stationary frame 112, and more particularly within the same vane as the coil 120 are coupled to each end of the coil. The electrical conductors 126 extend from the coil 120 in a direction radially outwardly from the axis of rotation 122 for easy electrical access.
The product in which use of the present invention can be implemented is any and all new compressor designs and upgrades to existing engines. The present invention employs the existing rotating and stationary components of a turbine engine compressor section to produce electrical power generation. It is applicable to any turbomachinery.
Magnets are positioned preferably on the rotating compressor discs with the electrical coils positioned preferably in the stationary guide vane internal ring to create an electric machine capable of providing starting torque to the rotor, and/or generating electrical energy once the rotor is rotating.
The present invention employs existing rotating machinery to generate needed electrical power as well as to start the turbine engine via the high pressure shaft. There is a reduced need for gearbox mounted components. The present invention integrates starting and generating capabilities directly into the turbine engine compressor section. By positioning the magnets under the compressor interstage spacer, the present invention removes the need for the magnets to be structural members and employs the natural high strength materials in the existing rotor in the most efficient manner. The inventive concept can be implemented as a distributed electric machine that is over several compressor stages. The integrated starter/generator inventive concept allows for a symmetrical and/or smaller nacelle leading to lower drag and leading to lower SFC. The inventive concept also provides customers with a turnkey solution for prime power generation/propulsion requirements.
As will be recognized by those of ordinary skill in the pertinent art, numerous modifications and substitutions can be made to the above-described embodiments of the present invention without departing from the scope of the invention. Accordingly, the preceding portion of this specification is to be taken in an illustrative, as opposed to a limiting sense.