1. An industrial gas turbine engine comprising:
a first compressor to produce a first compressed air with a first pressure;
a combustor to receive the first compressed air from the first compressor to burn with a fuel to produce a hot gas stream;
a turbine rotatably connected to the first compressor to receive the hot gas stream from the combustor;
the turbine having a stator vane with a cooling circuit;
a second compressor to produce a second compressed air with a second pressure;
a first passage to pass the second compressed air from the second compressor to the cooling circuit of the stator vane;
a second passage to pass the second compressed air from the turbine stator vane to the combustor; and,
the second pressure is greater than the first pressure.
2. The industrial gas turbine engine of claim 1, and further comprising:
the second compressor includes an intercooler to lower a temperature of the second compressed air.
3. The industrial gas turbine engine of claim 1, and further comprising:
an inlet to the second compressor is connected to a lower stage of the first compressor; and,
an intercooler is located between the first compressor and the second compressor to lower a temperature of the second compressed air.
4. The industrial gas turbine engine of claim 1, and further comprising:
a heat recovery steam generator to receive exhaust from the turbine of the gas turbine engine and produce steam to drive a second turbine that drives an electric generator;
a condenser to convert exhaust steam from the second turbine into water; and,
the second compressor having an intercooler that uses the water from the condenser to lower a temperature of the second compressed air.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A system for inspecting inner surfaces of cylindrical parts, comprising:
a plurality of cylindrical parts having different inner diameters, each of said cylindrical parts including an inner surface presenting said inner diameter and extending circumferentially around a center axis and longitudinally between opposite ends to present a bore,
a camera with a lens for acquiring images of said inner surface while said cylindrical part rotates 360 degrees about said center axis;
said lens of said camera being disposed outwardly of said cylindrical part;
said lens remaining in a fixed position while acquiring said images of said inner surface and while said cylindrical part rotates 360 degrees about said center axis and moves longitudinally along said center axis;
a light source disposed outwardly of said cylindrical part for directing light to said inner surface of said cylindrical part;
a mirror disposed in said bore of said cylindrical part at a predetermined and fixed position along said center axis while said cylindrical part rotates 360 degrees about said center axis and moves longitudinally along said center axis and while said camera acquires said images of said inner surface;
said mirror including a mirror surface being disposed at an angle relative to said inner surface for reflecting the light from said light source to said inner surface and from said inner surface to said lens of said camera;
said mirror surface being disposed in a fixed position on said center axis relative to said inner surface of said cylindrical part while said cylindrical part rotates 360 degrees about said center axis and moves longitudinally along said center axis;
said lens and said mirror surface remaining in a fixed position until said camera acquires images of the entire inner surface between said opposite ends of said cylindrical part, and
wherein said mirror is spaced from said camera by a first distance and spaced from said inner surface by a second distance, and a sum of said first distance and said second distance is fixed while said camera acquires images of said inner surfaces of each of said cylindrical parts.
2. A system as set forth in claim 1 wherein said camera includes a charge-coupled device for acquiring said images.
3. A system as set forth in claim 1 wherein each of said images is a line of pixels.
4. A system as set forth in claim 3 wherein each of said images are acquired at a predetermined circumferential location and a predetermined longitudinal position along said inner surface; and including an unwrapped display of said inner surface including each of said images arranged according to said predetermined circumferential locations and said predetermined longitudinal positions.
5. A system as set forth in claim 1 wherein said mirror surface faces generally toward said camera and is planar.
6. A system as set forth in claim 1 including an arm supporting said cylindrical part and moving said cylindrical part relative to said mirror and said camera while said camera acquires said images.
7. A system as set forth in claim 1 wherein said camera acquires images of said inner surface of each of said cylindrical parts.
8. A system as set forth in claim 1 wherein said fixed mirror surface does not rotate around said center axis.
9. A system as set forth in claim 1 wherein said light source remains in a fixed position while said cylindrical part rotates 360 degrees about said center axis and moves longitudinally along said center axis, and said light source remains in said fixed position until said camera acquires images of the entire inner surface between said opposite ends of said cylindrical part.
10. A method for inspecting an inner surface of cylindrical parts, comprising the steps of:
providing a plurality of cylindrical parts having different inner diameters, each of the cylindrical parts including an inner surface presenting the inner diameter and extending circumferentially around a center axis and longitudinally between opposite ends;
disposing a mirror in the cylindrical part at a predetermined and fixed position along the center axis;
disposing a mirror surface of the mirror at an angle and in a fixed position on the center axis relative to the inner surface;
directing light to the inner surface of the cylindrical part;
reflecting the light between the mirror and the inner surface;
disposing a lens of a camera outwardly of the cylindrical part for acquiring images of the inner surface;
acquiring a plurality of images of the inner surface of the cylindrical part while the cylindrical part rotates 360 degrees about the center axis;
maintaining the mirror surface and the lens in a fixed position while acquiring the images of the inner surface and while the cylindrical part rotates 360 degrees about the center axis and moves longitudinally along the center axis until the camera acquires images of the entire inner surface between the opposite ends of the cylindrical part;
repeating said steps for each of the cylindrical parts having different inner diameters;
fixing a sum of the distance between the camera and the mirror and the distance between the mirror and the inner surface; and
maintaining the sum of the distances the same while the camera acquires images of the inner surfaces of each of the cylindrical parts having different inner diameters.
11. A method as set forth in claim 10 wherein said acquiring a plurality of images includes for each image acquiring a line of single pixels.
12. A method as set forth in claim 11 including acquiring each of the images at a predetermined circumferential location along the circumference of the inner surface and a predetermined longitudinal position along the inner surface of the cylindrical part; arranging each of the images according to the predetermined circumferential locations and longitudinal positions; and generating an unwrapped display of the inner surface of the cylindrical part including the arranged images.
13. A method as set forth in claim 12 including automatically identifying defects on the inner surface of the cylindrical part using an image processing algorithm of the line images.
14. A method as set forth in claim 10 including rotating the cylindrical part 360 degrees about the center axis in a first predetermined longitudinal position along the center axis during said acquiring the images step.
15. A method as set forth in claim 14 including acquiring each of the images at a predetermined circumferential location around the circumference of the inner surface during said rotating step.
16. A method as set forth in claim 15 including moving the cylindrical part a predetermined distance longitudinally along the center axis to a second predetermined longitudinal position after said acquiring the images at the first predetermined longitudinal position.
17. A method as set forth in claim 16 including repeating said acquiring and said rotating and said moving steps until images are acquired for the entire inner surface of the cylindrical part.
18. A method as set forth in claim 10 including repeating said steps for each of the cylindrical parts.
19. A method as set forth in claim 10 including fixing the position of the camera relative to the mirror.
20. A method as set forth in claim 10 including cleaning the inner surface of the cylindrical part before said acquiring the images step.
21. A method as set forth in claim 10 wherein the fixed mirror surface does not rotate around the center axis.
22. A method as set forth in claim 10 wherein the camera remains in a fixed position while repeating said steps for each of the cylindrical parts.
23. A method as set forth in claim 10 including maintaining the light source in a fixed position while acquiring the images of the inner surface and while the cylindrical part rotates 360 degrees about the center axis and moves along the center axis until the camera acquires images of the entire inner surface between the opposite ends of the cylindrical part.