Next Generation Engineered Materials for Ultra Supercritical Steam Turbines | |
Arrell, Douglas | |
Siemens Westinghouse Power Corporation | |
关键词: Alloys; Turbines; Electricity; Efficiency; Production; | |
DOI : 10.2172/896682 RP-ID : None RP-ID : FC26-04NT42232 RP-ID : 896682 |
|
美国|英语 | |
来源: UNT Digital Library | |
【 摘 要 】
To reduce the effect of global warming on our climate, the levels of CO{sub 2} emissions should be reduced. One way to do this is to increase the efficiency of electricity production from fossil fuels. This will in turn reduce the amount of CO{sub 2} emissions for a given power output. Using US practice for efficiency calculations, then a move from a typical US plant running at 37% efficiency to a 760 C /38.5 MPa (1400 F/5580 psi) plant running at 48% efficiency would reduce CO2 emissions by 170kg/MW.hr or 25%. This report presents a literature review and roadmap for the materials development required to produce a 760 C (1400 F) / 38.5MPa (5580 psi) steam turbine without use of cooling steam to reduce the material temperature. The report reviews the materials solutions available for operation in components exposed to temperatures in the range of 600 to 760 C, i.e. above the current range of operating conditions for today's turbines. A roadmap of the timescale and approximate cost for carrying out the required development is also included. The nano-structured austenitic alloy CF8C+ was investigated during the program, and the mechanical behavior of this alloy is presented and discussed as an illustration of the potential benefits available from nano-control of the material structure.
【 预 览 】
Files | Size | Format | View |
---|---|---|---|
896682.pdf | 1693KB | download |