ADVANCED MICROTURBINE SYSTEMS Final Report for Tasks 1 Through 4 and Task 6

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ADVANCED MICROTURBINE SYSTEMS Final Report for Tasks 1 Through 4 and Task 6 ( advanced-microturbine-systems-final-report-tasks-1-through-4 )

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vane and rotor was performed at the leading edge, mid span, and trailing edge of both the cT vane and cT blade to determine the amount of anticipated recession in 25,000 hours, with no EBC. For ease of understanding, the expected recession amounts are depicted in Figure 2.1.24. The calculations assumed that the blade temperature reached the hot gas temperature and that water vapor partial pressures were similar to those expected from combustion of natural gas. Although the trailing edge would see 0.006 to 0.008 inches of recession on the pressure side surface, recession amounts in the range of 0.030 inches are expected elsewhere, indicating that an EBC is still needed on the leading edge and pressure surfaces of the blade. Mid-chord line Leading edge 31 mils 8 mils Suction surface 1 mil 36 mils Pressure surface Trailing edge recession psi T°C Vel (mps) mils/25,000 hrs blade le 77.90 1014.06 105.39 31.16 ss 24.20 722.28 852.64 1.37 ps 72.50 997.78 216.42 35.58 te 41.10 845.56 635.34 7.79 Figure 2.1.24 Predicted cT blade recession over 25,000 hours of microturbine operation 2.1.4 Attachment Development for Silicon Nitride IBR The purpose of this task was to develop a ceramic to metal shaft attachment for attaching a silicon nitride IBR to both the radial compressor and the rearward air bearing system. Initial efforts focused on analysis of 2 designs, both derived from UTRC’s successful attachment technique for low use temperature silicon nitride starter turbines. The first is 41

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