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Preliminary Analysis for an Optimized Oil-Free Rotorcraft Engine Concept
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Recent developments in gas foil bearing technology have led to numerous advanced high-speed rotating system concepts, many of which have become either commercial products or experimental test articles. Examples include oil-free microturbines, motors, generators and turbochargers. The driving forces for integrating gas foil bearings into these high-speed systems are the benefits promised by removing the oil lubrication system. Elimination of the oil system leads to reduced emissions, increased reliability, and decreased maintenance costs. Another benefit is reduced power plant weight. For rotorcraft applications, this would be a major advantage, as every pound removed from the propulsion system results in a payload benefit.
Implementing foil gas bearings throughout a rotorcraft gas turbine engine is an important long-term goal that requires overcoming numerous technological hurdles. Adequate thrust bearing load capacity and potentially large gearbox applied radial loads are among them. However, by replacing the turbine end, or hot section, rolling element bearing with a gas foil bearing many of the above benefits can be realized. To this end, engine manufacturers are beginning to explore the possibilities of hot section gas foil bearings in propulsion engines. This paper presents a logical follow-on activity by analyzing a conceptual rotorcraft engine to determine the feasibility of a foil bearing supported core. Using a combination of rotordynamic analyses and a load capacity model, it is shown to be reasonable to consider a gas foil bearing core section.
Title: Preliminary Analysis for an Optimized Oil-Free Rotorcraft Engine Concept
Description:
Recent developments in gas foil bearing technology have led to numerous advanced high-speed rotating system concepts, many of which have become either commercial products or experimental test articles.
Examples include oil-free microturbines, motors, generators and turbochargers.
The driving forces for integrating gas foil bearings into these high-speed systems are the benefits promised by removing the oil lubrication system.
Elimination of the oil system leads to reduced emissions, increased reliability, and decreased maintenance costs.
Another benefit is reduced power plant weight.
For rotorcraft applications, this would be a major advantage, as every pound removed from the propulsion system results in a payload benefit.
Implementing foil gas bearings throughout a rotorcraft gas turbine engine is an important long-term goal that requires overcoming numerous technological hurdles.
Adequate thrust bearing load capacity and potentially large gearbox applied radial loads are among them.
However, by replacing the turbine end, or hot section, rolling element bearing with a gas foil bearing many of the above benefits can be realized.
To this end, engine manufacturers are beginning to explore the possibilities of hot section gas foil bearings in propulsion engines.
This paper presents a logical follow-on activity by analyzing a conceptual rotorcraft engine to determine the feasibility of a foil bearing supported core.
Using a combination of rotordynamic analyses and a load capacity model, it is shown to be reasonable to consider a gas foil bearing core section.
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