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OPERATING CHARACTERISTICS OF AN ELECTRICALLY ASSISTED TURBOFAN ENGINE

机译:电辅助涡轮机发动机的操作特性

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With the growing pressure to reduce the environmental footprint of aviation, new and efficient propulsion systems must be investigated. The current research looks at the operating characteristics of a turbofan engine in a parallel hybrid-electric propulsion system. Electric motors are used to supply power in the most demanding take-off and climb phases to achieve the required thrust, which allows the turbofan to be redesigned to maximize the cruise performance (to some extent). It was found that the turbofan's cruise efficiency can be improved by 1.0% by relaxing the constraints of take-off and climb. It was found that the surge margins of compressors limit the amount of power that could be electrically supplied. On a short-range mission, the hybrid-electric propulsion system showed a potential to reduce around 7% of fuel burn on an A320 class aircraft. Most of these savings are however achieved due to fully electric taxiing. The weight of the electrical propulsion system largely offsets the efficiency improvements of the gas turbine during cruise flight. A system dedicated for fully electric taxiing system could provide similar savings, at less effort and costs. Given the optimistic technology levels used in the current analysis, parallel hybrid-electric propulsion is not likely to be used in the next-generation short to medium range aircraft.
机译:随着越来越大的压力,以减少航空对环境的影响,新的,有效的推进系统,必须予以追究。目前的研究长相在涡轮风扇发动机中的并联混合动力电动推进系统的操作特性。电动马达被用于供给功率在最苛刻的起飞和爬升阶段达到所需的推力,这允许涡轮风扇被重新设计以最大化巡航性能(在一定程度上)。人们发现,涡轮风扇的巡航效率可以通过1.0%通过放松起飞和爬升的限制得到改善。已发现,压缩机的喘振裕度限制所能电供应的电力的量。在短距离的使命,在混合动力电动推进系统表现出的潜力,以减少大约7%的燃油消耗上的A320级航母。大多数这些储蓄由于全电动滑行但是被实现。电力推进系统的重量巡航飞行期间在很大程度上抵消了燃气涡轮机的效率的改进。专用于全电动滑行系统中的系统可以提供类似的储蓄,以更低的精力和成本。鉴于目前的分析中使用的乐观技术水平,并联式混合动力电动推进不太可能在下一代短到中程飞机使用。

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