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Exergetic sustainability off-design analysis of variable-cycle aeroengine in various bypass modes

机译:各种旁路模式下可变循环航空发动机的可持续性非设计性分析

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For next generation aircraft, Variable Cycle Engine (VCE) is a candidate to fulfil the multi-mission requirements of flight. This new concept is promising to complete deficiencies of conventional low by-pass mixed turbofan engines because the VCE model incorporates different thermodynamic cycles (turbojet and turbofan) on the same system. Namely, having single by-pass (SBM) and double by-pass modes (DBM), these engines can modulate by-pass ratio, ranging from 0.3 to 1.8 during flight with respect to operating condition requirements. In this study, parametric equations for components of the developed VCE model are determined by means of cycle equations of a mixed-flow turbofan with afterburner. The first aim is to compare energetic performance results of the developed VCE with the results of F100-PW-100 (as called F100) used on F-15 or F-16 for SBM and DBM. Secondly, the main goal of this study is to perform second law analysis for the VCE model and compare it with the results of the F100 engine for off-design, at which flight altitude (9-20 km) and Mach number (0.3-1.9) changes. For this aim, thermodynamic data (pressure, temperature, mass flow etc.) of this engine main components are obtained from GasTurb program for above stated flight conditions. On the other hand, exergy analysis along with five sustainability parameters is carried out at SBM and DBM as comparing with those of F100 engine. Off-design analysis shows that the specific fuel consumption (SFC) varies from 19.97 g/kN.s to 28.25 g/kN.s for VCE and from 23.91 g/kN.s to 31.14 g/kN.s for F100 at DBM. Moreover, at SBM, SFC changes from 52.68 g/kN.s to 59.19 g/kN.s for VCE and from 58.04 g/kN.s to 63.57 g/kN.s for F100 throughout the entire flight conditions. As for exergy-based sustainability analysis, exergetic sustainability index (ESI) of the whole VCE is found to be in the range of 0.14 and 0.51 for DBM and to be in the range of 0.26 and 0.38 for SBM. For F100 engine, ESI is calculated to be in the range of 0.10 and 0.39 for DBM and to be in the range of 0.15 and 0.34 for SBM. It is thought that this study can help in understanding the effect of the working cycle on engine performance and sustainability parameters.
机译:对于下一代飞机,可变循环引擎(VCE)是满足飞行多任务要求的候选者。这个新概念有望弥补传统低旁通混合涡扇发动机的不足,因为VCE模型在同一系统上采用了不同的热力学循环(涡喷和涡扇)。即,具有单旁通(SBM)和双旁通模式(DBM),这些发动机可以根据飞行条件要求在飞行期间调节旁通比,范围从0.3到1.8。在这项研究中,已开发的VCE模型组件的参数方程式是通过带有后燃器的混流涡轮风扇的循环方程式确定的。第一个目的是将已开发的VCE的能量性能结果与用于SBM和DBM的F-15或F-16上使用的F100-PW-100(称为F100)的结果进行比较。其次,本研究的主要目标是对VCE模型进行第二定律分析,并将其与非设计用F100发动机的结果进行比较,该模型在飞行高度(9-20 km)和马赫数(0.3-1.9)下进行设计) 变化。为此,在上述飞行条件下,可从GasTurb程序获取该发动机主要组件的热力学数据(压力,温度,质量流量等)。另一方面,与F100发动机相比,SBM和DBM进行了火用分析以及五个可持续性参数。偏离设计分析显示,在DBM,VCE的单位油耗(SFC)从19.97 g / kN.s到28.25 g / kN.s,从F91的23.91 g / kN.s到31.14 g / kN.s。此外,在整个飞行条件下,SBM的VFC的SFC从52.68 g / kN.s变为59.19 g / kN.s,F100的FFC从58.04 g / kN.s变为63.57 g / kN.s。对于基于火用的可持续性分析,发现整个VCE的火用可持续性指数(ESI)对于DBM处于0.14到0.51的范围内,对于SBM处于0.26到0.38的范围内。对于F100发动机,对于DBM,ESI计算为介于0.10和0.39之间,对于SBM,ESI计算为介于0.15和0.34之间。认为该研究可以帮助理解工作循环对发动机性能和可持续性参数的影响。

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