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Cost-based flight technique optimization for hybrid energy aircraft

机译:混合动力飞机基于成本的飞行技术优化

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Purpose - The aim of the paper is to establish the COst-Specific Air Range (COSAR) as a new figure-of-merit based on the cost of energy to optimise the flight profile of a hybrid energy aircraft. Design/methodology/approach - After reviewing the expression and the application of the specific air range (SAR) and of the energy-specific air range (ESAR), the need of a new figure-of-merit for flight technique optimisation of hybrid energy aircraft is motivated. Based on the specific cost of the energies consumed, the mathematical expression of COSAR is derived. To enable optimum economics operations, a cost index (CI) derivation is introduced for a variety of hybrid-electric concepts to consider the additional time-related cost. The application of COSAR and of the CI is demonstrated for cruise optimisation of a hybrid-electric retrofit aircraft concept. Findings - As a consequence of the consumption of multiple energy sources in a hybrid aircraft, optimisation according to the objective functions SAR and ESAR leads to minimum in-flight CO2 emissions and minimum energy consumption for a given stage length. While the optimisation of a single energy source aircraft according to these figures-of-merit directly results in minimum energy cost for a given unit range, this statement is no longer true for hybrid-energy aircraft. Consequently, introducing a new figure-of-merit established on the specific cost of the energies consumed enables flight technique optimisation for minimum energy cost of hybrid-energy aircraft. Additionally, the related time-cost is taken into account by means of a CI definition for minimum operating cost. Practical implications - COSAR may serve as an alternative to SAR used today as the standard figure-of-merit for fuel optimised flight profile. Using COSAR and the CI allow airlines to adapt the flight profiles of hybrid-energy aircraft fleets according to the energy market price and their related cost of time to determine optimum economical flight profile. Originality/value - Using COSAR as a figure-of-merit, the flight profile of hybrid energy aircraft can be optimised for minimum energy cost. Time-related costs are considered for optimum operating economics by utilisation of the CI definition for hybrid energy aircraft.
机译:目的-本文的目的是建立基于特定成本的COst特定空域(COSAR),以优化混合动力飞机的飞行轮廓,基于能源成本。设计/方法/方法-在审查了特定空域(SAR)和能量特定空域(ESAR)的表达式和应用之后,需要一种新的品质因数来优化混合能源的飞行技术飞机是有动力的。根据所消耗能量的特定成本,推导了COSAR的数学表达式。为了实现最佳的经济运行,针对各种混合动力概念引入了成本指数(CI)推导,以考虑与时间相关的额外成本。演示了COSAR和CI的应用,用于混合电动改装飞机概念的巡航优化。研究结果-由于混合动力飞机消耗了多种能源,因此根据目标函数SAR和ESAR进行的优化可在给定的载物台长度内实现最小的飞行中CO2排放量和最小的能耗。尽管根据这些品质因数对单个能源飞机进行优化会直接导致给定单位范围内的最低能源成本,但对于混合能源飞机而言,这种说法不再成立。因此,引入基于消耗能量的特定成本建立的新的品质因数,可以优化混合动力飞机的最低能量成本的飞行技术。另外,通过CI定义将相关的时间成本考虑在内,以实现最低运营成本。实际意义-COSAR可能会替代SAR,而SAR现在已成为燃油优化飞行状况的标准品质因数。使用COSAR和CI,航空公司可以根据能源市场价格及其相关的时间成本来调整混合能源飞机机队的飞行轮廓,从而确定最佳的经济飞行轮廓。独创性/价值-使用COSAR作为品质因数,可以优化混合能源飞机的飞行剖面,从而将能源成本降至最低。通过使用混合能源飞机的CI定义,可以将与时间有关的成本用于最佳运营经济学。

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