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A novel method for optimal performance of ships by simultaneous optimisation of hull-propulsion-BIPV systems

机译:通过同时优化船体推进-BIPV系统来优化船舶性能的新方法

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Shipping has been facing significant challenges due to strict limits imposed by the International Maritime Organization (IMO) to become more environmentally sustainable. In this regard, the use of solar energy, as a viable way to deal with the pollutant emissions caused by ships, has been attracted considerable attention. However, considerable investment costs, high area demands, and low performances of ships equipped with the photovoltaic systems have until recently been some of the significant challenges in the use of solar energy in the shipping industry. This paper proposes a novel method for the optimal performance of ships through the simultaneous optimisation of the hull-propulsion-building integrated photovoltaic (BIPV) system. Using the proposed method, the interaction effects among the ship hull, the BIPV system, and the propulsion system, as well as the impact of the wind and ship speeds on the BIPV system efficiency are considered. Ship operational conditions, including the sunshine duration, the clearness index, the ambient temperature, the latitude of the region, the view factor of the sky to ground, the wind and ship speeds, and the ship lifetime hour are also examined. Moreover, a probabilistic speed profile is employed to avoid a suboptimal design at a single ship speed. The performance of the suggested method is evaluated by designing a planing ship equipped with a waterjet propulsion system that operates in the Karun river, Iran. The non-dominated sorting genetic algorithm (NSGA-II) is used to solve the multi-objective optimisation problem of a planing hull-waterjet-BIPV system. Eight cases are compared to demonstrate the effectiveness and the promise of the proposed approach in different ship design problems with different displacements and BIPV area-to-deck area ratios. The results show the high performance of the adopted approach in cutting operating costs and greenhouse gas (GHG) emissions. Based on the results, the investment costs due to the BIPV system have been recouped within a year in different studied cases and scenarios. It is also found out that the interaction effects among the ship hull, the BIPV system, and the propulsion system are important to ensure the optimal performance of a ship.
机译:由于国际海事组织(IMO)实行严格的限制以使其在环境方面更具可持续性,因此航运业面临着严峻的挑战。在这方面,使用太阳能作为处理船舶造成的污染物排放的可行方法已经引起了广泛关注。然而,直到最近,装备有光伏系统的船舶的相当大的投资成本,较高的面积要求和较低的性能一直是航运业中太阳能使用中的一些重大挑战。本文提出了一种通过同时优化船体推进系统集成光伏(BIPV)系统来优化船舶性能的新方法。使用所提出的方法,考虑了船体,BIPV系统和推进系统之间的相互作用影响,以及风速和船舶速度对BIPV系统效率的影响。还检查了船舶的运行状况,包括日照时间,净度指数,环境温度,区域纬度,天空对地面的视线系数,风速和船舶速度以及船舶使用寿命。此外,采用概率速度曲线来避免在单船速度下的次优设计。通过设计配备在伊朗卡伦河上运行的水刀推进系统的滑行船,可以评估所建议方法的性能。采用非支配排序遗传算法(NSGA-II)解决了滑行水射流BIPV系统的多目标优化问题。比较了八个案例,以证明该方法在不同排量和BIPV面积与甲板面积比的不同船舶设计问题中的有效性和前景。结果表明,该方法在降低运营成本和减少温室气体(GHG)排放方面具有高性能。根据结果​​,在不同的研究案例和方案中,BIPV系统的投资成本已在一年内收回。还发现,船体,BIPV系统和推进系统之间的相互作用对确保船舶的最佳性能很重要。

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