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Potential power setups, fuels and hull designs capable of satisfying future EEDI requirements

机译:能够满足未来EEDI要求的潜在动力装置,燃料和船体设计

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摘要

Maritime emission regulations set limits for SOx and NOx emissions for health and environmental reasons, and for CO2, through the Energy Efficiency Design Index (EEDI), with the general aim of mitigating global warming. EEDI verification is performed at the vessel's design speed and design loads, under calm-water conditions. This, although calm seas are the exception in shipping, and that even with calm-water conditions, ships usually operate at lower speeds than their design speed. A major challenge, if greenhouse gases (GHG) reduction targets are to be met through the EEDI, will be to identify EEDI-compliant solutions that reduce energy consumption and GHG emissions under realistic operational conditions, from lying idle at berth in port to when full power is required in critical situations at sea. In view of all the above, we use the Aframax tanker class to illustrate how such an assessment can be performed, and to display the differences in costs and benefits of options, all of which meet the requirements of the EEDI.
机译:出于健康和环境的原因,海事排放法规通过能源效率设计指数(EEDI)设定了SOx和NOx排放限值以及CO2排放限值,其总体目标是缓解全球变暖。在平静水域条件下,以船舶的设计速度和设计载荷进行EEDI验证。尽管风平浪静是运输中的例外,即使在风平浪静的情况下,船舶通常也以低于其设计速度的速度行驶。如果要通过EEDI实现减少温室气体(GHG)的目标,那么主要的挑战将是确定符合EEDI的解决方案,以减少实际操作条件下的能耗和温室气体排放,从停泊在港口泊位到满员时在海上紧急情况下需要电源。鉴于上述所有内容,我们使用Aframax油轮类来说明如何进行这种评估,并显示期权成本和收益的差异,所有这些都满足EEDI的要求。

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