全电军舰的发电和燃料容量

N. Doerry
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引用次数: 7

摘要

目前用于军舰发电和燃料箱容量的分级算法是在45年前开发的,当时船舶服务负荷只占总电力需求的一小部分。电力负载的增长,特别是随着高功率任务系统的引入,导致船舶服务的最大边际负载几乎与最大推进负载相同。在许多操作条件下,船舶服务功率需求超过推进功率需求。本文提出了与作战效能挂钩的全电动军舰的新尺寸方法。这些分级方法是基于机动任务战术情况,如高速运输、经济速度运输和站内时间。此外,这些方法对减阻效果、温度和在较高海况下保持速度的能力都很敏感。目标是在满足操作要求的同时优化舰船动力和推进系统的生命周期成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sizing Power Generation and Fuel Capacity of the All-Electric Warship
Current sizing algorithms for warship power generation and fuel tank capacity were developed over forty five years ago when ship service loads were a small fraction of the overall power demand. Electric load growth, particularly with the introduction of high power mission systems, results in ship service maximum margined loads being nearly the same as the maximum propulsion load. In many operating conditions, ship service power demands exceed propulsion demands. This paper proposes new sizing methods for all-electric warships that are tied to operational effectiveness. These sizing methods are based on mobility mission tactical situations such as high speed transit, economical speed transit, and on station time. Additionally, the methods are sensitive to drag reduction efforts, temperature, and the ability to maintain speed in higher sea states. The goal is to optimize shipboard power and propulsion system life cycle cost while meeting operational requirements.
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