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PROPULSION SIMULATOR/STIMULATOR DEVELOPMENT FOR US NAVY'S NEWEST GAS TURBINE-POWERED SHIP, LHD 8 USS MAKIN ISLAND

机译:推进模拟器/刺激器开发美国海军最新的燃气轮机动力船,LHD 8 USS Makin Island

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The LHD 8 amphibious assault ship utilizes a hybrid propulsion plant, where the ship has the capability to be propelled by electric propulsion motors or gas turbine engines, ail of which is controlled and monitored by a state-of-the-art Machinery Control System (MCS). Unlike the previous ships of the class which were steam powered, the hybrid drive is designed to allow economical low speed fuel efficiency on electric motors as well as a traditional gas turbine power plant for all other mission areas. This is expected to yield significant fuel savings over the life of the ship. The integrated machinery control system is likewise expected to reduce life cycle costs through reduced manning. The build specification for this ship class required that all MCS signals including the gas turbine alarms and shutdown functions be fully tested prior to initial light-off. Many of these functions are not activated, and therefore cannot be tested, until the Electronic Control Unit (ECU) senses that the gas turbine is running. Historically, previous ship classes used a manually-operated set of potentiometers to provide signals to a gas turbine ECU to simulate external inputs to allow testing of shutdown and alarm functions. For this newest class of engine however, the ECU is significantly more complex and requires the ECU to successfully progress through the start sequence, including sensed variables changing at expected rates, in order to activate the alarm and shutdown logic. In order to test this functionality, an engine simulator, physically interfaced to the ECU aboard the ship, was necessary. No system of this type is available or had ever been developed. Neither the engine or ECU manufacturer had a device for this purpose. The paper will discuss the development and implementation of a gas turbine simulator that incorporates an engine mathematical model fully compatible with the ECU controller, simulation hardware capable of supporting real-time system performance, signal conditioning necessary to provide/accept raw signals to/from the ECU, as well as a host laptop with software necessary to control simulator/stimulator and perform test functions. The paper will discuss the system requirements development, component selection, software and hardware development, and system integration and testing. Also discussed will be the results of bench testing as well as the final shipboard test results. Examples in the form of diagrams, photos, charts and schematics will be used. The paper will conclude with a discussion of the benefits of a dynamic gas turbine simulator and potential future applications.
机译:LHD 8两栖攻击船利用混合动力推进装置,其中船舶具有由电动推进电动机或燃气涡轮发动机推进的能力,其由最先进的机械控制系统控制和监控MCS)。与蒸汽供电的班级的先前船舶不同,混合动力驱动器旨在允许电动机上的经济低速燃料效率以及所有其他任务领域的传统燃气轮机发电厂。这有望在船舶的寿命中产生显着的燃料。综合机械控制系统同样预期通过减少曼宁来降低生命周期成本。本船舶类的构建规范要求在初始亮度关闭之前通过燃气轮机报警和关闭功能的所有MCS信号进行全面测试。许多这些功能未被激活,因此无法测试,直到电子控制单元(ECU)感测到燃气轮机运行。从历史上看,之前的船舶类使用了手动操作的电位计,以向燃气轮机ECU提供信号,以模拟外部输入以允许测试关机和报警功能。对于这种最新的发动机,ECU显着更复杂,并且需要ECU通过开始序列成功进展,包括以预期的速率更改的感测变量,以便激活警报和关闭逻辑。为了测试这种功能,是必要的发动机模拟器,物理地与船舶的ECU接口。没有任何系统可用或已经开发出来的。发动机或ECU制造商都没有用于此目的的设备。本文将讨论燃气轮机模拟器的开发和实施,该模拟器包括与ECU控制器完全兼容的发动机数学模型,能够支持实时系统性能的仿真硬件,提供/接受原始信号所需的信号调节ECU,以及具有控制模拟器/刺激器所需的软件的主机笔记本电脑,并执行测试功能。本文将讨论系统要求开发,组件选择,软件和硬件开发,以及系统集成和测试。还讨论的是工作台测试的结果以及最终的船上测试结果。将使用图表,照片,图表和原理图形的示例。本文将讨论动态燃气轮机模拟器和潜在未来应用的益处。

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