Digital Twinning for condition monitoring of Marine Propulsion Assets

D. Rogers, M. Ebrahimi
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Abstract

Digital twinning approaches for high-value propulsion system assets is a growing trend, currently seen in renewables, marine and aviation markets. The benefits of this approach, involving "living-learning" models for diagnostic, prognostic and system optimizations are suggested in literature as many. When deploying such an approach, there are many discussions and decisions around modelling techniques to deploy, and the required fidelity of such models. It can be assumed though that the greater the potential to gain real measurement data, the greater the opportunity to improve the overall system model accuracy.This paper develops a model of a previously overlooked but essential part of the engine control system - the measuring chain relating to the closed-loop engine combustion controller. This part of the system performs an essential role to provide real-time data for the engine control loop, to be able to optimize the engine performance on a cylinder-by-cylinder, cycle-by-cycle basis. However, failure of this part of the system can often be impossible to distinguish from an engine fault when there is no knowledge of the system health of the measuring chain. Therefore, performance monitoring of this sub-system is of high value to the end-user, to fully optimize and potentially decarbonize their engine system, in combination with digital twin methods.
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船舶推进设备状态监测的数字孪生
高价值推进系统资产的数字孪生方法是一种日益增长的趋势,目前在可再生能源、船舶和航空市场都可以看到。这种方法的好处,包括用于诊断、预后和系统优化的“生活学习”模型,在许多文献中都提出了。在部署这样的方法时,围绕要部署的建模技术以及这些模型所需的保真度有许多讨论和决策。可以假设,获得实际测量数据的可能性越大,提高整个系统模型精度的机会就越大。本文建立了发动机控制系统中一个以前被忽视但重要的部分-与闭环发动机燃烧控制器相关的测量链的模型。该系统的这一部分发挥着至关重要的作用,为发动机控制回路提供实时数据,从而能够逐缸、逐周期地优化发动机性能。然而,如果不了解测量链的系统健康状况,这部分系统的故障往往无法与发动机故障区分开来。因此,该子系统的性能监测对最终用户来说具有很高的价值,可以与数字孪生方法相结合,对发动机系统进行充分优化和潜在的脱碳。
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