Evaluation of Strategies for Highly Transient Operation of Diesel-Gas Engines

M. Malin, Christoph Redtenbacher, Gottfried Lurf, N. Wermuth, A. Wimmer
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引用次数: 2

Abstract

The balancing of the electric grid has become more challenging due to the expansion of fluctuating renewable energy sources for electric power generation. The importance of power plants driven by internal combustion engines will increase since they can react flexibly and quickly to changes in the energy demand. With regard to the emission of pollutants and CO2, gas fueled engines are favored for gensets. However, it is more challenging to meet the dynamic load requirements with a gas engine than with a conventional diesel engine because the load acceptance of the gas engine is limited by the occurrence of knocking combustion. Dual fuel engines are a good compromise between these two engine concepts; they can use gaseous fuel during steady state engine operation and increase the diesel share during transient modes to improve the dynamic behavior. The high number of degrees of freedom of dual fuel combustion concepts requires advanced operating strategies. The aim of this paper is to investigate and evaluate strategies to improve the transient behavior of a 20-cylinder large bore diesel-gas engine (displacement 6.24 dm3 per cylinder) for a genset application. In the investigations, the latest turbocharging technology is applied in combination with a turbine waste gate. A wide range diesel injector that covers the whole diesel injection range of approximately 1 % to 100 % diesel fraction1 of the rated power fuel mass provides the basis for the most flexible diesel injection. A 1D simulation tool was used to model and optimize the genset in transient operation. The combustion process was simulated with Vibe heat release rate models. The optimized transient engine operating strategies were validated on a highly dynamic single cylinder research engine test bed. The paper provides a comparison of different strategies that use these technologies to improve the dynamic behavior of the genset in island mode operation during a 50 % load step. Key to meeting the challenging requirements is an optimized diesel injection strategy or even a switch from gas operation mode to diesel operation mode during the load step. Based on the results of simulation and engine testing, potential ways to minimize engine speed drop and recovery time after the load demand increase are evaluated.
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柴油-燃气发动机高瞬态运行策略评价
由于波动的可再生能源发电的扩大,电网的平衡变得更加具有挑战性。内燃机驱动的发电厂的重要性将会增加,因为它们可以灵活而快速地对能源需求的变化做出反应。考虑到污染物和二氧化碳的排放,燃气发动机是发电机组的首选。然而,与传统柴油发动机相比,燃气发动机的动态负荷要求更具挑战性,因为燃气发动机的负荷接受受到爆震燃烧的限制。双燃料发动机是这两种发动机概念之间的一个很好的折衷;他们可以在发动机稳态运行时使用气态燃料,并在瞬态模式下增加柴油的份额,以改善发动机的动态性能。双燃料燃烧概念的高自由度要求先进的操作策略。本文的目的是研究和评估用于发电机组的20缸大缸径柴油-燃气发动机(每缸排量6.24 dm3)的瞬态性能改进策略。在研究中,将最新的涡轮增压技术与涡轮废料门相结合。一个大范围的柴油喷油器,覆盖整个柴油喷射范围约1%至100%柴油馏分1额定动力燃料质量提供了最灵活的柴油喷射的基础。利用一维仿真工具对发电机组暂态运行进行建模和优化。采用Vibe热释放速率模型对燃烧过程进行了模拟。在高动态单缸研究发动机试验台上对优化后的瞬态运行策略进行了验证。本文提供了不同的策略,使用这些技术来改善发电机组在孤岛模式运行时的动态行为在50%负荷步长。满足挑战性要求的关键是优化柴油喷射策略,甚至在负载阶段从燃气操作模式切换到柴油操作模式。根据仿真结果和发动机试验结果,对负荷需求增加后发动机转速下降和恢复时间最小化的可能途径进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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