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Experimental Validation of a Likelihood-Based Stochastic Knock Controller

机译:基于似然性的随机爆震控制器的实验验证

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摘要

New likelihood-based stochastic knock controllers have the potential to deliver a significantly improved regulatory response relative to conventional strategies, while also maintaining a rapid transient response, but evaluation studies to date have been performed only in simulation. In this paper, an experimental validation of the new strategy is presented. To demonstrate the robustness of the method, the algorithm is implemented on two different engine platforms, using two different knock intensity metrics, and evaluated under different operating conditions. One of these platforms is a five-cylinder variable compression ratio engine, enabling the controller to be tested under different compression ratios, as well as different speed and load conditions. The regulatory and transient performance of the likelihood-based controller is assessed in a back-to-back comparison with a conventional knock controller and it is shown that the new controller is able to operate closer to the knock limit with less variation in control action without increasing the risk of engine damage.
机译:相对于传统策略,新的基于似然性的随机爆震控制器具有提供显着改善的调节响应的潜力,同时还能保持快速的瞬态响应,但是迄今为止,评估研究仅在仿真中进行。在本文中,对新策略进行了实验验证。为了证明该方法的鲁棒性,该算法在两个不同的发动机平台上执行,使用两个不同的爆震强度指标,并在不同的运行条件下进行了评估。这些平台之一是五缸可变压缩比发动机,使该控制器可以在不同的压缩比以及不同的速度和负载条件下进行测试。在与常规爆震控制器的背对背比较中评估了基于似然度的控制器的调节性能和瞬态性能,结果表明,新控制器能够在接近爆震极限的情况下运行,而控制动作的变化较小,而无需增加发动机损坏的风险。

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