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Estimation of Soot and Fuel Invasion in Diesel Engine Oils through a Combination of Dielectric Constant Sensor and Viscosity Sensor

机译:介电常数传感器和粘度传感器的组合估计柴油机油中的烟灰和燃料侵袭

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To satisfy the latest emission standards, the use of advanced technologies such as exhaust gas recirculation, diesel particulate filter, and complicated injection strategies are increasing in modern diesel engines. However, some of these complicated technologies may cause soot and diesel fuel to enter the engine oil during engine operation and ultimately affect oil performance. Once the soot and diesel fuel content is beyond a certain level, the engine oil should be changed to guarantee adequate lubrication. Thus, a proper method of monitoring oil condition is required. It is well known that soot and diesel fuel affect oil permittivity and viscosity significantly. Thus, in this study, a new method to monitor oil quality is proposed by measuring the dielectric constant and oil viscosity. Carbon black was used as the substitute for soot and was mixed with diesel fuel at different ratios. Both the dielectric constant and oil viscosity increase as soot content increases. Diesel fuel content affects the viscosity and slightly affects the dielectric constant. Multivariable linear regression and an artificial neural network were used to correlate the dielectric constant and viscosity with the oil conditions, and a prediction model was established. The predicted results indicate good agreement with the experimental results. It is believed that with the developed algorithm, this method could potentially be used for the online estimation of engine oil soot and oil dilution conditions.
机译:为了满足最新的排放标准,在现代柴油发动机中使用诸如废气再循环,柴油颗粒过滤器和复杂注射策略等先进技术的使用。然而,其中一些复杂的技术可能导致烟灰和柴油燃料在发动机运行期间进入发动机油并最终影响石油性能。一旦烟灰和柴油燃料含量超过一定水平,应改变发动机油以保证足够的润滑。因此,需要适当的监测油状物。众所周知,烟灰和柴油燃料显着影响油渗透性和粘度。因此,在本研究中,通过测量介电常数和油粘度来提出一种监测油质的新方法。炭黑用作烟灰的替代品,并以不同比例与柴油燃料混合。随着烟灰含量的增加,介电常数和油粘度都会增加。柴油燃料含量影响粘度,略微影响介电常数。多变量线性回归和人工神经网络用于将介电常数和粘度与油状况相关,并建立预测模型。预测结果表明与实验结果吻合良好。据信,利用发达的算法,该方法可能用于发动机油烟烟灰和油稀释条件的在线估计。

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