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IMPACT OF MEASUREMENT UNCERTAINTY IN THE CHARACTERISTIC MAPS OF A TURBOCHARGER ON ENGINE PERFORMANCE

机译:涡轮增压器特征映射中测量不确定度对发动机性能的影响

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The main goal of current engine development is to increase power density and efficiency and to minimize engine emissions. The idea is to obtain the desired power output with a highly charged combustion engine in combination with exhaust gas turbocharging and a very small engine displacement, so-called downsizing. The selection of a turbocharger is based on the maps of the turbine and compressor, which are usually measured on a test bench. They also provide important boundary conditions on the engine process simulation of a supercharged engine with this turbocharger. In general, a very accurate measurement of the characteristic maps is desired to ensure the best possible matching. However, random and systematic errors have an impact on the measurement results. In order to assess the quality of the measured and calculated values, it is necessary to determine the uncertainties of the measurement variables as accurately as possible, particularly the error propagation in calculating the efficiencies. The uncertainties are based on a systematic uncertainty component of the sensor and the confidence interval. In this way the measurement uncertainty is estimated by linear and geometric combination of the calculated random and systematic uncertainties. After that, the respective uncertainty contributions and the identification of the relevant parameters that influence the resulting measurement uncertainty are evaluated. Knowing the measurement uncertainties of the characteristic maps of a turbocharger, the influence on engine operation will be determined with a one-dimensional engine process simulation model. Consequently, the determined measurement uncertainty will be applied as a deviation on the efficiencies and will be investigated in a GT POWER simulation. The impact of the measurement uncertainty on the engine performance is shown on the basis of load steps.
机译:目前发动机开发的主要目标是提高功率密度和效率,并最大限度地减少发动机排放。该思想是通过高电荷的燃烧发动机获得所需的电力输出,结合废​​气涡轮增压和非常小的发动机位移,所谓的缩小化。涡轮增压器的选择基于涡轮机和压缩机的地图,其通常在测试台上测量。它们还提供了具有此涡轮增压器的增压发动机的发动机过程模拟的重要边界条件。通常,希望对特性图的非常准确的测量来确保最佳匹配。但是,随机和系统错误对测量结果产生影响。为了评估测量值和计算值的质量,必须尽可能准确地确定测量变量的不确定性,特别是在计算效率时误差传播。不确定性基于传感器的系统不确定性分量和置信区间。以这种方式,通过计算出的随机和系统不确定因素的线性和几何组合估计测量不确定性。之后,评估各自的不确定性贡献和影响所得到的测量不确定性的相关参数的鉴定。了解涡轮增压器的特征图的测量不确定性,利用一维发动机处理仿真模型来确定对发动机操作的影响。因此,所确定的测量不确定性将被应用于效率的偏差,并且将在GT功率模拟中进行研究。基于负载步骤显示了测量不确定性对发动机性能的影响。

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