What is it about?
The article describes a new model that can be used to predict the efficiency of turbocharger turbines under extreme off-design conditions. The model is based on physical principles and uses a low number of fitting coefficients, which makes it reliable and stable. The model can also be used to extrapolate efficiency maps to new speed and VGT positions. This makes it a valuable tool for engineers who need to design and optimize turbochargers.
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Why is it important?
The key technological aspects of this article are: - Development of a new model for predicting turbocharger turbine efficiency under extreme off-design conditions. This model is based on physical principles and uses a low number of fitting coefficients, making it more reliable and stable than previous models. - Ability to extrapolate efficiency maps to new speed and VGT positions. This is a significant improvement over previous models, which could only be used to predict efficiency at a limited number of operating points. - Non-dimensional formulation of losses and energies, which makes the model independent of turbine inlet temperature and reduces the need for iterative calculations. - Use of a novel definition of the rotor discharge coefficient for radial turbines, which improves the accuracy of the model. - Integration of a tip leakage model, which contributes significantly to the extrapolation quality. - Ability to fit data of different VGT positions at the same time, which increases the range of mass flow and pressure ratio and improves the accuracy of the model. - Ability to extrapolate efficiency maps to low pressure ratios, higher and lower speeds, and unfitted opened VGT positions. This makes the model a valuable tool for engineers who need to design and optimize turbochargers for a wide range of applications. The development of a new model for predicting turbocharger turbine efficiency under extreme off-design conditions has the potential to make a significant contribution to society in several ways: - Improved fuel efficiency and emissions: By enabling more accurate predictions of turbocharger turbine efficiency under extreme off-design conditions, the new model can help engineers design and optimize turbochargers for improved fuel efficiency and reduced emissions. This can have a positive impact on the environment and on the cost of transportation. - Reduced development costs: The new model can also help to reduce the time and cost required to develop new turbochargers. This is because it can be used to predict the performance of turbochargers under a wider range of operating conditions, which can help to identify and eliminate potential problems early in the design process. - Enhanced safety: The new model can also be used to improve the safety of turbocharger systems. By providing more accurate predictions of turbine efficiency, the model can help to ensure that turbochargers operate within their safe operating limits. This can help to prevent accidents and reduce the risk of injury. - Promoted sustainable transportation: The new model has the potential to contribute to the development of more sustainable transportation systems. By enabling more efficient and environmentally friendly turbochargers, the model can help to reduce the reliance on fossil fuels and improve air quality.
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This page is a summary of: An innovative losses model for efficiency map fitting of vaneless and variable vaned radial turbines extrapolating towards extreme off-design conditions, Energy, August 2019, Elsevier,
DOI: 10.1016/j.energy.2019.05.062.
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