Details
Originalsprache | Englisch |
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Publikationsstatus | Veröffentlicht - 30 Aug. 2022 |
Veranstaltung | SAE 2022 Powertrains, Fuels and Lubricants Conference and Exhibition, PFL 2022 - Krakow, Polen Dauer: 6 Sept. 2022 → 8 Sept. 2022 |
Konferenz
Konferenz | SAE 2022 Powertrains, Fuels and Lubricants Conference and Exhibition, PFL 2022 |
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Land/Gebiet | Polen |
Ort | Krakow |
Zeitraum | 6 Sept. 2022 → 8 Sept. 2022 |
Abstract
Enhancing the efficiency of the internal combustion engine is of most interest to achieve sustainability, for instance in connection with sustainable fuels, like hydrogen or biofuels. Regardless of the type of fuel, great development possibilities are seen in reducing the friction of the piston group. Analyzing the cylinder liner deformation is essential to understanding the behavior of the piston rings-cylinder liner (PRCL) coupling in the hot operation state. This paper describes the liner deformation at the hot operation state over the liner depth for different operational points. To do so, a validated mathematical model based on a physical model of a terminal cylinder in an internal combustion engine has been introduced. The validated mathematical model is then simulated using FEM software to numerically calculate liner deformations at different operational conditions. Subsequently, the deformations are analyzed using Fourier decomposition to find the variation trends for each order of deformation over the liner's depth and engine operational points. It is found that the second-order deformation is dominant over the liner depth. This deformation order is highly dependent on the operational load. The fourth-order deformation is highly dependent on the liner depth with low dependency on the operational load. The trends for first and third orders are also discussed. The simulation was repeated for aluminum alloy as a different engine material to investigate the material effects. The results show that although the deformation values differ significantly with different materials, the trends for the deformation's order remain almost the same. In an outlook, the possible application to real engines is discussed.
ASJC Scopus Sachgebiete
- Ingenieurwesen (insg.)
- Fahrzeugbau
- Ingenieurwesen (insg.)
- Sicherheit, Risiko, Zuverlässigkeit und Qualität
- Umweltwissenschaften (insg.)
- Umweltverschmutzung
- Ingenieurwesen (insg.)
- Wirtschaftsingenieurwesen und Fertigungstechnik
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2022. Beitrag in SAE 2022 Powertrains, Fuels and Lubricants Conference and Exhibition, PFL 2022, Krakow, Polen.
Publikation: Konferenzbeitrag › Paper › Forschung › Peer-Review
}
TY - CONF
T1 - Cylinder Liner Deformation
T2 - SAE 2022 Powertrains, Fuels and Lubricants Conference and Exhibition, PFL 2022
AU - Alshwawra, Ahmad
AU - Pohlmann-Tasche, Florian
AU - Stelljes, Frederik
AU - Dinkelacker, Friedrich
N1 - Funding Information: A partial fund for this work was provided by German Federal Ministry for Economic Affairs and Energy(BMWi) within the cooperation project “Energieeffiziente Prozessketten zur Herstellung eines reibungs-, gewichts-und lebendsdaueroptimierten Antriebsstrangs” (Antriebsstrang 2025). The German Jordanian University (GJU) funded another part through a research scholarship.
PY - 2022/8/30
Y1 - 2022/8/30
N2 - Enhancing the efficiency of the internal combustion engine is of most interest to achieve sustainability, for instance in connection with sustainable fuels, like hydrogen or biofuels. Regardless of the type of fuel, great development possibilities are seen in reducing the friction of the piston group. Analyzing the cylinder liner deformation is essential to understanding the behavior of the piston rings-cylinder liner (PRCL) coupling in the hot operation state. This paper describes the liner deformation at the hot operation state over the liner depth for different operational points. To do so, a validated mathematical model based on a physical model of a terminal cylinder in an internal combustion engine has been introduced. The validated mathematical model is then simulated using FEM software to numerically calculate liner deformations at different operational conditions. Subsequently, the deformations are analyzed using Fourier decomposition to find the variation trends for each order of deformation over the liner's depth and engine operational points. It is found that the second-order deformation is dominant over the liner depth. This deformation order is highly dependent on the operational load. The fourth-order deformation is highly dependent on the liner depth with low dependency on the operational load. The trends for first and third orders are also discussed. The simulation was repeated for aluminum alloy as a different engine material to investigate the material effects. The results show that although the deformation values differ significantly with different materials, the trends for the deformation's order remain almost the same. In an outlook, the possible application to real engines is discussed.
AB - Enhancing the efficiency of the internal combustion engine is of most interest to achieve sustainability, for instance in connection with sustainable fuels, like hydrogen or biofuels. Regardless of the type of fuel, great development possibilities are seen in reducing the friction of the piston group. Analyzing the cylinder liner deformation is essential to understanding the behavior of the piston rings-cylinder liner (PRCL) coupling in the hot operation state. This paper describes the liner deformation at the hot operation state over the liner depth for different operational points. To do so, a validated mathematical model based on a physical model of a terminal cylinder in an internal combustion engine has been introduced. The validated mathematical model is then simulated using FEM software to numerically calculate liner deformations at different operational conditions. Subsequently, the deformations are analyzed using Fourier decomposition to find the variation trends for each order of deformation over the liner's depth and engine operational points. It is found that the second-order deformation is dominant over the liner depth. This deformation order is highly dependent on the operational load. The fourth-order deformation is highly dependent on the liner depth with low dependency on the operational load. The trends for first and third orders are also discussed. The simulation was repeated for aluminum alloy as a different engine material to investigate the material effects. The results show that although the deformation values differ significantly with different materials, the trends for the deformation's order remain almost the same. In an outlook, the possible application to real engines is discussed.
UR - http://www.scopus.com/inward/record.url?scp=85138808536&partnerID=8YFLogxK
U2 - 10.4271/2022-01-1040
DO - 10.4271/2022-01-1040
M3 - Paper
AN - SCOPUS:85138808536
Y2 - 6 September 2022 through 8 September 2022
ER -