<p>The goal of the study is to reduce the overall aerodynamic drag force, which lowers carbon dioxide emissions, fuel consumption, and power demand. This results in an aerodynamically optimized diffuser angle and bus stagnation surface shape. SolidWorks-CAD 2023 is utilized in the development of the model. Eight different car models were developed and analyzed. CFD and ANSYS Fluent 19.2 were used for the analyses. With a 15° diffuser angle in the rear weak zone and a taper in front and an arc segment on both sides in the stagnation surface, the model-6 had the lowest Cd and Fd values, measuring 0.2915 and 225.32&#xa0;N at 70&#xa0;km/h and 0.3111 and 594.22&#xa0;N at 110&#xa0;km/h, respectively. At 70&#xa0;km/h and 110&#xa0;km/h, respectively, the Cd reduction percentages attained with this model were 51.21% (48.8% due to the frontal effect and 2.41% due to the diffuser angle impact) and 50.79% (48.81% due to the frontal effect and 1.98% because of the diffuser angle impact). Compared to the baseline bus, the coefficient of drag was, on average, 51% lower. In comparison to the baseline model, model six uses 5026.6&#xa0;W less power at 70&#xa0;km/h and 18332.03&#xa0;W less power at 110&#xa0;km/h. Compared to the baseline model, the modified model six uses 1.45&#xa0;L/h less gasoline at 70&#xa0;km/h and 5.28&#xa0;L/h less fuel at 110&#xa0;km/h. At 70&#xa0;km/h and 110&#xa0;km/h, model six’s CO<sub>2</sub> decrease is 12.17 tons per year and 44.31 tons per year, respectively.</p> Graphical abstract <p></p>

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Study of the impact of diffuser angle and stagnation surface on the aerodynamic performance of a locally constructed Isuzu bus

  • Gebremeskel Kahsay Atsbha,
  • Dinku Seyoum Zeleke,
  • Mezid Abdella Hamza,
  • Bonsa Reta Mosisa

摘要

The goal of the study is to reduce the overall aerodynamic drag force, which lowers carbon dioxide emissions, fuel consumption, and power demand. This results in an aerodynamically optimized diffuser angle and bus stagnation surface shape. SolidWorks-CAD 2023 is utilized in the development of the model. Eight different car models were developed and analyzed. CFD and ANSYS Fluent 19.2 were used for the analyses. With a 15° diffuser angle in the rear weak zone and a taper in front and an arc segment on both sides in the stagnation surface, the model-6 had the lowest Cd and Fd values, measuring 0.2915 and 225.32 N at 70 km/h and 0.3111 and 594.22 N at 110 km/h, respectively. At 70 km/h and 110 km/h, respectively, the Cd reduction percentages attained with this model were 51.21% (48.8% due to the frontal effect and 2.41% due to the diffuser angle impact) and 50.79% (48.81% due to the frontal effect and 1.98% because of the diffuser angle impact). Compared to the baseline bus, the coefficient of drag was, on average, 51% lower. In comparison to the baseline model, model six uses 5026.6 W less power at 70 km/h and 18332.03 W less power at 110 km/h. Compared to the baseline model, the modified model six uses 1.45 L/h less gasoline at 70 km/h and 5.28 L/h less fuel at 110 km/h. At 70 km/h and 110 km/h, model six’s CO2 decrease is 12.17 tons per year and 44.31 tons per year, respectively.

Graphical abstract