Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation

Yıl: 2020 Cilt: 4 Sayı: 3 Sayfa Aralığı: 145 - 154 Metin Dili: İngilizce DOI: 10.30939/ijastech..729443 İndeks Tarihi: 17-09-2020

Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation

Öz:
This report presents a method with high spatial and temporal accuracy for estimating solutions of Navier-Stokes equations at high Reynolds number. It employs Crank-Nicolson time discretization along with the zeroth-order approximate deconvolution model of turbulence to regularize the flow problem; solves adeviation of the Navier Stokes equation instead. Both theoretical and computational findings of this report illustrate that the model produces a high order ofaccuracy and stability. Furthermore, measurements of the drag and lift coefficients of a benchmark problem verify the potential of the model in this kind ofcomputations.
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
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APA Aggul M (2020). Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. , 145 - 154. 10.30939/ijastech..729443
Chicago Aggul Mustafa Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. (2020): 145 - 154. 10.30939/ijastech..729443
MLA Aggul Mustafa Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. , 2020, ss.145 - 154. 10.30939/ijastech..729443
AMA Aggul M Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. . 2020; 145 - 154. 10.30939/ijastech..729443
Vancouver Aggul M Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. . 2020; 145 - 154. 10.30939/ijastech..729443
IEEE Aggul M "Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation." , ss.145 - 154, 2020. 10.30939/ijastech..729443
ISNAD Aggul, Mustafa. "Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation". (2020), 145-154. https://doi.org/10.30939/ijastech..729443
APA Aggul M (2020). Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. International Journal of Automotive Science and Technology, 4(3), 145 - 154. 10.30939/ijastech..729443
Chicago Aggul Mustafa Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. International Journal of Automotive Science and Technology 4, no.3 (2020): 145 - 154. 10.30939/ijastech..729443
MLA Aggul Mustafa Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. International Journal of Automotive Science and Technology, vol.4, no.3, 2020, ss.145 - 154. 10.30939/ijastech..729443
AMA Aggul M Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. International Journal of Automotive Science and Technology. 2020; 4(3): 145 - 154. 10.30939/ijastech..729443
Vancouver Aggul M Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation. International Journal of Automotive Science and Technology. 2020; 4(3): 145 - 154. 10.30939/ijastech..729443
IEEE Aggul M "Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation." International Journal of Automotive Science and Technology, 4, ss.145 - 154, 2020. 10.30939/ijastech..729443
ISNAD Aggul, Mustafa. "Crank-Nicholson Scheme of the Zeroth-Order Approximate Deconvolution Model of Turbulence Based On a Mixed Formulation". International Journal of Automotive Science and Technology 4/3 (2020), 145-154. https://doi.org/10.30939/ijastech..729443