Y. D. Dwivedi, S. Y B, B. Sunil, CH. V. K. N. S. N. Moorthy, K. V. Allamraju
{"title":"低雷诺数前飞时仿生波纹翼型几何形状的数值研究","authors":"Y. D. Dwivedi, S. Y B, B. Sunil, CH. V. K. N. S. N. Moorthy, K. V. Allamraju","doi":"10.37394/232013.2022.17.12","DOIUrl":null,"url":null,"abstract":"In this study, the effects of variations in the parametric geometry on the aerodynamic efficiency and longitudinal static stability of a bio-inspired airfoil were assessed using the computational method at a low Reynolds number of 80000. The investigation aims to recognize the influence of corrugations on aerodynamic forces and moments and compare them with a non-corrugated profile having similar geometry without corrugations. Three different airfoils were chosen, the first triangular peaked corrugated is inspired from the mid-section of a dragonfly wing, the second modified simplified corrugated is a different form of the dragonfly wing section, which was modified to match the maximum thickness of the first airfoil, and the third is a non-corrugated Hybrid airfoil obtained by joining the peaks of the second airfoil. These three models were fabricated using an additive manufacturing process to undertake the experimental work in a low subsonic wind tunnel to find aerodynamic characteristics. ANSYS FLUENT solver was applied to unravel the steady, laminar, incompressible, two-dimensional, RANS equations. The tests were performed for 4 to +20 degrees angle of attack at a Reynolds number of 80,000. The result revealed that the Hybrid airfoil is suitable only for up to a 4-degree angle of attack. The modified simple corrugated airfoil produced significant aerodynamic performance at high angles of attack than the other two tested airfoils. The flow field study also showed the same results. Results are validated with experimental work and also with existing literature.","PeriodicalId":39418,"journal":{"name":"WSEAS Transactions on Fluid Mechanics","volume":" ","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2022-07-12","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Numerical Study of Bio-Inspired Corrugated Airfoil Geometry in a Forward Flight at a Low Reynolds Number\",\"authors\":\"Y. D. Dwivedi, S. Y B, B. Sunil, CH. V. K. N. S. N. Moorthy, K. V. Allamraju\",\"doi\":\"10.37394/232013.2022.17.12\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"In this study, the effects of variations in the parametric geometry on the aerodynamic efficiency and longitudinal static stability of a bio-inspired airfoil were assessed using the computational method at a low Reynolds number of 80000. The investigation aims to recognize the influence of corrugations on aerodynamic forces and moments and compare them with a non-corrugated profile having similar geometry without corrugations. Three different airfoils were chosen, the first triangular peaked corrugated is inspired from the mid-section of a dragonfly wing, the second modified simplified corrugated is a different form of the dragonfly wing section, which was modified to match the maximum thickness of the first airfoil, and the third is a non-corrugated Hybrid airfoil obtained by joining the peaks of the second airfoil. These three models were fabricated using an additive manufacturing process to undertake the experimental work in a low subsonic wind tunnel to find aerodynamic characteristics. ANSYS FLUENT solver was applied to unravel the steady, laminar, incompressible, two-dimensional, RANS equations. The tests were performed for 4 to +20 degrees angle of attack at a Reynolds number of 80,000. The result revealed that the Hybrid airfoil is suitable only for up to a 4-degree angle of attack. The modified simple corrugated airfoil produced significant aerodynamic performance at high angles of attack than the other two tested airfoils. The flow field study also showed the same results. 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Numerical Study of Bio-Inspired Corrugated Airfoil Geometry in a Forward Flight at a Low Reynolds Number
In this study, the effects of variations in the parametric geometry on the aerodynamic efficiency and longitudinal static stability of a bio-inspired airfoil were assessed using the computational method at a low Reynolds number of 80000. The investigation aims to recognize the influence of corrugations on aerodynamic forces and moments and compare them with a non-corrugated profile having similar geometry without corrugations. Three different airfoils were chosen, the first triangular peaked corrugated is inspired from the mid-section of a dragonfly wing, the second modified simplified corrugated is a different form of the dragonfly wing section, which was modified to match the maximum thickness of the first airfoil, and the third is a non-corrugated Hybrid airfoil obtained by joining the peaks of the second airfoil. These three models were fabricated using an additive manufacturing process to undertake the experimental work in a low subsonic wind tunnel to find aerodynamic characteristics. ANSYS FLUENT solver was applied to unravel the steady, laminar, incompressible, two-dimensional, RANS equations. The tests were performed for 4 to +20 degrees angle of attack at a Reynolds number of 80,000. The result revealed that the Hybrid airfoil is suitable only for up to a 4-degree angle of attack. The modified simple corrugated airfoil produced significant aerodynamic performance at high angles of attack than the other two tested airfoils. The flow field study also showed the same results. Results are validated with experimental work and also with existing literature.
期刊介绍:
WSEAS Transactions on Fluid Mechanics publishes original research papers relating to the studying of fluids. We aim to bring important work to a wide international audience and therefore only publish papers of exceptional scientific value that advance our understanding of this particular area. The research presented must transcend the limits of case studies, while both experimental and theoretical studies are accepted. It is a multi-disciplinary journal and therefore its content mirrors the diverse interests and approaches of scholars involved with multiphase flow, boundary layer flow, material properties, wave modelling and related areas. We also welcome scholarly contributions from officials with government agencies, international agencies, and non-governmental organizations.