Multidisciplinary research method for designing and selection of bio-inspired profiles in the conceptual designing stage
Само за регистроване кориснике
2021
Аутори
Linić, Suzana Lj.Lučanin, Vojkan J.
Živković, Srđan P.
Raković, Marko
Ristić, Slavica S.
Radojković, Bojana

Polić, Suzana R.
Чланак у часопису (Објављена верзија)

Метаподаци
Приказ свих података о документуАпстракт
A multidisciplinary research method was employed with the intention to create a series of bio-inspired flattened airfoils, observe their aerodynamic characteristics, and analyse their applicability to small devices or to designs of high-speed trains, within the shortest period in the conceptual stage. A research specimen of a kingfisher, selected for biomimicry, was examined with the following methods: visual inspection, analysis of photographs, manufacturing quality control measurement with a 3D laser scanner, and microscopy. A basic multi-arc-line profile, re-engineered from the overlapped specimen shape data and based on the observations, was used for designing a series of seven derived airfoils. The aerodynamic characteristics of the bio-inspired airfoils were obtained with the panel methods at low and moderate subsonic speeds, while the small transonic difference method was used in the high-subsonic speed range. Basic and ellipse-like airfoils produce higher total drag at low and ...moderate velocities and higher forebody drag in the high-subsonic range when compared to derived and parabola-like airfoils. The obtained critical Mach numbers are in the range from 0.76 to 0.78, where three bionic airfoils show values equal to or smaller than the values of ellipse- and parabola-like airfoils. The profile with the shortest bio-inspired relative chord has a higher critical Mach number value than the parabola-like profile. The sonic lines above these profiles appear at close positions. The applied set of examination methods of the bio-inspired design is not time consuming and produces sufficiently good results in the conceptual stage. Therefore, a further development of unique and adjusted numerical methods and codes at pre-computational fluid dynamics run is encouraged, together with shape parameterization.
Кључне речи:
Aerodynamics / Bionics / Design / Laser scanning / Numerical method / Quality measurementИзвор:
Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2021, 43, 1, 57-Издавач:
- Springer Nature Switzerland AG 2020
Пројекти:
- Научно-технолошка подршка унапређењу безбедности специјалних друмских и шинских возила (RS-35045)
- Истраживање и оптимизација технолошких и функционалних перформанси вентилационог млина термоелектране Костолац Б (RS-34028)
DOI: 10.1007/s40430-020-02789-2
ISSN: 1678-5878
WoS: 000607403800001
Scopus: 2-s2.0-85099408649
Институција
IHTMTY - JOUR AU - Linić, Suzana Lj. AU - Lučanin, Vojkan J. AU - Živković, Srđan P. AU - Raković, Marko AU - Ristić, Slavica S. AU - Radojković, Bojana AU - Polić, Suzana R. PY - 2021 UR - https://cer.ihtm.bg.ac.rs/handle/123456789/4240 AB - A multidisciplinary research method was employed with the intention to create a series of bio-inspired flattened airfoils, observe their aerodynamic characteristics, and analyse their applicability to small devices or to designs of high-speed trains, within the shortest period in the conceptual stage. A research specimen of a kingfisher, selected for biomimicry, was examined with the following methods: visual inspection, analysis of photographs, manufacturing quality control measurement with a 3D laser scanner, and microscopy. A basic multi-arc-line profile, re-engineered from the overlapped specimen shape data and based on the observations, was used for designing a series of seven derived airfoils. The aerodynamic characteristics of the bio-inspired airfoils were obtained with the panel methods at low and moderate subsonic speeds, while the small transonic difference method was used in the high-subsonic speed range. Basic and ellipse-like airfoils produce higher total drag at low and moderate velocities and higher forebody drag in the high-subsonic range when compared to derived and parabola-like airfoils. The obtained critical Mach numbers are in the range from 0.76 to 0.78, where three bionic airfoils show values equal to or smaller than the values of ellipse- and parabola-like airfoils. The profile with the shortest bio-inspired relative chord has a higher critical Mach number value than the parabola-like profile. The sonic lines above these profiles appear at close positions. The applied set of examination methods of the bio-inspired design is not time consuming and produces sufficiently good results in the conceptual stage. Therefore, a further development of unique and adjusted numerical methods and codes at pre-computational fluid dynamics run is encouraged, together with shape parameterization. PB - Springer Nature Switzerland AG 2020 T2 - Journal of the Brazilian Society of Mechanical Sciences and Engineering T1 - Multidisciplinary research method for designing and selection of bio-inspired profiles in the conceptual designing stage VL - 43 IS - 1 SP - 57 DO - 10.1007/s40430-020-02789-2 ER -
@article{ author = "Linić, Suzana Lj. and Lučanin, Vojkan J. and Živković, Srđan P. and Raković, Marko and Ristić, Slavica S. and Radojković, Bojana and Polić, Suzana R.", year = "2021", url = "https://cer.ihtm.bg.ac.rs/handle/123456789/4240", abstract = "A multidisciplinary research method was employed with the intention to create a series of bio-inspired flattened airfoils, observe their aerodynamic characteristics, and analyse their applicability to small devices or to designs of high-speed trains, within the shortest period in the conceptual stage. A research specimen of a kingfisher, selected for biomimicry, was examined with the following methods: visual inspection, analysis of photographs, manufacturing quality control measurement with a 3D laser scanner, and microscopy. A basic multi-arc-line profile, re-engineered from the overlapped specimen shape data and based on the observations, was used for designing a series of seven derived airfoils. The aerodynamic characteristics of the bio-inspired airfoils were obtained with the panel methods at low and moderate subsonic speeds, while the small transonic difference method was used in the high-subsonic speed range. Basic and ellipse-like airfoils produce higher total drag at low and moderate velocities and higher forebody drag in the high-subsonic range when compared to derived and parabola-like airfoils. The obtained critical Mach numbers are in the range from 0.76 to 0.78, where three bionic airfoils show values equal to or smaller than the values of ellipse- and parabola-like airfoils. The profile with the shortest bio-inspired relative chord has a higher critical Mach number value than the parabola-like profile. The sonic lines above these profiles appear at close positions. The applied set of examination methods of the bio-inspired design is not time consuming and produces sufficiently good results in the conceptual stage. Therefore, a further development of unique and adjusted numerical methods and codes at pre-computational fluid dynamics run is encouraged, together with shape parameterization.", publisher = "Springer Nature Switzerland AG 2020", journal = "Journal of the Brazilian Society of Mechanical Sciences and Engineering", title = "Multidisciplinary research method for designing and selection of bio-inspired profiles in the conceptual designing stage", volume = "43", number = "1", pages = "57", doi = "10.1007/s40430-020-02789-2" }
Linić SL, Lučanin VJ, Živković SP, Raković M, Ristić SS, Radojković B, Polić SR. Multidisciplinary research method for designing and selection of bio-inspired profiles in the conceptual designing stage. Journal of the Brazilian Society of Mechanical Sciences and Engineering. 2021;43(1):57
Linić, S. Lj., Lučanin, V. J., Živković, S. P., Raković, M., Ristić, S. S., Radojković, B.,& Polić, S. R. (2021). Multidisciplinary research method for designing and selection of bio-inspired profiles in the conceptual designing stage. Journal of the Brazilian Society of Mechanical Sciences and EngineeringSpringer Nature Switzerland AG 2020., 43(1), 57. https://doi.org/10.1007/s40430-020-02789-2
Linić Suzana Lj., Lučanin Vojkan J., Živković Srđan P., Raković Marko, Ristić Slavica S., Radojković Bojana, Polić Suzana R., "Multidisciplinary research method for designing and selection of bio-inspired profiles in the conceptual designing stage" 43, no. 1 (2021):57, https://doi.org/10.1007/s40430-020-02789-2 .