000782134 000__ 04666cam\a2200517Ii\4500 000782134 001__ 782134 000782134 005__ 20230306143239.0 000782134 006__ m\\\\\o\\d\\\\\\\\ 000782134 007__ cr\cn\nnnunnun 000782134 008__ 170516s2017\\\\sz\a\\\\o\\\\\001\0\eng\d 000782134 019__ $$a987358852 000782134 020__ $$a9783319505688$$q(electronic book) 000782134 020__ $$a3319505688$$q(electronic book) 000782134 020__ $$z9783319505671 000782134 020__ $$z331950567X 000782134 035__ $$aSP(OCoLC)ocn987302272 000782134 035__ $$aSP(OCoLC)987302272$$z(OCoLC)987358852 000782134 040__ $$aN$T$$beng$$erda$$epn$$cN$T$$dEBLCP$$dGW5XE$$dYDX$$dN$T$$dOCLCF$$dUAB 000782134 049__ $$aISEA 000782134 050_4 $$aTJ840 000782134 08204 $$a620.1/06$$223 000782134 08204 $$a629.8$$223 000782134 24500 $$aRecent progress in flow control for practical flows :$$bresults of the STADYWICO and IMESCON Projects /$$cPiotr Doerffer, George N. Barakos, Marcin M. Luczak, editors. 000782134 264_1 $$aCham, Switzerland :$$bSpringer,$$c2017. 000782134 300__ $$a1 online resource (xi, 511 pages) :$$billustrations. 000782134 336__ $$atext$$btxt$$2rdacontent 000782134 337__ $$acomputer$$bc$$2rdamedia 000782134 338__ $$aonline resource$$bcr$$2rdacarrier 000782134 500__ $$aIncludes index. 000782134 5050_ $$aAcknowledgements; Contents; Part I Introduction to Flow Control Technology; 1 Introduction and Literature Survey; 1.1 Introduction; 1.2 Vortex Generators; 1.3 Air-Jet Vortex Generators; 1.4 Synthetic Jets; 1.5 Surface Blowing Circulation; 1.6 Surface Suction; 1.7 Plasma Technology; 1.8 Nonfluidic Devices; 1.8.1 Leading Edge Geometries; 1.8.2 Trailing Edge Flaps: Gurney Flaps; 1.8.2.1 Actuation Mechanism; 1.9 Conclusions; References; Part II Design of Modern Gurney Flap; 2 CFD Method for Modelling Gurney Flaps; 2.1 Numerical Methods; 2.1.1 HMB Solver; 2.1.2 Modelling Gurney Flaps 000782134 5058_ $$a2.1.2.1 Proposed Methods2.1.2.2 Implementation of the Gurney flaps; 2.1.3 Results for Gurney Flaps in Two Dimensions; 2.1.3.1 Fixed Gurney Flap; 2.1.3.2 Resolving Flow Details Near the Gurney Flap; 2.1.3.3 Comparison Against Thick Gurney Flap; 2.2 3D Computations: Gurney Flaps vs Vortex Generators, Comparison Study of Aerodynamic Characteristics; 2.2.1 Static Computations; 2.2.2 Pitching-Translating Wing Computations; 2.2.3 Observations; References; 3 Performance Enhancement of Rotors in Hover Using Fixed Gurney Flaps; Nomenclature; Latin; Greek; Acronyms; 3.1 Numerical Methods 000782134 5058_ $$a3.1.1 Modelling Gurney Flaps3.1.2 Coupling with Structural Dynamics; 3.1.3 Trimming Method; 3.2 Hover Flight Calculations; 3.2.1 W3-Sokol MRB Geometry; 3.2.2 Rigid Blade Computations; 3.2.2.1 Performance; 3.2.2.2 Analysis of Rigid Blade Results; 3.2.3 Aeroelastic Calculations; 3.2.3.1 Application of the Aeroelastic Method and Trimming; 3.2.3.2 Analysis of Elastic Blade Results; 3.3 Conclusions; References; 4 Alleviation of Retreating Side Stall Using Active Gurney Flaps; Nomenclature; Latin; Greek; Acronyms; 4.1 Introduction; 4.2 Numerical Methods; 4.2.1 Coupling with Structural Dynamics 000782134 5058_ $$a4.2.2 Trimming Method4.3 W3 Main Rotor; 4.4 Flight Test Data; 4.5 Forward Flight; 4.5.1 Rigid Blade; 4.5.2 Elastic Blade; 4.6 Conclusions; References; 5 Effect of Gurney Flaps on Overall Helicopter Flight Envelope; Nomenclature; Latin; Greek; Acronyms; 5.1 Gurney Effect on Structural Properties of the Blade; 5.2 Closed Loop Control; 5.2.1 2D Closed Loop Control; 5.2.2 W3-Sokol Closed Loop Control; 5.3 Effect of Gurney Flap on Full Helicopter Model; 5.3.1 FLIGHTLAB Model; 5.3.2 FLIGHTLAB Validation; 5.3.3 Designed Controller for Closed Loop Analysis 000782134 5058_ $$a5.3.4 Synthesis of Control Law with Observers5.3.5 Handling Qualities; 5.4 Conclusions and Future Work; References; 6 Active Gurney Flap Unit; 6.1 Introduction; 6.2 Gurney Flap Actuation Mechanism Concept; 6.2.1 Position Analysis; 6.2.2 Velocity Analysis; 6.2.3 Dynamic Force Analysis; 6.3 Blade Section with Active Gurney Flap; 6.4 Conclusions; References; 7 Gurney Flap Force Calculations; 7.1 Introduction; 7.2 Retracting Gurney Flap; 7.3 Solution Methodology; 7.4 Results; 7.5 Conclusion; References; Part III Design of Rod Vortex Generator 000782134 506__ $$aAccess limited to authorized users. 000782134 588__ $$aOnline resource; title from PDF title page (SpringerLink, viewed May 23, 2017). 000782134 650_0 $$aFluid power technology. 000782134 650_0 $$aAutomatic control. 000782134 7001_ $$aDoerffer, Piotr,$$eeditor. 000782134 7001_ $$aBarakos, George N.,$$eeditor. 000782134 7001_ $$aLuczak, Marcin M.,$$eeditor. 000782134 77608 $$iPrint version:$$z331950567X$$z9783319505671$$w(OCoLC)962351217 000782134 852__ $$bebk 000782134 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-3-319-50568-8$$zOnline Access$$91397441.1 000782134 909CO $$ooai:library.usi.edu:782134$$pGLOBAL_SET 000782134 980__ $$aEBOOK 000782134 980__ $$aBIB 000782134 982__ $$aEbook 000782134 983__ $$aOnline 000782134 994__ $$a92$$bISE