05589nam 2200769Ia 450 991082208650332120200520144314.0978661213667297812821366701282136674978047005947004700594789780470059463047005946X(CKB)1000000000767075(EBL)470091(SSID)ssj0000100712(PQKBManifestationID)11128312(PQKBTitleCode)TC0000100712(PQKBWorkID)10036896(PQKB)11606186(Au-PeEL)EBL470091(CaPaEBR)ebr10308445(CaONFJC)MIL213667(MiAaPQ)EBC470091(OCoLC)441874975(OCoLC)1229555786(FINmELB)ELB178959(Perlego)2750553(EXLCZ)99100000000076707520080819d2008 uy 0engur|n|---|||||txtccrAircraft fuel systems /Roy Langton ... [et al.]1st ed.Chichester, West Sussex, U.K. ;Hoboken, NJ Wiley20081 online resource (367 p.)Aerospace seriesDescription based upon print version of record.9780470057087 0470057084 Includes bibliographical references and index.Aircraft Fuel Systems; Contents; Acknowledgements; List of Acronyms; Series Preface; 1 Introduction; 1.1 Review of Fuel Systems Issues; 1.1.1 Basic Fuel System Characteristics and Functions; 1.1.2 Fuel Quantity Measurement; 1.1.3 Fuel Properties and Environmental Issues; 1.2 The Fuel System Design and Development Process; 1.2.1 Program Management; 1.2.2 Design and Development Support Tools; 1.2.3 Functional Maturity; 1.2.4 Testing and Certification; 1.3 Fuel System Examples and Future Technologies; 1.4 Terminology; 2 Fuel System Design Drivers; 2.1 Design Drivers2.1.1 Intended Aircraft Mission2.1.2 Dispatch Reliability Goals; 2.1.3 Fuel Tank Boundaries and Tank Location Issues; 2.1.4 Measurement and Management System Functional Requirements; 2.1.5 Electrical Power Management Architecture and Capacity; 2.2 Identification and Mitigation of Safety Risks; 2.2.1 Fuel System Risks; 3 Fuel Storage; 3.1 Tank Geometry and Location Issues for Commercial Aircraft; 3.2 Operational Considerations; 3.2.1 CG Shift due to Fuel Storage; 3.2.2 Unusable Fuel; 3.3 Fuel Tank Venting; 3.3.1 Vent System Sizing; 3.4 Military Aircraft Fuel Storage Issues3.4.1 Drop Tanks and Conformal Tanks3.4.2 Closed Vent Systems; 3.5 Maintenance Considerations; 3.5.1 Access; 3.5.2 Contamination; 4 Fuel System Functions of Commercial Aircraft; 4.1 Refueling and Defueling; 4.1.1 Pressure Refueling; 4.1.2 Defueling; 4.2 Engine and APU Feed; 4.2.1 Feed Tank and Engine Location Effects; 4.2.2 Feed Pumping Systems; 4.2.3 Feed Tank Scavenging; 4.2.4 Negative g Considerations; 4.2.5 Crossfeed; 4.2.6 Integrated Feed System Solution; 4.2.7 Feed System Design Practices; 4.3 Fuel Transfer; 4.3.1 Fuel Burn Scheduling; 4.3.2 Wing Load Alleviation4.3.3 Fuel Transfer System Design Requirements4.4 Fuel Jettison; 4.4.1 Jettison System Example; 4.5 Fuel Quantity Gauging; 4.5.1 Architectural Considerations; 4.5.2 Fuel Load Planning; 4.5.3 Leak Detection; 4.6 Fuel Management and Control; 4.6.1 Refuel Distribution; 4.6.2 In-flight Fuel Management; 4.6.3 Fuel Management System Architecture Considerations; 4.6.4 Flight Deck Displays, Warnings and Advisories; 4.7 Ancillary Systems; 5 Fuel System Functions of Military Aircraft and Helicopters; 5.1 Refueling and Defueling; 5.1.1 Pressure Refueling; 5.1.2 Defueling; 5.2 Engine and APU Feed5.3 Fuel Transfer5.4 Aerial Refueling; 5.4.1 Design and Operational Issues Associated with Aerial Refueling; 5.4.2 Flying Boom System; 5.4.3 Probe and Drogue Systems; 5.5 Fuel Measurement and Management Systems in Military Applications; 5.5.1 KC-135 Aerial Refueling Tanker Fuel Measurement and Management System; 5.6 Helicopter Fuel Systems; 6 Fluid Mechanical Equipment; 6.1 Ground Refueling and Defueling Equipment; 6.1.1 Refueling and Defueling Adaptors; 6.1.2 Refuel Shut-off Valves; 6.1.3 Fuel Transfer Valves; 6.2 Fuel Tank Venting and Pressurization Equipment; 6.3 Aerial Refueling Equipment6.3.1 The Flying Boom System EquipmentAll aspects of fuel products and systems including fuel handling, quantity gauging and management functions for both commercial (civil) and military applications. The fuel systems on board modern aircraft are multi-functional, fully integrated complex networks. They are designed to provide a proper and reliable management of fuel resources throughout all phases of operation, notwithstanding changes in altitude or speed, as well as to monitor system functionality and advise the flight crew of any operational anomalies that may develop. Collates together a wealth of information onAerospace series (Chichester, England)AirplanesFuel systemsAirplanesMotorsAirplanesFuel systems.AirplanesMotors.629.134/351629.13435Langton Roy943490MiAaPQMiAaPQMiAaPQBOOK9910822086503321Aircraft fuel systems2186111UNINA06760nam 2201777z- 450 991055750590332120210501(CKB)5400000000044497(oapen)https://directory.doabooks.org/handle/20.500.12854/68521(oapen)doab68521(oapen)68521(EXLCZ)99540000000004449720202105d2021 |y 0engurmn|---annantxtrdacontentcrdamediacrrdacarrierFlavonoids and Their Disease Prevention and Treatment PotentialBasel, SwitzerlandMDPI - Multidisciplinary Digital Publishing Institute20211 online resource (346 p.)3-0365-0000-6 3-0365-0001-4 Flavonoids are ubiquitously present in plant-based foods and natural health products. The molecule of flavonoids is characterized by a 15-carbon skeleton of C6-C3-C6, with the different structural configuration of subclasses. The major subclasses of flavonoids with health-promotional properties are the flavanols or catechins (e.g., epigallocatechin 3-gallate from green tea), the flavones (e.g., apigenin from celery), the flavonols (e.g., quercetin glycosides from apples, berries, and onion), the flavanones (e.g., naringenin from citrus), the anthocyanins (e.g., cyanidin-3-O-glucoside from berries), and the isoflavones (e.g., genistein from soya beans). Scientific evidence has strongly shown that regular intake of dietary flavonoids in efficacious amounts reduces the risk of oxidative stress- and chronic inflammation-mediated pathogenesis of human diseases such as cardiovascular disease, certain cancers, and neurological disorders. The physiological benefits of dietary flavonoids have been demonstrated to be due to multiple mechanisms of action, including regulating redox homeostasis, epigenetic regulations, activation of survival genes and signaling pathways, regulation of mitochondrial function and bioenergetics, and modulation of inflammation response. The role of flavonoids on gut microbiota and the impact of microbial metabolites of flavonoids on optimal health has begun to unravel. The complex physiological modulations of flavonoid molecules are due to their structural diversity. However, some flavonoids are not absorbed well, and their bioavailability could be enhanced through structural modifications and applications of nanotechnology, such as encapsulation. This Special Issue consists of four review articles on flavonoids and 15 original research articles, which cover the latest findings on the role of dietary flavonoids and their derivatives in disease prevention and treatment.HumanitiesbicsscSocial interactionbicsscHistorybicsscSocial and ethical issuesbicsscA-type proanthocyanidinsAcer okamotoanumafzelinaglyconsallodyniaamoebiasisanalgesiaangiogenesisanthocyaninanti-aging activityantiadhesive activityanticancer activityantioxidant activityantiprotozoal agentsapigeninapoptosisaspirinbacopaside Ibacoside Abacterial sepsisbioguided isolationblack rice cyanidin-3-O-glucosideCAM assaycancercancer chemopreventioncancer preventioncancer stem cellscanine cancer cell linescarcinogenesisCD44+/CD24−CDKscell cyclecell morphologycell proliferationchalconeschronological lifespancitruscitrus flavonoidsclinical trialscognitioncolorectal cancerCOVID-19cranberryCVDcytokinesdefatted pitaya seedDNA damagedyslipidemiaextractionflavan-3-olsflavonesflavonoidflavonoid contentflavonoidsflavonoids and their derivativesfoods for healthgene and protein regulatory networksglycosideshuman colon cancer cellshydroxybenzoic acidshyperalgesiahypersensitivityIKKβ, inflammatory cytokinesIL-1βIL-6IL-8in-vivo angiogenesisinfectious diseasesinflammationisoquercitrinisorhamnetinlung cancerluteolinmacrophagesmembrane PUFAs profilememory extinctionMexican oreganomicemicrobiomemicrogliamolecular mechanismsn/anatural productsneohesperidinneuroprotectionNF-kBNF-κBnon-flavonoidsobesitypassive avoidance testphenolic contentphenolic metabolitesphytochemicalsphytomedicinepro-inflammatory cytokinesprobioticsquercitrinresponse surface methodologySARSARS-COV-2smart nanoparticlesStat3synergistic effecttangeretinTNF-αtobacco-specific nitrosaminetoll-like receptor 4UPECurinary tract infectionsuropathogenic Escherichia coliUTIsvasorelaxationwood sterolsHumanitiesSocial interactionHistorySocial and ethical issuesRupasinghe H.P. Vasanthaedt1283178Rupasinghe H.P. VasanthaothBOOK9910557505903321Flavonoids and Their Disease Prevention and Treatment Potential3018931UNINA