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bernoullieffect

bernoulli effect

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There are 15 letters in BERNOULLIEFFECT ( B3C3E1F4I1L1N1O1R1T1U1 )

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6 letters out of BERNOULLIEFFECT

BEETLE BEFELL BEFORE BEFOUL BEFRET BELIEF BELIER BELTER BEREFT BERLIN BICORN BICRON BILLER BILLET BILLON BOFFIN BOILER BOLETE BOLETI BOLTER BONIER BOREEN BOUCLE BOUFFE BOULLE BOUNCE BOURNE BRILLO BRUCIN BRULOT BRUNET BUFFER BUFFET BULLET BUNTER BURNET BURNIE BURTON BUTENE BUTLER CEILER CENOTE CENTER CENTRE CERITE CINEOL CITOLE CITRON CLIENT CLONER COBNUT COFFEE COFFER COFFIN COFFLE COIFFE COILER COINER COLLET COLLIE COLTER COLURE CONFER CONFIT CORBEL CORBIE CORNEL CORNET CORTIN COULEE COUTER CRENEL CREOLE CRETIN CROUTE CULLER CULLET CURITE CUTLER CUTOFF EELIER EFFECT EFFETE EFFORT ELUENT ENCORE ENOLIC ENROBE ENROLL ENTICE ENTIRE ENTOIL ENTREE EOCENE EROTIC ETERNE ETOILE FEEBLE FEELER FELINE FELLER FELLOE FENCER FERINE FERLIE FERULE FIERCE FILLER FILLET FILTER FITFUL FLEECE FLORET FLORIN FLUENT FLUTER FOIBLE FORINT FOULER FROLIC FUELER FULFIL FULLER FUTILE INCULT INFECT IREFUL LECTIN LECTOR LEFTER LENITE LENTIC LENTIL LEUCIN LICTOR LIEFER LIERNE LIFTER LINTEL LINTER LINTOL LOBULE LOCULE LOCULI LOFTER LOITER LUBRIC LUCENT LUCERN LUCITE LUETIC LUNIER LUTEIN NEBULE NELLIE NEROLI NEUTER NIELLO NIFFER NOBLER NOETIC NORITE NOTICE NUBILE NUCLEI OCELLI OFFCUT OFFICE OLEFIN OLEINE ORCEIN ORIENT OUREBI OUTLIE REBILL REBOIL REBUFF RECENT RECITE RECOIL RECOIN REFECT REFEEL REFELL REFELT REFILE REFILL REFINE REFLET REFUEL REFUTE RELENT RELICT RELIEF RELINE RELUCT RETELL RETENE RETILE RETINE RETUNE RIBLET RIFFLE RILLET ROUBLE RUBOFF RUFFLE RUNLET RUNOFF RUTILE TEENER TEFLON TELFER TELLER TENOUR TENREC TENURE TERBIC TERCEL TIERCE TILLER TINFUL TOFFEE TOILER TOLLER TOLUIC TONIER TREBLE TRIENE TRIFLE TRIUNE TRUFFE TUFOLI TUILLE TUREEN TURION UNBELT UNBOLT UNCOIL UNFELT UNFREE UNITER UNREEL UNROBE UNROLL URETIC

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Bernoulli effect might refer to
In fluid dynamics, Bernoulli's principle states that an increase in the speed of a fluid occurs simultaneously with a decrease in pressure or a decrease in the fluid's potential energy. The principle is named after Daniel Bernoulli who published it in his book Hydrodynamica in 1738. Although Bernoulli deduced that pressure decreases when the flow speed increases, it was Leonhard Euler who derived Bernoulli's equation in its usual form in 1752. The principle is only applicable for isentropic flows: when the effects of irreversible processes (like turbulence) and non-adiabatic processes (e.g. heat radiation) are small and can be neglected.
* Bernoulli's principle can be applied to various types of fluid flow, resulting in various forms of Bernoulli's equation; there are different forms of Bernoulli's equation for different types of flow. The simple form of Bernoulli's equation is valid for incompressible flows (e.g. most liquid flows and gases moving at low Mach number). More advanced forms may be applied to compressible flows at higher Mach numbers (see the derivations of the Bernoulli equation).
* Bernoulli's principle can be derived from the principle of conservation of energy. This states that, in a steady flow, the sum of all forms of energy in a fluid along a streamline is the same at all points on that streamline. This requires that the sum of kinetic energy, potential energy and internal energy remains constant. Thus an increase in the speed of the fluid – implying an increase in its kinetic energy (dynamic pressure) – occurs with a simultaneous decrease in (the sum of) its potential energy (including the static pressure) and internal energy. If the fluid is flowing out of a reservoir, the sum of all forms of energy is the same on all streamlines because in a reservoir the energy per unit volume (the sum of pressure and gravitational potential ρ g h) is the same everywhere.Bernoulli's principle can also be derived directly from Isaac Newton's Second Law of Motion. If a small volume of fluid is flowing horizontally from a region of high pressure to a region of low pressure, then there is more pressure behind than in front. This gives a net force on the volume, accelerating it along the streamline.Fluid particles are subject only to pressure and their own weight. If a fluid is flowing horizontally and along a section of a streamline, where the speed increases it can only be because the fluid on that section has moved from a region of higher pressure to a region of lower pressure; and if its speed decreases, it can only be because it has moved from a region of lower pressure to a region of higher pressure. Consequently, within a fluid flowing horizontally, the highest speed occurs where the pressure is lowest, and the lowest speed occurs where the pressure is highest.
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