Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no...

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Applications of Bernoulli’s Principle

Transcript of Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no...

Page 1: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Applications of Bernoulli’s Principle

Page 2: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

faster speedslower speed

more pressure less pressure

If no change in height: P + ½ρv2 = constant

P+ ρgy + ½ ρv2 = constant

Page 3: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

As the speed of a fluid increases, the pressure in the fluid decreases.

P α 1/v

Page 4: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Motion of fluid energykinetic

Pressure in fluid energypotential

KE + PE is constant

Page 5: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

d d/4v

If incompressible fluid (density = ρ),change in pressure?

Page 6: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Bernoulli & FlightBernoulli & Flight• Bernoulli’s Bernoulli’s

Principle is what Principle is what allows birds and allows birds and planes to fly.planes to fly.

• The secret The secret behind flight is behind flight is ‘under the wings.’‘under the wings.’

Page 7: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.
Page 8: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

AIRFOIL

On top: greater air speed and less air pressure

On bottom: less air speed and more air pressure

Page 9: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

DRAGDRAGTHRUSTTHRUST

LIFTLIFT

GRAVITYGRAVITY

Page 10: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

v1

v2

Net force on wing?

½ Aρ(v22 – v1

2)

ρair = 1.29 kg/m3

Page 11: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Spoiler – airfoil reversed

greater air speedless pressure

less air speedmore pressure

net force: downward

Page 12: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Racecar

Spoiler provides better tractionand avoids lift

Page 13: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Wind over a roof

v

v = 0patm

proof

Patm = Proof + ½ ρv2

Page 14: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

slow air speed

fast air speed

Page 15: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Curve Ball

Page 16: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.
Page 17: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Golf ball dimples

Page 18: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Winds over a mountain

Page 19: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Shower Curtain

Page 20: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.
Page 21: Applications of Bernoullis Principle faster speed slower speed more pressureless pressure If no change in height: P + ½ρv 2 = constant P+ ρgy + ½ ρv.

Atomizer – As air passes at top of tube, the pressure decreases and fluid is drawn upthe tube.