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Physics 101: Lecture 18 Fluids II

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1 Physics 101: Lecture 18 Fluids II
Exam III Physics 101: Lecture 18 Fluids II Textbook Sections 9.6 – 9.8 1

2 Archimedes’ Principle
Determine force of fluid on immersed cube Draw FBD FB = F2 – F1 = P2 A – P1 A = (P2 – P1)A = r g d A = r g V Buoyant force is weight of displaced fluid!

3 Archimedes Example mg Fb Mg A cube of plastic 4.0 cm on a side with density = 0.8 g/cm3 is floating in the water. When a 9 gram coin is placed on the block, how much does it sink below the water surface? S F = m a Fb – Mg – mg = 0 r g Vdisp = (M+m) g Vdisp = (M+m) / r h A = (M+m) / r h = (M + m)/ (r A) = (51.2+9)/(1 x 4 x 4) = 3.76 cm h Transparency M = rplastic Vcube = 4x4x4x0.8 = 51.2 g

4 Review Static Fluids Today include moving fluids! A1v1 = A2 v2
Pressure is force exerted by molecules “bouncing” off container P = F/A Gravity/weight effects pressure P = P0 + rgd Buoyant force is “weight” of displaced fluid. F = r g V Today include moving fluids! A1v1 = A2 v2 P1+rgy1 + ½ rv12 = P2+rgy2 + ½rv22 Note previous comes from F=ma. New material comes from conservation of energy!

5 Archimedes’ Principle
Buoyant Force (FB) weight of fluid displaced FB = fluidVoldisplaced g Fg = mg = object Volobject g object sinks if object > fluid object floats if object < fluid If object floats… FB = Fg Therefore: fluid g Voldispl. = object g Volobject Therefore: Voldispl./Volobject = object / fluid 1

6 Preflight 1 Suppose you float a large ice-cube in a glass of water, and that after you place the ice in the glass the level of the water is at the very brim. When the ice melts, the level of the water in the glass will: 1. Go up, causing the water to spill out of the glass. 2. Go down. 3. Stay the same. CORRECT USE FBD F_B – mg = 0 F_B = mg r_w V_dis g = r_ice V_ice g r_w V_dis = r_w V_melted ice V_dis = V_melted ice B = W g Voldisplaced W = ice g Volice  W g Volmelted_ice

7 Preflight 2 Which weighs more:
1. A large bathtub filled to the brim with water. 2. A large bathtub filled to the brim with water with a battle-ship floating in it. 3. They will weigh the same. Tub of water Tub of water + ship Overflowed water CORRECT Weight of ship = Buoyant force = Weight of displaced water

8 Continuity of Fluid Flow
Watch “plug” of fluid moving through the narrow part of the tube (A1) Time for “plug” to pass point Dt = x1 / v1 Mass of fluid in “plug” m1 = r Vol1 =r A1 x1 or m1 = rA1v1Dt Watch “plug” of fluid moving through the wide part of the tube (A2) Time for “plug” to pass point Dt = x2 / v2 Mass of fluid in “plug” m2 = r Vol2 =r A2 x2 or m2 = rA2v2Dt Continuity Equation says m1 = m2 fluid isn’t building up or disappearing A1 v1 = A2 v2

9 Faucet Preflight A stream of water gets narrower as it falls from a faucet (try it & see). Explain this phenomenon using the equation of continuity A1 A2 V1 V2 As the water leaves the faucet, gravity is pulling the water down and causes the velocity to increase. As velocity increases, the area is suppose to decrease, which it does. The stream gets narrower. Post-spring break answers: It's a miracle that has not been explained by modern science. All sinks are fitted with bottom-mounted singularities which draw streams of water directly into a single point of nearly infinite mass from which not even light can escape. i tried it and it didn't do that! I just recently watched A.I. for the first time, please warn the class that it is a terrible movie.

10 Fluid Flow Concepts r Mass flow rate: Av (kg/s)
A1 P1 v1 A2 P2 v2 Mass flow rate: Av (kg/s) Volume flow rate: Av (m3/s) Continuity: A1 v1 = A2 v2 i.e., mass flow rate the same everywhere e.g., flow of river

11 Pressure, Flow and Work Continuity Equation says fluid speeds up going to smaller opening, slows down going to larger opening Acceleration due to change in pressure. P1 > P2 Smaller tube has faster water and LOWER pressure Change in pressure does work! W = P1A1Dx1 - P2A2Dx2 = (P1 – P2)Volume Recall: W=F d = PA d = P Vol Demo

12 Pressure ACT What will happen when I “blow” air between the two plates? A) Move Apart B) Come Together C) Nothing Several Demos here include cans on straws. There is air pushing on both sides of plates. If we get rid of the air in the middle, then just have air on the outside pushing them together.

13 Bernoulli’s Eqs. And Work
Consider tube where both Area, height change. W = DK + DU (P1-P2) V = ½ m (v22 – v12) + mg(y2-y1) (P1-P2) V = ½ rV (v22 – v12) + rVg(y2-y1) P1+rgy1 + ½ rv12 = P2+rgy2 + ½rv22 Note: W=F d = PA d = P V

14 Bernoulli ACT Through which hole will the water come out fastest?
P1+rgy1 + ½ rv12 = P2+rgy2 + ½rv22 A Note: All three holes have same pressure P=1 Atmosphere B rgy1 + ½ rv12 = rgy2 + ½rv22 C gy1 + ½ v12 = gy2 + ½v22 Smaller y gives larger v. Hole C is fastest

15 Act A large bucket full of water has two drains. One is a hole in the side of the bucket at the bottom, and the other is a pipe coming out of the bucket near the top, which bent is downward such that the bottom of this pipe even with the other hole, like in the picture below: Though which drain is the water spraying out with the highest speed? 1. The hole 2. The pipe 3. Same CORRECT Note, the correct height, is where the water reaches the atmosphere, so both are exiting at the same height!

16 Example (like HW) Continuity Equation Bernoulli Equation
A garden hose w/ inner diameter 2 cm, carries water at 2.0 m/s. To spray your friend, you place your thumb over the nozzle giving an effective opening diameter of 0.5 cm. What is the speed of the water exiting the hose? What is the pressure difference between inside the hose and outside? Continuity Equation A1 v1 = A2 v2 v2 = v1 ( A1/A2) = v1 ( π r12 / π r22) = 2 m/s x 16 = 32 m/s Lift on house if v=30 m/s. Density of air = 1.27 kg / m^3 Bernoulli Equation P1+rgy1 + ½ rv12 = P2+rgy2 + ½rv22 P1 – P2 = ½ r (v22 – v12) = ½ x (1000 kg/m3) (1020 m2/s2) = 5.1x105 PA

17 Lift a House Calculate the net lift on a 15 m x 15 m house when a 30 m/s wind (1.29 kg/m3) blows over the top. P1+rgy1 + ½ rv12 = P2+rgy2 + ½rv22 P1 – P2 = ½ r (v22 – v12) = ½ r (v22 – v12) = ½ (1.29) (302) N / m2 = 581 N/ m2 F = P A = 581 N/ m2 (15 m)(15 m) = 131,000 N = 29,000 pounds! (note roof weighs 15,000 lbs) 48

18 Fluid Flow Summary Mass flow rate: Av (kg/s)
A1 P1 A2 P2 v1 v2 r Mass flow rate: Av (kg/s) Volume flow rate: Av (m3/s) Continuity: A1 v1 = A2 v2 Bernoulli: P1 + 1/2 v12 + gh1 = P2 + 1/2 v22 + gh2 50

19 Practice Problems Chapt. 9, blue numbered problems in sections 2, 3, 4, 5, 6, and 7.

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