Recommended
More Related Content
What's hot
What's hot (20)
Similar to Lecture 6.pdf
Similar to Lecture 6.pdf (18)
Recently uploaded
Recently uploaded (20)
Lecture 6.pdf
- 1. CEE-235 Credit: 3.0 (Session: 2019-20) Fluid Mechanics Dr. Bijit Kumar Banik Professor Department of Civil and Environmental Engineering Shahjalal University of Science and Technology Contact: bijit_sustbd@yahoo.com; bijit-cee@sust.edu Lecture-6 Force exerted on vane/blade
- 2. Impulse-Momentum Principle for steady flow with average velocity Momentum correction factor (β) Momentum correction factor (β) As velocity is not uniform over a section, the momentum per unit time transferred across that section will be different (for laminar flow, it is greater than that computed by mean velocity)
- 3. Thus rate of momentum transferred across an elementary area , where local velocity is , is, Momentum transferred for entire section (mV)actual, (mV)actual (mV)actual Momentum computed by mean velocity (mV)mean, (mV)mean (mV)mean Hence, the correction factor, (mV)actual (mV)mean (mV)actual (mV)mean For circular pipe, Laminar flow =4/3 Turbulent flow = 1.005 to 1.05
- 4. Problem 6.1 [p-176 Franzini]: In laminar flow through a circular pipe the velocity profile is a parabola, the equation of which is , where u is the velocity at any radius r, is the maximum velocity in the center of the pipe where r=0 and is the radius to the wall of the pipe. Average velocity for laminar flow in a circular pipe, V =0.5 . Prove =4/3. Home Work for next class
- 5. ∑ Fx = P1A1 − P2A2 − (FR/F)x = Q (V2−V1) ∑ Fx = P1A1 − P2A2 − (FR/F)x = Q (V2−V1) 6.3 Force exerted on pressure conduits [PP-151, Franzini] Flow in the horizontal plane
- 6. ∑ Fx = P1A1 − P2A2cos − (FB/F)x = Q (V2cos −V1) ∑ Fx = P1A1 − P2A2cos − (FB/F)x = Q (V2cos −V1) If the fluid undergoes a change in both direction and velocity: ∑ Fy = - P2A2 + (FB/F)y = Q (V2sin ) ∑ Fy = - P2A2 + (FB/F)y = Q (V2sin ) Force exerted by bend on fluid FB/F = [(FB/F)x 2 + (FB/F)y 2]1/2 FB/F = [(FB/F)x 2 + (FB/F)y 2]1/2
- 7. Force exerted by nozzle on liquid in y-direction Force exerted by nozzle on liquid in y-direction Example 6.1: Determine the magnitude and direction of the resultant force exerted on this double nozzle. Both nozzle jets have a velocity of 12 m/s . The axes of the pipe and both nozzles lie in a horizontal plane. kN/m3 (Neglect friction) [page 153, Franzini]
- 8. Solution: Continuity Equation, A1V1 = A2V2 + A3V3 Continuity Equation, A1V1 = A2V2 + A3V3 A1= 152; A2 = 102; A3= (7.5)2 A1= 152; A2 = 102; A3= (7.5)2 152 V1 = 102 (12) + (7.5)2 (12) 152 V1 = 102 (12) + (7.5)2 (12) V1 = 8.33 m/s V1 = 8.33 m/s Q1 = 2 * (8.33) = 0.147 m3/s Q1 = 2 * (8.33) = 0.147 m3/s Q2 = * (0.10)2 * 12 = 0.094 m3/s Q2 = * (0.10)2 * 12 = 0.094 m3/s Q3 = * (0.075)2 * 12 = 0.053 m3/s Q3 = * (0.075)2 * 12 = 0.053 m3/s Bernoulli’s Equation, at point (1) and (2): Bernoulli’s Equation, at point (1) and (2): (P1/ ) + (V1 2/2g) = (P2/ ) + (V2 2/2g) (P1/ ) + (V1 2/2g) = (P2/ ) + (V2 2/2g) (P1 / (9.81 1000)) + (8.332/(2 9.81)) = 0 + 122 / (2 9.81) (P1 / (9.81 1000)) + (8.332/(2 9.81)) = 0 + 122 / (2 9.81) P2 = Atm. pressure = 0 P2 = Atm. pressure = 0
- 9. P1/(9.81 1000) = 3.80 P1/(9.81 1000) = 3.80 P1 = 37.3 103 N/m2 = 37.3 kN/m2 P1 = 37.3 103 N/m2 = 37.3 kN/m2 Applying Momentum equation: Applying Momentum equation: ∑ Fx = P1A1 – (FN/L)x = ρQ2V2 cos150 + ρQ3V3 cos300 – ρQ1V1 ∑ Fx = P1A1 – (FN/L)x = ρQ2V2 cos150 + ρQ3V3 cos300 – ρQ1V1 ρ = = . / . / = 1. . / / = 103 kg/m3 (37.3× 103) × (0.15)2– (FN/L)x=103×0.094×12cos150 + 103×0.053×12cos300 – 103×0.147 × 8.33 (37.3× 103) × (0.15)2– (FN/L)x=103×0.094×12cos150 + 103×0.053×12cos300 – 103×0.147 × 8.33
- 10. 659 – (FN/L)x = 1089.56 + 550.79 – 1224.51 659 – (FN/L)x = 1089.56 + 550.79 – 1224.51 (FN/L)x = 659 – 415.84 = 243.16 (FN/L)x = 659 – 415.84 = 243.16 (FN/L)x = 0.243 kN (FN/L)x = 0.243 kN ∑ Fy = (FN/L)y = ρQ2V2 sin150 + ρQ3(-V3 sin300)– ρQ1V1 ∑ Fy = (FN/L)y = ρQ2V2 sin150 + ρQ3(-V3 sin300)– ρQ1V1 0 VVI: Remember the sign convention (FN/L)y = 103 0.094 12 sin150– 103 0.053 12 sin300 (FN/L)y = 103 0.094 12 sin150– 103 0.053 12 sin300 (FN/L)y = = - 26.05 N = - 0.026 kN (FN/L)y = = - 26.05 N = - 0.026 kN i.e. the assumed direction was wrong So, FN/L = [(0.243)2 + (0.026)2]1/2 = 0.244 kN So, FN/L = [(0.243)2 + (0.026)2]1/2 = 0.244 kN (Ans.) tan-1 . . = 6.10 tan-1 . . = 6.10 (Ans.) Solve, Problem 6.4, 6.5, 6.6, 6.7, 6.8, 6.9 and 6.10. Book: Franzini, p 176-177 Solve, Problem 6.4, 6.5, 6.6, 6.7, 6.8, 6.9 and 6.10. Book: Franzini, p 176-177
- 11. 6.4: Force exerted on a stationary vane or blade (p-155 Franzini) The mechanism of work and energy from fluid jets to moving vanes is studied as an application of momentum principle. Example 6.2 : In the fig. suppose that =30 , v1=30 m/s and the stream is a jet of water with an initial diameter of 5 cm. Assume friction losses such that v2=28.5 m/s. Find the resultant force on the blade. Assume that flow occurs in a horizontal plane , =1000 kg/m3.
- 12. A= (0.05)2 =0.001963 m2 A= (0.05)2 =0.001963 m2 Momentum eqn at points 1 & 2 Momentum eqn at points 1 & 2 x=(-FB/W)x= Q(v2cos30 -v1) x=(-FB/W)x= Q(v2cos30 -v1) =1000 (0.001963 30)(28.5 cos30 -30) =1000 (0.001963 30)(28.5 cos30 -30) = -313.2 N = -313.2 N (FB/W)x =313.2 N (FB/W)x =313.2 N 𝑦 = (FB/W)y = (v2sin30 -0) 𝑦 = (FB/W)y = (v2sin30 -0) =1000 (0.001963 30)(28.5 sin30 ) = 839.2 N B/W= = 895.7 N B/W= = 895.7 N = . . = . . 313.2 N 839.2 N B/W
- 13. 313.2 N 839.2 N B/W 313.2 N 839.2 N W/B if friction was not considered, v1=v2=30 m/s if friction was not considered, v1=v2=30 m/s x=(-FB/w)x=(1000) (0.001963 30)(30cos30 -30) (FB/w)x = 236.7 N 𝑦 =(FB/w)y=(1000) (0.001963 30) (30sin30 -0) (FB/w)y =883.4 N FB/w= = 914.6 N = . . =75 236.7 N 883.4 N B/W A= ×(0.05)2 =0.001963 m2 A= ×(0.05)2 =0.001963 m2
- 14. 313.2 N 839.2 N B/W 313.2 N 839.2 N W/B x=(-FB/w)x=(1000) (0.001963 30) (30cos30 -30) x=(-FB/w)x=(1000) (0.001963 30) (30cos30 -30) 𝑦 =(FB/w)y=(1000) (0.001963 30) (30sin30 -0) 𝑦 =(FB/w)y=(1000) (0.001963 30) (30sin30 -0) 236.7 N 883.4 N B/W friction was considered 236.7 N 883.4 N W/B friction was not considered x=(-FB/W)x=1000 (0.001963 30) (28.5cos30 -30) x=(-FB/W)x=1000 (0.001963 30) (28.5cos30 -30) 𝑦 = (FB/W)y =1000 (0.001963 30) (28.5sin30 -0) 𝑦 = (FB/W)y =1000 (0.001963 30) (28.5sin30 -0) if if Friction increase or decrease (FB/W)x ? Friction increase or decrease (FB/W)x ? Friction increase or decrease (FB/W)y ? Friction increase or decrease (FB/W)y ?
- 15. if if Friction increases (FB/W)x Friction decreases (FB/W)x Friction decreases (FB/W)y Friction decreases (FB/W)y If -FR= 2 V1 ] You need more force to clear the snow !
- 16. 6.5 : Relation between absolute and relative velocities (p-156, Franzini )
- 17. Thank you