
Concept explainers
The variation of velocity with time.
The graph between the variations of velocity with time.
Time taken by ball to reach

Answer to Problem 111P
The time taken to reach
The graph between the variations of velocity with time is.
Explanation of Solution
Given information:
The diameter of the ball is
The below figure represent the free body diagram of the ball.
Figure-(1)
Write the expression of net force acting on the ball.
Here, the weight of the ball is
Write the expression of weight of the ball.
Here, the mass of the ball is
Write the expression of bouncy force.
Here, the mass of the fluid is
Substitute
Write the expression of the mass of the ball.
Here, the density of the ball is
Write the expression of the mass of the fluid.
Here, the density of the fluid is
Substitute
Write the expression of net force by Newton's law of motion.
Here, the acceleration is
Write the expression of acceleration.
Here, the change of velocity with respect to time is
Substitute
Substitute
Write the expression of volume of the ball.
Here, the diameter of the ball is
Write the expression of drag force by using strokes equation.
Here, the dynamic viscosity is
Substitute
Integrate Equation (VI) on both sides as initial velocity is
Substitute
Calculation:
Substitute
Substitute
Substitute
The time taken to reach
Substitute
The variation of velocity with time.
Time | Velocity |
The graph between the variation of velocity with time is.
Figure-(2)
Conclusion:
The time taken to reach
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Chapter 11 Solutions
EBK FLUID MECHANICS: FUNDAMENTALS AND A
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Draw all the trajectories of the involute lines and the circles. Specification: 18tooth pinion and 30tooth gear. Diameter pitch=P=6 teeth /inch. Pressure angle:20°, 1/P for addendum (a) and 1.25/P for dedendum (b). For fillet, c=b-a.arrow_forward5. The figure shows a gear train. There is no friction at the bearings except for the gear tooth forces. The material of the milled gears is steel having a Brinell hardness of 170. The input shaft speed (n2) is 800 rpm. The face width and the contact angle for all gears are 1 in and 20° respectively. In this gear set, the endurance limit (Se) is 15 kpsi and nd (design factor) is 2. (a) Find the revolution speed of gear 5. (b) Determine whether each gear satisfies the design factor of 2.0 for bending fatigue. (c) Determine whether each gear satisfies the design factor of 2.0 for surface fatigue (contact stress). (d) According to the computation results of the questions (b) and (c), explain the possible failure mechanisms for each gear. 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(Hint: To find F, the torque Tд is generated by the tangential force of F (i.e. Ftangential-Fcos20°) When n=2.5, K=1.8, and K₁ =1.3, determine the diameter of the shaft based on (2) static analysis using DE theory (note that fatigue stress concentration factors need to be used for this question because the loading condition is fatigue) and (3) a fatigue analysis using modified Goodman. Note) A standard diameter is not required for the questions. 10 in Darrow_forward3 N2=28 P(diametral pitch)=8 for all gears Coupled to 25 hp motor N3=34 Full depth spur gears with pressure angle=20° N₂=2000 rpm (1) Compute the circular pitch, the center-to-center distance, and base circle radii. (2) Draw the free body diagram of gear 3 and show all the forces and the torque. (3) In mounting gears, the center-to-center distance was reduced by 0.1 inch. Calculate the new values of center-to-center distance, pressure angle, base circle radii, and pitch circle diameters. 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