Test: Viscous Flow of Incompressible Fluids, Flow Losses Level - 3 - Mechanical Engineering MCQ

= 2πh tan α dh sec α

Viscous shear stress,

Since the shaft has an angular velocity ω, The tangential velocity, u = ωr = ωh tan α

∴ Viscous shear stress,

Tangential resistance on the ring, dF = shear stress × area of the ring

Torque = moment of tangential resistance = dF × r = dF × h tan α

p₁ − p₂ = ρgh_L

= 368,000

Thus, flow is turbulent. · Resistance coefficient: f = 0.015

3. Darcy-Weisbach equation

The piping system involves 89 m of piping, a sharp-edged entrance (KL = 0.5), two standard flanged elbows (KL = 0.3 each), a fully open gate valve (KL = 0.2), and a submerged exit (KL = 1.06). We choose points 1 and 2 at the free surfaces of the two reservoirs. Noting that the fluid at both points is open to the atmosphere (and thus p1 = p2 = patm ) and that the fluid velocities at both points are zero (V1 = V2 = 0), the energy equation for a control volume between these two points simplifies to

Since the diameter of the piping system is constant. The average velocity in the pipe and the Reynolds number are

Therefore, the free surface of the first reservoir must be 31.9 m above the ground level to ensure water flow between the two reservoirs at the specified rate.

Note: The pressure increases in the downward direction which means that the pressure, in part, supports the weight of the fluid.

Let the length of pipe upstream of C be L₁ and that of the downstream be L₂ It is given L₁ + L₂ = 800 m Considering the entry, friction and exit losses, The total loss from A to C

Applying Bernoulli’s equation between ! and B, we have

Δ H = h_f

which gives h_f1 = 2.99 m Using the value of h_f1 = 2.99 m, and V = 1.68 m/s in equation ① we get

Note: Since water is flowing out into the atmosphere from ②; there will be no exit losses as exit loss occurs only when fluid flows from a pipe to a tank. Applying Bernoulli’s equation at ① and ②

Q = 1.96 m³/s

where h_p is the head increase across the pump. But since p₁ = p₂ and V₁ = V₂ ≈ 0, solving for the pump head:

Now with the flow rate known, calculate

Now list and sum the minor loss coefficients: The Reynolds number is

f = 0.0216. Substitute into Equation ①

= 30 m + 25 m = 55 m Pump head

The pump must provide a power to the water of

P = ρgQh_p = 1000 × 9.81 × 0.00566 × 55 = 3.054 kW

or Δp = 20,400 N/m² = 20.4 kPa

Hence H_B > H_D; hence flow will be from B to D Applying Bernoulli’s equation between, B and D we have,

⇒ H_C = 36.44 − 4.26

⇒ H_C = 32.2 m

According to the definition of the displacement thickness, δ^∗, the flowrate across section (2) is the same as that for a uniform flow with velocity U through a duct whose walls have been moved inward by δ^∗. That is,

By combining Equations (1) and (2) we obtain

b = 0.4 mm = 0.0004 m

l = 50 mm = 0.05 m

p₁ − p₂ = 10 kPa = 10 × 103 N⁄m²

(i) The oil leakage through the crack corresponds to the case of flow between two stationary parallel surfaces for which

(ii) The maximum velocity occurs midway between the crack

Shear stress at the wall,

∴ Oil leakage = clearance area × average velocity

= π db × Vav = π × 0.05 × 0.2 × 10⁻⁴ × 0.00833 = 2.61 × 10−8 m3⁄s

Shear stress,

where ω is the angular velocity and r is the radius of the spindle. Viscous torque

= viscous force × radial distance

= (shear stress × area) × radius

The discharge is in the positive x-direction, i.e., in the direction opposite to that of moving plate.

Taking a horizontal line passing through point 2 as datum Piezometric head at point 1,

p1^∗ = p1 + wy1

Since p₁^∗ is greater that p₂^∗ , the direction of flow is from section 1-1 to section 2-2, i.e., downward. Apparently the upper plate is moved up the slope. Pressure gradient

From continuity, Q = Q₁ + Q₂

The discharge through the valve acting as an orifice can be written as

Using equation ① and ②, we have

= 0.224 Q1

Hence, Q = 1.224 Q₁

Applying Bernoulli’s equation between A and C through the path ABC, we have,

which gives Q1 = 0.231 m³/s

Q2 = 0.224 × 0.231 = 0.052 m³/s

d = 0.15 m

l = 2 km

f = 0.03

In the new plan as shown in figure h_f = 4.53 = h_fAB + h_fBC ⋯ ① again,

In this case, Q = 1.3 × 0.00833 = 0.0108 m³/s Then, from equation ③, we get

Q₁² = 0.00014 − (0.0108)²

which gives Q1 = 0.0048 m³/s From continuity,

Q2 = 0.0108 − 0.0048

= 0.006 m³/s

From equation ②, we have

?₂ = 0.1?? ?

It can be observed from equation ③ that

Q₁² = 0.00014 − Q₂

or Q₂ = 0.00014 − Q₂¹

Now, Q will be maximum when Q₁ will be minimum. For a physically possible situation, the minimum value of Q₁ will be zero. Therefore, the maximum value of Q will be

Q_max = √0.00014 = 0.0118 m³/s which is 41.6% more than the initial value. The case (Q₁ = 0, Q = 0.0118 m³/s) corresponds to a situation of an infinitely large branched pipe, i.e. d2 → ∞.

p₁^∗ = p1 + wy1

= 150 + (8 × 5) = 190 kPa

p₂^∗ = p₂ + wy₂

= 200 + (8 × 0) = 200 kPa

Since p₂^∗ is greater then p₁^∗ , the direction of flow is from point 2 to point 1.

Using the Hagen–Poiseuille law,

Viscosity, μ = 8.5 poise = 8.5 × 0.1 = 0.85 N s⁄m

Flow velocity = discharge / area

= 275.78

Since the Reynolds number is less than 2000, the flow is laminar. For laminar flow, the friction coefficient is given by

Head loss due to friction in 1000 m length of pipe

The pressure to be developed by the pump can be worked out by applying Bernoulli’s equation between the pump outlet (suffix 1) and the end of the pipeline (suffix 2)

With horizontal line through the pump center,

y1 = 0

and y2 = 300 sin 10° + 700 sin 15° = 233.25 m p₂ = 0 as the pressure at the pipe exit is atmospheric Also V₁ = V₂

∴p₁ / w = 233.25 + 768

= 1001.25 m of oil

Power required to develop this pressure

= w Q H

= (0.92 × 1000 × 9.81) × 0.02 × 1001.25

= 180729 Nm⁄s ≈ 180.73 kW

Power of driving motor

Force on the element due to pressure difference is,

Figure flow through an annular space Let shear stresses on the inner and outer surfaces of the element be τ and

Since the fluid is not accelerating (i.e., is moving with constant velocity), the sum of the pressure and viscous forces acting on the element must be zero. Thus:

Local velocity u would be maximum when