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A tube bank uses an aligned arrangement of 30-mm-diameter tubes with
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- 2- To solve these problems, refer to notes on Blackboard about convection inside pipes. Also, assume that the inside wall temperature of the cylinder is 100 °C Steam condensing circular tube of diameter D=50 mm and length L= 6 m maintains a uniform outer surface temperature of 100 °C Water flows through the tube at a rate m = 0.25 kg/s, and its inlet bulk temperature is To 15 °C. Determine: on the outer surface of a thin-walled a If the flow is laminar or turbulent b) The exit bulk temperature c) T (C) h (W/m2.K) d) Rate of heat transfer from steam to water e) A plot of T vs x, where x is the distance in axial direction along the pipe = 57 °C. Only State any assumptions made, and use L, guess one iteration is needed.arrow_forwardEngine oil enters a circular tube D=6-cm in diameter and L=29-m in length. If the flow rate and inlet temperature of the oil are =0.3-kg/s and Tmi=20°C, find the thermal entry length (xth =?) in the tube? Note: Use the following properties at mean temperature of the engine oil. µ=0.50 N.s/m?, v = 1.1 x 10-7 m², 2/s, Pr 220arrow_forwardWater flows through pipe A whose diameter is 30 cm and into parallel pipes 1, 2 and 3 and out through Pipe B (diameter= 30 cm). The properties of the pipe are as follows: for pipe 1, L= 300 m, diameter = 10 cm f= 0.020; for pipe 2 L= 240 m diameter= 15 cm f= 0.018 and for pipe 3, L= 600 deiameter= 20 cm f= 0.017. The upstram junction has an Elev. 90 m with pressure of 205 kPa; the downstream junction is at Elev. 30 m. If the average velocity in pipe A is 3.0 m/s, find the flow rate in pipe 3. Provide FBD and choose the right answer below a.24.68 L/s b.212.0 L/s c.80.21 L/s d.107.11 L/s Clear my choicearrow_forward
- Water flows through pipe A whose diameter is 30 cm and into parallel pipes 1, 2 and 3 and out through Pipe B (diameter= 30 cm). The properties of the pipe are as follows: for pipe 1, L= 300 m, diameter = 10 cm f= 0.020; for pipe 2 L= 240 m diameter= 15 cm f= 0.018 and for pipe 3, L= 600 deiameter= 20 cm f= 0.017. The upstram junction has an Elev. 90 m with pressure of 205 kPa; the downstream junction is at Elev. 30 m. If the average velocity in pipe A is 3.0 m/s, find the flow rate in pipe 3. include your free body diagram. a.24.68 L/s b.80.21 L/s c.107.11 L/s d.212.0 L/sarrow_forwardAir flows inside a tube 60 mm in diameter (d) and 2.1 m long (l) at a velocity w = 5 m/sec. Find the heat-transfer coefficient α if the mean air temperature tf = 100oC. Note: Write your answer in space provided without the unit (the answer is in kcal/m2-hr-oC, one decimal places)arrow_forwardRequired information A tank contains 1 m³ of water at 20°C and has a drawn-capillary outlet tube at the bottom as shown in the figure below. The diameter of the tube is 3.7 cm. 1 m The flow rate is 1 m³ L= 80 cm Find the flow rate if the fluid is SAE 10 oil. For SAE 10 oil at 20°C, take p = 870 kg/m³ and μ = 0.104 kg/m-s. For drawn tubing, take & 0.0015 mm. m³/harrow_forward
- l MTN 1/1 4:26 PM 80% An oil with density 900 kg/m3 and flow rate 0.0002 m2/s flows upward through an inclined pipe as shown in figure below, The pressure at sections 1 and 2 are P1 = 350 kPa and P2 = 250 kPa, and the elevation at section 1 z1 = 0, Sections 1 and 2 are 10 m apart (L = 10 m) and the pipe is inclined at 40°. The pipe diameter is 6 cm. Assuming steady laminar flow, (a) Verify that the flow is up, (b) Compute hr between 1 and 2, (c) What is the flow rate Q, (d) Find the flow velocity, V, (e) Verify if the flow is really laminar. Flow OR directionarrow_forwardA constant heat flux q = 200 W / m2 is applied to a circular section pipe with a diameter D = 50 mm and a length L = 8 m, and water flows at a flow of 0.01 kg / s under the pipe. The entrance temperature of the water to the pipe is 29 oC. Which of the following is the average fluid temperature at the outlet of the pipe (x = L) with the fluid transmission at 30 oC? a. 39.21 oC b. 84,23 oC c. 66,59 oC D. 61.43 oC e. 83,28 oCarrow_forwardA fluid is flowing from small diameterarrow_forward
- Water flows in a 3.5-cm-diameter pipe so that the Reynolds number based on diameter is 2000 (laminar flow is assumed). The average bulk temperature is 10°C. Calculate the maximum water velocity in the tube in m/s. (Recall that um = 0.5ug)arrow_forwardThe man shown in (Figure 1) blows air through the 3-mm diameter straw with a velocity of 2.8 m/s. Assume fully developed flow occurs along the straw. The temperature of the air is 20°C. Figure -225 mm- 1 of 1 > T Part A Determine the force his lips exert on the straw to hold it in place. Express your answer using three significant figures and include the appropriate units. P-6.673 HA Provide Feedback N ? ubmit Previous Answers Request Answer X Incorrect; Try Again; 3 attempts remainingarrow_forwardWater (at 20C) flows through a pipeline connected in series, as shown in the Figure. The construction material of the pipes is commercial steel. Diameters of the first and second pipe are 1¼ inch nominal (42.4/3.25 mm) and ¾ inch nominal(26.9/2.65 mm), respectively. No elevation difference exits in the system. If the pressures at point A and at point B are 12.63 mWH absolute and 10.33 mWH absolute, respectively, what is the volumetric flow rate in the pipeline? Neglect the contraction losses in the connection of two pipes.Note: Friction factor must be found from MOODY DIAGRAM. For simplification in the reading of Moody diagram, take relative roughness of each pipe as: E/D1=0.001 and E/D2=0.002Figure Q2.1. Schematic illustration of the series-connected pipeline system.Figure Q2.2. Moody diagramarrow_forward
- Principles of Heat Transfer (Activate Learning wi...Mechanical EngineeringISBN:9781305387102Author:Kreith, Frank; Manglik, Raj M.Publisher:Cengage Learning