EBK FUNDAMENTALS OF THERMAL-FLUID SCIEN
EBK FUNDAMENTALS OF THERMAL-FLUID SCIEN
5th Edition
ISBN: 9781259151323
Author: CENGEL
Publisher: MCGRAW HILL BOOK COMPANY
bartleby

Concept explainers

bartleby

Videos

Question
Book Icon
Chapter 22, Problem 103P

(a)

To determine

The mass flow rate of ethylene glycol.

(a)

Expert Solution
Check Mark

Explanation of Solution

Given:

The temperature (Th,in) of glycol is 110°C.

The initial temperature (Tc,in) to heat oil is 10°C.

The exit temperature (Tc,out) to heat oil is 70°C.

The dimensions (D) of the tube is 0.5m×0.5m.

The length (L) of the tube is 25mm.

The outer diameter (Do) of the tube is 0.5m.

The mass flow rate (m˙) is 4.05kg/s.

The heat transfer coefficient (h) is 2500W/m2K.

The exit temperature (Th,out) is 90°C.

The properties of ethylene glycol are:

ρ=1062kg/m3μ=2.499×103kg/mscp=2742J/kgKk=0.262W/mKPr=26.12Prs=96.97

Calculation:

Calculate the bulk mean temperature (Tm) using the relation.

    TM=Ts+Ta2=70°C+10°C2=40°C

Refer table A-19 “properties of oil”.

Obtain the following properties of oil corresponding to the temperature of 50°C.

k=01964W/mK

Calculate the mass flow rate (m˙) using the relation.

    m˙h=m˙ccpc(Tc,outTc,in)cph(Th,inTh,out)=(4.05kg/s)((1964J/kgK))((70°C+273)K(10°C+273)K)((2742J/kgK))((110°C+273)K(90°C+273)K)=8.7kg/s

Thus, the mass flow rate of ethylene glycol is 8.7kg/s.

(b)

To determine

The number of tube rows.

(b)

Expert Solution
Check Mark

Explanation of Solution

Given:

Calculation:

Calculate the maximum velocity (Vmax) using the relation.

    Vmax=STSTDoV=STSTDom˙hρA= 0.035(0.035 0.025) 8.7kg/s (1062kg/m3)(0.5×0.5)m2=0.114m/s

Calculate the Reynolds number (Re) using the relation.

    Re=ρVmaxDoμ=(1062kg/m3)(0.114m/s)(0.025)m2.499×103kg/ms=1211

Calculate the Nusselt number (Nu) using the relation.

Assume that the tube rows are greater than 16.

Thus, from table 7-2 obtain the value of Nusselt number.

    Nu=0.35Re0.6Pr0.36(PrPrs)0.25=0.35(1211)0.6(26.12)0.36(26.1296.97)0.25=57.76

Calculate the heat transfer coefficient (ho) using the relation.

    ho=NukDo=(57.76)(0.262W/mK)(25mm×1m1000mm)=605.3W/m2K

Calculate the overall heat transfer coefficient (U) using the relation.

    1U=DohiDi+Do(lnDo/Di)2k+1ho1U=[(25mm×1m1000mm)(2500W/m2K)(23mm×1m1000mm)+(25mm×1m1000mm)ln(25mm×1m1000mm)(23mm×1m1000mm)2(250W/m2K)]+1605.3W/m2K1U=(4.34×104+4.169×106+1.652×103)m2K/WU=478.4W/m2K

Calculate the heat capacity rate (Cmin) using the relation.

    Cmin=m˙ccpc=(4.05kg/s)((1964J/kgK))=7954.2W/K

Calculate the heat capacity rate (Cmax) using the relation.

    Cmax=m˙hcph=(8.7kg/s)((2742J/kgK))=23855.4W/K

Calculate the capacity ratio (c) using the relation.

    c=CminCmax=7954.2W/K23855.4W/K=0.33

Calculate the effectiveness (ε) using the relation.

    ε=Q˙Q˙maxε=Cc(Tc,outTc,in)Cc(Th,inTc,in)=(7010)°C(10010)°C=0.6

Calculate the (NTU) using the relation.

Refer table 22-5 to obtain the expression of (NTU).

    NTU=ln[1+ln(1εc)c]=ln[1+ln(1(0.6)(0.33))0.33]=1.106

Calculate the surface area (As) using the relation.

    As=NTUCminU=(1.106)(7954.2W/K)(478.4W/m2K)=18.38m2

Calculate the number of rows (NT) using the relation.

    NL=AsπDoLNT=18.38m2π(23mm×1m1000mm)(0.5m)(0.5m0.035)=33

Thus, the number of rows are 33.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
Water is supplied at 150 ft³/s and 70 psi to a hydraulic turbine through a 3-ft inside-diameter inlet pipe as indicated in the figure below. The turbine discharge pipe has a 4.8-ft inside diameter. The static pressure at section (2), 10 ft below the turbine inlet, is 10 in. Hg vacuum. If the turbine develops 2400 hp, determine the rate of loss of available energy between sections (1) and (2). Section (1) P₁ =70psi Q=150ft³/s D₁ = 3 ft 10 ft Turbine power loss = i P₂ = 10 in. Hg vacuum D₂ =4.8ft Section (2) de hp
This problem studies the response of two single degree of freedom bridge systems shown in Figure 1 under three loading cases. The problem has two parts. Part A and Part B use the same loading cases but the system is modified. Assume the following three loading cases in both Part A and Part B: (a) Harmonic wind load acting on the bridge deck pw(t) = powsin(ωwt) with amplitude pow and forcing circular frequency ωw. (b) Harmonic displacement base excitation acting at the base of the bridge pier ug(t) = ugosin(ωgt) with amplitude ugo and displacement circular frequency ωg. (c) Rectangular pulse load acting on the bridge deck with amplitude pop and pulse duration td. Part A  The system includes part of a bridge deck and a bridge pier shown in Figure 1(a). For each loading case find the symbolic expression of the peak shear force in the bridge pier assuming the following: • The bridge deck is rigid and it has a mass m. • The bridge deck is rigidly connected with the bridge pier (i.e.,…
specific speed P #2 Q.2. A Pelton wheel turbine of 1.9 m diameter works under a head of 50 m at 150 rpm. The buckets are exposed to water jet which delivers from a nozzle of 20 cm in diameter. Find the overall efficiency power produced by the wheel if the buckets deflects the jet through an angle of 163°. coefficient of velocity as 0.98 [50 Marks] ·licosply Y and no Take the

Chapter 22 Solutions

EBK FUNDAMENTALS OF THERMAL-FLUID SCIEN

Ch. 22 - Prob. 11PCh. 22 - Prob. 12PCh. 22 - Prob. 13PCh. 22 - Prob. 14PCh. 22 - Prob. 15PCh. 22 - Prob. 17PCh. 22 - Prob. 18PCh. 22 - Prob. 19PCh. 22 - Water at an average temperature of 110°C and an...Ch. 22 - Prob. 21PCh. 22 - Prob. 23PCh. 22 - Prob. 24PCh. 22 - Under what conditions is the heat transfer...Ch. 22 - Consider a condenser in which steam at a specified...Ch. 22 - What is the heat capacity rate? What can you say...Ch. 22 - Under what conditions will the temperature rise of...Ch. 22 - Show that the temperature profile of two fluid...Ch. 22 - Prob. 30PCh. 22 - Prob. 31PCh. 22 - Prob. 32PCh. 22 - Prob. 33PCh. 22 - Prob. 34PCh. 22 - Prob. 35PCh. 22 - Prob. 36PCh. 22 - Prob. 37PCh. 22 - Prob. 38PCh. 22 - Prob. 39PCh. 22 - A double-pipe parallel-flow heat exchanger is to...Ch. 22 - Glycerin (cp = 2400 J/kg·K) at 20°C and 0.5 kg/s...Ch. 22 - Prob. 43PCh. 22 - A single pass heat exchanger is to be designed to...Ch. 22 - Prob. 45PCh. 22 - Prob. 46PCh. 22 - Prob. 47PCh. 22 - A counter-flow heat exchanger is stated to have an...Ch. 22 - Prob. 49PCh. 22 - Prob. 51PCh. 22 - Prob. 52PCh. 22 - Prob. 54PCh. 22 - Prob. 56PCh. 22 - A performance test is being conducted on a...Ch. 22 - In an industrial facility a counter-flow...Ch. 22 - Prob. 59PCh. 22 - Prob. 60PCh. 22 - Prob. 61PCh. 22 - A shell-and-tube heat exchanger with 2-shell...Ch. 22 - A shell-and-tube heat exchanger with 2-shell...Ch. 22 - Repeat Prob. 22–64 for a mass flow rate of 3 kg/s...Ch. 22 - A shell-and-tube heat exchanger with 2-shell...Ch. 22 - A single-pass cross-flow heat exchanger is used to...Ch. 22 - Prob. 68PCh. 22 - Prob. 69PCh. 22 - Prob. 70PCh. 22 - Prob. 71PCh. 22 - Prob. 72PCh. 22 - Prob. 73PCh. 22 - Under what conditions can a counter-flow heat...Ch. 22 - Prob. 75PCh. 22 - Prob. 76PCh. 22 - Prob. 77PCh. 22 - Prob. 78PCh. 22 - Prob. 79PCh. 22 - Prob. 80PCh. 22 - Prob. 81PCh. 22 - Consider an oil-to-oil double-pipe heat exchanger...Ch. 22 - Hot water enters a double-pipe counter-flow...Ch. 22 - Hot water (cph = 4188 J/kg·K) with mass flow rate...Ch. 22 - Prob. 85PCh. 22 - Cold water (cp = 4180 J/kg·K) leading to a shower...Ch. 22 - Prob. 89PCh. 22 - Prob. 90PCh. 22 - Prob. 91PCh. 22 - Prob. 92PCh. 22 - Prob. 93PCh. 22 - Prob. 94PCh. 22 - Prob. 95PCh. 22 - Air (cp = 1005 J/kg·K) enters a cross-flow heat...Ch. 22 - A cross-flow heat exchanger with both fluids...Ch. 22 - Prob. 98PCh. 22 - Prob. 99PCh. 22 - Oil in an engine is being cooled by air in a...Ch. 22 - Prob. 101PCh. 22 - Prob. 102PCh. 22 - Prob. 103PCh. 22 - Water (cp = 4180 J/kg·K) enters the...Ch. 22 - Prob. 105PCh. 22 - Prob. 106PCh. 22 - Prob. 107PCh. 22 - Prob. 109PCh. 22 - Consider the flow of saturated steam at 270.1 kPa...Ch. 22 - Prob. 111RQCh. 22 - Prob. 112RQCh. 22 - Prob. 113RQCh. 22 - A shell-and-tube heat exchanger with 1-shell pass...Ch. 22 - Prob. 115RQCh. 22 - Prob. 116RQCh. 22 - Prob. 117RQCh. 22 - Prob. 118RQCh. 22 - A shell-and-tube heat exchanger with two-shell...Ch. 22 - Saturated water vapor at 100°C condenses in the...Ch. 22 - Prob. 121RQCh. 22 - Prob. 122RQCh. 22 - Prob. 123RQCh. 22 - Prob. 124RQCh. 22 - Prob. 125RQCh. 22 - A cross-flow heat exchanger with both fluids...Ch. 22 - In a chemical plant, a certain chemical is heated...Ch. 22 - Prob. 128RQCh. 22 - Prob. 129RQCh. 22 - Prob. 130RQCh. 22 - Prob. 134DEP
Knowledge Booster
Background pattern image
Mechanical Engineering
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, mechanical-engineering and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Elements Of Electromagnetics
Mechanical Engineering
ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Oxford University Press
Text book image
Mechanics of Materials (10th Edition)
Mechanical Engineering
ISBN:9780134319650
Author:Russell C. Hibbeler
Publisher:PEARSON
Text book image
Thermodynamics: An Engineering Approach
Mechanical Engineering
ISBN:9781259822674
Author:Yunus A. Cengel Dr., Michael A. Boles
Publisher:McGraw-Hill Education
Text book image
Control Systems Engineering
Mechanical Engineering
ISBN:9781118170519
Author:Norman S. Nise
Publisher:WILEY
Text book image
Mechanics of Materials (MindTap Course List)
Mechanical Engineering
ISBN:9781337093347
Author:Barry J. Goodno, James M. Gere
Publisher:Cengage Learning
Text book image
Engineering Mechanics: Statics
Mechanical Engineering
ISBN:9781118807330
Author:James L. Meriam, L. G. Kraige, J. N. Bolton
Publisher:WILEY
First Law of Thermodynamics, Basic Introduction - Internal Energy, Heat and Work - Chemistry; Author: The Organic Chemistry Tutor;https://www.youtube.com/watch?v=NyOYW07-L5g;License: Standard youtube license