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Thermodynamics: An Engineering Approach

Yunus A. Cengel, Michael A. Boles

Chapter 2

Energy, Energy Transfer, and General Energy Analysis - all with Video Answers

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Chapter Questions

01:36

Problem 1

What is the difference between the macroscopic and microscopic forms of energy?

Ma Ednelyn Lim
Ma Ednelyn Lim
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00:45

Problem 2

What is total energy? Identify the different forms of energy that constitute the total energy.

Mayukh Banik
Mayukh Banik
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00:58

Problem 3

List the forms of energy that contribute to the internal energy of a system.

Mayukh Banik
Mayukh Banik
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00:43

Problem 4

How are heat, internal energy, and thermal energy related to each other?

Mayukh Banik
Mayukh Banik
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View

Problem 5

What is mechanical energy? How does it differ from thermal energy? What are the forms of mechanical energy of a fluid stream?

Jake Knight
Jake Knight
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00:36

Problem 6

Portable electric heaters are commonly used to heat small rooms. Explain the energy transformation involved during this heating process.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:30

Problem 7

Natural gas, which is mostly methane $\mathrm{CH}_{4}$, is a fuel and a major energy source. Can we say the same about hydrogen gas, $\mathrm{H}_{2} ?$

Mayukh Banik
Mayukh Banik
Numerade Educator
04:09

Problem 8

Consider the falling of a rock off a cliff into seawater, and eventually settling at the bottom of the sea. Starting with the potential energy of the rock, identify the energy transfers and transformations involved during this process.

RZ
Rubeena Zulfiqar
Numerade Educator
03:37

Problem 9

Electric power is to be generated by installing a hydraulic turbine-generator at a site $120 \mathrm{~m}$ below the free surface of a large water reservoir that can supply water at a rate of $1500 \mathrm{~kg} / \mathrm{s}$ steadily. Determine the power generation potential.

RZ
Rubeena Zulfiqar
Numerade Educator
01:12

Problem 10

The specific kinetic energy of a moving mass is given by $\mathrm{ke}=V^{2} / 2,$ where $V$ is the velocity of the mass. Determine the specific kinetic energy of a mass whose velocity is $100 \mathrm{ft} / \mathrm{s}$ in Btu/lbm.

RZ
Rubeena Zulfiqar
Numerade Educator
00:55

Problem 11

Determine the specific kinetic energy of a mass whose velocity is $30 \mathrm{~m} / \mathrm{s},$ in $\mathrm{kJ} / \mathrm{kg} .$

Justin Swantek
Justin Swantek
Numerade Educator
01:48

Problem 12

Calculate the total potential energy, in Btu, of an object that is $20 \mathrm{ft}$ below a datum level at a location where $g=31.7 \mathrm{ft} / \mathrm{s}^{2}$ and which has a mass of $100 \mathrm{lbm} .$

RZ
Rubeena Zulfiqar
Numerade Educator
01:33

Problem 13

An object whose mass is $100 \mathrm{~kg}$ is located $20 \mathrm{~m}$ above a datum level in a location where standard gravitational acceleration exists. Determine the total potential energy, in $\mathrm{kJ},$ of this object.

RZ
Rubeena Zulfiqar
Numerade Educator
01:30

Problem 14

An object whose mass is $100 \mathrm{~kg}$ is located $20 \mathrm{~m}$ above a datum level in a location where standard gravitational acceleration exists. Determine the total potential energy, in $\mathrm{kJ},$ of this object.

RZ
Rubeena Zulfiqar
Numerade Educator
00:46

Problem 15

A water jet that leaves a nozzle at $60 \mathrm{~m} / \mathrm{s}$ at a flow rate of $120 \mathrm{~kg} / \mathrm{s}$ is to be used to generate power by striking the buckets located on the perimeter of a wheel. Determine the power generation potential of this water jet.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:33

Problem 16

Consider a river flowing toward a lake at an average velocity of $3 \mathrm{~m} / \mathrm{s}$ at a rate of $500 \mathrm{~m}^{3} / \mathrm{s}$ at a location $90 \mathrm{~m}$ above the lake surface. Determine the total mechanical energy of the river water per unit mass and the power generation potential of the entire river at that location.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:45

Problem 17

At a certain location, wind is blowing steadily at $10 \mathrm{~m} / \mathrm{s} .$ Determine the mechanical energy of air per unit mass and the power generation potential of a wind turbine with $60-\mathrm{m}$ -diameter blades at that location. Take the air density to be $1.25 \mathrm{~kg} / \mathrm{m}^{3}$

Mayukh Banik
Mayukh Banik
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02:01

Problem 18

What is the caloric theory? When and why was it abandoned?

RZ
Rubeena Zulfiqar
Numerade Educator
00:47

Problem 19

In what forms can energy cross the boundaries of a closed system?

RZ
Rubeena Zulfiqar
Numerade Educator
01:12

Problem 20

What is an adiabatic process? What is an adiabatic svstem?

RZ
Rubeena Zulfiqar
Numerade Educator
00:56

Problem 21

When is the energy crossing the boundaries of a closed system heat and when is it work?

Mayukh Banik
Mayukh Banik
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01:58

Problem 22

Consider an automobile traveling at a constant speed along a road. Determine the direction of the heat and work interactions, taking the following as the system: $(a)$ the car radiator, $(b)$ the car engine, $(c)$ the car wheels, $(d)$ the road, and
(e) the air surrounding the car.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:28

Problem 23

A room is heated by an iron that is left plugged in. Is this a heat or work interaction? Take the entire room, including the iron, as the system.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:22

Problem 24

A room is heated as a result of solar radiation coming in through the windows. Is this a heat or work interaction for the room?

Mayukh Banik
Mayukh Banik
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00:17

Problem 25

A gas in a piston-cylinder device is compressed, and as a result its temperature rises. Is this a heat or work interaction?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:30

Problem 26

A small electrical motor produces $5 \mathrm{~W}$ of mechanical power. What is this power in $(a) \mathrm{N}, \mathrm{m},$ and $\mathrm{s}$ units; and
(b) $\mathrm{kg}, \mathrm{m},$ and $\mathrm{s}$ units? Answers:
(a) $5 \mathrm{~N} \cdot \mathrm{m} / \mathrm{s},$ (b) $5 \mathrm{~kg} \cdot \mathrm{m}^{2} / \mathrm{s}^{3}$

RZ
Rubeena Zulfiqar
Numerade Educator
00:49

Problem 27

A car is accelerated from rest to $85 \mathrm{~km} / \mathrm{h}$ in $10 \mathrm{~s}$. Would the energy transferred to the car be different if it were accelerated to the same speed in $5 \mathrm{~s} ?$

RZ
Rubeena Zulfiqar
Numerade Educator
03:45

Problem 28

A construction crane lifts a prestressed concrete beam weighing 3 short tons from the ground to the top of piers that are $24 \mathrm{ft}$ above the ground. Determine the amount of work done considering $(a)$ the beam and $(b)$ the crane as the system. Express your answers in both lbf-ft and Btu.

RZ
Rubeena Zulfiqar
Numerade Educator
01:51

Problem 29

Determine the torque applied to the shaft of a car that transmits $225 \mathrm{hp}$ and rotates at a rate of $3000 \mathrm{rpm}$

RZ
Rubeena Zulfiqar
Numerade Educator
03:05

Problem 30

A spring whose spring constant is $200 \mathrm{lbf} /$ in has an initial force of 100 lbf acting on it. Determine the work, in Btu, required to compress it another 1 in.

RZ
Rubeena Zulfiqar
Numerade Educator
02:38

Problem 31

How much work, in kJ, can a spring whose spring constant is $3 \mathrm{kN} / \mathrm{cm}$ produce after it has been compressed $3 \mathrm{~cm}$ from its unloaded length?

RZ
Rubeena Zulfiqar
Numerade Educator
View

Problem 32

A ski lift has a one-way length of $1 \mathrm{~km}$ and a vertical rise of $200 \mathrm{~m}$. The chairs are spaced $20 \mathrm{~m}$ apart, and each chair can seat three people. The lift is operating at a steady speed of $10 \mathrm{~km} / \mathrm{h}$. Neglecting friction and air drag and assuming that the average mass of each loaded chair is $250 \mathrm{~kg}$, determine the power required to operate this ski lift. Also estimate the power required to accelerate this ski lift in 5 s to its operating speed when it is first turned on.

Susan Hallstrom
Susan Hallstrom
Numerade Educator
02:14

Problem 33

The engine of a 1500 -kg automobile has a power rating of $75 \mathrm{~kW}$. Determine the time required to accelerate this car from rest to a speed of $100 \mathrm{~km} / \mathrm{h}$ at full power on a level road. Is your answer realistic?

Mayukh Banik
Mayukh Banik
Numerade Educator
04:02

Problem 34

A damaged 1200 -kg car is being towed by a truck. Neglecting the friction, air drag, and rolling resistance, determine the extra power required $(a)$ for constant velocity on a level road, $(b)$ for constant velocity of $50 \mathrm{~km} / \mathrm{h}$ on a $30^{\circ}$ (from horizontal) uphill road, and $(c)$ to accelerate on a level road from stop to $90 \mathrm{~km} / \mathrm{h}$ in $12 \mathrm{~s}$.

Khoobchandra Agrawal
Khoobchandra Agrawal
Numerade Educator
02:40

Problem 35

As a spherical ammonia vapor bubble rises in liquid ammonia, its diameter changes from $1 \mathrm{~cm}$ to $3 \mathrm{~cm} .$ Calculate the amount of work produced by this bubble, in $\mathrm{kJ},$ if the surface tension of ammonia is $0.02 \mathrm{~N} / \mathrm{m}$.

RZ
Rubeena Zulfiqar
Numerade Educator
03:48

Problem 36

A steel rod of $0.5 \mathrm{~cm}$ diameter and $10 \mathrm{~m}$ length is stretched $3 \mathrm{~cm} .$ Young's modulus for this steel is $21 \mathrm{kN} / \mathrm{cm}^{2}$ How much work, in $\mathrm{kJ},$ is required to stretch this rod?

RZ
Rubeena Zulfiqar
Numerade Educator
00:25

Problem 37

What are the different mechanisms for transferring energy to or from a control volume?

Mayukh Banik
Mayukh Banik
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00:33

Problem 38

For a cycle, is the net work necessarily zero? For what kinds of systems will this be the case?

RZ
Rubeena Zulfiqar
Numerade Educator
00:32

Problem 39

On a hot summer day, a student turns his fan on when he leaves his room in the morning. When he returns in the evening, will the room be warmer or cooler than the neighboring rooms? Why? Assume all the doors and windows are kept closed.

Mayukh Banik
Mayukh Banik
Numerade Educator
03:37

Problem 40

Water is being heated in a closed pan on top of a range while being stirred by a paddle wheel. During the process, $30 \mathrm{~kJ}$ of heat is transferred to the water, and $5 \mathrm{~kJ}$ of heat is ost to the surrounding air. The paddle-wheel work amounts to $500 \mathrm{~N} \cdot \mathrm{m}$. Determine the final energy of the system if its initial energy is $12.5 \mathrm{~kJ}$. Answer: $38.0 \mathrm{~kJ}$

RZ
Rubeena Zulfiqar
Numerade Educator
01:38

Problem 41

An adiabatic closed system is accelerated from $0 \mathrm{~m} / \mathrm{s}$ to $30 \mathrm{~m} / \mathrm{s}$. Determine the specific energy change of this system, in $\mathrm{kJ} / \mathrm{kg}$.

RZ
Rubeena Zulfiqar
Numerade Educator
04:34

Problem 42

-A fan is to accelerate quiescent air to a velocity of $8 \mathrm{~m} / \mathrm{s}$ at a rate of $9 \mathrm{~m}^{3} / \mathrm{s}$. Determine the minimum power that must be supplied to the fan. Take the density of air to be $1.18 \mathrm{~kg} / \mathrm{m}^{3}$.

Vishal Sharma
Vishal Sharma
Numerade Educator
01:40

Problem 43

At winter design conditions, a house is projected to lose heat at a rate of $60,000 \mathrm{Btu} / \mathrm{h}$. The internal heat gain from people, lights, and appliances is estimated to be $6000 \mathrm{Btu} / \mathrm{h}$. If this house is to be heated by electric resistance heaters, determine the required rated power of these heaters in $\mathrm{kW}$ to maintain the house at constant temperature.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:40

Problem 44

At winter design conditions, a house is projected to lose heat at a rate of $60,000 \mathrm{Btu} / \mathrm{h}$. The internal heat gain from people, lights, and appliances is estimated to be $6000 \mathrm{Btu} / \mathrm{h}$. If this house is to be heated by electric resistance heaters, determine the required rated power of these heaters in $\mathrm{kW}$ to maintain the house at constant temperature.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:18

Problem 45

A water pump increases the water pressure from 15 psia to 70 psia. Determine the power input required, in hp, to pump $0.8 \mathrm{ft}^{3} / \mathrm{s}$ of water. Does the water temperature at the inlet have any significant effect on the required flow power?

Penny Riley
Penny Riley
Numerade Educator
03:09

Problem 46

The lighting needs of a storage room are being met by six fluorescent light fixtures, each fixture containing four lamps rated at $60 \mathrm{~W}$ each. All the lamps are on during operating hours of the facility, which are 6 a.m. to 6 p.m. 365 days a year. The storage room is actually used for an average of $3 \mathrm{~h}$ a day. If the price of electricity is $\$ 0.11 / \mathrm{kWh}$, determine the amount of energy and money that will be saved as a result of installing motion sensors. Also, determine the simple payback period if the purchase price of the sensor is $\$ 32$ and it takes $1 \mathrm{~h}$ to install it at a cost of $\$ 40 .$

Khoobchandra Agrawal
Khoobchandra Agrawal
Numerade Educator
03:20

Problem 47

A university campus has 200 classrooms and 400 faculty offices. The classrooms are equipped with 12 fluorescent tubes, each consuming $110 \mathrm{~W}$, including the electricity used by the ballasts. The faculty offices, on average, have half as many tubes. The campus is open 240 days a year. The classrooms and faculty offices are not occupied an average of $4 \mathrm{~h}$ a day, but the lights are kept on. If the unit cost of electricity is $\$ 0.11 / \mathrm{kWh},$ determine how much the campus will save a year if the lights in the classrooms and faculty offices are turned off during unoccupied periods.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:09

Problem 48

Consider a room that is initially at the outdoor temperature of $20^{\circ} \mathrm{C}$. The room contains a $40-\mathrm{W}$ lightbulb, a $110-\mathrm{W}$ TV set, a 300-W refrigerator, and a 1200 -W iron. Assuming no heat transfer through the walls, determine the rate of increase of the energy content of the room when all of these electric devices are on.

Kratika Bhadauria
Kratika Bhadauria
Numerade Educator
02:59

Problem 49

An escalator in a shopping center is designed to move 50 people, $75 \mathrm{~kg}$ each, at a constant speed of $0.6 \mathrm{~m} / \mathrm{s}$ at $45^{\circ}$ slope. Determine the minimum power input needed to drive this escalator. What would your answer be if the escalator velocity were to be doubled?

Mayukh Banik
Mayukh Banik
Numerade Educator
09:02

Problem 50

Consider a $2100-\mathrm{kg}$ car cruising at constant speed of $70 \mathrm{~km} / \mathrm{h}$. Now the car starts to pass another car by accelerating to $110 \mathrm{~km} / \mathrm{h}$ in $5 \mathrm{~s}$. Determine the additional power needed to achieve this acceleration. What would your answer be if the total mass of the car were only $700 \mathrm{~kg}$ ?

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
08:44

Problem 51

One way to improve the fuel efficiency of a car is to use tires that have a lower rolling resistance- tires that roll with less resistance. Highway tests at 65 mph showed that tires with the lowest rolling resistance can improve fuel efficiency by nearly 2 mpg (miles per gallon). Consider a car that gets 35 mpg on high-rolling-resistance tires and is driven 15,000 miles per year. For a fuel cost of $\$ 3.5 / \mathrm{gal}$, determine how much money will be saved per year by switching to low-rolling-resistance tires.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:54

Problem 52

What is mechanical efficiency? What does a mechanical efficiency of 100 percent mean for a hydraulic turbine?

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
04:58

Problem 53

How is the combined pump-motor efficiency of a pump and motor system defined? Can the combined pump-motor efficiency be greater than either the pump or the motor efficiency?

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:14

Problem 54

Can the combined turbine-generator efficiency be greater than either the turbine efficiency or the generator efficiency? Exnlain.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:12

Problem 55

Consider a $2.4-\mathrm{kW}$ hooded electric open burner in an area where the unit costs of electricity and natural gas are $$\$ 0.10 / \mathrm{kWh}$$ and $$\$ 1.20 /$$ therm $(1$ therm $=105,500 \mathrm{~kJ})$, respectively. The efficiency of open burners can be taken to be 73 percent for electric burners and 38 percent for gas burners. Determine the rate of energy consumption and the unit cost of utilized energy for both electric and gas burners.

Mayukh Banik
Mayukh Banik
Numerade Educator
07:45

Problem 56

The steam requirements of a manufacturing facility are being met by a boiler whose rated heat input is $5.5 \times 10^{6} \mathrm{Btu} / \mathrm{h}$. The combustion efficiency of the boiler is measured to be 0.7 by a handheld flue gas analyzer. After tuning up the boiler, the combustion efficiency rises to 0.8 . The boiler operates $4200 \mathrm{~h}$ a year intermittently. Taking the unit cost of energy to be $\$ 13 / 10^{6}$ Btu, determine the annual energy and cost savings as a result of tuning up the boiler.

Rashmi Sinha
Rashmi Sinha
Numerade Educator
01:52

Problem 57

Using appropriate software, study the effects of the unit cost of energy, the new combustion efficiency on the annual energy, and cost savings. Let the efficiency vary from 0.7 to 0.9 , and let the unit cost vary from $\$ 12$ to $\$ 14$ per million Btu. Plot the annual energy and cost savings against the efficiency for unit costs of $\$ 12, \$ 13,$ and $\$ 14$ per million Btu, and discuss the results.

Naman Kumar
Naman Kumar
Numerade Educator
07:04

Problem 58

A 75 -hp (shaft output) motor that has an efficiency of 91.0 percent is worn out and is replaced by a high-efficiency 75 -hp motor that has an efficiency of 95.4 percent. Determine the reduction in the heat gain of the room due to higher efficiency under full_load conditions

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
03:24

Problem 59

A 90 -hp (shaft output) electric car is powered by an electric motor mounted in the engine compartment. If the motor has an average efficiency of 91 percent, determine the rate of heat supply by the motor to the engine compartment at full load.

Prabhat Tyagi
Prabhat Tyagi
Numerade Educator
08:08

Problem 60

An exercise room has six weight-lifting machines that have no motors and seven treadmills each equipped with a 2.5-hp (shaft output) motor. The motors operate at an average load factor of $0.7,$ at which their efficiency is $0.77 .$ During peak evening hours, all 13 pieces of exercising equipment are used continuously, and there are also two people doing light exercises while waiting in line for one piece of the equipment. Assuming the average rate of heat dissipation from people in an exercise room is $600 \mathrm{~W}$, determine the rate of heat gain of the exercise room from people and the equipment at peak load conditions.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
04:49

Problem 61

A room is cooled by circulating chilled water through a heat exchanger located in the room. The air is circulated through the heat exchanger by a 0.25 -hp (shaft output) fan. Typical efficiency of small electric motors driving 0.25 -hp equipment is 60 percent. Determine the rate of heat supply by the fan-motor assembly to the room.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
03:08

Problem 62

The water in a large lake is to be used to generate electricity by the installation of a hydraulic turbine-generator at a location where the depth of the water is $50 \mathrm{~m}$. Water is to be supplied at a rate of $5000 \mathrm{~kg} / \mathrm{s}$. If the electric power generated is measured to be $1862 \mathrm{~kW}$ and the generator efficiency is 95 percent, determine $(a)$ the overall efficiency of the turbine generator, $(b)$ the mechanical efficiency of the turbine, and
(c) the shaft power supplied by the turbine to the generator.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:28

Problem 63

A 7 -hp (shaft) pump is used to raise water to an elevation of $15 \mathrm{~m}$. If the mechanical efficiency of the pump is 82 percent, determine the maximum volume flow rate of water.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:28

Problem 64

A geothermal pump is used to pump brine whose density is $1050 \mathrm{~kg} / \mathrm{m}^{3}$ at a rate of $0.3 \mathrm{~m}^{3} / \mathrm{s}$ from a depth of $200 \mathrm{~m}$. For a pump efficiency of 74 percent, determine the required power input to the pump. Disregard frictional losses in the pipes, and assume the geothermal water at $200 \mathrm{~m}$ depth to be exposed to the atmosphere.

Mayukh Banik
Mayukh Banik
Numerade Educator
02:49

Problem 65

At a certain location, wind is blowing steadily at $7 \mathrm{~m} / \mathrm{s}$. Determine the mechanical energy of air per unit mass and the power generation potential of a wind turbine with 80 -m-diameter blades at that location. Also determine the actual electric power generation assuming an overall efficiency of 30 percent. Take the air density to be $1.25 \mathrm{~kg} / \mathrm{m}^{3}$

Mayukh Banik
Mayukh Banik
Numerade Educator
02:28

Problem 66

Using appropriate software, investigate the effect of wind velocity and the blade span diameter on wind power generation. Let the velocity vary from 5 to $20 \mathrm{~m} / \mathrm{s}$ in increments of $5 \mathrm{~m} / \mathrm{s},$ and let the diameter vary from 20 to $120 \mathrm{~m}$ in increments of $20 \mathrm{~m}$. Tabulate the results, and discuss their significance.

Naman Kumar
Naman Kumar
Numerade Educator
01:34

Problem 67

Water is pumped from a lower reservoir to a higher reservoir by a pump that provides $20 \mathrm{~kW}$ of shaft power. The free surface of the upper reservoir is $45 \mathrm{~m}$ higher than that of the lower reservoir. If the flow rate of water is measured to be $0.03 \mathrm{~m}^{3} / \mathrm{s},$ determine mechanical power that is converted to thermal energy during this process due to frictional effects.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:50

Problem 68

An 80-percent-efficient pump with a power input of 20 hp is pumping water from a lake to a nearby pool at a rate of $1.5 \mathrm{ft}^{3} / \mathrm{s}$ through a constant-diameter pipe. The free surface of the pool is $80 \mathrm{ft}$ above that of the lake. Determine the mechanical power used to overcome frictional effects in piping.

Anand Jangid
Anand Jangid
Numerade Educator
02:38

Problem 69

Water is pumped from a lake to a storage tank $15 \mathrm{~m}$ above at a rate of $70 \mathrm{~L} / \mathrm{s}$ while consuming $15.4 \mathrm{~kW}$ of electric power. Disregarding any frictional losses in the pipes and any changes in kinetic energy, determine $(a)$ the overall efficiency of the pump-motor unit and $(b)$ the pressure difference between the inlet and the exit of the pump.

Narayan Hari
Narayan Hari
Numerade Educator
08:38

Problem 70

Large wind turbines with a power capacity of $8 \mathrm{MW}$ and blade span diameters of over $160 \mathrm{~m}$ are available for electric power generation. Consider a wind turbine with a blade span diameter of $100 \mathrm{~m}$ installed at a site subjected to steady winds at $8 \mathrm{~m} / \mathrm{s}$. Taking the overall efficiency of the wind turbine to be 32 percent and the air density to be $1.25 \mathrm{~kg} / \mathrm{m}^{3},$ determine the electric power generated by this wind turbine. Also, assuming steady winds of $8 \mathrm{~m} / \mathrm{s}$ during a 24 -h period, determine the amount of electric energy and the revenue generated per day for a unit price of $\$ 0.09 / \mathrm{kWh}$ for electricity.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
05:51

Problem 71

A hydraulic turbine has $85 \mathrm{~m}$ of elevation difference available at a flow rate of $0.25 \mathrm{~m}^{3} / \mathrm{s},$ and its overall turbinegenerator efficiency is 91 percent. Determine the electric power output of this turbine.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:11

Problem 72

The water behind Hoover Dam in Nevada is $206 \mathrm{~m}$ higher than the Colorado River below it. At what rate must water pass through the hydraulic turbines of this dam to produce $50 \mathrm{MW}$ of power if the turbines are 100 percent efficient?

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
03:56

Problem 73

An oil pump is drawing $44 \mathrm{~kW}$ of electric power while pumping oil with $\rho=860 \mathrm{~kg} / \mathrm{m}^{3}$ at a rate of $0.1 \mathrm{~m}^{3} / \mathrm{s}$. The inlet and outlet diameters of the pipe are $8 \mathrm{~cm}$ and $12 \mathrm{~cm},$ respectively. If the pressure rise of oil in the pump is measured to be $500 \mathrm{kPa}$ and the motor efficiency is 90 percent, determine the mechanical efficiency of the pump.

Narayan Hari
Narayan Hari
Numerade Educator
06:09

Problem 74

A wind turbine is rotating at 15 rpm under steady winds flowing through the turbine at a rate of $42,000 \mathrm{~kg} / \mathrm{s}$. The tip velocity of the turbine blade is measured to be $250 \mathrm{~km} / \mathrm{h}$. If $180 \mathrm{~kW}$ power is produced by the turbine, determine $(a)$ the average velocity of the air and $(b)$ the conversion efficiency of the turbine. Take the density of air to be $1.31 \mathrm{~kg} / \mathrm{m}^{3}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
00:52

Problem 75

How does energy conversion affect the environment? What are the primary chemicals that pollute the air? What is the primary source of these pollutants?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:38

Problem 76

What is acid rain? Why is it called a "rain"? How do the acids form in the atmosphere? What are the adverse effects of acid rain on the environment?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:30

Problem 77

Why is carbon monoxide a dangerous air pollutant? How does it affect human health at low levels and at high levels?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:07

Problem 78

What is the greenhouse effect? How does the excess $\mathrm{CO}_{2}$ gas in the atmosphere cause the greenhouse effect? What are the potential long-term consequences of the greenhouse effect? How can we combat this problem?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:22

Problem 79

What is smog? What does it consist of? How does ground-level ozone form? What are the adverse effects of ozone on human health?

Mayukh Banik
Mayukh Banik
Numerade Educator
07:01

Problem 80

Consider a household that uses $14,000 \mathrm{kWh}$ of electricity per year and 900 gal of fuel oil during a heating season. The average amount of $\mathrm{CO}_{2}$ produced is $26.4 \mathrm{lbm} / \mathrm{gal}$ of fuel oil and $1.54 \mathrm{lbm} / \mathrm{kWh}$ of electricity. If this household reduces its oil and electricity usage by 15 percent by implementing some energy conservation measures, determine the reduction in the amount of $\mathrm{CO}_{2}$ emissions by that household per year.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
04:27

Problem 81

When a hydrocarbon fuel is burned, almost all of the carbon in the fuel burns completely to form $\mathrm{CO}_{2}$ (carbon dioxide), which is the principal gas causing the greenhouse effect and thus global climate change. On average, $0.59 \mathrm{~kg}$ of $\mathrm{CO}_{2}$ is produced for each $\mathrm{kWh}$ of electricity generated from a power plant that burns natural gas. A typical new household refrigerator uses about $700 \mathrm{kWh}$ of electricity per year. Determine the amount of $\mathrm{CO}_{2}$ production that is due to the refrigerators in a city with 300.000 households.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
06:28

Problem 82

Repeat Prob. $2-81,$ assuming the electricity is produced by a power plant that burns coal. The average production of $\mathrm{CO}_{2}$ in this case is $1.1 \mathrm{~kg}$ per $\mathrm{kWh}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
06:25

Problem 83

A typical car driven $20,000 \mathrm{~km}$ a year emits to the atmosphere about $11 \mathrm{~kg}$ per year of $\mathrm{NO}_{x}$ (nitrogen oxides), which cause smog in major population areas. Natural gas burned in the furnace emits about $4.3 \mathrm{~g}$ of $\mathrm{NO}_{x}$, per therm (1 therm $=105,500 \mathrm{~kJ}$ ), and the electric power plants emit about $7.1 \mathrm{~g}$ of $\mathrm{NO}_{x}$ per $\mathrm{kW}$ h of electricity produced. Consider a household that has two cars and consumes $9000 \mathrm{kWh}$ of electricity and 1200 therms of natural gas per year. Determine the amount of $\mathrm{NO}_{x}$ emission to the atmosphere per year for which this household is responsible.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
05:39

Problem 84

A Ford Taurus driven 12,000 miles a year will use about 650 gal of gasoline compared to a Ford Explorer that would use 850 gal. About $19.7 \mathrm{lbm}$ of $\mathrm{CO}_{2},$ which causes global warming, is released to the atmosphere when a gallon of gasoline is burned. Determine the extra amount of $\mathrm{CO}_{2}$, production a man is responsible for during a 5 -year period if he trades his Taurus for an Explorer.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
00:25

Problem 85

What are the mechanisms of heat transfer?

Mayukh Banik
Mayukh Banik
Numerade Educator
00:27

Problem 86

Which is a better heat conductor, diamond or silver?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:02

Problem 87

How does forced convection differ from natural convection?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:06

Problem 88

What is a blackbody? How do real bodies differ from a blackbody?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:05

Problem 89

Define emissivity and absorptivity. What is Kirchhoff's law of radiation?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:05

Problem 90

Does any of the energy of the sun reach the earth by conduction or convection?

Mayukh Banik
Mayukh Banik
Numerade Educator
01:12

Problem 91

The inner and outer surfaces of a $5-m \times 6-m$ brick wall of thickness $30 \mathrm{~cm}$ and thermal conductivity $0.69 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$ are maintained at temperatures of $20^{\circ} \mathrm{C}$ and $5^{\circ} \mathrm{C},$ respectively. Determine the rate of heat transfer through the wall, in $\mathrm{W}$.

Mayukh Banik
Mayukh Banik
Numerade Educator
05:23

Problem 92

The inner and outer surfaces of a } 0.5-\mathrm{cm} \text { -thick }\end{array}$ $2-m \times 2-m$ window glass in winter are $15^{\circ} \mathrm{C}$ and $6^{\circ} \mathrm{C},$ respectively. If the thermal conductivity of the glass is $0.78 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$ determine the amount of heat loss, in $\mathrm{kJ},$ that occurs through the glass over a period of $10 \mathrm{~h}$. What would your answer be if the glass were $1 \mathrm{~cm}$ thick?

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:43

Problem 93

Reconsider Prob. 2-92. Using appropriate software, investigate the effect of glass thickness on heat loss for the specified glass surface temperatures. Let the glass thickness vary from 0.2 to $2 \mathrm{~cm} .$ Plot the heat loss versus the glass thickness, and discuss the results.

Naman Kumar
Naman Kumar
Numerade Educator
01:25

Problem 94

An aluminum pan whose thermal conductivity is $237 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$ has a flat bottom whose diameter is $20 \mathrm{~cm}$ and thickness $0.6 \mathrm{~cm} .$ Heat is transferred steadily to boiling water in the pan through its bottom at a rate of $700 \mathrm{~W}$. If the inner surface of the bottom of the pan is $105^{\circ} \mathrm{C}$, determine the temperature of the outer surface of the bottom of the pan.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:39

Problem 95

The inner and outer glasses of a $2-\mathrm{m} \times 2$ -m double pane window are at $18^{\circ} \mathrm{C}$ and $6^{\circ} \mathrm{C}$, respectively. If the $1-\mathrm{cm}$ space between the two glasses is filled with still air, determine the rate of heat transfer through the air layer by conduction, in $\mathrm{kW}$.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:52

Problem 96

Two surfaces of a 2 -cm-thick plate are maintained at $0^{\circ} \mathrm{C}$ and $100^{\circ} \mathrm{C}$, respectively. If it is determined that heat is transferred through the plate at a rate of $500 \mathrm{~W} / \mathrm{m}^{2},$ determine its thermal conductivity.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:17

Problem 97

Hot air at $80^{\circ} \mathrm{C}$ is blown over a $2-\mathrm{m} \times 4-\mathrm{m}$ flat surface at $30^{\circ} \mathrm{C}$. If the convection heat transfer coefficient is $55 \mathrm{~W} / \mathrm{m}^{2} .{ }^{\circ} \mathrm{C}$, determine the rate of heat transfer from the air to the plate, in $\mathrm{kW}$.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:13

Problem 98

For heat transfer purposes, a standing man can be modeled as a 30 -cm-diameter, 175 -cm-long vertical cylinder with both the top and bottom surfaces insulated and with the side surface at an average temperature of $34^{\circ} \mathrm{C}$. For a convection heat transfer coefficient of $10 \mathrm{~W} / \mathrm{m}^{2} .{ }^{\circ} \mathrm{C}$, determine the rate of heat loss from this man by convection in an environment at $20^{\circ} \mathrm{C}$.

Mayukh Banik
Mayukh Banik
Numerade Educator
03:11

Problem 99

A 9 -cm-diameter spherical ball whose surface is maintained at a temperature of $110^{\circ} \mathrm{C}$ is suspended in the middle of a room at $20^{\circ} \mathrm{C}$. If the convection heat transfer coefficient is $15 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$ and the emissivity of the surface is $0.8,$ determine the total rate of heat transfer from the ball.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:47

Problem 100

Using appropriate software, investigate the effect of the convection heat transfer coefficient and surface emissivity on the heat transfer rate from the ball. Let the heat transfer coefficient vary from 5 to $30 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$. Plot the rate of heat transfer against the convection heat transfer coefficient for the surface emissivities of $0.1,0.5,0.8,$ and $1,$ and discuss the results.

Naman Kumar
Naman Kumar
Numerade Educator
03:17

Problem 101

A $1000-W$ iron is left on the ironing board with its base exposed to the air at $23^{\circ} \mathrm{C}$. The convection heat transfer coefficient between the base surface and the surrounding air is $20 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$. If the base has an emissivity of 0.4 and a surface area of $0.02 \mathrm{~m}^{2},$ determine the temperature of the base of the iron.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:53

Problem 102

A 7 -cm-external-diameter, 18 -m-long hot-water pipe at $80^{\circ} \mathrm{C}$ is losing heat to the surrounding air at $5^{\circ} \mathrm{C}$ by natural convection with a heat transfer coefficient of $25 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$ Determine the rate of heat loss from the pipe by natural convection, in kW.

Mayukh Banik
Mayukh Banik
Numerade Educator
00:53

Problem 102

A 7 -cm-external-diameter, 18 -m-long hot-water pipe at $80^{\circ} \mathrm{C}$ is losing heat to the surrounding air at $5^{\circ} \mathrm{C}$ by natural convection with a heat transfer coefficient of $25 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$ Determine the rate of heat loss from the pipe by natural convection, in $\mathrm{kW}$.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:31

Problem 103

A thin metal plate is insulated on the back and exposed to solar radiation on the front surface. The exposed surface of the plate has an absorptivity of 0.8 for solar radiation. If solar radiation is incident on the plate at a rate of $450 \mathrm{~W} / \mathrm{m}^{2}$ and the surrounding air temperature is $25^{\circ} \mathrm{C}$, determine the surface temperature of the plate when the heat loss by convection equals the solar energy absorbed by the plate. Assume the convection heat transfer coefficient to be $50 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C},$ and disregard heat loss by radiation.

Mayukh Banik
Mayukh Banik
Numerade Educator
02:34

Problem 104

Using appropriate software, investigate the effect of the convection heat transfer coefficient on the surface temperature of the plate. Let the heat transfer coefficient vary from 10 to $90 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$. Plot the surface temperature against the convection heat transfer coefficient, and discuss the results.

Naman Kumar
Naman Kumar
Numerade Educator
01:33

Problem 105

The outer surface of a spacecraft in space has an emissivity of 0.6 and an absorptivity of 0.2 for solar radiation. If solar radiation is incident on the spacecraft at a rate of $1000 \mathrm{~W} / \mathrm{m}^{2}$ determine the surface temperature of the spacecraft when the radiation emitted equals the solar energy absorbed.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:36

Problem 106

Using appropriate software, investigate the effect of the surface emissivity and absorptivity of the spacecraft on the equilibrium surface temperature. Plot the surface temperature against emissivity for solar absorptivities of $0.1,0.5,0.8,$ and $1,$ and discuss the results.

Naman Kumar
Naman Kumar
Numerade Educator
01:58

Problem 107

A hollow spherical iron container whose outer diameter is $40 \mathrm{~cm}$ and thickness is $0.4 \mathrm{~cm}$ is filled with iced water at $0^{\circ} \mathrm{C}$. If the outer surface temperature is $3^{\circ} \mathrm{C}$, determine the approximate rate of heat loss from the sphere, and the rate at which ice melts in the container.

Mayukh Banik
Mayukh Banik
Numerade Educator
08:35

Problem 108

Some engineers have developed a device that provides lighting to rural areas with no access to grid electricity. The device is intended for indoor use. It is driven by gravity, and it works as follows: A bag of rock or sand is raised by human power to a higher location. As the bag descends very slowly, it powers a sprocket-wheel which also rotates slowly. A gear train mechanism converts this slow motion to high speed, which drives a DC generator. The electric output from the generator is used to power an LED bulb.

Consider a gravity-driven LED bulb that provides 16 lumens of lighting. The device uses a $10-\mathrm{kg}$ sandbag that is raised by human power to a 2 -m height. For continuous lighting, the bag needs to be raised every 20 minutes. Using an efficacy of 150 lumens per watt for the LED bulb, determine $(a)$ the velocity of the sandbag as it descends and $(b)$ the overall efficiency of the device.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
06:05

Problem 109

Consider a classroom for 55 students and one instructor, each generating heat at a rate of $100 \mathrm{~W}$. Lighting is provided by 18 fluorescent lightbulbs, $40 \mathrm{~W}$ each, and the ballasts consume an additional 10 percent. Determine the rate of internal heat generation in this classroom when it is fully occupied.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
12:14

Problem 110

Consider a homeowner who is replacing his 25 -yearold natural gas furnace that has an efficiency of 55 percent. The homeowner is considering a conventional furnace that has an efficiency of 82 percent and costs $\$ 1600$ and a high-efficiency furnace that has an efficiency of 95 percent and costs $\$ 2700$. The homeowner would like to buy the high-efficiency furnace if the savings from the natural gas pay for the additional cost in less than 8 years. If the homeowner now pays $\$ 1200$ a year for heating, determine if he should buy the conventional or the highefficiency model.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:48

Problem 111

A homeowner is considering these heating systems for heating his house: Electric resistance heating with $\$ 0.12 / \mathrm{kWh}$ and $1 \mathrm{kWh}=3600 \mathrm{~kJ},$ gas heating with $\$ 1.24 /$ therm and 1 therm $=105,500 \mathrm{~kJ},$ and oil heating with $\$ 2.3 / \mathrm{gal}$ and $1 \mathrm{gal}$ of oil $=138,500 \mathrm{~kJ}$. Assuming efficiencies of 100 percent for the electric furnace and 87 percent for the gas and oil furnaces, determine the heating system with the lowest energy cost.

Mayukh Banik
Mayukh Banik
Numerade Educator
03:50

Problem 112

The U.S. Department of Energy estimates that 570,000 barrels of oil would be saved per day if every household in the United States lowered the thermostat setting in winter by $6^{\circ} \mathrm{F}\left(3.3^{\circ} \mathrm{C}\right)$. Assuming the average heating season to be 180 days and the cost of oil to be $\$ 55 /$ barrel, determine how much money would be saved per year.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
05:19

Problem 113

A typical household pays about $\$ 1200$ a year on energy bills, and the U.S. Department of Energy estimates that 46 percent of this energy is used for heating and cooling, 15 percent for heating water, 15 percent for refrigerating and freezing, and the remaining 24 percent for lighting, cooking, and running other appliances. The heating and cooling costs of a poorly insulated house can be reduced by up to 30 percent by adding adequate insulation. If the cost of insulation is $\$ 200$, determine how long it will take for the insulation to pay for itself from the energy it saves.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
07:21

Problem 114

A diesel engine with an engine volume of $4.0 \mathrm{~L}$ and an engine speed of 2500 rpm operates on an air-fuel ratio of $18 \mathrm{~kg}$ air $/ \mathrm{kg}$ fuel. The engine uses light diesel fuel that contains 500 ppm (parts per million) of sulfur by mass. All of this sulfur is exhausted to the environment, where the sulfur is converted to sulfurous acid $\left(\mathrm{H}_{2} \mathrm{SO}_{3}\right)$. If the rate of the air entering the engine is $336 \mathrm{~kg} / \mathrm{h},$ determine the mass flow rate of sulfur in the exhaust. Also, determine the mass flow rate of sulfurous acid added to the environment if for each $\mathrm{kmol}$ of sulfur in the exhaust, 1 kmol sulfurous acid will be added to the environment.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
03:08

Problem 115

The force $F$ required to compress a spring a distance $x$ is given by $F-F_{0}=k x$ where $k$ is the spring constant and $F_{0}$ is the preload. Determine the work, in $\mathrm{kJ},$ required to compress a spring a distance of $1 \mathrm{~cm}$ when its spring constant is $300 \mathrm{~N} / \mathrm{cm}$ and the spring is initially compressed by a force of $100 \mathrm{~N}$.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
03:43

Problem 116

The force required to expand the gas in a gas spring a distance $x$ is given by
$$
F=\frac{\text { Constant }}{x^{k}}
$$
where the constant is determined by the geometry of this device and $k$ is determined by the gas used in the device. Such a gas spring is arranged to have a constant of $1000 \mathrm{~N} \cdot \mathrm{m}^{1.3}$ and $k=1.3 .$ Determine the work, in $\mathrm{kJ},$ required to compress this spring from $0.1 \mathrm{~m}$ to $0.3 \mathrm{~m}$.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
05:29

Problem 117

Consider a TV set that consumes $120 \mathrm{~W}$ of electric power when it is on and is kept on for an average of $6 \mathrm{~h}$ per day. For a unit electricity cost of 12 cents per $\mathrm{kWh}$, determine the cost of electricity this TV consumes per month (30 days).

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:40

Problem 118

Water is pumped from a 200-ft-deep well into a 100 -ft-high storage tank. Determine the power, in $\mathrm{kW}$, that would be required to pump $200 \mathrm{gal} / \mathrm{min}$.

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:25

Problem 119

Consider a vertical elevator whose cabin has a total mass of $800 \mathrm{~kg}$ when fully loaded and $150 \mathrm{~kg}$ when empty. The weight of the elevator cabin is partially balanced by a $400-\mathrm{kg}$ counterweight that is connected to the top of the cabin by cables that pass through a pulley located on top of the elevator well. Neglecting the weight of the cables and assuming the guide rails and the pulleys to be frictionless, determine $(a)$ the power required while the fully loaded cabin is rising at a constant speed of $1.2 \mathrm{~m} / \mathrm{s}$ and $(b)$ the power required while the empty cabin is descending at a constant speed of $1.2 \mathrm{~m} / \mathrm{s}$. What would your answer be to $(a)$ if no counterweight were used? What would your answer be to $(b)$ if a friction force of $800 \mathrm{~N}$ has developed between the cabin and the guide rails?

Mayukh Banik
Mayukh Banik
Numerade Educator
02:11

Problem 120

A grist mill of the 1800 s employed a waterwheel that was 14 m high; 480 L/min of water flowed onto the wheel near the top. How much power, in $\mathrm{kW}$, could this waterwheel have produced? Answer: $1.10 \mathrm{~kW}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:16

Problem 121

In a hydroelectric power plant, $65 \mathrm{~m}^{3} / \mathrm{s}$ of water flows from an elevation of $90 \mathrm{~m}$ to a turbine, where electric power is generated. The overall efficiency of the turbine-generator is 84 percent. Disregarding frictional losses in piping, estimate the electric power output of this plant.

Mayukh Banik
Mayukh Banik
Numerade Educator
03:25

Problem 122

The demand for electric power is usually much higher during the day than it is at night, and utility companies often sell power at night at much lower prices to encourage consumers to use the available power generation capacity and to avoid building new, expensive power plants that will be used only a short time during peak periods. Utilities are also willing to purchase power produced during the day from private parties at a high price.

Suppose a utility company is selling electric power for $\$ 0.05 / \mathrm{kWh}$ at night and is willing to pay $\$ 0.12 / \mathrm{kWh}$ for power produced during the day. To take advantage of this opportunity, an entrepreneur is considering building a large reservoir $40 \mathrm{~m}$ above the lake level, pumping water from the lake to the reservoir at night using cheap power, and letting the water flow from the reservoir back to the lake during the day, producing power as the pump-motor operates as a turbine-generator during reverse flow. Preliminary analysis shows that a water flow rate of $2 \mathrm{~m}^{3} / \mathrm{s}$ can be used in either direction. The combined pump-motor and turbine-generator efficiencies are expected to be 75 percent each. Disregarding the frictional losses in piping and assuming the system operates for $10 \mathrm{~h}$ each in the pump and turbine modes during a typical day, determine the potential revenue this pump-turbine system can generate per year.

Mayukh Banik
Mayukh Banik
Numerade Educator
01:43

Problem 123

The pump of a water distribution system is powered by a $15-\mathrm{kW}$ electric motor whose efficiency is 90 percent. The water flow rate through the pump is $50 \mathrm{~L} / \mathrm{s} .$ The diameters of the inlet and outlet pipes are the same, and the elevation difference across the pump is negligible. If the pressures at the inlet and outlet of the pump are measured to be $100 \mathrm{kPa}$ and $300 \mathrm{kPa}$ (absolute), respectively, determine the mechanical efficiency of the pump.

Mayukh Banik
Mayukh Banik
Numerade Educator
03:55

Problem 124

An automobile moving through the air causes the air velocity (measured with respect to the car) to decrease and fill a larger flow channel. An automobile has an effective flow channel area of $3 \mathrm{~m}^{2}$. The car is traveling at $90 \mathrm{~km} / \mathrm{h}$ on a day when the barometric pressure is $70 \mathrm{~cm}$ of mercury and the temperature is $20^{\circ} \mathrm{C}$. Behind the car, the air velocity (with respect to the car) is measured to be $82 \mathrm{~km} / \mathrm{h},$ and the temperature is $20^{\circ} \mathrm{C}$ Determine the power required to move this car through the air and the area of the effective flow channel behind the car.

Rashmi Sinha
Rashmi Sinha
Numerade Educator
01:30

Problem 125

A $2-\mathrm{kW}$ electric resistance heater in a room is turned on and kept on for $50 \mathrm{~min}$. The amount of energy transferred to the room by the heater is
(a) $2 \mathrm{~kJ}$
(b) $100 \mathrm{~kJ}$
(c) $3000 \mathrm{~kJ}$
(d) $6000 \mathrm{~kJ}$
(e) $12,000 \mathrm{~kJ}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:29

Problem 126

Consider a refrigerator that consumes $320 \mathrm{~W}$ of electric power when it is running. If the refrigerator runs only one-quarter of the time and the unit cost of electricity is $\$ 0.13 / \mathrm{kWh},$ the electricity cost of this refrigerator per month (30 days) is
(a) $\$ 4.9$
(b) $\$ 5.8$
(c) $\$ 7.5$
(d) $\$ 8.3$
(e) $\$ 9.7$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:15

Problem 127

A 75 -hp compressor in a facility that operates at full load for $2500 \mathrm{~h}$ a year is powered by an electric motor that has an efficiency of 93 percent. If the unit cost of electricity is $\$ 0.11 / \mathrm{kWh}$, the annual electricity cost of this compressor is
(a) $\$ 14,300$
(b) $\$ 15,380$
(c) $\$ 16,540$
(d) $\$ 19,180$
(e) $\$ 22,180$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:15

Problem 128

A 75 -hp compressor in a facility that operates at full load for $2500 \mathrm{~h}$ a year is powered by an electric motor that has an efficiency of 93 percent. If the unit cost of electricity is $\$ 0.11 / \mathrm{kWh}$, the annual electricity cost of this compressor is
(a) $\$ 14,300$
(b) $\$ 15,380$
(c) $\$ 16,540$
(d) $\$ 19,180$
(e) $\$ 22.180$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:29

Problem 129

A fan is to accelerate quiescent air to a velocity of $9 \mathrm{~m} / \mathrm{s}$ at a rate of $3 \mathrm{~m}^{3} / \mathrm{s}$. If the density of air is $1.15 \mathrm{~kg} / \mathrm{m}^{3},$ the minimum power that must be supplied to the fan is
(a) $41 \mathrm{~W}$
(b) $122 \mathrm{~W}$
(c) $140 \mathrm{~W}$
(d) $206 \mathrm{~W}$
(e) $280 \mathrm{~W}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
02:24

Problem 130

A $900-\mathrm{kg}$ car cruising at a constant speed of $60 \mathrm{~km} / \mathrm{h}$ is to accelerate to $100 \mathrm{~km} / \mathrm{h}$ in $4 \mathrm{~s}$. The additional power needed to achieve this acceleration is
(a) $56 \mathrm{~kW}$
(b) $222 \mathrm{~kW}$
(c) $2.5 \mathrm{~kW}$
(d) $62 \mathrm{~kW}$
(e) $90 \mathrm{~kW}$

Mayukh Banik
Mayukh Banik
Numerade Educator
01:01

Problem 131

The elevator of a large building is to raise a net mass of $550 \mathrm{~kg}$ at a constant speed of $12 \mathrm{~m} / \mathrm{s}$ using an electric motor. The minimum power rating of the motor should be
(a) $0 \mathrm{~kW}$
(b) $4.8 \mathrm{~kW}$
(c) $12 \mathrm{~kW}$
(d) $45 \mathrm{~kW}$
(e) $65 \mathrm{~kW}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:19

Problem 132

Electric power is to be generated in a hydroelectric power plant that receives water at a rate of $70 \mathrm{~m}^{3} / \mathrm{s}$ from an elevation of $65 \mathrm{~m}$ using a turbine-generator with an efficiency of 85 percent. When frictional losses in piping are disregarded, the electric power output of this plant is
(a) $3.9 \mathrm{MW}$
(b) $38 \mathrm{MW}$
(c) $45 \mathrm{MW}$
(d) $53 \mathrm{MW}$
(e) $65 \mathrm{MW}$

Mayukh Banik
Mayukh Banik
Numerade Educator
01:45

Problem 133

A $2-\mathrm{kW}$ pump is used to pump kerosene $(\rho=0.820 \mathrm{~kg} / \mathrm{L})$ from a tank on the ground to a tank at a higher elevation. Both tanks are open to the atmosphere, and the elevation difference between the free surfaces of the tanks is $30 \mathrm{~m}$. The maximum volume flow rate of kerosene is
(a) $8.3 \mathrm{~L} / \mathrm{s}$
(b) 7.2 L/s
(c) $6.8 \mathrm{~L} / \mathrm{s}$
(d) $12.1 \mathrm{~L} / \mathrm{s}$
(e) $17.8 \mathrm{~L} / \mathrm{s}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
01:10

Problem 134

A glycerin pump is powered by a $5-\mathrm{kW}$ electric motor. The pressure differential between the outlet and the inlet of the pump at full load is measured to be $211 \mathrm{kPa}$. If the flow rate through the pump is $18 \mathrm{~L} / \mathrm{s}$ and the changes in elevation and the flow velocity across the pump are negligible, the overall efficiency of the pump is
(a) 69 percent
(b) 72 percent
(c) 76 percent
(d) 79 percent
(e) 82 percent

Mayukh Banik
Mayukh Banik
Numerade Educator
01:27

Problem 135

A $10-\mathrm{cm}$ -high and 20 -cm-wide circuit board houses on its surface 100 closely spaced chips, each generating heat at a rate of $0.08 \mathrm{~W}$ and transferring it by convection to the surrounding air at $25^{\circ} \mathrm{C}$. Heat transfer from the back surface of the board is negligible. If the convection heat transfer coefficient on the surface of the board is $10 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$ and radiation heat transfer is negligible, the average surface temperature of the chips is
(a) $26^{\circ} \mathrm{C}$
(b) $45^{\circ} \mathrm{C}$
(c) $15^{\circ} \mathrm{C}$
(d) $80^{\circ} \mathrm{C}$
(e) $65^{\circ} \mathrm{C}$

Mayukh Banik
Mayukh Banik
Numerade Educator
01:33

Problem 136

$\begin{array}{ll} & \text { A } 50-\mathrm{cm} \text { -long, } 0.2 \text { -cm-diameter electric resistance }\end{array}$ wire submerged in water is used to determine the boiling heat transfer coefficient in water at 1 atm experimentally. The surface temperature of the wire is measured to be $130^{\circ} \mathrm{C}$ when a wattmeter indicates the electric power consumption to be $4.1 \mathrm{~kW}$. Then the heat transfer coefficient is
(a) $43,500 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$
(b) $137 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$
(c) $68,330 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$
(d) $10,038 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$
(e) $37,540 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C}$

Mayukh Banik
Mayukh Banik
Numerade Educator
03:14

Problem 137

A $3-m^{2}$ hot black surface at $80^{\circ} \mathrm{C}$ is losing heat to the surrounding air at $25^{\circ} \mathrm{C}$ by convection with a convection heat transfer coefficient of $12 \mathrm{~W} / \mathrm{m}^{2} \cdot{ }^{\circ} \mathrm{C},$ and by radiation to the surrounding surfaces at $15^{\circ} \mathrm{C}$. The total rate of heat loss from the surface is
(a) $1987 \mathrm{~W}$
(b) $2239 \mathrm{~W}$
(c) $2348 \mathrm{~W}$
(d) $3451 \mathrm{~W}$
(e) $3811 \mathrm{~W}$

Mayukh Banik
Mayukh Banik
Numerade Educator
01:01

Problem 138

Heat is transferred steadily through a 0.2 -m-thick, $8 \mathrm{~m} \times 4 \mathrm{~m}$ wall at a rate of $2.4 \mathrm{~kW}$. The inner and outer surface temperatures of the wall are measured to be $15^{\circ} \mathrm{C}$ and $5^{\circ} \mathrm{C}$. The average thermal conductivity of the wall is
(a) $0.002 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$
(b) $0.75 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$
(c) $1.0 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$
(d) $1.5 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$
(e) $3.0 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$

Mayukh Banik
Mayukh Banik
Numerade Educator
01:47

Problem 139

The roof of an electrically heated house is $7 \mathrm{~m}$ long, $10 \mathrm{~m}$ wide, and $0.25 \mathrm{~m}$ thick. It is made of a flat layer of concrete whose thermal conductivity is $0.92 \mathrm{~W} / \mathrm{m} \cdot{ }^{\circ} \mathrm{C}$. During a certain winter night, the temperatures of the inner and outer surfaces of the roof were measured to be $15^{\circ} \mathrm{C}$ and $4^{\circ} \mathrm{C}$, respectively. The average rate of heat loss through the roof that night was
(a) $41 \mathrm{~W}$
(b) $177 \mathrm{~W}$
(c) $4894 \mathrm{~W}$
(d) $5567 \mathrm{~W}$
(e) $2834 \mathrm{~W}$

Saman Zulfiqar
Saman Zulfiqar
Numerade Educator
04:31

Problem 140

An average vehicle puts out nearly 20 lbm of carbon dioxide into the atmosphere for every gallon of gasoline it burns, and thus one thing we can do to reduce global warming is to buy a vehicle with higher fuel economy. A U.S. government publication states that a vehicle that gets 25 rather than 20 miles per gallon will prevent 10 tons of carbon dioxide from being released over the lifetime of the vehicle. Making reasonable assumptions, evaluate if this is a reasonable claim or a gross exaggeration.

Bret Rosen
Bret Rosen
Numerade Educator
02:25

Problem 141

Your neighbor lives in a 2500 -square-foot (about $250 \mathrm{~m}^{2}$ ) older house heated by natural gas. The current gas heater was installed in the early $1980 \mathrm{~s}$ and has an efficiency (called the Annual Fuel Utilization Efficiency rating, or AFUE) of 65 percent. It is time to replace the furnace, and the neighbor is trying to decide between a conventional furnace that has an efficiency of 80 percent and costs $\$ 1500$ and a high-efficiency furnace that has an efficiency of 95 percent and costs $\$ 2500 .$ Your neighbor offered to pay you $\$ 100$ if you help him make the right decision. Considering the weather data, typical heating loads, and the price of natural gas in your area, make a recommendation to your neighbor based on a convincing economic analysis.

Naman Kumar
Naman Kumar
Numerade Educator
01:58

Problem 142

Find out the prices of heating oil, natural gas, and electricity in your area, and determine the cost of each per kWh of energy supplied to the house as heat. Go through your utility bills and determine how much money you spent for heating last January. Also determine how much your January heating bill would be for each of the heating systems if you had the latest and most efficient system installed.

Naman Kumar
Naman Kumar
Numerade Educator
02:12

Problem 143

Prepare a report on the heating systems available in your area for residential buildings. Discuss the advantages and disadvantages of each system and compare their initial and operating costs. What are the important factors in the selection of a heating system? Give some guidelines. Identify the conditions under which each heating system would be the best choice in your area.

Naman Kumar
Naman Kumar
Numerade Educator
01:58

Problem 144

The roofs of many homes in the United States are covered with photovoltaic (PV) solar cells that resemble roof tiles, generating electricity quietly from solar energy. An article stated that over its projected 30 -year service life, a $4-\mathrm{kW}$ roof PV system in California will reduce the production of $\mathrm{CO}_{2}$ that causes global warming by $433,000 \mathrm{lbm},$ sulfates that cause acid rain by $2900 \mathrm{lbm}$, and nitrates that cause $\operatorname{smog}$ by 1660 lbm. The article also claims that a PV roof will save 253,000 lbm of coal, 21,000 gal of oil, and 27 million $\mathrm{ft}^{3}$ of natural gas. Making reasonable assumptions for incident solar radiation, efficiency, and emissions, evaluate these claims and make corrections if necessary.

Naman Kumar
Naman Kumar
Numerade Educator
01:48

Problem 145

Pressure changes across atmospheric weather fronts are typically a few centimeters of mercury, while the temperature changes are typically $2-20^{\circ} \mathrm{C}$. Develop a plot of front pressure change versus front temperature change that will cause a maximum wind velocity of $10 \mathrm{~m} / \mathrm{s}$ or more.

Naman Kumar
Naman Kumar
Numerade Educator
01:29

Problem 146

The performance of a device is defined as the ratio of the desired output to the required input, and this definition can be extended to nontechnical fields. For example, your performance in this course can be viewed as the grade you earn relative to the effort you put in. If you have been investing a lot of time in this course and your grades do not reflect it, you are performing poorly. In that case, perhaps you should try to find out the underlying cause and how to correct the problem. Give three other definitions of performance from nontechnical fields and discuss them.

Naman Kumar
Naman Kumar
Numerade Educator
01:46

Problem 147

Some engineers have suggested that air compressed into tanks can be used to propel personal transportation vehicles. Current compressed-air tank technology permits us to compress and safely hold air at up to 4000 psia. Tanks made of composite materials require about 10 lbm of construction materials for each $1 \mathrm{ft}^{3}$ of stored gas. Approximately 0.01 hp is required per pound of vehicle weight to move a vehicle at a speed of 30 miles per hour. What is the maximum range that this vehicle can have? Account for the weight of the tanks only and assume perfect conversion of the energy in the compressed air.

Naman Kumar
Naman Kumar
Numerade Educator