The physics of everyday things The extraordinary science behind an ordinary day

James Kakalios, 1958-

Book - 2017

"Easy-to-follow and imaginative explanations about the extraordinary physics that invisibly guides our daily lives"--

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Subjects
Published
New York : Crown [2017]
Language
English
Main Author
James Kakalios, 1958- (author)
Edition
First edition
Physical Description
245 pages : illustrations ; 22 cm
Bibliography
Includes bibliographical references and index.
ISBN
9780770437732
  • Chapter 1. You Begin Your Day
  • Chapter 2. You Drive into the City
  • Chapter 3. You Go to the Doctor
  • Chapter 4. You Go to the Airport
  • Chapter 5. You Take a Flight
  • Chapter 6. You Give a Business Presentation
  • Chapter 7. You Go to a Hotel
  • Acknowledgments
  • Notes
  • Figure Captions
  • Index
Review by Booklist Review

No one will ever mistake the bedroom, kitchen, highway, or business office for the physics laboratory. But because physics informs his vision, Kakalios discerns in such ordinary places extraordinary lessons in the scientific laws that explain the devices, vehicles, and technologies we rely on daily. When scientifically interrogated, even relatively simple mechanisms (a pendulum clock, an elevator) yield surprising insights into the dynamics of matter and energy. And when he turns his attention to more complex technology (the touch screen of an ATM kiosk, the television remote control), Kakalios teases out more profound principles of electromagnetism and quantum mechanics. Writing in the accessible style that made his The Physics of Superheroes (2005) a reader favorite, Kakalios illuminates scientific precepts with few technical terms and almost no mathematics. Sure to awaken in readers a new awareness of science operating beneath familiar surfaces, this analysis also opens a historical perspective on the inventions that have reshaped the world once dependent on little-understood steam engines, now exploiting ingeniously engineered semiconductors. A fascinating inquiry exposing hidden science.--Christensen, Bryce Copyright 2017 Booklist

From Booklist, Copyright (c) American Library Association. Used with permission.
Review by Publisher's Weekly Review

In his latest work of pop physics, Kakalios, professor of physics at the University of Minnesota, eschews the jokes and banter of The Amazing Story of Quantum Mechanics, diving right into his explanations of objects and phenomena that Westerners encounter in their daily routines. Kakalios takes his title literally, following a bachelor businessman subject as he moves through his day. The author pauses regularly to explain the physics behind the innumerable tools, devices, and machines upon which his subject depends. A morning smartphone alarm and the smell of brewing coffee launch a discussion of the elegant physics of the pendulum, which underlies all timers and whose periodic oscillations illustrate the simplest of many universal phenomena, including the conservation of energy and electric power generation. Over the course of the day, readers will encounter no math, little cuteness, and only half a dozen charts. Many explanations, such as the basics of the LED TV, may require multiple rereads for full comprehension. Kakalios achieves more success with his elucidations of the familiar refrigerator and copier machine than he does with microelectronics. Readers will enjoy lucid explanations of dazzling yet quotidian technology, and those who remember a bit of high school-level science may appreciate them even more. Agent: Jay Mandel, WME. (May) © Copyright PWxyz, LLC. All rights reserved.

(c) Copyright PWxyz, LLC. All rights reserved
Review by Library Journal Review

Kakalios (physics and astronomy, Univ. of Minnesota; The Physics of Superheroes) uses a rather ingenious method to get listeners to appreciate how ubiquitous a role physics plays in their lives. He explains how devices operate that are used during a "normal" day. When the book begins, the listener wakes to her alarm, Kakalios then spends several minutes extolling how the alarm clock works, including going into detail on how a pendulum operates. The book moves on to other common appliances, devices, and equipment. Kakalios explains how thermodynamics both turns bread into toast and cools food in a refrigerator. The book is a constant ride through interesting topics, such as how World War II radar technology helps a computer parallel park a car, and will keep listeners entertained. However, listening to the book in short stretches may be preferable owing to the steady flow of information without interruption or story line. Jonathan Todd Ross narrates effectively. VERDICT Recommended for casual science fans or those wishing to learn the physics of common items.-Jason L. Steagall, Gateway Technical Coll. Lib., Elkhorn, WI © Copyright 2017. Library Journals LLC, a wholly owned subsidiary of Media Source, Inc. No redistribution permitted.

(c) Copyright Library Journals LLC, a wholly owned subsidiary of Media Source, Inc. No redistribution permitted.
Review by Kirkus Book Review

A renowned physicist and science popularizer explains the principles underlying technologies that comprise the modern mundane.In a chronological series of brief and accessible chapterstitled, for example, "You Begin Your Day," "You Drive into the City," "You Go to the Airport"Kakalios (Physics/Univ. of Minnesota; The Amazing Story of Quantum Mechanics: A Math-Free Exploration of the Science that Made Our World, 2010, etc.), author of the bestselling The Physics of Superheroes (2005), walks readers through the many scientific interactions that take place in a typical day, even if we don't see them. From waking to the aroma of coffee brewed on a timer to relaxing in front of a flat-screen TV before bed, most people rely on the basic laws of physics almost incessantly: basic concepts such as the principle of conservation of energy and the relationship between electricity and magnetism power an incredible number of machines and devices. Some of these, such as elevators and credit cards, make life more convenient and efficient. Others, such as X-rays and MRI scans, routinely save lives. Relying on a mix of narrative storytelling and straightforward science writing, the author adeptly connects our everyday experiences with some of the most fascinating behaviors of atoms and molecules. He does so without relying on esoteric vocabulary, making this a book that readers of many ages can enjoy. (We can only hope that one day we will see flying cars, the possibility of which is discussed in the last chapter.) From start to finish, this is a fun and comprehensive introduction to many of the forces that govern how we interact with each other and the world around us. Rudimentary drawings illustrate some of the concepts. Once again, Kakalios makes physics relatable, this time demonstrating how profoundly its principles enable our way of life. Copyright Kirkus Reviews, used with permission.

Copyright (c) Kirkus Reviews, used with permission.

Chapter One You Begin Your Day It is early morning, and you're asleep in bed. Your slow, regular breathing and steady pulse mark the passage of time, bringing you closer to when you must get up and begin your day. Today will be a busy one, with a visit to the doctor followed by a flight to another city for a business presentation. The vintage clock on your wall, a gift from your grandmother, provides a comforting tick, tock as the small bob hanging from the body swings rhythmically back and forth. Although the clock keeps good time, you rely on the alarm setting of your smartphone to wake you. But the first sensation that will register the start of your day will not be your hearing; it will be your sense of smell. Last night you set the digital timer on your coffeemaker to start its brewing cycle ten minutes before your phone's alarm will go off. Your room soon fills with the aroma of fresh coffee, and you begin to stir. The elegant physics of an oscillating pendulum underlies the working of both the clock on the wall and the electronic timer on your coffeemaker, and plays a crucial role in many of the devices you will use as you prepare for the day. A pendulum is a very simple device, consisting of a string, fixed at one end, with a mass, termed the "bob," attached at the other end. The oscillations of the pendulum bob provide visual confirmation of one of the most important concepts in physics, that of the principle of conservation of energy: "kinetic energy," the energy of motion, can only be converted to "potential energy" (the energy associated with a force acting on an object and the distance over which that force can cause motion) and vice versa. In a pendulum, you can increase the potential energy of the mass on the string by lifting it up, rotating the bob to a higher level while keeping the string taut, doing work against the gravity that pulls down on the bob. Once you release the bob, its potential energy is converted into kinetic energy as it moves in an arc of a semicircle. As the bob swings to the other side, the kinetic energy is converted back into potential energy. Both the starting height and the final height at the other end of the arc are the same--­when you release the mass and don't push it, it can never rise to a greater height than where it started. A pendulum is useful for keeping time. The time it takes for the bob to complete a full cycle as it swings back and forth does not depend on how heavy the weight is, or on how high the mass is lifted to start it swinging (at least, for relatively small excursions back and forth). The greater the height of the mass, the larger the arc as it swings back and forth, and the larger the kinetic energy and speed it will have at the bottom of its arc. The longer distance and the faster speed exactly balance out, so that the time it takes to complete a cycle is the same--­regardless of how high the bob is raised. The only factor that controls the time for a cycle is the length of the string. A pendulum whose string is just a little less than ten inches long will take one second to complete a full oscillation. As it swings, some of the kinetic energy of the bob is transferred to the surrounding air, pushing the molecules out of the bob's way. A careful audit will find that the gain in kinetic energy of the air is exactly equal to the reduction of the total energy of the pendulum, which is why mechanical clocks--­grandfatherly and otherwise--­need periodic winding. It's as true for the digital timer on the coffeemaker as it is for the mechanical pendulum--­to mark the passing of time, one needs a power supply (as everything, even counting seconds, requires a source of energy) and a way to convert that energy into a periodically varying cycle. The coffeemaker is plugged into an outlet connected to an external electric power grid. Conveniently for us, the mechanism by which electric power is generated at a power plant automatically leads to an electric current that oscillates back and forth like a pendulum that can be exploited when making a timer. Your electric company rotates coils of wire between the poles of large electromagnets, and to see how that leads to an alternating electric current, let's return to the simple mechanical oscillating pendulum. Let the bob at the end of the string have an electric charge, say from a few extra electrons sitting on it. Even if this pendulum has a frictionless pivot point and is swinging in a perfect vacuum, with no air drag, it will eventually slow down and come to rest. Where did the bob's energy go? Into electromagnetic waves, demonstrating a profound symmetry between electric and magnetic fields that will be exploited repeatedly throughout your day. An "electric current" is defined as the motion of electric charges moving together, and as the electrically charged bob swings back and forth, changing its speed, it is a constantly changing current. The current is large at the bottom of the arc, when the bob is moving at its fastest, and the current is zero at the top of the arc, when the bob is momentarily stationary. Moving electric charges, as in a current, generate a magnetic field (this is known as Ampere's law); the faster they move, the larger the magnetic field. The swinging bob, creating a constantly changing current, generates an equally varying magnetic field. In turn, this changing magnetic field generates a varying electric field (known as Faraday's law). This rhythmic oscillation of electric and magnetic fields is termed an "electromagnetic wave," which will have the same frequency as that of the oscillating bob. These waves carry energy, and thus it takes energy to create them. This is why the oscillations of an electrically charged bob will slowly die out, as its energy of motion is converted into electromagnetic waves. We could see these electromagnetic waves with the naked eye if the pendulum were swinging back and forth very rapidly (say, a thousand trillion times a second), in which case these waves would appear as visible light. The power company employs the basic physics of electromagnetism when it generates the electric voltage available from the wall outlet, using coils of wire rotating between the poles of a magnet. The voltage provided by your electric company alternates smoothly from a positive voltage to a negative voltage, and back again, forming a wave that is mathematically identical to the variation in position of the pendulum bob as it oscillates back and forth, and is a natural consequence of how the electricity is produced. (This is why our electric power is called AC, for "alternating current.") The power plant is applying Faraday's law, which describes how a changing magnetic field will generate a voltage. As the coil turns, the magnitude of the magnetic field passing through the circular area of the coil varies, and a voltage is generated that sets up a current in the coil. Think of the coil as a spool of thread with a very large diameter. When the area of the coil is facing the poles of the magnet, most of the magnetic field passes through it (along the length of the spool), but when it rotates by ninety degrees, hardly any of the field passes through the coil's area. A uniform rotation speed yields a smoothly varying voltage that changes back and forth in time, just like the motion of the pendulum bob. In the United States, the coils rotate sixty times a second, which is the frequency of the alternating voltage that is generated. The fact that the voltage in the wall outlet varies smoothly back and forth sixty times a second means that it takes only 0.0167 second to complete one cycle. To slow this period down, the coffeemaker's timer uses specially designed chips that shift the frequency of the alternating voltage. One chip divides the incoming frequency by ten, so a voltage wave that oscillates sixty times a second now does so six times a second. Another chip divides this frequency by an additional factor of six, so the frequency of six cycles per second is reduced to one cycle per second. This slower voltage wave is sent to another chip, which counts the number of times the voltage has its largest positive value (equivalent to watching how often the pendulum bob returns to its original starting position). This "counting" chip monitors the passing seconds, and with a little amount of additional circuitry, this information can be displayed on a digital clock. When you set the timer on your coffeemaker, you are instructing a chip to monitor this counting chip, and when the sum reaches a certain value (the time you specified for the coffeemaker to turn on), it sends another voltage to another part of the electronic system. This voltage is the same as the one created when you press the on switch manually, and the brewing process begins. The system for measuring time begins when we plug in the coffeemaker and set the correct time. If the coffeemaker is unplugged, then this preset is lost. So how does an electronic timer work when it is not connected to the external alternating-­current power from the wall outlet? The coffee vapors waft into your room and are recognized by your still-­not-­fully-­awake mind. In addition to setting the timer on the coffeemaker last night, you set the alarm clock on your smartphone. The alarm goes off, playing a preset tune stored in the phone's memory chip. You grumble as you check the time, because it is earlier than you normally need to get up. You are tempted to tap the alert marked snooze. But as you inhale the coffee aroma, you notice your packed overnight bag sitting in the corner of your bedroom. Reminding yourself that you have a long day in front of you, you force yourself out of bed. Getting to your feet, you wince slightly as you put weight on your left foot. It will be good to get that looked at today. The problem of keeping time in a device not connected to an external electrical power supply is an old one; in fact, it predates the existence of electrical power. Old-­fashioned alarm clocks used springs, and when the hands on the face of the clock reached a set point, a lever would be flipped, releasing another coiled spring. This other spring would then oscillate a striker bar between two metal shells, creating a clanging noise loud enough to wake the dead. The alarm in your smartphone is smaller, and the wake-­up tune is less jarring, but the principle behind its operation is essentially the same. Your smartphone uses something called a piezoelectric crystal to replace the mechanical spring in an alarm clock. Let's look at simple springs first, piezoelectric crystals second. Springs make for very good timekeepers. Springs resist being stretched or compressed, and respond with a force that opposes the change in their length. The more the spring is stretched or compressed, the greater the opposing force. Hang a coiled spring from the ceiling, and attach a weight to its end. The spring will stretch down, with the spring providing an upward force, opposing the stretching and balancing the downward gravitational pull of the weight. If you pull the weight down a bit more and let it go, the upward force from the spring is now larger than the downward force of the weight, and the weight moves upward, speeding past its original position. As the weight overshoots, it compresses the spring, and the coil responds with a downward force, now opposing the squeezing and pushing the weight back toward its starting location. The weight will go up and down periodically, with a motion no different from the swinging pendulum bob and the alternating voltage from the wall outlet. The natural frequency of the spring's oscillations (the number of up-and-down cycles per second) is determined by its stiffness and how much weight is hanging on its end. The origin of the force in a spring that resists being stretched or compressed is the same as in the piezoelectric crystal in your smartphone--­electricity. The atoms in all solids are held together by electric forces, which also make sure that the atoms stay in specific locations. If two neighboring atoms in a solid get too close to each other, there is a repulsive force between the electrons from each atom that pushes them back apart. Imagine an atom in a crystal as a simple ball. Let's represent the chemical bonds holding the atom in place as springs attached to the atoms on either side. Push this atom away from its natural position in a solid, and its surrounding electrons will encroach too closely on its neighbors on one side, and be too far away on the other. This creates an unbalanced force that will push the atom back toward its equilibrium position. That force will decrease by the time the atom is back to its natural spot in the crystal, but due to its kinetic energy it will overshoot and now move toward the neighboring atom on the other side. It will oscillate back and forth around its preferred location, with the amplitude of vibration depending on the solid's temperature, and the frequency of oscillation depending on the mass of the atom and the stiffness of the chemical bonds holding it in place in the solid. This vibration of the atoms happens in all solids: this book, the chair you are sitting in, even you yourself. Electronic timekeepers, such as a digital wristwatch and your smartphone, use a special oscillator that is much more accurate than a coiled spring--­a quartz crystal. Quartz is a solid composed of molecular units of silicon dioxide, the chemical composition of sand. Quartz crystals have a special property: the electric charges of the molecular units line up to create a net electric field along the length of the solid when it is squeezed in one direction. This type of material is called piezoelectric: piezo, in Greek, means "to squeeze or press," and a ­piezoelectric material is a solid that generates a voltage when it is squeezed. For certain materials and crystal structures, when two sides of the solid are pushed together, all the atoms buckle in just the right way to create a large, net electric field. To use a piezoelectric crystal as a timing device, we run this process backward. That is, we apply a voltage across the solid, and the crystal sides pull together, as if compressed by an external force. Once the voltage is turned off, the crystal will expand, and it begins to oscillate at its natural frequency. That frequency is determined by the size and shape of the crystal, and can range from a few thousand cycles per second to as high as several hundred million cycles per second. As the quartz crystal oscillates, it generates a voltage at this same natural frequency that can be used to maintain the crystal's vibrations. As in the digital timer, computer chips reduce the quartz crystal's high frequency down to one cycle per second. Once the preset time is reached, a signal voltage is sent to another chip. In the coffee maker, this second chip starts the brewing process for the coffee, while in your phone it initiates playing a preselected musical tune. Excerpted from The Physics of Everyday Things: The Extraordinary Science Behind an Ordinary Day by James Kakalios All rights reserved by the original copyright owners. Excerpts are provided for display purposes only and may not be reproduced, reprinted or distributed without the written permission of the publisher.