Young Einstein: From the Doxerl Affair to the Miracle Year


L. Randles Lagerstrom - 2013
    In 1905 an unknown 26-year-old clerk at the Swiss Patent Office, who had supposedly failed math in school, burst on to the scientific scene and swept away the hidebound theories of the day. The clerk, Albert Einstein, introduced a new and unexpected understanding of the universe and launched the two great revolutions of twentieth-century physics, relativity and quantum mechanics. The obscure origin and wide-ranging brilliance of the work recalled Isaac Newton’s “annus mirabilis” (miracle year) of 1666, when as a 23-year-old seeking safety at his family manor from an outbreak of the plague, he invented calculus and laid the foundations for his theory of gravity. Like Newton, Einstein quickly became a scientific icon--the image of genius and, according to Time magazine, the Person of the Century.The actual story is much more interesting. Einstein himself once remarked that “science as something coming into being ... is just as subjectively, psychologically conditioned as are all other human endeavors.” In this profile, the historian of science L. Randles Lagerstrom takes you behind the myth and into the very human life of the young Einstein. From family rifts and girlfriend troubles to financial hardships and jobless anxieties, Einstein’s early years were typical of many young persons. And yet in the midst of it all, he also saw his way through to profound scientific insights. Drawing upon correspondence from Einstein, his family, and his friends, Lagerstrom brings to life the young Einstein and enables the reader to come away with a fuller and more appreciative understanding of Einstein the person and the origins of his revolutionary ideas.About the cover image: While walking to work six days a week as a patent clerk in Bern, Switzerland, Einstein would pass by the famous "Zytglogge" tower and its astronomical clocks. The daily juxtaposition was fitting, as the relative nature of time and clock synchronization would be one of his revolutionary discoveries in the miracle year of 1905.

The Old Farmer's Almanac 2014


Old Farmer's Almanac - 2013
    This is the one, the only, Old Farmer’s Almanac! Recognized for generations by its familiar yellow cover, the Almanac for 2014 promises to be "useful, with a pleasant degree of humor," fulfilling once again (for the 222nd time) the mission set forth in 1792 by its founder, Robert B. Thomas. In addition to its 80 percent–accurate weather, this year’s signature mix of wit and wisdom, tips and advice, forecasts and fun includes . . . • an astronomy quiz to test your Sky-Q • anglers’ six favorite fish and secrets to hooking them • vegetables and other perennial edibles to grow • the time in our lives: where it goes, ways to make the most of it, and more • the whole truth about whole grains • how to get bitten by a pet (if you’re not careful) • rings around Earth (think Saturn) that might influence our weather • health tips for each zodiac sign • envelope and napkin jottings that changed the world • plus: Moon phases and other celestial sightings, tides, historic trivia, gardening tables, best days, and too much more to mention! Added value this year: • 80 full-color pages • full-color winter and summer weather maps • updated Reference section

How to Teach Quantum Physics to Your Dog


Chad Orzel - 2009
    Could she use quantum tunnelling to get through the neighbour's fence and chase bunnies? What about quantum teleportation to catch squirrels before they climb out of reach? In this witty and informative book, Orzel and Emmy - the talking dog - discuss the key theories of Quantum Physics and its fascinating history. From quarks and gluons to Heisenberg's uncertainty principle, this is the perfect introduction to the fundamental laws which govern the universe.

Quantum: Einstein, Bohr and the Great Debate About the Nature of Reality


Manjit Kumar - 2007
    And yet for many years it was equally baffling for scientists themselves. Manjit Kumar gives a dramatic and superbly-written history of this fundamental scientific revolution, and the divisive debate at its heart.For 60 years most physicists believed that quantum theory denied the very existence of reality itself. Yet Kumar shows how the golden age of physics ignited the greatest intellectual debate of the twentieth century.Quantum sets the science in the context of the great upheavals of the modern age. In 1925 the quantum pioneers nearly all hailed from upper-middle-class academic families; most were German; and their average age was 24. But it was their irrational, romantic spirit, formed in reaction to the mechanised slaughter of the First World War that inspired their will to test science to its limits.The essential read for anyone fascinated by this complex and thrilling story and by the band of young men at its heart.

Why Does E=mc²? (And Why Should We Care?)


Brian Cox - 2009
    Breaking down the symbols themselves, they pose a series of questions: What is energy? What is mass? What has the speed of light got to do with energy and mass? In answering these questions, they take us to the site of one of the largest scientific experiments ever conducted. Lying beneath the city of Geneva, straddling the Franco-Swiss boarder, is a 27 km particle accelerator, known as the Large Hadron Collider. Using this gigantic machine—which can recreate conditions in the early Universe fractions of a second after the Big Bang—Cox and Forshaw will describe the current theory behind the origin of mass.Alongside questions of energy and mass, they will consider the third, and perhaps, most intriguing element of the equation: 'c' - or the speed of light. Why is it that the speed of light is the exchange rate? Answering this question is at the heart of the investigation as the authors demonstrate how, in order to truly understand why E=mc2, we first must understand why we must move forward in time and not backwards and how objects in our 3-dimensional world actually move in 4-dimensional space-time. In other words, how the very fabric of our world is constructed. A collaboration between two of the youngest professors in the UK, Why Does E=mc2? promises to be one of the most exciting and accessible explanations of the theory of relativity in recent years.

The Story Of The Tour De France


Bill McGann - 2006
    The McGann's passionate and insightful writing evokes the raucous cast of riders, promoters, and journalists thrusting through highs and lows worthy of opera. This volume stands out as a must-read book for anyone seeking to appreciate cycling's race of races." -Peter Joffre Nye, author of The Six-Day Bicycle Races: America's Jazz Age Sport and Hearts of Lions "There are LOTS of books on the Tour de France. An increasing number of them are actually written in English. However, of those, none educates Americans about this grand spectacle�s rich past. The Tour de France has a history as fascinating and sordid as Rome�s and it is high time someone undertook to explain this to our American sensibility. Our guide for the trip is a man with a ravenous appetite for both world history and bicycle racing, just the sort of person to paint a Tour champion with the dramatic grandiosity befitting Hannibal himself." -Pat Brady, Editor, Asphalt Magazine At the dawn of the 20th Century, French newspapers used bicycle races as promotions to build readership. Until 1903 these were one-day events. Looking to deliver a coup de grace in a vicious circulation war, Henri Desgrange�editor of the Parisian sports magazine L�Auto�took the suggestion of one of his writers to organize a race that would last several days longer than anything else, like the 6-day races on the track, but on the road. That�s exactly what happened. For almost 3 weeks the riders in the first Tour de France rode over dirt roads and cobblestones in a grand circumnavigation of France. The race was an electrifying success. Held annually (suspended only during the 2 World Wars), the Tour grew longer and more complex with an ever-changing set of rules, as Desgrange kept tinkering with the Tour, looking for the perfect formula for his race. Each year a new cast of riders would assemble to contest what has now become the greatest sporting event in the world.

Paradox: The Nine Greatest Enigmas in Physics


Jim Al-Khalili - 2012
    A fun and fascinating look at great scientific paradoxes.   Throughout history, scientists have come up with theories and ideas that just don't seem to make sense.  These we call paradoxes.  The paradoxes Al-Khalili offers are drawn chiefly from physics and astronomy and represent those that have stumped some of the finest minds.  For example, how can a cat be both dead and alive at the same time?  Why will Achilles never beat a tortoise in a race, no matter how fast he runs?  And how can a person be ten years older than his twin?   With elegant explanations that bring the reader inside the mind of those who've developed them, Al-Khalili helps us to see that, in fact, paradoxes can be solved if seen from the right angle.  Just as surely as Al-Khalili narrates the enduring fascination of these classic paradoxes, he reveals their underlying logic.  In doing so, he brings to life a select group of the most exciting concepts in human knowledge.  Paradox is mind-expanding fun.

Introductory Astronomy and Astrophysics


Michael Zeilik - 1987
    It has an algebra and trigonometry prerequisite, but calculus is preferred.

Stephen Hawking: A Biography


Kristine Larsen - 2005
    Despite having Amyotrophic Lateral Sclerosis (Lou Gehrig's Disease)--an affliction that many experts expected to have killed him decades ago--Hawking remains a vital and influential voice in the scientific community. One of the leading cosmologists studying the celestial phenomenon known as black holes, Hawking has also led the way in popularizing science with his best-selling work A Brief History of Time. This biography of Hawking, written by a physicist, provides an accessible introduction to the life and work of an inspirational figure.

College Physics [With Physics Now Free Online Access]


Raymond A. Serway - 1985
    The authors include a broad range of contemporary applications to motivate students understanding of how physics works in the real world. In addition, new pedagogy, reflecting the findings of physics education research, has been added to help students improve their problem solving skills and conceptual understanding. The text's flexible, accessible, and focused presentation, coupled with extraordinary text/media integration through PhysicsNow, gives instructors and students the tools they need to succeed. This text, which covers the standard topics in classical physics and 20th century physics, is divided into six parts. Newtonian mechanics and the physics of fluids (Part I); heat and thermodynamics (Part II); wave motion and sound (Part III); electricity and magnetism (Part IV); properties of light and the field of geometric and wave optics (Part V); and an introduction to special relativity, quantum physics, and atomic and nuclear physics (Part VI).

In Search of Schrödinger's Cat: Quantum Physics and Reality


John Gribbin - 1984
    It is so important that it provides the fundamental underpinning of all modern sciences. Without it, we'd have no nuclear power or nuclear bombs, no lasers, no TV, no computers, no science of molecular biology, no understanding of DNA, no genetic engineering—at all. John Gribbin tells the complete story of quantum mechanics, a truth far stranger than any fiction. He takes us step-by-step into an ever more bizarre and fascinating place—requiring only that we approach it with an open mind. He introduces the scientists who developed quantum theory. He investigates the atom, radiation, time travel, the birth of the universe, superconductors and life itself. And in a world full of its own delights, mysteries and surprises, he searches for Schrödinger's Cat—a search for quantum reality—as he brings every reader to a clear understanding of the most important area of scientific study today—quantum physics.

From Eternity to Here: The Quest for the Ultimate Theory of Time


Sean Carroll - 2009
    In the hands of one of today’s hottest young physicists, that simple fact of breakfast becomes a doorway to understanding the Big Bang, the universe, and other universes, too. In From Eternity to Here, Sean Carroll argues that the arrow of time, pointing resolutely from the past to the future, owes its existence to conditions before the Big Bang itself, a period modern cosmology of which Einstein never dreamed. Increasingly, though, physicists are going out into realms that make the theory of relativity seem like child’s play. Carroll’s scenario is not only elegant, it’s laid out in the same easy-to- understand language that has made his group blog, Cosmic Variance, the most popular physics blog on the Net. From Eternity to Here uses ideas at the cutting edge of theoretical physics to explore how properties of spacetime before the Big Bang can explain the flow of time we experience in our everyday lives. Carroll suggests that we live in a baby universe, part of a large family of universes in which many of our siblings experience an arrow of time running in the opposite direction. It’s an ambitious, fascinating picture of the universe on an ultra-large scale, one that will captivate fans of popular physics blockbusters like Elegant Universe and A Brief History of Time.

Warmth Disperses and Time Passes: The History of Heat


Hans Christian Von Baeyer - 1998
    With his trademark elegant prose, eye for lively detail, and gift for lucid explanation, Professor von Baeyer turns the contemplation of a cooling coffee cup into a beguiling portrait of the birth of a science with relevance to almost every aspect of our lives.

How to Destroy the Universe: and 34 Other Really Interesting Uses of Physics


Paul Parsons - 2011
    How to Destroy the Universe embraces thirty-five key physics ideas in a way that anyone can understand. Read this book and you will discover how to reverse the effects of global warming and fend off killer asteroids. You'll learn essential survival skills such as how to live through a lightning strike and how to fall into a black hole without being turned into spaghetti. You'll discover how to turn lead into gold, how to travel to the centre of the Earth and how to use physics to predict the stock market. How to Destroy the Universe will make you see the world through fresh eyes.

Love Thyself: The Message from Water III


Masaru Emoto - 1999
    Water speaks for what is in our mind. Water awakens the subconscious memory in each person. . . . I now know why water is indispensable to the phenomenon of life, and why alternative therapies exist and why they’re effective. Water helped me understand religion and prayer and gave me a clue to understanding the nature of energy. It helped me understand the relationship between humanity and the cosmos. It gave me a clue to help me understand what dimensionality is. I could come one step closer to understanding the eternal theme of humanity that asks where we come from, why we are here, and what happens when we die.         “Thus, for the release of this, the third volume in my series of The Message from Water, I decided to choose what the world most urgently needs at present as a theme. That is, of course, the need to eliminate war and terrorism throughout the world. The theme I have chosen is ‘prayer.’ When I thought about it more deeply, I realized that prayer is most effectively sent when each person in the world raises their energy of love by imagining a scene where the peoples of the world are living in peace. I’ve been taught this through the process of asking water many questions.         “For this reason, the title of this book is ‘Love Thyself.’ First you must shine with positive, high-spirited vibrations, and be full of love. In order to do that, I think it’s important to love, thank, and respect yourself. If that’s the case, then each of those vibrations will be sent out into the world and the cosmos, and the great symphony of that harmonic vibration will wrap our planet in waves of love that serve to cherish our Heaven-granted lives. This is the message from water.” — Masaru Emoto