Love and Relativity

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Much love, Rachael xo. Thank YOU, Ms. Wade, for taking the time to read my review! I am sorry as well - but I will continue to read this series, as I feel invested enough in the characters. I wasn't aware this book was part of a series. I liked this book, but I didn't love it. I wonder who the second book will be about?

Reservation is Book 2, and it is a sequel to Kate and Ryan's story. It is in Ryan's POV. I'm excited! This is a interest review and what everyone had to say about it.

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I think I will try it to see for myself if it is for me or not. Thanks for you view.

8 Ways You Can See Einstein's Theory of Relativity in Real Life

Judy Peterson. I love comments! I will always try and reply to your comments, as well as leave some comment love on your blog! While I am flattered that you would think of me, I really do not have the time to follow up. Thank you! Love and Relativity by Rachael Wade. Book 1. Publisher: Rabbit Hole Press. Publication Date: December 12, Rating: 3 stars. Source: Bought from Amazon.

Summary from Goodreads :. Love, life, and happily ever after?

Marine biology student Emma Pierce lives in paradise—geographically speaking, anyway. Stranded on Sanibel Island, Florida, she works at a nursing home by day and spends her nights dodging the island's infamous bad boy, Jackson Taylor, at her favorite karaoke bar. Trying to heal from the loss of her sister and a failed relationship she rerouted her life for, she's ready to graduate and finally leave Florida behind.

When a run-in with Jackson and his rowdy crew goes sour at the bar one night, sparks fly and irreversible damage is done.

Now all he wants is to earn her forgiveness before she's gone for good, but their ideas of closure—and the future—are enough to keep them worlds apart. What I Liked:. Ravi says that there is still hope. That they are developing a new understanding of the multiverse from data they received in the moments before the jump.

He says they will send someone else one day, when they are ready. You will come home then, perhaps. Excerpt: Now let us make a vow together. We shall share love, share the same food, share our strengths, share the same tastes. We shall be of one mind, we shall observe the vows together. Notes: It's been more than ten years since I looked at these letters, and yet today I find myself returning, pen in hand.

Tomorrow Ravi and I are getting married. He is the closest thing to a father Chandri ever knew, and still she has not forgiven me for betraying you. She spends all her time locked up in her room, reading the research logs you left behind, writing out equation after equation. I tell her you would want her to be happy, but she does not listen. Notes: Chandri stopped by yesterday with a mandara sapling and a copy of her book.

After we planted the tree in our garden, she told us she was certain she can follow the trail your ship left all those years ago. That she loves us both, but is determined to make the jump herself, and soon. Ravi and I are worried, but we did not try to stop her — we both know how important this is to her. To all of us.

To everyone. I have given her these pages to pass on to you. Even though it's been so long, there are still times I miss you so intensely it is hard to breathe. To obtain permission to re-use content from this article visit RightsLink. Article metrics. Advanced search.

Skip to main content. Subjects Physics. Family connections. The implications of Einstein's most famous theory are profound. If the speed of light is always the same, it means that an astronaut going very fast relative to the Earth will measure the seconds ticking by slower than an Earthbound observer will — time essentially slows down for the astronaut, a phenomenon called time dilation. Any object in a big gravity field is accelerating, so it will also experience time dilation.

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Meanwhile, the astronaut's spaceship will experience length contraction, which means that if you took a picture of the spacecraft as it flew by, it would look as though it were "squished" in the direction of motion. To the astronaut on board, however, all would seem normal. In addition, the mass of the spaceship would appear to increase from the point of view of people on Earth.

But you don't necessarily need a spaceship zooming at near the speed of light to see relativistic effects. In fact, there are several instances of relativity that we can see in our daily lives, and even technologies we use today that demonstrate that Einstein was right. Here are some ways we see relativity in action.

Magnetism is a relativistic effect, and if you use electricity you can thank relativity for the fact that generators work at all.

If you take a loop of wire and move it through a magnetic field, you generate an electric current. The charged particles in the wire are affected by the changing magnetic field , which forces some of them to move and creates the current. But now, picture the wire at rest and imagine the magnet is moving. In this case, the charged particles in the wire the electrons and protons aren't moving anymore, so the magnetic field shouldn't be affecting them.

But it does, and a current still flows. This shows that there is no privileged frame of reference. Thomas Moore, a professor of physics at Pomona College in Claremont, California, uses the principle of relativity to demonstrate why Faraday's Law , which states that a changing magnetic field creates an electric current, is true. Electromagnets work via relativity as well.

When a direct current DC of electric charge flows through a wire, electrons are drifting through the material. Ordinarily the wire would seem electrically neutral, with no net positive or negative charge.

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That's a consequence of having about the same number of protons positive charges and electrons negative charges. But, if you put another wire next to it with a DC current, the wires attract or repel each other, depending on which direction the current is moving. Assuming the currents are moving in the same direction, the electrons in the first wire see the electrons in the second wire as motionless.

This assumes the currents are about the same strength.

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