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1

Mitch, Ratcliffe, ed. Newton's law: A digital nomad's guide. Random House Electronic Pub., 1993.

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Vining, Joseph. From Newton's sleep. Princeton University Press, 1995.

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Vining, Joseph. From Newton's sleep. Princeton University Press, 1994.

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4

Kudinov, Igor', Anton Eremin, Konstantin Trubicyn, Vitaliy Zhukov, and Vasiliy Tkachev. Vibrations of solids, liquids and gases taking into account local disequilibrium. INFRA-M Academic Publishing LLC., 2022. http://dx.doi.org/10.12737/1859642.

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The monograph presents the results of the development and research of new mathematical models of the processes of vibrations of solids, liquids and gases, taking into account local disequilibrium. To derive differential equations, the Navier—Stokes equations, Newton's second law and modified formulas of the classical empirical laws of Fourier, Hooke, Newton are used, which take into account the velocities and accelerations of the driving forces (gradients of the corresponding quantities) and their consequences (heat flow, normal and tangential stresses). The conditions for the occurrence of sh
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5

H, Wilkinson John, and Donovan Leisure Newton & Irvine., eds. Donovan Leisure Newton & Irvine ADR practice book. Wiley Law Publications, 1990.

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6

Rocard, Jean-Michel. Newton versus relativity. Vantage Press, 1992.

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7

Soldano, B. A. Newton's law of universal gravitation and the fine structure constant. Grenridge Pub., 1987.

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8

Mass.) Temple Emanuel (Newton. Shabbat at Temple Emanuel. Temple Emanuel, 2008.

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9

Notebook, charlesgrahm. Notebook: Newtons First Law Funny Physics Joke - CollegeRuled - 100 Pages - 6 X 9 Inches. Independently Published, 2020.

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10

Berger, Leonie. Notizbuch A5 Kariert Mit Softcover Design : Newtons Law - Lustiges Physik Physiker Spruch Witz Spaß: 120 Karierte DIN A5 Seiten. Independently Published, 2020.

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11

Staff, Willowrock Press LLC. Newton's Law. Kendall Hunt Publishing Company, 2010.

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12

Brough, Jonathan, and Jennifer Leacey. Newton's law. 2018.

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13

Schliesser, Eric. Newton's Metaphysics. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780197567692.001.0001.

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This collection of papers by a leading philosophical Newton scholar offers new interpretations of Newton’s account of space, gravity, motion, inertia, and laws—all evergreens in the literature. The volume also breaks new ground in focusing on Newton’s philosophy of time, Newton’s views on emanation, and Newton’s modal metaphysics. In addition, the volume is unique in exploring the very rich resonances between Newton’s and Spinoza’s metaphysics, including the ways in which Newton and his circles responded to the threat by, and possible accusation of, Spinozism. Seven chapters have been publishe
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14

Domski, Mary. Laws of Nature and the Divine Order of Things. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198746775.003.0003.

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This chapter examines the different ways in which Descartes and Newton balance their claim that laws of nature are true of the natural world with their commitment to our human inability to fully comprehend God’s creation of nature. For both Descartes and Newton, there is a qualified notion of truth at play. Descartes’s laws of nature are true insofar as they capture God’s maintenance of nature only so far as we can understand. Nonetheless, they are afforded the highest degree of certainty and necessity that we can attain. Newton’s laws of motion are true insofar as they accurately describe the
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15

Sklar, Lawrence. Time in Classical Dynamics. Edited by Craig Callender. Oxford University Press, 2011. http://dx.doi.org/10.1093/oxfordhb/9780199298204.003.0020.

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Time in even classical mechanics has yet to be fully appreciated by philosophers. This chapter begins with time as it is presented to us in Newton's famous “Scholium.” It shows how and why Newton developed a notion that has various specific features, namely, those needed for time to play the role it does in classical dynamics, and, first, asks the question of why Newton needed his “absolute” time. The chapter then deals with refining the concept of time; temporal metric and dynamical laws; and the place of time in foundational physics.
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16

Newman, William. Newton the Alchemist. Princeton University Press, 2018. http://dx.doi.org/10.23943/princeton/9780691174877.001.0001.

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When Isaac Newton's alchemical papers surfaced at a Sotheby's auction in 1936, the quantity and seeming incoherence of the manuscripts were shocking. No longer the exemplar of Enlightenment rationality, the legendary physicist suddenly became “the last of the magicians.” This book unlocks the secrets of Newton's alchemical quest, providing a radically new understanding of the uncommon genius who probed nature at its deepest levels in pursuit of empirical knowledge. The book blends in-depth analysis of newly available texts with laboratory replications of Newton's actual experiments in alchemy.
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17

The Official Newton's Law Calendar. Danilo, 2003.

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18

Newton's Law: A Modern Bear. Bizzy Bee Publishing, 2005.

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19

Smeenk, Chris, and Eric Schliesser. Newton’s Principia. Edited by Jed Z. Buchwald and Robert Fox. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199696253.013.6.

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This article examines the historical context of Isaac Newton’s Mathematical Principles of Natural Philosophy (Principia) and how it reoriented natural philosophy for generations. It first considers how the Principia extends and refines the ideas of De Motu, taking into account the three Laws of Motion, the force responsible for the planetary trajectories, the motion of projectiles in a resisting medium, and the law of universal gravitation. It then discusses three changes that influenced fundamentally the content and reception of the Principia: the relabelling and rewording of nine ‘hypotheses
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20

Francis, Balungi. Derivation of Newton's Law of Gravity. Independently Published, 2020.

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21

Newton's Law Friends and Family Organizer. BIZZYBEE PUBLISHING LIMITED, 2004.

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22

Derivation of Newton's Law of Gravitation. Blurb, 2020.

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23

Deruelle, Nathalie, and Jean-Philippe Uzan. The law of gravitation. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0011.

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This chapter embarks on the study of Newton’s law of gravitation. It first discusses gravitational mass and inertial mass, a measure of the ‘resistance’ of the point particle to an applied force. The numerical value of the inertial mass of a body can in principle be obtained from collision experiments by assigning to a reference body a unit inertial mass of one kilogram or, more rigorously, one ‘inertial kilogram’. Next, the chapter considers the ratio of gravitational and inertial masses. It considers that, in the absence of friction, all objects, no matter what their inertial mass, or the na
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24

Wittman, David M. Acceleration and Force. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199658633.003.0002.

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This chapter develops crucial distinctions between constant‐velocity (also called inertial) frames of reference and accelerating ones. Inertial frames respect Newton’s first law—objects maintain constant velocity unless acted upon by a net force—while accelerating frames violate this law. Therefore, much of our thinking about whether the laws of physics are the same in all frames will really concern *inertial* frames. Newton’s first law gives us a foolproof test for distinguishing accelerating frames from inertial frames; this testworks even if velocitymeasurements are not directly available.
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25

Mann, Peter. Newton’s Three Laws. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198822370.003.0001.

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This chapter introduces Newton’s laws, the Newtonian formulation of mechanics and key concepts such as configuration space and phase space for later development. In 1687, the natural philosopher Sir Isaac Newton published the Principia Mathematica and, with it, sparked the revolutionary ideas key to all branches of classical physics. In this chapter, the system is the object of interest and is considered to be either a single or a collection of generic particles that are not governed by quantum mechanics, for quantum systems do not follow these laws explicitly. Results for systems of particles
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26

Mercati, Flavio. Newton’s Bucket. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198789475.003.0002.

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This chapter describes the fundamental problem at the core of Newton’s dynamics: the definition of inertia. This is provided by an absolute structure in Newtonian mechanics, but, as Leibniz and later Mach argued, it should be dynamically determined. This is the core of Newton’s famous ‘bucket experiment’. Assuming this law as a postulate, without first defining the notions of ‘rest’, ‘uniform motion’ and ‘right (or straight) line’, is inconsistent. In a universe that is, in Barbour’s words, like ‘bees swarming in nothing’, how is one to talk about rest/uniform motion/straight lines? With respe
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27

Jones, Evan. Fluids in Motion Founded on Newton's 2nd Law. Strong & Assoc. Inc., 2022.

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28

Smiley, Jane. Las Aventuras De Lydie Newton. Tusquets Editor, 2002.

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29

Micros in Mathematical Education (Mime): Newton's Law of Motion. John Wiley and Sons Ltd, 1986.

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30

Deruelle, Nathalie, and Jean-Philippe Uzan. Conservation laws. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0007.

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This chapter defines the conserved quantities associated with an isolated dynamical system, that is, the quantities which remain constant during the motion of the system. The law of momentum conservation follows directly from Newton’s third law. The superposition principle for forces allows Newton’s law of motion for a body Pa acted on by other bodies Pa′ in an inertial Cartesian frame S. The law of angular momentum conservation holds if the forces acting on the elements of the system depend only on the separation of the elements. Finally, the conservation of total energy requires in addition
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31

Prettyman, Marie-Claire. Opposition in Pilates and Yoga: Newton's Third Law Meets Mindfulness. Panoma Press Limited, 2016.

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32

Hewitt, Paul G. Newton's First Law (Addison-Wesley Video Lessons for Conceptual Physics). Addison Wesley Higher Education (a Pearson Education company), 1987.

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33

Hewitt, Paul G. Newton's Third Law (Addison-Wesley Video Lessons for Conceptual Physics). Addison Wesley Higher Education (a Pearson Education company), 1987.

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34

Opposition in Pilates and Yoga: Newton's Third Law Meets Mindfulness. Panoma Press Limited, 2016.

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35

Liu, Millie, and Valerie Tripp. Izzy Newton and the S.M.A.R.T. Squad: The Law of Cavities. Under the Stars, 2022.

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36

Wittman, David M. Galilean Relativity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199658633.003.0003.

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Galilean relativity is a useful description of nature at low speed. Galileo found that the vertical component of a projectile’s velocity evolves independently of its horizontal component. In a frame that moves horizontally along with the projectile, for example, the projectile appears to go straight up and down exactly as if it had been launched vertically. The laws of motion in one dimension are independent of any motion in the other dimensions. This leads to the idea that the laws of motion (and all other laws of physics) are equally valid in any inertial frame: the principle of relativity.
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37

Swaan, Bram de. Isaac Newton - El Ingles de Las Manzana -. Andres Bello, 1998.

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38

Perea, Irela. El amor y las leyes de Newton. Destino Infantil & Juvenil, 2017.

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39

Isaac Newton y Las Leyes Del Universo. Teacher Created Materials, Incorporated, 2024.

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40

Isaac Newton vs. Robert Hooke on the law of universal gravitation. MultiMedia Publishing, 2019.

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41

Gore, Andy. Newton's Law: The Brave New World of Apple's Personal Digital Assistant. Random House Information Group, 1993.

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42

Rusher, Young. Electromagnetism and Thermodynamics : Law of Motion: Newton's Laws of Motion Worksheet. Independently Published, 2021.

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43

Sfetcu, Nicolae. Isaac Newton vs. Robert Hooke on the Law of Universal Gravitation. Independently Published, 2019.

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44

Cómo superar las penas de amor con Newton. Planeta, 2015.

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45

Gasser, T. Christian. Physical processes in the vessel. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780198755777.003.0003.

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Evolution has developed a complex cardiovascular system, the analysis of which involves many physical disciplines. Specifically, cardiovascular function critically depends on the proper interaction between blood and the vessel wall, such that haemodynamics-based biomechanical factors are a common denominator of cardiovascular pathologies. This chapter reviews biomechanics-related physical processes in the vessel. Specifically, mechanical load transition mechanisms in blood and the vessel wall, blood-wall interaction phenomena, as well as simple analytical solutions to Newton’s second law of me
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46

Wittman, David M. Newtonian Gravity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199658633.003.0016.

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Having developed a framework for subsuming gravity into relativity, we examine how gravity behaves as a function of the source mass (Earth, Sun, etc.) and distance from that sourcemass.We develop Newton’s inverse‐square law of gravity, and we examine the consequences in terms of acceleration fields, potentials, escape velocities, and surface gravity. Chapter 17 will build on these ideas to show how orbits are used to probe gravity throughout the universe.We also develop a tool for exposing variations in the acceleration field: the tidal acceleration field in any region is defined as the accele
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47

Newton Take 3 (Loose in the Lab Science Series). Delta Education, 2003.

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48

Wilkinson, John H. Donavan Leisure Newton and Irvine Adr Practice Book: 1994 Supplement (Trial Practice Library). Wiley Law Pubns, 1994.

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49

Psillos, Stathis. Laws and Powers in the Frame of Nature. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198746775.003.0005.

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The aim of this chapter is to revisit the major arguments of the seventeenth-century debate concerning laws and powers in service of two main points. First, though the dominant conception of nature was such that there was no room for power in bodies, the very idea that laws govern the behaviour of (bits of) matter in motion brought with it the following issue, which came under sharp focus in the work of Leibniz: how can passive matter, devoid of power, obey laws? Though Leibniz’s answer was to reintroduce powers, two radically different conceptualizations of the relation between laws and power
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50

Deruelle, Nathalie, and Jean-Philippe Uzan. The Kepler problem. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0012.

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This chapter considers Newton’s 1665 explanations of the dynamics in the laws governing the motion of a planet around the Sun, which were established by Johannes Kepler in 1618. The first law states that the motion is planar and the trajectories are ellipses. The second states that the area swept out by the radius vector per unit time is constant. Finally, the cube of the semi-major axis a is proportional to the square of the period P, a3 = (const)P2. The chapter begins with the reduced equations of motion before turning to the ellipses of Kepler. It then illustrates the Kepler problem in the
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