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1

Patiño, Fabián Hoyos. Sobre hombros de gigantes: La formación del concepto de inercia. Hombre Nuevo Editores, 2001.

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2

Paul, Lin, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Program., eds. Influence of mass moment of inertia on normal modes of preloaded solar array mast. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1992.

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3

Alessandro, Spallicci, Whiting Bernard, and SpringerLink (Online service), eds. Mass and Motion in General Relativity. Springer Science+Business Media B.V., 2011.

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4

Nissim, E. Effect of control surface mass unbalance on the stability of a closed-loop active control system. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1989.

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5

Center, Langley Research, ed. Three-dimensional vibration analysis of a uniform beam with offset inertial masses at the ends. National Aeronautics and Space Administration, Langley Research Center, 1985.

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6

Center, Langley Research, ed. Three-dimensional vibration analysis of a uniform beam with offset inertial masses at the ends. National Aeronautics and Space Administration, Langley Research Center, 1985.

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7

Center, Langley Research, ed. Three-dimensional vibration analysis of a uniform beam with offset inertial masses at the ends. National Aeronautics and Space Administration, Langley Research Center, 1985.

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8

Center, Langley Research, ed. Three-dimensional vibration analysis of a uniform beam with offset inertial masses at the ends. National Aeronautics and Space Administration, Langley Research Center, 1985.

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9

A, Landis Geoffrey, and United States. National Aeronautics and Space Administration., eds. Effect of inert propellant injection on Mars ascent vehicle performance. National Aeronautics and Space Administration, 1992.

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10

Bernard, Université Claude, ed. Production de clusters métaliques dans un jet ensemencé par gaz inerte: Étude par spectrométrie de masse des phénomènes de nucléation et de fragmentation. A.N.R.T. Université Pierre Mendès France Grenoble 2, 1986.

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11

Spallicci, Alessandro, Bernard Whiting, and Luc Blanchet. Mass and Motion in General Relativity. Springer Netherlands, 2013.

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12

Spallicci, Alessandro, Bernard Whiting, and Luc Blanchet. Mass and Motion in General Relativity. Springer, 2011.

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13

Guo, Y. Dedicated microprocessor based instrument for the experimental determination of mass moments of inertia. 1992.

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14

Science for Kids: Mechanics, Newton's 3rd Law, Gravitational Force, Dynamics, Inertia, Mass and Force. Wonderscape Entertainment, 2017.

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15

Mass and motion in general relativity. Springer, 2011.

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16

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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17

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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18

Deruelle, Nathalie, and Jean-Philippe Uzan. The Nordström theory. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0028.

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This chapter turns to the description of the interaction of a scalar field with particles which ‘feel’—that is, ‘charged’ particles. If the field is massless, and therefore long-range, and if the particle charge corresponds to its inertial mass, we have what is known as Nordström theory, a coherent theory of gravity which, however, disagrees with experiment. Nordström theory describes gravity by means of a massless scalar field φ‎. According to the ‘weak equivalence principle’, gravitational masses are equal to inertial masses, m = mg. When velocities are small, the gravitational field created
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19

Self-force and inertia: Old light on new ideas. Springer, 2010.

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20

Deruelle, Nathalie, and Jean-Philippe Uzan. Dynamics of a point particle. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0024.

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This chapter attributes an inertial ‘mass–energy’ to particles. It also distinguishes between the action of an external field and of long-range and short-range internal forces, which is useful for establishing the laws of dynamics of an interacting body—that is, the equations determining its world line. The chapter also presents the 4-momentum conservation law for massive particles and light particles in inertial reference frames. It then gives some examples which illustrate the role played by this law in collisions. Finally, the chapter illustrates the conservation law by the Compton experime
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21

Deruelle, Nathalie, and Jean-Philippe Uzan. Interacting charges I. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0038.

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This chapter addresses the problem of radiation by a system of point charges. Owing to the fact that the electromagnetic interaction propagates at finite speed, this problem can only be solved iteratively, by assuming that all speeds are small compared to the speed of light. The chapter then derives the dipole and quadrupole formulas giving the radiation field and the energy radiated by the system in the lowest orders. Finding the field and the radiation of a system of charges beyond the dipole approximation is rather more difficult, but necessary in the absence of dipole radiation. This is al
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22

Deruelle, Nathalie, and Jean-Philippe Uzan. Dynamics of massive systems. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0006.

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This chapter presents the laws of motion of an ensemble of point masses forming a solid body whose shape is invariant, or a fluid whose shape can vary with time. It argues that an ensemble of point masses constitutes a solid if the distances between the points can be assumed constant. The chapter then provides examples of the motions of a solid. Finally, it demonstrates the Euler equations of fluid motion. Here, it states that a perfect fluid is characterized by its (inertial) mass density ρ‎(t, xⁱ), its pressure p(t, xⁱ) which phenomenologically describes its internal collisions, and a veloci
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23

Wittman, David M. Gravity Reframed. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199658633.003.0014.

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The effects of gravity disappear in freely falling laboratories.Within such a laboratory, a freely falling particle appears to have no forces on it—it is an inertial particle following the rules of special relativity. We therefore expect it to follow a worldline of maximum proper time. This chapter develops thinking tools for identifying paths of maximum proper time in the presence of gravity, where clocks have altitudedependent tick rates; these include graphical tools as well as a qualitative description of the geodesic equation. The reward: we find that altitude‐dependent time by itself exp
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24

Blaha, Stephen. PHYSICS IS LOGIC Part II: The Theory of Everything, The Megaverse Theory of Everything, U X U Grand Unified Theory , Inertial Mass = ... General Relativity with Higgs Particles,. Blaha Research, 2015.

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25

Coopersmith, Jennifer. D’Alembert’s Principle. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198743040.003.0005.

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It is explained how the mysterious Principle of Virtual Work in statics is extended to the even more mysterious Principle of d’Alembert’s in dynamics. This is achieved by d’Alembert’s far-sighted stratagem: considering a reversed massy acceleration as an inertial force. A worked example is given (the half-Atwood machine or “black box”). Some counter-intuitive aspects are made intuitive by more examples: the Pluto-Charon system of orbiting planets; Newton’s and then Mach’s explanation of Newton’s bucket. Also, it is demonstrated that the law of the conservation of energy actually follows from d
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26

Bernardo, Luís Miguel. Luz, Vida e Saúde. Imprensa da Universidade de Coimbra, 2020. http://dx.doi.org/10.14195/978-989-26-1786-2.

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A luz não é uma entidade física inerte. Omnipresente na Natureza, exerce uma ação essencial sobre os seres vivos, desde os mais pequenos aos mais complexos incluindo os humanos. Todos estes seres dependem da luz para se desenvolverem e manterem a vida. De acordo com a composição espectral, os efeitos da luz podem ser benéficos ou nocivos. A luz regula processos biológicos circunscritos ou sistémicos e pode ser usada como meio terapêutico. A poluição luminosa pode causar efeitos funestos em plantas e animais, perturbando o equilíbrio dos ecossistemas. Todos estes aspectos são tratados em Luz, V
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27

Stewart, Garrett. Attention Spans. Edited by David LaRocca. Bloomsbury Publishing Inc, 2024. http://dx.doi.org/10.5040/9798765102268.

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Attention Spans’ chronological review of Garrett Stewart’s critical approach tracks and maps the evolution of intersecting disciplines from late New Criticism through structuralism, deconstruction, narrative theory (by way of narratography), poetics, and media studies, in which Stewart’s has been so persistent and so eloquent a voice. Excerpts from his twenty books are framed by editorial retrospect, then linked by Stewart’s own commentary on the variety – and underlying vectors – of his interpretive career across aesthetic forms, from Victorian narrative to recent American fiction, classic ce
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28

Choplin, Armelle. Matière grise de l'urbain. MetisPresses Sàrl, 2020. http://dx.doi.org/10.37866/0563-74-6.

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L’Afrique connaît aujourd’hui une croissance urbaine rapide qui se traduit par une multiplication des constructions en béton. Le ciment, composant essentiel de ce matériau, est devenu le symbole de cette urbanisation frénétique qui bouleverse le paysage des villes africaines. Plus qu’une simple matière inerte, il se charge d’affect et de valeurs et redéfinit les pratiques et les imaginaires de sociétés en quête d’émergence économique et de réussite sociale, alors même qu’à l’heure du dérèglement climatique des voix s’élèvent pour dénoncer une industrie cimentière aux effets destructeurs sur l’
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29

Vostral, Sharra L. Toxic Shock. NYU Press, 2018. http://dx.doi.org/10.18574/nyu/9781479877843.001.0001.

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In 1980, young, healthy women in the United States suddenly began to get sick and even die. The unexpected link to these deaths was superabsorbent tampons. Thousands of women used them during their menstrual periods, signaling the potential for a large-scale outbreak. Toxic Shock: A Social History traces the emergence of this new illness of toxic shock syndrome (TSS) and its relationship to tampon technology. This multifaceted history engages microbiology, design and innovation, journalism and mass communication, product liability, and federal policy and regulation. The broad scope captures th
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30

Fisher, David. Much Ado about (Practically) Nothing. Oxford University Press, 2010. http://dx.doi.org/10.1093/oso/9780195393965.001.0001.

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There are eight columns in the Periodic Table. The eighth column is comprised of the rare gases, so-called because they are the rarest elements on earth. They are also called the inert or noble gases because, like nobility, they do no work. They are colorless, odorless, invisible gases which do not react with anything, and were thought to be unimportant until the early 1960s. Starting in that era, David Fisher has spent roughly fifty years doing research on these gases, publishing nearly a hundred papers in the scientific journals, applying them to problems in geophysics and cosmochemistry, an
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