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Gravity

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About the lecture

In this mini-lecture, we explore gravity. In particular we: (i) define weight W as the force due to gravity, which is given by the equation W = mg, where m is the mass and g = 10 m/s² is the acceleration due to gravity; (ii) show that for an object falling under gravity it’s acceleration a is equal to g, which is independent of mass; and (iii) emphasise that while on Earth it can be hard to test the acceleration of objets due to gravity because of friction, such as air resistance, this experiment can be easily done on the Moon where there is no air resistance.

About the lecturer

David Berman is a Professor of Theoretical Physics at Queen Mary. His research interests include string theory and ideas in fundamental theoretical physics, including non-commutative geometry, black holes physics, and quantum gravity. He has contributed to the Radio 4 biography series Great Lives and the In Our Time podcasts, including Great Lives: Richard Feynman (2018), Great Lives: Galileo (2019), In Our Time: Emmy Noether (2019), and In Our Time: Paul Dirac (2020).

Cite this Lecture

APA style

Berman, D. (2022, January 12). 6. Circular Motion and Gravitation - Gravity [Video]. MASSOLIT. https://massolit.io/options/6-circular-motion-and-gravitation?auth=0&lesson=4457&option=14521&type=lesson

MLA style

Berman, D. "6. Circular Motion and Gravitation – Gravity." MASSOLIT, uploaded by MASSOLIT, 12 Jan 2022, https://massolit.io/options/6-circular-motion-and-gravitation?auth=0&lesson=4457&option=14521&type=lesson