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Cross, Rod – Physics Education, 2021
If a smooth ball is dropped vertically without spin on a smooth horizontal surface then one might expect the ball to bounce vertically without spin. If it does not then the centre of mass of the ball does not coincide with its geometric centre. An experiment is described where a billiard ball and a superball are deliberately biassed by adding a…
Descriptors: Science Instruction, Scientific Principles, Physics, Motion
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Cross, Rod – Physics Education, 2020
If a ball rolls at constant speed on a horizontal surface about a horizontal axis then the angular velocity is easily measured. If the ball is projected with additional spin about the vertical axis, then the rotation axis is tilted and it is more difficult to measure the rotation speed. A few examples are presented to show how the separate topspin…
Descriptors: Motion, Physics, Scientific Principles, Science Instruction
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Gauld, Colin; Cross, Rod – Physics Education, 2021
Newton's cradle is often discussed in science classrooms as a clear example of the laws of conservation of momentum and energy although it has been shown that this use is somewhat misleading. Approaches to understanding the behaviour of this apparatus are often over-simplified and deficient or over-complex and with little impact among teachers. In…
Descriptors: Scientific Principles, Conservation (Concept), Mechanics (Physics), Simulation
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Cross, Rod – Physics Education, 2019
When a ball bounces obliquely on a horizontal surface, the bottom of the ball stretches horizontally and then vibrates backward. The resulting ball spin depends sensitively on the transverse vibration frequency. A simple model is presented to describe the effect, showing how the stored elastic energy can result in additional spin.
Descriptors: Science Instruction, Motion, Physics, Energy
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Cross, Rod; Gauld, Colin – Physics Education, 2021
Newton's cradle is a well-known physics toy that is commonly used by teachers to demonstrate conservation laws in mechanics. It can also be used to investigate the physics of colliding objects, by recording motion of the balls on video film. Various experiments are described using 3-ball and 5-ball cradles, showing how different types of collision…
Descriptors: Scientific Principles, Conservation (Concept), Mechanics (Physics), Demonstrations (Educational)
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Cross, Rod – Physics Education, 2021
The vertical bounce of a plastic egg was investigated by dropping the egg on a horizontal surface and filming the result with a video camera. If the egg is dropped on one end then it bounces just like a spherical ball. If the top end of the egg is pointing forwards or backwards when it lands on the surface, or if the egg is spinning when it lands,…
Descriptors: Science Instruction, Motion, Kinetics, Science Experiments
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Cross, Rod – Physics Education, 2018
A simple throwing task is described to illustrate various aspects of projectile motion. The task was to throw a tennis ball in a waste paper bin about 2 m away. Success depends on skill, but it also depends on the physics of the problem. If the ball is thrown underarm, then success depends primarily on the throw speed, which must be controlled to…
Descriptors: Accuracy, Task Analysis, Motion, Racquet Sports
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Cross, Rod – Physics Teacher, 2016
A spinning top or a spinning hard-boiled egg is fascinating to observe since both objects can remain upright for a relatively long time without falling over. If spun at sufficient speed on a horizontal surface, the spin axis rises to a vertical position and the bottom end tends to remain fixed in position on the surface. If the initial spin is…
Descriptors: Scientific Concepts, Scientific Principles, Motion, Physics
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Cross, Rod – Physics Education, 2015
A simple experiment is described to measure the coefficient of rolling friction for a low bounce ball rolling on a horizontal surface. As observed previously by others, the coefficient increased with rolling speed. The energy loss due to rolling friction can be explained in terms of the measured coefficient of restitution for the ball, meaning…
Descriptors: Kinetics, Science Experiments, Scientific Concepts, Scientific Methodology
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Cross, Rod – Physics Education, 2015
Almost everyone will have observed a spinning coin fall to a shuddering stop. How and why does it do that? Several experiments are described, suitable for a student project, to help motivate an understanding of the rotational dynamics involved.
Descriptors: Science Instruction, Physics, Scientific Principles, Motion
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Cross, Rod – Physics Teacher, 2014
In 1974, Professor Eric Laithwaite demonstrated an unusually heavy gyroscope at a Royal Institution lecture in London. The demonstration was televised and can be viewed on YouTube. A recent version of the same experiment, together with partial explanations, attracted two million YouTube views in the first few months. In both cases, the gyroscope…
Descriptors: Science Instruction, Motion, Scientific Principles, Science Experiments
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Cross, Rod – Physics Education, 2015
The act of swinging an object such as a hammer or a tennis racket involves the application of forces and torques in a manner that is intuitively obvious to the person performing the task, but is probably much less obvious to the average physics student. This article describes the basic mechanics of the problem.
Descriptors: Science Instruction, Motion, Scientific Principles, Mechanics (Physics)
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Cross, Rod – Physics Teacher, 2013
A rattleback is a well-known physics toy that has a preferred direction of rotation. If it is spun about a vertical axis in the "wrong" direction, it will slow down, start rocking from end to end, and then spin in the opposite (i.e. preferred) direction. Many articles have been written about rattlebacks. Some are highly mathematical and…
Descriptors: Science Instruction, Physics, Motion, Scientific Concepts
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Cross, Rod – Physics Education, 2013
Measurements are presented on the rise of a spinning egg. It was found that the spin, the angular momentum and the kinetic energy all decrease as the egg rises, unlike the case of a ballerina who can increase her spin and kinetic energy by reducing her moment of inertia. The observed effects can be explained, in part, in terms of rolling friction…
Descriptors: Kinetics, Physics, Motion, Science Instruction