Momentum
... Mass is measured in kilograms (kg). Velocity is measured in metres per second (m/s). Momentum is measured in kilogram metres per second (kg m/s). ...
... Mass is measured in kilograms (kg). Velocity is measured in metres per second (m/s). Momentum is measured in kilogram metres per second (kg m/s). ...
X069/13/01
... 11. High quality optical flats made from glass are often used to test components of optical instruments. A high quality optical flat has a very smooth and flat surface. (a) During the manufacture of an optical flat, the quality of the surface is tested by placing it on top of a high quality fla ...
... 11. High quality optical flats made from glass are often used to test components of optical instruments. A high quality optical flat has a very smooth and flat surface. (a) During the manufacture of an optical flat, the quality of the surface is tested by placing it on top of a high quality fla ...
6 Newton`s Second Law of Motion–Force and
... 6.7 Falling and Air Resistance At low speeds, air resistance is often negligible, but at high speeds, it can make quite a difference. If you hold a baseball and tennis ball at arm’s length and release them at the same time, you’ll see them strike the floor at the same time. But if you drop them from ...
... 6.7 Falling and Air Resistance At low speeds, air resistance is often negligible, but at high speeds, it can make quite a difference. If you hold a baseball and tennis ball at arm’s length and release them at the same time, you’ll see them strike the floor at the same time. But if you drop them from ...
AP Physics – Friction
... If the object moves, then the applied force has to be greater than the static frictional force (to get it started) and must be as big or bigger than the kinetic frictional force. Kinetic friction is always smaller than static friction. This is because an object at rest on a surface has its ...
... If the object moves, then the applied force has to be greater than the static frictional force (to get it started) and must be as big or bigger than the kinetic frictional force. Kinetic friction is always smaller than static friction. This is because an object at rest on a surface has its ...
Unit 4 Fields and Further Mechanics - complete
... A loaded helicopter has a mass of 2500 kg. The area swept out by its rotor blades is 180m2. If the downward flow of air supports 50% of the weight of the helicopter, what speed must be given to the air by the motion of the rotor blades when the helicopter is hovering? Take the density of air to be 1 ...
... A loaded helicopter has a mass of 2500 kg. The area swept out by its rotor blades is 180m2. If the downward flow of air supports 50% of the weight of the helicopter, what speed must be given to the air by the motion of the rotor blades when the helicopter is hovering? Take the density of air to be 1 ...
Dimensions and Units
... F = ma, and the unit of force—newton—is the product of the unit of mass and the unit of acceleration. In the American Engineering System, force is expressed in lbf, mass in lbm, and acceleration in ft/sec2. This system is obviously not coherent. Hence, a conversion factor other lb m ft ma than one ...
... F = ma, and the unit of force—newton—is the product of the unit of mass and the unit of acceleration. In the American Engineering System, force is expressed in lbf, mass in lbm, and acceleration in ft/sec2. This system is obviously not coherent. Hence, a conversion factor other lb m ft ma than one ...
Gravitation
... convenience of representing and analyzing that phenomenon; and transformations of coordinates alone are but translations of language and have not necessarily much to do with phenomena.” Biswas3 (1994) explains the first three predictions of general relativity by introducing a second-rank symmetric t ...
... convenience of representing and analyzing that phenomenon; and transformations of coordinates alone are but translations of language and have not necessarily much to do with phenomena.” Biswas3 (1994) explains the first three predictions of general relativity by introducing a second-rank symmetric t ...
Mass versus weight
In everyday usage, the mass of an object is often referred to as its weight though these are in fact different concepts and quantities. In scientific contexts, mass refers loosely to the amount of ""matter"" in an object (though ""matter"" may be difficult to define), whereas weight refers to the force experienced by an object due to gravity. In other words, an object with a mass of 1.0 kilogram will weigh approximately 9.81 newtons (newton is the unit of force, while kilogram is the unit of mass) on the surface of the Earth (its mass multiplied by the gravitational field strength). Its weight will be less on Mars (where gravity is weaker), more on Saturn, and negligible in space when far from any significant source of gravity, but it will always have the same mass.Objects on the surface of the Earth have weight, although sometimes this weight is difficult to measure. An example is a small object floating in a pool of water (or even on a dish of water), which does not appear to have weight since it is buoyed by the water; but it is found to have its usual weight when it is added to water in a container which is entirely supported by and weighed on a scale. Thus, the ""weightless object"" floating in water actually transfers its weight to the bottom of the container (where the pressure increases). Similarly, a balloon has mass but may appear to have no weight or even negative weight, due to buoyancy in air. However the weight of the balloon and the gas inside it has merely been transferred to a large area of the Earth's surface, making the weight difficult to measure. The weight of a flying airplane is similarly distributed to the ground, but does not disappear. If the airplane is in level flight, the same weight-force is distributed to the surface of the Earth as when the plane was on the runway, but spread over a larger area.A better scientific definition of mass is its description as being composed of inertia, which basically is the resistance of an object being accelerated when acted on by an external force. Gravitational ""weight"" is the force created when a mass is acted upon by a gravitational field and the object is not allowed to free-fall, but is supported or retarded by a mechanical force, such as the surface of a planet. Such a force constitutes weight. This force can be added to by any other kind of force.For example, in the photograph, the girl's weight, subtracted from the tension in the chain (respectively the support force of the seat), yields the necessary centripetal force to keep her swinging in an arc. If one stands behind her at the bottom of her arc and abruptly stops her, the impetus (""bump"" or stopping-force) one experiences is due to acting against her inertia, and would be the same even if gravity were suddenly switched off.While the weight of an object varies in proportion to the strength of the gravitational field, its mass is constant (ignoring relativistic effects) as long as no energy or matter is added to the object. Accordingly, for an astronaut on a spacewalk in orbit (a free-fall), no effort is required to hold a communications satellite in front of him; it is ""weightless"". However, since objects in orbit retain their mass and inertia, an astronaut must exert ten times as much force to accelerate a 10‑ton satellite at the same rate as one with a mass of only 1 ton.On Earth, a swing set can demonstrate this relationship between force, mass, and acceleration. If one were to stand behind a large adult sitting stationary on a swing and give him a strong push, the adult would temporarily accelerate to a quite low speed, and then swing only a short distance before beginning to swing in the opposite direction. Applying the same impetus to a small child would produce a much greater speed.