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Chapter 9

Linear Momentum, Impulse and Collisions

Линейный импульс
Линейный импульс
The term momentum is used in various ways in everyday language, most of which are consistent with the precise scientific definition. Generally, momentum ...
Сила и импульс
Сила и импульс
Force and momentum are intimately related. Force acting over time can change momentum, and Newton's second law of motion can be stated in its most ...
Импульс
Импульс
According to Newton’s second law of motion, the rate of change of the momentum of an object is the net external force acting on it. The total change ...
Теорема импульс-импульс
Теорема импульс-импульс
The total change in the motion of an object is proportional to the total force vector acting on it and the time over which it acts. This product is called ...
Сохранение импульса: введение
Сохранение импульса: введение
The total momentum of a system consisting of N interacting objects is constant in time or is conserved. A system must meet two requirements for its ...
Сохранение импульса: решение проблем
Сохранение импульса: решение проблем
Solving problems using the conservation of momentum requires four basic steps: Identify a closed system, where the total mass is constant, and no net ...
Типы столкновений - I
Типы столкновений - I
When two objects come in direct contact with each other, it is called a collision. During a collision, two or more objects exert forces on each other in a ...
Типы столкновений - II
Типы столкновений - II
When two or more objects collide with each other, they can stick together to form one single composite object (after collision). The total mass of the ...
Упругие столкновения: введение
Упругие столкновения: введение
An elastic collision is one that conserves both internal kinetic energy and momentum. Internal kinetic energy is the sum of the kinetic energies of the ...
Упругие столкновения: тематическое исследование
Упругие столкновения: тематическое исследование
Elastic collision of a system demands conservation of both momentum and kinetic energy. To solve problems involving one-dimensional elastic collisions ...
Коллизии в нескольких измерениях: введение
Коллизии в нескольких измерениях: введение
It is far more common for collisions to occur in two dimensions; that is, the initial velocity vectors are neither parallel nor antiparallel to each ...
Многомерные столкновения: решение проблем
Многомерные столкновения: решение проблем
In multiple dimensions, the conservation of momentum applies in each direction independently. Hence, to solve collisions in multiple dimensions, we should ...
Центр масс: введение
Центр масс: введение
Any object that obeys Newton's second law of motion is made up of a large number of infinitesimally small particles. Objects in motion can be as ...
Значение центра масс
Значение центра масс
The center of mass of an object is defined as the mass-weighted average position of all the particles that comprise the object. The significance of the ...
Гравитационная потенциальная энергия для протяженных объектов
Гравитационная потенциальная энергия для протяженных объектов
Consider a system comprising several point masses. The coordinates of the center of mass for this system can be expressed as the summation of the product ...
Ракетный двигатель в пустом пространстве - I
Ракетный двигатель в пустом пространстве - I
The driving force for the motion of any vehicle is friction, but in the case of rocket propulsion in space, the friction force is not present. The motion ...
Ракетный двигатель в пустом пространстве - II
Ракетный двигатель в пустом пространстве - II
The motion of a rocket is governed by the conservation of momentum principle. A rocket's momentum changes by the same amount (with the opposite sign) ...
Ракетный двигатель в гравитационном поле - I
Ракетный двигатель в гравитационном поле - I
Rockets range in size from small fireworks that ordinary people use to the enormous Saturn V that once propelled massive payloads toward the Moon. The ...
Ракетный двигатель в гравитационном поле - II
Ракетный двигатель в гравитационном поле - II
A rocket's velocity in the presence of a gravitational field is decreased by the amount of force exerted by Earth's gravitational field, which ...
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