Linear Momentum

Linear momentum is a measure of an object's translational motion, defined as the product of its mass and velocity, and it is fundamental to analyzing how bodies move and interact. A net external force changes momentum over time, while the impulse delivered during an interaction equals the resulting change in momentum; in an isolated system, total linear momentum is conserved. In engineering, these principles support the analysis of collisions, vehicle dynamics, propulsion, fluid flows, and impact-resistant structures. Momentum methods help engineers predict motion, quantify forces during rapid events, and design safer, more efficient mechanical and aerospace systems.

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JoVE Core - Physics

Linear Momentum

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2023

The term momentum is used in various ways in everyday language, most of which are consistent with the precise scientific definition. Generally, momentum implies a tendency to continue on course—to move in the same direction; we tend to speak of sports teams or politicians gaining and maintaining the momentum to win. Momentum is also associated with great mass and speed and is often considered when talking about collisions. For example, when rugby players collide and fall to the ground, their...

Linear Momentum in Control Volume

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2025

Newton's second law is applied to obtain the linear momentum in a control volume in a fluid system. According to this law, the rate of change of linear momentum is equal to the sum of external forces acting on the system. When a control volume matches the fluid system at a specific moment, the forces acting on both are identical. Reynolds transport theorem helps explain this by breaking down the system's linear momentum into two components: the rate of change of linear momentum within the...

Application of the Linear Momentum Equation

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2025

The application of the linear momentum equation can be used to analyze the forces needed to hold a 180-degree pipe bend in place with flowing water. In this case, water flows through the bend with a constant cross-sectional area of 0.01 square meters and a flow velocity of 15 meters per second. The pressure at the entrance is 0.2 Megapascals and the pressure at the exit is 0.16 Megapascals. The goal is to determine the force components in the x and y directions to hold the pipe in place. Since...

Conservation of Linear Momentum for a System of Particles

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2024

In the dynamic realm of billiards, a fascinating interplay of forces governs the motion of cue balls and stationary balls. When the cue ball collides with a stationary ball, linear momentum is exchanged. The cue ball imparts a fraction of its linear momentum to the stationary ball, causing the cue ball to decelerate while initiating the motion of the stationary ball. The impulsive force at play during this interaction is of extremely short duration, rendering its impulse negligible. When...

Principle of Linear Impulse and Momentum for a System of Particles

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2024

In the context of a system of particles moving relative to an inertial frame of reference, the equation of motion is a crucial tool for understanding the dynamics of the system. This equation, which accounts for external forces acting on each particle, plays a fundamental role in describing the system's behavior. Notably, internal forces between particles, occurring in equal and opposite collinear pairs, cancel out and are not part of the equation of motion. This exclusion simplifies the...

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