Equal-and-opposite forces do not cancel because cancellation requires forces to act on the same object. In a free-body diagram, only forces acting on the selected body are included. The force exerted by that body on another belongs to the other body's diagram, so the pair remains essential for describing the interaction even when the selected object accelerates or stays in equilibrium.
First choose one body and list the forces acting on that body. Then identify the source of each force and locate the corresponding force exerted by the chosen body on the source object. Check that the two forces come from the same interaction, occur simultaneously, have equal magnitude, and point in opposite directions.
Identifying whether a pair comes from contact, tension, gravitational attraction, or friction tells you what physical connection to represent in the analysis. The equal-and-opposite relationship applies across these examples, but the bodies involved differ. Naming the interaction helps prevent assigning both forces to one object or overlooking the counterpart acting on the other.
Motion depends on the full force situation for each body. One member of an action-reaction pair may be associated with acceleration, while a body can also remain in equilibrium when the forces on it balance. The key distinction is that the paired force acts on the other body, so it cannot be used as a cancellation within the first body's force analysis.
Choose the body of interest, draw only forces acting on that body, and label the interaction producing each force. Next, analyze the other body separately if its counterpart is needed. This procedure keeps action-reaction partners on their proper diagrams and makes it easier to determine whether the selected body accelerates or remains in equilibrium.
Recoil and propulsion result from interactions between bodies moving in opposite directions. A person pushing against the ground illustrates how a force on the ground is paired with a force on the person, while a rocket expelling gas illustrates an interaction that produces motion. Tracking both bodies clarifies how the interaction transfers momentum through the system.
During a collision, each body exerts a force on the other at the same time, creating an equal-and-opposite pair. Examining the two bodies separately prevents the forces from being mistaken for cancellation within one object. Instead, the paired forces provide a framework for analyzing how the interaction changes motion and transfers momentum between the colliding bodies.