Physics · Paper 2

CP8 · Forces and their effectsTopic 9 — Forces and their effects

Contact and non-contact interactions, fields, free-body diagrams and vector resultants.

Revise the key ideas

Interactions and contact forces

  • Objects interact by exerting forces on each other. A force is a vector with magnitude and direction, measured in newtons (N).
  • Contact forces require physical contact between objects. Examples include normal contact force, friction, tension, drag and upthrust from a fluid.
  • The normal contact force is the support force acting at right angles (perpendicular) to a surface. It acts upwards on a horizontal table and at right angles to the slope on a sloping surface.
    Normal force on a slopeNormal force points perpendicular to the slope rather than straight up.BlockNormal: perpendicular to slopeWeight: down
    The perpendicular arrow rises leftwards because the slope rises rightwards.
  • Friction opposes relative sliding or the tendency to slide between surfaces. It can also provide useful grip, such as between shoes and the ground.
  • Tension acts along a taut string or cable, pulling the attached object. A string does not push an object along its length.
  • Air and water resistance are drag forces associated with relative motion through a fluid. Upthrust is an upward force from a fluid and does not require an object to be moving.
  • Newton’s third law: two interacting objects exert equal, opposite forces of the same type on each other. These act on different objects.
  • Earth attracts the Moon and the Moon attracts Earth with equal gravitational forces. Their different masses mean their accelerations are different.

Non-contact forces and fields

  • Non-contact forces act at a distance. Gravitational, electrostatic and magnetic interactions are represented using fields.
  • A field is a region in which an appropriate object experiences a force. It is not a material string connecting the objects.
  • All masses have gravitational fields and attract other masses. Weight is the gravitational force on an object in a gravitational field.
  • Charged objects have electrostatic fields. Like charges repel and unlike charges attract: two electrons repel; an electron and a proton attract.
    Electrostatic interactionsLike positive charges repel; unlike charges attract.++Repel+−Attract
    Charge signs determine attraction or repulsion.
  • Magnetic fields affect other magnets and magnetic materials such as iron, nickel and cobalt; steel can also be magnetic. Not all metals are magnetic.
  • Like magnetic poles repel; unlike poles attract. An initially unmagnetised magnetic material can be attracted as magnetism is induced in it.
  • A field can exist even when no test object is present. A force occurs when a suitable second object is placed in that field.

Free-body diagrams and balanced forces

  • A free-body diagram shows all the forces acting on one chosen object. Use labelled arrows pointing in the correct directions. Their lengths can show the sizes (magnitudes) of the forces.
  • For a book resting on a horizontal table, draw weight downwards and normal force upwards. If no other vertical force acts, these balance.
  • Weight and support on that book are not a third-law pair: both act on the book and are different interaction types. The partner forces act on Earth and the table.
  • For a car travelling at constant velocity on level ground, driving force balances drag/friction horizontally and support balances weight vertically.
    Car free body diagramSupport balances weight; driving force balances resistance for constant velocity.CarSupportWeightDrivingResistance
    Only forces acting on the car are shown.
  • Zero resultant means no acceleration. This can describe rest or straight-line motion at constant velocity; it does not imply there are no forces.
  • An unbalanced resultant can change speed or direction. Even if perpendicular forces have equal sizes, they do not cancel because they are not opposite.
  • An object hanging from two angled strings has two tension forces and its weight acting on it. Each tension has a horizontal and vertical part (component). The horizontal parts can cancel while the vertical parts together balance the weight.

Combining vectors with scale drawings

  • Scalars such as mass, time, distance and speed have magnitude only. Force, weight, displacement and velocity have magnitude and direction and are vectors.
  • For forces in one straight line, add those in the same direction and subtract those in opposite directions, stating the resultant's direction.
  • For angled forces, choose a scale such as 1 cm = 2 N, draw accurate lengths and use a protractor for directions.
  • In the head-to-tail method, draw the second vector from the head of the first without rotating it. The resultant joins the first tail to the final head.
    Head to tail additionThree newtons right followed by four newtons up gives five newtons diagonal; drawing scale 40 units per N.3 N4 N5 N resultantResultant joins the first tail to final head
    Preserve each vector’s magnitude and direction when moving it head to tail.
  • In the parallelogram method, draw both forces from one point and complete the parallelogram. Its diagonal from that point is the resultant.
    Parallelogram additionThree newtons right and four newtons up drawn from one origin, with resultant along the diagonal.3 N4 N5 N resultantComplete the parallelogram; draw the diagonal
    Both construction methods give the same resultant.
  • Measure the resultant's length and direction on the drawing and convert length back to force using the chosen scale. Drawing thickness and protractor reading limit precision.
  • The equilibrant is a force the same size as the resultant but in the opposite direction. Adding it balances the forces, giving a zero resultant.
  • To resolve a force means to split it into two parts (components) at right angles. On a scale drawing, make the force the diagonal of a rectangle: its sides show the components. Together they have the same effect as the original force, but their lengths do not simply add to the diagonal’s length.
    Resolving a forceA 5 N diagonal resolves into perpendicular 3 N horizontal and 4 N vertical components.Original: 5 N3 N component4 NComponents add as vectors, not scalar lengths
    The components form the sides; the original force is the diagonal.
  • A 3 N horizontal force plus 4 N vertical force has a 5 N diagonal resultant. A scale drawing also gives its direction, roughly 53° above the horizontal.
  • In equilibrium, forces form a closed head-to-tail polygon. Check both horizontal and vertical balance; cancelling one direction alone is insufficient.

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