Every card in Forces and motion, Year 11: distance, speed and velocity
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- How far an object ends up from its starting point, measured in a straight line, together with the direction of that line
Displacement
HintIt is the vector partner of distance.
WhyDistance is simply how far something has travelled along its path, with no direction: a scalar. This quantity ignores the route and looks only at the start and the finish, and it always comes with a direction, such as '300 m due north'.
- A runner completes exactly one lap of a 400 m track and stops at the point where she started. What are her distance travelled and her displacement?
Distance 400 m; displacement zero
HintOne of the two only cares where she began and where she ended.
WhyDistance counts every metre of the path, so one lap is 400 m. Displacement is the straight line from start to finish, and those are the same place, so it is zero. This is the clearest case of the two quantities giving different answers for one journey.
- You walk 80 m due north along a straight path, then turn round and walk 30 m due south. What is your displacement from the starting point? Give its size and direction.
50 m north
HintThe second leg undoes part of the first.
WhyAlong a straight line, movements in opposite directions subtract: 80 m north followed by 30 m south leaves you 80 − 30 metres north of the start. The distance walked is different: 80 + 30 = 110 m. A displacement needs its direction as well as its size.
- Distance is a scalar quantity because it does not involve ____.
direction
HintIt is the extra piece of information that 'due north' adds to '5 km'.
WhyA scalar has size only. Saying you have walked 5 km tells nobody where you are now; to know that, they need the displacement, which carries the missing piece. The same split separates speed from velocity.
- A boat sails 3 km due east and then 4 km due north. Which is larger: the distance it has sailed, or the size of its displacement? Explain.
The distance — the displacement is the straight line from start to finish, which is shorter
HintOne follows the route; the other cuts the corner.
WhyDistance follows the route, so it is 3 + 4 = 7 km. Displacement is the single straight line joining the start to the finish; a scale drawing shows it is 5 km long, pointing 53° north of east. The size of a displacement can equal the distance travelled, but can never be more than it.
- A cyclist rides at a steady 6 m/s for 2 minutes. How far does she travel?
720 m
HintCheck the unit of the time before you multiply.
WhyDistance travelled = speed × time, or s = v t, with s in metres, v in metres per second and t in seconds. Two minutes is 120 s, so s = 6 × 120. AQA expects this equation to be recalled.
- A train travels 4.5 km along a straight track at a steady 25 m/s. How long does this take, in seconds? (number only)
180
HintPut the distance into metres, then rearrange so that time stands alone.
WhyStarting from s = v t, the time is t = s ÷ v. The distance must match the speed's unit: 4.5 km = 4500 m, so t = 4500 ÷ 25. That is three minutes.
- AQA's typical speeds for a person: walking about ____ m/s, running about ____ m/s and cycling about ____ m/s.
1.5; 3; 6
HintEach one is double the one before it.
WhyThese are the values AQA expects pupils to recall. Real speeds vary with age, fitness, the ground and how far the person has to go, so they are typical figures, not exact ones. They are useful for checking whether a calculated answer is sensible.
- What typical value does AQA give for the speed of sound in air, in m/s? (number only)
330
HintIt is a little over three hundred.
WhySound travels roughly a third of a kilometre every second in air. The exact figure changes with the temperature of the air, which is why some books quote 340 m/s; AQA's typical value is the one to use in its exams unless a question gives another.
- The motorway speed limit for cars is 70 mph. Roughly what is that in metres per second?
About 30 m/s
HintA mile is roughly 1600 m and an hour is 3600 s.
Why70 miles is about 112 000 m, and dividing by the 3600 seconds in an hour gives about 31 m/s. A handy rule is that a speed in mph is a little more than twice the same speed in m/s. Knowing rough values like this for cars, trains and aeroplanes is part of the specification.
- How fast a particular person can walk, run or cycle depends on factors such as their age, their ____, the ____ and the distance travelled.
fitness; terrain
HintThink about who the person is, and about the route in front of them.
WhyA fit adult on a flat road moves faster than a tired child on a steep, muddy path, and nobody keeps up a sprint for ten kilometres. This is why the walking, running and cycling speeds are given as typical values.
- A satnav says a car journey of 60 km took one hour, so the speed was 60 km/h. Why is this only an average speed?
The car's speed kept changing during the journey
HintThink of junctions, traffic lights and open road.
WhyHardly anything moves at one unchanging speed: a car slows for bends and stops at lights, then goes faster on clear road. Dividing the total distance by the total time gives the average, which hides all of those changes.
- Speed in a stated direction
Velocity
HintTwo cars can show the same reading on the dial yet differ in this, if one heads north and the other south.
WhySpeed says only how fast; this quantity says how fast and which way — '20 m/s due east'. It is a vector. Change either the speed or the direction and it has changed, which is why a car turning a corner at a steady speed is still changing it.
- Two cars pass each other on a straight road. Each is doing 30 mph, one heading east and the other west. Do they have the same velocity?
No — equal speeds, but opposite directions
HintCheck what the two dials read, then check where each bonnet is pointing.
WhyVelocity is speed together with direction, so both parts must match before two velocities are the same. These cars would be written as 30 mph east and 30 mph west — the same size, pointing opposite ways.
- A train pulls out of a station. While it is getting faster it is ____. Later it holds a steady 40 m/s due north: the full "40 m/s due north" is its ____, and the "40 m/s" part alone is its ____.
accelerating; velocity; speed
HintThree different words: one for motion that is changing, one that includes which way, one that does not.
WhyOne journey needs all three words. How fast is one idea, how fast and which way is a second, and how quickly either of those is changing is a third. Everyday speech blurs them; physics asks for the right one on purpose.
- Speed is the scalar partner of velocity. Which quantity is the scalar partner of displacement? (one word)
distance
HintIt is what a car's mileometer adds up.
WhyEach vector describing motion has a scalar twin with the direction left out: velocity and speed, displacement and its partner. The scalar tells you how much; the vector tells you how much and which way.
- A bus goes round a roundabout at a steady 15 mph. A passenger says, "We are not accelerating — the speedometer has not moved." What has she overlooked?
The bus is changing direction
HintA speedometer reports only one of the two things that make up velocity.
WhyAcceleration is any change in velocity, and velocity includes which way you are heading. Moving in a circle, the speed can stay the same while the heading turns all the time, so the velocity is constantly changing — which is why you feel pushed sideways in your seat even though the dial is steady.
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