Electricity and magnetism, Year 11: magnets, electromagnets and motors:全部卡片
整套按顺序列出——孩子看到之前,您可以先通读一遍。
← 返回 Electricity and magnetism, Year 11: magnets, electromagnets and motors
- A piece of magnetic material that is a magnet only while it sits in the field of another magnet
An induced magnet
提示An iron nail can pick up a paperclip while it hangs from something else, and drops it soon after it is taken away.
为什么A permanent magnet has a magnetic field of its own all the time. This other kind is a piece of magnetic material, such as iron, that is magnetic only because it is sitting in another magnet's field. Take the field away and it loses most or all of its magnetism quickly.
- The force between a permanent magnet and an induced magnet is always one of ____.
attraction
提示A fridge magnet never pushes the fridge door away, whichever way round you hold it.
为什么An induced magnet's poles are set by the field it is in, so they always form in the arrangement that pulls it towards the permanent magnet. Turning the permanent magnet round simply induces the opposite poles. Only two permanent magnets can repel each other.
- An iron nail hanging from a bar magnet picks up a paperclip. The bar magnet is then taken away. What happens to the nail's magnetism?
It loses most or all of its magnetism quickly
提示The nail was only borrowing its pull from the field it sat in.
为什么The nail was an induced magnet: magnetic only while it was in the bar magnet's field. Once that field is removed it stops being a magnet almost at once, and the paperclip falls. A permanent magnet, by contrast, keeps its magnetism because it produces its own field.
- Two bar magnets are held with their north poles facing, and they push each other apart across a gap. Magnetic forces, like gravity, belong to which group of forces?
Non-contact forces
提示The other group includes friction and air resistance.
为什么Like poles repel and unlike poles attract, and they do so across a gap: the magnets need not touch. Forces that act at a distance like this are called non-contact forces. The poles are the places where a magnet's forces are strongest.
- How can you show that an electric current in a wire produces a magnetic field?
Place a plotting compass near the wire: its needle deflects when the current is switched on and swings back when it is switched off
提示Use the small instrument that maps the field of a bar magnet.
为什么A compass needle is a tiny magnet, so it turns when a magnetic field acts on it. Switching the current on and off shows that the field comes from the current and not from the wire itself. Reversing the current makes the needle deflect the other way.
- Describe the shape of the magnetic field around a long straight wire carrying a current.
Concentric circles around the wire, in the plane at right angles to it, getting further apart with distance from the wire
提示Picture the rings spreading out when a stone is dropped in a pond.
为什么The field lines are closed circles centred on the wire. They are drawn closer together near the wire because the field is strongest there: its strength depends on the size of the current and on the distance from the wire. Reversing the current reverses the direction of the circles.
- A vertical wire carries a current straight upwards. You look down on the wire from above. Do the magnetic field lines go clockwise or anticlockwise around it?
Anticlockwise
提示Grip the wire with your right hand, thumb pointing the way the current goes, and watch your fingers.
为什么The right-hand grip rule gives the direction: point the thumb of your right hand along the current and your fingers curl the way the field goes. With the current coming up towards you, the fingers curl the opposite way to the hands of a clock. Seen from below, the same field would appear to go the other way.
- Inside a solenoid the magnetic field is strong and ____. Outside it, the field has the same shape as the field around a ____.
uniform; bar magnet
提示Inside, the lines are straight, parallel and evenly spaced; outside, think of the first field pattern you ever plotted.
为什么Inside the coil the field lines run straight along its length, parallel and evenly spaced: the same strength and direction everywhere. Outside, the lines loop round from one end to the other, so one end of the solenoid behaves like a north pole and the other like a south pole.
- Why does winding a wire into a solenoid give a stronger magnetic field than the same wire left straight, carrying the same current?
The fields from all the turns line up and add together, concentrating the field inside the coil
提示Each loop makes its own small contribution, and within the tube they all point one way.
为什么Every turn of the coil produces its own field. Inside the solenoid these all point in the same direction, so they reinforce one another. Adding an iron core makes the field stronger still, and a solenoid with an iron core is called an electromagnet.
- The effect in which a magnet and a current-carrying wire in its field each push on the other
The motor effect
提示It is named after the machine that puts it to use.
为什么A current has its own magnetic field, and this interacts with the field of the magnet, so each pushes on the other. The equation for the size of the force applies when the wire is at right angles to the field. Electric motors use this force to produce rotation.
- In Fleming's left-hand rule, the thumb shows the direction of the ____ on the wire, the first finger shows the direction of the ____, and the second finger shows the direction of the ____.
force; magnetic field; current
提示Two of the three share an initial with their finger: First and seCond. The thumb gives what is left.
为什么Hold the thumb, first finger and second finger of the left hand at right angles to one another. First finger = Field (north to south), seCond finger = Current (positive to negative), thuMb = Motion, the direction of the push on the wire. The rule shows that the three directions are all at right angles.
- A horizontal wire carries a current directly away from you. It lies in a magnetic field that points from your left to your right. Is the force on the wire up or down? (one word)
down
提示Left hand: first finger to the right, second finger pointing away from you.
为什么Fleming's left-hand rule: point the first finger along the field (left to right) and the second finger along the current (away from you). The thumb then points towards the floor, which is the direction of the force. Reversing either the current or the field would reverse the force.
- A wire carries a current of 2 A at right angles to a magnetic field of flux density 0.3 T. A 15 cm length of the wire is inside the field. What is the force on the wire?
0.09 N
提示Three quantities multiply; one of them needs its unit changing first.
为什么Force = magnetic flux density × current × length, or F = B × I × l, with F in newtons (N), B in tesla (T), I in amperes (A) and l in metres (m). Here l = 0.15 m, so F = 0.3 × 2 × 0.15 = 0.09 N. AQA gives this equation on the Physics equation sheet; it applies when the wire is at right angles to the field.
- The force on a current-carrying wire in a magnetic field increases with a bigger ____, a stronger magnetic ____, or a longer ____ of wire in the field.
current; field; length
提示Look at what is multiplied together in the equation for this force.
为什么F = B × I × l, so the force is directly proportional to each of the three: flux density, current and the length of conductor in the field. Doubling any one of them doubles the force. AQA expects these factors to be recalled even though the equation itself is given.
- A rectangular coil carrying a current sits between the poles of a magnet. Why does the coil turn, instead of being pushed bodily in one direction?
The current flows in opposite directions along the two sides of the coil, so the forces on them are opposite: one side is pushed up and the other down
提示Follow the charge round the loop: which way is it heading on the far edge compared with the near edge?
为什么Going round the coil, the current crosses the field one way on one side and the opposite way on the other. Fleming's left-hand rule then gives forces in opposite directions on the two sides. A pair of opposite forces on either side of an axle produces rotation, which is the basis of the electric motor.
- A simple electric motor spins the opposite way if you reverse the ____ or reverse the magnetic ____.
current; field
提示Fleming's left-hand rule has two inputs; turn either finger round and the thumb flips.
为什么The direction of the force on each side of the coil depends on the direction of the current and of the field. Reversing one of them reverses every force, so the coil turns the other way. Reversing both at once changes nothing: the two reversals cancel.
- The coil of a simple electric motor turns with more force if you increase the ____, use a stronger ____, or put more ____ of wire on the coil.
current; magnet; turns
提示Each long edge feels F = B × I × l, and extra loops add extra edges.
为什么The force on each side of the coil is F = B × I × l, so a bigger current or a greater flux density gives a bigger force. Extra turns mean extra lengths of wire, each feeling that force. A bigger turning force makes the motor spin faster or drive a heavier load.
- A rectangular coil lies level between two magnet poles, with the field pointing from your left to your right. In the left-hand side of the coil the current flows directly away from you; in the right-hand side it flows back towards you. As you look at it, does the coil start to turn clockwise or anticlockwise?
Anticlockwise: the left-hand side is pushed down and the right-hand side up
提示Use Fleming's rule on each long edge in turn, then picture which edge rises.
为什么By Fleming's left-hand rule the left-hand side, with its current flowing away from you, is pushed towards the floor. The current in the right-hand side flows the opposite way, so the force on it is reversed. One side going one way and the other side the opposite way is what makes the coil rotate.
- A machine in which the forces on a current-carrying coil in a magnetic field make the coil rotate
An electric motor
提示It is inside a fan, a drill and a washing machine.
为什么A current-carrying coil placed between the poles of a magnet tries to turn, because the forces on its two sides act in opposite directions. This machine uses that turning to do useful work. On AQA Combined Science this topic is Higher tier only.
1★ GCSE-PHYS-ELE-0060
2★ GCSE-PHYS-ELE-0061
3★ GCSE-PHYS-ELE-0062
4★ GCSE-PHYS-ELE-0063
5★ GCSE-PHYS-ELE-0064
6★ GCSE-PHYS-ELE-0065
7★ GCSE-PHYS-ELE-0066
8★ GCSE-PHYS-ELE-0067
9★ GCSE-PHYS-ELE-0068
10★ GCSE-PHYS-ELE-0069
11★ GCSE-PHYS-ELE-0070
12★ GCSE-PHYS-ELE-0071
13★ GCSE-PHYS-ELE-0072
14★ GCSE-PHYS-ELE-0073
15★ GCSE-PHYS-ELE-0074
16★ GCSE-PHYS-ELE-0075
17★ GCSE-PHYS-ELE-0076
18★ GCSE-PHYS-ELE-0077
19★ GCSE-PHYS-ELE-0078