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Transcript 
TABLE OF CONTENTS
This is a draft copy of SACE1 AC Physics Essentials Workbook - 1st Edition (2017), excerpts of Topic 2.
Changes are expected to be made before final print. This is for promotional use only.
Contents
Topic 1: Linear Motion and Forces
1.1 Motion under Constant Acceleration
1.2Forces
Topic 2: Electric circuits
2.1 Potential Difference and Electric Current
2.2Resistance
2.3 Circuit Analysis
2.4 Electrical Power
Topic 3: Heat
3.1 Heat and Temperature
3.2 Specific Heat Capacity
3.3 Change of State
Topic 4: Energy and Momentum
4.1Energy
4.2momentum
Topic 5: Waves
5.1 Wave model
5.2 Mechanical Waves
5.3Light
Topic 6: Nuclear Models and Radioactivity
6.1 The nucleus
6.2 Radioactive decay
6.3 Radioactive half-life
6.4 Induced Nuclear Reactions
© Essentials Education
TOC.indd 1
i
5/07/2016 23:45
CHAPTER 2
Topic 2: Electric Circuits
2.1 Potential Difference and Electric Current
Understanding
1.
Atoms contain positively-charged protons and negatively-charged electrons.
2.
Two objects become charged when electrons are transferred from one object to another or redistributed on
an object.
3.
Two like charges exert repulsive forces on each other, whereas two unlike charges exert attractive forces
on each other.
•
•
•
Describe electric forces between like and opposite charges.
Explain various phenomena involving interactions of charge.
Explain how electrical conductors allow charges to move freely through them, whereas insulators do not.
Energy is required to separate positive and negative charges and this charge separation produces an
electrical potential difference that can be used to drive current in circuits.
5.
The energy available to charges moving in an electrical circuit is measured using electric potential difference
(voltage). This is defined as the change in potential energy per unit charge between two defined points in the
circuit and is measured using a voltmeter.
•
•
6.
R
Distinguish between electron current and conventional current.
T
AF
9.
fuses or circuit breakers
residual current devices
Electric current is carried by discrete charge carriers. Charge is conserved at all points in an electrical circuit.
•
8.
Describe how a voltmeter is used in an electric circuit.
Explain the purpose of measuring potential difference in electric circuit.
Describe how electrical safety is increased through the use of
•
•
7.
D
4.
Electric current is the rate of flow of charge.
q
• Solve problems involving I = .
t
An ammeter is used to measure the electrical current at a point in a circuit. It is placed in series with the
electrical component through which the current is to be measured.
Electric charge
© SACE 2016
Electron
There are two types of charge; positive and negative.
Atoms contain positively-charged protons and negatively-charged electrons.
The nucleus is tiny and dense and located in the centre of the atom. It contains
protons and the neutral neutrons. The nucleus is therefore positively charged.
Electrons circle the nucleus.
Proton
Neutron
A neutral atom contains equal numbers of protons and electrons.
Charging objects
Nucleus
Electrons are less tightly bound to the atom compared to protons. It is therefore possible to remove electrons from
one object and transfer them to another. In doing so both objects become charged.
Positively-charged materials lack electrons.
Negatively-charged materials contain excess electrons.
NB: If the object is not charged, it is said to be neutral. This means that it has equal numbers of positive and
negative charge.
It is also possible to charge an object when the charge becomes redistributed on that object.
© Essentials Education
1
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
Possible Activities
1: Charging by rubbing or friction
Fur
Rubber
D
R
An ebonite rod is made of hardened rubber. An ebonite rod can be charged negatively by rubbing it with fur.
Friction enables electrons to be rubbed off the fur and the ebonite rod readily accepts the electrons.
This occurs because different materials hold on to their electrons more tightly than others. In this case, the ebonite
rod holds onto its electrons more tightly than the fur. This characteristic to hold on to its electrons is sometimes
referred to as a material’s electro-negativity.
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Once rubbed, the ebonite rod has excess negative charge and is therefore negatively charged. The fur will have
an excess of positive charge. The amount of positive charge on the fur is equal to the negative charge on the rod.
This is an example of the law of conservation of charge.
In a similar way, a glass rod can be charged positively by rubbing it with silk. The same explanation applies
except that the electrons are transferred from the glass rod to the silk. The glass rod lacks negative charge and is
therefore positively charged.
Consider charging an ebonite rod negatively by rubbing it with fur and hanging it by a string from a retort stand
as show in the diagram below. If another negatively charged ebonite rod is brought near the hanging rod without
touching it, the two rods repel one another. We say like charges repel. If a glass rod is charged positively by
rubbing it with silk and brought near the hanging rod, the two rods attract. We say unlike charges attract.
Rubber
Rubber
F
F
or something like this
F
F
Rubber
F
F
Like charges repel, while unlike charges attract.
An everyday example of charging by friction is dragging your feet across carpet. When you touch another person
or a metallic object, a spark is produced. Charging by friction also occurs when liquids or gasses pass through
tubes (e.g. a gas is sprayed from a pressurised can).
2
© Essentials Education
CHAPTER 2
Helpful online resources
If you are not prepared to get zapped by dragging your feet across the carpet, then try the
PHET interactive
<https://phet.colorado.edu/sims/html/john-travoltage/latest/john-travoltage_en.html>
2: The electroscope
The electroscope is a devise that detects the presence of charge. There is more than one style of electroscope
but they all work in the same way.
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AF
R
D
1. Start by touching the ball (sometimes called the cap) of the electroscope with your finger. This will earth the
electroscope. This is because charge can flow through you to or from the earth to neutralise any charge on
the ball. The needle (or gold leaf depending on the model) will lie un-deflected.
2. Charge a glass rod positively by rubbing it with silk. As the glass rod approaches the ball, electrons in the
stem and needle (or the two gold leaves) are attracted towards the cap. The stem and the needle both
become positively charged as they lack negative charge. Since there has been a separation of charge, we
also say that a charge is induced (this explored further in the next activity).
3. The stem and needle should repel one another.
The greater the charge on the rod the more electrons are attracted to the cap. This means that the stem
and needle will have a greater positive charge and repel each other more strongly. The needle experiences a
greater deflection.
© Essentials Education
3
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
4. Now touch the ball with the rod. The electroscope becomes positively charged by contact because electrons
are transferred from the ball to the rod.
5. Touch the cap with your finger. This will earth it again. In this case electrons flow through you from the cap
to earth.
6. Repeat this activity with a negatively charged ebonite rod.
3: Charging by contact or conduction
Metal sphere
‐‐‐
Insulated stand and base
D
If a negatively charged ebonite rod touches a neutral metal sphere (usually mounted on an insulated stand), the
sphere becomes negatively charged by contact as electrons from the ebonite rod move onto the sphere.
If a positively charged glass rod touches the neutral metal sphere, it becomes positively charged by contact as
electrons from the sphere move onto the rod.
R
You can check this using an electroscope. For example if you want to check that the metal sphere is positively
charged, charge an electroscope positively by further touching it with a positively charged glass rod. When the
positive sphere approaches the ball the needle will deflect. Charging the electroscope negatively is not a good
idea. You cannot confirm positive charge. If the deflection of the needle is reduced it could indicate that the glass
rod is positively charged or that it is neutral.
4: The Van de Graaff generator
T
AF
–
–
–
–
–
50 kV
– – – –
B
+
+
+
+
+
+
+
+
+
+
+
+
+
+
Conductor
–
–
–
–
–
Belt
Insulator
A
Motor-driven
Pulley
The Van de Graaff generator is an electrostatic generator that is capable of producing a large voltage by
accumulating a large amount of electrical charge on a hollow metal dome. It was invented by American physicist
Robert J. Van de Graaff in 1929 and most schools have a small version in their physics laboratories.
A motor drives a neutral rubber belt around the inside of the generator.
4
© Essentials Education
CHAPTER 2
The belt scrapes past a knives edge or sharply pointed metal comb at the top wheel (B). Electrons are removed
from the belt (due to friction) and they are transferred to the dome. The belt is now positive charged and returns to
the bottom wheel where another knife’s edge earths the belt so that it is neutral. This process repeats many times
and the dome accumulates a large amount of negative charge.
Make your hair stand on end!
If you place your hand on the dome before starting the Van de Graaff and stand in a plastic tray, negative charges
are transferred to your body once the generator is switched on. Each strand of your hair and your scalp become
negatively charged by contact. They therefore repel one another in an attempt to move as far apart as possible–
your hair stands on end.
If you then touch a neutral object, charge is transferred producing a spark.
5: Charging by induction
If a charged rod is placed near a neutral conductor, the charges
in the conductor separate and redistributed themselves. A
charge is said to be induced.
The adjacent diagram shows that negative charges are
attracted towards the positively charged rod. This induces a
negative charge on the side of the conductor closest to the rod
and a positive charge on the other side.
positively charged rod
D
The conductor is attracted towards the rod because the force
of attraction is greater than the force of repulsion (electric forces
decrease with distance–this is covered later in the topic).
R
NB: The object is still neutral. If the rod is removed, the charges on the conductor will return to their original
positions.
If two neutral conducting spheres are placed in contact they behave as one conductor. If you touch them with
your hand they will be earthed.
T
AF
Two metal spheres
in contact
If a negatively charged rod is introduced without touching the spheres a charge will be induced on the spheres.
The sphere closest to the rod is charged positively by induction because electrons are repelled to the other
sphere. The other sphere acquires an induced negative charge. If the spheres are separated without removing the
rod they will have an equal but opposite charge.
e
A
e
B
e
B
(d)
(b)
A
B
(c)
The charge on each sphere can be checked with the electroscope.
© Essentials Education
5
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
6: Charging by induction for non conductors
Charging by induction also applies to materials that are not metals. Instead
of the charges moving, rearrangement of the charges within the molecules
occurs. One side of the object becomes slightly more negatively charged
than the other. The molecules are said to be electrically polarised to form
a dipole.
Consider the adjacent diagram. In the case of a positively charged rod,
negative charges within the molecules of the material are attracted to the
side closest to the rod. The material is attracted towards the rod because
the force of attraction is greater than the force of repulsion (electric forces
decrease with distance).
attached
This is why paper is attracted towards charged rods, combs or balloons.
Once the paper comes into contact with the rod it acquired the same
charge as the rod by contact and is repelled from the rod.
The Law of Conservation of Charge
The law of conservation of charge states that the total charge in a closed system remains constant. That is,
charge cannot be created or destroyed; it can only be transferred from one material to another.
D
Conductors and insulators
A material is a conductor if it allows charge to flow freely or redistribute itself evenly over the whole surface.
R
Metals are good conductors because their structure consists of positive ions surrounded by a ‘sea’ of free or
delocalised electrons.
Solutions that conduct charge (called electrolytes) contain positive and negative ions that are free to move.
T
AF
A material is an insulator if it does not allow charge to flow freely. Any charge that is introduced to the surface of
a solid insulator is confined to a localised area. This is because electrons are held tightly and are not free to move
throughout the material. Electrons can accumulate on the surface but cannot redistribute themselves.
Earthing a charged object
When a charged metal object is touched with a finger, the charges easily flow through your body to or from the
earth. The earth can store a large amount of charge. If the conductor is negatively charged, excess electrons flow
to earth. If the conductor is positively charged, electrons flow from the earth toward the conductor and neutralise it.
Science as a Human Endeavour
At the end of 1749 Benjamin Franklin had noted many similarities between lightening and electricity. He
decided to study charges using lightening. In 1752 Franklin flew a
kite in a thunderstorm with the help of his son William.
The kite was attached a wet silk string. An iron house key was
attached to the other end of the string. A thin metal wire was
attached to the key and inserted into a Leyden jar. A Leyden jar
was an early form of a capacitor designed to store charge.
Franklin attached a dry silk string to the key and flew the kite
in an approaching thunderstorm. Franklin observed that some
loose threads of the silk string were repelling one another. After
the storm, he touched the key and received an electric shock. The
negative charges stored in the cloud moved onto the kite, down
the wet silk string, to the key and then into the Leyden jar where it
was stored. His experiment therefore showed that lightening was
static electricity.
Franklin knew that if lightening actually struck his kite he was likely to be electrocuted and die. Several other
people repeated Franklin’s experiment and were killed.
6
© Essentials Education
CHAPTER 2
Questions
1. Why did Franklin receive a shock when he touched the iron key?
2. Why was the silk string that Franklin held dry and the string that connected to the kite to the key wet?
3. It is reported that Franklin sheltered himself from the thunderstorm in a barn. Why would this help keep him
safe?
Answers
1. The iron key was a good conductor and became charged. The negative charge was attracted to the positive
charge in his body and ‘jumped’ across to give his an electric shock.
2. Water conducts charge well. The dry string acted as a good insulator and prevented the negative charge
reaching Franklin. The wet part of the silk string conducted charge well so that it flowed from the kite, down
the string, onto the key and into the Leyden jar.
3. The barn helped keep Franklin and the silk string he was holding dry. Getting wet would increase his chances
of being electrocuted because water conducts charge well.
Electric forces
Earlier we saw that like charges repel and that unlike charges attract.
F
D
F
+
+
+
F
F
‐
R
Electric forces are non-contact forces. A positively charged object will exert a repulsive force upon a second
positively charged object that will push the two objects apart. The same concept applies for two negatively
charged objects.
Coulomb’s Law
T
AF
Similarly a positively charged object will exert an attractive force upon a negatively charged object that will draw
the two objects together.
The electrostatic force of attraction or repulsion between two point charges is directly proportional to the
product of the two charges and inversely proportional to the square of the distance between their centres.
The magnitude of the force between two charges is given by:
F=
1 q1q2
2
4πε0 r
where q1 and q2 are the charges in Coulombs
r is the distance between the charges in metres
1
= 9 × 109 Nm2C-2
4πε0
F is the force in Newtons
The force acts along the line joining the centre of the charges.
Proportionality
•
Faq1 for q2 r constant
•
Faq1q2 for r constant
• F = 12 for q1q2 for r constant
r
NB
An attractive force becomes a repulsive force and vise versa if the sign of one of the charges is reversed.
© Essentials Education
7
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
Principle of Superposition
The force acting on a point charge when more than two point charges are present is a vector sum of the forces
due to each of the other point charges present.
Worked Examples
1. (a)Calculate the magnitude and direction of the force acting between a +4.0 µC charge and a –2.0 µC
charge placed 50.0 cm apart in a vacuum.
50.0 cm
q1 = +4.0 µC
F=
q2 = -2.0 µC
1 q1q2 9 × 109 × 4 × 10-6 × 2 × 10-6
= 0.29 N attraction
2 =
0.52
4πε0 r
R
D
(b) Use proportionality to determine the new force if the charges are placed 1.00 m apart.
1
Fa 2 = for q1 , q2 constant
r
The distance between the charges has been doubled. This means that the force will be 4 times
smaller.
0.29
= 0.073N attraction
i.e.
4
(c) Use proportionality to determine the new force if one charge is tripled.
Fa q1 for q2 , r constant
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AF
The one charges is tripled, the force will be 3 times larger.
i.e. 0.29 × 3 = 0.87 N attraction
1 q1q2 9 ×109 × 4 ×10 6 ×1 ×10 6
(d) Calculate the force F 1acting
on a –1.0
µC charge placed
midway
between
the original two charges.
=
=
= 0.576
N
0.252
4 πε0 r12
25.0 cm
25.0 cm
q1 = +4.0 μC
Force due to q1: F 1 =
q3 = -1.0 μC
q2 = -2.0 μC
1 q1q2 9 ×109 × 4 ×10 6 ×1 ×10 6
=
= 0.576 N
0.252
4 πε0 r12
1 q2q3 9 ×109 ×1×10 6 × 2 ×10 6
=
= 0.288 N
4 πε0 r12
0.252
+0.288 = 0.864N
Force due to q2: F 2 =
F = F1 + F2 = 0.576
2. Two identical charges experience a repulsive force of 5.75 × 10-27 N when placed 20.0 cm apart in air.
Calculate the magnitude of the charges. Identify the charges.
F=
q=
1 q1q2 9 ×109 ×q2
=
4 πε0 r 2
r2
Fr 2
5.75×10 27 × 0.22
=
= 1.60 ×10 19 C
9
9 ×10
9 ×109
The two charges are either two electrons or two protons.
8
© Essentials Education
CHAPTER 2
Electrical discharges
An Electric discharge is a flow of electric charge through a solid, liquid or gas.
Electric discharges have many applications including discharge lamps, spark plugs, Geiger-Muller tubes, corona
discharges in photocopiers, electric arc furnaces and piezo igniters.
Vapour lamps
Vapour lamps or electric discharge lamps work by passing an electrical discharge through the atoms of an
ionised gas. An ionised gas is one in which electrons have been removed from the atom. Free electrons are then
accelerated through the lamp (usually consisting of a tube). The electrons collide with the ionised gas particles
and cause electrons held in energy levels (studied later) to be excited (i.e. jump up to higher energy levels). When
the excited electrons return to a lower energy level they emit energy. The energy emitted is in the form of light. The
colour of the light emitted depends on the gas inside the tube. Vapour lamps often contain a mixture of gasses.
Fluorescent lamps, are a common example of a vapour lamp. They emit ultra-violet light. This is then converted to
visible light when it strikes the fluorescent coating on the inside of the lamp’s tube.
Extra Understanding
A spark plug is essential to a petrol engine. The spark produced causes a fuel and air mixture to ignite. This
in turn causes pistons to move.
D
Piezo igniters produce a spark and are used to ignite a gas. They are commonly found in barbeque lighters.
They work on the principal that some materials, such as quartz create an electrical discharge or spark
when struck. Such materials are referred to as piezoelectric. When the button mechanism is pressed on a
barbeque lighter, a spring-loaded hammer hits a quartz crystal to produce a spark.
R
Further investigate the application of electrical discharges in spark plugs and/or piezo igniters.
Helpful online resources
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View this video to see how a spark plug works:
<http://blog.micksgarage.com/how-spark-plugs-work/>
View this video to see how a piezo barbeque igniter works
<https://www.youtube.com/watch?v=oegbv-1cKCA>
Science as a Human Endeavour
Research innovative applications and limitations of semi-conductors (e.g. photovoltaic cells in solar panels,
LEDs) or superconductors (e.g. maglev trains, MRIs).
Potential difference
Energy is needed to separate positive and negative charges. This separation of charge produces an electrical
potential difference that can be used to drive current in circuits.
Consider charges in a circuit. The charges are static or still. The charges only move if a battery is present or a
power source is turned on. We say that the battery has a voltage or potential difference and supplies the charges
with energy so that the charges can move.
The energy available to charges moving in an electrical circuit is measured using electric potential difference or
voltage.
The electric potential difference (DV) is defined as the change in electrical potential energy or work done per unit
charge (q) between two defined points in a circuit.
© Essentials Education
9
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
V=
Ep
or
q
V =
W
q
where DV is the potential difference in volts (V)
q is charge in Coulombs (C)
Ep is the electrical potential energy in Joules (J)
units JC-1 or Volts (V)
Worked Examples
1.
A proton of charge 1.6 × 10-19 C gains 8.5 × 10-18 J of electrical potential energy.
Calculate the potential difference through which the proton is moved.
E p 8.5×10 18
=
= 53 V
q 1.6 ×10 19
The potential at a point A is 2.00 V and the potential at another point B is 10.0 V.
V=
2.
2
(a) State the potential difference between the points.
8.00 V
D
(b) State the change in potential energy experienced by an electron moving from A to B. The charge of an
electron is -1.6 × 10-19 C . Will the electron lose or gain electrical potential energy? Justify your answer
Change in potential energy = E p = q V = 1.6 ×10 19 ×8 = 1.3 ×10 18 J
R
The electron loses electrical potential energy (and gains kinetic energy) because it is moving
towards a point of higher potential.
Application of potential difference
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X-rays
X-ray tubes are used to produce medical images. Electrons released from a heated filament are passed through
a large potential difference of 100 000 V or more.
The electrons accelerate across the x-ray tube towards a positive anode and strike a target metal. At this point the
electrons lose kinetic energy and this energy is released as x-rays.
A heated wire filament
releases electrons here.
‐
Anode
Target metal
10
© Essentials Education
+
CHAPTER 2
Science as a Human Endeavour
Explore the application of potential difference in particle accelerators. How are they useful in producing
radioisotopes that can be used in medical imaging?
What are the social and economical impacts, for example access to and affordability of such treatment in
different parts of the world.
Current
Electric current is defined as the charge flowing past a point in a conductor per second or the rate of flow of charge.
I=
q
t
where I is the current in Amperes
q is charge in Coulombs (C)
t is the time over which the charge is flowing
SI units: Ampere (A)
1 A = 1 Cs-1
D
Charge carriers in a metal
Electric current is carried by discrete charge carriers. Electrons are the charge carriers in metals.
R
The sign of an electron is negative and the charge is e = 1.6x10-19 C.
Electron current and conventional current
Battery or
energy
source
+
-
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AF
Conventional current refers to the direction that positive charges flow through a circuit. When analysing electric
circuits and in other topics such as magnetism we use conventional current. While we now know that current
involves the movement of electrons through a conductor, it is a convention that has remained. Electron current
refers to the direction that electrons flow through a circuit.
This diagram indicates the
direction of the conventional
current.
Electrons flow in the opposite
direction.
Worked Example
(a) 3.50 × 102 C of charge passes through the element of a kettle in 1.5 minutes. Calculate the current flowing.
q 3.5×102
=
= 3.9A
t 1.5× 60
Calculate the number of electrons that flow through the element in this time.
I=
(b)
Number of electrons =
total charge 3.5×102
=
= 2.2 ×1021
e
1.6 ×10 19
Extra Understanding
Observe how the conductivity of metals, molten and aqueous ionic compound and ionised gases provide
evidence for a variety of charge carriers.
© Essentials Education
11
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
Exercises
Electrostatics
1.
Complete table below
Sign of one charge
Sign of second charge
positive
positive
Description of force
between the charges
positive
attraction
negative
repulsion
The electronegativity of wool is less than the electronegativity of brass but greater than that of glass. State,
with reason the sign of the charge acquired by brass and glass if they are individually rubbed with wool.
3.
Explain why a car will immediately attract dust after it has been polished.
4.
Explain why it is necessary to stand in a plastic tray when attempting to make your hair stand on end when
using the Van de Graff generator.
5.
If you rub a balloon on your hair, it will become negatively charged.
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2.
Describe how an electroscope can be used to confirm the balloon is negatively charged.
12
© Essentials Education
CHAPTER 2
6.
A positively charged glass rod is brought close to a thin stream of water. Describe and explain what you would
observe.
7.
(a) Describe the difference between a conductor of charge and an insulator of charge.
(b) Explain why a copper rod can never be charged by friction while being held in the palm of your hand.
R
D
8.
Explain why metal pie plates placed on the dome of the Van de Graaff generator lift off after a short time that
the Van de Graaff generator has been operating.
1.
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Electric force
Calculate the force F acting between a -6.5 × 10-3 C sphere and a +7.5 × 10-3 C charged sphere placed
35 cm apart in a vacuum.
© Essentials Education
13
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
2.
1.50 m
+25.0 nC
+40.0 nC
(a) Calculate the magnitude and direction of the force acting between a +25.0 nC and a +40.0 nC charge
placed 1.50 m apart in a vacuum.
(b) Draw vector arrows to represent the force acting on the charges
(c) Use proportionality to determine the affect on the magnitude of the force acting when
(i)
the +25.0 nC charge is replaced with a -75.0 nC charge.
D
the distance between the charges is halved.
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R
(ii)
(iii) the +25.0 nC charge is replaced with a -75.0 nC charge and the distance between the charges is
halved.
3.
The magnitude of the force between a +5.0 µC charge and a +3.0 µC charge is 0.50 N. Calculate the
distance between the charges.
14
© Essentials Education
CHAPTER 2
4.
Calculate the magnitude and direction of the force acting on charge QC in the situation below.
20.0 cm
55.0 cm
QA = +3.00 μC QB = –5.00 μC
5.
QC = +9.00 μC
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D
(a)The magnitude of the force between two charges placed 2.0 m apart in a vacuum is 4.0 × 104 N. One of
the charges is known to be 5.0 mC. Calculate the magnitude of the other charge present.
6.
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(b) The
distance between the charges is changed such that the magnitude of the force increases to
6.4 × 105 N. Determine the new distance between the charges.
Calculate the force F acting on the -0.60 C charge in the situation illustrated below.
1.00 m
+0.75 C
2.00 m
–0.60 C
© Essentials Education
+0.85 C
15
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
Potential difference
1.
Calculate the potential difference through which an alpha particle with a charge of 3.2 × 10-19 C needs to be
accelerated in order to gain 5.0 × 10-17 J of electrical potential energy.
2.
An electron is accelerated through a potential difference of 6000 V.
(a) Calculate the gain in electrical potential energy experienced by the electron.
(b) State the amount of kinetic energy gained by the electron.
3.
Current
R
D
An x-ray tube operates at 30 kV. Calculate the gain in electrical potential energy when electrons are accelerated
across this potential difference.
Define the term current.
2.
(a) 8.0 C of charge passes through a point in a circuit every 30 s. Calculate the current flowing.
T
AF
1.
(b) Calculate the number of charge carriers that have passed this point of the circuit in 30 s.
3.
If 0.500 A of current is measured flowing through a component of a circuit, calculate the charge and the
number of electrons passing any point in this circuit every minute.
16
© Essentials Education
CHAPTER 2
4.
If 3.0 × 1019 electrons pass through the filament of a light globe in10 s, calculate the current flowing through
the filament.
Ohm’s Law and resistance
1.
A potential difference of 8.0 V is applied across the component of a circuit. The potential difference causes a
current of 0.15 A to flow through the component. Calculate the resistance of the component.
2.
(a) Define the term ‘electrical resistance’.
D
(b) Explain why the resistance of a circuit results in the production of heat.
R
The component of a circuit has a resistance of 10 W. Calculate the potential difference required if a current of
1.5 A is to flow through the component.
4.
(a) Explain what is mean by ohmic conductor.
T
AF
3.
(b) Explain why a conductor can’t be ohmic if its temperature increases.
5.
The filament of a heater has a resistance of 50 W. Calculate the current flowing if 240 V is applied to the
filament.
© Essentials Education
17
STAGE 1 PHYSICS
6.
TOPIC 2: ELECTRIC CIRCUITS
A student collects data for Ohm’s law and plots a graph of current against potential difference.
(a) Describe the graph that the student would expect if Ohm’s law is confirmed.
(b) State the quantity represented by the gradient.
(c) State the units of the gradient.
(d) Describe how the resistance of the resistor used in the circuit can be calculated.
Consider the graph below.
0.35
D
0.30
0.25
0.20
0.15
0.10
0.05
0
0
2.0
T
AF
R
Current (A)
7.
4.0
6.0
8.0
Potential difference (V)
(a) State the relationship between current and potential difference.
(b) Calculate the gradient of the line.
(c) Calculate the resistance of the circuit used to collect the data.
18
© Essentials Education
10.0
12.0
CHAPTER 2
(d) Draw a new line which shows how the graph would differ if a component with greater resistance was
used in the circuit.
Resistance and resistivity
1.
A particular wire has a resistivity of 1.9 × 10-8 Wm, an area of cross-section of 4.5 × 10-6 m2 and a length of 25 cm.
Calculate the resistance of this wire.
2.
(a) Define the term resistivity of a conductor.
D
(b) A conductor of length 1.5 m and area of cross-section of 2.0 × 10-6 m2 has a resistance of 1.3 × 10-3 W.
Calculate the resistivity of the conductor.
T
AF
R
3.
(a)Given the resistivity of copper is 1.70 × 10-8 Wm. Calculate the resistance of a 1.00 m length of copper
wire that has a radius of 1.50 × 10-3 m.
(b) Calculate the length of wire required to make a resistance of 1.00 W.
© Essentials Education
19
STAGE 1 PHYSICS
4.
TOPIC 2: ELECTRIC CIRCUITS
A student wishes to confirm the relationship between the resistance of a wire and its area of cross-section.
Describe the graph that would need to be plotted and the graph that should result.
5.
A 3.00 m length of wire has a resistance of 7.25 W.
(a) State with reason the new resistance of a 9.00 m length of the same wire.
D
(b) State with reason the new resistance of the wire if its radius is doubled.
1.
T
AF
R
Circuit Analysis
Consider the simple circuit below.
V
Globe or lamp
A
6.0 V
(a) Name the device used to measure current.
(b) Name the device used to measure potential difference.
(c) If the lamp has a resistance of 10.0 W, calculate the current flowing through the circuit.
20
© Essentials Education
CHAPTER 2
(d) Calculate the number of charge carriers passing through the ammeter every minute.
2.
Consider the circuit below.
30.0
10.0
V
A
A
D
4.50 V
(a) Describe how the circuit was constructed.
T
AF
R
(b) State the resistance of the circuit.
(c) Calculate the reading on the ammeter.
(d) Determine the reading on the voltmeter.
3.
(a) Use the space below to sketch a 40 W resistor connected in parallel with a 10 W resistor.
© Essentials Education
21
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
(b) This
combination of resistors is now connected to a potential difference of 8.0 V. State the potential
difference across the 10 W resistor.
(c) Calculate the resistance for this combination of resistors.
(d) Calculate the current flowing through the circuit and each of the resistors.
(e) State the potential difference across the 40 W resistor.
(f)
The 40 W resistor is removed from the circuit. Calculate the current flowing through the 10 W resistor.
R
D
4.
25.0
V
T
AF
20.0
30.0
A
10.0 V
(a) Calculate the resistance of the circuit shown above.
(b) Calculate the current flowing through the circuit.
22
© Essentials Education
CHAPTER 2
(c) Determine the reading on the voltmeter.
(d) Determine the reading on the ammeter.
5.
Consider the circuit below.
2.0
D
5.0
12 V
4.0
R
5.0
T
AF
(a) Calculate the effective resistance of the circuit.
(b) Calculate the current flowing through the circuit.
(c) Calculate the potential difference across the 5.0 W resistor that is connected in series with the 2.0 W
resistor.
(d) Determine the potential difference across the 4.0 W resistor.
© Essentials Education
23
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
(e) Calculate the current flowing through the 4.0 W resistor.
Power and efficiency
Calculate the power rating of a light globe that operates at 50.0 V and draws 1.2A of current.
2.
Calculate the power rating of an electrical component in kilowatts if it has a resistance of 150 W and operates
at a potential difference of 550 V.
3.
An electric toaster has a power rating of 2.40 × 103 W.
D
1.
(a) Calculate the electrical energy transformed in 95.0 s when toasting a piece of bread.
R
(b) The efficiency of the toaster is 30%. Calculate the useful heat energy supplied in the 95.0 s.
T
AF
4.
A 2.2 kW fan heater is used for 5.0 hours. Calculate the cost of running the heater if electricity is charged at
18 c per kilowatt hour.
5.
The heating element of a kettle has a resistance of 450 W and draws a current of 2.0 A
(a) Calculate the power rating of the kettle.
(b) The kettle is used to boil 2.0 litres of water. Calculate the energy delivered in 3.0 minutes.
24
© Essentials Education
CHAPTER 2
(c) If electricity is charged at 20 cents per kilowatt hour, calculate the cost of boiling the 2.0 litres of water
using this kettle.
(d) Calculate the efficiency of the heating element given that 1.0 × 105 J of the energy delivered by the
heating element is absorbed by the outer plastic casing of the kettle.
6.
A current of 35 mA flows through a coil of wire.
(a) Calculate the charge passing a point in the coil in 20 µs.
D
(b) Calculate the resistance of the coil if a potential difference of 6.0 V is applied across the coil.
R
(c) Calculate the power dissipated by the coil in this time.
T
AF
(d) Calculate the number of electrons passing a point in the coil in this time.
7.
A circuit regulates the voltage from 10.0 V to 6.0 V. The current flowing through a component is 0.500 A.
(a) Calculate the input power.
(b) Calculate the output power.
(c) Calculate the efficiency of the circuit.
© Essentials Education
25
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
Exercise solutions
1.
2.
Sign of one charge
Sign of second charge
Description of force
between the charges
positive
positive
repulsion
positive
negative
attraction
negative
negative
repulsion
The greater the electronegativity of a material the greater its tendency to hold on to its electrons.
When brass is rubbed with wool, the wool will lose electrons and the brass will gain them. The brass will
acquire a negative charge.
When glass is rubbed with wool, the glass will lose electrons and the wool will gain them. The glass will
acquire a positive charge.
When you polish a car you rub it. The body of the car becomes charged. It therefore attracts nearby dust
particles in the air because they become charged by induction. Charges within the dust particles rearrange
so that the side of the dust particles closest to the car have an opposite charge to the car. The dust particles
are then attracted to the car.
4.
Plastic is a good insulator. This will prevent the charges that are transferred from the Van de Graaff generator
to your body from passing straight in to the earth and allow the charges to accumulate on your body.
5.
Charge the electroscope negative by touching the cap with a negatively charged rod (ebonite rubbed with
fur). The needle will deflect to indicate that the electroscope is charged. If the balloon is negatively charged
the needle of the electroscope will deflect further when the balloon is brought close to the electroscope.
6.
The stream of water would bend towards the charged rod. Charges in the molecules of water rearrange so
that the negative charges are closest to the positive rod. The water is attracted to the rod because the force
of attraction between unlike charges is greater than the force of repulsion between like charges.
7.
(a)A material is a conductor if it allows charge to flow freely or redistribute itself evenly over the whole
surface.
T
AF
R
D
3.
A material is an insulator if it does not allow charge to flow freely. Any charge that is introduced to the surface
of a solid insulator is confined to a localised area. This is because electrons are held tightly and are not free to
move throughout the material. Electrons can accumulate on the surface but cannot redistribute themselves.
(b) Copper
is a conductor. Any charges introduced to the surface while rubbing it will flow through the
copper to your hand. The charge will be earthed.
8.
The pie plates become charged by contact. They acquire the same charge as the dome of the Van de Graff
generator. Like charges repel and the pie plates lift off the dome.
Electric force
1. F =
1 q1q2 9 ×109 × 6.5×10 3 × 7.5×10 3
=
= 3.6 ×106 N attraction
4 0 r2
0.352
2. (a) F =
1 q1q2 9 ×109 × 40 ×10 9 ×25×10 9
=
= 4.00 ×10 6 N repulsion
1.52
4 0 r2
(b)
(c) (i) Faq1 for q2 , r constant
(ii)
If one charge is tripled the force will be three times larger. Reversing the sign does not affect the
magnitude of the force but instead it becomes an attractive force.
1
F 2 for q1,q2 constant
r
If the distance is halved, the force becomes four times larger.
(iii) The effect would be that the force becomes 3 × 4 = 12 times larger.
26
© Essentials Education
CHAPTER 2
3.
F=
1 q1q2 9 ×109 q1q2
=
4 0 r2
r2
9×109 q1q2
9 ×109 × 5 ×10 6 ×3×10 6
=
=0.52m
F
0.5
r=
4.
1 QAQC 9 ×109 ×3×10 6 × 9 ×10 6
=
=0.432 N
0.752
4 0 rA2
1 QBQC 9 ×109 × 5×10 6 × 9 ×10 6
=
= 1.34 N
Force due to QB: F B =
4 0 rB2
0.552
Force due to QA: F A =
F = FA + FB = 0.432
5.
(a)
= 0.908N
+1.34
F=
1 q1q2 9 ×109 q1q2
=
4 0 r2
r2
q2 =
Fr 2
4 ×104 × 22
=
= 3.6 ×10 3 C
9 ×109 q1 9×109 × 5.×10 3
(b) The force is 16 times larger.
1
Using F 2 for q1,q2 constant
r
The distance has been reduced 4 times i.e. the new distance is 50 cm
D
6.
1 q1q2 9×109 × 0.75× 0.6
=
= 4.05×109
2
2
4 0 r1
1
Force due to 0.75 C charge: F 1 =
1 q2q3 9 ×109 × 0.85× 0.6
=
= 1.15 ×109
4 0 r22
22
R
Force due to 0.85 C charge: F 2 =
Potential difference
2.
V=
Ep
5×10 17
=
= 160 V
q 3.2 ×10 19
+1.15×109
N
= 2.94 ×109 N
T
AF
1.
F = F1 + F2 = 4.05×109
N
(a) E p = q V = 1.6 × 10 19 × 6000 = 9.6 ×10 16 J
(b) From year 10, the kinetic energy gained is 9.6 × 10-16 J (using the Law of Conservation of Energy).
3.
E p = q V = 1.6 ×10 19 ×30000 = 4.8×10 15 J
Current
1.
3.
Electric current is defined as the charge flowing past a point in a conductor per second or the rate of flow of
charge.
q 8
= 0.27A
(a) I = =
t 30
total charge
8
=
= 5.0 ×1019
(b) Number of electrons =
e
1.6 ×10 19
Charge flowing: q = I t = 0.5× 60 = 30C
4.
Number of electrons =
2.
Number of electrons =
total charge
e
total charge
e
=
30
= 1.88×1020
1.6 ×10 19
total
charge = Number of electrons × e
q = 3×1019 ×1.6 ×10 19 = 4.8C
I=
q 4.8
=
= 0.48A
t 10
© Essentials Education
27
STAGE 1 PHYSICS
TOPIC 2: ELECTRIC CIRCUITS
Ohm’s Law and resistance
V
8
=
= 53
I 0.15
1.
R=
2.
(a)The electrical resistance of a component is defined as the ratio of the potential difference applied across
the component to the current flowing in the component.
(b) Charge
carriers (electrons) flowing through a conductor collide with each other and the positive ions in
the metal. The electrons transfer kinetic energy to the vibrating positive ions. The ions vibrate faster. This
means that the conductor heats up.
Since resistance is an indication of how hard it is for charge to flow through a conductor. The higher the
resistance the harder it is for the charge to flow and the greater the heat that results.
3.
4.
5.
6.
(b) Ohm’s
Law states that the current is directly proportional to potential difference providing the temperature
of the conductor remains constant. If the temperature of a conductor increases then it does not obey
Ohm’s law and cannot be ohmic.
V
V 240
R=
I= =
= 4.8A
I
R 50
(a) The student would expect a straight line through the origin.
1
(b) The gradient represents .
R
(c) AV-1
1
(d) The resistance of the resistor is given by
.
gradient
(a) The current is directly proportional to potential difference.
rise 0.3
=
= 0.03AV 1
(b) gradient =
run 10
1
1
1
R=
=
(c) gradient =
= 33 W (2 sf)
R
0.03
gradient
(d) If the resistance increases the gradient decreases. A straight line through the origin should be drawn that
is less steep than the original.
Resistance and resistivity
T
AF
R
D
7.
V
V = I R = 1.5×10 = 15V
I
(a) Conductors that obey Ohm’s Law (I V) are said to be ohmic conductors.
R=
2.
L 1.8×10 8 × 0.25
=
= 1.0 ×10 3
A
4.5×10 6
(a)Resistivity of a material is the resistance of a 1 m length of the wire if it has an area of cross-section of 1 m2.
L
RA 1.3×10 3 × 2 ×10 6
=
=
=1.7×10 9 m
(b) R =
A
L
1.5
3.
(a)
1.
R=
R=
R=
L
where A = r 2
A
L 1.7×10 8 ×1
=
= 2.41×10 3
3 2
A
(1.5×10 )
L
RA 1× (1.5×10 3 ) 2
L =
=
= 416m
A
1.7×10 8
The student will need to plot a graph of resistance against the inverse of area of cross-section.
(b) R =
4.
A straight line of best fit through the origin should result.
5.
(a)Since R L then a piece of wire that is three times longer would have three times the resistance.
R = 7.25 × 3 = 21.8 W
1
and A = r 2 then if the radius is doubled, the area of cross-section of four times larger.
(b)Since R
A
This makes the resistance four times smaller.
R=
28
7.25
= 1.81
4
© Essentials Education
CHAPTER 2
Circuit Analysis
1.
(a)Ammeter
2.
(b) Voltmeter
V
V 6
I = = = 0.600A
(c) R =
I
R 10
(d) q = I t = 0.6 × 60 = 36C
total charge
36
Number of electrons =
=
= 2.25×1020
e
1.6 ×10 19
(a) An ammeter is connected to the positive terminal of the power supply.
A 10 W resistor followed by a 30 W resistor are connected to the ammeter in series and back to the
negative terminal of the power supply. A voltmeter is connected in parallel to the 30 W resistor.
(b)
(c)
(d)
3.
(a)
40 W
V
R=
I
V
R=
I
I=
V 4.5
=
= 0.113A
R 40
V = I R = 0.113×30 = 3.39V
40
I=
V 8
= = 1.0A
R 8
(f)
4.
T
AF
R = 8.0
V
(d) R =
I
(e) 8.0 V
R
D
(b) 8.0 V
(c) 1 = 1 + 1
R R1 R2
1 1
1
=
+
R 40 10
10
Resistance is now 10 W
V
V 8
R=
I = = = 0.80A
I
R 10
(a)
1 1 1
=
+
R R1 R2
parallel branch:
1 1 1
=
+
R 20 25
R = 11.1
Total resistance: 11.1 + 30 = 41.1 W
V
V
10
I= =
= 0.243A
(b) R =
I
R 41.1
(c) potential difference across the 30.0 W resistor
V
R=
V = I R = 0.243×30 = 7.29V
I
potential difference across the 25.0 W resistor = 10 – 7.29 = 2.71 V
V
V 2.71
I= =
= 0.136A
(d) R =
I
R 20
© Essentials Education
29
STAGE 1 PHYSICS
5.
(a)
TOPIC 2: ELECTRIC CIRCUITS
1 1 1
=
+
R
R1 R2
parallel branch:
1 1 1
= +
R 4 5
R = 2.2
(b)
(c)
(d)
(e)
Total resistance: 2.2 + 5 + 2 = 9.2 W
V
V 12
R=
I= =
= 1.3A
I
R 9.2
V
R=
V = I R = 1.3× 5 = 6.5V
I
potential difference across the 2.0 W resistor
V
R=
V = I R = 1.3 × 2 = 2.6V
I
potential difference across the 4.0 W resistor = 12 – 2.6 – 6.5 = 2.9 V
V
V 2.9
R=
I= =
= 0.73A
I
R 4
Power and efficiency
1.
3.
R
4.
D
2.
P = VI = 50 × 1.2 = 60W
V 2 5502
P=
=
= 2.0 ×103W = 2.0KW
R 150
E
E = Pt = 2400 × 95 = 2.28×105 J
(a) P =
t
(b) 0.3 × 2.28 × 105 = 6.84 × 104 J
Cost = P(kilowatts) × number hours × cost per kilowatt = 2.2 × 5 × 18 =198 cents
i.e. $1.98 = $2.00
(a) P = I 2 R = 22 × 450 = 1800W
E
E = Pt = 1800 ×(3 × 60) = 3.2 ×105 J
(b) P =
t
(c) Cost = P(kilowatts) × number hours × cost per kilowatt =
3
= 1.8 ×
× 20 = 2.0 cents
60
(d) Useful energy = 3.2 × 105 – 1.0 × 105 = 2.2 × 105 J
useful energy 2.2 ×105
efficiency =
=
= 0.69
5
total energy 3.2 ×10
i.e. an efficiency of 69%
6.
(a) q = I t = 35×10 3 × 20 ×10 6 = 7.0 ×10 7 C
V
6
= 170
(b) R = =
I 35×10 3
(c) P = VI = 6 ×35×10 3 = 0.21W
total charge
7×10 7
=
= 4.4 ×1012
(d) Number of electrons =
e
1.6 ×10 19
(a) P = VI = 10 × 0.5 = 5W
7.
T
AF
5.
(b) P =VI = 6 × 0.5 = 3W
useful power output 3
= = 0.6
(c) efficiency =
power output
5
i.e. an efficiency of 60%
30
© Essentials Education
New Science Workbooks
SACE Stage 1 Australian Curriculum
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