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SCHEME OF WORK
General Science
Grade 10 2026
TERM III
School


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WK LSN STRAND SUB-STRAND LESSON LEARNING OUTCOMES LEARNING EXPERIENCES KEY INQUIRY QUESTIONS LEARNING RESOURCES ASSESSMENT METHODS REFLECTION
2 1
Natural Physical Science
Turning Effect of Force -Meaning of moment of force
By the end of the lesson, the learner should be able to:
- Define the term moment of a force
- Identify the pivot and line of action of force in everyday tools
- Relate the concept of turning effect to real-life tools such as spanners, door handles and water pumps
In groups, learners are guided to:
- Use digital devices or print media to research on moments of a force at a point
- Discuss the meaning of a moment of a force and identify its components (force, pivot, perpendicular distance)
- Share findings with classmates and make short notes
Why is it easier to open a door by pushing at the edge than near the hinge?
- Humming Bird General Science Learner's Book pg. 252
- Digital resources
- Reference books
- Oral questions - Observation
2 2
Natural Physical Science
Turning Effect of Force -Factors affecting turning effect
Turning Effect of Force -Calculating moment (M = F × d)
By the end of the lesson, the learner should be able to:
- State the factors that affect the turning effect of a force
- Investigate how distance and force influence the turning effect
- Relate the turning effect of force to everyday situations such as using a wrench or lifting a pump handle
In groups, learners are guided to:
- In groups, investigate how changing the distance from the pivot and the magnitude of force affects the turning effect
- Use a lift pump or spanner to demonstrate the effect of distance from pivot
- Discuss findings with peers and note how increased distance or force increases the turning effect
How does the position of a hand on a spanner affect the ease of turning a bolt?
- Humming Bird General Science Learner's Book pg. 252
- Spanners, lift pump, metre rule
- Digital resources
- Humming Bird General Science Learner's Book pg. 254
- Calculator
- Reference books
- Observation - Oral questions
2 3
Natural Physical Science
Turning Effect of Force -Principle of moments
Turning Effect of Force -Calculations using principle of moments
By the end of the lesson, the learner should be able to:
- State the principle of moments
- Demonstrate the principle of moments by balancing a metre rule
- Relate the principle of moments to balancing systems such as seesaws and beams
In groups, learners are guided to:
- Suspend a metre rule at its centre and hang known masses on either side
- Adjust positions until the rule balances horizontally
- Measure distances and calculate clockwise and anticlockwise moments
- Discuss findings and state the principle of moments
How does a seesaw balance when people of different weights sit at different distances from the centre?
- Humming Bird General Science Learner's Book pg. 256
- Metre rule, string, known masses, stand
- Digital resources
- Calculator
- Reference books
- Observation - Oral questions
2 4
Natural Physical Science
Turning Effect of Force -Moments due to beam weight
Turning Effect of Force -Antiparallel forces
By the end of the lesson, the learner should be able to:
- Explain how the weight of a uniform beam contributes a moment about a pivot
- Calculate moments due to beam weight acting at its centre of gravity
- Relate beam weight moments to practical structures such as see-saws and bridges
In groups, learners are guided to:
- Discuss how a uniform beam's weight acts at its midpoint
- Solve problems involving a beam pivoted near one end with a spring balance maintaining equilibrium
- Calculate the weight of the beam from the spring balance reading and distances
Why does a uniform plank tip to one side when a person stands near its end even without additional weights?
- Humming Bird General Science Learner's Book pg. 258
- Metre rule, spring balance, stand
- Calculator
- Humming Bird General Science Learner's Book pg. 260
- Wooden strip, Newton balances, screw
- Digital resources
- Written assignments - Observation
2 5
Natural Physical Science
Turning Effect of Force -Calculations on antiparallel forces
Turning Effect of Force -Real-life applications and importance
By the end of the lesson, the learner should be able to:
- Calculate the moment of a couple using total moment = one force × perpendicular distance between the forces
- Solve numerical problems involving antiparallel forces on a metre rule
- Relate couple calculations to real-life applications such as tightening bolts with two hands
In groups, learners are guided to:
- Solve examples involving two equal and opposite forces acting at different marks on a metre rule
- Calculate total moment of the couple about any point
- Work through problems and compare solutions with peers
How does the spacing between the two forces in a couple affect the turning moment produced?
- Humming Bird General Science Learner's Book pg. 261
- Calculator
- Reference books
- Humming Bird General Science Learner's Book pg. 263
- Digital resources
- Internet access
- Written assignments - Oral questions
3 1
Natural Physical Science
Linear Motion -Distance and displacement
By the end of the lesson, the learner should be able to:
- Define distance and displacement and state their SI units
- Distinguish between distance and displacement using practical examples
- Relate the difference between distance and displacement to navigation and everyday travel
In groups, learners are guided to:
- Mark points A, B and C in the field using pegs
- Measure the length AC through B (distance) and the straight line AC (displacement)
- Record and discuss the differences between the two measurements with peers
Why does a GPS device show a shorter distance to a destination than the actual road distance travelled?
- Humming Bird General Science Learner's Book pg. 269
- Tape measure, pegs, hammer
- Reference books
- Oral questions - Observation
3 2
Natural Physical Science
Linear Motion -Calculations on distance and displacement
By the end of the lesson, the learner should be able to:
- Calculate distance and displacement from given data
- Solve problems distinguishing between total path length and straight-line change in position
- Relate distance and displacement calculations to real-life journeys such as athletes on a track
In groups, learners are guided to:
- Solve numerical problems involving distance and displacement
- Work through examples where a body moves in different directions and calculate both distance and displacement
- Compare solutions with peers
How would you calculate the displacement of a runner who completes two laps of a circular track?
- Humming Bird General Science Learner's Book pg. 270
- Calculator
- Reference books
- Written assignments - Oral questions
3 3
Natural Physical Science
Linear Motion -Speed and velocity
By the end of the lesson, the learner should be able to:
- Define speed and velocity and state their SI units
- Distinguish between speed and velocity
- Relate the difference between speed and velocity to real-life motion such as cars on a straight road and roundabouts
In groups, learners are guided to:
- Study pictures of cars in motion and discuss the difference between speed and velocity
- Discuss with peers why velocity requires direction while speed does not
- Write brief notes on the differences between speed and velocity
Why does a car moving at a constant speed around a roundabout have a changing velocity?
- Humming Bird General Science Learner's Book pg. 272
- Digital resources
- Reference books
- Oral questions - Observation
3 4
Natural Physical Science
Linear Motion -Practical determination of velocity
By the end of the lesson, the learner should be able to:
- Determine velocity practically by measuring distance and time
- Record and analyse motion data to calculate average velocity
- Relate practical velocity measurements to real-life scenarios such as timing athletes and vehicles
- Mark a measured distance in the field and time a learner walking or running across it
- Calculate velocity using v = distance ÷ time
- Repeat with different distances and compare results
How do traffic officers use speed guns to measure the velocity of vehicles on a highway?
- Humming Bird General Science Learner's Book pg. 272
- Tape measure, stopwatch, pegs
- Calculator
- Observation - Written assignments
3 5
Natural Physical Science
Linear Motion -Calculations on speed and velocity
By the end of the lesson, the learner should be able to:
- Calculate speed and velocity using appropriate formulae
- Solve numerical problems involving speed, distance and time
- Relate speed and velocity calculations to transport and athletics
In groups, learners are guided to:
- Solve numerical problems on speed and velocity using v = s/t
- Work through examples involving vehicles, runners and cyclists
- Discuss and compare solutions with peers
How does a bus company use average speed calculations to plan arrival times between towns?
- Humming Bird General Science Learner's Book pg. 272
- Calculator
- Reference books
- Written assignments - Oral questions
4 1
Natural Physical Science
Linear Motion -Acceleration
Linear Motion -Calculations on acceleration and deceleration
By the end of the lesson, the learner should be able to:
- Define acceleration and deceleration and state their SI units
- Distinguish between acceleration and deceleration using practical examples
- Relate acceleration and deceleration to everyday situations such as vehicles speeding up or braking
In groups, learners are guided to:
- Discuss the meaning of acceleration as the rate of change of velocity
- Identify examples of acceleration and deceleration in daily life such as a bus pulling away from a stop and braking at a stage
- Write brief notes on acceleration and deceleration
How does a car manufacturer use acceleration values to describe the performance of a vehicle?
- Humming Bird General Science Learner's Book pg. 274
- Digital resources
- Reference books
- Calculator
- Oral questions - Observation
4 2
Natural Physical Science
Linear Motion -Equations of motion (v = u + at)
By the end of the lesson, the learner should be able to:
- State and apply the equation v = u + at
- Identify the variables of motion: initial velocity, final velocity, acceleration and time
- Relate the first equation of motion to real-life situations such as a car accelerating from rest
In groups, learners are guided to:
- Introduce the five variables of motion using a table (u, v, a, s, t)
- Solve problems using v = u + at where three variables are known
- Work through examples involving vehicles, boulders and runners
How would you use v = u + at to find the speed of a matatu after accelerating for a given time from rest?
- Humming Bird General Science Learner's Book pg. 276
- Calculator
- Reference books
- Written assignments - Oral questions
4 3
Natural Physical Science
Linear Motion -Equations of motion (s = ut + ½at² and v² = u² + 2as)
By the end of the lesson, the learner should be able to:
- State and apply the equations s = ut + ½at² and v² = u² + 2as
- Select the appropriate equation of motion based on the known and unknown variables
- Relate equations of motion to real-life problems such as calculating braking distance of vehicles
In groups, learners are guided to:
- Solve problems using s = ut + ½at² and v² = u² + 2as
- Work through mixed examples requiring selection of the correct equation
- Discuss and compare solutions with peers
How do road engineers use equations of motion to design safe stopping distances on highways?
- Humming Bird General Science Learner's Book pg. 276
- Calculator
- Reference books
- Written assignments - Oral questions
4 4
Natural Physical Science
Linear Motion -Free fall and gravity
By the end of the lesson, the learner should be able to:
- Define free fall and explain the effect of gravity on falling bodies
- Describe how air resistance affects falling objects of different shapes
- Relate free fall to real-life situations such as falling objects on construction sites and skydiving
In groups, learners are guided to:
- Drop a stone and a flat paper simultaneously and observe which hits the ground first
- Repeat the experiment with the paper folded into a tight ball and compare results
- Discuss how air resistance affects the paper but not the stone and relate to vacuum conditions
Why do skydivers open parachutes to slow their fall rather than falling freely to the ground?
- Humming Bird General Science Learner's Book pg. 283
- Stone, paper, writing materials
- Digital resources
- Observation - Oral questions
4 5
Natural Physical Science
Linear Motion -Tick timer investigation
By the end of the lesson, the learner should be able to:
- Describe how a tick timer is used to investigate motion
- Analyse ticker tape results to determine velocity and acceleration
- Relate ticker tape analysis to how speed cameras and data loggers record vehicle motion
In groups, learners are guided to:
- Set up a ramp using books and cardboard and release different objects such as a marble, toy car, apple and pumpkin
- Observe and record how speed increases from rest to maximum at the bottom
- Analyse speed-time data from a table and calculate acceleration due to gravity
How do engineers use motion sensors and data loggers to monitor the speed of vehicles during crash testing?
- Humming Bird General Science Learner's Book pg. 285
- Cardboard, books, toy car, marble, apple
- Stopwatch, ruler
- Observation - Written assignments
5 1
Natural Physical Science
Linear Motion -Free fall calculations
By the end of the lesson, the learner should be able to:
- Apply free fall equations v = gt and h = ½gt² to solve numerical problems
- Calculate velocity, height and time for freely falling bodies
- Relate free fall calculations to real-life situations such as objects falling from buildings and cliff heights
In groups, learners are guided to:
- Solve problems involving objects dropped from heights using v = gt and h = ½gt²
- Work through examples including construction workers dropping bricks and iron balls falling off cliffs
- Discuss how the acceleration due to gravity g = 10 m/s² is used in all free fall problems
How do forensic investigators use free fall calculations to determine from what height an object fell at a crime scene?
- Humming Bird General Science Learner's Book pg. 287
- Calculator
- Reference books
- Written assignments - Oral questions
5 2
Natural Physical Science
Linear Motion -Safety on slopes
By the end of the lesson, the learner should be able to:
- Explain the dangers of accelerating on steeply sloping roads
- Identify safety measures used to minimise injuries from free fall and steep slopes
- Relate knowledge of free fall and acceleration to road safety practices such as speed limits and guardrails on hills
In groups, learners are guided to:
- Study pictures showing dangers of accelerating on sloping surfaces
- Discuss dangers including brake failure, traction loss and vehicles toppling on tight corners
- Discuss safety measures including harnesses on construction sites, parachutes in skydiving and seat belts in aircraft
Why are trucks required to use low gears and engine braking when descending steep mountain roads?
- Humming Bird General Science Learner's Book pg. 288
- Digital resources
- Pictures of road accidents on slopes
- Oral questions - Observation
5 3
Natural Physical Science
Linear Motion -Real-life applications of linear motion
By the end of the lesson, the learner should be able to:
- Identify real-life applications of linear motion including vehicles, elevators, sliding doors and projectiles
- Explain how linear motion principles apply to each example
- Relate linear motion to everyday technology such as lifts, sliding doors and bullet travel
In groups, learners are guided to:
- Study pictures showing applications of linear motion in different scenarios
- Discuss how vehicles, desk drawers, elevators and sliding doors all exhibit rectilinear motion
- Present findings in a plenary session
How does an elevator use the principles of linear motion to safely move passengers between floors of a building?
- Humming Bird General Science Learner's Book pg. 281
- Digital resources
- Internet access
- Oral questions - Observation
5 4
Natural Physical Science
Waves -Amplitude and wavelength
By the end of the lesson, the learner should be able to:
- Define amplitude and wavelength and state their SI units
- Identify amplitude and wavelength on diagrams of transverse and longitudinal waves
- Relate amplitude and wavelength to real-life examples such as sound loudness and radio signal range
In groups, learners are guided to:
- Study diagrams of transverse waves and identify crests, troughs, amplitude and wavelength
- Use print or non-print media to research on terms used in waves
- Draw and label wave diagrams showing amplitude and wavelength
How does increasing the amplitude of a sound wave affect how loud the sound appears to a listener?
- Humming Bird General Science Learner's Book pg. 314
- Digital resources
- Wave diagrams, rulers
- Oral questions - Observation
5 5
Natural Physical Science
Waves -Frequency and period
By the end of the lesson, the learner should be able to:
- Define frequency and period and state their SI units
- Relate frequency and period using the equation T = 1/f
- Relate frequency and period to real-life applications such as radio broadcasting frequencies and musical notes
In groups, learners are guided to:
- Study displacement-time graphs and identify the period of a wave
- Calculate frequency from period and vice versa using T = 1/f
- Discuss examples such as radio stations broadcasting at specific frequencies
Why do radio stations broadcast at specific frequencies and what would happen if two stations used the same frequency?
- Humming Bird General Science Learner's Book pg. 315
- Digital resources
- Wave diagrams, calculator
- Oral questions - Written assignments
6 1
Natural Physical Science
Waves -Velocity of waves
Waves -Wave equation
By the end of the lesson, the learner should be able to:
- Define the velocity of a wave and state its SI unit
- Describe how wave velocity is related to the medium through which the wave travels
- Relate wave velocity to everyday phenomena such as the speed of sound in air and the speed of light
In groups, learners are guided to:
- Discuss the meaning of wave velocity as the distance a wave travels per second
- Compare the speed of sound in different media (air, water, solids)
- Discuss why lightning is seen before thunder is heard during a storm
Why do you see lightning before hearing thunder even though both are produced at the same time?
- Humming Bird General Science Learner's Book pg. 316
- Digital resources
- Reference books
- Humming Bird General Science Learner's Book pg. 317
- Long rope, stopwatch, ruler
- Oral questions - Observation
6 2
Natural Physical Science
Waves -Calculations using wave equation
By the end of the lesson, the learner should be able to:
- Apply the wave equation v = fλ to calculate wave speed, frequency or wavelength
- Solve numerical problems using the wave equation and displacement-time graphs
- Relate wave equation calculations to real-life contexts such as radio station broadcasting and sonar depth measurement
In groups, learners are guided to:
- Solve numerical problems using v = fλ involving sound and radio waves
- Determine amplitude, frequency and wavelength from displacement-time graphs
- Work through mixed problems and compare solutions with peers
How would a radio engineer calculate the wavelength of a broadcast signal given its frequency and the speed of radio waves?
- Humming Bird General Science Learner's Book pg. 318
- Calculator
- Reference books
- Written assignments - Oral questions
6 3
Natural Physical Science
Waves -Reflection of sound and echo
By the end of the lesson, the learner should be able to:
- Define reflection of waves and explain how echoes are formed
- Calculate the speed of sound using the echo method
- Relate reflection of sound to real-life applications such as sonar, ultrasound scanning and echo-location in bats
In groups, learners are guided to:
- Stand at a known distance from a large hard wall, clap hands and measure the time for the echo to return
- Calculate speed of sound using speed = 2d/t
- Repeat the experiment several times and calculate average speed of sound in air
How do ships use sonar to detect underwater objects by reflecting sound waves off the seabed?
- Humming Bird General Science Learner's Book pg. 320
- Stopwatch, measuring tape, hard wall
- Calculator
- Observation - Written assignments
6 4
Natural Physical Science
Waves -Refraction of sound
By the end of the lesson, the learner should be able to:
- Define refraction of waves and explain how sound bends when passing through layers of air at different temperatures
- Distinguish between the behaviour of sound during the day and at night
- Relate refraction of sound to real-life phenomena such as distant sounds being louder at night and fog horns on ships
In groups, learners are guided to:
- Watch videos on the behaviour of sound during the day and at night using a digital device
- Create two illustrations showing how sound waves bend upward during the day and downward at night
- Discuss how temperature differences in the atmosphere cause refraction
Why do sounds from a distant factory seem louder at night than during the day even though the factory operates at the same intensity?
- Humming Bird General Science Learner's Book pg. 322
- Digital devices with internet access
- Drawing materials
- Observation - Oral questions
6 5
Natural Physical Science
Waves -Diffraction of sound
By the end of the lesson, the learner should be able to:
- Define diffraction and explain how sound bends around obstacles and through openings
- Investigate how sound can be heard around a corner or through a slightly open door
- Relate diffraction to real-life situations such as hearing vehicles approaching around a blind corner
In groups, learners are guided to:
- Position a ringing phone behind a wall and check whether a listener on the other side can hear it
- Repeat with a slightly open door and note how sound spreads through the opening
- Discuss how diffraction allows sound to bend around edges and through gaps
How does diffraction of sound help a pedestrian hear an approaching vehicle before it comes into view around a corner?
- Humming Bird General Science Learner's Book pg. 323
- Phone, large wall, door
- Measuring tape
- Observation - Oral questions
7 1
Natural Physical Science
Waves -Effects of waves on the environment
By the end of the lesson, the learner should be able to:
- Explain how sound waves affect communities, marine ecosystems and infrastructure
- Describe the impact of noise pollution on human health, wildlife and buildings
- Relate the effects of waves on the environment to real-life issues such as factory noise, ship engines and bridge vibrations
In groups, learners are guided to:
- Study pictures of factories, traffic and ships and discuss their noise effects on communities and marine life
- Discuss how loud ship engines disrupt whale communication and how vibrations damage buildings
- Write short notes on the effects of sound waves on communities, marine ecosystems, infrastructure and operations
How do loud ship engines and underwater sonar systems used for navigation affect the communication and behaviour of whales?
- Humming Bird General Science Learner's Book pg. 325
- Digital resources
- Pictures of industrial and marine environments
- Oral questions - Observation
7 2
Natural Physical Science
Waves -Mitigation measures against effects of waves
By the end of the lesson, the learner should be able to:
- Describe mitigation measures used to reduce the effects of waves on communities, marine ecosystems, infrastructure and operations
- Evaluate the effectiveness of sound barriers, earmuffs and marine protected areas in reducing noise pollution
- Relate mitigation strategies to decisions made by governments, urban planners and industries
In groups, learners are guided to:
- Walk around roads near residential areas and observe how windows, walls and doors are designed to reduce noise
- Discuss measures such as soundproof windows, noise barriers along roads, quieter ship engines and rubber pads on railway tracks
- Discuss other ways to reduce noise pollution and compare ideas with classmates
How do city planners use sound walls and zoning laws to protect residents from the noise of nearby industrial areas?
- Humming Bird General Science Learner's Book pg. 327
- Digital resources
- Internet access
- Oral questions - Observation
7 3
Natural Physical Science
Waves -Applications in road safety, refraction and diffraction
By the end of the lesson, the learner should be able to:
- Explain how reflection, refraction and diffraction of sound waves contribute to road safety
- Describe how emergency sirens use wave properties to warn road users
- Relate wave properties to road safety systems such as sirens, fog horns and sound-based warning devices
In groups, learners are guided to:
- Study diagrams showing how reflection, refraction and diffraction are applied in road safety
- Discuss how a motorcycle engine sound bends around a corner to warn pedestrians before the vehicle is visible
- Discuss how emergency sirens use reflection to be heard around obstacles and refraction to travel farther in cold weather
How does the diffraction of sound from a vehicle horn help a pedestrian at a blind junction react in time to avoid an accident?
- Humming Bird General Science Learner's Book pg. 331
- Digital resources
- Internet access
- Oral questions - Written assignments
7 4
Natural Physical Science
Magnetism and Electromagnetic Induction -Magnetisation methods
By the end of the lesson, the learner should be able to:
- Describe the electrical, induction, stroking and hammering methods of magnetising soft iron
- Compare the strength and permanence of magnets produced by each method
- Relate magnetisation methods to real-life applications such as manufacturing compass needles, refrigerator door magnets and industrial lifting magnets
In groups, learners are guided to:
- Wrap insulated copper wire around a soft iron rod, connect to a battery and test with iron filings (electrical method)
- Place soft iron near a bar magnet without touching and test magnetism (induction method)
- Stroke a soft iron rod with a permanent magnet in one direction and test with iron filings (stroking method)
- Strike a soft iron rod aligned north-south with a hammer and test with iron filings (hammering method)
Which method of magnetisation would be most suitable for manufacturing a permanent compass needle and why?
- Humming Bird General Science Learner's Book pg. 338
- Soft iron rod, copper wire, battery, bar magnet, hammer, iron filings
- Observation - Oral questions
7 5
Natural Physical Science
Magnetism and Electromagnetic Induction -Demagnetisation
By the end of the lesson, the learner should be able to:
- Describe the electrical, hammering and heating methods of demagnetising a magnet
- Explain how each method disrupts the alignment of magnetic domains
- Relate demagnetisation to real-life situations such as erasing hotel key cards and resetting magnetic strips
In groups, learners are guided to:
- Wrap insulated copper wire around a magnetised soft iron rod, connect to AC power and test with iron filings after removing
- Strike a magnetised soft iron rod repeatedly with a hammer and test with iron filings
- Heat a magnetised soft iron rod until red-hot, allow to cool and test with iron filings
- Compare results of all three methods
Why must a magnet be oriented in the east-west direction during demagnetisation and what would happen if it were left pointing north-south?
- Humming Bird General Science Learner's Book pg. 344
- Magnetised soft iron rod, AC power source, hammer, Bunsen burner, tongs, iron filings
- Observation - Oral questions
8 1
Natural Physical Science
Magnetism and Electromagnetic Induction -Magnetic field patterns
Magnetism and Electromagnetic Induction -Direction and strength of fields
By the end of the lesson, the learner should be able to:
- Describe magnetic field patterns around bar magnets, U-shaped magnets and horseshoe magnets
- Draw magnetic field lines showing direction from north to south pole and regions of attraction and repulsion
- Relate magnetic field patterns to real-life devices such as electric motors, MRI scanners and loudspeakers
In groups, learners are guided to:
- Place a bar magnet on a flat surface, cover with paper and sprinkle iron filings to reveal field pattern
- Use a small compass to trace field lines around the magnet marking direction of needle at each point
- Draw and compare field patterns around unlike poles (attraction) and like poles (repulsion)
How do the magnetic field patterns around a horseshoe magnet make it more effective for lifting metal objects than a straight bar magnet?
- Humming Bird General Science Learner's Book pg. 347
- Bar magnet, iron filings, white paper, small compass
- Drawing materials
- Humming Bird General Science Learner's Book pg. 348
- Bar magnet, compass, drawing materials
- Digital resources
- Observation - Oral questions
8 2
Natural Physical Science
Magnetism and Electromagnetic Induction -Induced EMF
By the end of the lesson, the learner should be able to:
- Define induced electromotive force (EMF) in electromagnetism
- State Faraday's law of electromagnetic induction
- Relate induced EMF to real-life devices such as bicycle dynamos, generators and transformers
In groups, learners are guided to:
- Use online resources or textbooks to research the meaning of induced EMF and Faraday's law
- Discuss how a changing magnetic field produces an EMF in a conductor
- Predict how a magnet's motion into a coil would affect a connected galvanometer
How does a bicycle dynamo use Faraday's law of electromagnetic induction to light the bicycle's headlamp without using batteries?
- Humming Bird General Science Learner's Book pg. 351
- Digital resources
- Reference books
- Oral questions - Observation
8 3
Natural Physical Science
Magnetism and Electromagnetic Induction -Practical demonstration
By the end of the lesson, the learner should be able to:
- Perform an experiment to demonstrate electromagnetic induction using a U-shaped magnet, galvanometer and straight conductor
- Observe and explain the effect of direction and speed of conductor movement on the galvanometer reading
- Relate the experiment results to how generators and dynamos produce electricity in power stations
In groups, learners are guided to:
- Connect a straight conductor to a galvanometer using connecting wires
- Position the conductor between the poles of a U-shaped magnet and move it up, down, parallel and at an angle
- Observe the galvanometer deflection in each case and record findings
How does the direction of movement of the coil in a generator determine the direction of the current supplied to homes and industries?
- Humming Bird General Science Learner's Book pg. 352
- U-shaped magnet, galvanometer, straight conductor, connecting wires
- Observation - Written assignments
8 4
Natural Physical Science
Magnetism and Electromagnetic Induction -Factors affecting induced EMF
By the end of the lesson, the learner should be able to:
- Identify and explain the factors that affect the magnitude of induced EMF
- Describe how magnetic field strength, speed of motion, number of coil turns, angle of motion and type of material affect induced EMF
- Relate factors affecting induced EMF to the design of power generators in hydroelectric and wind power stations
In groups, learners are guided to:
- Use digital devices or print media to research on factors affecting the magnitude of induced EMF
- Discuss a case scenario of a school hydropower generator with reduced output during dry seasons
- Identify which EMF factors could be adjusted to increase power output and discuss with peers
How would a hydroelectric power station engineer increase the electricity output of a generator during a dry season when water flow is reduced?
- Humming Bird General Science Learner's Book pg. 354
- Digital resources
- Reference books
- Oral questions - Written assignments
8 5
Natural Physical Science
Magnetism and Electromagnetic Induction -Applications of electromagnetic induction
Magnetism and Electromagnetic Induction -Electric bell project
By the end of the lesson, the learner should be able to:
- Identify applications of electromagnetic induction in day-to-day life
- Explain how generators, transformers, induction cookers, wireless chargers and MRI scanners use electromagnetic induction
- Relate electromagnetic induction to familiar technologies such as wireless phone charging, induction cooktops and bicycle dynamos
In groups, learners are guided to:
- Study a presentation by peers on applications of electromagnetic induction
- Discuss how generators convert mechanical energy to electrical energy and how transformers step voltage up or down
- Research additional applications including induction cookers, MRI scanners, electric bells and magnetic card readers
How does the induction cooker in a modern kitchen use electromagnetic induction to heat a pot directly without heating the surface around it?
- Humming Bird General Science Learner's Book pg. 355
- Digital resources
- Internet access
- Humming Bird General Science Learner's Book pg. 358
- Buzzer, battery, copper wire, iron nail, paperclip, plastic box, insulated wire, glue, tape
- Oral questions - Observation

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