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SCHEME OF WORK
Physics
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
1 1
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Basic concepts
Energy, Work, Power and Machines - Work done
By the end of the lesson, the learner should be able to:

- Explain the meaning of energy, work and power
- Distinguish between the three concepts
- Relate to real-life examples like lifting objects and running
In groups, learners are guided to:
- Discuss with peers the meaning of energy, work, power and machines
- Give examples from daily life
- Record definitions
How do machines make work easier?
- Triumph Physics Grade 10 pg. 100-102
- Digital devices
- Reference books
- Exercise books
- Triumph Physics Grade 10 pg. 102-105
- Books
- Spring balance
- Ruler
- Calculator
- Oral questions - Written assignments - Group discussions
1 2
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Forms of energy
Energy, Work, Power and Machines - Mechanical energy
By the end of the lesson, the learner should be able to:

- Explain energy as ability to do work
- Identify different forms of energy
- Relate energy sources to renewable and non-renewable
In groups, learners are guided to:
- Discuss different forms of energy
- Give examples of energy sources
- Classify sources as renewable or non-renewable
How do machines make work easier?
- Triumph Physics Grade 10 pg. 105-106
- Digital devices
- Charts
- Reference books
- Pictures
- Triumph Physics Grade 10 pg. 106-109
- Tennis ball
- Metre rule
- Calculator
- Exercise books
- Oral questions - Written assignments - Observation
1 3
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Energy transformations
Energy, Work, Power and Machines - Law of conservation
By the end of the lesson, the learner should be able to:

- Demonstrate transformation of mechanical energy
- Explain energy changes in swinging pendulum
- Relate to real-life applications like roller coasters
In groups, learners are guided to:
- Carry out activities to demonstrate energy transformation using pendulum
- Observe potential to kinetic energy changes
- Discuss energy at different points
How do machines make work easier?
- Triumph Physics Grade 10 pg. 109-112
- Pendulum (mass and string)
- Retort stand
- Clamp
- Digital devices
- Triumph Physics Grade 10 pg. 112-115
- Pendulum
- Ball
- Marble
- Ramp
- Calculator
- Practical assessment - Observation - Oral questions
1 4
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Vehicle energy systems
By the end of the lesson, the learner should be able to:

- Identify energy transformations in vehicles
- Explain chemical to mechanical energy conversion
- Appreciate safety measures in vehicles
In groups, learners are guided to:
- Visit nearby garage and observe vehicle components
- Identify energy transformations
- Discuss safety precautions
How do machines make work easier?
- Triumph Physics Grade 10 pg. 115-117
- Nearby garage
- Exercise books
- Pens
- Resource persons
- Observation - Oral questions - Written reports
1 5
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Rate of doing work
Energy, Work, Power and Machines - MA, VR and efficiency
By the end of the lesson, the learner should be able to:

- Explain power as rate of doing work
- Calculate power using P = W/t
- Solve numerical problems on power
In groups, learners are guided to:
- Carry out activities to measure power (running up stairs)
- Calculate work done and time taken
- Determine power output
How do machines make work easier?
- Triumph Physics Grade 10 pg. 117-119
- Stopwatch
- Metre rule
- Weighing scale
- Staircase
- Calculator
- Triumph Physics Grade 10 pg. 119-122
- Digital devices
- Reference books
- Exercise books
- Practical assessment - Problem solving - Written tests
2 1
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Types of levers
Energy, Work, Power and Machines - Inclined plane
By the end of the lesson, the learner should be able to:

- Describe levers and their types
- Explain principle of moments in levers
- Calculate VR and MA of levers
In groups, learners are guided to:
- Search for information on levers
- Identify different classes of levers
- Calculate VR = effort arm/load arm
How do machines make work easier?
- Triumph Physics Grade 10 pg. 122-125
- Digital devices
- Pictures of levers
- Reference books
- Calculator
- Triumph Physics Grade 10 pg. 125-128
- Trolley
- Inclined plane
- Weights
- Pulley
- Ruler
- Written tests - Problem solving - Oral questions
2 2
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Wheel and axle system
Energy, Work, Power and Machines - Gear systems
By the end of the lesson, the learner should be able to:

- Explain how wheel and axle works
- Calculate VR = radius of wheel/radius of axle
- Relate to winches and door knobs
In groups, learners are guided to:
- Investigate wheel and axle using rod and handle
- Apply force at different positions
- Calculate VR and MA
How do machines make work easier?
- Triumph Physics Grade 10 pg. 128-130
- Rod with handle
- Thread
- Weights
- Ruler
- Calculator
- Triumph Physics Grade 10 pg. 130-132
- Digital devices
- Pictures of gears
- Reference books
- Practical assessment - Problem solving - Written tests
2 3
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Hydraulic systems
By the end of the lesson, the learner should be able to:

- Explain how hydraulic lift works
- Calculate VR = (R/r)²
- Appreciate use in car jacks and garage lifts
In groups, learners are guided to:
- Discuss hydraulic lift principle
- Calculate forces using Pascal's principle
- Solve numerical problems
How do machines make work easier?
- Triumph Physics Grade 10 pg. 132-134
- Digital devices
- Pictures of hydraulic lifts
- Calculator
- Reference books
- Written tests - Problem solving - Oral questions
2 4
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Other simple machines
Energy, Work, Power and Machines - Complex machines
By the end of the lesson, the learner should be able to:

- Explain pulleys, screws and pulley belts
- Calculate VR for different pulley systems
- Relate to real applications
In groups, learners are guided to:
- Search for information on pulleys, screws and belts
- Discuss their working principles
- Calculate VR for each type
How do machines make work easier?
- Triumph Physics Grade 10 pg. 134-138
- Digital devices
- Pictures
- Reference books
- Calculator
- Triumph Physics Grade 10 pg. 138-141
- Charts
- Written tests - Problem solving - Presentations
2 5
Mechanics and Thermal Physics
Energy, Work, Power and Machines - Making machines
Energy, Work, Power and Machines - Review
By the end of the lesson, the learner should be able to:

- Construct simple machines using local materials
- Test functionality of constructed machines
- Appreciate practical applications of machines
In groups, learners are guided to:
- Use locally available materials to construct simple machines
- Test the machines
- Present to class for assessment
How do machines make work easier?
- Triumph Physics Grade 10 pg. 141
- Wood
- Ropes
- Pulleys
- Nails
- Local materials
- Triumph Physics Grade 10 pg. 142
- Exercise books
- Calculators
- Past papers
- Project work - Practical assessment - Peer assessment
3 1
Waves and Optics
Properties of Waves - Wave properties in real-life situations
Properties of Waves - Demonstrating wave properties using a ripple tank
Properties of Waves - Rectilinear propagation of waves
Properties of Waves - Reflection of waves
By the end of the lesson, the learner should be able to:

- Define wave properties including rectilinear propagation, reflection, refraction, diffraction and interference
- Identify examples of wave properties in everyday life
- Relate wave properties to real-life applications such as mirrors, lenses and sound systems
In groups, learners are guided to:

- Brainstorm on what was learnt in Grade 9 about waves
- Use digital devices or reference books to search for the meaning of wave properties
- Copy and complete a table showing wave properties and their applications
- Present findings on properties of waves in a class discussion
How do wave properties affect our daily experiences with light and sound?
- Triumph Physics 10 pg. 139
- Digital devices
- Reference books
- Writing materials
- Triumph Physics 10 pg. 141
- Ripple tank with components
- Bar and ball dippers
- Light source
- White screen
- Triumph Physics 10 pg. 143
- Ripple tank
- Manila paper
- Markers
- Triumph Physics 10 pg. 144
- Metal barriers (straight, concave, convex)
- Ruler
- Manila paper
- Oral questions - Observation - Written assignments
3 2
Waves and Optics
Properties of Waves - Refraction of waves
Properties of Waves - Diffraction of waves
Properties of Waves - Interference of waves
By the end of the lesson, the learner should be able to:

- Explain refraction as bending of waves due to change in speed
- Demonstrate refraction of waves in a ripple tank
- Connect refraction to how lenses work in eyeglasses, cameras and microscopes
In groups, learners are guided to:

- Place rectangular plastic sheets to create shallow water regions
- Observe how wave speed and direction change at boundaries
- Sketch wave patterns showing refraction
- Discuss why sound travels farther at night than during the day
Why do waves bend when they move from one medium to another?
- Triumph Physics 10 pg. 147
- Ripple tank
- Clear plastic sheets (rectangular and convex)
- Manila paper
- Markers
- Triumph Physics 10 pg. 150
- Metal barriers with gaps
- Triumph Physics 10 pg. 152
- Two spherical dippers
- Practical assessment - Written assignments - Observation
3 3
Waves and Optics
Properties of Waves - Formation and properties of stationary waves
Properties of Waves - Applications of stationary waves in vibrating strings
Properties of Waves - Vibrating air columns in closed and open pipes
By the end of the lesson, the learner should be able to:

- Describe how stationary waves are formed from two progressive waves
- Identify nodes and antinodes in stationary waves
- Connect stationary waves to musical instruments like guitars and violins
In groups, learners are guided to:

- Stretch a rubber band and pluck to observe stationary wave patterns
- Identify regions of highest amplitude (antinodes) and zero amplitude (nodes)
- Vary tension and observe changes in wave pattern
- Discuss properties of stationary waves
How do nodes and antinodes form in a stationary wave?
- Triumph Physics 10 pg. 155
- Rubber bands
- Slinky spring
- Fixed block
- Smooth surface
- Triumph Physics 10 pg. 159
- String (1-2 metres)
- Fixed support
- Pulley and masses
- Ruler
- Triumph Physics 10 pg. 161
- Closed pipe (boiling tube)
- Open pipe
- Practical assessment - Observation - Oral questions
3 4
Waves and Optics
Properties of Waves - Resonance and frequency modulated waves
By the end of the lesson, the learner should be able to:

- Explain resonance and its conditions
- Describe how FM radio waves carry sound information
- Connect resonance to tuning musical instruments and FM to radio broadcasting
In groups, learners are guided to:

- Set up a glass tube in water with a tuning fork to demonstrate resonance
- Adjust air column length to find resonance point
- Tune an FM radio receiver to different stations
- Research how FM radio waves carry sound information
How does a radio receiver select and play a specific FM station?

- Triumph Physics 10 pg. 164
- Glass tube
- Tuning fork
- Container with water
- FM radio receiver
- Oral questions - Written assignments - Observation
3 5
Waves and Optics
Properties of Waves - Doppler effect and applications
Radioactivity and Stability of Isotopes - Terminologies used in radioactivity
Radioactivity and Stability of Isotopes - Types and properties of alpha, beta and gamma radiations
Radioactivity and Stability of Isotopes - Behaviour of radiations in electric and magnetic fields
By the end of the lesson, the learner should be able to:

- Explain the Doppler effect and its causes
- Describe how frequency changes when source approaches or recedes
- Connect Doppler effect to ambulance sirens, radar speed detection and medical ultrasound
In groups, learners are guided to:

- Watch videos demonstrating Doppler effect with sound waves
- Observe how sound changes as source moves toward or away
- Discuss real-life applications of Doppler effect
- Record observations on frequency and pitch changes
Why does an ambulance siren sound different as it approaches compared to when it moves away?
- Triumph Physics 10 pg. 166
- Digital devices
- Internet access
- Writing materials
- Triumph Physics 10 pg. 169
- Reference books
- Periodic table
- Triumph Physics 10 pg. 171
- Property cards
- Manila paper
- Markers
- Triumph Physics 10 pg. 173
- Coloured pencils
- Rulers
- Oral questions - Written assignments - Observation
4 1
Waves and Optics
Radioactivity and Stability of Isotopes - Nuclear equations showing how radionuclides attain stability
Radioactivity and Stability of Isotopes - Decay series and chain reactions
Radioactivity and Stability of Isotopes - Safety precautions in handling and disposing of radioactive substances
By the end of the lesson, the learner should be able to:

- Write balanced nuclear equations for alpha, beta and gamma decay
- Balance mass numbers and atomic numbers in nuclear equations
- Connect nuclear decay to energy production in nuclear power plants
In groups, learners are guided to:

- Learn the three main types of radioactive decay
- Write nuclear equations for alpha decay (e.g., Uranium-238 to Thorium-234)
- Write nuclear equations for beta decay
- Practise balancing nuclear equations
How do unstable nuclei transform to achieve stability through radioactive decay?
- Triumph Physics 10 pg. 175
- Periodic table
- Chart of nuclides
- Exercise books
- Triumph Physics 10 pg. 178
- Uranium-238 decay chart
- Triumph Physics 10 pg. 179
- Digital devices
- Manila paper
- Markers
- Written assignments - Oral questions - Observation
4 2
Waves and Optics
Radioactivity and Stability of Isotopes - Detection of radioactive emissions using photographic plates and electroscopes
Radioactivity and Stability of Isotopes - Detection using Geiger-Muller counter and cloud chamber
Radioactivity and Stability of Isotopes - Half-life and decay curves
By the end of the lesson, the learner should be able to:

- Explain how photographic emulsions detect radiation
- Describe how a leaf electroscope detects radiation
- Connect radiation detection to radiation badges worn by hospital workers
In groups, learners are guided to:

- Observe demonstration of photographic plate detection
- Construct a simple electroscope and observe discharge near radioactive material
- Discuss how ionisation affects charge on foil strips
- Compare detection methods and their applications
How do photographic plates and electroscopes indicate the presence of radiation?
- Triumph Physics 10 pg. 180
- Photographic plates
- Electroscope materials
- Radioactive source
- Triumph Physics 10 pg. 183
- Digital devices
- Reference books
- Manila paper
- Triumph Physics 10 pg. 185
- Burette
- Stopwatch
- Beaker
- Graph paper
- Practical assessment - Oral questions - Observation
4 3
Waves and Optics
Electricity and Magnetism
Electricity and Magnetism
Electricity and Magnetism
Radioactivity and Stability of Isotopes - Nuclear fission, fusion and applications of radioactivity
Current Electricity - Terminologies used in current electricity
Current Electricity - Relationship between potential difference and current through a conductor
Current Electricity - Ohm's Law and electrical resistance
By the end of the lesson, the learner should be able to:

- Differentiate between nuclear fission and nuclear fusion
- Write nuclear equations for fission and fusion reactions
- Connect nuclear reactions to power generation, medical imaging and cancer treatment
In groups, learners are guided to:

- Study pictures of nuclear fission reactions
- Discuss chain reactions and their control in nuclear reactors
- Research applications of radioactivity in medicine, industry and agriculture
- Present findings on applications to class
How do nuclear power plants harness fission energy while preventing uncontrolled chain reactions?
- Triumph Physics 10 pg. 189
- Digital devices
- Pictures of nuclear reactions
- Reference books
- Triumph Physics 10 pg. 213
- Reference books
- Writing materials
- Triumph Physics 10 pg. 214
- Nichrome wire
- Ammeter
- Voltmeter
- Variable resistor
- Dry cells
- Triumph Physics 10 pg. 216
- Graph paper
- Calculators
- Exercise books
- Written assignments - Oral questions - Observation
4 4
Electricity and Magnetism
Current Electricity - Ohmic and non-ohmic resistors
Current Electricity - Effect of length on resistance of conductors
Current Electricity - Effect of cross-sectional area on resistance
By the end of the lesson, the learner should be able to:

- Distinguish between ohmic and non-ohmic resistors
- Draw current-voltage graphs for ohmic and non-ohmic conductors
- Connect non-ohmic behaviour to filament bulbs dimming when voltage drops
In groups, learners are guided to:

- Set up circuit with carbon resistor and record current-voltage readings
- Replace with filament bulb and record readings
- Plot I-V graphs for both and compare shapes
- Discuss why filament bulb resistance changes with temperature
Why does a filament bulb's resistance increase as it gets hotter?
- Triumph Physics 10 pg. 217
- Carbon resistor
- Filament bulb
- Ammeter
- Voltmeter
- Dry cells
- Triumph Physics 10 pg. 219
- Nichrome wire (100 cm)
- Triumph Physics 10 pg. 221
- Nichrome wires of different diameters
- Practical assessment - Written assignments - Observation
4 5
Electricity and Magnetism
Current Electricity - Effect of material type and temperature on resistance
Current Electricity - Relationship between e.m.f., voltage, current, resistance and internal resistance
Current Electricity - Types of resistors and resistor networks
By the end of the lesson, the learner should be able to:

- Investigate how material type and temperature affect resistance
- Define and use resistivity in calculations
- Connect material properties to why copper is preferred for electrical wiring over nichrome
In groups, learners are guided to:

- Compare resistance of nichrome and copper wires of same dimensions
- Heat nichrome wire and measure resistance change
- Discuss resistivity values of different materials
- Calculate resistance using R = ρl/A
Why does the resistance of metals increase when they are heated?
- Triumph Physics 10 pg. 222
- Nichrome and copper wires
- Hot water
- Ammeter
- Voltmeter
- Triumph Physics 10 pg. 225
- Dry cell
- Voltmeter
- Variable resistor
- Triumph Physics 10 pg. 227
- Various resistors
- Circuit symbol charts
- Exercise books
- Practical assessment - Written assignments - Oral questions
5 1
Electricity and Magnetism
Current Electricity - Measurement of resistance using resistor colour codes
Current Electricity - Measurement of resistance using ammeter-voltmeter and Wheatstone bridge
By the end of the lesson, the learner should be able to:

- Read resistance values from colour coded resistors
- Calculate resistance and tolerance from colour bands
- Connect colour coding to identifying resistor values when repairing electronic devices
In groups, learners are guided to:

- Study resistor colour code chart
- Observe colour bands on fixed carbon resistors
- Calculate resistance values using colour codes
- Verify calculated values using digital multimeter
How do the colour bands on a resistor indicate its resistance value and tolerance?
- Triumph Physics 10 pg. 228
- Fixed carbon resistors
- Colour code chart
- Digital multimeter
- Triumph Physics 10 pg. 231
- Ammeter
- Voltmeter
- Wheatstone bridge
- Galvanometer
- Practical assessment - Written assignments - Observation
5 2
Electricity and Magnetism
Current Electricity - Measurement of resistance using metre bridge
Current Electricity - Effective resistance of resistors in series
By the end of the lesson, the learner should be able to:

- Describe the metre bridge as a practical form of Wheatstone bridge
- Use metre bridge to determine unknown resistance
- Connect metre bridge principle to strain gauges used in weighing scales
In groups, learners are guided to:

- Set up metre bridge circuit with known and unknown resistors
- Slide jockey along wire until galvanometer shows zero deflection
- Record balance lengths and calculate unknown resistance
- Compare calculated values with standard values
How does the metre bridge use the principle of balanced ratios to measure resistance?
- Triumph Physics 10 pg. 233
- Metre bridge
- Known resistor
- Unknown resistor
- Galvanometer
- Triumph Physics 10 pg. 234
- Resistors
- Ammeter
- Voltmeters
- Dry cells
- Practical assessment - Written assignments - Observation
5 3
Electricity and Magnetism
Current Electricity - Effective resistance of resistors in parallel
By the end of the lesson, the learner should be able to:

- Derive formula for effective resistance of resistors in parallel
- Calculate total resistance and branch currents in parallel circuits
- Connect parallel circuits to house wiring where each appliance operates independently
In groups, learners are guided to:

- Connect resistors in parallel with ammeter and voltmeters
- Measure total current and individual branch currents
- Verify that 1/R_total = 1/R₁ + 1/R₂ + 1/R₃
- Solve numerical problems on parallel resistor networks
Why is the total resistance of parallel resistors always less than the smallest individual resistor?

- Triumph Physics 10 pg. 237
- Resistors
- Ammeter
- Voltmeters
- Dry cells
- Practical assessment - Written assignments - Observation
5 4
Electricity and Magnetism
Current Electricity - Relationship between voltage, current and power in heating effect
Current Electricity - Applications of the heating effect of electric current
Introduction to Electronics - Meaning of insulators, conductors, semiconductors and superconductors
By the end of the lesson, the learner should be able to:

- Derive and apply P = VI, P = I²R and H = I²Rt
- Calculate electrical power and energy consumed
- Connect heating effect to electric kettles, heaters and toasters in homes
In groups, learners are guided to:

- Set up circuit with resistor, ammeter and voltmeter
- Record voltage and current at different settings
- Calculate power using P = VI
- Derive Joule's law of electrical heating H = I²Rt
How does the resistance of a heating element affect the amount of heat produced?
- Triumph Physics 10 pg. 241
- Resistor
- Ammeter
- Voltmeter
- Rheostat
- Triumph Physics 10 pg. 245
- Digital devices
- Reference books
- Various electrical appliances
- Triumph Physics 10 pg. 248
- Simple circuit
- Various materials (copper, iron, wood, plastic, silicon)
- Bulb
- Written assignments - Oral questions - Observation
5 5
Electricity and Magnetism
Introduction to Electronics - Distinguishing materials using energy band theory
Introduction to Electronics - Electrical behaviour of conductors with varying temperatures
Introduction to Electronics - Electrical behaviour of insulators with varying temperatures
By the end of the lesson, the learner should be able to:

- Explain energy band theory and band gaps
- Draw energy band diagrams for conductors, semiconductors and insulators
- Connect band gaps to why LEDs emit light of specific colours
In groups, learners are guided to:

- Draw rectangles showing valence and conduction bands for conductors
- Draw band diagrams for semiconductors with small band gap
- Draw band diagrams for insulators with large band gap
- Compare and classify materials based on band structure
How does the size of the energy gap determine whether a material conducts electricity?
- Triumph Physics 10 pg. 250
- Manila paper
- Coloured pencils
- Markers
- Triumph Physics 10 pg. 253
- Copper wire
- Ammeter
- Voltmeter
- Hot water
- Ice cubes
- Triumph Physics 10 pg. 254
- Glass rod
- Light bulb
- Dry cells
- Written assignments - Oral questions - Observation
6 1
Electricity and Magnetism
Introduction to Electronics - Electrical behaviour of semiconductors with varying temperatures
Introduction to Electronics - Intrinsic semiconductors
Introduction to Electronics - Extrinsic semiconductors
Introduction to Electronics - Formation of n-type semiconductors
By the end of the lesson, the learner should be able to:

- Investigate how temperature affects resistance of semiconductors
- Explain why semiconductor resistance decreases with temperature
- Connect semiconductor behaviour to thermistors used in temperature sensors and fire alarms
In groups, learners are guided to:

- Set up circuit with thermistor, ammeter and voltmeter
- Measure resistance at room temperature
- Heat thermistor in hot water and measure resistance
- Cool thermistor in ice water and compare values
Why does the resistance of a thermistor decrease when temperature increases?
- Triumph Physics 10 pg. 255
- Thermistor
- Ammeter
- Voltmeter
- Hot water
- Ice cubes
- Triumph Physics 10 pg. 257
- Digital devices
- Reference books
- Writing materials
- Triumph Physics 10 pg. 258
- Periodic table
- Triumph Physics 10 pg. 259
- Manila paper
- Coloured pencils
- Practical assessment - Written assignments - Observation
6 2
Electricity and Magnetism
Introduction to Electronics - Formation of p-type semiconductors
Introduction to Electronics - Applications of conductors, semiconductors, insulators and superconductors
By the end of the lesson, the learner should be able to:

- Explain formation of p-type semiconductors through doping
- Draw diagrams showing hole distribution in p-type materials
- Connect p-type semiconductors to the other half of diodes and transistors
In groups, learners are guided to:

- Research formation of p-type semiconductors
- Discuss addition of group III elements (boron, gallium)
- Draw germanium lattice doped with boron showing holes
- Identify holes as majority charge carriers
Why are group III elements used to create p-type semiconductors?
- Triumph Physics 10 pg. 260
- Digital devices
- Manila paper
- Coloured pencils
- Triumph Physics 10 pg. 261
- Reference books
- Manila paper
- Written assignments - Oral questions - Observation
6 3
Environmental and Space Physics
Greenhouse Effect and Climate Change - Understanding greenhouse effect
Greenhouse Effect and Climate Change - Effects of climate change
Greenhouse Effect and Climate Change - Causes of greenhouse effect
Greenhouse Effect and Climate Change - Human contribution
By the end of the lesson, the learner should be able to:

- Explain the greenhouse effect in the environment
- Describe how greenhouse gases trap heat
- Relate greenhouse effect to real-life situations like cars in the sun
In groups, learners are guided to:
- Discuss with peers the meaning of greenhouse effect and climate change
- Carry out experiment with thermometers and glass jar in sunlight
- Observe temperature differences
How do human actions impact climate change?
- Triumph Physics Grade 10 pg. 263
- Two thermometers
- Clear glass jar
- Stopwatch
- Sunlight access
- Triumph Physics Grade 10 pg. 265
- Exercise books
- Pens
- Digital devices
- Pictures showing climate change
- Triumph Physics Grade 10 pg. 267
- Pictures of human activities
- Charts
- Reference books
- Triumph Physics Grade 10 pg. 268
- Pictures of industries
- Practical assessment - Observation - Oral questions
6 4
Environmental and Space Physics
Greenhouse Effect and Climate Change - Role of ozone layer
Greenhouse Effect and Climate Change - Solutions to climate change
Introduction to Space Physics - Origin of the universe
By the end of the lesson, the learner should be able to:

- Explain the effect of ozone layer on climate change
- Describe ozone layer depletion
- Appreciate importance of protecting the ozone layer
In groups, learners are guided to:
- Use digital devices to search for information on ozone layer
- Discuss ozone-depleting substances (CFCs, halons)
- Explain effects of UV radiation
How does ozone layer depletion threaten our environment?
- Triumph Physics Grade 10 pg. 269
- Digital devices
- Reference books
- Charts showing ozone layer
- Internet access
- Triumph Physics Grade 10 pg. 271
- Manila paper
- Marker pens
- Triumph Physics Grade 10 pg. 273
- Pictures of night sky
- Charts
- Oral questions - Written assignments - Presentations
6 5
Environmental and Space Physics
Introduction to Space Physics - Supporting evidence
Introduction to Space Physics - Types of celestial bodies
Introduction to Space Physics - Other celestial objects
By the end of the lesson, the learner should be able to:

- Explain evidence supporting Big Bang Theory
- Describe cosmic microwave background radiation
- Relate redshift to universe expansion
In groups, learners are guided to:
- Carry out balloon expansion activity
- Observe dots moving apart as balloon inflates
- Discuss how this models universe expansion
How was the universe/earth formed?
- Triumph Physics Grade 10 pg. 275
- Balloon
- Marker
- Ruler
- Digital devices
- Triumph Physics Grade 10 pg. 276
- Digital devices (QR code pg. 288)
- Solar system models
- Manila paper
- Marker pens
- Triumph Physics Grade 10 pg. 277
- Pictures of celestial bodies
- Reference books
- Charts
- Practical assessment - Observation - Oral questions
7 1
Environmental and Space Physics
Introduction to Space Physics - Observing space
By the end of the lesson, the learner should be able to:

- Outline space exploration methods
- Explain how telescopes work
- Appreciate technological advances in space observation
In groups, learners are guided to:
- Search for information on different types of telescopes
- Discuss ground-based and space telescopes
- Compare Hubble and James Webb telescopes
How do we benefit from astrophysics?
- Triumph Physics Grade 10 pg. 278
- Digital devices
- Pictures of telescopes
- Reference books
- Internet access
- Oral questions - Written assignments - Presentations
7 2
Environmental and Space Physics
Introduction to Space Physics - Space technology
Introduction to Space Physics - Planetary motion
By the end of the lesson, the learner should be able to:

- Explain how satellites and space probes work
- Describe Kenya's Taifa-1 satellite
- Appreciate applications of satellites in daily life
In groups, learners are guided to:
- Research satellites and their functions
- Discuss communication and weather satellites
- Study space probes sent to planets
How do we benefit from astrophysics?
- Triumph Physics Grade 10 pg. 279
- Digital devices
- Pictures of satellites
- Reference books
- Charts
- Triumph Physics Grade 10 pg. 281
- Videos on planetary motion
- Oral questions - Written tests - Group discussions
7 3
Environmental and Space Physics
Introduction to Space Physics - Solar system structure
Introduction to Space Physics - History of space exploration
By the end of the lesson, the learner should be able to:

- Model the solar system using local materials
- Demonstrate planetary orbits
- Appreciate scale and organization of solar system
In groups, learners are guided to:
- Create model of solar system using paper balls
- Paint planets in appropriate colors
- Arrange planets in correct order with distances
How do we benefit from astrophysics?
- Triumph Physics Grade 10 pg. 282
- Crushed paper balls
- Paints
- Wooden strip
- Thread
- Glue
- Triumph Physics Grade 10 pg. 283
- Digital devices
- Reference books
- Pictures of space missions
- Internet access
- Project work - Practical assessment - Peer assessment
7 4
Environmental and Space Physics
Introduction to Space Physics - Space-related careers
Introduction to Space Physics - Benefits of space exploration
By the end of the lesson, the learner should be able to:

- Identify careers in space exploration
- Describe roles of astronauts, engineers and scientists
- Appreciate diverse career opportunities in space science
In groups, learners are guided to:
- Simulate moon mission planning activity
- Identify careers needed for space missions
- Discuss skills required for different careers
How do we benefit from astrophysics?
- Triumph Physics Grade 10 pg. 285
- Small pieces of paper
- Writing materials
- Career cards
- Digital devices
- Triumph Physics Grade 10 pg. 280
- Reference books
- Pictures of applications
- Internet access
- Group activities - Presentations - Oral questions
7 5
Environmental and Space Physics
Environmental and Space Physics - Comprehensive review
By the end of the lesson, the learner should be able to:

- Answer questions on greenhouse effect and climate change
- Solve problems on space physics concepts
- Demonstrate understanding of environmental and space topics
In groups, learners are guided to:
- Answer revision questions
- Discuss challenging concepts
- Complete assessment exercises
How do human actions impact climate change? How do we benefit from astrophysics?
- Triumph Physics Grade 10 pg. 272, 287
- Exercise books
- Past papers
- Reference books
- Written tests - Oral questions - Self-assessment

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