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| WK | LSN | STRAND | SUB-STRAND | LESSON LEARNING OUTCOMES | LEARNING EXPERIENCES | KEY INQUIRY QUESTIONS | LEARNING RESOURCES | ASSESSMENT METHODS | REFLECTION |
|---|---|---|---|---|---|---|---|---|---|
| 2 | 1 |
Waves and Optics
|
Properties of Waves - Rectilinear propagation of waves
|
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of rectilinear propagation of waves - Demonstrate rectilinear propagation using sound and light examples - Relate wave propagation to everyday experiences like torch beams and speaker systems |
In groups, learners are guided to:
- Discuss with peers the meaning of rectilinear propagation of waves - Observe how sound travels from a teacher facing different directions - Use digital resources to search for applications of rectilinear propagation |
How do waves travel from their source?
|
- Spotlight Physics Grade 10 pg. 147 - Torch - Digital resources |
- Oral questions
- Observation
- Written assignments
|
|
| 2 | 2-3 |
Waves and Optics
|
Properties of Waves - Reflection of waves
Properties of Waves - Refraction of waves Properties of Waves - Diffraction of waves Properties of Waves - Interference of waves Properties of Waves - Demonstrating rectilinear propagation using ripple tank Properties of Waves - Demonstrating reflection using ripple tank Properties of Waves - Demonstrating refraction using ripple tank |
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of reflection of waves - Demonstrate reflection of sound waves using a tall building scenario - Connect reflection to real-life applications like radar systems and car side mirrors - Set up a ripple tank to demonstrate wave properties - Demonstrate rectilinear propagation of waves in a ripple tank - Connect the formation of bright and dark spots to how water waves behave |
In groups, learners are guided to:
- Discuss how sound waves bounce off hard surfaces - Identify applications of reflection in radar, mirrors, and fibre optics - Use print or non-print media to research reflection applications - Set up a ripple tank with all accessories - Observe how crests appear bright and troughs appear dark - Place two straight rods perpendicular to the vibrating bar and observe wave direction |
Why do we hear echoes near tall buildings?
How do waves move in a straight line? |
- Spotlight Physics Grade 10 pg. 148
- Digital resources - Charts showing reflection - Spotlight Physics Grade 10 pg. 150 - Glass of water - Straight object - Digital resources - Spotlight Physics Grade 10 pg. 151 - Torch - Manila paper - Spotlight Physics Grade 10 pg. 152 - Two identical speakers - Audio frequency generator - Spotlight Physics Grade 10 pg. 154 - Ripple tank and accessories - Dry cell and cell holder - White manila paper - Spotlight Physics Grade 10 pg. 156 - Ripple tank - Straight metal reflector - Concave and convex reflectors - Spotlight Physics Grade 10 pg. 158 - Transparent glass plate |
- Oral questions
- Observation
- Group presentations
- Practical assessment - Observation - Oral questions |
|
| 2 | 4 |
Waves and Optics
|
Properties of Waves - Demonstrating diffraction using ripple tank
Properties of Waves - Demonstrating interference using ripple tank |
By the end of the
lesson, the learner
should be able to:
- Demonstrate diffraction of waves using a ripple tank - Investigate how aperture size affects diffraction - Connect diffraction to how radio waves reach behind buildings |
In groups, learners are guided to:
- Place two metal barriers with an aperture in front of plane waves - Vary the aperture size from 8 cm to 0.5 cm and observe emerging waves - Place an obstacle in front of waves and observe diffraction around it |
What factors determine the extent of wave diffraction?
|
- Spotlight Physics Grade 10 pg. 159
- Ripple tank - Two straight metal barriers - Opaque obstacle - Spotlight Physics Grade 10 pg. 160 - Two spherical balls - White manila paper |
- Practical assessment
- Observation
- Written assignments
|
|
| 2 | 5 |
Waves and Optics
|
Properties of Waves - Production of frequency modulated (FM) waves
Properties of Waves - Detection of frequency modulated (FM) waves |
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of frequency modulation - Describe methods of producing FM waves - Connect FM to how radio stations broadcast music and news |
In groups, learners are guided to:
- Use digital devices to research the meaning of FM and its production - Discuss the difference between FM and AM - Search for applications of frequency modulation |
How are FM radio signals produced?
|
- Spotlight Physics Grade 10 pg. 161
- Digital resources - Physics reference books - Spotlight Physics Grade 10 pg. 162 - Radio receiver (demonstration) |
- Oral questions
- Written assignments
- Group presentations
|
|
| 3 | 1 |
Waves and Optics
|
Properties of Waves - Formation of stationary waves
Properties of Waves - Factors affecting fundamental frequency of vibrating string |
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of stationary waves - Demonstrate formation of stationary waves using a tuning fork and string - Connect stationary waves to how guitar strings produce different notes |
In groups, learners are guided to:
- Fix a string to a tuning fork prong and pass over a fixed pulley - Strike the tuning fork and observe nodes and antinodes - Discuss how incident and reflected waves superimpose to form stationary waves |
How are stationary waves formed in a vibrating string?
|
- Spotlight Physics Grade 10 pg. 163
- Tuning fork - String - Mass (weight) - Fixed pulley system - Spotlight Physics Grade 10 pg. 164 - Sonometer apparatus - Weights - Two wooden wedges |
- Practical assessment
- Observation
- Oral questions
|
|
| 3 | 2-3 |
Waves and Optics
|
Properties of Waves - Modes of vibration in strings
Properties of Waves - Stationary waves in closed pipes Properties of Waves - Harmonics in closed pipes |
By the end of the
lesson, the learner
should be able to:
- Explain modes of vibration in strings - Calculate frequencies of harmonics and overtones - Connect harmonics to the rich sound quality of musical instruments - Investigate variation of sound with length of air column in a closed pipe - Demonstrate resonance in a closed pipe - Relate closed pipe resonance to how wind instruments like clarinets work |
In groups, learners are guided to:
- Discuss fundamental frequency and how it relates to wavelength - Calculate first and second overtones using mathematical relationships - Use the general formula for nth overtone: fn = (n+1)f₀ - Dip a glass tube into water and hold a vibrating tuning fork over the open end - Adjust the tube length until resonance is achieved - Discuss the relationship between length and wavelength: L = λ/4 |
What are harmonics and overtones in vibrating strings?
How does the length of a closed air column affect the sound produced? |
- Spotlight Physics Grade 10 pg. 166 - Digital resources - Charts showing modes of vibration - Spotlight Physics Grade 10 pg. 167 - Glass tube - Glass jar with water - Tuning fork - Spotlight Physics Grade 10 pg. 168 - Digital resources - Charts showing harmonics |
- Written tests
- Oral questions
- Problem-solving exercises
- Practical assessment - Observation - Oral questions |
|
| 3 | 4 |
Waves and Optics
|
Properties of Waves - Stationary waves in open pipes
Properties of Waves - Meaning of Doppler effect |
By the end of the
lesson, the learner
should be able to:
- Explain stationary wave formation in open pipes - Calculate fundamental frequency and overtones in open pipes - Relate open pipe resonance to how flutes and organ pipes produce sound |
In groups, learners are guided to:
- Discuss how antinodes form at both ends of an open pipe - Calculate wavelength and frequency relationships: L = λ/2 - Compare fundamental frequencies in open and closed pipes |
How do stationary waves form in open pipes?
|
- Spotlight Physics Grade 10 pg. 169
- Digital resources - Charts showing open pipe harmonics - Spotlight Physics Grade 10 pg. 173 - Audio recordings of approaching vehicles |
- Written tests
- Oral questions
- Problem-solving exercises
|
|
| 3 | 5 |
Waves and Optics
|
Properties of Waves - Demonstrating Doppler effect
Properties of Waves - Applications of Doppler effect |
By the end of the
lesson, the learner
should be able to:
- Demonstrate Doppler effect using sound sources and ropes - Observe changes in wavelength when source moves towards or away from observer - Relate the demonstration to how radar speed guns measure vehicle speed |
In groups, learners are guided to:
- Move an audio frequency generator towards and away from a stationary observer - Use a rope to show compression and stretching of waves - Discuss how wavelength decreases when source approaches and increases when receding |
How does the movement of a sound source affect the waves detected by an observer?
|
- Spotlight Physics Grade 10 pg. 174
- Audio frequency generator - Rope or spiral spring - Spotlight Physics Grade 10 pg. 175 - Digital resources - Charts showing Doppler applications |
- Practical assessment
- Observation
- Oral questions
|
|
| 4 | 1 |
Waves and Optics
|
Radioactivity - Meaning of radioactivity and related terms
|
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of radioactivity and related terms - Define nuclear stability, half-life, nuclide, and radioisotope - Relate radioactivity to smoke detectors and medical treatments |
In groups, learners are guided to:
- Use digital resources to search for meanings of radioactivity terms - Discuss the meaning of radioactive decay, background radiation, and nucleotide - Share findings with classmates for peer review |
What is radioactivity and why do some atoms decay?
|
- Spotlight Physics Grade 10 pg. 178 - Digital resources - Physics reference books |
- Oral questions
- Written assignments
- Group discussions
|
|
| 4 | 2-3 |
Waves and Optics
|
Radioactivity - Stability of isotopes and atomic structure
Radioactivity - Types of radiations (alpha, beta, gamma) Radioactivity - Properties of alpha and beta particles Radioactivity - Properties of gamma rays and comparison of radiations |
By the end of the
lesson, the learner
should be able to:
- Explain atomic structure in relation to radioactivity - Describe how neutron-proton ratio affects nuclear stability - Connect isotope stability to carbon dating of archaeological artifacts - Describe properties of alpha and beta particles - Compare penetrating power, ionizing ability, and speed of alpha and beta particles - Connect alpha radiation properties to smoke detector operation |
In groups, learners are guided to:
- Discuss the composition of atoms: protons, neutrons, and electrons - Explain why a 1:1 neutron-proton ratio leads to stability - Illustrate unstable nuclides using diagrams - Discuss penetrating power: alpha stopped by paper, beta by aluminium - Compare ionizing power: alpha highest, beta moderate - Explain deflection in electric and magnetic fields |
How does the neutron-proton ratio affect nuclear stability?
Why are alpha particles more ionizing but less penetrating than beta particles? |
- Spotlight Physics Grade 10 pg. 180
- Digital resources - Charts showing atomic structure - Spotlight Physics Grade 10 pg. 181 - Charts showing radiation types - Spotlight Physics Grade 10 pg. 182 - Digital resources - Charts comparing radiation properties - Spotlight Physics Grade 10 pg. 183 - Charts and diagrams |
- Written tests
- Oral questions
- Diagram labelling
- Written tests - Oral questions - Comparison tables |
|
| 4 | 4 |
Waves and Optics
|
Radioactivity - Alpha decay and nuclear equations
Radioactivity - Beta decay and gamma decay equations |
By the end of the
lesson, the learner
should be able to:
- Write nuclear equations for alpha decay - Balance nuclear equations showing conservation of mass and charge - Connect alpha decay to how smoke detectors use americium-241 |
In groups, learners are guided to:
- Discuss how alpha emission reduces nucleon number by 4 and proton number by 2 - Write nuclear equation for radium-226 decaying to radon-222 - Practice balancing nuclear equations |
How do we write nuclear equations for alpha decay?
|
- Spotlight Physics Grade 10 pg. 186
- Digital resources - Periodic table - Spotlight Physics Grade 10 pg. 187 |
- Written tests
- Problem-solving exercises
- Oral questions
|
|
| 4 | 5 |
Waves and Optics
|
Radioactivity - Uranium-238 decay series
|
By the end of the
lesson, the learner
should be able to:
- Trace the uranium-238 natural decay series - Write nuclear equations for chain decay reactions - Connect decay series to geological dating of rocks |
In groups, learners are guided to:
- Study the uranium-238 decay chain from U-238 to stable Pb-206 - Identify types of radiations emitted at each stage - Write nuclear equations for each step in the decay series |
How does uranium-238 eventually become stable lead-206?
|
- Spotlight Physics Grade 10 pg. 188 - Charts showing decay series - Digital resources |
- Chart interpretation
- Written tests
- Oral questions
|
|
| 5 | 1 |
Waves and Optics
|
Radioactivity - Detection using electroscope and GM tube
Radioactivity - Cloud chambers and nuclear emulsion plates |
By the end of the
lesson, the learner
should be able to:
- Describe detection of radioactive emissions using electroscope - Explain the structure and operation of a Geiger-Müller tube - Relate GM tube operation to radiation monitoring in nuclear power plants |
In groups, learners are guided to:
- Demonstrate how a charged electroscope loses charge near a radioactive source - Discuss the components and operation of a GM tube - Explain how ionization produces pulses counted by a scaler |
How does a Geiger-Müller tube detect radiation?
|
- Spotlight Physics Grade 10 pg. 189
- Electroscope - Diagrams of GM tube - Spotlight Physics Grade 10 pg. 190 - Diagrams of cloud chambers - Digital resources |
- Practical demonstration
- Oral questions
- Written tests
|
|
| 5 | 2-3 |
Waves and Optics
|
Radioactivity - Meaning and demonstration of half-life
Radioactivity - Calculating half-life using graphs and formula Radioactivity - Significance and applications of half-life Radioactivity - Nuclear fission and chain reactions |
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of half-life - Demonstrate half-life concept using water draining from a burette - Relate half-life to how long radioactive waste remains dangerous - Explain the significance of half-life in various fields - Describe applications in medicine, environment, and nuclear power - Relate half-life to planning cancer treatment doses and nuclear waste storage |
In groups, learners are guided to:
- Define half-life as time for half the radioactive atoms to decay - Perform water drainage experiment to simulate radioactive decay - Plot a graph of volume against time and determine half-life - Discuss significance in nuclear medicine and carbon dating - Explain importance in nuclear waste management - Research applications in pharmacokinetics and safety regulations |
How long does it take for half of a radioactive sample to decay?
Why is understanding half-life important in medicine and nuclear power? |
- Spotlight Physics Grade 10 pg. 193
- Burette - Retort stand - Stop clock - Spotlight Physics Grade 10 pg. 195 - Graph paper - Scientific calculators - Spotlight Physics Grade 10 pg. 197 - Digital resources - Physics reference books - Spotlight Physics Grade 10 pg. 198 - Diagrams of chain reactions - Digital resources |
- Practical assessment
- Graph plotting
- Oral questions
- Research presentations - Written tests - Oral questions |
|
| 5 | 4 |
Waves and Optics
|
Radioactivity - Nuclear fusion and applications
Radioactivity - Applications in medicine and industry |
By the end of the
lesson, the learner
should be able to:
- Explain the meaning of nuclear fusion - Compare nuclear fusion with fission - Relate fusion to how the sun and stars produce energy |
In groups, learners are guided to:
- Discuss how light nuclei combine to form heavier nuclei - Explain why fusion requires extremely high temperatures - Compare energy released in fusion versus fission reactions |
Why does nuclear fusion power the sun and stars?
|
- Spotlight Physics Grade 10 pg. 199
- Diagrams showing fusion - Digital resources - Spotlight Physics Grade 10 pg. 200 - Diagrams showing applications |
- Written tests
- Comparison tables
- Oral questions
|
|
| 5 | 5 |
Waves and Optics
|
Radioactivity - Applications in agriculture and archaeology
|
By the end of the
lesson, the learner
should be able to:
- Describe applications of radioactivity in agriculture and archaeology - Explain carbon dating principles - Relate radioactive tracers to studying plant fertilizer absorption |
In groups, learners are guided to:
- Discuss carbon dating for determining age of fossils and artifacts - Explain use of radioactive tracers in agriculture - Calculate ages using carbon-14 decay principles |
How do scientists use carbon dating to determine the age of fossils?
|
- Spotlight Physics Grade 10 pg. 200 - Digital resources - Charts on carbon dating |
- Written tests
- Problem-solving
- Oral questions
|
|
| 6 | 1 |
Waves and Optics
Electricity and Magnetism Electricity and Magnetism Electricity and Magnetism |
Radioactivity - Hazards of radiation and safety precautions
Origin of charges in a material The law of electrostatics Methods of charging conductors - Induction and Contact |
By the end of the
lesson, the learner
should be able to:
- Describe hazards caused by radioactive materials - Explain safety precautions when handling radioactive substances - Relate safety measures to protection of workers in hospitals and nuclear facilities |
In groups, learners are guided to:
- Discuss effects of radiation exposure: burns, cancer, hereditary defects - Explain precautions: avoiding direct contact, using forceps, lead storage - Role-play safety scenarios in radiation handling |
What safety measures protect workers from radiation exposure?
|
- Spotlight Physics Grade 10 pg. 201
- Safety signs - Digital resources - Spotlight Physics Learner's Book pg. 205 - Plastic pen, woolen cloth - Small pieces of paper - Spotlight Physics Learner's Book pg. 207 - Balloons, woolen cloth - Thread, retort stands - Metre rule - Spotlight Physics Learner's Book pg. 208 - Metallic spheres on insulated stands - Charged polythene and glass rods - Connecting wire for earthing |
- Role-play assessment
- Written tests
- Oral questions
|
|
| 6 | 2-3 |
Electricity and Magnetism
|
Methods of charging conductors - Separation and charge distribution
Electric field patterns The electroscope - Structure, charging and discharging Uses of electroscope Applications - Spray painting, precipitators and photocopiers Applications - Lightning arrestors and safety measures |
By the end of the
lesson, the learner
should be able to:
- Describe charging by separation method - Illustrate charge distribution on conductors of various shapes - Connect charge concentration at sharp points to lightning rod design - Describe uses of an electroscope - Demonstrate testing for presence, type and quantity of charge - Apply electroscope principles to quality control testing in manufacturing |
In groups, learners are guided to:
- Carry out activities to charge two spheres by separation method - Discuss how charge distributes on spherical, pear-shaped and irregular conductors - Draw diagrams showing charge distribution on different shaped conductors - Perform experiments to test for presence of charge on a body - Determine the type of charge using a charged electroscope - Measure relative quantity of charge - Test conducting and insulating properties of materials |
Why does charge concentrate at pointed ends of conductors?
How can an electroscope determine the type of charge on a body? |
- Spotlight Physics Learner's Book pg. 211
- Two metallic spheres on insulated stands - Charged rods - Charts showing charge distribution - Spotlight Physics Learner's Book pg. 214 - Charts showing electric field patterns - Digital resources - Drawing materials - Spotlight Physics Learner's Book pg. 216 - Gold-leaf electroscope - Charged polythene and glass rods - Conical flask, aluminium foil, metal spoon - Spotlight Physics Learner's Book pg. 219 - Gold-leaf electroscope - Various charged materials - Conductors and insulators for testing - Spotlight Physics Learner's Book pg. 221 - Charts and diagrams - Digital resources - Videos on spray painting - Spotlight Physics Learner's Book pg. 223 - Pictures of lightning arrestors - Charts on safety measures - Digital resources |
- Observation
- Written assignments
- Diagram assessment
- Practical assessment - Oral questions - Written tests |
|
| 6 | 4 |
Electricity and Magnetism
|
Applications - Touch screens, fingerprinting and capacitors
Current and potential difference Electromotive force and internal resistance |
By the end of the
lesson, the learner
should be able to:
- Explain electrostatic applications in touch screens and fingerprinting - Describe the role of electrostatics in capacitors - Connect capacitive touch technology to everyday smartphone use |
In groups, learners are guided to:
- Discuss the principle behind capacitive touch screens - Research on electrostatic fingerprinting and live scanning - Explain how capacitors in electronic devices use electrostatic principles - Explore air purifiers and other applications |
How do smartphones detect finger touches using electrostatics?
|
- Spotlight Physics Learner's Book pg. 225
- Smartphones and tablets - Digital resources - Charts on touch screen technology - Spotlight Physics Learner's Book pg. 228 - Dry cells, cell holders - Ammeter, voltmeter, bulb - Connecting wires, switch - Spotlight Physics Learner's Book pg. 231 - Dry cells, two voltmeters - Known resistors, switch - Connecting wires |
- Oral questions
- Written tests
- Research presentations
|
|
| 6 | 5 |
Electricity and Magnetism
|
Ohm's law - Verification and calculations
EMF equation and internal resistance determination Ohmic and non-ohmic conductors Factors affecting resistance - Length and cross-sectional area |
By the end of the
lesson, the learner
should be able to:
- State and verify Ohm's law experimentally - Apply Ohm's law equation V = IR to solve problems - Connect Ohm's law to selecting appropriate fuses for home appliances |
In groups, learners are guided to:
- Set up circuit with nichrome wire, ammeter, voltmeter and rheostat - Vary current and record corresponding voltages - Plot graph of V against I and determine resistance from gradient - Solve numerical problems using V = IR |
What is the relationship between voltage and current for an ohmic conductor?
|
- Spotlight Physics Learner's Book pg. 232
- Nichrome wire, ammeter - Voltmeter, rheostat - Dry cells, graph paper - Spotlight Physics Learner's Book pg. 236 - Dry cells, ammeter - Graph paper - Spotlight Physics Learner's Book pg. 242 - Torch bulb, thermistor - Semiconductor diode - Ammeter, voltmeter, rheostat - Spotlight Physics Learner's Book pg. 245 - Nichrome wire, metre rule - Wires of different thickness - Micrometer screw gauge, ammeter, voltmeter |
- Practical assessment
- Graph plotting
- Written calculations
|
|
| 7 | 1 |
Electricity and Magnetism
|
Factors affecting resistance - Temperature and resistivity
Methods of determining resistance Types of resistors and current-voltage laws |
By the end of the
lesson, the learner
should be able to:
- Investigate the effect of temperature on resistance of conductors - Define resistivity and apply ρ = RA/L - Relate temperature effects to why light bulbs glow brighter when hot |
In groups, learners are guided to:
- Heat a coil of wire and measure resistance at different temperatures - Plot R-T graphs for conductors and semiconductors - Derive resistivity formula from R = ρL/A - Calculate and compare resistivity of different materials |
How does temperature affect the resistance of a conductor?
|
- Spotlight Physics Learner's Book pg. 248
- Tungsten coil, beaker - Thermometer, heat source - Ammeter, voltmeter - Spotlight Physics Learner's Book pg. 251 - Metre bridge, Wheatstone bridge components - Galvanometer, jockey - Resistors with colour codes - Spotlight Physics Learner's Book pg. 255 - Various types of resistors - Identical bulbs, ammeters - Voltmeters, dry cells |
- Practical assessment
- Graph plotting
- Written calculations
|
|
| 7 | 2-3 |
Electricity and Magnetism
|
Effective resistance in series and parallel
Solving complex resistor network problems Relationship of V, I and P - Power equations |
By the end of the
lesson, the learner
should be able to:
- Derive and apply formulas for effective resistance in series and parallel - Calculate effective resistance in mixed circuits - Apply resistance calculations to design circuits for specific purposes - Derive and apply power equations P = VI, P = I²R and P = V²/R - Calculate power consumption of electrical devices - Relate power ratings to energy efficiency of household appliances |
In groups, learners are guided to:
- Derive R_T = R₁ + R₂ + R₃ for series circuits - Derive 1/R_T = 1/R₁ + 1/R₂ + 1/R₃ for parallel circuits - Solve problems involving series, parallel and combination circuits - Calculate current and voltage in each resistor - Discuss electrical power as rate of energy conversion - Derive power equations from P = W/t and Ohm's law - Calculate power in circuits using different formulas - Compare power ratings of various appliances |
How do we calculate total resistance in series and parallel circuits?
What is the relationship between voltage, current and power? |
- Spotlight Physics Learner's Book pg. 263
- Resistors of known values - Scientific calculators - Circuit diagrams, worksheets - Spotlight Physics Learner's Book pg. 267 - Complex circuit diagrams - Worksheets with problems - Spotlight Physics Learner's Book pg. 270 - Scientific calculators - Power rating labels from appliances - Worksheets |
- Written calculations
- Problem-solving tests
- Oral questions
- Written calculations - Oral questions - Problem-solving tests |
|
| 7 | 4 |
Electricity and Magnetism
|
Factors affecting heating effect of electric current
Applications of heating effect of electric current |
By the end of the
lesson, the learner
should be able to:
- State Joule's law of electrical heating - Investigate factors affecting heating effect (time, current, resistance) - Relate heating factors to why electric kettles boil water faster than immersion heaters |
In groups, learners are guided to:
- Investigate effect of time, current and resistance on heating - Plot graphs of temperature change against time, I² and R - Derive H = I²Rt (Joule's law) - Discuss the significance of each factor |
What factors determine the amount of heat produced by electric current?
|
- Spotlight Physics Learner's Book pg. 273
- Heating coils, beaker - Thermometer, stopwatch - Ammeter, voltmeter, rheostat - Spotlight Physics Learner's Book pg. 277 - Pictures of electrical appliances - Fuses of different ratings - Digital resources |
- Practical assessment
- Graph plotting
- Written conclusions
|
|
| 7 | 5 |
Electricity and Magnetism
|
Power rating and electrical energy calculations
Conductors, semiconductors, insulators and superconductors Distinguishing materials using energy band theory |
By the end of the
lesson, the learner
should be able to:
- Interpret power ratings on electrical appliances - Calculate electrical energy consumption using E = Pt - Apply energy calculations to reduce electricity bills at home |
In groups, learners are guided to:
- Read and interpret power ratings on appliance labels - Calculate energy consumed in joules and kilowatt-hours - Calculate cost of running appliances using electricity tariffs - Discuss energy-saving practices |
How do we calculate the cost of running electrical appliances?
|
- Spotlight Physics Learner's Book pg. 278
- Power rating labels - Scientific calculators - Electricity tariff information - Spotlight Physics Learner's Book pg. 282 - Models of atomic structures - Charts showing material classification - Digital resources - Spotlight Physics Learner's Book pg. 284 - Charts showing energy bands - Digital resources - Drawing materials |
- Written calculations
- Oral questions
- Problem-solving tests
|
|
| 8 | 1 |
Electricity and Magnetism
|
Effect of temperature on conductors and semiconductors
Intrinsic semiconductors and doping N-type and p-type semiconductors Applications of conductors and insulators |
By the end of the
lesson, the learner
should be able to:
- Investigate the effect of temperature on resistance of conductors and semiconductors - Plot and interpret R-T graphs for different materials - Relate temperature effects to thermistor use in temperature sensors and fire alarms |
In groups, learners are guided to:
- Set up circuit with tungsten coil in water bath - Heat water and record resistance at different temperatures - Plot R-T graph showing resistance increase for metals - Replace with thermistor and observe resistance decrease with temperature - Discuss concept of superconductivity at very low temperatures |
Why does resistance increase with temperature for metals but decrease for semiconductors?
|
- Spotlight Physics Learner's Book pg. 286
- Tungsten coil, thermistor - Beaker, thermometer - Heat source, ammeter, voltmeter - Spotlight Physics Learner's Book pg. 288 - Charts showing doping process - Digital resources - Models of crystal structures - Spotlight Physics Learner's Book pg. 289 - Diagrams of crystal lattice - Charts showing n-type and p-type formation - Digital resources - Spotlight Physics Learner's Book pg. 292 - Samples of electrical cables - Pictures of electrical installations |
- Practical assessment
- Graph plotting
- Comparative analysis
|
|
| 8 | 2-3 |
Electricity and Magnetism
Environmental and Space Physics |
Applications of semiconductors and superconductors
Application of conductors and insulators in car wiring system Greenhouse Effect and Climate Change - Greenhouse effect and climate change in the environment Greenhouse Effect and Climate Change - Physical drivers of climate change Greenhouse Effect and Climate Change - Factors leading to greenhouse effect Greenhouse Effect and Climate Change - Agricultural and livestock contributions Greenhouse Effect and Climate Change - Role of ozone layer |
By the end of the
lesson, the learner
should be able to:
- Describe applications of semiconductors in electronics and sensors - Describe applications of superconductors in modern technology - Connect semiconductor applications to smartphones, computers, solar panels and medical equipment - Explain how greenhouse gases trap heat in the atmosphere - Illustrate the process of heat absorption and re-emission by greenhouse gases - Relate the greenhouse effect to temperature changes experienced in greenhouses and parked vehicles |
In groups, learners are guided to:
- Research on semiconductor applications (transistors, diodes, LEDs, thermistors, solar cells) - Discuss use of thermistors in temperature sensors and fire alarms - Explain applications of superconductors (MRI machines, maglev trains, power transmission) - Discuss future potential of superconductors - Study diagrams showing physical drivers of climate change - Discuss with peers how greenhouse gases absorb and re-emit infrared radiation - Use print or non-print media to search for more information on climate change drivers |
How are semiconductors used in modern electronic devices?
Why is the Earth warmer than it would be without greenhouse gases? |
- Spotlight Physics Learner's Book pg. 293
- Electronic components - Pictures of semiconductor devices - Digital resources - Spotlight Physics Learner's Book pg. 294 - Car wiring diagrams - Samples of automotive cables - Digital resources - Resource persons (mechanics) - Spotlight Physics Learner's Book Grade 10 pg. 297 - Clear plastic bottles/jars - Thermometers - Plastic wrap - Digital devices - Spotlight Physics Learner's Book Grade 10 pg. 298 - Charts showing greenhouse effect - Digital resources - Spotlight Physics Learner's Book Grade 10 pg. 299 - Pictures of industrial activities - Spotlight Physics Learner's Book Grade 10 pg. 300 - Charts showing greenhouse gas sources - Digital devices - Spotlight Physics Learner's Book Grade 10 pg. 301 - Diagrams of ozone layer |
- Oral questions
- Written assignments
- Research presentations
- Oral questions - Group presentations - Written tests |
|
| 8 | 4 |
Environmental and Space Physics
|
Greenhouse Effect and Climate Change - Ozone depletion and climate change
Greenhouse Effect and Climate Change - Strategies for mitigating climate change Greenhouse Effect and Climate Change - Effects of climate change on environment |
By the end of the
lesson, the learner
should be able to:
- Explain causes of ozone layer depletion - Describe the link between ozone depletion and climate change - Relate the ban on CFCs to efforts in preserving the ozone layer |
In groups, learners are guided to:
- Discuss how CFCs and other chemicals deplete the ozone layer - Search for information on the relationship between ozone depletion and climate change - Discuss the effects of ozone depleting substances on climate |
How does ozone layer depletion affect climate change?
|
- Spotlight Physics Learner's Book Grade 10 pg. 301
- Charts on ozone depletion - Digital devices - Spotlight Physics Learner's Book Grade 10 pg. 302 - Pictures of renewable energy sources - Digital resources - Spotlight Physics Learner's Book Grade 10 pg. 305 - Pictures showing climate change effects |
- Observation
- Oral questions
- Written tests
|
|
| 8 | 5 |
Environmental and Space Physics
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Introduction to Space Physics - Big Bang Theory
Introduction to Space Physics - Stars, planets and satellites Introduction to Space Physics - Asteroids, comets, meteors and galaxies Introduction to Space Physics - Space exploration methods and telescopy Introduction to Space Physics - Motion of planets around the sun Introduction to Space Physics - Careers in space exploration |
By the end of the
lesson, the learner
should be able to:
- Explain the Big Bang Theory on the origin of the universe - Describe the evidence supporting the Big Bang Theory - Connect the expanding universe concept to observable phenomena like distant galaxies moving away |
In groups, learners are guided to:
- Use digital devices or reference materials to search for information on Big Bang Theory - Discuss the origin of universe according to Big Bang Theory - Share findings with classmates for peer review |
How did the universe begin according to the Big Bang Theory?
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- Spotlight Physics Learner's Book Grade 10 pg. 308
- Charts on Big Bang Theory - Digital resources - Spotlight Physics Learner's Book Grade 10 pg. 309 - Photos of celestial bodies - Digital devices - Spotlight Physics Learner's Book Grade 10 pg. 311 - Pictures of comets and galaxies - Spotlight Physics Learner's Book Grade 10 pg. 312 - Lenses, manila paper, glue - Pictures of telescopes - Spotlight Physics Learner's Book Grade 10 pg. 316 - Models of solar system - Charts on Kepler's laws - Spotlight Physics Learner's Book Grade 10 pg. 318 - Career charts |
- Oral questions
- Group presentations
- Written assignments
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