4 Energy resources and energy transfers
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Energy resources and energy transfers units
4.1
Use the units kilogram (kg), joule (J), metre (m), metre per second (m/s), metre per second squared (m/s²), newton (N), second (s) and watt (W).
(b) Energy transfers
4.2Energy stores and transfers
Describe energy transfers involving energy stores: • energy stores: chemical, kinetic, gravitational, elastic, thermal, magnetic, electrostatic, nuclear • energy transfers: mechanically, electrically, by heating, by radiation (light and sound)
4.3Conservation of energy
Use the principle of conservation of energy
4.4Efficiency equation
Know and use efficiency = useful energy output ÷ total energy output × 100%.
4.5Energy transfer devices
Describe a variety of everyday and scientific devices and situations, explaining the transfer of the input energy in terms of the above relationship, including their representation by Sankey diagrams
4.6Thermal energy transfer
Describe how thermal energy transfer may take place by conduction, convection and radiation
4.7Convection
Explain the role of convection in everyday phenomena
4.8Radiation emission and absorption
Explain how emission and absorption of radiation are related to surface and temperature
4.9Thermal transfer practical
Practical: investigate thermal energy transfer by conduction, convection and radiation
4.10Reducing unwanted energy transfer
Explain ways of reducing unwanted energy transfer, such as insulation
(c) Work and power
4.11Work done equation
Know and use work done = force × distance moved in the force direction, W = Fd.
4.12Work and energy transfer
Know that work done is equal to energy transferred
4.13Gravitational potential energy
Know and use gravitational potential energy = mass × gravitational field strength × height, GPE = mgh.
4.14Kinetic energy equation
Know and use kinetic energy = ½ × mass × speed², KE = ½mv².
4.15Energy conservation links
Understand how conservation of energy produces a link between gravitational potential energy, kinetic energy and work
4.16Power
Describe power as the rate of transfer of energy or the rate of doing work
4.17Power equation
Use power = work done (energy transferred) ÷ time taken, P = W/t.
(d) Energy resources and electricity generation
4.18PElectricity generation transfers
Describe the energy transfers involved in generating electricity using: • wind • water • geothermal resources • solar heating systems • solar cells • fossil fuels • nuclear power
4.19PLarge-scale electricity production
Describe the advantages and disadvantages of methods of large-scale electricity production from various renewable and non-renewable resources