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level: Electricity

Questions and Answers List

level questions: Electricity

QuestionAnswer
E (Energy)QV (Charge x Voltage)
Q (Charge)IT (Currant x Time)
V (Voltage) With EMF and currant and resistanceEMF - IR (Electro motive force - (Currant x Resistance)) For the output of a battery with internal resistance
1 J (Joule)6.2x10^18 eV (Electron volts)
V (Voltage) With currant and ResistanceIR (Currant x Resistance)
P (Power) (Using curant, voltage and resistance)IV = I^2R = V^2/R (Currant x Voltage = Currant^2 x Resistance = Voltage^2 / Resistance
Force with power and velocityF = p / v Force = power / velocity
EfficiencyUseful power output / total power input
Energy with voltage currant and resistanceE = V +Ir Energy = voltage + currant x resistance
p.d with work done and chargeV = W / Q voltage = work done / charge
Definition of a volt1 joule per coulomb
ResistivityR x A / L resistance x cross sectional area / length
Total resistance in seriesRt = R1 + R2 + R3
Total resistance in parallel1/Rt = 1/R1 + 1/R2 + 1/R3
Energy transferred by a componentE = I x t x V Energy transferred = Current x time x voltage
Definition of emfAmount of energy supplied per coulomb by a power source
Emf equationEmf = I x (R+r) Emf = currant x (resistance in circuit + internal resistance)
Emf with voltage, currant and internal resistanceEmf = V + Ir Emf = voltage + current x internal resistance
What happens to currant in seriesSame through every component
What happens to currant in parallelThe currant changes per branch depending how much resistance there is
What happens to voltage in seriesThe voltage is split between all components and the total is equal to the amount of voltage produced by the source
What happens to voltage in parallelIt is the same as the voltage produced by the source
What does a capacitor doA device that stores electrical charge, it has two plates a positive and a negative plate
Charge with voltage and capacitanceQ = CV
Currant with voltage capacitance and timeI = VC/t
Energy stored on a capacitorE = 1/2 x QV