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Transcript
RESISTANCE What is resistance? • Resistance is where electrons give up potential energy they carry from the battery. • EXAMPLE The resistance of a lamp causes the electrical energy to change into there forms such as heat and light. If the lamp filament had no resistance, there would be no energy change and this means that the bulb in the lamp would no light. Resistance in Conductors • The resistance of conductors depends on its length and diameter. • A thin wire has a higher resistance than a thick wire. • A long wire has a greater resistance than a shorter wire. How is resistance found? • • • • Resistance is found by dividing voltage by current. Resistance= voltage ÷ current R =V ÷ I Resistance of a conductor is the ratio of voltage to which across it current flows. The unit for resistance is known as an ohm (Ω). An ohm is the resistance to which current is 1 ampere (A) and the potential difference between its ends in 1 volt (V) . Calculating Resistance • If a current (I) of 5A flow through a lamp when it was connected to a battery of 20V, providing a voltage of 20V across a lamp, what is its resistance? • Information given is V=20V and I=5A • Using the formula R = V ÷ I R =20 ÷ 5 R =4Ω Ammeter • An ammeter is a device used for measuring current. It is placed in series with the components, the current through which is being measured. Ammeters have a low resistance so the potential difference across them is as small as possible. Voltmeters • Voltmeters re used for measuring the potential difference. It is placed in parallel with the component, the potential difference is being measured. Voltmeters have a high resistance and they do not affect the current in a circuit. Series Circuit • A series circuit provides one pathway for circuit current to flow. • The same current flows through all components. • If there is a break in any point of the circuit no current flows. • The total resistance in a series combination of resistance is determined from potential difference and current. Series Circuit • The total power dissipated in a series current is equal to the sum of power dissipated in the individual resistors. • The total resistance is calculated with the equation R1+R2+R3 =RT • Voltmeters are placed separately across R1,R2,R3 Series circuits • Resistors in a series circuit Series Circuits • Current in a series circuit is the same throughout the circuit. • EXAMPLE • A battery of 40V is connected to a series arrangement of 4Ω, 6Ω and 10Ω resistors. a) What is the resistance in a circuit? using the formula R1+R2+R3 =RT 4Ω+ 6Ω + 10Ω =20 Ω Series Circuits b) What is the current flowing? using the formula I= VAD ÷ R1+R2+R3 = 40 ÷ 20 = 2A Series Circuits c) What is the potential difference across each resistor? using the formula V=IR V1 : 4Ω*2A =8V V2 : 6Ω*2A=12V V3 : 10Ω*2A=20V Series Circuits d) The total power dissipated in the circuits? Power= VI V TOTAL = V1+V2+V3 =8+12+20 =40V P=VI =40*2 =80W Parallel Circuits • The potential difference across each parallel branch is the same and equal to the potential difference of the battery. • The total current is the sum of individual branches. • The total current divides at each junction leading to parallel branches of a circuit in such a way that potential difference across each resistor branch is the same. Parallel Circuits • The total resistance for parallel combinations of resistors is always less than the value of the smallest resistance. • The total power dissipated equals the sum of powers dissipated in individual resistors. • Adding an extra branch of a parallel circuit does not affect other branches however other current increases. Parallel Circuits • A break in the branch of the parallel circuits does not affect other branches. • The reciprocal of the total resistance equal 1÷RT=1÷R1+1÷R2+1÷R3 • The sum of current in the branch of parallel circuit is equal to the current entering or leaving the parallel section. Parallel Circuits • Parallel Circuit below calculate: Parallel Circuits a)The total resistance in the circuit. • 1÷Rp=1÷R1+1÷R2 =1/6 + 1/12 =3/12 Rp =12/3 = 4Ω RT =4Ω+8Ω = 12Ω Parallel circuit b)The current flowing in the circuit. using the formula V=IR I=V/R I=12/12 I=1A Parallel Circuits • What will be the value of the ammeter placed at A be? using the formula V=IR I=12/4 I=3A Parallel Circuits d) What energy will be dissipated in 1 minute? 1minute= 60 seconds using the formula E=Pt P=IV therefore E=I V t E=1*12*60 E=720J
