Walking the Loop — Where the Potential Rises and Falls

Eletricidade e magnetismo Intermédio Grátis VR · AR
Walking the Loop — Where the Potential Rises and Falls – Eletricidade e magnetismo
Walking the Loop — Where the Potential Rises and Falls – Eletricidade e magnetismo

A 12 V sealed lead-acid battery drives a power resistor round a single loop on a circuit board. A test charge sets off from point a, at the battery's negative terminal, and walks once round the loop: through the battery, past b, through the resistor R and back to a. A translucent fence above its path rises and falls with the electric potential, and a graph draws the same story as the walk goes on. Three sliders set the battery's emf, its internal resistance and the resistor. An ammeter in the loop shows the current, and a multimeter clipped across the battery's terminals shows the voltage the battery actually delivers.

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O que observar

A física por trás

Kirchhoff's second law is conservation of energy for charge going round a closed loop: the potential changes add up to zero, ΣV = 0, or equivalently the emfs balance the IR drops, ΣV_B = ΣIR. Going through the battery from − to +, the potential rises by its emf V_B; the battery's own resistance r then takes back Ir; going through R with the current, the potential falls by IR; the connecting wires change nothing. So V_B − Ir − IR = 0, which gives I = V_B/(R + r). With V_B = 12 V, r = 0.5 Ω and R = 5.5 Ω the current is 12 ÷ 6 = 2 A: the battery lifts every coulomb by 12 J, 1 J of it is spent inside the battery and 11 J in the resistor. A voltmeter across the terminals reads the terminal voltage V = V_B − Ir = 11 V, less than the emf whenever a current flows. Multiply by the current for power: the battery converts 24 W, of which 2 W heats the battery itself and 22 W heats R.

Kirchhoff's second lawKirchhoff's voltage lawΣV = 0internal resistanceterminal voltageV = V_B − Irelectric potentialconservation of energy3D