Three Batteries Side by Side — Internal Resistance in Every Branch

Elektrik ve manyetizma İleri Ücretsiz VR · AR
Three Batteries Side by Side — Internal Resistance in Every Branch – Elektrik ve manyetizma
Three Batteries Side by Side — Internal Resistance in Every Branch – Elektrik ve manyetizma

Three sealed lead-acid batteries stand on a circuit board, side by side in three branches: 15 V on the back rail, 10 V in the middle and 3 V at the front, each with its internal resistance written on a sticker. Two load resistors on the right, 9.5 Ω and 1.4 Ω, complete two loops. A panel ammeter in every battery branch reads the current along its printed arrow, and a multimeter is clipped across the back battery. Press play and a test charge walks loop abcfa and then loop fcdef; the fence above the wires rises and falls with the potential, so you can watch each battery lift it and its own internal resistance take a little back. Eight sliders set every emf, every internal resistance and both loads.

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A real battery behaves like an ideal emf V_B in series with an internal resistance r. Walking through it from − to + in the direction of the current, the potential rises by V_B and then falls by I r, so between its terminals you measure V = V_B − I r. With the assumed directions (I₁ from a to b, I₂ from c to f, I₃ from e to d), the junction rule at f gives I₂ = I₁ + I₃. Walking loop abcfa clockwise: 15 + 10 = (1 + 9.5) I₁ + 0.5 I₂. Walking loop fcdef clockwise, both batteries are met from + to − and both currents run against the walk: −10 − 3 = −0.5 I₂ − (0.1 + 1.4) I₃. Solved together: I₁ = 2 A, I₂ = 8 A and I₃ = 6 A, all positive, so every assumed direction was right and all three batteries give out energy. Check with energy: 15 × 2 + 10 × 8 + 3 × 6 = 128 W produced, and 2² × (1 + 9.5) + 8² × 0.5 + 6² × (0.1 + 1.4) = 128 W turned into heat. The terminal voltages are 13 V, 6 V and 2.4 V: the 10 V battery loses 4 V inside itself because it carries the largest current.

Kirchhoff's lawsjunction ruleloop ruleinternal resistanceterminal voltageV = V_B − I rmulti-loop circuitpower produced = power consumed3D