Two Loops, Three Currents — Both Laws at Once

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Two Loops, Three Currents — Both Laws at Once – विद्युत और चुंबकत्व
Two Loops, Three Currents — Both Laws at Once – विद्युत और चुंबकत्व

A slate circuit board on a lab bench carries two sealed lead-acid batteries, three gold power resistors and three LED ammeters, wired as two loops that share a middle branch. Each ammeter's printed arrow is the direction guessed for its current. Sliders set both batteries and all three resistors, and the circuit is solved exactly the moment anything changes. Press ▶ and a test charge walks loop 1 and then loop 2 while a fence above it rises and falls with the potential — the walk plays once and stops, and the timeline takes you back to any moment.

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Kirchhoff's first law, the junction rule, is conservation of charge: at junction c the currents arriving equal the currents leaving, I₁ + I₂ = I₃. The second law, the loop rule, is conservation of energy: round any closed loop the rises in potential across batteries equal the falls across resistors, ΣV_B = ΣIR. With a guessed direction for every current, loop abcfa gives 6 − 2 = 2I₁ − 3I₂ and loop cdefc gives 2 = 3I₂ + 5I₃. Three equations for three unknowns: I₁ = 1.226 A, I₂ = −0.516 A and I₃ = 0.710 A. The minus sign is information, not a mistake: the middle current really flows down, from + to − inside the 2 V battery, so that battery takes in energy — it is being charged. Energy checks the answer: the 6 V battery gives out 6 × 1.226 = 7.36 W, and the heat in the three resistors plus the charging power 2 × 0.516 W add up to the same 7.36 W. A voltmeter across a and b reads 3.548 V by every route: 6 − 1.226 × 2, or 2 + 0.516 × 3, or 0.710 × 5. A third loop round the outside gives nothing new, because it is the sum of the other two. The same sliders solve related circuits too: 12 V and 5 V batteries with 3 Ω, 2 Ω and 4 Ω give 2 A, −0.5 A and 1.5 A.

Kirchhoff's lawsjunction ruleloop ruleΣI_in = ΣI_outΣV_B = ΣIRmulti-loop circuitcharging a battery3D