Two Batteries Head to Head — Which One Is Charging?

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Two Batteries Head to Head — Which One Is Charging? – Listrik dan magnet
Two Batteries Head to Head — Which One Is Charging? – Listrik dan magnet

Two sealed lead-acid batteries, 6 V at the back and 12 V at the front, sit in one loop on a circuit board with a 10 Ω and an 8 Ω power resistor. They are connected so that they push against each other: the 6 V battery pushes charge clockwise, the 12 V battery anticlockwise. A small monitor clipped to each battery reports whether it is charging or discharging, and an ammeter whose printed arrow points clockwise measures the current. Pick an assumed direction for the current, then press play: a test charge walks the loop in that direction, a fence above it follows the potential, and a chart adds up the energy given out by one battery, turned into heat in the resistors and stored in the other battery.

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A single loop has no junctions, so Kirchhoff's first law has nothing to say; the second law, ΣV_B = ΣIR, gives one equation for the one unknown current. Choose a loop direction and an assumed current direction (here both clockwise), and count each battery as positive if it pushes the way you go round and negative if it pushes against it: (V_B)₁ − (V_B)₂ = I(R₂ + R₁), so 6 − 12 = I(8 + 10) and I = −6/18 = −0.333 A. The minus sign is the answer, not a mistake: the current really flows anticlockwise, 0.333 A. It passes through the 12 V battery from − to +, so that battery gives out energy at (V_B)₂I = 12 × 0.333 = 4 W, and through the 6 V battery from + to −, against its push, so that battery takes in energy at (V_B)₁I = 6 × 0.333 = 2 W: it is being charged. The resistors turn I²(R₁ + R₂) = 0.333² × 18 = 2 W into heat. Power produced equals power consumed, 4 W = 2 W + 2 W, so in 10 s 40 J are given out, 20 J become heat and 20 J are stored. Assume the anticlockwise direction instead and the same equation gives +0.333 A: the physics does not depend on the guess.

Kirchhoff's second lawsingle loopΣV_B = ΣIRnegative currentcharging a batterypower produced = power consumedconservation of energy3D