Q.Explain the following:
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Lead Acid Battery Recharging – From Intuition to Precision
Think of a lead acid battery like a rechargeable water tank. When you use the battery (discharge), you're letting water flow out to do work. Recharging is the process of pumping that water back in, restoring the tank to its full capacity. But instead of water, we're moving charged particles (ions) and electrons.
The Intuition: Reversing the Chemical Spill
During discharge, the battery's internal chemicals react to produce electricity. Lead dioxide (PbO2) and sponge lead (Pb) react with sulfuric acid (H2SO4) to form lead sulfate (PbSO4) and water. This reaction releases electrons that flow through your circuit.
Recharging is the exact opposite. You force electrons back into the battery by applying an external voltage (from a charger). This reverses the chemical reaction, converting lead sulfate back into lead dioxide and sponge lead, and regenerating sulfuric acid. The battery is "refilled" chemically.
The Precise Statement
Recharging a lead acid battery is the process of applying an external electrical potential (greater than the battery's open-circuit voltage) to force a non-spontaneous reverse of the discharge reaction, restoring the active materials and electrolyte concentration.
The key chemical equation for the overall cell reaction during discharge is:
Pb+PbO2+2H2SO4→2PbSO4+2H2O
During recharging, the external voltage drives the reverse:
2PbSO4+2H2O→Pb+PbO2+2H2SO4
What Happens Step-by-Step
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Charger applies voltage – The charger must supply a voltage slightly higher than the battery's resting voltage (typically 13.8–14.4 V for a 12 V battery). This overcomes the battery's internal resistance and the chemical back-EMF.
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Electrons flow backwards – Electrons are forced into the negative terminal and pulled out of the positive terminal. This reverses the direction of current compared to discharge.
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Lead sulfate dissolves – At the negative plate, PbSO4 gains electrons and converts back to sponge lead (Pb). At the positive plate, PbSO4 loses electrons and reforms PbO2.
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Sulfuric acid regenerates – The sulfate ions (SO42−) released from both plates recombine with hydrogen ions (H+) from water to form H2SO4. The electrolyte's specific gravity rises back to its charged state.
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Gassing (if overcharged) – Once all lead sulfate is converted, further charging splits water into hydrogen and oxygen gas. This is why you see bubbling in a flooded battery – it's a sign of full charge (or overcharging).
Never recharge a lead acid battery with a voltage too high. Excessive voltage causes rapid gassing, water loss, and can damage the plates. The correct charging voltage depends on temperature and battery type (flooded vs. sealed).
Why It's Not Perfect …
Why this formula?
Lead Acid Battery Recharging: Why the Key Formulas Hold
Let's start with the core chemical reaction during recharging — understanding why the formulas work requires knowing what happens inside the battery.
1. The Recharging Reaction (The "Why" Behind the Voltage)
During discharge, lead sulfate (PbSO4) forms on both electrodes. Recharging reverses this:
At the negative terminal (cathode during recharge):
PbSO4(s)+2e−→Pb(s)+SO42−(aq)
At the positive terminal (anode during recharge):
PbSO4(s)+2H2O(l)→PbO2(s)+SO42−(aq)+4H+(aq)+2e−
Overall recharge reaction:
2PbSO4(s)+2H2O(l)→Pb(s)+PbO2(s)+2H2SO4(aq)
Key insight: Recharging regenerates sulfuric acid (H2SO4) — this is why the electrolyte's specific gravity increases during charging.
2. The Voltage Formula: Vcell=2.1+20.059log[SO42−]2[H+]4
Why this formula holds — step by step:
Step 1: Nernst equation for each half-cell
For the negative half-cell (Pb/PbSO₄):
E−=E−∘−20.059log[SO42−]1
For the positive half-cell (PbO₂/PbSO₄):
E+=E+∘−20.059log[SO42−][H+]4
Step 2: Cell voltage = E+−E−
V=(E+∘−E−∘)−20.059log[SO42−][H+]4+20.059log[SO42−]1
Step 3: Simplify using standard potentials
E+∘−E−∘=2.1 V (standard cell voltage). Combining logs:
V=2.1+20.059log[SO42−]2[H+]4
Why this matters for recharging:
- As H2SO4 concentration increases during charging, [H+] rises and [SO42−] rises → the log term becomes more positive → voltage rises.
- This is why a fully charged battery shows ~2.6–2.7 V per cell during charging (higher than the 2.1 V open-circuit voltage).
3. The Charging Current Formula: Icharge=10C (for constant current)
Why "C/10" is the standard rule:
Reasoning:
- C = battery capacity in Ah (e.g., 100 Ah)
- C/10 = 10 A for a 100 Ah battery
Why this rate?
- At higher rates (e.g., C/5), the internal resistance causes excessive heat and gassing (water electrolysis into H2 and O2).
- At lower rates (e.g., C/20), charging takes too long and may not fully reverse sulfation.
- C/10 balances:
- Reaction kinetics: The reverse reaction rate matches the diffusion of ions.
- Thermal management: Heat generated = I2R — kept low enough to avoid damage.
- Gas evolution: At C/10, most current goes to the desired reaction, not water splitting.
Exam tip: For lead-acid, the charging voltage is typically 2.4–2.45 V per cell (not 2.1 V) — this overpotential is needed to overcome the activation energy of the reverse reaction.
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Secondary batteries are rechargeable cells; cell constant is the geometric factor l/A of a conductivity cell; standard electrode potential is an electrode's potential measured against the standard hydrogen electrode under standard conditions. …
(a) Secondary batteries are rechargeable cells. (b) Cell constant =l/A (units cm−1). (c) Standard electrode potential is an electrode's potential relative to the standard hydrogen electrode under standard conditions.
(a) Secondary batteries. These are cells in which the electrode reactions are reversible, so after discharge they can be recharged by passing an external current in the opposite direction, which regenerates the original reactants. They can be used repeatedly. Examples: the lead storage battery (used in vehicles) and the nickel–cadmium (Ni–Cd) cell.
(b) Cell constant. For a conductivity cell, the cell constant is the ratio of the distance l between the electrodes to their cross-sectional area A:
G∗=Al
It has units of cm−1 (or m−1) and links measured conductance G to conductivity κ:
κ=G∗×G=Al×G⇒G∗=Gκ
It is usually found by measuring the conductance of a solution of known conductivity (e.g. standard KCl).
…
- CBSE 2026Set ANNUAL1 markMCQQ.The cell which is used in automobiles and inverters are(a) Lead storage battery(b) Nickel cadmium battery(c) Dry cell(d) Fuel cell
›Reveal solutionSolution
The lead storage (lead-acid) battery is a rechargeable secondary cell widely used in vehicles and inverters because it can deliver high current and be recharged repeatedly.
The lead storage battery consists of a lead anode and a grid of lead packed with lead dioxide (PbO2) as cathode, with dilute H2SO4 as electrolyte. During discharge, both electrodes get converted to PbSO4, and during charging (by an external current, as in a running car engine or an inverter's mains supply) the reaction is reversed.
- Nickel-cadmium battery: used in small rechargeable electronic devices, more expensive, longer-lasting but less common in vehicles. …
- CBSE 2024Set A11 markMCQQ.During discharging of lead storage battery the correct half-cell reaction is ;(a) At anode, Pb is converted into PbO2(b) At anode, Pb is converted into PbSO4(c) At anode, PbO2 is converted into PbSO4(d) At cathode, Pb is converted into PbSO4
›Reveal solutionSolution
On discharge, at the anode Pb is oxidised to PbSO4 — option (b).
In a lead storage (lead–acid) battery on discharge:
Anode (oxidation): Pb(s)+SO42−(aq)→PbSO4(s)+2e−
Cathode (reduction): PbO2(s)+4H++SO42−+2e−→PbSO4(s)+2H2O …
- CBSE 2022Set E1 markMCQQ.What happens when a lead storage battery is charged ?(a) Lead dioxide dissolves(b) Sulphuric acid is regenerated(c) Lead electrode becomes coated with lead sulphate(d) The concentration of sulphuric acid decreases
›Reveal solutionSolution
Charging a lead storage battery reverses the discharge reaction, regenerating Pb, PbO2 and sulphuric acid.
During discharge both electrodes turn into PbSO4 and H2SO4 is consumed:
Pb + PbO2 + 2H2SO4 -> 2PbSO4 + 2H2O.
Charging drives this reaction backwards (electrolysis):
2PbSO4 + 2H2O -> Pb + PbO2 + 2H2SO4.
So on charging: PbSO4 is converted back to Pb (cathode) and PbO2 (anode), and sulphuric acid is regenerated (its concentration and density rise again).
…
- CBSE 2020Set ANNUAL1 markQ.What is a secondary cell?
›Reveal solutionSolution
A secondary cell is a rechargeable galvanic cell whose reaction can be reversed by an external current, letting it be used repeatedly.
Concept. Galvanic cells are of two types. A primary cell (e.g. dry cell) works only until the reactants are used up and cannot be recharged. A secondary cell can be recharged.
Explanation. In a secondary cell, once discharged, it is reconnected to an external DC source that drives the cell reaction backward, regenerating the original reactants. Thus the same cell can be discharged and charged many times.
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- CBSE 2018Set ANNUAL1 markQ.Fill in the blank: In lead storage cell ______ works as electrolyte.
›Reveal solutionSolution
The electrolyte in a lead storage battery is dilute sulphuric acid.
A lead storage cell (car battery) uses a lead (Pb) anode and a lead dioxide (PbO2) cathode dipped in dilute sulphuric acid. During discharge:
- Anode: Pb + SO4^2- -> PbSO4 + 2e-
- Cathode: PbO2 + 4H+ + SO4^2- + 2e- -> PbSO4 + 2H2O …
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