Lesson Sources and induction · Batteries in the field
Lead-acid batteries
The lead-acid cell is the workhorse secondary battery: lead negative plate, lead dioxide positive plate, dilute sulfuric acid electrolyte. Each cell delivers about 2 volts; six cells make a 12 V automotive battery. Specific gravity of the acid tells state of charge; charging reverses the discharge chemistry. Overcharge, heat, and shed sulfate flakes destroy capacity — and hydrogen off-gassing is explosive.
Anatomy of one cell
One lead-acid cell contains:
| Part | Material | Role |
|---|---|---|
| Negative plate | Spongy lead (Pb) | Releases electrons on discharge |
| Positive plate | Lead dioxide (PbO₂) | Accepts electrons on discharge |
| Electrote | Dilute sulfuric acid (H₂SO₄) | Ion carrier; strength tracks charge |
Nominal cell voltage ≈ 2 V. Industrial strings stack many cells for 24 V, 48 V, and higher DC systems.
Multiple plate sets interleaved increase surface area → higher ampere-hour capacity without changing chemistry.
Specific gravity and the hydrometer
Specific gravity compares electrolyte density to water (water = 1.000). Fresh acid for service often reads about 1.215 – 1.280 depending on application and manufacturer.
A hydrometer (or refractometer in some shops) samples electrolyte from each cell. Higher acid concentration → higher gravity → more charged.
As the cell discharges, acid is consumed and water forms → gravity drops. That is why gravity is a classic state-of-charge indicator — when chemistry is still healthy.
Discharge cycle — what changes in the jar
With a load connected:
- Negative plate: lead atoms lose electrons → Pb²⁺ ions combine with sulfate (SO₄²⁻) → lead sulfate (PbSO₄) coats the plate.
- Positive plate: lead dioxide gains electrons; oxygen leaves the compound; Pb²⁺ combines with sulfate → PbSO₄ on the positive plate too.
- Electrolyte: two hydrogen ions (H⁺) react with liberated oxygen → water forms; acid weakens.
Both plates trend toward lead sulfate; electrolyte gets more dilute. Terminal voltage falls under load as internal resistance and chemistry shift.
Charging cycle — reversing the reaction
Charger positive to battery positive, negative to negative. Charger voltage must exceed battery terminal voltage to push current into the cell.
During charge:
- At the negative plate, hydrogen forms; sulfate returns to acid; PbSO₄ converts back toward lead.
- At the positive plate, water breaks down; oxygen recombines with lead dioxide chemistry; PbSO₄ converts back toward PbO₂.
- Sulfuric acid strength rises again — hydrometer reading climbs toward fully charged values.
Stop or taper charge per manufacturer — “more amps forever” is not better.
Charging rules and hazards
General guideline: charge current ≤ 1/10 of ampere-hour rating unless data sheet says otherwise (80 Ah → ≤ 8 A).
Overcharge risks:
- Excess hydrogen (highly explosive) — no sparks, flames, or unvented arcs near batteries on charge
- Heat — many designs limit about 110 °F (43 °C) on the case
- Sulfate flakes breaking off plates, falling to the bottom → permanent capacity loss; flakes touching plates → shorted cell
Mechanical shock and high charge rate can shed sulfate the same way. Sealed gel types immobilize electrolyte and use pressure-relief valves (~35 psi) but still need correct charge voltage.
Ratings: Ah, CCA, and testing
Ampere-hour (Ah): often measured at 20-hour rate at 80 °F — e.g., 4 A for 20 h = 80 Ah.
Cold-cranking amps (CCA): max initial current at 0 °F (−18 °C) for engine starting — not the same as Ah.
Hydrometer: quick per-cell state-of-charge if plates are healthy. Low gravity after full charge → sulfated or damaged plates.
Load test: apply about 3 × Ah as test current; 12 V battery should stay above 80% of nominal (≥ 9.6 V on 12 V) for 3 minutes. Reveals weak cells better than open-circuit voltage alone.
Other secondary types — one glance
| Type | Per-cell V | Notes |
|---|---|---|
| Nickel-iron (Edison) | ~1.2 | Tough deep discharge; high cost; high internal R |
| Nickel-cadmium | ~1.2 | High surge; “memory” if shallow cycled |
| Nickel-metal hydride | ~1.2 | Higher energy than NiCd; less memory |
| Lithium-ion | ~3.6 | Flat discharge curve; needs dedicated CC/CV charger |
Lead-acid remains default for engine start, UPS, and many lift trucks because of cost, surge capability, and recyclability.
Field case
Situation. A forklift battery room smells sharp; charger still in bulk mode overnight. Morning: one cell boils dry, gravity never reaches spec, truck dies mid-shift.
Diagnosis path. Overcharge raised temperature, gassed hydrogen and oxygen, shed sulfate, and stratified electrolyte. Hydrometer after a “full” charge still read low — classic damaged plate or shorting debris, not “needs more amps.”
Applied lesson. Follow Ah/10 charge guidance, monitor temperature, equalize only when manufacturer allows, and load-test before blaming the truck controller.
In the field
Symptom
Won’t hold load; one cell low in gravity after charge
Where to look
Per-cell hydrometer, charger profile, terminal corrosion, electrolyte level
Likely causes
- Sulfation, shorted cell from sediment, overcharge, undercharge chronic, bad cell
What to measure
- Specific gravity all cells
- loaded voltage
- charge current vs Ah rating
What not to do
- Open flames
- “boost” charge at unlimited amps
- ignore single weak cell in string
Checklist
- I name Pb, PbO₂, and H₂SO₄ roles
- I explain discharge → PbSO₄ + weaker acid
- I explain charge polarity and voltage must exceed battery
- I use hydrometer for state of charge on healthy plates
- I state Ah vs CCA difference
- I cite 1/10 Ah charge rule and hydrogen hazard