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Lesson Sources and induction · Batteries in the field

Battery connections

Need more voltage? Connect cells in series — voltages add, ampere-hours stay the same. Need more runtime/current capacity? Connect in parallel — voltage stays the same, Ah add. Series–parallel mixes both. Wrong combination blows chargers, balances one weak cell into fire, or leaves you with 12 V equipment on a 24 V string — know the rules before you twist cables.

1

One cell vs many — why connections exist

A single lead-acid cell ≈ 2 V — too low for most loads. Manufacturers weld six cells for 12 V; data centers stack 24 V and 48 V racks. When you field-assemble strings from blocks or 2 V cells, how you jumper them sets system voltage and capacity.

Two numbers to track:

QuantitySymbolWhat it means
Nominal voltageVPressure pushing current
Ampere-hour capacityAhEnergy bucket size at rated discharge

Connections change V, Ah, or both — never confuse them.

2

Series connection — voltage adds

Series: positive of one battery → negative of next; load across total string ends.

Example: four 12 V / 60 Ah blocks in series:

  • Voltage: 12 + 12 + 12 + 12 = 48 V
  • Capacity: still 60 Ah (same plate area per string path)

Think of series as stacking cells inside one big battery — more pressure, same tank size.

Critical rules:

  • All units should be same Ah and same state of charge when building a new string.
  • One weak cell in series limits the whole string under load.
  • Fuse and wire for total voltage, not single-block voltage.
3

Parallel connection — Ah adds

Parallel: all positives together, all negatives together; load across common rails.

Same four 12 V / 60 Ah blocks in parallel:

  • Voltage: 12 V (unchanged)
  • Capacity: 60 + 60 + 60 + 60 = 240 Ah

Think of parallel as widening the plate area — same pressure, bigger tank.

Never parallel batteries of different nominal voltages. The higher-voltage unit forces current into the lower — overheating, venting, explosion risk.

Even same voltage: avoid paralleling old and new or different chemistries without engineering review — unequal internal resistance causes circulating current.

4

Series–parallel — both at once

Split blocks into matched groups, series each group for target voltage, then parallel the groups for capacity.

Example: four 12 V / 60 Ah → two strings of two:

  • Each string: 12 + 12 = 24 V / 60 Ah
  • Parallel the two strings: 24 V / 120 Ah

Solar and UPS designs often use series strings to reach charge voltage, then parallel strings for current. Blocking diodes or fuses per string may be required so a failed string does not back-feed others — follow one-line diagram.

5

Worked comparison table

Starting point: four identical 12 V, 60 Ah blocks.

ConnectionTerminal VAh capacityTypical use
Series (4)48 V60 AhDC plant rail, some lift trucks
Parallel (4)12 V240 AhLong runtime telecom, RV house bank
2S2P24 V120 AhMedium voltage + longer runtime

Math check: total stored energy (idealized) scales with V × Ah. Series quadruples V; parallel quadruples Ah; 2S2P doubles both → 4× energy vs one block.

6

Cabling, balance, and maintenance

  • Equal-length parallel cables where possible so each string shares load.
  • Torque terminals to spec; use proper lugs — high Ah strings need fat copper.
  • After assembly, verify polarity before first close — reverse on series strings can damage chargers and loads.
  • Monitor mid-string voltage during load on long series packs to catch weak cells early.
  • Label the bank: total V, Ah, date, chemistry.

For lead-acid, recharge the whole bank with a charger rated for total voltage and bank Ah, not one block at a time unless intentionally isolated.

7

Solar tie-in preview

Photovoltaic strings follow the same rules: cells in series raise voltage to charge a 12 V battery (~14 V needed); parallel strings raise charge current. A 0.5 V silicon cell needs many in series; duplicate strings in parallel hit amp target — same logic as battery banks (detailed in the next lesson on other sources).

8

Field case

Situation. Technician parallels a new 12 V AGM with three-year-old floor-scrubber batteries “to get through the week.” Within hours the new battery is hot and bulging.

Cause. Lower internal resistance on the new pack accepted charge current from the older paralleled units and acted as a load for the weak ones — uncontrolled circulating current.

Applied lesson. Parallel only matched age, chemistry, and state of charge. Replace the set or isolate strings with fuses — don’t mix fresh with tired.

In the field

Symptom

Wrong equipment voltage; bank dies fast; one block overheats

Where to look

Jumper layout, label, charger output V, per-block voltage under load

Likely causes

  1. Series count wrong
  2. mixed voltages in parallel
  3. weak cell
  4. unequal cable lengths

What to measure

  1. Total V, each block V under load, charge current per string

What not to do

  • Parallel different nominal V
  • add one new block to old parallel bank

Checklist

  • Series → V adds, Ah unchanged
  • Parallel → V same, Ah adds
  • I can compute 2S2P from four identical blocks
  • I refuse cross-voltage parallel connections
  • I match chemistry, Ah, and charge state when paralleling
  • I size wire and fuses for total bank voltage/current

Common mistakes

Symptom Typical cause Action
24 V load on “12 V bank” Two blocks series-fed as parallel Re-jumper; verify with meter
One swollen block in parallel set Mismatch / circulation Replace matched set
Charger fault on series string Charger V too low for count Set charger to total V
Uneven aging Single block always weak Replace group; don’t swap one