How Lead-Acid Batteries Age and Fail

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No electro-chemical battery lasts forever, and that is true of every battery type across the range. The trick is to treat them properly, and replace them before they fail, often at time that is inconvenient. The three main ways how lead-acid batteries age include positive grid corrosion, sulfation, and internal short circuiting.

Unpacking Three Ways How Lead-Acid Batteries Age

Positive Grid Corrosion in Lead-Acid Batteries

Positive grid corrosion occurs in lead-acid batteries as the positive plates gradually convert permanently to lead oxide. This natural chemical process speeds up during high temperatures, overcharging and excessive cycling. The end result may include (a) physical expansion of plates, (b) increased internal resistance, (c) reduced power capability, and (d) eventual battery failure.

How Lead-Acid Batteries Age With Grid Sulfation 

The active lead, and lead dioxide plates naturally react with the sulfuric acid electrolyte during discharging, to form soft lead sulfate. This process reverses out during recharging, to complete the cycle.

However, and here’s the catch, permanently-damaging hard crystalline sulfate can form during these unfavorable operating conditions:

  • If the lead-acid battery remains fully discharged.
  • If charging is insufficient to fully charge the battery.
  • If any routine maintenance is not performed.

The long term damage that occurs from sulfation may include (a) reduced capacity, (b) increased internal resistance, and (c) physical damage to the plates.

Internal Short Circuiting in Lead-Acid Batteries

Internal short circuits often develop gradually, and may be difficult to detect during the early stages. Megger suggests the following two possibilities to complete this summary of how lead-acid batteries age:

  • Hard shorts that occur as a result of rogue paste lumps formed during faulty manufacturing.
  • Soft shorts from very deep discharging, during which the lead starts dissolving into the electrolyte.

The long term damage that occurs may include (a) immediate capacity loss, (b) excessive heat generation, (c) potential thermal runaway, (d) fire risks in severe cases, and (e) release of hazardous gases.

We manufacture our gel-type lead-acid batteries to the highest international standards. Receive online advice on how to use them correctly and for optimal performance by following the above link.

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About Author

I have been writing about batteries and energy storage for more than ten years, and have published over 4,000 articles on this website. During that time, I have researched developments across lead-acid, lithium-ion, sodium-ion, flow batteries, and emerging energy-storage technologies. My goal is to explain complex battery concepts in clear, practical language that anyone can understand. My writing career began unexpectedly after leaving the corporate world. What started as a search for a new direction gradually became a fascination with batteries, renewable energy, and the science that powers modern life. Writing may not have made me wealthy, but it has given me the opportunity to explore an industry that continues to evolve in remarkable ways.

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