Resources to Boost Your Battery I.Q.

Technical Manuals

Technical Manuals: Technical Manual BCIS-09C: Recommended Practice to Evaluate Electrolyte Retention
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Technical Manuals: Technical Manual BCIS-11: Standardized Testing Methods for Polypropylene Resin
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Technical Manuals: Technical Manual BCIS-12A: BCI Recommended Test Procedures For Leady Oxide
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Technical Manuals: Technical Manual BCIS-12B: BCI Recommended Test Procedures For Electrode Active
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Technical Manuals: Technical Manual BCIS-13: Specification Reference for Standby Batteries
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Technical Manuals: Technical Manual BCIS-14: Determine Capacity of Industrial Storage Batteries
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Technical Manuals: Technical Manual BCIS-15: Life Cycle Testing of Lead Industrial Storage Battery
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Technical Manuals: Technical Manual BCIS-16: Standard for Deep Cycle Battery Chargers
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Technical Manuals: Technical Manual BCIS-17: Procedures for Evaluating Plastic Jars and Covers
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Technical Manuals: Technical Manual BCIS-20: Sulfuric Acid For Use in Preparing Electrolyte
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Technical Manuals: Technical Manual BCIS-21: Specification for Non-Spillable Certification Valve
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Technical Manuals: Technical Manual BCIS-22: Partial State of Charge Life Test, Industrial Storage
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Dr. John Uhrie, Doe Run

With improved cooperation among stakeholders, increased research funding, and by following the circular economy example of lead batteries, the U.S. can regain domestic supply chain security and advance a low-carbon and renewable energy future.

Dr. John Uhrie, Vice President of Exploration, Research and Technical Development, The Doe Run Company