BU-1103: Bibliography
Advanced Configuration and Power Interface (ACPI). http://www.acpi.info
Allgemeiner Deutscher Automobil-Club e.V. (ADAC). 2008 issuefor the year 2007.
Angelantoni, André, PostPeakLiving.com. http://www.postpeakliving.com
Argonne National Laboratory, (2008, January). Developments in lithium-ion battery technology in the People’s Republic of China. Oak Rige, TN: U.S. Department of Energy.
Avicenne Energy, market research and consulting firm; general battery information
Barnes, N.M., Hodgman, J.S., Leclair, R.A., Mullersman, R.H., Perman, G.T., Weinstock, I.B., & Wentzel, F.W., Jr. (1979). The sealed lead battery handbook.Gainsville, FL: General Electric Company.
Battelle-Geneva R&D Center. Pioneering work on a new generation of nickel-metal-hydride batteries under Klaus D. Beccu, Dr.-Ing.
Batteries and Energy Storage Technology Magazine(BEST Magazine). Sundry information on battery developments, editor Gerry Woolf. http://www.bestmag.co.uk
Battery Council International. (2010). Failure modes study: A report of the BCI Technical Subcommittee on Battery Failure Modes.Chicago, IL: Battery Council International.
Berndt, D. (1993). Maintenance-free batteries: Lead-acid, nickel cadmium, nickel-hydride: A handbook of battery technology.New York: Wiley.
Bonnefoi, L., Simon, P., Fauvarque, J.F., Sarrazin, C., Sarrau, J.F., & Lailler, P. (1999). Multi electrode prismatic power prototype carbon/carbon supercapacitors. Journal of Power Sources,83, 162-169.
Boston Consulting Group (BCG). (2010). Batteries for electric cars: Challenges, opportunities, and the outlook to 2020. http://www.bcg.com/documents/file36615.pdf
Brotherston, I.D., & Loveday, D.C. (2008, June 8-11). Proceedings of the 38th Power Sources Conference,Cherry Hill, NJ, USA.
Buchmann, Isidor. (2010). Author of https://www.BatteryUniversity.com
Center for Automotive Research at Ohio State University in collaboration with Oak Ridge National Laboratory and the National Institute of Standards Technology. How batteries grow old. (2010 Oct.).
Choi, S.,& Lim, H. (2002). Factors that affect cycle life and possible degradation mechanisms of lithium ion batteries based LiCoO2. Journal of Power Sources, 111.
Dahn, Jeff, & Ehrlich, Grant M. (2010). Lithium-ion batteries. In David Linden & Thomas B. Reddy (Eds.), Linden's handbook of batteries (4th ed.) (chap. 26). New York: McGraw-Hill.
Design & Elektronik – Entwicklerforum (22) Batterien & Ladekonzepte, Munich, Germany
Dibner, Bern. (1964). Alessandro volta and the electric battery. Danbury, CT: Grolier Publishing, Franklin Watts, Inc
Electropaedia, Barie Lawson, Woodbank Communications Ltd. UK
Energizer Applications support, presentation by Dan Durbin at Medical Device & Manufacturing; (MD&M) West, Anaheim, CA, 15 February 2012
EV Li-ion Battery Forum. http://www.dufresneresearch.co...
Frost & Sullivan. (2009). Overview on global battery markets.
Exponent, Inc.; presentation by Quinn Horn, Ph.D., P.E. as Medical Device & Manufacturing (MD&M) West, Anaheim, CA, 15 February 2012
Fire Protection Research Foundation (The), Quincy Massachusetts, USA; Lithium-Ion Battery Hazard and use Assessment (2011), Celina Mikaloajczak, Michael Kahn, Kevin White, Richard Thomas Long.
Gates Energy Products (1992). Rechargeable battery applications handbook. Boston, MA: Butterworth-Heinemann.
Grant, J.C. (Ed.). (1975). Nickel-cadmium battery application engineering handbook (3rd ed.). Gainesville, FL: General Electric Company.
Greenwich Strategy, LLC, Summary of Findings on Viability of Tesla’s Gen III, May 2014
Gyuk, Imre, Mgr. Energy Storage System Program of U.S. Department of Energy. Comments of recycling roughly one million usable lithium-ion batteries per year (2014).
International Energy Agency (IEA). (2009). Technology roadmaps: Electric and plug-in hybrid electric vehicles (brochure).
Jossen, (Andreas). (2015, March) 22th Design & Elektronik-Entwicklerforum, TU München
Journal of Power Sources, 191 (2009) 127-133 by Elsevier Journals.
Lackner, J.L., King, T.E., & Haines, R.L. (1969). Battery design for aerospace power supplies. Canadian Aeronautics and Space Journal,15(10).
Linden, D. (Ed.). (1995). Handbook of batteries (2nd ed.). New York: McGraw-Hill.
Lu, Z. (1998). AC impedance studies on sealed nickel-metal hydride batteries over cycle life in analog and digital operations. Electrochimica Acta,43, 3333-3342.
Miller, John. (2010). Capacitor talk on supercapacitors in the Batteries & Energy Storage Technologies Magazine. UK.
NASA (2014) Aerospace Battery Workshop, Jet propulsion Laboratory, California Institute of Technology, Yarney Technical Products, Inc.
Nikiforuk, Andrew. (2008). Tar sands: Dirty oil and the future of a continent. Vancouver, BC: Greystone Books.
Orazem, M.E. and Tribollet, B. Electrochemical Impedance Spectroscopy, John Wiley & Sons, Hoboken, New Jersey, 2008.
Perez, R.A. (1985). The complete battery book. Philadelphia, PA: Tab Books.
Qian, W., Wilkinson, D.P., Shen, J., Wang, H., Zhang, J. (2006, March). Architecture for portable direct liquid fuel cells, Journal of Power Sources. I54(1), 202-213.
Rechargeable Battery Association (PRBA). http://www.prba.org
Sanyo Electric Co. Ltd. (1997). Cadnica engineering handbookSF-9785ND.
Shmuel De-Leon Energy, Ltd. Sundry information on battery developments as part of published online information on http://www.sdle.co.il and http://www.batteriesdatabase.com
Sieber, A., & Weck, C. (2004). What’s the difference between DVB-H and DAB in the mobile environment? EBU Technical Review. Solarbuzz. http://www.solarbuzz.com
Sinn, Hans-Werner, presentation at VHS Erding, Munich, Germany (2021)
Smart Battery System Implementers Forum. http://www.sbs-forum.org
Spurgeon, B. (1999, March 18). Can 160-year-old invention transform motor vehicles? International Herald Tribune, page 10.
Steinrötter, Michael. (2011) Carbon-based Anodes, a Rare Earth Situation? Retrieved from Batteries & Energy Storage Technology, Winter 2011.
Tanahashi, I., Yoshida, A., & Nishino, A. (1990). Preparation and characterization of activated carbon tablets for electric double-layer capacitors. B. Chem. Soc., 63(10), 2755-2758.
Technische Universität München (TUM), Dipl.-Ing. Univ. Peter Keil, Aging of Lithium-Ion Batteries in Electric Vehicles (2017), peer reviewed by the Faculty of Electronic and Information Technology. http://mediatum.ub.tum.de/doc/1355829/document.pdf
Thomas, C.E. (2009). Fuel cell and battery electric vehicles compared. International Journal of Hydrogen Energy,34(15), 6005-6020. http://www.elsevier.com
Union Carbide Corporation. (1982). Eveready battery engineering data:4. Danbury, CT: Union Carbide Corporation, Battery Products Division.
U.S. Department of Energy FreedomCAR & Vehicle Technologies Program. Hybrid electric vehicle end-of-life testing. James Francfort, Donald, Karner, Ryan Harkins, Joseph Tardiolo. 2006 test at the Idaho National
Laboratory Transportation Technology Department, Idaho Falls, Idaho 83415, prepared for the U.S. Department of Energy Assistant Secretary for Energy Efficiency and Renewable Energy under DOE Idaho Operations
Office.
Vincent, C.A., et al. (1984). Modern batteries: An introduction to electromechanical power sources. London: Edward Arnold.
von Wentzel, Constantin. (2008). How lead acid batteries work. Comparing marine battery technologies. http://www.vonwentzel.net/Battery/00.Glossary
Weydanz, W. (Wolfgang). (2015, March) 22th Design & Elektronik-Entwicklerforum, Siemens AG Corporate Technology.
Wikipedia.Online encyclopedia containing information from various contributors.
Zhang, L. (1998). AC impedance studies on sealed nickel metal hydride batteries over cycle life in analog and digital operations, Electrochimica Acta, 43. Zheng, J.P., & Jow, T.R. (1995). A new charge storage
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Last Updated: 10-Jul-2019
Batteries In A Portable World
The material on Battery University is based on the indispensable new 4th edition of "Batteries in a Portable World - A Handbook on Rechargeable Batteries for Non-Engineers" which is available for order through Amazon.com.
Find An Article
Table of Contents
-
Introduction 4>
- BU-001: Sharing Battery Knowledge
- BU-002: Introduction
- BU-003: Dedication
-
Crash Course on Batteries 4>
- BU-101: When Was the Battery Invented?
- BU-102: Early Innovators
- BU-103: Global Battery Markets
- BU-103a: Battery Breakthroughs: Myth or Fact?
- BU-104: Getting to Know the Battery
- BU-104a: Comparing the Battery with Other Power Sources
- BU-104b: Battery Building Blocks
- BU-104c: The Octagon Battery – What makes a Battery a Battery
- BU-105: Battery Definitions and what they mean
- BU-106: Advantages of Primary Batteries
- BU-106a: Choices of Primary Batteries
- BU-107: Comparison Table of Secondary Batteries
-
Battery Types 4>
- BU-201: How does the Lead Acid Battery Work?
- BU-201a: Absorbent Glass Mat (AGM)
- BU-201b: Gel Lead Acid Battery
- BU-202: New Lead Acid Systems
- BU-203: Nickel-based Batteries
- BU-204: How do Lithium Batteries Work?
- BU-205: Types of Lithium-ion
- BU-206: Lithium-polymer: Substance or Hype?
- BU-208: Cycling Performance
- BU-209: How does a Supercapacitor Work?
- BU-210: How does the Fuel Cell Work?
- BU-210a: Why does Sodium-sulfur need to be heated
- BU-210b: How does the Flow Battery Work?
- BU-211: Alternate Battery Systems
- BU-212: Future Batteries
- BU-214: Summary Table of Lead-based Batteries
- BU-215: Summary Table of Nickel-based Batteries
- BU-216: Summary Table of Lithium-based Batteries
- BU-217: Summary Table of Alternate Batteries
- BU-218: Summary Table of Future Batteries
-
Packaging and Safety 4>
- BU-301: A look at Old and New Battery Packaging
- BU-301a: Types of Battery Cells
- BU-302: Series and Parallel Battery Configurations
- BU-303: Confusion with Voltages
- BU-304: Why are Protection Circuits Needed?
- BU-304a: Safety Concerns with Li-ion
- BU-304b: Making Lithium-ion Safe
- BU-304c: Battery Safety in Public
- BU-305: Building a Lithium-ion Pack
- BU-306: What is the Function of the Separator?
- BU-307: How does Electrolyte Work?
- BU-308: Availability of Lithium
- BU-309: How does Graphite Work in Li-ion?
- BU-310: How does Cobalt Work in Li-ion?
- BU-311: Battery Raw Materials
-
Charge Methods 4>
- BU-401: How do Battery Chargers Work?
- BU-401a: Fast and Ultra-fast Chargers
- BU-402: What Is C-rate?
- BU-403: Charging Lead Acid
- BU-404: What is Equalizing Charge?
- BU-405: Charging with a Power Supply
- BU-406: Battery as a Buffer
- BU-407: Charging Nickel-cadmium
- BU-408: Charging Nickel-metal-hydride
- BU-409: Charging Lithium-ion
- BU-409a: Why do Old Li-ion Batteries Take Long to Charge?
- BU-409b: Charging Lithium Iron Phosphate
- BU-410: Charging at High and Low Temperatures
- BU-411: Charging from a USB Port
- BU-412: Charging without Wires
- BU-413: Charging with Solar, Turbine
- BU-413a: How to Store Renewable Energy in a Battery
- BU-414: How do Charger Chips Work?
- BU-415: How to Charge and When to Charge?
-
Discharge Methods 4>
- BU-501: Basics about Discharging
- BU-501a: Discharge Characteristics of Li-ion
- BU-502: Discharging at High and Low Temperatures
- BU-503: Determining Power Deliver by the Ragone Plot
- BU-504: How to Verify Sufficient Battery Capacity
-
"Smart" Battery 4>
- BU-601: How does a Smart Battery Work?
- BU-602: How does a Battery Fuel Gauge Work?
- BU-603: How to Calibrate a “Smart” Battery
- BU-603a: Calibrating SMBus Batteries with Impedance Tracking
- BU-604: How to Process Data from a “Smart” Battery
- Testing and Calibrating Smart Batteries
-
From Birth to Retirement 4>
- BU-701: How to Prime Batteries
- BU-702: How to Store Batteries
- BU-703: Health Concerns with Batteries
- BU-704: How to Transport Batteries
- BU-704a: Shipping Lithium-based Batteries by Air
- BU-704b: CAUTION & Overpack Labels
- BU-704c: Class 9 Label
- BU-704d: NFPA 704 Rating
- BU-704e: Battery for Personal and Fleet Use
- BU-705: How to Recycle Batteries
- BU-705a: Battery Recycling as a Business
- BU-706: Summary of Do's and Don'ts
-
How To Prolong Battery Life 4>
-
General 4>
- BU-801: Setting Battery Performance Standards
- BU-801a: How to Rate Battery Runtime
- BU-801b: How to Define Battery Life
- BU-802: What Causes Capacity Loss?
- BU-802a: How does Rising Internal Resistance affect Performance?
- BU-802b: What does Elevated Self-discharge Do?
- BU-802c: How Low can a Battery be Discharged?
- BU-803: Can Batteries Be Restored?
- BU-803a: Cell Matching and Balancing
- BU-803b: What causes Cells to Short?
- BU-803c: Loss of Electrolyte
-
Lead Acid 4>
- BU-804: How to Prolong Lead-acid Batteries
- BU-804a: Corrosion, Shedding and Internal Short
- BU-804b: Sulfation and How to Prevent it
- BU-804c: Acid Stratification and Surface Charge
- BU-805: Additives to Boost Flooded Lead Acid
- BU-806: Tracking Battery Capacity and Resistance as part of Aging
- BU-806a: How Heat and Loading affect Battery Life
-
Nickel-based 4>
- BU-807: How to Restore Nickel-based Batteries
- BU-807a: Effect of Zapping
-
Lithium-ion 4>
- BU-808: How to Prolong Lithium-based Batteries
- BU-808a: How to Awaken a Sleeping Li-ion
- BU-808b: What Causes Li-ion to Die?
- BU-808c: Coulombic and Energy Efficiency with the Battery
- BU-809: How to Maximize Runtime
- BU-810: What Everyone Should Know About Aftermarket Batteries
- BU-811: Assuring Minimum Operational Reserve Energy (MORE)
-
Battery Testing and Monitoring 4>
- BU-901: Fundamentals in Battery Testing
- BU-901b: How to Measure the Remaining Useful Life of a Battery
- BU-902: How to Measure Internal Resistance
- BU-902a: How to Measure CCA
- BU-903: How to Measure State-of-charge
- BU-904: How to Measure Capacity
- BU-905: Testing Lead Acid Batteries
- BU-905a: Testing Starter Batteries in Vehicles
- BU-905b: Knowing when to Replace a Starter Battery
- BU-906: Testing Nickel-based Batteries
- BU-907: Testing Lithium-based Batteries
- BU-907a: Battery Rapid-test Methods
- BU-907b: Advancements in Battery Testing
- BU-907c: Cloud Analytics in Batteries
- BU-908: Battery Management System (BMS)
- BU-909: Battery Test Equipment
- BU-910: How to Repair a Battery Pack
- BU-911: How to Repair a Laptop Battery
- BU-915: Testing Battery with EIS
- BU-916: Deep Battery Diagnostics
- BU-917: In Search for Performance Transparency with Batteries
- BU-918: Battery Endurance Plan
-
Amazing Value of a Battery 4>
- BU-1001: Batteries in Industries
- BU-1002: Electric Powertrain, then and now
- BU-1002a: Hybrid Electric Vehicles and the Battery
- BU-1002b: Environmental Benefit of the Electric Powertrain
- BU-1003: Electric Vehicle (EV)
- BU-1003a: Battery Aging in an Electric Vehicle (EV)
- BU-1004: Charging an Electric Vehicle
- BU-1005: Does the Fuel Cell-powered Vehicle have a Future?
- BU-1006: Cost of Mobile and Renewable Power
- BU-1007: Net Calorific Value
- BU-1008: Working towards Sustainability
- BU-1009: Battery Paradox - Afterword
-
Information 4>
- BU-1101: Glossary
- BU-1102: Abbreviations
- BU-1103: Bibliography
- BU-1104: About the Author
- BU-1105: About Cadex (Sponsor)
- BU-1106: Author's Creed
- BU-1107: Disclaimer
- BU-1108: Copyright
-
Learning Tools 4>
- BU-1501 Battery History
- BU-1502 Basics about Batteries
- BU-1503 How to Maintain Batteries
- BU-1504 Battery Test & Analyzing Devices
- BU-1505 Short History of Cadex
-
Battery Articles 4>
- Perception of a Battery Tester
- Green Deal
- Risk Management in Batteries
- Predictive Test Methods for Starter Batteries
- Why Mobile Phone Batteries do not last as long as an EV Battery
- Battery Rapid-test Methods
- How to Charge Li-ion with a Parasitic Load
- Ultra-fast Charging
- Assuring Safety of Lithium-ion in the Workforce
- Diagnostic Battery Management
- Tweaking the Mobile Phone Battery
- Battery Test Methods
- Battery Testing and Safety
- How to Make Battery Performance Transparent
- Battery Diagnostics On-the-fly
- Making Battery State-of-health Transparent
- Batteries will eventually die, but when and how?
- Why does Pokémon Go rob so much Battery Power?
- How to Care for the Battery
- Tesla’s iPhone Moment — How the Powerwall will Change Global Energy Use
- Painting the Battery Green by giving it a Second Life
- Charging without Wires — A Solution or Laziness
- What everyone should know about Battery Chargers
- A Look at Cell Formats and how to Build a good Battery
- Battery Breakthroughs — Myth or Fact?
- Rapid-test Methods that No Longer Work
- Shipping Lithium-based Batteries by Air
- How to make Batteries more Reliable and Longer Lasting
- What causes Lithium-ion to die?
- Safety of Lithium-ion Batteries
- Recognizing Battery Capacity as the Missing Link
- Managing Batteries for Warehouse Logistics
- Caring for your Starter Battery
- Giving Batteries a Second Life
- How to Make Batteries in Medical Devices More Reliable
- Possible Solutions for the Battery Problem on the Boeing 787
- Impedance Spectroscopy Checks Battery Capacity in 15 Seconds
- How to Improve the Battery Fuel Gauge
- Examining Loading Characteristics on Primary and Secondary Batteries
-
Language Pool 4>
- BU-001: Compartir conocimiento sobre baterías
- BU-002: Introducción
- BU-003: Dedicatoria
- BU-104: Conociendo la Batería
- BU-302: Configuraciones de Baterías en Serie y Paralelo
-
Batteries in a Portable World book 4>
- Change-log of “Batteries in a Portable World,” 4th edition: Chapters 1 - 3
- Change-log of “Batteries in a Portable World,” 4th edition: Chapters 4 - 10