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Battery rechargeable

Releases during operations (for example, oil change, battery recharge, parts cleaning)... [Pg.177]

There are two major types of household batteries (a) Primary batteries are those that cannot be reused. They include alkaline/manganese, carbon-zinc, mercuric oxide, zinc-air, silver oxide, and other types of button batteries, (b) Secondary batteries are those that can be reused secondary batteries (rechargeable) include lead-acid, nickel-cadmium, and potentially nickel-hydrogen. [Pg.1228]

Terms. TED - theoretical energy density (free energy of reaction/sum of molar wts of reactants) ED practical or realized Wh/kg SB - secondary or storage battery (rechargeable) dod - depth of discharge (% recharge removed before recharge) ... [Pg.294]

Batteries are divided into primary batteries (used only once) and secondary batteries (rechargeable). The estimated 1989 U.S. market was 2.3 billion for primary... [Pg.343]

Zinc-air modules for EV application are under development at the Edison company in Italy and by the Electric Fuel Ltd in Israel. In this case, the battery recharge also includes a mechanical step, namely the removal and replacement of the spent zinc electrodes. The actual electrochemical recharging process is carried out in a remote station. The proposed application to passenger vehicles considers the construction of specific stations where the removal and replacement of the spent zinc electrode pack is carried out automatically (Fig. 9.19). Energy and power densities of the order of 200 Wh/kg and 100 W/kg, respectively, and long cyclability, which may provide the car with a 300 km range and a... [Pg.294]

Aluminum—air battery. A second potential application of this available energy is based on electrochemical oxidation of aluminum in air to produce electricity. In an aluminum—air battery, for example, thin coils of aluminum strip may be used as the fuel. No elech ic battery recharging would be required since the aluminum is consumed to generate the electricity directly. This fuel would not give off fumes or pollute and could be stored in solid form indefinitely. If this concept materializes into commercial viability, it will provide the energy needed for electric vehicles. [Pg.64]

Lithium Ion Lithium Polymer Batteries Rechargers Accessories Seawater-Activated Batteries Integrated Communications Systems... [Pg.399]

Hybrid car battery Small size, renewable power Car battery recharged during braking Laptop charged when car at rest... [Pg.207]

Batteries vary in size and chemistry. Shown here are an automobile lead-storage battery, rechargeable nickel-cadmium cells, alkaline cells, and zinc-carbon dry cells. [Pg.723]

By means of clever combinations of mechanical drive-trains with appropriate gearing and clutches, a single electrical engine may operate for propulsion/ acceleration assist of the ICE, for recuperation of braking energy, and for battery recharge. This would save both weight and cost. The battery may supply electrical... [Pg.398]

In advanced smart hybrid designs, the drive modes (ICE only, electric only, both ICE and electric, battery recharge, braking by mechanical brakes or by... [Pg.399]


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Alkaline rechargeable batteries

Batteries lithium rechargable

Batteries mechanically rechargeable

Batteries nickel-cadmium rechargeable

Batteries nickel-metal-hydride rechargeable

Batteries recharge time

Batteries storage, secondary, rechargeable

Batteries, rechargeable, molecular electronic

Battery recharger

Battery separators rechargeable

Benefits of Ni-MH Rechargeable Batteries for Military Aircraft

Brief Description of Rechargeable Batteries Best Suited for Embedded-System Applications

Commercial rechargeable batteries

Commercial rechargeable batteries characteristic performance

Competition from Rechargeable Zinc-Air Batteries

Conductive polymers rechargeable batteries

Critical Performance Characteristics of Rechargeable Batteries

Current Status of Rechargeable Batteries and Fuel Cells

Design Considerations for Small Low-Power Rechargeable Batteries

Design of Rechargeable Batteries

Electrically Rechargeable Zinc-Air Batteries

Electrically rechargeable batteries

Electroactive polymers rechargeable batteries

Electrochemical applications rechargeable batteries

Energy Density Levels for Various Rechargeable Batteries

Fundamental Aspects of a Rechargeable Battery

High-Power Rechargeable Batteries for Underwater Vehicles

High-Temperature Lithium Rechargeable Battery Cells

Hoarding of Portable Rechargeable Batteries

Ideal electrolyte lithium metal rechargeable batteries

Improvement in Performance Parameters of Lithium Rechargeable Batteries

Intercalation and the rechargeable Li battery

Key Materials for Rechargeable Batteries

Lead-acid batteries rechargeable

Li-ion rechargeable batteries

Lithium batteries rechargeable

Lithium intercalation rechargeable batteries

Lithium metal rechargeable batteries, ionic

Lithium metal rechargeable batteries, ionic liquids

Lithium rechargeable ambient-temperature battery

Lithium rechargeable batterie

Lithium rechargeable batteries advantages

Lithium rechargeable batteries applications

Lithium rechargeable batteries characteristics

Lithium rechargeable batteries chemistry

Lithium rechargeable batteries conductivity

Lithium rechargeable batteries disadvantages

Lithium rechargeable batteries discharge performance

Lithium rechargeable batteries electrochemical systems

Lithium rechargeable batteries electrolytes

Lithium rechargeable batteries negative electrodes

Lithium rechargeable batteries performance characteristics

Lithium rechargeable batteries positive electrodes

Lithium rechargeable batteries types

Materials and Their Properties Best Suited for Rechargeable Batteries

Materials for Rechargeable Batteries

Materials for Rechargeable Batteries, Capacitors

Metal-free rechargeable batteries

Metal-free rechargeable batteries MFRB)

Ni-MH rechargeable battery

NiMH rechargeable batteries

Non-rechargeable lithium batteries

Organic Cathode Materials for Rechargeable Batteries

Other Rechargeable Batteries

Outlook for rare earth based metal hydrides and NiMH rechargeable batteries

Outstanding Characteristics and Potential Applications of Al-Air Rechargeable Battery Systems

Performance Capabilities of Ni-Cd Rechargeable Batteries for Space Applications

Portable Rechargeable Batteries in Europe Sales, Uses, Hoarding, Collection and Recycling

Primary batteries recharging

Recharge

Recharge of battery

Rechargeability

Rechargeability secondary lithium batteries

Rechargeability, solid-state lithium batteries

Rechargeable Alkaline Mn02 -Zn (RAM) Batteries

Rechargeable Batteries (Consumer and OEM Markets)

Rechargeable Batteries Irrespective of Power Capability

Rechargeable Batteries for Commercial Applications

Rechargeable Batteries for Military Applications

Rechargeable Battery Recycling

Rechargeable Battery Recycling Corporation

Rechargeable Battery Requirements for Military Space-Based Sensors Requiring Moderate Power Levels

Rechargeable Battery Requirements for UAVs, Unmanned Combat Air Vehicles, and MAVs

Rechargeable Lithium-Air Batteries

Rechargeable batteries, commercially

Rechargeable batteries, history

Rechargeable battery cells

Rechargeable battery market

Rechargeable battery secondary

Rechargeable battery technologies

Rechargeable lithium ion battery

Rechargeable lithium-ion batterie

Recycling Activities for Portable Rechargeable Batteries

Small Li-Ion Rechargeable Batteries

Spent Rechargeable Batteries

Three Main Characteristics of a Rechargeable Battery

Toxicity of Materials Used in Manufacturing Rechargeable Batteries

Typical Charging Rates for Rechargeable Battery Packs and Electrical Load

Vehicles battery recharging

Zinc-Air Rechargeable Batteries

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