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Electric Electronic

Electrical Electronic Design Datafor Teflon, E. I. du Pont de Nemours Co., Inc., Wilmington, Del. [Pg.363]

The principal uses of PCTFE plastics remain in the areas of aeronautical and space, electrical/electronics, cryogenic, chemical, and medical instmmentation industries. AppHcations include chemically resistant electrical insulation and components cryogenic seals, gaskets, valve seats (56,57) and liners instmment parts for medical and chemical equipment (58), and medical packaging fiber optic appHcations (see Fiber optics) seals for the petrochemical /oil industry and electrodes, sample containers, and column packing in analytical chemistry and equipment (59). [Pg.394]

Each segment of the insulated wire and cable industry has its own set of standards, and cables are built to conform to specifications provided by a large variety of technical associations such as The Institute of Electrical Electronic Engineers (IEEE), The Insulated Cable Engineers Association, (ICEA), National Electrical Manufacturers Association (NEMA), Underwriters Laboratories (UL), Rural Electrification Administration of the U.S. Department of Agriculture (REA), Association of Edison Illumination Companies (AEIC), MiUtary Specifications of the Department of Defense (MIL), American Society for Testing and Materials (ASTM), National Electrical Code (NEC), etc. [Pg.322]

J. A. Cairns, Applications ofEoiv Energy Accelerators, Institute of Electrical Electronics Engineers, Denton, Tex. 1980. [Pg.402]

Electrical, electronic, and technical appHcations use polycarbonates for a variety of purposes. The woddwide market is about 156,000 t aimuaHy. Because of exceHent electrical properties (dielectric strength, volume resistivity), and resistance to heat and humidity, polycarbonate is used for electrical connectors (qv), telephone network devices, oudet boxes, etc. Polycarbonate had been popular for use in computer and business machine housings, but the use of neat resin has been largely supplanted by blends of polycarbonate with ABS. OveraH, however, the total use of polycarbonate continues to increase. [Pg.285]

PBT-PET lower cost than PBT, better gloss and flexibihty than PET electrical/electronic, brake and fuel lines 326,327... [Pg.422]

The New York Commodity Exchange (Comex) prices for cathode copper in January 1993, 1994, and 1994 were 2.218/kg, 1.844/kg, and 3.084/kg, respectively. The primary uses for copper metal and alloy are constmction, 42% electrical/electronic, 24% industrial machinery, 13% transportation equipment, 11% and consumer/general products, 10%. Copper compounds for use in agriculture and industry account for about 1% of total copper consumption. [Pg.565]

Corrosion. Copper and selected copper aHoys perform admirably in many hostile environments. Copper aHoys with the appropriate corrosion resistance characteristics are recommended for atmospheric exposure (architectural and builder s hardware), for use in fresh water supply (plumbing lines and fittings), in marine appHcations (desalination equipment and biofouling avoidance), for industrial and chemical plant equipment (heat exchangers and condensers), and for electrical/electronic appHcations (coimectors and semiconductor package lead-frames) (30) (see Packaging). [Pg.226]

Excellent resistance to saltwater corrosion and biofouling are notable attributes of copper and its dilute alloys. High resistance to atmospheric corrosion and stress corrosion cracking, combined with high conductivity, favor use in electrical/electronic appHcations. [Pg.230]

The IEEE Guide to the Gollection and Presentation of Electrical, Electronic, Sensing Gom-ponent, and Mechanical Equipment Reliability Data for Nuclear Power Generating Stations (IEEE Std. 500-1984) compiles data from over a dozen other references and includes information for most types of components. [Pg.9]

Amongst the diverse uses in the electrical/electronics field are coil formers, miniature circuit breakers, picture-tube mountings, edge connectors and telephone distribution boxes. [Pg.727]

The work on colour centres outlined in Section 3.2.3.1, much of it in the 1930s, and its consequences for understanding electrically charged defects in insulating and semiconducting crystalline materials, helped to stimulate ceramic researches in the electrical/electronic industry. The subject is enormous and here there is space only for a cursory outline of what has happened, most of it in the last 80 years. [Pg.271]

IEEE Std 500-1984 (IEEE, 1984) contains failure rate and out of service, repair and restoration times for electrical electronic, and sensing component, and mechanical equipment. It is a considerable improvement over IEEE STD 500-1977. The reported values are the consensus of over 200 experts. Each expert submitted a low, recommended, and a high value for the failure rate... [Pg.153]

If the subsequent discovery of a nonconformity will cause minor design, production, installation, or operational problems, you should examine the features and characteristics of the item on a sampling basis. An example of this would be electrical, electronic, or mechanical components. [Pg.382]

Human occupants, electrical/electronic equipment and process plant all emit varying quantities of sensible and latent heat. Equally, these various elements require (or can tolerate) differing environmental conditions. Depending on these operational constraints, the need may well exist to provide natural (or powered) ventilation to maintain environmental conditions (temperature and/or humidity) consistent with the occupational/process requirements. [Pg.56]

Most design books continually report that plastics cannot take the heat of metal (steel, etc.) indicating that plastics cannot take heat. As reviewed, by far practically most plastic products do not have to take any more heat then the human body. Practically all plastics easily meet this heat requirement for these type products and in fact many types of these plastics meet the higher heat requirements of plastic products that exist under the engine hood of an automobile, in the trunk of an automobile (excellent user-environmental test), electrical/electronic devices, etc. [Pg.20]

This review is concerned with the engineering thermoplastic uses of polyamide materials in injection moulding and extrusion applications. Types of polyamides are described, and their key properties are considered. Commercial applications in the automotive, electrical/ electronic, engineering and construction, and packaging industries are discussed. Polyamide processing is... [Pg.41]


See other pages where Electric Electronic is mentioned: [Pg.172]    [Pg.302]    [Pg.301]    [Pg.308]    [Pg.331]    [Pg.396]    [Pg.449]    [Pg.565]    [Pg.537]    [Pg.325]    [Pg.368]    [Pg.371]    [Pg.150]    [Pg.150]    [Pg.150]    [Pg.150]    [Pg.502]    [Pg.545]    [Pg.576]    [Pg.493]    [Pg.80]    [Pg.14]    [Pg.1]    [Pg.159]    [Pg.222]    [Pg.381]    [Pg.433]    [Pg.666]    [Pg.99]    [Pg.337]   
See also in sourсe #XX -- [ Pg.12 , Pg.102 , Pg.109 , Pg.112 , Pg.117 , Pg.131 ]




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Applications of Enzymes Electrically Contacted by Mediated Electron-transfer

Association for Electrical, Electronic and Information Technologies

Conduction, electrical electronic

Conductive Nanofibers in Electric and Electronic Applications

Crystal electrons in an electric field

Directive on Waste Electrical and Electronic

ELECTRONIC AND ELECTRICAL EFFECTS OF SOLVENTS

Electric Double-Layer Effects on the Elementary Act of Electron Transfer

Electric Electron

Electric and Electronic Ceramics

Electric and electronic equipment

Electric and electronic machinery

Electric and electronics equipment

Electric dipole moments electron

Electric electronic waste

Electric field electron spectrometers

Electric field reverse electron transfer

Electric fields electronic hyperpolarizabilities

Electric properties electron density

Electric properties, PVDF electronic

Electric/electronic applications

Electrical Properties and Electronic Applications

Electrical and Electronic Equipment (from a Mechanical Point of View)

Electrical and Electronics Engineers

Electrical and electronic

Electrical and electronic applications

Electrical and electronic equipment

Electrical and electronic materials

Electrical and electronic products

Electrical and electronic properties

Electrical and electronic systems

Electrical and electronics

Electrical and electronics applications

Electrical and electronics products industries

Electrical breakdown electronic models

Electrical conduction, and electronic

Electrical conductivity electron numbers

Electrical current amperes , measuring electron flow

Electrical electronic materials

Electrical resistivity electronic structure

Electrical resistivity, heavy electron

Electrical resistivity, heavy electron systems

Electrical-electronic market

Electrical/electronic

Electrical/electronic equipment waste

Electrical/electronic equipment waste pyrolysis

Electrical/electronic industry

Electrical/electronic products

Electrical/electronic/programmable

Electrical/electronic/programmable electronics

Electrically active polymers electronics

Electricity electron flow

Electricity, history electron research

Electricity, mostly electrons

Electron polarization, static electric fields

Electronic Models of Electrical Breakdown

Electronic distribution electric field gradients

Electronic, Electrical and Related Materials

Electronics and electrical equipment

Electronics electrically conductive adhesives

Electrons electric charge

Electrons electrical charge

Electrons in electricity

Electrons, electrical discharges

Functional safety of electrical/electronic

Hamiltonian electron electric dipole moment

IEEE (Institute for Electrical and Electronic

Institute for Electrical and Electronic Engineers

Institute of Electrical and Electronic

Institute of Electrical and Electronic Engineers

Institute of Electrical and Electronics

Institute of Electrical and Electronics Engineers

Institute of Electrical and Electronics Engineers IEEE)

Institution of Electrical and Electronic Engineers

Interactions of Electrons with Oscillating Electric Fields

Modulation of Electron Transfer Dynamics by Electric Fields

Molecular electronics, electrically active

Molecular electronics, electrically active polymers

One-Electron Properties Electric-Dipole Moments

Organic electronic devices using electrical property

Other Electrical and Electronic Components

Polymers in Electrical and Electronic Applications

Properties electron electric dipole moment

Protection of Electrical and Electronic Equipment

Scanning electron microscopy electrical techniques

The Electrical and Electronics Industry

Thermoplastic shares in the electrical electronics market

WEEE (Waste Electrical and Electronic

Waste Electric and Electronic Equipment Directive

Waste Electrical and Electronic

Waste Electrical and Electronic Equipment

Waste Electrical and Electronic Equipment Directive

Waste Electrical and Electronic Equipment WEEE)

Waste Electronics and Electrical Equipment

Waste electric and electronic equipment

Waste electric and electronic equipment WEEE)

Waste from Electrical and Electronic

Waste from electric and electronic

Waste from electric and electronic Equipment

Waste from electrical and electronic equipment

Waste from electrical and electronic equipment WEEE)

Waste of electrical and electronic equipment

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