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Capacitor insulation

There has been a tremendous interest in polymers since World War 11. In the US, consumption was 18 million metric tons in 1974, 25.7 million metric tons in 1984, and 41.3 million metric tons in 1994 [1]. Polymer production has increased from essentially zero at the end the World War II to about 101 million metric tons worldwide in 1993 [2] and 241 million metric tons in 2006 [3]. The reason for this increase is quite simple. Synthetic polymers are numerous in structure and are very diverse in their structure-property relationships. Polymers are used extensively in electrical applications, including insulators, capacitors, and conductors. They are also used in many optical applications, the biochemical industry, structural applications, packaging, and they are used extensively as thermal insulation [4]. [Pg.25]

The metal has very little commercial use. In elemental form it is a laser source, a portable x-ray source, and as a dopant in garnets. When added to stainless steel, it improves grain refinement, strength, and other properties. Some other applications, particularly in oxides mixed with other rare earths, are as carbon rods for industrial hghting, in titanate insulated capacitors, and as additives to glass. The radioactive isotope ytterbium-169 is used in portable devices to examine defects in thin steel and aluminum. The metal and its compounds are used in fundamental research. [Pg.974]

Figure II. Diagram of a small portion of a charge-injection device array showing row and column FLT selection and video preamplifier. Individual pixel (resolution) elements are comprised of a pair ofmetal oxide insulated capacitor plates one plate on a row and one plate on a column. (Reproduced with permission from Ref. 26. Copyright 1981, J. Figure II. Diagram of a small portion of a charge-injection device array showing row and column FLT selection and video preamplifier. Individual pixel (resolution) elements are comprised of a pair ofmetal oxide insulated capacitor plates one plate on a row and one plate on a column. (Reproduced with permission from Ref. 26. Copyright 1981, J.
Electronic substrates and packages, wiring, power-line insulators Capacitors... [Pg.3]

Film 70 Imaging, recording tape, displays, memory storage, insulators, capacitors... [Pg.5775]

Appiications cable insulation, capacitors, coatings (agitators, centrifuges, electroplating equipment, exhaust hoods, filters, piping systems, reactors, semiconductor storage tanks, vessels), films, fibers, hollow fiber membranes, pipes, printed circuits, rods, sheet, solar collectors ... [Pg.108]

Fig. 3. An overview of atomistic mechanisms involved in electroceramic components and the corresponding uses (a) ferroelectric domains capacitors and piezoelectrics, PTC thermistors (b) electronic conduction NTC thermistor (c) insulators and substrates (d) surface conduction humidity sensors (e) ferrimagnetic domains ferrite hard and soft magnets, magnetic tape (f) metal—semiconductor transition critical temperature NTC thermistor (g) ionic conduction gas sensors and batteries and (h) grain boundary phenomena varistors, boundary layer capacitors, PTC thermistors. Fig. 3. An overview of atomistic mechanisms involved in electroceramic components and the corresponding uses (a) ferroelectric domains capacitors and piezoelectrics, PTC thermistors (b) electronic conduction NTC thermistor (c) insulators and substrates (d) surface conduction humidity sensors (e) ferrimagnetic domains ferrite hard and soft magnets, magnetic tape (f) metal—semiconductor transition critical temperature NTC thermistor (g) ionic conduction gas sensors and batteries and (h) grain boundary phenomena varistors, boundary layer capacitors, PTC thermistors.
Sulfur hexafluoride was first prepared in 1902 (1). The discovery in 1937 that its dielectric strength is much higher than that of air (2) led to its use as an insulating material for cables, capacitors (3), and transformers (4) (see Insulation,electric). Sulfur hexafluoride has been commercially available as AccuDri, SF (AUiedSignal Inc.) since 1948. It is also produced by Air Products and Chemicals in the United States and by others in Germany, Italy, Japan, and Russia. [Pg.240]

The toxicity of chloronaphthalenes requires that special attention and caution be used during their manufacture and use acne is the most common result of excessive skin exposure to them and the most frequendy affected areas are the face and neck (16). Liver damage has occurred in workers who have been exposed repeatedly to vapors, particulady to those of penta- and hexachloronaphthalene [1335-87-1] (17,18). Uses for the chlorinated naphthalenes include solvents, gauge and instmment duids, capacitor impregnants, components in electric insulating compounds, and electroplating stop-off compounds. [Pg.483]

Electronic and Electrical Applications. Sulfolane has been tested quite extensively as the solvent in batteries (qv), particularly for lithium batteries. This is because of its high dielectric constant, low volatUity, exceUent solubilizing characteristics, and aprotic nature. These batteries usuaUy consist of anode, cathode polymeric material, aprotic solvent (sulfolane), and ionizable salt (145—156). Sulfolane has also been patented for use in a wide variety of other electronic and electrical appHcations, eg, as a coil-insulating component, solvent in electronic display devices, as capacitor impregnants, and as a solvent in electroplating baths (157—161). [Pg.70]

Dielectric Constant The dielectric constant of material represents its ability to reduce the electric force between two charges separated in space. This propei ty is useful in process control for polymers, ceramic materials, and semiconduc tors. Dielectric constants are measured with respect to vacuum (1.0) typical values range from 2 (benzene) to 33 (methanol) to 80 (water). TEe value for water is higher than for most plastics. A measuring cell is made of glass or some other insulating material and is usually doughnut-shaped, with the cylinders coated with metal, which constitute the plates of the capacitor. [Pg.764]

Irrespective of the class of an insulation system and its quality, it will have some leakage current through its dielectric circuit on application of a high voltage. For all practical piiiposes. therefore, we can consider an insulation system as an imperfect capacitor. [Pg.227]

All electrical equipment are designed for a specific BIL, as indicated in Tables 11.6, 13.2, 14.1, and 32.1(A) for motors, switchgears and bus systems respectively, and Tables 13.2 and 13.3 for the main power system (line clearances and insulators). If the actual severity of a prospective surge, i.e. its amplitude and/or rise time or both, is expected to be higher than these levels (higher amplitude and lower rise time) the same must be damped to a safe level, with the use of surge arresters, surge capacitors or both as discussed later. [Pg.558]


See other pages where Capacitor insulation is mentioned: [Pg.308]    [Pg.377]    [Pg.63]    [Pg.245]    [Pg.602]    [Pg.590]    [Pg.308]    [Pg.308]    [Pg.494]    [Pg.409]    [Pg.4727]    [Pg.553]    [Pg.131]    [Pg.308]    [Pg.377]    [Pg.63]    [Pg.245]    [Pg.602]    [Pg.590]    [Pg.308]    [Pg.308]    [Pg.494]    [Pg.409]    [Pg.4727]    [Pg.553]    [Pg.131]    [Pg.2760]    [Pg.2803]    [Pg.9]    [Pg.309]    [Pg.313]    [Pg.373]    [Pg.383]    [Pg.290]    [Pg.272]    [Pg.72]    [Pg.209]    [Pg.130]    [Pg.424]    [Pg.424]    [Pg.155]    [Pg.51]    [Pg.331]    [Pg.309]    [Pg.309]    [Pg.313]    [Pg.313]    [Pg.134]    [Pg.293]    [Pg.583]    [Pg.616]   
See also in sourсe #XX -- [ Pg.840 ]




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