Suntan tell you be careful when using Mica Capacitor

March 19, 2011 Views
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Mica capacitors are typically found in very small capacitance values (less than 100 nF). They will hold a very high voltage static charge, but only a tiny fraction of a joule, and if you handed it to someone they may not even feel the shock from it. If you really want to give someone a good jolt, you should use an electrolytic cap charged up to about 100V. Get one about 10,000 uF. Be careful, because most caps of this size will not be rated for high voltage; they'll explode if you try to charge them much above their rated working voltage.

Don't get too big a cap, or charge it to too high a voltage, because this sort of prank can cause serious burn injury if you take it too far.

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Suntan Ceramic Trimmer Capacitor Notice Of Mounting、Cleaning、Other

March 18, 2011 Views
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Mounting

(1) Do not apply excessive force (preferably 5.0 N max.), when the trimmer capacitor  is mounted on the PCB.
(2) Do not warp and/or bend PCB to prevent trimmer capacitor from breaking.
(3) Use the suitable dimension of the pick-up nozzle (1.1-1.2mm external diameter and 0.8-0.9mm bore diameter).

Cleaning

Cannot be cleaned because of open construction.

Other

Note the polarity of the trimmer capacitor to minimize influence by stray capacitance.
(Refer to the dimensions concerning the polarity.)

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Suntan The Characteristics of Tantalum Capacitors

March 17, 2011 Views
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Tantalum electrolytic capacitors exploit the tendency of tantalum to form a protective oxide surface layer, using tantalum powder, pressed into a pellet shape, as one "plate" of the capacitor, the oxide as the dielectric, and an electrolytic solution or conductive solid as the other "plate". Because the dielectric layer can be very thin (thinner than the similar layer in, for instance, an aluminium electrolytic capacitor), a high capacitance can be achieved in a small volume. Because of the size and weight advantages, tantalum capacitors are attractive for portable telephones, personal computers, and automotive electronics.

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Suntan Polypropylene Metallized Film Capacitor

March 16, 2011 Views
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Very low losses, low dielectric absorption, high dielectric strength, very high insulation resistance, and negative temperature coefficient.

Typical applications: Stable oscillators and flters. Sample & hold circuits, pulse handling circuits, AC applications and mains fltering.

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Suntan Circuit Symbol of Diodes

March 15, 2011 Views
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Suntan Aluminum electrolytic capacitors Electrolyte

March 14, 2011 Views
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Aluminum electrolytic capacitors are made by layering the electrolytic paper between the anode and cathode foils, and then coiling the result. The process of preparing an electrode facing the etched anode foil surface is extremely difficult. Therefore, the opposing electrode is created by filling the structure with an electrolyte. Due to this process, the electrolyte essentially functions as the cathode. The basic functional requirements for the electrolyte are as follows:

(1) Chemically stable when it comes in contact with materials used in the anode, cathode, and electrolytic paper.
(2) Easily wets the surfaces of the electrode.
(3) Electrically conductive.
(4) Has the chemical ability to protect the anode oxide thin film and compensate for any weaknesses therein. 
(5) Low volatility even at high temperatures
(6) Long-term stability and characteristics that take into consideration such things as toxicity.

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Suntan chip tantalum Capacitor

March 12, 2011 Views
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Tantalum capacitors are a form of electrolytic capacitor. However, some forms of them are non-polar, containing two capacitors connected in series(negative to negative). The conductive polymer manufactured in our unique method is used for the cathode of Tantalum Capacitor, resulting in the reduction of ESR (equivalent series resistance) compared with the conventional manganese dioxide products.

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Suntan metal oxide varistor

March 11, 2011 Views
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This property of the metal oxide varistor makes it ideal for use in electrical surge protectors. At normal current levels, the MOV will simply pass along the electricity to the devices plugged into the surge protector. In the event of a power surge, however, the MOV will divert the current into itself, preventing it from reaching the attached devices. This will protect sensitive electronic components, such as computer chips, that can be damaged by excessively large voltages. In the event of a sudden power surge, the MOV can respond much more quickly than similar surge-protector components.

A metal oxide varistor is generally made of zinc oxide or a similar substance. These substances give the varistor its quality of passing along current at normal household levels. When electrical current rises to a certain point, called the breakover point or breakover voltage, the tiny zinc oxide particles begin conducting the current among themselves only. This prevents the high-voltage current from passing into the rest of the surge protector or the devices plugged into it.

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Suntan Tantalum Capacitors Self-destruction and thermal runaway

March 10, 2011 Views
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Tantalum capacitors are under some conditions prone to self-destruction by thermal runaway. The capacitor typically consists of a sintered tantalum sponge acting as the anode, a manganese dioxide cathode, and a dielectric layer of tantalum pentoxide created on the tantalum sponge surface by anodizing. The tantalum oxide layer may have weak spots that undergo dielectric breakdown during a voltage spike. The tantalum then comes to direct contact with manganese dioxide and the leakage current causes a local heating; a chemical reaction then produces manganese(III) oxide and regenerates (self-heals) the tantalum oxide layer.

If the energy dissipated at the failure point is high enough, a self-sustaining exothermic reaction may occur, similar to the thermite reaction, with tantalum as fuel and manganese dioxide as oxidizer, destroying the capacitor and occasionally producing smoke and possibly flame.

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Suntan Accelerated Lift Test of Ceramic Capacitors

March 9, 2011 Views
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The capacitor at approximately 75% of the guaranteed maximum capacitance, shall be tested for 250 hours at twice rated voltage, and at a temperature equal to the maximum operating temperature± 3°C for the respective style. At the end of this period the capacitance shall not have changed more than ±5% or ±0.5pF, whichever is greater, from its value before the life test. The I.R. shall be 1 gigaohm minimum and the“Q” at 1 MHz shall be a minimum of 40% of the initial test limit.

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