![T491C156K016ZT7280 Allicdata Electronics](https://files.allicdata.com/upload/common/default.jpg)
Allicdata Part #: | T491C156K016ZT7280-ND |
Manufacturer Part#: |
T491C156K016ZT7280 |
Price: | $ 0.08 |
Product Category: | Capacitors |
Manufacturer: | KEMET |
Short Description: | CAP TANT 15.0UF 16.0V |
More Detail: | 15µF Molded Tantalum Capacitors 16V 2312 (6032 Met... |
DataSheet: | ![]() |
Quantity: | 1000 |
3000 +: | $ 0.07069 |
Lifetime @ Temp.: | 2000 Hrs @ 125°C |
Failure Rate: | -- |
Features: | General Purpose |
Ratings: | -- |
Manufacturer Size Code: | C |
Lead Spacing: | -- |
Height - Seated (Max): | 0.110" (2.80mm) |
Size / Dimension: | 0.236" L x 0.126" W (6.00mm x 3.20mm) |
Package / Case: | 2312 (6032 Metric) |
Mounting Type: | Surface Mount |
Series: | T491 |
Operating Temperature: | -55°C ~ 125°C |
ESR (Equivalent Series Resistance): | 1.6 Ohm |
Type: | Molded |
Voltage - Rated: | 16V |
Tolerance: | ±10% |
Capacitance: | 15µF |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Tantalum capacitors are a type of electrochemical capacitor which are formed with a tantalum base and a dielectric oxide layer. They offer some of the highest capacitance values of any dielectric material, and are most commonly used in electronics, computers and telecommunications. The specific T491C156K016ZT7280 capacitor has become one of the most widely used and reliable options in the market due to its advanced features and performance. In this article, we’ll discuss the application field and working principle of the T491C156K016ZT7280 capacitor.
Application field
The T491C156K016ZT7280 capacitor is most commonly used in the telecommunications and electronics fields. The capacitor features high ripple current and high voltage handling capabilities, making it well-suited to these fields. In telecommunications, the capacitor’s high ripple current helps reduce RF interference and improves signal integrity, which is critical for devices that rely on strong signals from one point to another. In electronics, it can be used for general-purpose power Supplies, DC-DC converters, or in power management or voltage regulation applications.
The capacitor is also used in audio applications due to its excellent capacitance, low ESR (Equivalent Series Resistance) and high-current pulse handling capabilities. This allows the capacitor to effectively remove the low-frequency noise that can be picked up in audio equipment, and reduces harmonic distortion in sound reproduction. It can also be used in automotive and industrial applications where its robust construction and advanced features make it capable of handling high temperatures and vibration.
Working Principle
The T491C156K016ZT7280 capacitor works by storing energy using electrochemical reactions between two metal electrodes and a dielectric oxide layer. This oxide layer is highly resistant to electrical flow, but is still able to pass enough current for the capacitor to provide a steady output of the input signal. The capacitance is determined by the amount of charge the capacitor can store between the two electrodes, which can be adjusted by changing the size or thickness of the dielectric layer.
The capacitor is able to provide a steady output current by changing the capacitance as the input signal changes. This is done by releasing and adding charge from the electrodes at different times, with the capacitor being able to accurately adjust the level of charge to allow the signal to pass without any problems. This is the key advantage of a tantalum capacitor, and is why it is so well-suited to electronics and telecommunications.
The T491C156K016ZT7280 capacitor is a highly reliable and stable capacitor that is suitable for a wide range of applications. Its high capacitance, low ESR, and high-current pulse handling capabilities make it ideal for telecommunications, electronics, audio, automotive, and industrial applications. The capacitor works by storing energy using electrochemical reactions between two metal electrodes and a dielectric oxide layer, allowing it to provide a steady output current as the input signal changes.
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