T495A156M010ATE1K0 Allicdata Electronics
Allicdata Part #:

T495A156M010ATE1K0-ND

Manufacturer Part#:

T495A156M010ATE1K0

Price: $ 0.18
Product Category:

Capacitors

Manufacturer: KEMET
Short Description: CAP TANT 15UF 20% 10V 1206
More Detail: 15µF Molded Tantalum Capacitors 10V 1206 (3216 Met...
DataSheet: T495A156M010ATE1K0 datasheetT495A156M010ATE1K0 Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
2000 +: $ 0.16101
Stock 1000Can Ship Immediately
$ 0.18
Specifications
Operating Temperature: -55°C ~ 125°C
Failure Rate: --
Features: General Purpose
Ratings: --
Manufacturer Size Code: A
Lead Spacing: --
Height - Seated (Max): 0.071" (1.80mm)
Size / Dimension: 0.126" L x 0.063" W (3.20mm x 1.60mm)
Package / Case: 1206 (3216 Metric)
Mounting Type: Surface Mount
Lifetime @ Temp.: 2000 Hrs @ 125°C
Series: T495
ESR (Equivalent Series Resistance): 1 Ohm @ 100kHz
Type: Molded
Voltage - Rated: 10V
Tolerance: ±20%
Capacitance: 15µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Tape & Reel (TR) 
Description

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Tantalum capacitors are a type of electrolytic capacitor. They are made up of a solid manganese dioxide electrolytic layer which is sandwiched between two pieces of pure tantalum metal, typically in the shape of paper-wrapped cylindrical or radial cans. Compared to other types of electrolytic capacitors, Tantalum capacitors offer a range of benefits including higher capacitance per volume, lower ESR, and longer lifespans.

T495A156M010ATE1K0 is a Tantalum capacitor that offers a wide range of features, such as high temperature rating, high ripple current, high stability and low ESR. It is a radial, surface-mount type capacitor with a capacitance value of 156 uF, a 4 volt rated dc voltage and a 10-volt working voltage. It has a capacitance tolerance of + 20%, a self-healing function, and a rated maximum temperature of 85°C.

The T495A156M010ATE1K0 has a wide range of applications, from high-frequency signal-coupling and filtering operations to power supplies and DC-DC converters. Its high temperature rating and high ripple current make it suitable for applications that require high power dissipation, such as motor control circuits, snubbers and upsizing film capacitors. Its high stability and low ESR make it a good choice for power-converter designs that require high frequency- and high-voltage stability.

The working principle of the T495A156M010ATE1K0 is based on a Faraday\'s law of electromagnetic interference. This law states that when a charged particle passes through a conductor, an opposing electric field is created. This electric field induces a momentary current in the conductor, resulting in a voltage drop across the conductor. The voltage drop is equal to the product of the charge on the capacitance, the capacitance value, and the rate of the current. This voltage drop is known as the “capacitance voltage,” and is used to calculate the amount of current that can be stored in the capacitor.

The capacitance of the T495A156M010ATE1K0, along with the voltage range and temperature rating, determines the amount of energy that it can store, as well as its maximum ripple current. The capacitor can be used to store energy that needs to be released at high frequencies or pulses, as well as to reduce voltage transients. By reducing the voltage transients, it can reduce EMI emissions, as well as improve the performance of the circuit.

In summary, the T495A156M010ATE1K0 is a Tantalum capacitor with a high temperature rating, high ripple current and low ESR. It is often used in high frequency signal-coupling, filtering operations, power supplies and DC-DC converters, as well as motor control circuits, snubbers and upsizing film capacitors. Its working principle is based on Faraday\'s law of electromagnetic interference, and its capacitance, voltage rating and temperature rating determines the amount of energy that it can store and its maximum ripple current. Through its use, voltage transients can be reduced, providing improvements in EMI and circuit performance.

The specific data is subject to PDF, and the above content is for reference

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