293D226X06R3A2TE3 Allicdata Electronics
Allicdata Part #:

293D226X06R3A2TE3-ND

Manufacturer Part#:

293D226X06R3A2TE3

Price: $ 0.04
Product Category:

Capacitors

Manufacturer: Vishay Sprague
Short Description: CAP TANT 22UF 6.3V 20% 1206
More Detail: 22µF Molded Tantalum Capacitors 6.3V 1206 (3216 Me...
DataSheet: 293D226X06R3A2TE3 datasheet293D226X06R3A2TE3 Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
2000 +: $ 0.03657
Stock 1000Can Ship Immediately
$ 0.04
Specifications
Series: TANTAMOUNT®, 293D
Packaging: Tape & Reel (TR) 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Capacitance: 22µF
Tolerance: ±20%
Voltage - Rated: 6.3V
Type: Molded
ESR (Equivalent Series Resistance): 2.9 Ohm
Operating Temperature: -55°C ~ 125°C
Lifetime @ Temp.: --
Mounting Type: Surface Mount
Package / Case: 1206 (3216 Metric)
Size / Dimension: 0.126" L x 0.063" W (3.20mm x 1.60mm)
Height - Seated (Max): 0.071" (1.80mm)
Lead Spacing: --
Manufacturer Size Code: A
Features: General Purpose
Failure Rate: --
Description

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Tantalum capacitors are one of the most widely used types of capacitors available today. They are a versatile, reliable, and cost-effective choice for powering small-scale electronics. The 293D226X06R3A2TE3 is a model of tantalum capacitor used in a variety of applications, such as electronic control systems and consumer electronics. This article will discuss the application fields and working principle of the 293D226X06R3A2TE3.

Application Fields

The 293D226X06R3A2TE3 is a tantalum capacitor designed for use in a wide range of applications. It is suitable for use in consumer electronics, automotive electronics, computers, and medical electronics, as well as in process control and instrumentation equipment. It is well-suited for use in high-current, high-frequency, and noisy electrical conditions. It is also used in computers and other digital devices for its low leakage current, excellent temperature stability, and high stability over time.

The 293D226X06R3A2TE3 is ideal for use in a variety of noisy and demanding environments, such as factory automation, aerospace, and military systems. It is also used in medical applications, such as imaging and diagnostics equipment, where its low leakage current and low failure rates are important. Lastly, it is sometimes used in high-performance audio equipment for its low noise characteristics and high frequency stability.

Working Principle

The 293D226X06R3A2TE3 is a type of tantalum capacitor constructed from a solid tantalum electrolytic film with an etched, oxide layer which creates a dielectric field between the two electrodes. This capacitance is determined by the thickness of the oxide layer, the area of the electrodes, and the applied voltage difference between them. When potential is applied to the electrodes, the electrostatic field within the oxide layer forces charges to move from one side of the dielectric to the other.

The electrical characteristics of tantalum capacitors such as the 293D226X06R3A2TE3 depend on their construction and the type of oxide used. Tantalum capacitors generally have high capacitance values and excellent temperature stability, as well as a wide range of working voltages and low leakage current characteristics. Additionally, tantalum capacitors have a high tolerance for reverse voltage and can operate in a wide temperature range.

Conclusion

The 293D226X06R3A2TE3 is an electrochemical capacitor that can be used in a wide range of applications. It is characterized by its low leakage current and excellent temperature stability, as well as its wide range of working voltages. This makes it an ideal choice for powering small-scale electronics, as well as applications in demanding environments such as aerospace and military systems. It is also used in medical applications for its low failure rate and low self-discharge rate. The working principle of the 293D226X06R3A2TE3 is based on the creation of an electrostatic field between the two electrodes, which is determined by the thickness of the oxide layer and the applied voltage difference between them.

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

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