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TDK 47μF Multilayer Ceramic Capacitor MLCC, 10V dc V, ±20% , SMD

RS Stock No.: 108-4046Brand: TDKManufacturers Part No.: C2012X5R1A476M125AC
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Technical Document

Specifications

Brand

TDK

Capacitance

47µF

Voltage

10V dc

Package/Case

0805 (2012M)

Mounting Type

Surface Mount

Dielectric

X5R

Tolerance

±20%

Dimensions

2 x 1.25 x 1.25mm

Length

2mm

Depth

1.25mm

Height

1.25mm

Series

C

Maximum Operating Temperature

+85°C

Minimum Operating Temperature

-55°C

Terminal Type

Surface Mount

Country of Origin

Japan

Product details

TDK C Type 0805 Series, X5R Dielectric

TDK C Series of general purpose multilayer ceramic chip capacitors suited for high frequency and high density type power suppliers.

Features and Benefits:

High capacitance through precision technologies that enable the use of multiple thinner ceramic dielectric layers
A monolithic structure ensures superior mechanical strength and reliability
Low ESL and excellent frequency characteristics allow for a circuit design that closely conforms to theoretical values
Low self-heating and high ripple resistance due to low ESR

Applications

Commercial Grade for general applications including
General electronic equipment; Mobile communication equipment; Power supply circuit; Office automation equipment; TV, LED displays; Servers, PCs, Notebooks, Tablets

0805 Range

Nickel barrier terminations covered with a layer of plated Tin (NiSn). Applications include mobile phones, video and tuner designs, COG/NPO is the most popular formulation of the "temperature compensating", EIA Class I ceramic materials, X7R, X5R formulations are called "temperature stable" ceramics and fall into the EIA Class II materials, Y5V, Z5U formulations are for general purpose use in a limited temperature range, EIA Class II materials; these characteristics are ideal for decoupling applications.

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Stock information temporarily unavailable.

€ 760.00

€ 0.38 Each (On a Reel of 2000) (Exc. VAT)

€ 896.80

€ 0.448 Each (On a Reel of 2000) (inc. VAT)

TDK 47μF Multilayer Ceramic Capacitor MLCC, 10V dc V, ±20% , SMD

€ 760.00

€ 0.38 Each (On a Reel of 2000) (Exc. VAT)

€ 896.80

€ 0.448 Each (On a Reel of 2000) (inc. VAT)

TDK 47μF Multilayer Ceramic Capacitor MLCC, 10V dc V, ±20% , SMD
Stock information temporarily unavailable.

Stock information temporarily unavailable.

Please check again later.

You may be interested in

Technical Document

Specifications

Brand

TDK

Capacitance

47µF

Voltage

10V dc

Package/Case

0805 (2012M)

Mounting Type

Surface Mount

Dielectric

X5R

Tolerance

±20%

Dimensions

2 x 1.25 x 1.25mm

Length

2mm

Depth

1.25mm

Height

1.25mm

Series

C

Maximum Operating Temperature

+85°C

Minimum Operating Temperature

-55°C

Terminal Type

Surface Mount

Country of Origin

Japan

Product details

TDK C Type 0805 Series, X5R Dielectric

TDK C Series of general purpose multilayer ceramic chip capacitors suited for high frequency and high density type power suppliers.

Features and Benefits:

High capacitance through precision technologies that enable the use of multiple thinner ceramic dielectric layers
A monolithic structure ensures superior mechanical strength and reliability
Low ESL and excellent frequency characteristics allow for a circuit design that closely conforms to theoretical values
Low self-heating and high ripple resistance due to low ESR

Applications

Commercial Grade for general applications including
General electronic equipment; Mobile communication equipment; Power supply circuit; Office automation equipment; TV, LED displays; Servers, PCs, Notebooks, Tablets

0805 Range

Nickel barrier terminations covered with a layer of plated Tin (NiSn). Applications include mobile phones, video and tuner designs, COG/NPO is the most popular formulation of the "temperature compensating", EIA Class I ceramic materials, X7R, X5R formulations are called "temperature stable" ceramics and fall into the EIA Class II materials, Y5V, Z5U formulations are for general purpose use in a limited temperature range, EIA Class II materials; these characteristics are ideal for decoupling applications.

You may be interested in