K104K15X7RF5TH5 Capacitors |
|
Allicdata Part #: | BC1101TR-ND |
Manufacturer Part#: |
K104K15X7RF5TH5 |
Price: | $ 0.02 |
Product Category: | Capacitors |
Manufacturer: | Vishay BC Components |
Short Description: | CAP CER 0.1UF 50V X7R RADIAL |
More Detail: | 0.1µF ±10% 50V Ceramic Capacitor X7R Radial |
DataSheet: | K104K15X7RF5TH5 Datasheet/PDF |
Quantity: | 176000 |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
4000 +: | $ 0.01611 |
8000 +: | $ 0.01530 |
12000 +: | $ 0.01450 |
28000 +: | $ 0.01369 |
100000 +: | $ 0.01088 |
Specifications
Features: | -- |
Lead Style: | Formed Leads |
Lead Spacing: | 0.197" (5.00mm) |
Thickness (Max): | -- |
Height - Seated (Max): | 0.257" (6.54mm) |
Size / Dimension: | 0.157" L x 0.098" W (4.00mm x 2.50mm) |
Package / Case: | Radial |
Mounting Type: | Through Hole |
Failure Rate: | -- |
Applications: | General Purpose |
Ratings: | -- |
Series: | Mono-Kap™ K |
Operating Temperature: | -55°C ~ 125°C |
Temperature Coefficient: | X7R |
Voltage - Rated: | 50V |
Tolerance: | ±10% |
Capacitance: | 0.1µF |
Moisture Sensitivity Level (MSL): | -- |
Part Status: | Active |
Lead Free Status / RoHS Status: | -- |
Packaging: | Tape & Reel (TR) |
Description
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Ceramic capacitors are incredibly small components of electronic circuits, being used in many industries and applications. The K104K15X7RF5TH5 is one of many ceramic capacitors available on the market, and is specifically designed to work in high frequency applications. The EIA Class 2 ceramic capacitors have a number of advantages over other types of components, such as high reliability, low cost, and long term stability.
The K104K15X7RF5TH5 is a common construction type, its capacitance value is measured in pico-Farads (pF) and its voltage rating is relatively low, reaching 15 volts at the most. It is composed of two thin ceramic plates in a metallized finish, in which will make the capacitor hold a charge, and is sealed from the environment. The end caps are connected to each plate and extend out of the ceramic body.
As mentioned earlier, the K104K15X7RF5TH5 is typically used for high frequency applications. It is most commonly used to filter harmonic noise from power supply lines, to ensure that the signal from the power line is uninterrupted. It is also used in high frequency circuits that require a small capacitance. The capacitance of the K104K15X7RF5TH5 is usually in the range of 0.47pF to 10pF, depending on the application.
The K104K15X7RF5TH5 ceramic capacitor also has some advantages in terms of its construction and electrical characteristics. Firstly, the ceramic material used in this type of capacitor allows for very quick response time, with very low inductance levels. This makes them ideal for use in high frequency applications, as the high frequency signals are not distorted or blocked by inductance. Secondly, the small size of the K104K15X7RF5TH5has a low profile, allowing for easy and discrete installation into high frequency circuits.
The working principles of the K104K15X7RF5TH5 ceramic capacitor are relatively simple. When an electrical signal is applied to the capacitor, the two thin plates that make up its construction create an electric field between them. This electric field stores energy in the form of an electric charge, known as capacitance. The amount of capacitance that the K104K15X7RF5TH5 can store is proportionate to the voltage applied, and the size of the capacitor itself.
In summary, the K104K15X7RF5TH5 ceramic capacitor is a common type used in high frequency applications. It has several advantages in terms of construction and characteristics, and its simple working principle means that they can be used in a wide range of applications. Due to their smaller size and low profile, they can be easily integrated into existing high frequency circuits, and are not prone to inductance effects.
The K104K15X7RF5TH5 is a common construction type, its capacitance value is measured in pico-Farads (pF) and its voltage rating is relatively low, reaching 15 volts at the most. It is composed of two thin ceramic plates in a metallized finish, in which will make the capacitor hold a charge, and is sealed from the environment. The end caps are connected to each plate and extend out of the ceramic body.
As mentioned earlier, the K104K15X7RF5TH5 is typically used for high frequency applications. It is most commonly used to filter harmonic noise from power supply lines, to ensure that the signal from the power line is uninterrupted. It is also used in high frequency circuits that require a small capacitance. The capacitance of the K104K15X7RF5TH5 is usually in the range of 0.47pF to 10pF, depending on the application.
The K104K15X7RF5TH5 ceramic capacitor also has some advantages in terms of its construction and electrical characteristics. Firstly, the ceramic material used in this type of capacitor allows for very quick response time, with very low inductance levels. This makes them ideal for use in high frequency applications, as the high frequency signals are not distorted or blocked by inductance. Secondly, the small size of the K104K15X7RF5TH5has a low profile, allowing for easy and discrete installation into high frequency circuits.
The working principles of the K104K15X7RF5TH5 ceramic capacitor are relatively simple. When an electrical signal is applied to the capacitor, the two thin plates that make up its construction create an electric field between them. This electric field stores energy in the form of an electric charge, known as capacitance. The amount of capacitance that the K104K15X7RF5TH5 can store is proportionate to the voltage applied, and the size of the capacitor itself.
In summary, the K104K15X7RF5TH5 ceramic capacitor is a common type used in high frequency applications. It has several advantages in terms of construction and characteristics, and its simple working principle means that they can be used in a wide range of applications. Due to their smaller size and low profile, they can be easily integrated into existing high frequency circuits, and are not prone to inductance effects.
The specific data is subject to PDF, and the above content is for reference
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