Allicdata Part #: | UHN0J562MHD-ND |
Manufacturer Part#: |
UHN0J562MHD |
Price: | $ 0.00 |
Product Category: | Capacitors |
Manufacturer: | Nichicon |
Short Description: | CAP ALUM 5600UF 20% 6.3V RADIAL |
More Detail: | 5600µF 6.3V Aluminum Electrolytic Capacitors Radia... |
DataSheet: | UHN0J562MHD Datasheet/PDF |
Quantity: | 1000 |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
1 +: | 0.00000 |
Operating Temperature: | -25°C ~ 105°C |
Package / Case: | Radial, Can |
Mounting Type: | Through Hole |
Surface Mount Land Size: | -- |
Height - Seated (Max): | 1.043" (26.50mm) |
Size / Dimension: | 0.492" Dia (12.50mm) |
Lead Spacing: | 0.197" (5.00mm) |
Impedance: | 8 mOhms |
Applications: | General Purpose |
Ratings: | -- |
Polarization: | Polar |
Series: | UHN |
Lifetime @ Temp.: | 2000 Hrs @ 105°C |
ESR (Equivalent Series Resistance): | -- |
Voltage - Rated: | 6.3V |
Tolerance: | ±20% |
Capacitance: | 5600µF |
Moisture Sensitivity Level (MSL): | -- |
Part Status: | Obsolete |
Lead Free Status / RoHS Status: | -- |
Packaging: | Bulk |
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Aluminum electrolytic capacitors are a type of capacitor with the highest volumetric energy density, that is, it can store the most charge per unit volume. These capacitors use an aluminum foil as the anode, and are often made up of multiple layers of foil and paper. The separator between the anode and cathode is an electrolyte solution, while the cathode foil is usually made of aluminum. The anode and cathode are enclosed in a sealed case, making it a very reliable device.
The UHN0J562MHD is an aluminum electrolytic capacitor specifically designed for use in high frequencies. It has a round can with a lower profile than many of its competitors, making it a suitable choice for applications where low-profile components are preferred. The UHN0J562MHD also features a high energy density, meaning that it can store a large amount of charge in a small volume, making it highly efficient. Furthermore, it has a high ripple current (the current that flows through it) and high reliability, thanks to its double-sided printed circuit boards. The UHN0J562MHD also has a high surge voltage, which is higher than the average aluminum electrolytic capacitor, and is suitable for applications that require higher voltage levels.
The application field of the UHN0J562MHD aluminum electrolytic capacitor mainly includes audio, automotive electronic equipment, television sets and computer peripheral devices, as well as energy resources and Lighting products. This capacitor is frequently used in high-frequency circuits, where it can efficiently reduce or eliminate the noise, as well as improve the signal-to-noise ratio. It can also be used in other areas that require high reliability and long life, such as high power supplies, power amplifiers and high-voltage inverters, as long as the operating conditions don’t exceed those specified in the datasheet.
The working principle of UHN0J562MHD aluminum electrolytic capacitor is straightforward. When the two foil sheets of the capacitor are connected to a DC voltage, electric charge starts to accumulate on the anode. The anode attracts the negative ions from the electrolyte, creating a negative charge. The current created by the flow of the electric charge is called the electric double layer. The electric double layer helps to stabilize the electrical field, and increases the capacitance of the capacitor. When a voltage is applied to the capacitor, a displacement current flows through it, storing the charge.
In conclusion, the UHN0J562MHD aluminum electrolytic capacitor is a highly efficient and reliable device, suitable for use in applications that require high frequencies, high ripple currents and high surge voltages. It is also highly versatile, and can be used in a wide variety of industries, including audio, automotive electronics, television and computer peripheral devices, energy resources and lighting products. It works by accumulating electric charge on the anode, and by creating a displacement current when a voltage is applied.
The specific data is subject to PDF, and the above content is for reference
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