Allicdata Part #: | 493-3320-ND |
Manufacturer Part#: |
JJD0E607MSEC |
Price: | $ 43.55 |
Product Category: | Capacitors |
Manufacturer: | Nichicon |
Short Description: | CAP 600F 20% 2.5V CHASSIS MOUNT |
More Detail: | 600F (EDLC) Supercapacitor 2.5V Radial, Can - Scre... |
DataSheet: | JJD0E607MSEC Datasheet/PDF |
Quantity: | 25 |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
1 +: | $ 39.58650 |
10 +: | $ 37.54080 |
100 +: | $ 34.81070 |
Specifications
Series: | EVerCAP® JJD |
Packaging: | Bulk |
Lead Free Status / RoHS Status: | -- |
Part Status: | Active |
Moisture Sensitivity Level (MSL): | -- |
Capacitance: | 600F |
Tolerance: | ±20% |
Voltage - Rated: | 2.5V |
ESR (Equivalent Series Resistance): | 16 mOhm |
Lifetime @ Temp.: | 2000 Hrs @ 60°C |
Termination: | Screw Terminals |
Mounting Type: | Chassis Mount |
Package / Case: | Radial, Can - Screw Terminals |
Lead Spacing: | 0.500" (12.70mm) |
Size / Dimension: | 1.378" Dia (35.00mm) |
Height - Seated (Max): | 3.465" (88.00mm) |
Operating Temperature: | -25°C ~ 60°C |
Description
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The JJD0E607MSEC, also known as an Electric Double Layer Capacitor (EDLC) or Supercapacitor, belongs to the category of electrochemical energy storage systems, which are defined as any type of device that can store, convert and transfer energy from one form to another. EDLCs have a high power density, allowing them to rapidly release charge, which makes them well-suited for applications with high peak power demands. In addition, EDLCs have a long service life, low self-discharge rates, and low internal resistance, making them a viable choice for a variety of applications.EDLCs are composed of electrodes with a porous material between them that is surrounded by an electrolyte. These capacitors have two distinct properties: the first is called double-layer capacitance, which occurs when a pair of plates with different charges are placed close together; this creates a strong electric field which can store energy. The second property is called pseudocapacitance, which occurs when ions in the electrolyte are adsorbed onto the surface of the electrodes. This process adds to the capacity of the capacitors and allows them to store more energy. The JJD0E607MSEC EDLCs are especially suitable for applications that require high energy storage in a relatively small package. They are typically used in power-conversion systems, such as fuel cells, photovoltaic inverters, hybrid vehicle inverters, and renewable energy systems. They are also used in consumer electronics, such as laptops, tablets, and cellphones, as well as in backup power supplies for medical equipment and industrial control systems.In terms of working principles, EDLCs work by storing energy electrostatically and releasing it by dissipating it through a circuit. They are able to store a large amount of energy, typically the equivalent of hundreds of batteries, in a single device. When a voltage is added to the device, a layer of charged ions is formed around the porous material, creating an electric double layer. This double layer is responsible for the “capacitance”, or energy storage, of the device. When the voltage is removed, the ions are released back into the electrolyte, returning the device to its original state. In addition, EDLCs can have much higher power densities than traditional capacitors, allowing them to quickly discharge their stored energy. This makes them well-suited for applications that require high peak power or a short pulse of energy, such as in hybrid and electric vehicles. EDLCs are also capable of handling larger voltage spikes than other types of capacitors, which makes them ideal for use in power-conversion systems.Overall, the JJD0E607MSEC EDLCs have several advantages that make them well-suited for a variety of applications. They have a high power density, a long service life, low self-discharge rates, and low internal resistance. They are capable of handling larger voltage spikes than traditional capacitors, and they are able to quickly discharge their stored energy. As such, they are a viable choice for applications such as fuel cells, photovoltaic inverters, hybrid vehicle inverters, and backup power supplies for medical equipment and industrial control systems.
The specific data is subject to PDF, and the above content is for reference
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