Allicdata Part #: | ACPL-P454-520E-ND |
Manufacturer Part#: |
ACPL-P454-520E |
Price: | $ 0.98 |
Product Category: | Isolators |
Manufacturer: | Broadcom Limited |
Short Description: | OPTOISOLATOR 3.75KV TRANS 6SOIC |
More Detail: | Optoisolator Transistor Output 3750Vrms 1 Channel ... |
DataSheet: | ACPL-P454-520E Datasheet/PDF |
Quantity: | 1000 |
3000 +: | $ 0.89566 |
Output Type: | Transistor |
Supplier Device Package: | 6-SO Stretched |
Package / Case: | 6-SOIC (0.268", 6.80mm Width) |
Mounting Type: | Surface Mount |
Operating Temperature: | -55°C ~ 100°C |
Vce Saturation (Max): | -- |
Current - DC Forward (If) (Max): | 25mA |
Voltage - Forward (Vf) (Typ): | 1.5V |
Current - Output / Channel: | 8mA |
Voltage - Output (Max): | 20V |
Series: | -- |
Input Type: | DC |
Rise / Fall Time (Typ): | -- |
Turn On / Turn Off Time (Typ): | 200ns, 300ns |
Current Transfer Ratio (Max): | 60% @ 16mA |
Current Transfer Ratio (Min): | 25% @ 16mA |
Voltage - Isolation: | 3750Vrms |
Number of Channels: | 1 |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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ACPL-P454-520E is a type of optoisolator--transistor photovoltaic output. An optoisolator is a component that provides various electrical isolation between two connected parts. Optoisolators are commonly used in the in electronic circuits in order to protect sensitive or delicate electronic components from potentially damaging situations. An ACPL-P454-520E optoisolator offers a wide variety of applications in different fields, which will be discussed in more detail below.
The ACPL-P454-520E optoisolator is mainly used in telecommunications, consumer electronics, and medical applications. In telecommunications, the ACPL-P454-520E is used to provide electrical isolation between two different telephone lines in order to reduce instances of electrical interference and protect delicate components from damage. In consumer electronics, the component is used to protect audio amplifiers or similar devices from static electricity or short circuit damage. And in medical applications, the ACPL-P454-520E is used to provide electrical isolation between patient monitoring systems and the actual patient in order to protect the patient against electrical shocks.
The working principle of the ACPL-P454-520E optoisolator is quite complex but can be summarized as follows. It relies on a photovoltaic cell, which is a semiconductor diode that converts light energy into electricity. It is composed of two main parts: the collector and the emitter. The collector receives light from the LED, which is usually embedded in the optoisolator, and converts it into an electrical signal; this signal is then transferred to the emitter, which converts the electrical signal into a corresponding current output. The optoisolator’s electrical isolation feature is enabled through this two-way transfer of energy.
The ACPL-P454-520E optoisolator is also designed to withstand extreme temperature levels and environments. Its operating temperature can range from -40 to +85°C, which makes it suitable for a wide variety of uses. Additionally, it is much more resistant to environmental factors such as humidity, dust, and shock than other similar components. This makes it ideal for use in both indoor and outdoor applications.
When compared to other optoisolators, the ACPL-P454-520E is highly adaptable. It can be used in both analog and digital applications, as well as in both AC and DC applications. Additionally, it has a wide range of current options ranging from 0.2 to 2.2 amps. This means that it is suitable for both low- and high-power applications, making it an ideal choice for many different types of electronic circuits and components.
In conclusion, the ACPL-P454-520E optoisolator is a versatile component with a wide variety of applications. Its ability to provide electrical isolation between two connected parts makes it ideal for a range of telecommunications, consumer electronics, and medical applications. Additionally, its high temperature resistance and adaptability make it ideal for use in both indoor and outdoor applications, and in both AC and DC setups. The two-way transfer of energy enabled by the photovoltaic cell also makes it an ideal choice for many different types of electronic circuits and components.
The specific data is subject to PDF, and the above content is for reference
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