Allicdata Part #: | AOZ8014DI-ND |
Manufacturer Part#: |
AOZ8014DI |
Price: | $ 0.08 |
Product Category: | Filters |
Manufacturer: | Alpha & Omega Semiconductor Inc. |
Short Description: | FILTER RC(PI) 100 OHM/17PF SMD |
More Detail: | RC (Pi) EMI Filter 2nd Order Low Pass 4 Channel R ... |
DataSheet: | AOZ8014DI Datasheet/PDF |
Quantity: | 1000 |
6000 +: | $ 0.07157 |
Current: | 20mA |
Height: | 0.031" (0.79mm) |
Size / Dimension: | 0.079" L x 0.079" W (2.00mm x 2.00mm) |
Package / Case: | 8-WFDFN Exposed Pad |
Mounting Type: | Surface Mount |
Voltage - Rated: | 5V |
Applications: | Data Lines for Mobile Devices |
Operating Temperature: | -40°C ~ 85°C |
ESD Protection: | Yes |
Values: | R = 100 Ohms, C = 17pF |
Series: | -- |
Resistance - Channel (Ohms): | 100 |
Attenuation Value: | -25dB @ 800MHz ~ 3GHz |
Center / Cutoff Frequency: | 125MHz (Cutoff) |
Number of Channels: | 4 |
Technology: | RC (Pi) |
Filter Order: | 2nd |
Type: | Low Pass |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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The AOZ8014DI is a highly advanced EMI/RFI filter designed to reduce the electromagnetic interference (EMI) and radio frequency interference (RFI) which can disrupt the performance of connected electrical devices. The device is especially suited to applications where electrical noise generated by electrical and electronic equipment causes interference. The device takes the form of an LC network, which consists of a capacitor and inductor, forming a combined low-pass RC filter. The device is designed with two common conductors which carry alternating current through either the capacitor or inductor of the device. The two conductors are grounded at some point in order to maintain the filtering performance of the device.
The operation of the AOZ8014DI is based on the LC design that combines the characteristics of both inductance and capacitance. The inductor is responsible for blocking electromagnetic signals at higher frequencies, while the capacitor is used to reject EMI/RFI signals at low frequencies. The filter is designed to restrict the passage of higher frequency noise, while allowing lower frequency signals to pass through. The device is designed to reject both the high frequency signals emitted by equipment operating in the electromagnetic spectrum, and the low frequency signals from radio frequency sources. The device does this by providing a path for the noise to be rejected, while allowing the accepted signals to continue to pass through to the device being protected.
The AOZ8014DI also provides a method for controlling and suppressing surge current. This is achieved by the device’s ability to alter its impedance in the presence of a surge current. This is particularly important in applications that require devices to operate in areas with high levels of EMI/RFI. The ability of the device to change its impedance allows it to regulate the current draw on the devices being protected, thus protecting them from potential harmful surge currents.
The device’s thermally robust construction has been designed to operate in temperatures ranging from -40 degrees Celsius to +105 degrees Celsius, and can be used in applications requiring extended operating temperatures. The AOZ8014DI device is designed to provide enhanced EMI/RFI suppression capabilities, while limiting the insertion loss to less than 5% in order to maintain system operation. This is achieved by utilizing the device’s low-pass RC network combined with its low impedance characteristics. The device has the added advantage of providing noise immunity to both radiated and conducted emissions.
Overall, the AOZ8014DI is a highly advanced EMI/RFI filter, which is well suited to any application in which radio frequency interference or electromagnetic interference is a concern. The device’s combination of low-pass RC filtering and thermally robust construction make it an ideal choice for applications such as medical equipment, telecommunication systems, and any other system that requires enhanced EMI/RFI suppression. The device is capable of providing superior EMI/RFI immunity and noise immunity in both radiated and conducted emissions, while limiting the insertion loss to less than 5% in order to maintain system operation.
The specific data is subject to PDF, and the above content is for reference
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