CDBHM160L-HF Allicdata Electronics

CDBHM160L-HF Discrete Semiconductor Products

Allicdata Part #:

641-1431-2-ND

Manufacturer Part#:

CDBHM160L-HF

Price: $ 0.15
Product Category:

Discrete Semiconductor Products

Manufacturer: Comchip Technology
Short Description: BRIDGE RECTIFIER 60V 1A MBS
More Detail: Bridge Rectifier Single Phase Schottky 60V Surface...
DataSheet: CDBHM160L-HF datasheetCDBHM160L-HF Datasheet/PDF
Quantity: 62500
2500 +: $ 0.13085
5000 +: $ 0.12241
12500 +: $ 0.11397
25000 +: $ 0.10806
Stock 62500Can Ship Immediately
$ 0.15
Specifications
Series: --
Packaging: Tape & Reel (TR) 
Part Status: Active
Diode Type: Single Phase
Technology: Schottky
Voltage - Peak Reverse (Max): 60V
Current - Average Rectified (Io): 1A
Voltage - Forward (Vf) (Max) @ If: 650mV @ 1A
Current - Reverse Leakage @ Vr: 500µA @ 60V
Operating Temperature: -55°C ~ 125°C (TJ)
Mounting Type: Surface Mount
Package / Case: TO-269AA, 4-BESOP
Supplier Device Package: MBS
Base Part Number: CDBHM160
Description

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The CDBHM160L-HF is a high frequency, high power full wave bridge rectifier diode analysis system, designed to be used in a variety of applications, ranging from simple low-current applications to high-power applications in industrial settings. It is widely used in electrical, automotive, white goods and other industries. The device is suitable for a wide range of applications, such as rectification, inverters, high-current desugarization, high-voltage DC-DC converters, and many others.

The bridge rectifier design of this system is based on four silicon controlled rectifiers (SCRs), arranged so that each diode takes a portion of the input current. This design is used because it has better performance than other rectifier designs in terms of voltage drop and ripple voltage, which can result in improved efficiency. The SCRs need to be triggered in a specific order, which is done by the logic control circuit within the device.

The device is designed to make the best use of the silicon controlled rectifiers, and to make sure the performance is consistent with minimal system losses. The operating temperature range is extended from -40 to +125°C, and since the SCRs are temperature stable it provides a high level of system performance. In addition, the device has a high input surge capability, which is beneficial for applications that require rapid energy transfer.

The CDBHM160L-HF has a reverse voltage rating of 800V, and a surge current rating of 420A for a pulse duration of 8ms. The device is protected against too high a voltage, with a peak reverse voltage (PRV) of 1000V. The device has a high efficiency, up to 95%, and has a low thermal resistance, which helps to reduce system costs and increase operating temperature range.

In terms of working principle, the device is designed to rectify alternating current, by changing the direction of current flow. The output is a DC waveform, which is obtained by combining two alternating current waveforms that are out of phase. The bridge rectifier is designed to rectify the current in both directions, but with the addition of a diode, the rectifying can be made unidirectional, which is advantageous for many applications.

The CDBHM160L-HF is a high frequency rectifier, and as such has some advantages over traditional rectifiers. It has a higher switching frequency, meaning that it can be used in applications where faster response times are required. Additionally, it has an increased power density due to its higher operating frequency and lower power losses. This makes it more suitable for applications where space is at a premium.

To conclude, the CDBHM160L-HF is a high frequency, high power full wave bridge rectifier diode system, which is used for a variety of applications. It has a reverse voltage rating of 800V, and a surge current rating of 420A over an 8ms pulse duration. It also has a high efficiency and low thermal resistance, which helps reduce system costs and increase operating temperature range. In terms of working principle, the device is designed to rectify alternating current, by combining two alternating current waveforms to create a unidirectional DC waveform.

The specific data is subject to PDF, and the above content is for reference

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