Allicdata Part #: | MAX5063AASA-T-ND |
Manufacturer Part#: |
MAX5063AASA-T |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Maxim Integrated |
Short Description: | IC MOSFET DRIVER 8-SOIC |
More Detail: | Half-Bridge Gate Driver IC Non-Inverting 8-SOIC |
DataSheet: | MAX5063AASA-T Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Current - Peak Output (Source, Sink): | 2A, 2A |
Base Part Number: | MAX5063 |
Supplier Device Package: | 8-SOIC |
Package / Case: | 8-SOIC (0.154", 3.90mm Width) |
Mounting Type: | Surface Mount |
Operating Temperature: | -40°C ~ 150°C (TJ) |
Rise / Fall Time (Typ): | 65ns, 65ns |
High Side Voltage - Max (Bootstrap): | 125V |
Input Type: | Non-Inverting |
Series: | -- |
Logic Voltage - VIL, VIH: | 0.8V, 2V |
Voltage - Supply: | 8 V ~ 12.6 V |
Gate Type: | N-Channel MOSFET |
Number of Drivers: | 2 |
Channel Type: | Independent |
Driven Configuration: | Half-Bridge |
Part Status: | Obsolete |
Packaging: | Tape & Reel (TR) |
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The MAX5063AASA-T is a programmable gate driver integrated circuit (IC) from Maxim Integrated Products Inc. It forms part of the MAX series of such devices and is used for driving various MOSFET- and IGBT-based power switches in various applications. As a gate driver, it takes the low voltage input from a control source and switches it to the high voltage gate of the power switch. This ensures the proper operation of the power system with respect to voltage, current, and EMI.
The MAX5063AASA-T is designed with a control input of 3.3V to 5.5V and gate voltage of 6V to 40V. It has the ability to support both PWM and pulse-width current limiting and is capable of driving up to 12A peak current continuously.
The MAX5063AASA-T has several key features. One is the programmable current limit feature, which enables the user to specify the amount of current that the device will provide when a certain threshold is exceeded, thus preventing any damage that might occur from excessive current flow. Another important feature is the dynamic range compensation, which is used to adjust the gate drive in response to fluctuations in the load current, thereby guaranteeing reliable switching performance. The third key feature is the built-in EMI filter and latch circuitry, which helps reduce EMI-related problems on the system and minimize electromagnetic interference.
In terms of application fields, the MAX5063AASA-T can be used in intelligent motor control, solenoid and actuator applications, power distribution systems, and many other high current switching applications. It is also suitable for driving IGBT modules, power modules, and low-side pulse width modulation (PWM) controlled switches. Moreover, it can be used in harsh environments such as extreme temperatures, radiation, humidity, and corrosive environments.
The working principle of the MAX5063AASA-T is relatively simple. It operates by utilizing CMOS technology to translate the low voltage input into a desired amount of high voltage at the gate of the power switch. The device effectively divides the operating range of the power switch into several limits, which are programmable by the user. When a specified current is exceeded, the device switches the gate to its limit value, thus limiting the current flowing through the power switch. This enables the user to set the current based on the intended application and prevents any damage that might be caused by excessive current. In addition, the device maintains its high performance level even in combination with various power switches such as MOSFET or IGBT.
Overall, the MAX5063AASA-T is an easy to use, cost-effective solution for driving various power switches. This makes it an ideal choice for a wide range of applications such as intelligent motor control, solenoid and actuator applications, power distribution systems, and other high current switching solutions. Its programmable current limit feature and dynamic range compensation makes it suitable for use in harsh conditions, while the built-in EMI filter and latch circuitry helps ensure reliable operation.
The specific data is subject to PDF, and the above content is for reference
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