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MC33774ATP1AER2
+Lista de MateriaisMC33774ATP1AER2
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FabricanteNXP USA Inc.
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Peça do Fabricante #MC33774ATP1AER2
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Ficha Técnica MC33774ATP1AER2 DataSheet
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Especificações
| Atributo | Valor |
| Part Status | Active |
| Function | Multi-Function Controller |
| Battery Chemistry | Lithium Ion |
| Number of Cells | 4 ~ 18 |
| Fault Protection | Over Temperature |
| Interface | I2C, SPI |
| Operating Temperature | -40°C ~ 125°C (TA) |
| Grade | Automotive |
| Qualification | AEC-Q100 |
| Mounting Type | Surface Mount |
| Package / Case | 64-LQFP Exposed Pad |
| Supplier Device Package | 64-LQFP (10x10) |
Visão Geral
Description
Key features include high accuracy in voltage sensing, integrated diagnostics, and support for various communication protocols to interface with other control units. The MC33774ATP1AER2 enhances battery longevity and efficiency by enabling balanced charging and discharging cycles. Its robust design is suitable for automotive environments, offering high reliability and efficiency.
This component plays a crucial role in ensuring the safe and efficient operation of lithium-ion battery packs by preventing overcharging, over-discharging, and overheating, thus contributing to the overall safety and performance of the battery systems it manages.
Equivalent
1. Texas Instruments BQ76PL455A-Q1
2. Analog Devices LTC6811
3. Maxim Integrated MAX17843
These alternatives offer comparable functionalities such as monitoring, balancing, and protecting battery cells in automotive and industrial applications. Always ensure compatibility with your specific requirements and system design when considering equivalents.
Features
1. High Voltage Measurement Accuracy: Provides precise voltage readings with a high degree of accuracy, essential for efficient battery management.
2. Passive Cell Balancing: Includes integrated passive balancing circuits to ensure uniform charge distribution across all cells, prolonging battery life.
3. Temperature Sensing: Supports temperature monitoring of the battery pack through external sensors, aiding in thermal management and safety.
4. High-Speed Communication: Features a robust communication interface, typically SPI or CAN, allowing fast data transfer between the controller and the main battery management system (BMS).
5. Low Power Consumption: Designed to operate efficiently with minimal power draw to extend overall battery life.
6. Safety Features: Includes built-in diagnostic and fault detection capabilities to ensure safe operation under various conditions.
These features make the MC33774ATP1AER2 suitable for applications requiring reliable battery monitoring and management solutions.
Pinout
This IC is packed in a 48-pin LQFP (Low Quad Flat Package), which provides sufficient pin count to support its advanced features. Key functions of the MC33774ATP1AER2 include precise voltage monitoring, balancing of battery cells, fault detection, and communication interfaces for integration with larger battery management systems.
The device supports both high- and low-side measurement configurations and typically includes SPI communication interface for data exchange, allowing it to be easily integrated with microcontrollers for comprehensive battery management solutions. The MC33774ATP1AER2 offers flexibility and scalability for various battery system designs, ensuring safety and longevity of battery packs by preventing overcharging, deep discharging, and thermal runaway conditions.
Manufacturer
Application
1. Battery Management Systems (BMS) for electric and hybrid vehicles, providing accurate voltage monitoring and balancing for lithium-ion cells.
2. Energy storage systems, such as those used in renewable energy applications, to ensure reliable and efficient operation.
3. Industrial battery-powered equipment, offering precise cell monitoring and protection.
4. Uninterruptible Power Supply (UPS) systems, ensuring battery reliability and longevity.
5. Robotics and drones, where efficient battery management is crucial for performance and safety.
Overall, it is used to optimize battery performance, enhance safety, and extend battery life.