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MAX17043X+T10
+BOMIC BATT MON LI-ION 1CELL 9WLP
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メーカーアナログ・デバイセズ社/マキシム・インテグレーテッド
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メーカー品番 #MAX17043X+T10
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データシート MAX17043X+T10 DataSheet
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在庫状況5200
365 日間品質保証
7*24 日間の品質保証
90-時間単位のサービス保証
1日間のアフターサービス保証
仕様
| 属性 | 値 |
| Series | ModelGauge™ |
| Part Status | Discontinued at Digi-Key |
| Function | Battery Monitor |
| Battery Chemistry | Lithium Ion/Polymer |
| Number of Cells | 1 |
| Interface | I2C |
| Operating Temperature | -20°C ~ 70°C (TA) |
| Mounting Type | Surface Mount |
| Package / Case | 9-WFBGA, WLBGA |
| Supplier Device Package | 9-WLP (1.26x1.26) |
| Base Product Number | MAX17043 |
概要
Description
Key features include an I2C interface for easy communication with microcontrollers, ultra-low power consumption, and a wide operating voltage range (2.5V to 4.5V). The device supports various configurations, allowing for flexible integration into different applications, from handheld devices to wearables.
The MAX17043X+T10 also includes features like a programmable alert system for low battery conditions, making it suitable for applications requiring efficient power management. Its compact size and efficient performance make it ideal for battery-operated devices, enhancing overall energy efficiency and extending battery life.
In summary, the MAX17043X+T10 offers an effective solution for battery monitoring and management, balancing precision, efficiency, and ease of use in portable electronics.
Equivalent
Features
1. Model-Based Algorithm: Utilizes a sophisticated model-based algorithm for precise battery state-of-charge (SOC) estimation.
2. I2C Interface: Facilitates easy communication with microcontrollers via a standard I2C interface.
3. Low Power Consumption: Designed for low power applications, making it suitable for portable devices.
4. Wide Operating Voltage Range: Supports battery voltages from 2.0V to 4.5V.
5. Built-in Temperature Compensation: Automatically adjusts SOC calculations based on temperature variations.
6. Programmable Parameters: Users can customize various settings to optimize performance based on specific application needs.
7. Compact Package: Available in a small, space-saving package ideal for compact designs.
8. Status Indicators: Provides flags for charge status, alerts, and battery health monitoring.
These features make the MAX17043X+T10 an excellent choice for applications requiring reliable battery management in portable and battery-operated devices.
Pinout
1. VDD (Pin 1) - Power supply input.
2. GND (Pin 2) - Ground reference.
3. SCL (Pin 3) - I2C serial clock input.
4. SDA (Pin 4) - I2C serial data input/output.
5. ALERT (Pin 5) - Interrupt output, indicates that data is available or a fault condition has occurred.
6. TSREF (Pin 6) - Temperature sensor reference pin.
7. TS (Pin 7) - Temperature sensor input.
8. VSS (Pin 8) - Ground reference for internal operations.
9. VC (Pin 9) - Battery voltage sensing input.
10. NC (Pin 10) - No connection; not used.
The MAX17043X+T10 is designed for monitoring lithium-ion battery status, providing accurate state-of-charge measurements through the I2C interface.
Manufacturer
In 2020, Maxim Integrated was acquired by Analog Devices, Inc. (ADI), a leading global high-performance analog technology company. This acquisition expanded ADI's portfolio and enhanced its capabilities in delivering innovative solutions to customers across different applications. The MAX17043X+T10 itself is a battery fuel gauge IC designed for portable devices, providing accurate battery state-of-charge information, making it essential for efficient battery management in modern electronics.
Application
1. Consumer Electronics: Smartphones, tablets, and laptops for precise battery monitoring.
2. Wearable Devices: Smartwatches and fitness trackers for real-time battery status.
3. IoT Devices: Battery-operated sensors and connected devices for efficient power management.
4. Medical Equipment: Portable devices requiring accurate battery life estimation.
5. Robotics: Autonomous systems needing reliable battery monitoring for performance optimization.
Its features enable accurate state-of-charge (SOC) calculations, ensuring efficient energy usage and extending battery life in these applications.