WMSIC Electronic Components

ADI/LINEAR MAX809TEUR+T MAX809TEUR

ModelMAX809TEUR+T
PackageSOT-23(TO-236)
BrandADI/LINEAR
Price Price on request Electronic component prices change quickly with market supply and demand. Please refer to the latest WMSIC quotation for current pricing.
Configuration
1 options
Configuration 22+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR MAX809TEUR+T
Type
ADI/LINEAR
Minimum package
2500 编带

Technical parameters

Electronic Component
Electronic Component
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX809TEUR+T
Electronic Component
1
Package
SOT-23(TO-236)
Electronic Component
Supervisorand positions IC
Electronic Component
0.033g
Electronic Component
1
Electronic Component
BM0264355813
Reset
140ms
Operating Temperature
40℃~+105℃@(TA)
Operating Voltage
1.2V~5.5V
ICType
Voltage Supervisor
Output Type
Electronic Component
Voltage
3.08V
Static Current(Iq)
50uA

For datasheets, package documents, compatible-part guidance, or other technical resources, contact WMSIC customer service. Availability is confirmed case by case.

MAX809TEUR+T 电源监控器产品概述

一、产品定位与核心功能

MAX809TEUR+T是一款单路电源监控器,专为微处理器(MCU/MPU)系统设计,核心作用是实时监测系统电源电压,当电压跌落至预设阈值以下时,输出低电平有效复位信号,强制系统进入复位状态,防止因电源不稳定导致的程序跑飞、数据错误或硬件损坏。

该型号无手动复位(MR)和看门狗定时器(WDT)功能,简化了电路设计与成本,适合对功能需求精准、无需额外冗余功能的应用场景,尤其适配3.3V系统的电源稳定性保障。

二、关键性能参数详解

MAX809TEUR+T的性能参数覆盖电源范围、监控精度、复位特性等核心维度,具体如下:

1. 电源与功耗特性

  • 工作电压范围:1.2V~5.5V,兼容绝大多数低压MCU(3.3V、5V系统),甚至可在部分低功耗MCU休眠电压下稳定工作;
  • 静态电流(Iq):仅50μA,低功耗设计适合电池供电设备(如便携式仪器、智能穿戴),不显著增加系统整体功耗。

2. 监控与复位特性

  • 单路电压监控:仅监测主电源VCC,无需额外电路,简化设计;
  • 复位阈值:3.08V(针对3.3V系统的典型阈值,3.3V-0.22V=3.08V,确保电源稳定在3.3V±5%范围内);
  • 复位输出:推挽式输出,无需外接上拉电阻,可直接驱动MCU复位引脚,输出电平稳定;
  • 复位超时时间:140ms,足够让MCU完成初始化(寄存器配置、RAM清零),避免复位时间过短导致系统启动异常;
  • 复位有效电平:低电平有效,与STM32、ATmega等主流MCU的复位引脚电平匹配。

3. 环境适应性

  • 工作温度范围:-40℃~+105℃(环境温度Ta),符合工业级标准,可在户外、车载、工业现场等恶劣环境下稳定工作;
  • 封装热特性:SOT-23封装散热面积小,但因功耗极低(仅50μA),无需额外散热措施即可满足温度要求。

三、封装与引脚配置

MAX809TEUR+T采用3引脚SOT-23封装(尺寸约2.9mm×1.6mm×1.0mm),引脚定义清晰:

  • 引脚1(VCC):电源输入,连接系统主电源;
  • 引脚2(GND):地,可靠连接系统地;
  • 引脚3(RESET):复位输出,低电平有效,直接连接MCU复位引脚。

小封装设计可显著节省PCB空间,适合紧凑型产品(如智能手环、小型传感器模块)。

四、典型应用场景

MAX809TEUR+T因参数匹配度高、成本低,广泛应用于以下场景:

  1. 3.3V/5V MCU系统:智能家居控制器、工业PLC模块、消费电子主板,保障电源跌落时系统复位;
  2. 电池供电设备:便携式医疗仪器、智能穿戴(手表/手环),低功耗不影响电池续航;
  3. 工业控制现场:电机控制器、传感器节点,宽温范围适配恶劣环境;
  4. 汽车电子(辅助模块):胎压监测辅助电路、车载小传感器节点,满足宽温需求。

五、应用设计注意事项

为确保稳定工作,设计时需注意:

  1. 电源滤波:VCC引脚与GND间并联0.1μF陶瓷电容,滤除高频噪声,避免误触发复位;
  2. 复位引脚冲突:若系统有其他复位源(如手动按钮),需确保电平逻辑一致(均为低电平有效),避免推挽输出与外部电路冲突;
  3. 阈值匹配:3.08V阈值仅适配3.3V系统,5V系统需选MAX813L(阈值4.63V);
  4. 焊接工艺:SOT-23封装引脚间距小,建议用回流焊,避免手工焊接短路。

六、选型对比参考

若需调整功能,可参考同系列型号:

  • MAX809R:与TEUR+T参数一致,仅复位为高电平有效,适配高电平复位MCU;
  • MAX810:带1.6s看门狗,适合需要系统喂狗的场景;
  • MAX811:带手动复位功能,适合人工干预需求。

MAX809TEUR+T的核心优势是低功耗、无冗余、成本低,是3.3V系统电源监控的高性价比选择。

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