WMSIC Electronic Components

ADI/LINEAR MAX13488EESA+T MAX13488EESA

ModelMAX13488EESA+T
PackageSOIC-Narrow-8
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 25+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR MAX13488EESA+T
Type
ADI/LINEAR
Minimum package
2500

Technical parameters

Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX13488EESA+T
Electronic Component
1
Package
SOIC-Narrow-8
Type
Transceiver
Electronic Component
RS-485 / RS-422IC
Electronic Component
0.213g
Electronic Component
128
Electronic Component
1
Features
Low Power
Electronic Component
BM0258688052
Operating Temperature
40℃~+85℃
Operating Voltage
4.75V~5.25V
Receiver
1
Data
16Mbps
Communication
Electronic Component

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

MAX13488EESA+T 产品概述

一、核心参数与功能概览

MAX13488EESA+T 是一款与 RS-422/RS-485 兼容的半双工收发器,适用于工业与通信总线系统。该器件集成 1 路驱动器和 1 路接收器,工作电压范围为 4.75V 至 5.25V,典型静态电流约为 4.5mA,支持最高 16Mbps 的数据速率,单总线可连接多达 128 个节点。器件封装为 SOIC-Narrow-8,工业级工作温度为 -40℃ 到 +85℃,并具备 ±15kV 的静电防护能力,适合在苛刻电磁环境下使用。

二、主要特性

  • 兼容 RS-422/RS-485 协议:支持差分信号传输,适用于长距离、抗干扰的串行通信。
  • 半双工通信模式:单线路收发切换,适合多节点轮询或主从式通信拓扑。
  • 1 驱动器 / 1 接收器:器件内部为一对差分驱动/接收通道,布线与控制较为简洁。
  • 宽电压工作:4.75V~5.25V 的标准 5V 供电,方便与常见 MCU/逻辑电平直接互联。
  • 较高数据速率:支持高达 16Mbps 的传输速率,满足大多数工业级短/中距高速通信需求。
  • 大节点支持:总线上最多支持 128 节点(基于标准 RS-485 拓扑限制),适合多节点分布式系统。
  • 低静态电流:静态电流约 4.5mA,有利于降低系统空闲时的功耗。
  • 工业级温度范围:-40℃ ~ +85℃,适用于工业现场与恶劣环境。
  • ESD 抗扰:静电防护 ±15kV,增强现场可靠性与装配抗损伤能力。
  • 小封装:SOIC-Narrow-8,便于 PCB 密集布线与自动化贴装。

三、典型应用场景

  • 工业自动化总线:PLC、远程 I/O、现场总线扩展等需要可靠差分通信的场合。
  • 楼宇与楼宇自控(BAS):楼宇控制器、门禁、安防与环境监测设备之间的串行通信。
  • 电能计量与数据采集(DAQ):多路传感器集中采集、集中式与远端仪表通信。
  • 电机控制与驱动:控制器与驱动器间的差分命令传输,适用于电磁干扰较高的环境。
  • 通用工业通信接口:用于将 MCU 或 DSP 与 RS-485/RS-422 总线连接的收发前端。

四、设计与布局建议

  • 电源去耦:在 VCC 附近放置 0.1µF 陶瓷去耦电容,并靠近器件引脚焊盘布置,以抑制瞬态噪声。
  • 终端匹配:在总线两端使用 120Ω(或根据线路特性选择合适阻值)的差分终端电阻,以减少反射并改善信号完整性。
  • 失效安全(bus bias):在总线上实现失能/空闲时的逻辑确定(例如通过偏置电阻或推荐的偏置网络),避免空闲时接收器输出漂浮。
  • 方向控制:半双工模式下需外部控制驱动器/接收器的发送/接收切换,建议在主控器中实现可靠的切换时序与确认机制,防止总线冲突。
  • 布线与接地:差分对保持成对走线、等长路由,尽量减少走线环路面积并确保信号地与电源地低阻抗连接,必要时采用地平面隔离敏感模拟电路。
  • ESD 与浪涌保护:尽管器件内部有 ±15kV 静电防护,受雷击或强浪涌场景影响时建议结合外部 TVS 二极管或共模抑制器进行增强保护。
  • 热设计:器件静态电流较低,但在高温、高密度板上仍需考虑散热条件并保证工作温度不超出 -40℃~+85℃ 范围。

五、可靠性与使用注意事项

  • 芯片兼容性:MAX13488EESA+T 与标准 RS-422/RS-485 物理层兼容,但在系统设计时需确认总线拓扑、节点数及线缆特性,以免超出标准限制。
  • 节点数量与负载:虽然理论上支持多达 128 个节点,但实际可达节点数受总线加载、收发器输入阻抗及线路长度影响,应在实际环境中验证。
  • 通信速率与线长折衷:高速(靠近 16Mbps)传输通常适用于较短线长;线长增加时需降低速率以保证误码率和信号完整性。
  • 可靠启动:在上电/掉电过程中注意避免产生总线竞争;建议在系统固件中实现启动互斥与故障检测机制。

六、总结

MAX13488EESA+T 提供了适用于工业与楼宇等应用的高可靠性差分收发能力,支持 16Mbps 的较高数据速率、5V 宽电压工作及工业级温度范围。其低静态电流与 ±15kV 静电防护使得该器件既适合长期在线的监控终端,也适用于抗干扰需求较高的现场设备。合理的终端匹配、偏置设计与布板注意事项将显著提升总线的稳定性与通信可靠性,是构建稳健 RS-422/RS-485 网络的实用选择。

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