WMSIC Electronic Components

GATEMODE GM3088ENA

ModelGM3088ENA
PackageDFN8-EP(3x3)
BrandGATEMODE
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 Date code within 2 years

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
GATEMODE GM3088ENA
Type
GATEMODE
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
GATEMODE
Electronic Component
GM3088ENA
Electronic Component
1
Package
DFN8-EP(3x3)
Type
Transceiver
Electronic Component
RS-485 / RS-422IC
Electronic Component
1g
Electronic Component
256
Electronic Component
1
Features
Tx / Rx;;; Low Power
Electronic Component
BM0264240230
Operating Temperature
40℃~+85℃
Operating Voltage
3V~5.5V
Receiver
1
Data
16Mbps

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

GM3088ENA 产品概述

一、产品简介

GM3088ENA 是捷茂微(GATEMODE)推出的一款高性能半双工 RS‑485/RS‑422 收发器,支持单驱动器、单接收器结构,工作电压范围广(3.0V 至 5.5V),最大数据率可达 16Mbps。器件面向工业与嵌入式网络通讯场景,最多可挂接 256 个节点,提供全面的热插拔与故障保护功能,适用于对可靠性、抗扰度和低功耗有较高要求的现场总线与多点通信系统。

二、主要特点

  • 支持半双工 RS‑485 通讯,最高 16Mbps 数据速率,满足高速数据传输需求。
  • 单驱动器 / 单接收器结构,支持最多 256 个节点的多点总线拓扑。
  • 宽电源范围 3.0V ~ 5.5V,适配 3.3V 与 5V 系统。
  • 低静态电流,约 500 μA,便于低功耗系统设计与待机节能。
  • 高抗静电能力,ESD 抗扰度可达 ±15kV(常见 ESD 测试等级),提高现场抗干扰性。
  • 工作温度:-40℃ 至 +85℃,满足工业级应用温度要求。
  • 集成多项保护机制:热插拔保护、热关断(过温)保护、过流限制 / 短路保护、Tx/Rx 启用控制与使能关断模式。
  • 封装:DFN8‑EP (3x3),小型化且具有良好散热路径的裸露焊盘设计。

三、电气与环境指标(典型值 / 设计参考)

  • 工作电压:3.0V ~ 5.5V。
  • 数据率:高达 16Mbps(半双工)。
  • 静态电流:约 500 μA(器件空闲/低功耗状态)。
  • 节点数:最多支持 256 节点(总线级联能力)。
  • 温度范围:-40℃ ~ +85℃。
  • ESD 抗扰度:±15kV(常见静电放电测试等级)。

四、保护与可靠性设计

GM3088ENA 在器件级别内置多重保护,显著提升系统可靠性与现场可维护性:

  • 热插拔保护:在热插拔或现场接入时,器件能够吸收突发的差分电压、抑制瞬态冲击,降低接入损坏风险。
  • 热关断(Thermal Shutdown):在功率耗散或外部短路导致器件温度异常升高时自动进入热关断状态,防止器件过热失效。
  • 过流 / 短路保护:对输出短路或过流情况进行限流,保护驱动器及外部总线。
  • Tx / Rx 启用控制:独立的发送/接收使能端口,方便软件/硬件精确控制器件状态并实现半双工方向管理。
  • 使能关断(Shutdown):可强制器件进入低功耗高阻态,节约系统功耗并实现总线隔离。

五、封装与热管理

GM3088ENA 采用 DFN8‑EP (3x3) 封装,具有以下优势:

  • 小尺寸(3mm x 3mm),便于高密度 PCB 布局;
  • 裸露焊盘(EP)为散热和接地提供直接路径,有利于热量快速扩散并改善 EMC 性能;
  • 推荐在 PCB 设计中为裸露焊盘增加多盏通孔或铜箔散热区,以降低结温并提高可靠性。

六、典型应用场景

  • 工业自动化现场总线(PLC、分布式 I/O、现场设备通信)
  • 楼宇自控与安防监控网络(门禁、楼宇控制器、传感器网络)
  • 电力监测与能耗采集(电表、采集终端)
  • 智能仪表、环境监测节点与远程数据采集系统
  • POS 机、数采模块、远程控制器等需要抗干扰能力和热插拔支持的设备

七、设计注意事项与建议

  • 电源去耦:在 VCC 引脚附近放置 0.1 μF 陶瓷电容并邻近焊盘布板,抑制高频噪声。
  • 总线终端:在总线两端使用适当阻值(例如 120 Ω)差分终端电阻以减少反射;在多节点系统中配合偏置电阻保证空闲总线稳定。
  • 布线建议:差分线对走线长度一致、间距稳定以保证差模阻抗一致,尽量避免与高电流或大面积开关电源走线并行。
  • 保护器件:在高雷电或电磁干扰环境下,建议在差分总线上外加 TVS 二极管、共模扼流圈或缓冲电阻以增强系统级抗扰度。
  • 散热管理:若长期大电流工作或环境温度高,需在 PCB 上为裸露焊盘提供足够的铜面积与过孔散热路径,配合器件热特性确保不触发热关断。

总结 GM3088ENA 以其宽电压、低功耗、高速率以及完善的现场保护机制,为工业与嵌入式多点通信提供了可靠的收发解决方案。小型 DFN8‑EP 封装和工业级温度范围使其在空间受限且要求稳定运行的应用中表现出色。工程师在系统设计时结合适当的 PCB 布局、终端匹配与外部保护元件,可以获得最佳的通信稳定性与现场可靠性。

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