WMSIC Electronic Components

DOWO SMAJ30CA

ModelSMAJ30CA
PackageDO-214AC
BrandDOWO
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 26+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
DOWO SMAJ30CA
Type
DOWO
Minimum package
5000

Technical parameters

Electronic Component
DOWO
Electronic Component
SMAJ30CA
Electronic Component
1
Package
DO-214AC
Electronic Component
Electronic Component
Type
TVS
Electronic Component
ESD and Surge Protection (TVS / ESD)
Electronic Component
0.122g
Electronic Component
1
Electronic Component
BM0264801980
Operating Temperature
55℃~+150℃
Voltage
48.4V
Current(Ir)
1uA
Voltage(VBR)
33.3V
Electronic Component
5000
Power(Ppp)
400W@10/1000us

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

SMAJ30CA 瞬态抑制二极管(TVS)产品概述

一、产品核心定位与典型应用

SMAJ30CA是DOWO(东沃)品牌推出的双向瞬态抑制二极管(TVS),采用DO-214AC(SMA)贴片封装,专为低压电子电路的瞬态过压防护设计,可有效抑制静电放电(ESD)、电快速瞬变脉冲群(EFT)、雷击浪涌等瞬态干扰,保护敏感电子元件(如MCU、传感器、通信接口芯片等)免受损坏。

其典型应用覆盖多领域:

  • 消费电子:手机、平板、无线耳机的电源/信号接口防护;
  • 汽车电子:车载传感器(温度、压力)、显示屏、CAN总线接口的过压防护;
  • 工业控制:PLC模块、工业传感器、电源输入端口的浪涌抑制;
  • 通信设备:路由器、交换机、光模块的信号/电源防护。

二、关键电气参数详解

SMAJ30CA的核心参数围绕“防护性能+电路兼容性”设计,关键参数如下:

2.1 静态反向参数(正常工作状态)

  • 反向截止电压(Vrwm):30V:电路正常工作时,TVS反向偏置不导通,确保不影响电路功耗与信号传输;
  • 反向漏电流(Ir):1μA:漏电流极低,即使在最大工作电压下,也不会增加电路额外功耗;
  • 击穿电压(Vbr):33.3V(典型值):当电路电压超过33.3V时,TVS快速击穿导通,启动防护功能。

2.2 动态防护参数(瞬态过压状态)

  • 峰值脉冲功率(Ppp):400W@10/1000μs:采用行业标准“10/1000μs”雷击波形(10μs上升沿、1000μs下降沿),可承受400W峰值脉冲能量,满足雷击浪涌防护需求;
  • 峰值脉冲电流(Ipp):8.26A:与400W峰值功率对应,可瞬间泄放8.26A瞬态电流;
  • 钳位电压(Vc):48.4V:过压击穿后,TVS将电压钳位在48.4V以内,远低于敏感元件的损坏阈值(通常>60V),有效保护后级电路。

2.3 温度特性

  • 工作温度范围:-55℃~+150℃:宽温范围覆盖汽车级(-40℃+125℃扩展)与工业级(-40℃+85℃)需求,适应极端环境下的稳定工作。

三、封装与物理特性优势

SMAJ30CA采用DO-214AC(SMA)贴片封装,具有以下优势:

  1. 小体积高密度:封装尺寸约为2.7mm(长)×1.8mm(宽)×1.0mm(高),适合小型化、高密度PCB布局(如智能手机、微型传感器模块);
  2. 表面贴装工艺:支持自动化贴片生产,焊接效率高,降低人工成本;
  3. 双向极性设计:无需区分正负极,焊接时正反均可,简化电路设计与生产流程。

四、性能优势与可靠性

  1. 快速响应:TVS响应时间通常<1ns(行业典型值),可瞬间抑制ns级瞬态干扰(如ESD);
  2. 低钳位比:Vc/Vrwm≈1.61,钳位比低,过压时能将电压限制在较低水平,最大程度保护敏感元件;
  3. 高可靠性:多次脉冲耐受能力强(通常可承受数千次标准浪涌脉冲),宽温范围内性能稳定,符合汽车电子(AEC-Q101)与工业级可靠性要求;
  4. 低功耗:反向漏电流仅1μA,正常工作时几乎不消耗额外功率,不影响电路效率。

五、典型应用电路参考

5.1 电源输入防护电路

在直流电源输入端(如12V/24V电源),将SMAJ30CA并联在电源正负极之间(双向无需分正负极),当电源出现瞬态过压(如雷击浪涌、开关浪涌)时,TVS击穿钳位,将电压限制在48.4V以内,保护后级MCU、电源模块等元件。

5.2 信号接口防护电路

在通信接口(如UART、SPI、I2C)的信号线与地之间,并联SMAJ30CA,防止静电放电(ESD)或电磁干扰(EMI)浪涌损坏接口芯片。对于多线接口,可在每条信号线与地之间各并联一只SMAJ30CA。

5.3 汽车传感器防护电路

车载温度传感器、压力传感器的电源端与地之间,并联SMAJ30CA,适应汽车宽温环境(-40℃~+125℃)与恶劣电磁环境,防止传感器因瞬态过压损坏。

六、选型与使用注意事项

  1. 选型匹配原则:
    • Vrwm需大于电路正常工作电压(如电路正常电压24V,选30V的SMAJ30CA留有余量);
    • 钳位电压Vc需小于后级元件的最大耐受电压(如MCU最大耐受电压50V,48.4V满足要求);
  2. 焊接要求:
    • 回流焊峰值温度≤260℃,焊接时间≤30s;
    • 波峰焊温度≤245℃,焊接时间≤5s,避免高温损坏器件;
  3. 布局要求:
    • 尽量靠近防护对象或输入端口,减少引线长度(引线电感会降低防护效果);
    • 避免与高压元件相邻,防止串扰;
  4. 脉冲重复率:
    • 实际应用中需注意脉冲重复率,避免超过器件耐受的重复脉冲能量(通常低重复率脉冲<1Hz可安全工作)。

SMAJ30CA凭借小体积、双向防护、宽温可靠等优势,成为低压电路瞬态防护的高性价比选择,广泛适配多领域电子设备的过压防护需求。

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