WMSIC Electronic Components

Jingdao Microelectronics SMBJ90CA

ModelSMBJ90CA
PackageSMB(DO-214AA)
BrandElectronic
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 Electronic Component

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
Electronic SMBJ90CA
Type
Jingdao Microelectronics
Minimum package
3000

Technical parameters

Electronic Component
Electronic
Electronic Component
SMBJ90CA
Electronic Component
1
Package
SMB(DO-214AA)
Electronic Component
Electronic Component
Type
TVS
Electronic Component
ESD and Surge Protection (TVS / ESD)
Electronic Component
0.167g
Electronic Component
1
Cj- Capacitor
390pF
Electronic Component
BM0227597905
Operating Temperature
65℃~+150℃
Voltage
146V
Electronic Component
IEC 61000-4-2
Current(Ir)
1uA
Voltage(VBR)
111V

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

SMBJ90CA DX — TVS二极管产品概述

一、产品简介

SMBJ90CA DX 是晶导微电子出品的一款双向瞬态电压抑制(TVS)二极管,封装为 SMB (DO-214AA)。该器件专为防护电子设备免受雷击、浪涌与静电放电(ESD)等瞬态过压事件设计,满足 IEC 61000-4-2 静电防护等级要求。器件在 10/1000 μs 浪涌条件下可承受 600 W 峰值脉冲功率,能够为工业、通信、电源与接口保护提供可靠的抑制能力。

二、主要电气参数

  • 极性:双向(Bidirectional),对正负极性瞬态均有抑制能力,适用于交流或双向信号/电源线防护。
  • 反向工作电压 Vrwm:90 V(工作电压下的稳态电压)
  • 击穿电压(典型/最小值):111 V(器件进入浪涌钳位前的击穿区)
  • 钳位电压 Vcl:146 V(在指定脉冲电流下的典型钳位电压)
  • 峰值脉冲电流 Ipp:4.1 A(10/1000 μs 波形条件)
  • 峰值脉冲功率 Ppp:600 W(10/1000 μs 标准波形)
  • 反向泄漏电流 Ir:1 μA(在 Vrwm 条件下的微小漏电)
  • 结电容 Cj:390 pF(在指定偏压条件下的结电容)
  • 工作温度范围:-65 ℃ ~ +150 ℃

以上参数基于制造商典型测量与 10/1000 μs 浪涌测试规范,用于评估器件在真实工业脉冲下的防护能力。

三、性能亮点与应用场景

  • 高能量吸收能力:600 W(10/1000 μs)峰值功率与 4.1 A 峰值脉冲电流,使其适合抵御较大能量的浪涌,如电源浪涌、雷电感应浪涌等。
  • 双向结构:对交流线路、双向数据/信号线、以及需要在正负方向都防护的电源轨(例如某些工业控制线路)尤为合适。
  • 低漏电流:1 μA 的反向漏电保证在正常工作时对电路的影响很小。
  • 宽工作温度:-65 ℃ 至 +150 ℃,适应工业级与户外设备的宽温度环境。
  • 符合 IEC 61000-4-2:可用于需要满足静电放电测试的产品设计。

典型应用包括:工控电源输入、逆变器/驱动器防护、通信基站线路保护、工业接口(RS-485 总线等非高速差分线)、配电箱与车载电子防浪涌保护等。

四、选型与设计注意事项

  1. 结电容影响:390 pF 的结电容对高频或高速数据线会引入明显的负载与信号失真,因此不建议用于高速差分信号(如 USB3.0、千兆以太网、HDMI 等)。适合用于电源线、低速控制/信号线及劳逸结合的接口保护。
  2. 电压等级匹配:Vrwm=90 V,击穿约 111 V,钳位 146 V,适用于峰值电压在其范围内的电源线路。若保护 DC 直流稳压电源,若工作电压接近或高于 Vrwm,应优先选择单向高压 TVS 或按应用重新评估。
  3. 能量管理:器件能承受短时大能量脉冲,但不是连续能量消耗元件。对频繁或更高能量的浪涌,需与气体放电管(GDT)、金属氧化物压敏电阻(MOV)或熔断器配合使用以分担能量。
  4. 热量与电气应力:在布局时为器件提供良好散热路径,使用宽铜线与足够焊盘面积,有利于热扩散与脉冲期间电流承载。

五、PCB 布局与安装建议

  • 位置靠近受保护的输入/连接器:将 TVS 放置在信号线/电源进入 PCB 的最靠近处,缩短走线以减少感抗和阻抗不连续。
  • 短而宽的走线:输入端至 TVS 的走线应尽可能短且宽,以降低寄生电感,提高钳位效率。
  • 接地处理:对于双向 SMB TVS,尽量保证与系统地线或保护地有低阻抗连接,避免地回路引起的误触发。若 PCB 有多层地,优先使用固体地层并在器件附近开窗良好焊盘。
  • 对于高能量应用,可增加旁路电阻或熔断器以限制通过 TVS 的能量并提供二次保护。

六、可靠性与合规

SMBJ90CA DX 在工业温度范围内稳定工作,符合 IEC 61000-4-2 标准对静电放电防护的要求。作为瞬态抑制元件,应参考制造商的冲击电流曲线与寿命数据,在设计中考虑浪涌频率、能量与环境应力对长期可靠性的影响。

七、替代与扩展建议

  • 若需要更低结电容以兼顾高速信号,建议选用专为高速接口设计的低 Cj TVS。
  • 对直流正极单向保护的线路,考虑使用单向(Unidirectional)TVS,以获得更低的钳位电压与更小的封装影响。
  • 对极大能量浪涌(如直接雷击后果),采用 TVS 与 GDT/MOV 级联保护,提高整体系统抗浪涌能力。

结论:SMBJ90CA DX 以其高能量吸收能力、双向防护特性及工业级温度范围,适合用于电源与较大能量脉冲防护场景。设计时应结合结电容、系统电压与散热考虑,合理布置与级联保护以确保长期可靠性。

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