WMSIC Electronic Components

MMSZ3V6CW

ModelMMSZ3V6CW
PackageSOD-123
BrandYONGYUTAI
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
YONGYUTAI MMSZ3V6CW
Type
YONGYUTAI
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
YONGYUTAI
Electronic Component
MMSZ3V6CW
Electronic Component
1
Package
SOD-123
Electronic Component
Zener Diode
Electronic Component
0.03g
Electronic Component
1
(Zzk)
600Ω
(Zzt)
90Ω
Electronic Component
BM0228560699
Diode
1
Current(Ir)
5uA@1V
Power Dissipation(Pd)
500mW
Electronic Component
3.4V~3.8V
Electronic Component
Electronic Component

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

MMSZ3V6CW(YONGYUTAI 永裕泰)产品概述

一、产品简介

MMSZ3V6CW 是 YONGYUTAI(永裕泰)推出的独立式稳压二极管,标称稳压值为 3.6V,实际稳压范围为 3.4V~3.8V。器件采用 SOD-123 表面贴装封装,额定耗散功率 Pd 为 500mW,适用于低功耗电压基准、小信号稳压与浪涌保护等场合。该器件在反向偏置下工作,反向电流 Ir 在 1V 条件下典型为 5µA,便于在低电流应用中保持较小漏流。

二、主要电气参数

  • 标称稳压值:3.6V(范围 3.4V~3.8V,约 ±0.2V)
  • 反向电流 Ir:5µA @ 1V
  • 耗散功率 Pd:500mW(封装热阻与实际安装影响散热能力)
  • 阻抗(动态阻抗):Zzt = 90Ω,Zzk = 600Ω(均在规定测试条件下测得)
  • 封装:SOD-123(SMT)

三、关键特性解析

  • 稳压精度:3.4V~3.8V 的范围表明器件为通用型稳压二极管,适合对精度要求不苛刻但需稳定基准电压的应用。
  • 低反向漏电:Ir = 5µA(@1V)利于在低电流偏置电路中使用,减少静态漂移与功耗。
  • 动态阻抗:Zzt(较低)表示在正常工作电流附近具有较好的电压保持能力;Zzk(较高)反映在接近击穿起点时电压较敏感,设计时应注意工作点避免落在陡峭的“膝区”。
  • 功率与封装:500mW 的耗散能力给出理论上限,但 SOD-123 的热阻较高,实际连续允许电流应做保守处理并考虑 PCB 散热条件。

四、典型应用场景

  • 作为 3.6V 参考电压源,用于模拟前端、基准源或给低速 ADC 提供参照点。
  • 小型电源轨稳压与分压补偿,作为并联稳压元件配合限流电阻使用。
  • 输入浪涌或瞬态抑制,用于对敏感节点做钳位保护(限于低能量脉冲)。
  • 偏置电路与信号电平偏移电路中作为低成本电压参考。

五、设计与使用建议

  • 工作电流与功耗:理论最大稳压电流 Iz_max = Pd / Vz ≈ 500mW / 3.6V ≈ 139mA(理论值)。但由于 SOD-123 封装的散热限制,推荐连续工作电流显著低于该值(通常在几十 mA 范围内),具体取决于 PCB 面积与散热条件。
  • 限流电阻选择:稳压电路通常采用串联电阻 Rs,计算公式 Rs = (Vin - Vz) / Iz。例如,若 Vin = 5V、目标 Iz = 10mA,则 Rs = (5 - 3.6) / 0.01 = 140Ω。注意同时检查电阻与二极管的功耗。
  • 避免在“膝区”工作:由于 Zzk 较大,靠近击穿起始电流时电压变化明显,设计时应使工作点处于动态阻抗较低的区域以获得更稳定电压。
  • 降低噪声与瞬态响应:在需要更低噪声或更快瞬态响应的场合,可在二极管并联适量电容或优化偏置网络以改善瞬态性能。
  • 温度影响:稳压值会随温度变化,需在系统级别评估温漂对整体精度的影响并留有裕量。

六、封装与装配注意

SOD-123 为常见 SMT 小封装,适合自动贴装与回流焊工艺。装配时注意:

  • 遵守推荐回流曲线,避免过热导致器件性能退化。
  • PCB 设计时为器件周边提供必要的散热铜箔或加强散热通道,以提高实际耗散能力。
  • 焊盘设计与焊接工艺需保证可靠接触并避免应力集中。

七、选型与可靠性建议

  • 若电路对稳压精度或温漂有较高要求,考虑使用更高精度的参考源或配合温度补偿电路。
  • 在高脉冲功率或频繁浪涌环境中应优先评估能量吸收能力并可能换用大功率封装器件。
  • 选型时核对厂方完整数据手册(IV 曲线、温度系数、最大结温等),并在实际 PCB 条件下做功耗和温升测试以确认长期可靠性。

总结:MMSZ3V6CW(YONGYUTAI)是一款面向低功耗、通用稳压与保护应用的 3.6V 独立式稳压二极管,SOD-123 小封装适合 SMT 组装。设计时应重视封装散热限制、动态阻抗特性与工作点选择,以确保稳定可靠的电压基准与保护功能。

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