WMSIC Electronic Components

UMW BAT54S

ModelBAT54S
PackageSOT-23-3
BrandUMW
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
UMW BAT54S
Type
UMW
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
UMW
Electronic Component
BAT54S
Electronic Component
1
Package
SOT-23-3
Electronic Component
Schottky Diode
Electronic Component
0.033g
Electronic Component
1
Electronic Component
BM0226612905
Current
200mA
Diode
1
Current(Ir)
2uA@25V
(Vf)
1V@100mA
Electronic Component
Electronic Component
Electronic Component
3000
Voltage Rating(Vr)
30V

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

BAT54S(友台 UMW)产品概述

BAT54S 是一款由友台半导体(UMW)提供的肖特基(Schottky)二极管对,采用 SOT-23-3 小封装,内部为一对串联式二极管。该器件针对需要较快开关响应和低正向压降的应用场景设计,兼顾体积小、易于表面贴装的优点。下文给出主要参数、特性、典型应用及设计注意事项,便于工程选型与电路集成。

一、概况与主要规格

  • 器件类型:肖特基二极管,1 对串联式(双二极管串联)
  • 品牌/制造:UMW(友台半导体)
  • 封装:SOT-23-3(表面贴装)
  • 正向压降(Vf):1.0 V @ IF = 100 mA(典型测量条件)
  • 直流反向耐压(Vr):30 V
  • 连续整流电流(IF):200 mA
  • 反向漏电流(Ir):2 μA @ VR = 25 V(典型/最大值)
  • 非重复峰值浪涌电流(Ifsm):600 mA

以上参数为关键电气指标,具体时序、温度依赖与典型曲线请参照完整数据手册。

二、关键特性

  • 低正向压降:在中等电流条件下具有较低的压降特性(用户给定测量点为1.0 V@100 mA),有利于降低功耗与发热(在实际应用中应关注在不同电流点的 Vf 曲线)。
  • 低反向漏电:在 25 V 反向偏置时漏电约 2 μA,适用于对静态漏电敏感的便携或低功耗系统。
  • 中等电流能力:连续整流电流 200 mA,可满足小型电源轨保护、信号整流与电平移位等用途;若为更高瞬态电流提供 600 mA 的抗浪涌能力。
  • 紧凑封装:SOT-23-3 适配常见 SMT 生产线,便于在空间受限板上布置。

三、典型应用场景

  • 反向极性保护(小电流场合):串联结构便于在输入路径实现反向保护或多级钳位。
  • 低压整流与检测:在整流、峰值检测电路中用于快速导通与低损耗转换。
  • 电平移位与信号钳位:在混合信号电路中对高速信号提供钳位或保护功能。
  • 便携设备与电池供电系统:利用低漏电与低 Vf 优化待机功耗(在实际使用时关注 Vf 随电流的变化)。
  • EMI/ESD 辅助钳位(非替代专用 TVS):在组合保护方案中作为快速钳位元件。

四、封装与安装要点

  • 封装:SOT-23-3,三引脚布局。具体引脚定义(如二极管连接方式、公共端)应以 UMW 提供的数据手册为准,设计 PCB 时需严格参照厂方引脚和焊盘建议。
  • 装配:适用于常规 SMT 回流焊过程。为保证可靠焊接,建议遵循厂方回流曲线与潮湿敏感等级(MSL)说明。
  • 外形与热路径:SOT-23-3 为小型塑封,热阻较大;当重复或持续较大电流时需在 PCB 上提供足够散热(拉大铜箔,靠近接地或电源平面)。

五、热与电气限制与可靠性

  • 连续工作时请勿超过额定 200 mA,并考虑环境温度、PCB 散热条件和封装热阻带来的结温升高。
  • 在高反向电压(靠近 30 V)与高温条件下,反向漏电会增加,应评估在目标工作点的漏电容忍度。
  • 浪涌电流 Ifsm 为非重复峰值,适用于短时突发过流保护;不可作为长期过电流工作条件。
  • 对于关键可靠性应用(如医疗、航空)建议获取完整可靠性测试数据并与供应商确认。

六、设计与选型建议

  • 若目标工作电流常在几十到上百毫安区间,确认 Vf 在相关电流点(如 10 mA、50 mA)的实际数值,以便计算功耗与温升。
  • 在需要更低 Vf 或更小漏电的场合,比较同类 BAT 系列或其他肖特基器件的 Vf-IF 与 Ir-VR 曲线,选择最匹配的型号。
  • PCB 布局:尽量增大焊盘铜面积以改善散热;若串联在电源回路中,评估是否需要并联或更换更大电流等级器件。
  • 采购与替代:UMW 的 BAT54S 适合体积受限的低/中电流场合;如需更高电压或更低 Vf,可考虑其他厂商或型号(选型时以完整数据表为准)。

总结:UMW 提供的 BAT54S(SOT-23-3,1 对串联肖特基)在小体积、快速响应与中等电流能力方面具有优势,适用于便携电源保护、整流与信号钳位等多种场景。选型时应关注 Vf 与 Ir 在目标工作点的实际表现,合理进行热设计与焊接工艺控制。若需完整电气波形、封装尺寸、引脚定义与回流曲线,请参考 UMW 官方数据手册。

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