WMSIC Electronic Components

GOODWORK BAT54S

ModelBAT54S
PackageSOT-23
BrandGOODWORK
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
GOODWORK BAT54S
Type
GOODWORK
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
GOODWORK
Electronic Component
BAT54S
Electronic Component
1
Package
SOT-23
Electronic Component
Schottky Diode
Electronic Component
0.034g
Electronic Component
1
Electronic Component
BM0257623375
Current
200mA
Diode
1
Current(Ir)
2uA
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(GOODWORK 固得沃克)产品概述

一、产品简介

BAT54S 为固得沃克(GOODWORK)推出的一款肖特基二极管,采用 SOT-23 小封装,内部为“一对串联式”二极管结构。其典型工作参数为:正向压降 Vf = 1V @ 0.2A,直流反向耐压 Vr = 30V,整流电流(平均正向电流)200mA,静态反向电流 Ir = 2μA,非重复峰值浪涌电流 Ifsm = 600mA。小型化封装与较优的开关与漏电特性,使其适合空间受限且需快速整流或保护的应用场合。

二、主要电气参数说明

  • 正向压降(Vf):1.0V 在 0.2A 条件下(典型);这是在较大工作电流下的压降参数,用户应根据实际工作电流和温度查阅具体 I–V 曲线以估算实际压降。
  • 反向耐压(Vr):30V,适合常见的低压电源及接口保护应用。
  • 整流电流(If):200mA(平均),适合中小电流的整流与保护。
  • 反向电流(Ir):2μA(静态),低漏电流有利于节能与高阻态电路的漏电控制。
  • 峰值浪涌电流(Ifsm):600mA(非重复),能承受短时间的电流冲击,例如开机或突发浪涌。

三、结构与封装特点

  • 封装:SOT-23(表面贴装,三引脚),体积小、适合自动贴装和回流焊工艺。
  • 内部结构:一对二极管串联,串联结构使得总正向压降为单管压降之和,适用于需要增加压降或分压保护的场合。
  • 热阻与散热:SOT-23 为小型封装,持续大电流时需关注结温上升,PCB热扩散与焊盘设计会直接影响可靠性。

四、性能优势

  • 开关速度快:肖特基二极管本征导电机制决定了其反向恢复时间短,适合高速整流与脉冲应用。
  • 低漏电与较高反向耐压的平衡:2μA 的低反向电流与 30V 的耐压在很多低功耗、低电压系统中具有良好适配性。
  • 小型化封装:SOT-23 带来 PCB 空间节约和成本优势,适合密集布板。
  • 串联结构的应用灵活性:通过串联可以提高总耐压或实现分压保护,但同时需注意正向压降累加。

五、典型应用场景

  • 低压电源整流与反向保护:用于小功率电源、备用电源切换等。
  • 电源路径选择与反向保护电路:在电池与外部供电之间进行防反接保护或 ORing。
  • 快速开关与钳位:用于钳位瞬态电压、保护敏感器件或接口(如 GPIO、通信线)。
  • 稳压/基准电路的电压偏移与保护:串联结构可用于微小电压堆叠或限制电压范围。
  • LED 驱动与指示电路:用于小功率 LED 与状态指示保护(注意 Vf 对 LED 电流的影响)。

六、设计与使用建议

  • 正向压降与功耗核算:串联结构会使总 Vf 增大,在 0.2A 条件下总功耗可达 P = Vf_total × I,应验证 SOT-23 的热能力及 PCB 散热设计。
  • 冷却与焊盘设计:建议在焊盘周围留足铜面积并通过若干过孔与底层铜平面连接,以利热量扩散。
  • 浪涌与保护:Ifsm 为 600mA(非重复),若电路可能出现更大或重复浪涌,应考虑加并联缓冲或选用更高 Ifsm 的器件。
  • 工作温度与漏电特性:反向电流随温度上升而增加,若在高温环境使用,应留有裕量并参考温度特性曲线。
  • 串联器件配合:若需要更高电流或更低 Vf,应考虑并联同型号器件(并联时需注意电流分配)或选用更高规格的单一器件。

七、选型注意与替代建议

  • 若目标为尽可能低的正向压降,应考虑专用低 Vf 的功率肖特基或更大封装(如 SOD-123、SMA 等)。
  • 若需更高电流承载或更高浪涌能力,可选用更大封装和更高 If/Ifsm 规格的肖特基。
  • 若对反向漏电极限更苛刻(例如 μA 级以下),应核对在高温条件下的 Ir 曲线或考虑化合物半导体器件。

八、可靠性与注意事项

  • 存储与潮湿:SOT-23 器件一般为卷带包装,使用前注意防潮等级,遵循回流焊前的烘烤与防潮规范。
  • 焊接温度:遵循厂商推荐的回流曲线,避免超温和超时造成器件热损伤。
  • ESD 防护:肖特基二极管对静电有一定敏感度,装配与测试过程中应采取防静电措施。

总结:GOODWORK 的 BAT54S(SOT-23,串联对)在空间受限、需中等电流整流或保护的设计上提供了可靠且成本合理的方案。设计时需重点关注正向压降、热管理与浪涌能力,合理选型与 PCB 布局可发挥其最佳性能。

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