WMSIC Electronic Components

WINSOK WST3406A

ModelWST3406A
PackageSOT-23-3L
BrandWINSOK
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 25+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
WINSOK WST3406A
Type
WINSOK
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
WINSOK
Electronic Component
WST3406A
Electronic Component
1
Package
SOT-23-3L
Electronic Component
1 N
Type
N
Electronic Component
MOSFET
Electronic Component
0.037g
Electronic Component
1
Electronic Component
BM0265743580
Operating Temperature
55℃~+150℃
Power Dissipation(Pd)
1W
Electronic Component
Electronic Component
Electronic Component
3000
Voltage(Vdss)
30V

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

WST3406A(N沟道MOSFET)产品概述

WST3406A是WINSOK(微硕)推出的一款N沟道增强型MOSFET,采用SOT-23-3L小型表面贴装封装,针对低压、中电流场景优化设计,具备低导通损耗、宽温度范围等核心特性,适用于便携式电子、电源管理等多类应用。

一、产品基本属性

WST3406A为单管N沟道MOSFET,基础属性清晰明确:

  • 器件类型:N沟道增强型场效应管(MOSFET);
  • 品牌型号:WINSOK(微硕)WST3406A;
  • 封装形式:SOT-23-3L(3引脚表面贴装,体积紧凑);
  • 工作温度范围:-55℃~+150℃(覆盖工业级与消费级环境);
  • 数量规格:单管集成(1个封装内含1个MOSFET)。

二、核心电性能参数解析

该器件的电性能参数针对低压应用做了针对性优化,关键参数及实际意义如下:

1. 电压与电流能力

  • 漏源击穿电压(Vdss):30V
    器件无栅极驱动时能承受的最大漏-源极电压,超过此值会导致击穿损坏,适配12V/24V等低压系统。
  • 连续漏极电流(Id):7A
    额定温度下允许的最大持续漏极电流,需配合PCB散热设计(如增大焊盘敷铜),避免过热失效。
  • 阈值电压(Vgs(th)):1.2V@250uA
    栅-源极电压达1.2V时器件开始导通(漏极电流Id=250uA),兼容3.3V/5V低电压系统,无需高电压驱动信号。

2. 导通与损耗特性

  • 导通电阻(RDS(on)):28mΩ@4.5V
    Vgs=4.5V时的漏-源导通电阻,数值远低于同类小型封装器件,导通损耗极低(损耗公式P=I²×RDS(on))。例如7A电流下损耗约1.37W,但需注意封装散热极限(Pd=1W),实际应用需控制电流或优化散热。
  • 最大耗散功率(Pd):1W
    封装允许的最大持续功率损耗,SOT-23封装散热能力有限,建议脉冲应用或轻载长期工作;若持续7A需配合散热片或PCB强化散热。

3. 开关与电容特性

  • 栅极电荷量(Qg):[email protected]
    栅极充电至导通所需总电荷量,数值适中,兼顾开关速度与驱动功耗,适配kHz级中等频率开关应用。
  • 电容参数:
    • 输入电容(Ciss):800pF(栅极与源极+漏极间电容,影响驱动难度);
    • 反向传输电容(Crss):91pF(漏极与栅极间电容,影响开关噪声);
    • 输出电容(Coss):112pF(漏极与源极间电容,影响开关损耗)。

三、封装与散热设计

WST3406A采用SOT-23-3L封装,尺寸小巧(约2.9×1.6×1.1mm),适合空间紧凑的便携式设备,但散热需注意:

  • PCB设计需增大漏极焊盘面积,连接内层敷铜提升散热效率;
  • 持续大电流场景下,环境温度建议不超过125℃,避免超过Pd极限。

四、典型应用场景

结合参数特性,WST3406A适用于以下低压中电流场景:

  1. 便携式电子设备:手机、平板、智能手表的电源管理(负载开关、充电电路);
  2. 小型DC-DC转换器:12V转5V/3.3V降压电路(低导通损耗提升效率);
  3. 电池保护电路:锂离子电池过充、过放、过流保护开关;
  4. 小型电机驱动:玩具电机、小型风扇、微型泵的驱动电路;
  5. 负载开关:低电压系统替代机械开关(无触点、长寿命)。

五、选型优势

对比同类SOT-23封装N沟道MOSFET,WST3406A具备以下核心优势:

  • 低导通损耗:28mΩ@4.5V导通电阻,7A电流下压降仅0.196V,效率提升显著;
  • 宽温度适应性:-55℃~+150℃覆盖工业级与消费级环境,可靠性高;
  • 低电压驱动:1.2V阈值电压兼容3.3V/5V系统,无需额外驱动电路;
  • 小型化设计:SOT-23封装适配紧凑产品布局,满足便携式设备小型化需求。

综上,WST3406A是一款专为低压中电流应用优化的N沟道MOSFET,平衡了导通损耗、开关速度与封装体积,适用于多种消费电子与工业小型设备场景。

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