WMSIC Electronic Components

WINSOK WSP4953A

ModelWSP4953A
PackageSOP-8
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 26+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
WINSOK WSP4953A
Type
WINSOK
Minimum package
3000 编带

Technical parameters

Electronic Component
Electronic Component
Electronic Component
WINSOK
Electronic Component
WSP4953A
Electronic Component
1
Package
SOP-8
Electronic Component
2 P
Type
P
Electronic Component
MOSFET
Electronic Component
0.209g
Electronic Component
1
Electronic Component
BM0265069855
Operating Temperature
55℃~+150℃
Power Dissipation(Pd)
2W
Electronic Component
Electronic Component
Electronic Component
3000
Voltage(Vdss)
20V

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

WSP4953A 产品概述

一、产品简介

WSP4953A 是微硕(WINSOK)推出的一款双通道 P 沟道场效应管,采用 SOP-8 封装,集成两只 P 沟道 MOSFET。器件适用于中低电压高侧开关与功率路径控制场合,兼顾较低导通损耗与便捷的封装布局,适合消费类电子、电源管理与便携设备的电源开关应用。

二、主要参数

  • 通道数:2 个 P 沟道(Dual P-channel)
  • 漏源耐压 Vdss:20 V
  • 连续漏极电流 Id:5.8 A
  • 导通电阻 RDS(on):55 mΩ @ |Vgs| = 10 V(典型测量条件)
  • 总耗散功率 Pd:2 W(封装限值)
  • 阈值电压 Vgs(th):2 V(门限电压)
  • 总栅极电荷 Qg:16 nC @ 4.5 V(用于评估驱动能量)
  • 输入电容 Ciss:625 pF
  • 反向传输电容 Crss(Miller):60 pF
  • 输出电容 Coss:100 pF
  • 工作温度范围:-55 ℃ ~ +150 ℃
  • 封装:SOP-8
  • 品牌:WINSOK(微硕)

三、关键特性与性能解读

  • 低导通电阻(55 mΩ)意味着在中等电流下具有较低的导通损耗,适合作为高侧开关或并联使用以分担热量。
  • Pd = 2 W 说明功耗受限于封装散热能力,实际应用中需通过良好 PCB 散热(加大铜箔面积或散热铜柱)来提升热性能。
  • Qg = 16 nC(@4.5 V)表明栅极开关能量处于中等水平,驱动时需考虑驱动器的驱动电流与切换速度,频繁高速开关会增加驱动损耗。
  • Ciss、Crss 和 Coss 值用于评估开关时的 Miller 效应与 dv/dt 灵敏度,Crss 对栅极形成回馈,影响开关过渡和 EMI。

四、典型应用场景

  • 电池供电设备的高侧负载开关(如便携式终端、移动电源)
  • 电源管理与静态功率分配(多路电源切换、备份电源切换)
  • 逆向极性保护与电源路径控制
  • 低压 DC-DC 转换器中的高侧开关元件(需注意切换频率与热管理)

五、封装与热管理建议

  • SOP-8 封装便于表面贴装和 PCB 布局,但热阻相对较高,2 W 的耗散能力在无额外散热时有限。建议在 PCB 设计中:
    • 为每个 MOSFET 的散热焊盘增加铜量并采用多层过孔热通道;
    • 将器件放置于靠近散热路径或热敏元件的合理位置;
    • 在高电流场合评估并联使用或选用更大封装以降低结温。

六、设计与使用建议

  • 门极驱动:P 沟道器件需将栅极拉低(相对源极)以开启。为达到标称 RDS(on),通常在 |Vgs| ≈ 10 V 条件下测量,实际系统中应确保驱动电压范围能覆盖足够的 |Vgs|。
  • 开关损耗:若用于频繁开关场合,按 Qg 与开关频率计算驱动损耗,并评估 Crss 导致的 Miller 突变对开关时间的影响。
  • 热仿真:在设计阶段建议做热仿真或基于最大结温进行功耗与电流的安全裕量计算。
  • 测试:样机阶段应测量 RDS(on)、器件结温随电流的变化及开关波形,验证在目标工作点下的可靠性。

七、可靠性与注意事项

  • 工作温度范围宽(-55℃ 至 +150℃),适合多种环境;但长期高结温会加速老化,需遵循温升控制原则。
  • 在布局时注意减小源引线等寄生电感,避免高 di/dt 引起的振荡或过压。
  • 若用于汽车或工业类严苛环境,建议按系统要求进行额外的可靠性验证(温循环、湿热、冲击振动等)。

总结:WSP4953A 为一款面向中低压高侧应用的双通道 P 沟道 MOSFET,具有适中的导通电阻与栅极电荷,封装便于 PCB 集成。合理的驱动与 PCB 散热设计可在多种便携与电源管理场景中获得良好表现。

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