WMSIC Electronic Components

AOS AONR66922

ModelAONR66922
PackageDFN-8(3x3)
BrandAOS
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 24+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
AOS AONR66922
Type
AOS
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
AOS
Electronic Component
AONR66922
Electronic Component
1
Package
DFN-8(3x3)
Electronic Component
1 N
Electronic Component
MOSFET
Electronic Component
0.237g
Electronic Component
1
Electronic Component
BM0058426312
Operating Temperature
55℃~+150℃
Power Dissipation(Pd)
4.1W;52W
Electronic Component
Electronic Component
Electronic Component
3000
Voltage(Vdss)
100V
Capacitor(Ciss)
2.18nF

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

AONR66922 产品概述

一、产品简介

AONR66922 是一款面向中高压开关应用的单片 N 沟道功率 MOSFET,额定漏源电压为 100V,采用紧凑的 DFN-8 (3.3 × 3.3 mm) 封装并带有外露散热焊盘(EP)。器件在常用工况下提供低导通电阻与较好的开关特性,适合用于同步整流、降压转换器、功率开关及工业驱动等场景。器件额定工作结温范围宽,-55℃ 至 +150℃(Tj)。

二、主要电气参数

  • 漏源电压 (Vdss):100 V
  • 导通电阻 RDS(on):9 mΩ @ Vgs = 10 V
  • 阈值电压 Vgs(th):2.0 V @ Id = 250 µA
  • 连续漏极电流 (Id):15 A(在 Ta 条件下);50 A(在 Tc 条件下)
  • 耗散功率 Pd:4.1 W(Ta);52 W(Tc)
  • 总栅极电荷 Qg:32.5 nC @ Vgs = 10 V
  • 输入电容 Ciss:2.18 nF
  • 输出电容 Coss:550 pF
  • 反向传输电容 Crss(Coss 的一部分):13 pF
  • 工作温度范围:-55 ℃ ~ +150 ℃(结温)

三、关键特性与优点

  • 低导通损耗:9 mΩ 的低 RDS(on) 在高电流工作情况下可显著降低导通损耗,提升效率。
  • 高压与大电流承载:100 V 额定电压配合较高的载流能力,适合在较高电压母线的开关应用中替代更大封装的器件。
  • 开关性能综合平衡:较高的输入电容与中等 Qg 值意味着在开关速度和驱动能量之间取得了平衡,适用于要求较低 EMI 与合理效率的场合。
  • 小尺寸 DFN-8 封装:占板面积小,外露散热焊盘便于 PCB 热管理与散热设计,适合高密度功率模块化设计。

四、典型应用场景

  • 同步整流降压(synchronous buck)转换器
  • 开关电源与电源管理模块(SMPS)
  • DC-DC 转换器与点-of-load(POL)电源
  • 电机驱动与功率开关阵列(中小功率)
  • 逆变器辅助开关、开关管级联应用

五、封装与热管理建议

DFN-8 (3.3×3.3 mm) 带外露焊盘的封装在 PCB 设计上便于热量传导到铜面层。建议做法:

  • 在外露焊盘下方与周围采用多层铜填充并加热导通孔(thermal vias),将热量传导至底层或内部大面积铜层。
  • 顶层与底层分别做宽铜箔散热铺铜,减小焊盘与走线电阻,利于高电流传输。
  • 在高功率工作点(靠近 Pd 指标)进行温升评估,验证在目标空气流动或散热条件下的结温是否满足安全余量。

六、驱动与布局注意事项

  • 栅极驱动:Qg = 32.5 nC,Ciss = 2.18 nF,驱动器需提供足够瞬态电流以满足目标开关速度。估算公式 Idrive ≈ Qg / tsw,例如希望在 100 ns 内拉满栅极,所需瞬态电流约 325 mA。根据系统对开关损耗与 EMI 的权衡调整驱动速率。
  • 栅极限流与吸收:推荐在栅极串联合适的栅极电阻(一般 5–20 Ω,根据系统 dv/dt 与振铃要求调整),并在需要时采用 RC 或 RCD 吸收来抑制能量回灌与过压。
  • Miller 效应:Crss = 13 pF,存在 Miller 电容引起的耦合,需注意在开关瞬间可能导致的门极过冲或误触发;布局上要缩短门极-源走线,减少环路电感。
  • 布局:功率环路(D-S 回路)尽量短且宽;驱动回路(G-S 回路)同样应缩短以减少寄生电感;将敏感信号走线远离开关结点以降低干扰。

七、可靠性与使用建议

  • 在高频开关与高电流循环应用下,关注热循环与封装应力,必要时在原型阶段进行加速老化测试。
  • 尽量避免长期在接近最大 Vdss 或最大 Pd 条件下工作,留足安全裕度以延长寿命。
  • 在并联使用多颗器件时需考虑电流均流与热分布,建议在 PCB 设计与散热方面做好对称布局。

AONR66922 以其 100 V 的电压等级、低 RDS(on) 与紧凑封装,为中高压功率转换方案提供了兼顾效率与面积的解决方案。实际选型时应结合工作频率、开关速度、散热条件与驱动能力进行评估与验证。

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