WMSIC Electronic Components

BLUE ROCKET BR80N08A

ModelBR80N08A
PackageTO-220
BrandBLUE ROCKET
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
BLUE ROCKET BR80N08A
Type
BLUE ROCKET
Minimum package
50 管

Technical parameters

Electronic Component
Electronic Component
Electronic Component
BLUE ROCKET
Electronic Component
BR80N08A
Electronic Component
1
Package
TO-220
Electronic Component
1 N
Type
N
Electronic Component
MOSFET
Electronic Component
2.7g
Electronic Component
1
Electronic Component
BM0233262430
Operating Temperature
55℃~+150℃
Power Dissipation(Pd)
165W
Electronic Component
Electronic Component
Electronic Component
50
Voltage(Vdss)
80V

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

BR80N08A 产品概述

BR80N08A 是一款面向高电流开关应用的 N 沟道功率 MOSFET,封装为 TO-220,适合在较宽的温度范围内工作(-55℃ 至 +150℃)。该器件以 80V 的耐压等级和极低的导通电阻为特点,适用于需要低导通损耗与高峰值电流能力的电源和驱动场合。

一、主要规格与特性

  • 类型:N 沟道功率 MOSFET(单个)
  • 漏极-源极耐压 Vdss:80 V
  • 阈值电压 Vgs(th):4 V @ 250 μA(表示开始导通的门限电压)
  • 导通电阻 RDS(on):8 mΩ @ Vgs = 10 V(低导通阻抗,适合大电流应用)
  • 连续漏极电流 Id:100 A(工况依散热条件)
  • 功耗 Pd:165 W(通常指在良好散热条件下的耗散能力)
  • 输入电容 Ciss:3.2 nF(对开关驱动能量和速度有重要影响)
  • 输出电容 Coss:330 pF(影响关断过程中的能量回收)
  • 反向传输电容 Crss(Miller 容):260 pF(影响栅极驱动的 Miller 效应)
  • 封装:TO-220(便于安装散热器与手工焊接)
  • 工作温度范围:-55℃ 至 +150℃

二、性能解读与设计要点

  • 低导通阻抗:8 mΩ(在 Vgs=10 V)意味着在高电流下导通损耗小,适合作为低压降开关或同步整流器使用。但此 RDS(on) 指定在 10 V 门极驱动条件下获得,若仅以 5 V 驱动,实际 RDS(on) 会显著增大,应据此评估损耗。
  • 门极阈值与驱动建议:Vgs(th)=4 V(@250 μA)表明器件并非严格的低电平门驱动型(logic-level),要获得数据表所示的低 RDS(on) 建议采用接近 10 V 的门极驱动。驱动电压变动会显著影响导通电阻与开关损耗。
  • 开关特性与电容影响:Ciss=3.2 nF 表示驱动时需要注入相对较大的门极电荷。近似门极总电荷 Qg 可由 Q ≈ Ciss × ΔV 估算:在 0→10 V 的驱动下 Q ≈ 3.2 nF × 10 V = 32 nC(这是粗略估计,实际 Qg 还与 Miller 平台有关)。Crss=260 pF 值较大,说明在开关转换(尤其关断到导通的 Miller 期间)对栅极控制要求较高,容易出现过渡期间的电压耦合,需要合适的栅极阻尼与驱动能力以抑制振铃与过度功耗。
  • 输出电容 Coss 与开关损耗:Coss=330 pF 决定了每次开关过程中需充放电的能量(E ≈ 0.5·Coss·V^2),在高频开关时会成为显著的能量损耗项,需在系统层面考虑。

三、典型应用场景

  • 开关电源(SMPS)主开关或同步整流器
  • DC–DC 降压转换器、升压/降压模块
  • 电机驱动与电源管理(需要大电流承载)
  • 汽车电子(在符合散热与电磁兼容设计下)
  • 开关负载与功率分配模块

四、布局与热管理建议

  • 封装为 TO-220,便于安装散热器。要充分利用外壳与散热装置以确保 Pd 参数能被满足,实际允许的连续电流需结合器件与环境温度、散热路径(散热器、风冷或导热垫)共同评估。
  • 建议使用绝缘垫或者绝缘螺柱时注意热阻增加,必要时选用导热且电绝缘性能良好的材料。
  • 在高速开关或高电流场合,应注重 PCB 布局,减小回流环路面积,使用足够的铜厚和加宽电源回路以降低寄生电阻与电感。

五、驱动与保护建议

  • 为减小开关应力与电磁干扰,建议在门极串联 5–20 Ω 的栅极电阻进行阻尼,实际选值需结合电路寄生参数与开关速度调试。
  • 对于感性负载或高 dv/dt 场合,应设计合适的吸收网络(RC 缓冲或 TVS)以吸收反向峰值并保护器件。
  • 建议在控制逻辑中增加软启动与过流保护,避免在器件进入热耗尽或 SOA(安全工作区)之外时仍承受大功率。

六、可靠性与处理注意

  • 在装配过程中注意静电防护(ESD)与适当的焊接温度曲线,以免损伤器件。
  • 长期工作在高温环境时应对器件进行合适的降额设计,保证热循环与应力不会导致早期失效。

总结:BR80N08A 在 80 V 耐压下提供低至 8 mΩ 的导通阻抗和高达 100 A 的电流能力,适合需要低损耗与高电流承载的功率开关场合。设计时应重视门极驱动(建议 10 V)、栅极电荷与 Miller 容带来的开关控制需求,以及充分的散热与保护措施,以发挥其最佳性能。

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