WMSIC Electronic Components

MCC 2N7002KHE3-TP 2N7002KHE3

Model2N7002KHE3-TP
PackageSOT-23
BrandMCC
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
MCC 2N7002KHE3-TP
Type
MCC
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
MCC
Electronic Component
2N7002KHE3-TP
Electronic Component
1
Package
SOT-23
Electronic Component
1 N
Electronic Component
MOSFET
Electronic Component
0.038g
Electronic Component
1
Electronic Component
BM0264353743
Operating Temperature
55℃~+150℃
Power Dissipation(Pd)
350mW
Electronic Component
Electronic Component
Electronic Component
3000
Voltage(Vdss)
60V
Capacitor(Ciss)
16pF

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

2N7002KHE3-TP 产品概述

一、产品简介

2N7002KHE3-TP 是一款由 MCC(美微科)出品的 N 沟道增强型场效应管(MOSFET),采用 SOT-23 小型封装,适合于空间受限的低功耗开关和驱动应用。器件额定漏源电压为 60V,连续漏极电流 340mA,最大耗散功率为 350mW,适用于中低电流、较高耐压但对功耗敏感的场合。

主要参数(典型/额定):

  • 极性:N 沟道
  • Vdss(最大漏源电压):60V
  • Id(连续漏极电流):340mA
  • RDS(on)(导通电阻):2.5Ω @ VGS = 10V
  • Pd(耗散功率):350mW
  • VGS(th)(阈值电压):1V(典型)
  • Qg(总栅极电荷量):880pC @ 10V
  • Ciss(输入电容):16pF
  • Crss(寄生反向传输电容):3pF
  • 工作温度范围:-55℃ ~ +150℃
  • 封装:SOT-23(3 引脚)
  • 数量:1 只

典型 SOT-23 引脚排列(自上而下或按常见封装):1 = G(栅极),2 = D(漏极),3 = S(源极)。使用前请以实际封装图和厂商数据手册为准。

二、主要特性与亮点

  • 60V 的高耐压能力,可用于较高电压的开关场合,例如电源管理、隔离侧开关或高侧保护(需配合电路设计)。
  • SOT-23 小封装,适合表面贴装(SMT),节省 PCB 面积。
  • 阈值电压约 1V,表现为易被低电压驱动的特性,但要注意在低 VGS 下 RDS(on) 会显著增大。
  • 相对较大的栅极电荷(880pC@10V),意味着在快速开关时需要考虑栅极驱动能力与切换损耗。
  • 低输入电容(Ciss = 16pF)和较小的 Crss(3pF),在一定程度上有利于降低开关损耗与耦合干扰,但总体切换性能受 Qg 影响明显。

三、典型应用场景

  • 小信号开关:逻辑电平控制的低速负载开关、继电器驱动前置开关等。
  • 电源管理:高压保护、反向电流切断、负载切换(注意功耗限制)。
  • 电平转换(小电流):在需要电压隔离或电平位移的场景,作为双向或单向电平转换器件使用(需按电路要求设计)。
  • 测试与保护电路:入/出端短路检测、过压保护电路中的元素开关。

四、使用注意与设计建议

  1. 热设计与功耗计算
    • RDS(on) = 2.5Ω @ VGS = 10V,若在最大连续电流 Id = 340mA 下工作,导通损耗约为 Pd_cond = I^2 * R ≈ 0.34^2 * 2.5 ≈ 0.29W,接近器件额定耗散功率 0.35W。实际环境温度、PCB 热阻和封装散热条件会显著影响器件温升与可靠性,建议预留安全裕量或采取散热改善措施(加铜箔、减少占空比或并联)。
  2. 栅极驱动
    • 总栅极电荷量 Qg = 880pC@10V 相对较大,意味着快速切换时需要较大的瞬时驱动电流。若使用 MCU 或弱电驱动器直接驱动,建议串联栅极电阻(10Ω~100Ω)以控制开关振铃,并确保驱动源能提供足够的电流,否则开关速度会受限、产生额外开关损耗。
  3. 开关频率限制
    • 由于较高的 Qg,在高频切换(几十百 kHz 以上)时会出现明显的切换损耗与发热。推荐用于低频或开/关频率较低的应用场景;若需高频应用,请选用 Qg 更小、RDS(on) 更低的替代器件。
  4. 工作点选择
    • VGS(th)≈1V 表示器件在较低栅压下会导通,但此时 RDS(on) 远高于标称值。若需低导通损耗,应尽量在较高栅压(例如 10V)下工作;如果供电仅为 3.3V 或 5V,应以该栅压下的 RDS(on) 为设计依据。
  5. PCB 布局
    • 确保漏极与源极的走线阻抗与散热路径优化;减小走线电阻和热阻以降低局部温升;栅极走线应短且靠近驱动源,必要时增加地平面以改善散热。

五、封装与可靠性

  • SOT-23 封装便于表面贴装与自动化贴装,但封装体积小所以散热能力有限。器件额定工作温度覆盖 -55℃ 到 +150℃,适合较广温区的工业与民用环境。
  • 出货前请参考 MCC 官方数据手册了解焊接温度曲线、回流规范与湿敏等级,确保组装过程不会损害器件可靠性。

六、选型建议

若应用要求持续大电流或高频率切换,应考虑 RDS(on) 更低、Qg 更小且在目标栅压下表现更优的替代型号;若空间受限且主要为低速开关或保护用途,2N7002KHE3-TP 在 60V 耐压与小封装方面具有吸引力。最终选型应依据实际工况(电流、开关频率、环境温度、散热条件)并结合厂商完整数据手册做最终确认。

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