WMSIC Electronic Components

CJ A44-TA

ModelA44-TA
PackageTO-92
BrandCJ
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
CJ A44-TA
Type
CJ
Minimum package
2000 未知

Technical parameters

Electronic Component
Electronic Component
Electronic Component
CJ
Electronic Component
A44-TA
Electronic Component
1
Package
TO-92
Electronic Component
1 NPN
Electronic Component
Transistor(BJT)
Electronic Component
0.315g
Electronic Component
1
Electronic Component
BM0259484787
Operating Temperature
55℃~+150℃
Transistor Type
NPN
Frequency(f T)
50MHz
Power Dissipation(Pd)
625mW
Electronic Component
Electronic Component
Electronic Component
2000

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

A44-TA(NPN)产品概述

A44-TA 是江苏长电(CJ)生产的一款高压小信号 NPN 三极管,采用 TO‑92 封装,适合需要高耐压与中等电流能力的开关和放大场合。该器件在耐压、饱和压降和频率特性之间取得了平衡,适用于工业控制、信号处理和高压驱动等应用。以下为基于提供参数的详细说明与使用建议。

一、主要特性概览

  • 型号:A44-TA(NPN)
  • 封装:TO‑92(单只,数量:1 个 NPN)
  • 品牌:CJ(江苏长电/长晶)
  • 集电极电流 Ic:最大 200 mA(瞬态或受限于热耗散)
  • 集—射极击穿电压 Vceo:400 V(高耐压特性)
  • 功耗 Pd:625 mW(器件最大耗散,需按热环境和封装条件降额使用)
  • 直流电流增益 hFE:典型 80(测试条件 10 mA, VCE = 10 V)
  • 特征频率 fT:50 MHz(适合音频、高速开关及部分低功率射频应用)
  • 集电极截止电流 Icbo:典型 100 nA(低漏电)
  • 集电极饱和电压 VCE(sat):约 0.3 V(测试条件 50 mA 和 5 mA)
  • 工作温度范围:-55 ℃ 至 +150 ℃
  • 发—基击穿电压 Vebo:5 V(注意勿反向过压)

二、电气性能要点与工程意义

  • 高耐压(Vceo = 400 V):使 A44‑TA 可在较高电压回路中作为开关或前级放大器使用,适合高压电源、小型逆变器或 HV 信号处理。
  • 中等电流能力(Ic 最大 200 mA):适合驱动小型负载或作为中低电流开关,但在连续工作条件下须受限于功耗 Pd。
  • 功耗限制(Pd = 625 mW):TO‑92 封装热阻较大,实际允许的集电极电压与电流组合受限。例如,在 Ic = 50 mA 时,若器件承受全部耗散,VCE 最大约为 0.625 W / 0.05 A = 12.5 V;在 Ic = 200 mA 时 VCE 最大仅约 3.1 V。因此在电路设计中须严格评估实际 VCE 与平均耗散,并做必要的热降额。
  • 增益与频率:hFE ≈ 80(10 mA)为中等增益,fT = 50 MHz 表明对一般音频及开关频率有良好响应,但不适合高功率或高频射频功率放大器。
  • 低漏电(Icbo ≈ 100 nA):有利于高压屏蔽或高阻输入场合,保证静态误差小。

三、典型应用场景

  • 高压小信号开关:在需要高耐压、但电流不大的开关点(例如高压测量、HV 传感器输入保护);
  • 驱动级与缓冲级:为其它器件提供中等电流驱动,或作为逻辑/模拟信号的电平转换器;
  • 小信号放大:音频前级、传感器放大器等,要求中等增益与较快响应;
  • 工业控制与电源电路:高压保护、欠压/过压检测、参考电路中的开关元件。

四、封装与热管理建议

  • TO‑92 封装热阻较大,器件耗散主要通过引脚和封装向环境传导。在无额外散热条件下,应按 Pd 625 mW 的限制并进行降额设计。
  • 建议采取以下措施延长可靠性并防止过热:
    • 限制连续集电极电流并避免在高 VCE 下连续工作;
    • 在需要较大功耗的脉冲应用中使用短脉冲并控制占空比;
    • 在 PCB 设计中增加铜箔散热、减小引线长度并注意组件间隔;
    • 对工作温度较高的场合按温度系数进行降额。

五、使用注意事项与典型电路提示

  • 切勿使基极-发射极反向电压超过 Vebo(5 V),以免损伤基极结。
  • 由于 VCE(sat) 典型仅约 0.3 V(在 50 mA、5 mA 条件),用于开关时导通损耗较小,但仍要考虑饱和恢复时间与驱动基极电流。
  • 典型使用配置:
    • 开关:在集电极串联负载,基极通过限流电阻驱动;确保基极提供足够的 Ib 以获得所需饱和(Ib ≈ Ic / βsat)。
    • 放大:使用共射或共集电路,按 10 mA 工况估算 hFE 以设计偏置点。
  • ESD 与焊接:在生产与装配中注意静电防护和温度控制,避免因过热或静电击穿造成失效。

六、采购与替代建议

  • 型号与分档:A44‑TA 为 TO‑92 封装的高压小信号 NPN,描述中出现的 “B 档 100–200” 可为分档或采购批次标注(若需特定 hFE 分档,请与供应商确认具体分档范围)。
  • 替代器件选择:如需更大电流或更低热阻,应考虑 SOT‑223、TO‑126 等功率封装的高压 NPN;若仅需类似特性,可选择其他品牌的高耐压小信号 NPN,并比对 Vceo、Ic、Pd、hFE 与 fT 参数。

结语:A44‑TA 适合高耐压、低至中等电流的开关与小信号放大场合。设计时以功耗与热管理为重点,注意 Vebo 与饱和驱动条件。如需用于关键或高温环境,建议获取完整数据手册并与供应商确认分档与可靠性资料。

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