WMSIC Electronic Components

Littelfuse P4SMA33A

ModelP4SMA33A
PackageSMA(DO-214AC)
BrandLittelfuse
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 Date code within 2 years

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
Littelfuse P4SMA33A
Type
LITTELFUSE
Minimum package
5000

Technical parameters

Electronic Component
LITTELFUSE
Electronic Component
P4SMA33A
Electronic Component
1
Package
SMA(DO-214AC)
Electronic Component
Electronic Component
Type
TVS
Electronic Component
ESD and Surge Protection (TVS / ESD)
Electronic Component
0.09g
Electronic Component
1
Electronic Component
BM0264691599
Operating Temperature
65℃~+150℃
Voltage
45.7V
Electronic Component
IEC 61000-4-4;IEC 61000-4-2
Current(Ir)
1uA
Voltage(VBR)
31.4V
Electronic Component
5000

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

P4SMA33A 产品概述

P4SMA33A 是 Littelfuse(美国力特)出品的一款单向瞬态电压抑制器(TVS 二极管),封装为 SMA(DO-214AC),以高能量吸收能力和紧凑封装为特点,适用于工业、通信、电源与汽车电子等场合的瞬态浪涌与静电放电防护。该器件通过 IEC 61000-4-4(EFT)和 IEC 61000-4-2(ESD)标准认证,支持卷带(T/R)形式供货,便于自动贴装与大批量生产。

一、关键电气参数概览

  • 极性:单向(Uni‑Directional)
  • 反向截止电压 Vrwm:28.2 V
  • 击穿电压 VBR:31.4 V
  • 钳位电压(典型):45.7 V
  • 峰值脉冲电流 Ipp:9 A
  • 峰值脉冲功率 Ppp(10/1000 µs 或厂商定义脉冲规范):400 W
  • 反向漏电流 Ir:1 µA(常温)
  • 工作温度范围:-65 ℃ 至 +150 ℃
  • 封装:SMA(DO‑214AC),2 引脚
  • 防护等级:满足 IEC 61000-4-4 与 IEC 61000-4-2

以上参数体现了该器件在承受短时高能浪涌和静电脉冲时的稳健特性,适用于对导线或电源总线进行单向浪涌抑制。

二、主要特性与优势

  • 高脉冲吸收能力:400 W 的峰值脉冲功率能力结合 9 A 的峰值脉冲电流,使其能在短时间内吸收较大能量冲击,保护后端电路免受损害。
  • 低反向漏电:1 µA 的低泄漏电流减少了对待保护电路的静态影响,尤其适合精密模拟或低功耗系统。
  • 工作温度宽:-65 ℃ 至 +150 ℃ 的广泛温度范围,适应恶劣环境和工业级应用。
  • 可靠的静电与快速瞬态防护:满足 IEC 61000-4-2/4-4 标准,能够对抗常见的 ESD 与 EFT 干扰源。
  • 紧凑封装与自动化适配:SMA 封装在保持功率处理能力的同时体积小,支持自动贴片工艺(T/R)。

三、典型应用场景

  • 工业控制设备:保护 24 V / 28 V 控制总线、电源输入端免受浪涌冲击。
  • 通信接口与基站设备:抑制雷击感应或开关引起的瞬态脉冲,保护收发器与驱动器。
  • 电源模块与逆变器:位于电源输入端或敏感电源节点,防止外来脉冲导致损坏。
  • 汽车电子(非直接车身关键件需符合车辆规范时):对车载车外接口或电子模块的瞬变抑制(需结合车规认证要求)。
  • 消费类与办公设备:保护 USB、电源适配器或其他 I/O 端口免受静电放电。

四、设计与布局建议

  • 贴近保护点布局:将 P4SMA33A 尽可能靠近被保护的接口或电源输入端,减小寄生电感与回路面积,提升抑制效果。
  • 最短导线与宽焊盘:使用短且宽的走线将器件连接至接地平面或电源轨,以便有效散热与快速能量分流。
  • 结合限流与熔断元件:对于可能出现多次或高能量脉冲的场合,建议与保险丝、PTC 或限流电阻配合使用,以避免器件在极端条件下损坏影响系统安全。
  • 考虑热管理:长期或重复脉冲会引起器件温升,应评估脉冲频率与环境温度,必要时采用散热措施或选择更高能量等级的器件。
  • 焊接与存储:按制造商推荐的回流焊温度曲线进行焊接,避免超温;存储与使用过程中注意防潮防污染。

五、选型与注意事项

  • 选择依据:以反向截止电压 Vrwm 与系统工作电压为主,通常 Vrwm 应大于系统最大工作电压但留有合适裕量;本器件 Vrwm 为 28.2 V,适合 24 V / 28 V 级别电源保护。
  • 钳位电压考虑:钳位电压决定了被保护电路在脉冲时的最大承受电压,45.7 V 的钳位电压在大多数 28 V 系统中可提供有效保护,但需确认被保护器件的最高耐压。
  • 多次冲击能力:虽然 Ppp 能够吸收高峰值能量,但连续或高频率冲击会降低寿命,应根据实际脉冲工况评估是否需要更高能量等级产品或并联、后备保护方案。
  • 符合性与测试:对关键应用建议参考 Littelfuse 的完整数据手册与应用说明,进行系统级的 ESD/EFT 与浪涌测试验证。

P4SMA33A 以其紧凑封装、高能量吸收能力与工业级可靠性,适用于多种需要抗静电与抗浪涌保护的场合。根据系统电压、允许钳位电压与脉冲能量要求,合理布局与配套限流措施可确保最佳保护效果与长期稳定性。若需更详细的电气曲线、脉冲测试条件或封装尺寸,请参照 Littelfuse 官方数据手册。

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