WMSIC Electronic Components

GOODWORK 78L12

Model78L12
PackageSOT-89
BrandGOODWORK
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
GOODWORK 78L12
Type
GOODWORK
Minimum package
1000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
1.7V
Electronic Component
GOODWORK
Electronic Component
70uV
Electronic Component
78L12
Electronic Component
1
Package
SOT-89
Electronic Component
Linear Regulator(LDO)
Electronic Component
0.15g
Electronic Component
1
Electronic Component
BM0229305762
Operating Temperature
0℃~+125℃@(Tj)
Operating Voltage
35V
Output
Electronic Component
Output Voltage
12V
Output Current
100mA

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

78L12 产品概述 — GOODWORK(固得沃克) 线性稳压器

一、产品简介

78L12 是 GOODWORK(固得沃克)推出的一款固定输出线性稳压器(LDO),以正极固定 12V 输出为特征,采用 SOT-89 小封装,单通道设计,面向空间和成本受限的电源管理场景。该器件支持最高工作电压 35V,最大输出电流 100mA,集成了过流保护和热关断功能,适用于工业控制、仪表、通信终端及一般电子模块的局部稳压需求。

二、主要规格要点

  • 输出类型:固定 12V(正极输出)
  • 最大输入电压:35V(器件额定工作电压)
  • 最大输出电流:100mA
  • 压差(Dropout):典型 1.7V(在额定负载工况下)
  • 静态电流(Iq):6.5mA(静态偏置电流)
  • 电源纹波抑制比(PSRR):42dB @ 120Hz
  • 输出噪声:70µV(低噪声等级,利于模拟前端)
  • 保护功能:过流保护(OCP)、热关断(Thermal Shutdown)
  • 工作结温范围:0℃ ~ +125℃(Tj)
  • 封装形式:SOT-89,便于表贴组装与自动贴片

三、功能特点与优势

  • 稳定的固定 12V 输出,便于为中低功耗模块提供可靠电源。
  • 较高的最大输入电压(35V),适配较宽范围的输入源,如工业24V、汽车辅助电源(需注意瞬态)等(但应确保不超过器件绝对最大额定值并考虑浪涌抑制)。
  • 1.7V 的压差在 100mA 负载时表现中等,输入电压需保证至少 Vout + Vdrop(即约 13.7V)才能维持 12V 输出。
  • 42dB 的 PSRR(120Hz)对抑制交流电源纹波、开关噪声等有良好效果,70µV 的低输出噪声适合对噪声敏感的模拟电路或传感器前端。
  • 集成过流与热关断保护,提高系统可靠性并简化外围保护设计。

四、典型应用场景

  • 工业控制与自动化设备的传感器电源
  • 仪器仪表、小型数据采集模块的参考电源
  • 通信设备或嵌入式系统中对 12V 局部稳压需求的子系统
  • 需要小封装占板面积、对噪声有一定要求的低功耗电子模块

五、典型电路与布局建议

  • 常规外部元件:在输入端靠近器件布置 0.1µF 陶瓷去耦电容;在输出端使用 4.7µF~10µF 的低 ESR 电容(陶瓷或钽电容),以保证稳压器的稳定性与瞬态响应。输出电容类型与 ESR 对稳压器稳定性有影响,请在设计时参照器件应用笔记或实际评估。
  • 走线与接地:输入、输出与地线应尽量短且宽,地线尽量回流到单一接地点,避免噪声注入。
  • 散热布局:SOT-89 封装散热能力有限,建议在 PCB 上为引脚和器件底部布置较大铜面积(散热铜箔)和必要的多层散热过孔,以降低结温。若预计功耗较高,应进行热仿真或选择更大封装/外置散热方案。

六、功耗与热管理示例

功耗 Pd = (Vin − Vout) × Iout。举例:若 Vin = 24V,Vout = 12V,Iout = 100mA,则 Pd = 1.2W。SOT-89 在无额外散热措施下难以长期消散此类功率,应通过增大 PCB 铜面积或降低输入电压和/或负载电流来控制结温,避免触发热关断或缩短器件寿命。

七、可靠性与使用注意

  • 请严格遵守最大输入电压与结温评级,避免长时间在极限条件下工作。
  • 输出短路或过载时,器件的过流保护将限制电流并在必要时触发热关断,复位后可恢复工作,但频繁触发可能影响长期可靠性。
  • 焊接控制:在回流焊过程中请参考封装的温度曲线与制造商建议,避免过高的峰值回流温度或过长的加热时间。
  • ESD 与浪涌抑制:建议在系统级加入必要的 TVS 或限流方案,防止输入端瞬态击穿。

八、结论

GOODWORK 78L12 以其固定 12V 输出、35V 耐压、低噪声与良好纹波抑制、以及过流与热保护等特点,适合用于对稳定性和抗干扰有一定要求且功率不高的小型电源场合。设计时需注意 SOT-89 封装的散热限制与压差要求,合理选配输入输出电容并做好 PCB 散热与布局,即可获得可靠的长期性能表现。若系统存在较高功耗或更苛刻的热环境,建议评估更大封装或降压预处理以降低稳压器功耗。

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