WMSIC Electronic Components

ADI/LINEAR MAX662AESA+T MAX662AESA

ModelMAX662AESA+T
PackageSOP-8
BrandADI/LINEAR
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
ADI(Analog Devices) / LINEAR MAX662AESA+T
Type
ADI/LINEAR
Minimum package
2500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX662AESA+T
Electronic Component
1
Package
SOP-8
Electronic Component
Charge Pump
Electronic Component
0.11g
Electronic Component
1
Features
Low Power
Type
Electronic Component
Electronic Component
BM0258872553
Operating Temperature
40℃~+85℃
Operating Voltage
4.5V~5.5V
Electronic Component
76%
Static Current(Iq)
185uA
Electronic Component
Electronic Component

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

MAX662AESA+T 产品概述

MAX662AESA+T 是一款基于无电感电荷泵拓扑的升压固定稳压器,专为从 4.5V–5.5V 供电源(典型为 USB 或 5V 系统)生成稳定的 12V 输出而设计。器件采用 SOP-8 (NSOIC-8) 封装,适合空间受限且对导磁干扰敏感的应用场合。其低静态电流与良好的转换效率使其在需要长待机寿命或低功耗的便携设备中表现尤为突出。

一 基本功能与主要规格

  • 功能类型:升压 DC/DC 无电感电荷泵固定稳压器
  • 输入电压范围:4.5V ~ 5.5V
  • 输出电压:11.4V ~ 12.6V(标称 12V)
  • 输出电流:最大 30 mA
  • 静态电流(Iq):约 185 μA(待机/空载时)
  • 峰值转换效率:约 76%(典型)
  • 工作温度范围:-40 ℃ ~ +85 ℃
  • 封装:SOP-8(NSOIC-8)
  • 特性:低功耗待机、无电感设计、固定输出、易于外形集成

二 主要特点与优势

  • 无电感设计:采用电荷泵结构,无外置电感,显著降低 EMI 并简化物料清单(BOM),节省 PCB 空间与成本。
  • 低待机功耗:静态电流低至 185 μA,适合需要长时间待机或电池供电的系统。
  • 稳定 12V 输出:固定输出电压减少外部反馈网络与调试工作,适配需要精确 12V 偏压的小电流负载。
  • 良好能效:典型效率约 76%,在 30 mA 输出条件下可保持较低输入电流与热耗。

三 典型应用场景

  • 需要从 5V 升压至 12V 的微功率偏置电源:LCD/OLED 显示器偏置、驱动小型传感器或光源偏置。
  • 便携式与电池供电设备:便携式测试仪、手持设备、数据采集模块等需 12V 参考或偏置的场景。
  • 对 EMI 敏感的系统:医疗设备、精密仪器等不适合外置电感的场合。
  • 低功耗工业与通信模块:需要在休眠/待机时保持极低耗电的辅助电源。

四 典型性能与能耗估算

在 5V 输入、12V 输出、30 mA 负载条件下:

  • 输出功率 Pout = 12V × 0.03A = 0.36W
  • 以典型效率 76% 计,输入功率 Pin ≈ 0.36W / 0.76 ≈ 0.474W
  • 输入电流 Iin ≈ Pin / Vin ≈ 0.474W / 5V ≈ 94.8 mA
  • 加上静态电流 0.185 mA,可估算总输入电流约 95 mA(近似值)
    由此可见,在满载时器件会产生一定热量(约 0.474W – 0.36W = 0.114W 的损耗),应考虑 PCB 的散热与环境温度影响。

五 PCB 布局与外部元件建议

  • 电荷泵对外部电容器布局敏感:输入/输出旁的电容(尤其是泵电容)应尽量靠近芯片引脚并采用短、宽的走线,减小寄生阻抗与环路面积。
  • 推荐使用低 ESR 陶瓷电容以降低纹波并提升瞬态响应(常见选择范围 1 μF ~ 10 μF,具体根据负载纹波需求调整)。
  • 在输入端增加旁路电容防止供电线诱发振荡或瞬态降压。
  • 保持地线完整,采用地平面以提高散热与抑制噪声。对于高温工作环境,评估封装至 PCB 的散热能力并适当增加铜箔面积。

六 封装与订购信息

  • 封装:SOP-8(NSOIC-8),适合常规 SMT 贴装与波峰/回流焊工艺。
  • 订购后缀:“+T” 通常表示卷带包装(Tape & Reel),便于自动贴片生产线使用。
  • 器件隶属 ADI(Analog Devices)/Linear 系列,适配常规工业与商用温度等级。

七 设计注意事项与常见限制

  • 电荷泵拓扑适合中低功率输出,30 mA 的输出上限限制了其在高功率负载上的适用性。若负载电流超出此范围,应考虑带电感的同步升压转换器。
  • 在高温或靠近最大输出条件下需注意输出能力的热降额,必要时通过实验验证长期稳定性。
  • 对于对输出纹波或噪声极敏感的应用,可能需要额外滤波或后级线性稳压器以获得更干净的电源。

总结:MAX662AESA+T 以其无电感、低静态电流与固定 12V 输出的组合,适合从 5V 供电源生成小电流 12V 偏压的场景。合理的 PCB 布局与合适的外部电容选型能够进一步提升性能并保证系统稳定性。

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