WMSIC Electronic Components

worldsemi WS2812B-4020 WS2812B

ModelWS2812B-4020
PackageSMD,4x2mm
BrandWORLDSEMI
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
worldsemi WS2812B-4020
Type
WORLDSEMI
Minimum package
2000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
WORLDSEMI
Electronic Component
WS2812B-4020
Electronic Component
1
Electronic Component
2mm
Package
SMD,4x2mm
Electronic Component
R:620nm~625nm;G:515nm~525nm;B:465nm~475nm
Electronic Component
RGB LED(Built-in IC)
Electronic Component
0.07g
Electronic Component
3.98mm
Electronic Component
1.7mm
Electronic Component
1
Features
Built-in positions; Integrated; Built-in positions
LED
B:200mcd~300mcd;R:300mcd~500mcd;G:600mcd~1000mcd
Electronic Component
BM0226042448
Operating Temperature
20℃~+70℃

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

WS2812B-4020 产品概述

WS2812B-4020 是 worldsemi 推出的集成驱动IC的全彩 RGB 发光二极管(SMD),封装尺寸约 4.0 × 2.0 mm。器件将 RGB 发光芯片与单线串行控制器集成在同一封装内,便于点阵式像素控制与高密度布局。该型号常用于可寻址像素灯条、灯箱、舞台灯效、背光与智能照明等需要单独控制每个像素颜色与亮度的场景。

一 基本电学与光学参数

  • 工作电压:典型 5.0 V(推荐在 4.5–5.5 V 范围内使用以保证稳定性)。
  • 驱动方式:内置单线串行驱动 IC,串行级联控制(DIN/DOUT)。
  • 数据速率:标准 800 kbps 单线协议(WS2812B 兼容时序,数据格式 GRB)。
  • 发光波长(典型峰值范围):
    • 红色 (R):620–625 nm
    • 绿色 (G):515–525 nm
    • 蓝色 (B):465–475 nm
  • 灯珠电流:单色工作时典型约 18–20 mA(每通道最大约 20 mA);三色全亮(白光)时典型总电流约 55–60 mA(取决于亮度设置)。
  • 功耗:全白时约 0.3 W/颗(5 V × ≈60 mA),实际功耗随亮度与色彩混合而变化。

二 控制接口与时序要点

  • 引脚分配:电源 (VDD)、地 (GND)、数据输入 (DIN)、数据输出 (DOUT)(具体封装引脚请参考厂方封装图)。
  • 数据格式:每个像素 24 bit(8 bit 顺序通常为 G、R、B),最高位先行。
  • 时序(典型值,应参照产品数据手册作为最终依据):
    • 逻辑“0”:T0H ≈ 0.4 μs,T0L ≈ 0.85 μs
    • 逻辑“1”:T1H ≈ 0.8 μs,T1L ≈ 0.45 μs
    • 硬复位:数据线低电平保持 > 50 μs 用于帧间复位
  • 电平兼容:逻辑高电平阈值依 VDD 而定,通常建议 MCU 输出电平与 VDD 匹配;若 MCU 为 3.3 V,建议使用电平移位器以确保稳定触发。

三 PCB 设计与焊接建议

  • 推荐在每颗器件 VDD 与 GND 之间放置 0.1 μF 陶瓷去耦电容,靠近焊盘布局以降低电源抖动。
  • 电源走线与地平面尽量宽且短,串联多颗灯珠时建议在间距较长或电流集中的位置做电源补偿注入,避免电压下降导致色差。
  • 数据线建议在 DIN 前加入 200–470 Ω 串联电阻以抑制反射与地弹;若从 3.3 V MCU 驱动 5 V 器件,使用高速逻辑电平位移器。
  • 焊接工艺:遵循无铅回流焊标准(JEDEC)制程,注意回流峰值温度与保温时间,避免超温导致芯片损伤;回流前若为潮湿敏感器件,请按 SMD 湿敏等级进行预烘烤处理。

四 热管理与可靠性

  • 工作环境温度范围通常为 -40 ℃ 至 +85 ℃(具体以产品规格书为准);长时间高温环境下亮度与寿命会受影响。
  • 全白状态功耗较高,密集排列时需考虑 PCB 散热与间距以避免温升累积,必要时增加铜箔面积或散热层。
  • ESD 与突波保护:产品对静电敏感,装配与调试时建议采取 ESD 保护措施;在电源侧可并联滤波与瞬态抑制器提升系统抗干扰能力。

五 应用与布局建议

  • 适合高密度像素矩阵、自由形态灯条、可编程背光、可穿戴灯效及交互式照明场景。
  • 链接方式:按串行顺序连接 DIN→DOUT,设计 PCB 时考虑数据链方向与连线统一标识,便于工程调试与后期维护。
  • 电源分段供应:长串或大面积阵列应划分电源段,并在每段适当位置注入 VDD/GND,避免远端电压降导致颜色偏差。

六 设计注意事项与常见问题排查

  • 若出现闪烁或颜色异常,首先检查供电电压、去耦电容及地线连接是否稳固;其次检查数据时序与 MCU 驱动频率是否匹配。
  • 若以 3.3 V MCU 直接驱动 5 V 灯珠出现不稳定,优先考虑加电平转换或将 VDD 降至兼容范围(需确认器件允许)。
  • 在批量生产前务必做样品长期点亮与热循环测试,验证在目标应用条件下的可靠性与颜色一致性。

总结:WS2812B-4020 将发光与控制高度集成,体积小、易于级联与编程,适合要求高像素密度和灵活灯效控制的场合。设计时关注电源完整性、数据时序与热管理,即可获得稳定且色彩一致的显示效果。若需更精确的电气极限值、引脚图或回流曲线,请参照 worldsemi 官方数据手册与封装图纸。

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