5V USB扁口接口TP4055锂离子电池充电接口板ALTIUM设计硬件原理图+PCB文件,2层B板手设计,大小为33*18mm,,可以做为你的学习设计参考。TP4055 是一款完整的单节锂离子电池充电器,带电池正负极反接保护,采用恒定 电流/恒定电压线性控制。其 SOT 封装与较少的外部元件数目使得 TP4055 成为便携式应 用的理想选择。TP4055 可以适合 USB 电源和适配器电源工作。 由于采用了内部 PMOSFET 架构,加上防倒充电路,所以不需要外部检测电阻器和 隔离二极管。热反馈可对充电电流进行自动调节,以便在大功率操作或高环境温度条件 下对芯片温度加以限制。充满电压固定于 4.2V,而充电电流可通过一个电阻器进行外部 设置。当电池达到 4.2V 之后,充电电流降至设定值 1/10,TP4055 将自动终止充电。 当输入电压(交流适配器或 USB 电源)被拿掉时,TP4055 自动进入一个低电流状 态,电池漏电流在 2uA 以下。TP4055 的其他特点包括充电电流监控器、欠压闭锁、自 动再充电和一个用于指示充电结束和输入电压接入的状态引脚。
上传时间: 2021-11-22
上传用户:trh505
随着光伏发电系统快速发展,以及电动汽车充电桩的普及,传统的剩余电流保护器无法满足实际需求。介绍了一款B型剩余电流保护器,采用磁调制剩余电流互感器和零序电流互感器采集剩余电流。根据GB/T 22794—2017标准要求,可识别1 kHz及以下的正弦交流、带和不带直流分量的脉动直流、平滑直流等剩余电流信号。经信号调理电路将电压信号送到单片机进行采集和判断。通过试验测试,该样机在测试精度和速度上均符合国家标准的相关要求。The rapid development of photovoltaic power generation systems and the popularity of electric vehicle charging piles make the traditional residual current protective devices unable to meet the actual demand.This paper proposed a type B residual current protective device,which uses the magnetically modulated residual current transformer and the zero sequence current transformer to acquire the residual current.According to the requirements of GB/T 22794—2017,the type B residual current protective device can detect sinusoidal AC residual current of 1kHz and below 1kHz,pulsating DC residual current with and without DC component,smooth DC residual current and so on.The signal processing circuit sends the voltage signal to the MCU for acquisition and judgment.Through experimental tests,the device meets the relevant requirements of national standards in terms of test accuracy and speed.
标签: 电流保护器
上传时间: 2022-03-27
上传用户:
STM32 F1系列 MCU ATIUM AD集成库 原理图库 PCB 3D封装库文件,STM32F1XXXXX全系列原理图+PCB封装库文件,共209个器件型号,CSV text has been written to file : STM32 F1.csvLibrary Component Count : 209Name Description----------------------------------------------------------------------------------------------------STM32F100C4T6B STM32 ARM-based 32-bit MCU Value Line with 16 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 48-Pin LQFP, TraySTM32F100C4T7B STM32 ARM-based 32-bit MCU Value Line with 16 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +105癈 Temperature, 48-Pin LQFP, TraySTM32F100C6T6B STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 48-Pin LQFP, TraySTM32F100C6T6BTR STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 48-Pin LQFP, Tape and ReelSTM32F100C6T7B STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +105癈 Temperature, 48-Pin LQFP, TraySTM32F100C8T6B STM32 ARM-based 32-bit MCU Value Line with 64 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 48-Pin LQFP, TraySTM32F100C8T6BTR STM32 ARM-based 32-bit MCU Value Line with 64 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 48-Pin LQFP, Tape and ReelSTM32F100CBT6B STM32 ARM-based 32-bit MCU Value Line with 128 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 48-Pin LQFP, TraySTM32F100CBT7B STM32 ARM-based 32-bit MCU Value Line with 128 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +105癈 Temperature, 48-Pin LQFP, TraySTM32F100R4H6B STM32 ARM-based 32-bit MCU Value Line with 16 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin TFBGA, TraySTM32F100R4T6B STM32 ARM-based 32-bit MCU Value Line with 16 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100R4T6BTR STM32 ARM-based 32-bit MCU Value Line with 16 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, Tape and ReelSTM32F100R6H6B STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin TFBGA, TraySTM32F100R6T6 STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100R6T6B STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100R6T6BTR STM32 ARM-based 32-bit MCU Value Line with 32 kB Flash, 4 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin TFBGA, Tape and ReelSTM32F100R8H6B STM32 ARM-based 32-bit MCU Value Line with 64 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin TFBGA, TraySTM32F100R8T6B STM32 ARM-based 32-bit MCU Value Line with 64 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100R8T6BTR STM32 ARM-based 32-bit MCU Value Line with 64 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, Tape and ReelSTM32F100RBH6B STM32 ARM-based 32-bit MCU Value Line with 128 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin TFBGA, TraySTM32F100RBH6BTR STM32 ARM-based 32-bit MCU Value Line with 128 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin TFBGA, Tape and ReelSTM32F100RBT6B STM32 ARM-based 32-bit MCU Value Line with 128 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100RBT6BTR STM32 ARM-based 32-bit MCU Value Line with 128 kB Flash, 8 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, Tape and ReelSTM32F100RCT6B STM32 ARM-based 32-bit MCU Value Line with 256 kB Flash, 24 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100RDT6 STM32 ARM-based 32-bit MCU Value Line with 384 kB Flash, 32 kB Internal RAM, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100RDT6B STM32 ARM-based 32-bit MCU Value Line with 384 kB Flash, 32 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100RET6 STM32 ARM-based 32-bit MCU Value Line with 512 kB Flash, 32 kB Internal RAM, -40 to +85癈 Temperature, 64-Pin LQFP, TraySTM32F100RET6B STM32 ARM-based 32-bit MCU Value Line with 512 kB Flash, 32 kB Internal RAM, Internal Code B, -40 to +85癈 Temperature, 64-
上传时间: 2022-04-30
上传用户:jiabin
21世纪大学新型参考教材系列 集成电路B 荒井
上传时间: 2013-04-15
上传用户:eeworm
家电维修(最基础的教程B)1-20.Torrent
上传时间: 2013-06-10
上传用户:eeworm
jk-b交通信号控制机原理图
上传时间: 2013-07-13
上传用户:eeworm
专辑类-实用电子技术专辑-385册-3.609G jk-b交通信号控制机原理图-1.3M.zip
上传时间: 2013-08-02
上传用户:zhf1234
专辑类-电子基础类专辑-153册-2.20G 21世纪大学新型参考教材系列-集成电路B-荒井-159页-2.8M.pdf
上传时间: 2013-05-16
上传用户:pkkkkp
三次B样条曲线源代码,C语言编写的三次B样条曲线源代码,希望大家喜欢。
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上传时间: 2013-07-13
上传用户:chengli008
便携式B型超声诊断仪具有无创伤、简便易行、相对价廉等优势,在临床中越来越得到广泛的应用。它将超声波技术、微电子技术、计算机技术、机械设计与制造及生物医学工程等技术融合在一起。开展该课题的研究对提高临床诊断能力和促进我国医疗事业的发展具有重要的意义。 便携式B型超声诊断仪由人机交互系统、探头、成像系统、显示系统构成。其基本工作过程是:首先人机交互系统接收到用户通过键盘或鼠标发出的命令,然后成像系统根据命令控制探头发射超声波,并对回波信号处理、合成图像,最后通过显示系统完成图像的显示。 成像系统作为便携式B型超声诊断仪的核心对图像质量有决定性影响,但以前研制的便携式B型超声诊断仪的成像系统在三个方面存在不足:第一、采用的是单片机控制步进电机,控制精度不高,导致成像系统采样不精确;第二、采用的数字扫描变换算法太粗糙,影响超声图像的分辨率;第三、它的CPU多采用的是51系列单片机,测量速度太慢,同时也不便于系统升级和扩展。 针对以上不足,提出了基于FPGA的B型超声成像系统解决方案,采用Altera公司的EP2C5Q208C8芯片实现了步进电机步距角的细分,使电机旋转更匀速,提高了采样精度;提出并采用DSTI-ULA算法(Uniform Ladder Algorithm based on Double Sample and Trilinear Interotation)在FPGA内实现数字扫描变换,提高了图像分辨率;人机交互系统采用S3C2410-AL作为CPU,改善了测量速度和系统的扩展性。 通过对系统硬件电路的设计、制作,软件的编写、调试,结果表明,本文所设计的便携式B型超声成像系统图像分辨率高、测量速度快、体积小、操作方便。本文所设计的便携式B型超声诊断仪可在野外作业和抢险(诸如地震、抗洪)中发挥作用,同时也可在乡村诊所中完成对相关疾病的诊断工作。
上传时间: 2013-05-18
上传用户:helmos