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
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产品型号:VK2C23A/B 产品品牌:VINKA/永嘉微/永嘉微电 封装形式:LQFP64/48 裸片:DICE(邦定COB)/COG(邦定玻璃用) 产品年份:新年份 联 系 人:许硕 原厂直销,工程服务,技术支持,价格最具优势!QT394 VK2C23A/B概述: VK2C23A/B是一个点阵式存储映射的LCD驱动器,可支持最大224点(56SEGx4COM)或者最大416点(52SEGx8COM)的LCD屏。单片机可通过I2C接口配置显示参数和读写显示数据,也可通过指令进入省电模式。其高抗干扰,低功耗的特性适用于水电气表以及工控仪表类产品。 特点: ★ 工作电压 2.4-5.5V ★ 内置32 kHz RC振荡器 ★ 偏置电压(BIAS)可配置为1/3、1/4 ★ COM周期(DUTY)可配置为1/4、1/8 ★ 内置显示RAM为56x4位、52x8位 ★ 帧频可配置为80Hz、160Hz ★ 省电模式(通过关显示和关振荡器进入)
标签: VK2C I2C LCD 23 抗干扰 高稳定 接口 控制 驱动IC
上传时间: 2022-04-16
上传用户:2937735731
AD软件常用USB micro,Type C接口的3D封装
标签: usb
上传时间: 2022-04-24
上传用户:XuVshu
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
j1939 附录a附录b
标签: j1939
上传时间: 2022-06-09
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描述了NTC使用B值计算出实际温度与输出的电压之间的关系。
标签: ntc计算
上传时间: 2022-06-15
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BC20-TE-B NB-Iot 评估板评估板原厂原理图V1.2。完整对应实物装置。
上传时间: 2022-06-17
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DescriptionThe IMX385LQR-C is a diagonal 8.35 mm (Type 1/2) CMOS active pixel type solid-state image sensor with a squarepixel array and 2.13 M effective pixels. This chip operates with analog 3.3 V, digital 1.2 V, and interface 1.8 V triplepower supply, and has low power consumption. High sensitivity, low dark current and no smear are achieved throughthe adoption of R, G and B primary color mosaic filters. This chip features an electronic shutter with variablecharge-integration time.(Applications: Surveillance cameras)
标签: CMOS传感器 IMX385LQR-C
上传时间: 2022-06-18
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sony CMOS传感器datasheet,IMX178LQJ-C_Data_SheetDescriptionThe IMX178LQJ-C is a diagonal 8.92 mm (Type 1/1.8) CMOS active pixel type image sensor with a square pixelarray and 6.44 M effective pixels. This chip operates with analog 2.9 V, digital 1.2 V and interface 1.8 V triple powersupply, and has low power consumption.High sensitivity, low dark current and no smear are achieved through the adoption of R, G and B primary colormosaic filters.This chip features an electronic shutter with variable charge-integration time.(Applications: Surveillance cameras, FA cameras, Industrial cameras)
标签: CMOS传感器 IMX178LQJ-C
上传时间: 2022-06-18
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第1章:介绍如何输出方波信号,使喇叭发出声音的方法,包括发出“哗”声的函数和分别传递一个、二个及三个白变量的“哗”声函数,以及利用定时器产生方波信号而令喇叭发出“哗”声,并叙述音阶与频率的关系,以此作为演奏音乐的基础。第2章:演奏音乐的程序由main()函数开始,将其所有函数定义在·个main.c的模块内,并分别以各种指令结构来循序渐进地介绍软件构建的思维与解决方法。第3章:以模块化的设计方式将单独的个main.c模块细分为main.c模块、initial.c模块、delay.c模块、music.c模块以及其对应的包括文件,可以使种序易于了解,节省开发时间。而且,用范例来说明各种应用方法,以使读者建立.整体思维,并进行有效的学习。第4章:详细介绍如何利用定时器钓中断方法来产生音阶的频率,并山1/)输出此方波信号而驱动喇叭发出正确的音阶。当连续产生各音符的音调频率时,则形成演奏音乐,并渐进式地说明什么样的设计方法是最好的。第5章:音符的形成有两个要素:音调及音长,当音调以定时器中断方法来生,音长是否也可以由定时器来产生呢?本章介绍如何利用timerO及timer]两个定时器中断方法来演奏音乐,并特别说明当音长计时中断时间太短时所造成的影响以及解决的方法。第6章:说明音乐中“移调”的概念,分别以查表法和计算法来举例说明D大调、降E大调、F大调、G大调、降A大调、降B大调。并以TACT开关的按键动作来阐述移调的功能,而以外部中断的方法来达到音乐演奏中实时移调的功能。第7章:介绍如何以按键开关来选曲,以“哗”声和LED闪烁方式作为选曲的提示动作,并以下列技巧来说明按键的处理方法:开关持续按着的重复动作、开关持续按着也动作一次、消除按键弹跳波的程序规划、持续按键以延时方式来继续执行动作,及持续按键以定时器计时方式来继续执行动作。同时,通过此方式来培养读者软件设计的能力并使读者养成慎密的思维方式。第8章:以9个按键开关分别代表1~9首的按键选曲,并介绍如何以l/O的方式、SCAN的方式以及ADC的方式来检测按键动作,以及当微电脑1/0不敷使用时的解决方法。更多相关内容已全部上传:8051单片机彻底研究-基础篇:http://dl.21ic.com/download/8051-330965.html 8051单片机彻底研究-经验篇:http://dl.21ic.com/download/8051-330966.html 8051单片机彻底研究-入门篇:http://dl.21ic.com/download/8051-330967.html 8051单片机彻底研究-实习篇:http://dl.21ic.com/download/8051-330969.html 8051单片机C语言软件设计的艺术:http://dl.21ic.com/download/8051-330970.html
上传时间: 2022-06-25
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