You can use a 1:10000 resistor d


You can use a 1:10000 resistor divider to scale down 220V to 220mV. eeweb These devices provide a reset signal. Furthermore, with the control and power inputs tied together, this device can be used in single supply configuration and still offer a better. ZXCM210LF : Very Low Power Microprocessor Reset Devices. 8 Combination Products , , development tool and application topics. The output of the device includes a frequency proportional to the average active (real) power at the inputs as well as a simultaneous serial SPI interface to access the ADC channels and multiplier output data. 2 0 obj AGND. -0.6V to VDD +0.6V Storage to +150C Ambient temp. A IN OFF MODE, IN ON MODE) OUTPUT CURRENT 500 mA LOGIC-CONTROLLED ELECTRONIC SHUTDOWN OUTPUT VOLTAGES OF 12V INTERNAL CURRENT AND THERMAL LIMIT ONLY 2.2 F FOR STABILITY AVAILABLE 1% (AB) 2% (C) SELECTION 25 C SUPPLY VOLTAGE REJECTION:.

View and manage file attachments for this page. Click here to edit contents of this page. Get instant insight into any electronic component. UC2842AD : Off-Line Controllers. MICROCHIP MAKES NO REPRESENTATIONS OR WARRANTIES OF ANY KIND , , Application Maestro, CodeGuard, dsPICDEM, dsPICDEM.net, dsPICworks, dsSPEAK, ECAN, ECONOMONITOR, FanSense , "Low-Cost Shunt Power Meter using MCP3909 and PIC18F25K20" (DS01291) THE MICROCHIP WEB SITE Microchip , , application notes and sample programs, design resources, user's guides and hardware support documents, Abstract: MCP3424 MCP3428 MCAL MCP3425 SAMPLE CODE IN C MCP3426 Product Selector Guide TC7107 microchip MCP4728 TC1121 Tamper output pin for negative power indication Industrial Temperature Range: to +85C. G0 G1 HPF F1/SDI F0/CS NEG/SDO CH04 k REFIN/ OUT 2.4V Reference CH1+ CH1Clock Sub-system 16-bit Multi-level ADC HPF1 20 Active Power DTF conversion Stepper Motor Output Drive for Active Power HFOUT FOUT1 + PGA 16-bit Multi-level ADC HPF1 16 Serial Control And Output Buffers MCLR Dual Functionality Pin Control SPI Interface. The is a family of ultra-low power microprocessor (P) supervisory circuits used for monitoring battery, power-supply, and regulated system voltages. It offers a constant-frequency synchronous PWM controller with high accuracy regulation of input current, charge current, and voltage. on App note: Low-Cost Shunt Energy Meter using MCP3909 and PIC18F25K20, App note: Selecting the Optimum Voltage Reference. Supports IEC 62053 International Energy Metering Specification and legacy IEC 1036/ 61036/687 Specifications Digital waveform data access through SPI interface - 16-bit Dual ADC output data words - 20-bit Multiplier output data word Dual functionality pins support serial interface access and simultaneous Active Power Pulse Output Two 16-bit second order delta-sigma Analog-toDigital Converters (ADCs) with multi-bit DAC 81 dB SINAD (typ.) endstream <>stream

How do you measure Power using HFout in MCP3909? If you want to discuss contents of this page - this is the easiest way to do it. Visit www.microchip.com/training for class content and schedules , TC621 Note 1 Note 1 -40 to +85 +4.5 to +18 400 Requires external thermistor , compatible interface, 0.0625C temperature resolution 5-pin SOT-23A, 8-pin SOIC MCP98243 TC77 Note , +2.7 to +5.5 500 TCN75 0.5 2 -55 to +125 +2.7 to +5.5 2 1,000(1) Note 1, Abstract: No abstract text available Required fields are marked *. Disabled when F1, F0 (Note 5, Note 6) % FOUT (Note 2, Note 5) % FOUT F1, F0 (Note 3) % FOUT HPF = 1, Gain = 1 (Note 3), System Gain Error AC Power Supply Rejection (output frequency variation) DC Power Supply Rejection AC PSRR DC PSRR, Waveform Sampling A/D Converter Signal-toNoise and Distortion Ratio Bandwidth (Notch Frequency) Phase Delay Between Channels Note 1: SINAD 81, Applies to both channels, VIN = 0 dBFS 50 Hz (VIN = Full Scale) Applies to both channels, MCLK/256 HPF = 0 and < 1 MCLK period (Note 4, Note 6, Note 7). Multiplying the voltage and current, you'll get the instantaneous power. Valid from to 75 Hz. . ISL6236A : The ISL6236A dual step-down, switch-mode power-supply (SMPS) controller generates logic-supply voltages in battery-powered systems. <>stream Reset thresholds suitable for operation with a variety of supply voltages are available. Maximum Repetitive Reverse Voltage Average Rectified Forward Current,.375 " lead length = 100C Non-repetitive Peak Forward Surge Current 8.3 ms Single Half-Sine-Wave Storage Temperature Range Operating Junction Temperature *These ratings are limiting values above which the serviceability. AP5725 : Step-up DC/DC Converter The AP5725 is a step-up DC/DC converter specifically designed to drive white LEDs with a constant current. 1 MCLK period at 3.58 MHz is equivalent to less than <0.005 degrees or 60 Hz. XC6209Series : Input Voltage = 2.0-10V ;; Output Voltage = 0.9-6.0V ;; Max Output Current = 150mA ;; Accu Racy = 2% ;; Quiescent Current Typ. The MCP3909 incorporates two 16-bit delta-sigma ADCs with a progammable gain up to 16, which enable small shunt meter designs for measuring a wide range of Ib and Imax currents. %PDF-1.4 Symbol Visol 4) Top ,Tstg Conditions AC, 1min Operating / stor. mini project using PIC microcontroller with sources code, single phase control transformer yokohama, "power factor measurement" schematic PIC Microcontroller, single phase to three phase conversion in 3 phase, power factor calculation by pic microcontroller timer, zigbee to PIC microcontroller interfacing circuit. C compiler optimized architecture: Low-power, high-speed CMOS Flash technology The EV kit circuit includes the MAX1837EUT33 DC-DC converter, which is preset to regulate.

to 20A using the Fluke 6100A Electrical Power VDD..7.0V Digital inputs and outputs w.r.t. (Note 1, Note 4) % FOUT Frequency outputs only, does not Max apply to serial interface data. . Text: No file text available, 2009 - PIC microcontroller 3 phase energy meter, 2010 - "power factor measurement" schematic PIC Microcontroller, 2010 - power factor calculation by pic microcontroller timer, 2007 - PIC18f4550 assembly programming PWM. The MCP3909 is an energy measurement IC supporting the IEC 62053 international energy metering specification. Y Ki3=xyq:>4W{=BP#SSHIt>CB -x(Z7X>M|G{a]+ or on the Pulse Output. Notice: ARM and Cortex are the registered trademarks of ARM Limited in the EU and other countries. I will be pleasure if you contact me. Electrical Specifications: Unless otherwise indicated, all parameters apply at AVDD = DVDD to 5.5V, Internal VREF, HPF turned on (AC mode), AGND, DGND = 0V, MCLK = 3.58 MHz; to +85C. . View wiki source for this page without editing. A noload threshold block prevents any current creep measurements for the active power pulse outputs. See typical performance curves for higher frequencies and increased dynamic range. Channel1 (V1) is the voltage sense. Series connection of the LEDs provides identical LED currents resulting in uniform brightness and eliminates the need for ballast resistors. 0.1 Max Units Comment Active Power Measurement Accuracy % FOUT Channel 0 swings 1000:1 range, FOUT0, FOUT1 Frequency outputs only, does not apply to serial interface data. The device can drive 2~6 LEDs in series from a Li-Ion cell. LM317LBD : 100mA, Adjustable Output, Positive Voltage Regulator , Package: Soic, Pins=8. The LM104 series are precision voltage regulators which can be programmed by a single external resistor to supply any voltage from 40V down to zero while operating from a single unregulated supply They can also provide 0 01-percent regulation in circuits using a separate floating bias supply where the output voltage is limited only by the breakdown. The output waveform data is available at up to 14 kHz with 16-bit ADC output and 20-bit multiplier output data. Measurement results are visible on the LCD

These devices provide excellent circuit reliability and low cost by eliminating external. The meter was tested for a range of current from 0.1A It supplies a frequency output proportional to the average active real power, with simultaneous serial access to ADC channels and multiplier output data. This new very low dropout regulator is designed to power the next generation of advanced microprocessors. SKIIP802GH : Skiippack a SK Integrated Intelligent Power Pack Single Phase. Vclamp 36V Ishutdown 18A (typ.) High reliability.

MAX1837EVKIT : MAX1837EVKIT Evaluation Kit For The MAX1836/MAX1837. On-chip 2.5V regulator . Heres a low-cost single phase energy metering solution using Microchips MCP3909 metering ADC and PIC18F25K20 8-bit microcontroller. = 25A ;; Quiescent Current Standby = 0.1A ;; Dropout Voltage = 200mV @ 100mA (Vout=V) ;; Conditions = ;; Package = SOT-25 USP-6B SOT-89-5 ;; Note =.

The equation of frequency and power for FoutN and HFout is provided in equation 4-1 and equation 4-2 of the datasheet, respectively. Specified by characterization, not production tested. MCP3909 Metering ADC with synchronous sampling 8 Application Specific LDO Linear Regulators . Accuracy is measured with signal (660 mV) on Channel FOUT0, FOUT1 pulse outputs. Linear High-performance Current Mode Controller , Package: Soic, Pins=14. The AP5725 switches. LM304 : Adjustable. Notice: Stresses above those listed under "Maximum Ratings" may cause permanent damage to the device. tS$0cO }2x\p+R3[B50WUt'_i23.2^{TtpF~qs:k/tjI Q ZK{v Pd*:!/ to +6V VREF input w.r.t. The ZXCM209/210 are three terminal supervisory circuits used to monitor the power supplies in microprocessor and digital systems. %

IPS1031 : low-side intelligent power switches (IPS). Over temperature shutdown Over current shutdown Active clamp Low current & logic level input ESD protection Optimized Turn On/Off for EMI Diagnostic on the input current Product Summary Rds(on) 50m (max.)

5.5V tolerant input (digital pins only) Append content without editing the whole page source. BQ24170 : 1.6-MHz Synchronous Switch-Mode Li-Ion And Li-Polymer Stand-alone Battery Charger The bq24170/172 is highly integrated stand-alone Li-ion and Li-polymer switch-mode battery charger with two integrated N-channel power MOSFETs. Text: 1A and > LDO Linear Regulators. The SMPS2 output can be adjusted from 0V to 2.5V by setting REFIN2. View/set parent page (used for creating breadcrumbs and structured layout). Accuracy, Abstract: MCP3909 MICROCHIP CROSS TC4428 TC620 CROSS tc1047 cross reference TC1029 pt100 to92 46`n1e1$:~UgYl5[s`$cSKi1!r64u8]c$h1QaE@Y7bS&ur8-}|pi.#w\JN=lY:@2/bk|JwYmqu`Hox\&gW:`AWCY.r!^2-Z=]o9_Dh3^g!p]r__#H^n Q6jwk/(nCH^T@p+9=AODT*g*\0 -@lbk B,)66qv">ITFMR})N+%UI4K and PGA on current channel, and the low-cost high Percent of HFOUT output frequency variation; Includes external VREF = 100 mVRMS @ 50 Hz, = 100 mVRMS @ 50 Hz, AVDD @ 100 Hz. . Click here to toggle editing of individual sections of the page (if possible). Visit www .microchip .com/training for class , Note 1: These devices use an external temperature sensor. Does not include internal VREF. If you use PGA Gain (G) = 1, the maximum voltage on channel 0 should be 470mV based on the electrical specification. Rail-to-Rail Input/Output, 24LC128-I/MS : I2c Serial Eeprom Family Data Sheet, 24AA32A-E/P : 32K 1.8V I2c Smart Serial Eeprom, 93LC76ATI/PG : 8k/16k 2.5V Microwire Serial Eeprom. Text: , development tool and application topics. EKTeCl:ib68Bdg>>1"+~%q-To$bIm}z( tTgg=z~Ca'6ejX+$iSs(91d$[s'd] T.b9Fk D)f?2+ hvK{gpO5t;W. endobj Comment document.getElementById("comment").setAttribute( "id", "acd3bf834ddd49e1ba3168190f362c6e" );document.getElementById("f82a2318f9").setAttribute( "id", "comment" ); Save my name, email, and website in this browser for the next time I comment. For simplicity, let's say the sense resistor is 10m. AGND.. -0.6V to VDD +0.6V Analog input w.r.t. This is a stress rating only and functional operation of the device at those or any other conditions above those indicated in the operation listings of this specification is not implied. MAX6402BS__-T : Supervisory Circuits in 4-bump ( 2 X 2 ) Chip-scale Package. The MCP3909 device is an energy-metering IC designed to support the IEC 62053 international metering standard specification. . . Your email address will not be published. High surge current capacity. . pFg..x!Ie//|qDc]v?uo-&0t$&d1^{S01q'9iC2&6Q~,1y-W1WF5b!?3f"!N4SxT>-e-CtT8_ 1s.J{vko{|~RO tC+6iY]L*8|SZ^; k,4,?Fwg{-\vOf|v!L* [1g(VjI{xPDHH$fw designers who are interested in using Microchips If there's 1A current, the voltage on 10m should be 10mV which gives 10mV/A. Exposure to maximum rating conditions for extended periods may affect device reliability. Fout0, Fout1, and HFout are output frequencies proportional to the average output power. Negative Regulator (discontinued). The integrated on-chip voltage reference has an ultra-low temperature drift of 15 ppm per degree C. Energy Metering IC with SPI Interface and Active Power Pulse Output. . - Optional extended in, MCP6291-E/SN: : Op Amps The integrated on-chip voltage reference has an ultra-low temperature drift of 15 ppm per degree C.This accurate energy metering IC with high field reliability is available in the industry standard 24-lead SSOP pinout. Watch headings for an "edit" link when available. High current capability. DC PSRR: 500 mV Error applies down to 60 degree lead (PF = 0.5 capacitive) and 60 degree lag (PF = 0.5 inductive). This output waveform data is available to 14 kHz with 16-bit ADC output and 20-bit multiplier output words. Thus, 10A would be 100mV. Very Low Drop Voltage Regulator With Inhibit. Accuracy of the total , resolution Note 1: TCN75 idle current is 250 mA. To achieve very low dropout, the internal pass transistor is powered separately from the control circuitry. , application meets with your specifications. Parameter Active Energy Measurement Error Sym E Min Typ. 3 0 obj Measurement error = (Energy Measured By Device - True Energy)/True Energy * 100%.

with power to +125C Soldering temperature of leads (10 seconds). +300C ESD on the analog inputs (HBM,MM)..4.0 kV, 400V ESD on all other pins (HBM,MM)4.0 kV, 400V, Electrical Specifications: Unless otherwise indicated, all parameters apply at AVDD = DVDD to 5.5V, Internal VREF, HPF turned on (AC mode), AGND, DGND = 0V, MCLK = 3.58 MHz; to +85C. You can also subscribe without commenting. App note can be found here. The 16-bit, delta-sigma ADCs allow for a wide range of IB and IMAX currents and/or small shunt (<200 Ohms) meter designs. The ISL6236A includes two pulse-width modulation (PWM) controllers, 5V/3.3V and 1.5V/1.05V. . Change the name (also URL address, possibly the category) of the page. They provide a high performance economical solution when used with 3V or lower powered circuits. 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L10, Step 3: Configure ADC, Event System, and EIC, Step 4: Configure PM, SUPC, NVMCTRL, LED and Wake-up Test Pins, Step 6: Add Application Code to the Project, Step 7: Build, Program, and Observe the Outputs, Step 1: Create Project and Configure the SAM C21, Step 1: Create Project and Configure the SAM D21, Step 2: Configure IC, USART, RTC, and DMA, Step 3: Configure AC, Event System, and EIC, Step 4: Configure PM and NVMCTRL PLIBs, and LED Pin, Step 2: Configure I2C, USART, RTC, and DMA, Step 1: Create Project and Configure the SAM E54, Step 4: Configure PM, SUPC and NVMCTRL PLIBs, and LED Pin, Step 1: Create Project and Configure the SAM E70, Step 1: Create Project and Configure the SAM L21, Step 2: Configure IC, USART, and RTC Peripheral Libraries, Step 3: Configure ADC, Event System, and EIC Peripheral Libraries, Step 4: Configure PM, SUPC, and NVMCTRL Peripheral Libraries, LED and Wake-up test pins, Step 1: Create Project and Configure the PIC32 MZ, Step 2: Configure TMR1, IC, 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TensorFlow Lite Micro (TFLM) and CMSIS NN Package, Step 7: Configure Harmony Core, NVMCTRL, EVSYS, Input System Service and GPIO Pins, Step 9: Add Application Code to the Project, Step 10: Build, Program, and Observe the Outputs, Audio-Tone Generation Using a Lookup Table, Audio-Tone Generation from a Text File Stored in an SD Card, SD Card Reader Support to Load Audio Files, Display Graphics Support to Select and Play Audio File, Step 1: Create a SAM L11 Secure and Non-secure Group Project, Step 5: Add Secure Application Code to the Project, Step 6: Add Non-secure Application Code to the Project, Step 1: Create Project and Configure the PIC32CM MC, Step 6: Add Microelectronica Routine Code to the Project, Step 7: Add Application Code to the Project, Step 8: Build, Program, and Observe the Outputs, Step 1: Create and Configure Harmony v3 Project, Step 2: Configure TIME System Service, IC, USB and ADC, Step 3: Configure Clocks, Pins and Application Tasks, Step 6: Build, Program, and 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(MLA), Overview of a typical Graphics Application's Software, Run Linux on Windows or Mac with a Virtual Machine, Flash a Bootable SD Card for the SAMA5D27-SOM1-EK1, Example: Switch Operation on a Local Network, Example: Simplified Local Network TCP/IP Communication, Example: Use Sockets to Create a TCP Connection, Local Network Server Obstacles and Solutions, Developing USB Applications with Microchip, Android BLE Development For BM70 / RN4870, Discovering BLE Device Services and Characteristics, Connecting a SAMR34 LoRaWAN End-Device to a LoRaWAN Network Server, Range Test Comparison between WLR089U module and SAMR34 chip-down XPRO, Provisioning LoRa End Device to Network Servers, Provisioning LoRaWAN Gateway to Network Servers, PIC16F18446 Curiosity Nano and QT7 Touch Board, PIC18F57Q43 Curiosity Nano and QT8 Touch Board, Visualize Touch Data using Data Visualizer, Configure Surface and Gesture MH3 Touch Project, Creating a Driven Shield Project with MHC, Introduction to QTouch Project Creation, Generate QTouch Surface & Gesture Project, Import Touch Project into IAR Embedded Workbench, Visualize Touch Debug Data using Data Visualizer, Guide to Configure Clock in Touch Project, Guide for Timer based Driven Shield on SAM Devices, Guide to Connect to Touch Surface Utility, Guide to Install Touch Sensor Plugin in Altium Designer, Guide to Use Touch Sensor Plugin in Altium Designer, Touchscreen Interface with maXTouch Studio Lite, MGC3130 - E-Field Based 3D Tracking and Gesture Controller, Introduction to QTouch Peripheral Touch Controller (PTC), Analyze Touch Data Using QTouch Analyzer, Adjusting the Detect Threshold of a QTouch Sensor, Changing the Detect Hysteresis of a QTouch Sensor, Overmodulation of a 3-phase FOC controlled Motor, MCP19111 Digitally Enhanced Power Converter, SMPS Design with the CIP Hybrid Power Starter Kit, Non-Synchronous Buck Converter Application, MCP16331 Step-Down (buck) DC-DC Converter, Buck Converter Design Analyzer Introduction, MCP16311/2 Design Analyzer Design Example, Buck Power Supply Graphical User Interface Introduction, Buck Power Supply GUI Hardware & Software Requirements, Digital Compensator Design Tool Introduction, Digital Compensator Design Tool Getting Started, Digital Compensator Design Tool Single Loop System, Digital Compensator Design Tool Peak Current Mode Control, Family Datasheets and Reference Manual Documents, Measurement of Temperature Related Quantities, Integrating the Edge Impulse Inferencing SDK, Installing the Trust Platform Design Suite v2, Installing the Trust Platform Design Suite v1, Asymmetric Authentication - Use Case Example, Symmetric Authentication - Use Case Example, Symmetric Authentication with Non-Secure MCU - Use Case Example, Secure Firmware Download - Use Case Example, Timer 1 Interrupt Using Function Pointers, Using an MCC Generated Interrupt Callback Function, EMG Signal Processing For Embedded Applications, Push-Up Counter Bluetooth Application Using EMG Signals, Controlling a Motorized Prosthetic Arm Using EMG Signals, Health Monitoring and Tracking System Using GSM/GPS, Digital I/O Project on AVR Xplained 328PB, Required Materials for PIC24F Example Projects, SAM D21 DFLL48M 48 MHz Initialization Example, SAM D21 SERCOM IC Slave Example Project, SAM D21 SERCOM SPI Master Example Project, An Overview of 32-bit SAM Microprocessor Development, MPLAB X IDE Support for 32-bit SAM Microprocessors, Debug an Application in SAM MPU DDRAM/SDRAM, Standalone Project for SAM MPU Applications, Debug an Application in SAM MPU QSPI Memory - Simple, Debug an Application in SAM MPU QSPI Memory - Complex, Using MPLAB Harmony v3 Projects with SAM MPUs, Microcontroller Design Recommendations for 8-Bit Devices, TMR0 Example Using MPLAB Code Configurator, TMR2 Example Using MPLAB Code Configurator, TMR4 Interrupt Example Using Callback Function, Analog to Digital Converter with Computation, ADC Setup for Internal Temperature Sensor, Introduction and Key Training Application, Finding Documentation and Turning on an LED, Updating PWM Duty Cycle Using a Millisecond Timer, Seeing PWM Waveforms on the Data Visualizer, Using Hardware Fast PWM Mode and Testing with Data Visualizer, Switching Between Programming and Power Options with Xplained Mini, Using the USART to Loopback From a Serial Terminal, Using an App Note to Implement IRQ-based USART Communications, Splitting Functions Into USART.h and .c Files, Using AVR MCU Libc's stdio to Send Formatted Strings, Updating PWM Duty Cycle from ADC Sensor Reading, Better Coding Practice for USART Send Using a Sendflag, Understanding USART TX Pin Activity Using the Data Visualizer, picoPower and Putting an Application to Sleep, Exporting Slave Information from the Master, Reading Flash Memory with Program Space Visibility (PSV), DFLL48M 48 MHz Initialization Example (GCC), 32KHz Oscillators Controller (OSC32KCTRL), Nested Vector Interrupt Controller (NVIC), Create Project with Default Configuration, Differences Between MCU and MPU Development, SAM-BA Host to Monitor Serial Communications, Analog Signal Conditioning: Circuit & Firmware Concerns, Introduction to Instrumentation Amplifiers, Instrumentation Amplifier: Analog Sensor Conditioning, Introduction to Operational Amplifiers: Comparators, Signal-to-Noise Ratio plus Distortion (SINAD), Total Harmonic Distortion and Noise (THD+N), MCP37D31-200 16-bit Piplelined ADC - Microchip, MCP4728 Quad Channel 12 bit Voltage Output DAC, MCP9600 Thermocouple EMF to Temperature Converter, MCP9601 Thermocouple EMF to Temperature Converter ICs, Remote Thermal Sensing Diode Selection Guide, Single Channel Digital Temperature Sensor, Step 4: Application-Specific Configuration, Step 5: Configure PAC193x Sample Application, Step 5: Include C Directories, Build and Program, Utility Metering Development Systems - Microchip, Utility Metering Reference Designs- Microchip, Energy Management Utility Software Introduction, Get Started with Energy Management Utility Software, How to Use Energy Management Utility Software, Energy Management Utility Software Chart Features, Troubleshooting Energy Management Utility Software, Digital Potentiometers Applications - Low Voltage, Static Configuration (UI Configuration Tool), Transparent UART Demo (Auto Pattern Tool), Integrating Microchip RTG4 Board with MathWorks FIL Workflow, Using maxView to configure and manage an Adaptec RAID or HBA, Data Monitor and Control Interface (DMCI), RTDM Applications Programming Interface (API), SAM E54 Event System with RTC, ADC, USART and DMA, MPLAB Device Blocks for Simulink Library content, USB Power Delivery Software Framework Evaluation Kit User's Guide, SecureIoT1702 Development Board User's Guide, Emulation Headers & Emulation Extension Paks, Optional Debug Header List - PIC12/16 Devices, Optional Debug Header List - PIC18 Devices, Optional Debug Header List - PIC24 Devices, 8-Bit Device Limitations - PIC10F/12F/16F, Multi-File Projects and Storage Class Specifiers, Create a new MPLAB Harmony v3 project using MCC [Detailed], Update and configure an existing MHC based MPLAB Harmony v3 project to MCC based project, Getting Started with Harmony v3 Peripheral Libraries, Peripheral Libraries with Low Power on SAM L10, Low Power Application with Harmony v3 Peripheral Libraries, Low Power Application with Harmony v3 using Peripheral Libraries, Drivers and System Services on SAM E70/S70/V70/V71, Drivers and FreeRTOS on SAM E70/S70/V70/V71, Drivers, Middleware and FreeRTOS on PIC32 MZ EF, Digit Recognition AI/ML Application on SAM E51, SD Card Audio Player/Reader Tutorial on PIC32 MZ EF, Arm TrustZone Getting Started Application on SAM L11 MCUs, Migrating ASF on SAM C21 to MPLAB Harmony on PIC32CM MC, Bluetooth Enabled Smart Appliance Control on PIC32CM MC, Part 2 - Add Application Code & Build the Application, Part 1 - Configure SDSPI Driver, File System, RTC Peripheral Library, Part 1 - Configure FreeRTOS, I2C Driver, SDSPI Driver, File System, Harmony Core, Lab 4 - Add HTTP Web Server to Visualize Data, Middleware (TCP/IP, USB, Graphics, ect), Projects (Creation, Organization, Settings), mTouch Capacitive Sensing Library Module, Atmel Studio QTouch Library Composer (Legacy Tool), Buck Power Supply Graphical User Interface (GUI), Advanced Communication Solutions for Lighting, AN2039 Four-Channel PIC16F1XXX Power Sequencer, Developing SAM MPU Applications with MPLAB X IDE, Universal Asynchronous Receiver Transceiver (USART), Getting Started with AVR Microcontrollers, Using AVR Microcontrollers with Atmel START, 16-bit PIC Microcontrollers and dsPIC DSCs, Nested Vectored Interrupt Controller (NVIC), Sigma-Delta Analog to Digital Converter (ADC), Measuring Power and Energy Consumption Using PAC1934 Monitor with Linux, Programming, Configuration and Evaluation, Channel0 (V0) is the current sense.