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IoT & Embedded projects

ESP32, Arduino and connected devices.

Smart Waste Segregation Bin using IoT — project thumbnail preview
Built to order

Smart Waste Segregation Bin using IoT

This project builds a smart waste bin that sorts trash by itself: an inductive proximity sensor detects metal, a capacitive s...

ESP32 DevKit Arduino firmware HC-SR04 ultrasonic sensors
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Smart Waste Segregator with Dry and Wet Sorting — project thumbnail preview
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Smart Waste Segregator with Dry and Wet Sorting

This project builds a working waste-segregation prototype that sorts incoming waste into dry and wet bins automatically. A ca...

Servo Motor Arduino Uno Arduino IDE
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Solar Panel Dual-Axis Sun Tracker using LDR and Servo Motors — project thumbnail preview
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Solar Panel Dual-Axis Sun Tracker using LDR and Servo Motors

This project builds a dual-axis solar tracker that keeps a small photovoltaic panel pointed at the sun through the day. Four...

16x2 LCD status display Arduino Uno Arduino IDE
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Solar Street Light Charge Controller with Dusk-to-Dawn Control — project thumbnail preview
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Solar Street Light Charge Controller with Dusk-to-Dawn Control

This project builds the electronics behind a solar street light: a PWM charge controller that manages a solar panel charging...

Arduino IDE 16x2 character LCD ATmega-class microcontroller
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Solar Water Heater with IoT Temperature Monitoring — project thumbnail preview
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Solar Water Heater with IoT Temperature Monitoring

This project builds a flat-plate solar water heater with IoT monitoring: a glazed collector box with a black absorber plate a...

ESP32 development board MQTT over Wi-Fi telemetry Flat-plate collector · copper coil
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Illustrative render of the Solar-Powered EV Charging Station Prototype with IoT Monitoring prototype.
Built to order

Solar-Powered EV Charging Station Prototype with IoT Monitoring

A working prototype of a solar-powered EV charging station: solar panel with MPPT charging, ESP32-based monitoring of voltage...

Solar Panel ESP32 IoT
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Solar-Powered Water Tank Level Monitor with Ultrasonic and Float Sensors — project thumbnail preview
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Solar-Powered Water Tank Level Monitor with Ultrasonic and Float Sensors

Tanks in remote spots are checked by walking to them — and a dry tank is discovered only when it matters. This monitor sits a...

ESP32 HC-SR04 ultrasonic sensor Float switch
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Tendon-Driven Robotic Hand with Flex Sensor Control — project thumbnail preview
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Tendon-Driven Robotic Hand with Flex Sensor Control

This project builds a tendon-driven robotic hand: a 3D-printed hand with five articulated fingers, where thin fishing-line te...

Arduino IDE 3D-printed hand + forearm housing 5x SG90 servos · tendon actuation
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ThingsBoard IoT Dashboard using ESP32 — project thumbnail preview
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ThingsBoard IoT Dashboard using ESP32

This project connects an ESP32 sensor node to ThingsBoard Community Edition, the open-source IoT platform over MQTT: the ESP3...

DHT22 temperature-humidity sensor ESP32 DevKit with PubSubClient MQTT ThingsBoard Community Edition
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IoT & Embedded guides

All guides

AI Agents on ESP32: Agentic IoT Final-Year Projects

An agentic IoT system observes, reasons, acts, remembers and explains. On ESP32 that means a split architecture: the chip senses and acts while a small local model (Ollama on your laptop) reasons over MQTT — a full LLM needs gigabytes of RAM the chip doesn't have. This guide covers three working patterns (host-reasoned agent, on-device tinyML on ESP32-S3, and a hybrid of both), plus Wi-Fi CSI presence sensing, parts and budget for India, code shapes, and honest limits to state in your report.

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CAN Bus Basics for Students: How ECUs Communicate

CAN bus is the shared network that lets dozens of controllers in a car, EV or robot communicate over two wires. This guide explains message IDs, arbitration, the physical layer, frame structure, error handling and CAN FD, then walks through building a working two-node bench network with an ESP32 and a transceiver.

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Drone Build: Parts Selection Guide

Picking drone parts that actually work together is a sizing problem, not a shopping problem. This guide walks the compatibility chain — frame to props to motors to ESCs to battery — with the thrust math, firmware choices, LiPo safety, and the bench-test order that prevents disasters.

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Zigbee vs Thread vs Matter Explained

Zigbee, Thread and Matter are not interchangeable. Learn what each one is (mesh standard vs IP networking layer vs interop application layer), how they stack together, which ESP32 variants support 802.15.4, and how to choose the right one for your smart-home project.

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Watchdog Timers Explained for Embedded Projects

Make deployed devices recover from hangs on their own: how watchdog timers work, the ESP32's task/interrupt/RTC watchdogs, feeding strategies that prove real progress, interaction with deep sleep, reset-cause logging, graceful degradation, and the mistakes behind mysterious resets.

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ThingsBoard Dashboard Setup Guide

Build a professional multi-device IoT system with ThingsBoard: device onboarding over MQTT, dashboards with charts and maps, rule chains for alarms and validation, deployment options, and an honest comparison with Node-RED and custom web apps.

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Frequently Asked Questions

Do I get the actual hardware or just the design?

You get everything needed to build it: firmware, wiring diagrams, component list with part numbers, and assembly guidance. Hardware can be procured through us or sourced locally.

Which microcontrollers do you work with?

ESP32, ESP8266, Arduino (Uno, Nano, Mega), Raspberry Pi and STM32, plus common sensors — DHT22, ultrasonic, PIR, soil moisture, current sensors and more.

Can the project connect to a mobile app or cloud dashboard?

Yes — many listings include Blynk, Firebase or MQTT dashboard integration. Custom app requirements can be quoted.

How long does a built-to-order IoT project take?

Typical delivery is 2–4 weeks depending on component availability and complexity. The exact timeline is confirmed in your quotation.

About IoT & Embedded projects

IoT and embedded projects are the most hands-on option for a final-year build. A typical project connects physical sensors and actuators to a microcontroller, moves the data over Wi-Fi to a cloud service, and shows it on a phone app or web dashboard. You end up learning a little of everything: electronics, firmware programming, networking, and basic backend work. That breadth is exactly why these projects are respected, but it is also why they take longer than they look on paper.

What IoT students usually build

The most common builds fall into a few families. Agriculture projects like IoT Smart Irrigation with Soil Moisture read soil moisture levels and switch a water pump automatically, sometimes with a manual override from the app. Surveillance and robotics builds like the ESP32-CAM Surveillance Robot stream video while moving on a small chassis. Access and automation projects like the RFID Smart Toll Collection System read RFID tags to simulate toll deduction and barrier control. City infrastructure ideas like IoT Smart Street Light with Auto Intensity dim LED street lights based on ambient light and motion, which is a neat demonstration of closed-loop control.

Almost all of these share the same skeleton: a microcontroller reads one or more sensors, decides what to do, drives an actuator like a relay or motor driver, and publishes readings to the cloud. If you understand that loop properly, you can adapt it to dozens of problem statements.

Technologies and tools worth learning

Three boards cover nearly every student project. The ESP32 is the workhorse: built-in Wi-Fi and Bluetooth, plenty of GPIO pins, low cost, and strong documentation. Arduino Uno or Nano is friendlier for beginners and perfectly fine when you do not need wireless connectivity. The Raspberry Pi is a small computer rather than a microcontroller, and it earns its place when you need a camera, image processing, or a local server. Our guide ESP32 vs Arduino vs Raspberry Pi: Which Is Best for Final-Year IoT Projects walks through this choice in detail.

On the sensing side, learn a handful of sensors properly rather than ten superficially: soil moisture, DHT22 for temperature and humidity, PIR for motion, ultrasonic for distance, and an LDR for light. The guide How to Choose the Right Sensor for Your IoT Project covers operating voltage, accuracy limits, and calibration, which are the things that actually cause demo-day failures. For communication, MQTT is the standard lightweight protocol for sensor data, while plain HTTP is fine for occasional updates. Two more guides, MQTT for Final-Year IoT Projects: A Practical Student Guide and How to Connect Your IoT Project to the Cloud (MQTT, HTTP, Firebase, Blynk), take you from a bare board to a working dashboard.

Hardware and software, in what proportion

Expect roughly half your time on hardware and half on software. Hardware means wiring on a breadboard or perfboard, a stable power supply, and a presentable enclosure. Plan the power design early: USB power banks sag under motor loads, and brownouts cause the exact kind of intermittent failure that is hardest to debug the night before a demo. Software means firmware in the Arduino IDE or PlatformIO, plus whatever app or dashboard displays the data.

The classic mistake is adding sensors faster than you can debug them. Get one sensor reading reliably, one actuator responding, and the cloud link stable before you add the second feature. A small working system always scores better than a large half-working one.

Choosing the right scope

Be honest about four things: timeline, budget, team size, and skills. Most teams have three to four months of real working time alongside other subjects. A single-ESP32 project with two or three sensors, a relay, and a Blynk dashboard fits that window comfortably. Adding a Raspberry Pi with camera processing roughly doubles the software work, so only take that on if someone on the team is comfortable with Linux and Python.

Component budgets for these builds are usually modest, but order parts early because shipping delays are the most common reason IoT projects slip. Teams of two to four work well: one person owns hardware and wiring, one owns firmware, one owns the app or dashboard, and everyone shares documentation. If nobody on the team has debugged a circuit before, keep the hardware simple and put the complexity in software, where mistakes are cheaper to fix.

A note on how Projectech works

Projectech builds final-year IoT and embedded projects to order, with the hardware assembled, firmware written, and the cloud dashboard configured for your specific topic. Every build comes with a clear explanation of how it works, so you can answer questions about your own project with confidence, along with report and presentation support for your submission.

Have a different idea? Request a custom project