BROWSE BY BRANCH

Mechanical projects

Mechanisms, design and physical prototypes.

Four-Bar Linkage Grashof Mechanism Demonstration Rig — project thumbnail preview
Built to order

Four-Bar Linkage Grashof Mechanism Demonstration Rig

This project builds a motorized four-bar linkage demonstration rig that makes Grashof's criterion tangible: a 12 V geared DC...

Aluminium flat-bar fabrication Brass pivot-pin turning 12 V geared DC motor drive
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Geneva Mechanism Demo Rig with Geared Motor Drive — project thumbnail preview
Built to order

Geneva Mechanism Demo Rig with Geared Motor Drive

This project builds a working Geneva mechanism demo rig: a continuously rotating drive wheel with a single pin engages the sl...

4-slot Geneva star wheel Drive wheel with pin + locking arc Geared DC motor drive
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Geneva Mechanism Demonstration Model — project thumbnail preview
Built to order

Geneva Mechanism Demonstration Model

This project builds a working Geneva mechanism — the classic intermittent-motion device also called the Maltese cross — on a...

Mild-steel fabricated base plate 6-slot Geneva star wheel Drive crank wheel · hardened crank pin
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Gyroscope Demonstration Rig with Gimbal Mount — project thumbnail preview
Built to order

Gyroscope Demonstration Rig with Gimbal Mount

A gimbal-mounted gyroscope rig that makes gyroscopic effects visible: a balanced brass rotor spun up by a DC motor sits in a...

PWM speed controller Lathe-turned brass rotor Two-axis gimbal · bearings
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Hardness Testing Rig on the Brinell Principle with Lever Loading — project thumbnail preview
Built to order

Hardness Testing Rig on the Brinell Principle with Lever Loading

This project builds a working Brinell hardness testing rig: a lever arm multiplies slotted dead weights to press a hardened s...

Fabrication drawings Welded MS column · lever · base 10 mm hardened steel ball indenter
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Hexapod Walking Robot with Servo Control — project thumbnail preview
Built to order

Hexapod Walking Robot with Servo Control

A hexapod — a six-legged walking robot — is the classic platform for studying legged locomotion: stable, statically balanced,...

C/C++ firmware Arduino Mega 2560 HC-05 Bluetooth
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Hexapod Walking Robot with Servo Gait Control — project thumbnail preview
Built to order

Hexapod Walking Robot with Servo Gait Control

Six legs beat two when the ground gets uneven: a hexapod can keep three feet planted at all times (the tripod gait) and stay...

Arduino Mega 2560 Arduino IDE firmware HC-05 Bluetooth
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Hydraulic Arm Trainer using Syringe Actuators — project thumbnail preview
Built to order

Hydraulic Arm Trainer using Syringe Actuators

This project builds a hydraulic arm trainer: a four-axis articulated arm made of wood, where each joint is driven by a syring...

Syringe hydraulic actuators Transparent tubing + connectors Wooden linkage arms
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Hydraulic Brake Pressure Test Rig — project thumbnail preview
Built to order

Hydraulic Brake Pressure Test Rig

This project builds a bench rig that makes hydraulic braking measurable: a brake master cylinder driven by a pedal lever, ste...

Brake master cylinder + reservoir Pedal lever with force measurement Brake caliper + rotor disc
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Mechanical guides

All guides

Heat Treatment Basics for Students: Annealing, Quenching and Tempering

Heat treatment turns soft steel into hard tools or tough parts by controlling how steel is heated and cooled. This guide explains annealing, normalising, quenching and tempering for student workshops: the temperatures, the quenching media, how to judge temper colours, how to check hardness, and the safety rules that keep the process under control.

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PID Control Tuning: A Practical Guide

Your robot oscillates, overshoots, or never quite reaches the target — that is a PID tuning problem. This guide explains what the P, I, and D terms actually do, gives a hands-on tuning procedure (P, then D, then I), and covers loop timing, noise, and windup.

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Vibration Measurement Basics

Machines talk through vibration — this guide teaches you to listen with numbers: displacement/velocity/acceleration, sensor selection and mounting, FFT fault signature table (1×, 2×, BPFO, gear mesh), ISO 10816 severity zones, and a seeded-fault student project setup.

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Tolerance Stack-Up Explained

Every part in tolerance, yet the assembly doesn't fit — that's stack-up. This guide covers worst-case vs RSS analysis, tracing the tolerance loop, two worked examples, process capability tables, Monte Carlo, and design fixes (slots, fewer parts, shifted nominals).

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SolidWorks Basics for Students

SolidWorks punishes 2D drawing habits. This guide teaches the workflow that works: fully-defined sketches, model-like-you-manufacture feature order, Hole Wizard, stable assembly mates, workshop-ready drawings with datum dimensioning, and Pack-and-Go hygiene.

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Sheet Metal Bending Basics

Your flat pattern is wrong because bending stretches metal. This guide explains the neutral axis, K-factor selection, bend allowance with a worked U-bracket calculation, air bending vs bottoming, minimum flange length, grain direction, and realistic tolerances.

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Frequently Asked Questions

Do I get CAD files and drawings?

Yes — CAD models, 2D drawings and the bill of materials are standard deliverables for mechanical builds.

Is fabrication included?

Fabrication guidance and vendor-ready drawings are included. Physical fabrication can be quoted as an add-on depending on your city.

Are design calculations part of the report?

Yes. Load, torque, thermal or structural calculations relevant to the build are documented in the report.

Can the project include automation or electronics?

Yes — mechatronic builds with motor control (Arduino/PLC) are common. Mention it in your quotation request.

About Mechanical projects

Mechanical final-year projects are judged on whether the thing works as a physical system — motion, structure, and mechanism first, electronics second. Reviewers will look at your build, push it, and ask why you chose a particular linkage, material, or motor. A project with sound mechanical design and simple electronics will always outscore a weak mechanism dressed up with sensors. Get the mechanics right; everything else is support.

What Mechanical students usually build

Robotics and automation dominate, and for good reason: an Automated Pick and Place Robotic Arm using Arduino forces you to think about degrees of freedom, torque, gripper design, and repeatability — real mechanical problems. Mobile robots like the Line-Follower and Obstacle-Avoiding Robot teach chassis design, motor selection, and the trade-offs between speed and control. Assistive mechanisms are another strong family: a Voice-Controlled Smart Wheelchair is fundamentally a problem in drive systems, steering geometry, and safe load handling, with voice control as the interface layer. CNC and fabrication projects, such as the Mini CNC Plotter (Arduino), are excellent because they combine structural rigidity, motion control, and precision in one build — and precision problems are very visible to reviewers. Whatever you build, be ready to discuss materials, fasteners, tolerances, and why the mechanism is shaped the way it is. That discussion is the core of your viva.

Technologies and tools worth learning

CAD is foundational — model the mechanism before you cut anything, because redesigning in software is free and redesigning in metal is not. Learn the basics of stress and deflection reasoning for your key structural parts; you do not need full FEA for every bracket, but you should be able to justify why a member will not bend. For actuation, understand DC motors, stepper motors, and servos well enough to select by torque and speed rather than by what is cheapest online — an undersized motor is the most common mechanical failure in student robotics. Arduino-level control is usually sufficient for the electronics side; the intelligence of the project should live in the mechanism. Keep a build log with photos at every stage — it becomes invaluable when writing the report and when a reviewer asks how something was fabricated. How to Choose a Final-Year Project Topic can help if you are still weighing options against your workshop's capabilities.

Software vs hardware balance

Mechanical projects are hardware projects, full stop. Software appears as control logic — reading a sensor, driving a motor, sequencing an operation — and it should stay in that supporting role. Be cautious of projects where the "mechanical" part is a purchased chassis with all the engineering in the app; your department will grade the mechanism, and there has to be one. Fabrication quality matters enormously: clean cuts, proper alignment, secure fastening. A wobbly arm with great code still fails the demo, while a rigid, smooth mechanism with simple code passes and looks professional doing it. If your college workshop has limited machines, design around what is available — laser-cut acrylic and 3D-printed parts can produce excellent mechanisms when designed properly. Say what you fabricated versus what you sourced; honesty about that is expected and respected.

Choosing scope wisely

Mechanical builds consume time in fabrication and iteration — assume at least two full rebuild cycles of your key mechanism before it works properly, and schedule for that. Material and machining costs add up: finalize the design on paper or in CAD before spending, and keep the mechanism as simple as it can be while still demonstrating the idea. A team of three to four works well: design and CAD, fabrication and assembly, electronics and control, with everyone involved in testing. Start physical work early — unlike software, you cannot compress fabrication into the last two weeks. Test with real loads, not just no-load motion; a gripper that works empty and drops everything under weight will be found out in seconds. Document dimensions, materials, and test observations as you build — How to Write a Final-Year Project Report and What to Include in a Final-Year Project Presentation Deck will help you turn that record into a strong submission.

A note on how Projectech helps

Projectech builds these projects to order — mechanism, electronics, and documentation — with an explanation of the design and working so you can defend the mechanical decisions confidently. If your workshop has specific fabrication limits, the design can be planned around what you can actually build and maintain.

Have a different idea? Request a custom project