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Model Rocketry Learning Guide

A Beginner's Seven-Day Guide to Model Rocketry

An independent, educational companion built for Team 2026-INSPACe-ROCKETRY-059 and anyone learning the fundamentals of model rocketry — aerodynamics, structures, propulsion, avionics, recovery, telemetry, simulation, safety and launch readiness — organised around the published Workshop on Essentials of Model Rocketry for the IN-SPACe Model Rocketry / CAN-7USAT India Student Competition 2026–27.

24–30 August 2026GNEC IIT Roorkee, Greater Noida, UP18 lectures · 9 practicals

Independent educational companion. This page is prepared by EV Society / EV.ENGINEER from the publicly described workshop brochure and is not an official IN-SPACe, ISRO or Department of Space publication. It implies no endorsement, certification or partnership, and it never overrides the official rulebook, range instructions or manufacturer datasheets — see Source and disclaimer.

What You Will Learn

By the end of this guide, you should be able to

Identify the main parts of a model rocket and what each one does.
Explain the forces and flight phases involved in a model rocket's mission.
Explain why mass, stability, structure, propulsion, recovery, avionics and telemetry must be designed together as one system, not in isolation.
Understand what simulation and testing are for, and why a result needs to be verified before it is trusted.
Follow the safety, quality and launch-readiness processes used to prepare a rocket for flight.
Read and interpret flight data, and turn it into concrete improvement actions.
Use a shared, beginner-friendly vocabulary to participate meaningfully in every practical session of the workshop.
The Big Picture

How a model rocket mission works

Every rocket project follows the same overall mission sequence, and every flight passes through the same physical phases — long before any of the detailed engineering topics below come into play.

Mission sequence
1Mission definition2Design3Simulation4Build5Ground checks6Launch7Recovery8Post-flight analysis
Flight phases
1Safe setup2Ignition3Rail exit4Powered ascent5Burnout6Coast7Apogee8Drogue deployment9Main deployment10Landing11Safing
Rocket Anatomy

The parts of a model rocket

Every lecture in this guide refers back to these same parts — learn the names once, and the rest of the workshop becomes much easier to follow.

Model rocket anatomyNose conePayload / experiment sectionRecovery compartment (parachute bay)Avionics bayCouplers & bulkheads (section joints)FinsMotor & motor mountMotor retention
Top to bottom: nose cone, payload/experiment section, recovery compartment, avionics bay, couplers and bulkheads at each section joint, fins, motor and motor mount, and motor retention at the base. Small rail buttons on the side of the airframe engage the launch rail.
Section E

Seven-day learning path

One syllabus, seven calendar days. Each tab covers the brochure sessions for that day, what you should understand by the end of it, and a small workbook activity you can try yourself.

24 August 2026

Mission briefing

Understand why a workshop exists before any hardware is built, and where India's rocket-development story fits into that.

Inaugural Keynote
Brochure sessions covered
  • Inaugural keynote: "Journey of Indian Rockets Development"
  • Team roles, safety expectations and one authoritative source of truth for requirements
What you should understand by end of day
  • Rocket programmes progress through proven steps rather than single leaps.
  • Every team needs one shared, authoritative document for requirements and configuration — not several conflicting ones.
Beginner noteWorkbook activity: Write the mission objective in one sentence, and list three things that must work correctly for a safe mission.
Section F

Beginner tutorial modules

Every lecture and practical from the brochure, explained from first principles. Expand any topic — each one covers what it is, why it matters, key ideas, a memorable takeaway, and a question to check your own understanding.

Section G

Engineering workbook

Fifteen reusable, print-friendly worksheet templates. Fill in the blanks as your own design matures — every field name is shown, but no example values are filled in for you.

Mission objective
  • Mission objective (one sentence)
  • Primary success criteria
  • Key constraints
  • Prepared by / date
Requirements & assumptions
  • Requirement ID
  • Requirement text (source)
  • Assumption made
  • Verification method planned
Rocket subsystem map
  • Subsystem
  • What it does
  • Interfaces with
  • Owner
Mass-budget categories
  • Item / station
  • Estimated mass
  • Tolerance
  • Axial station
  • Configuration (loaded / burnout)
CG / CP observation record
  • Configuration
  • Measured or estimated CG
  • CP method used
  • Static-margin note
  • Reviewer / date
Motor selection inputs
  • Candidate motor
  • Data source (manufacturer datasheet)
  • Total impulse / burn time
  • Thrust-to-weight check
  • Interfaces / retention
  • Decision & reviewer
Avionics sensor plan
  • Function / sensor
  • Range / rate needed
  • Calibration input
  • Acceptance criterion
  • Result
Power-budget categories
  • Load / mode
  • Voltage
  • Average current
  • Peak current
  • Duration
  • Energy
  • Margin
Recovery-system decision record
  • Flight state
  • Descent device
  • Predicted rate (pending verification)
  • Test criterion
  • Result / evidence
Simulation input checklist
  • Model file / version
  • Geometry source
  • Mass / CG state
  • Motor-curve source
  • Atmosphere / wind
  • Result / plot reference
Test plan & acceptance criteria
  • Test name
  • Objective
  • Pass / fail criterion
  • Procedure reference
  • Result
Risk / hazard register
  • Hazard / failure mode
  • Cause
  • Effect
  • Controls
  • Verification
  • Owner / status
Launch-readiness checklist
  • Gate (mechanical / recovery / avionics / comms / mission-range)
  • Criterion
  • Evidence
  • Checker
  • Status / time
Post-flight prediction vs. observation
  • Metric / event
  • Predicted
  • Observed
  • Difference
  • Interpretation
  • Action
Lessons learned / improvement actions
  • What happened
  • What worked
  • What to change
  • Owner
  • Target date
Section H

Safety and quality gate

These principles apply across every module on this page. No team member may treat this page as authority to ignite or launch — the appointed range authority controls the operation.

Use certified commercial motors and authorised facilities only. This page does not provide propellant formulations, motor-manufacturing instructions, pyrotechnic recipes, or permission to perform energetic tests.

The workshop brochure and official rulebook are authoritative
This page is an independent educational companion. Wherever this page and the official competition rulebook, range instructions or a manufacturer datasheet appear to differ, the official source always governs.
No propellant, igniter or motor-manufacturing instructions
This page explains what motors and igniters do and how they are validated and quality-checked. It provides no propellant formulations, no manufacturing steps, and no instructions for building energetic devices.
Certified components and authorised facilities only
Motors, igniters and pyrotechnic recovery devices, where used, are certified commercial products, used and tested only at authorised facilities under competent supervision.
Range authority has final control
No launch, ignition or energetic test proceeds without the range authority's go/no-go decision. Team plans and schedules are always subordinate to range and safety control.
Verify every numeric limit officially
This page deliberately avoids stating specific numeric limits — static-margin ranges, rail-exit speeds, descent rates, or permitted radio frequencies. These must always be confirmed from the official rulebook, range instructions or applicable regulations before use.
Section I

Glossary

Quick reference for every technical term used on this page.

Apogee
The highest point of the flight trajectory.
Airframe / fuselage
The rocket's main body tube, which carries and protects internal subsystems.
Avionics
Onboard electronic systems that sense, decide, store and communicate during flight.
Burnout
The moment the motor completes its powered burn.
CG (Centre of Gravity)
The balance point of the current mass configuration.
CP (Centre of Pressure)
The effective location of aerodynamic force on the vehicle.
Cd (Drag coefficient)
A dimensionless value used with reference area and dynamic pressure to calculate drag.
ConOps
Concept of Operations — the intended mission sequence and team roles.
DAQ
Data Acquisition system, used to measure and record signals.
Drogue
A smaller parachute or device used for an initial, faster, stabilising descent before the main parachute deploys.
FMEA
Failure Modes and Effects Analysis — a structured review of failure modes, their effects and their controls.
HIL
Hardware-in-the-loop testing — connecting real hardware to simulated flight conditions.
Impulse
The integral of thrust over the motor's burn time — a measure of total "push" delivered.
IMU
Inertial Measurement Unit, typically combining accelerometers and gyroscopes.
Nose cone
The forward, shaped section of the rocket that reduces aerodynamic drag.
Payload
The instruments, experiment or cargo the rocket is designed to carry.
Recovery system
The parachute, streamer or other device that returns the rocket to the ground under control.
Static margin
The distance from CG to CP, divided by the body diameter — a standard way to express stability margin.
Telemetry
Remote measurement data transmitted from the rocket to a ground receiver.
Thrust
The forward-pushing force produced by the motor's accelerating exhaust.
Validation
Evidence that the system fulfils the intended mission need.
Verification
Evidence that a specified requirement has been met.
Section J

Source and disclaimer

This page is an independent educational aid prepared from the publicly described Workshop on Essentials of Model Rocketry for the IN-SPACe Model Rocketry / CAN-7USAT India Student Competition 2026–27, and from this site's own seven-day learning workbook. Names of organisations and programme identifiers are used only to describe context — no endorsement, certification, partnership or official status is implied. Where this page and an official source (the competition rulebook, range instructions, or a manufacturer datasheet) differ, the official source always governs.

Prepared by the EV Society / EV.ENGINEER technical team. Last reviewed: 17 August 2026.

Ready to Start Learning?

Work through the seven-day path, expand every tutorial module, and fill in the engineering workbook as your own rocket design matures.

Created by

Sudarshana Karkala

Model Rocketry Learning Guide — EV Society / EV.ENGINEER

Co-Founder, Principal Architect | Thasmai Infotech Private Limited

Sudarshana Karkala leads the EV Society / EV.ENGINEER engineering-education initiative, which spans EV battery systems, autonomous vehicles, and aerospace and space engineering. This beginner-friendly model rocketry guide extends that mission to the Space Initiative — an independent educational companion, not an official IN-SPACe or ISRO publication.

Available for strategic architectural consulting and advanced automotive R&D partnerships.