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Chapter-Work, Energy, and Simple Machines Science Exploration class 9 in english Medium CBSE Notes


Last Updated : August 2, 2026

CBSE Class 9 Science Exploration Notes in English Medium based on latest NCERT syllabus, covering definitions, diagrams, formulas, and exam-oriented explanations.

Chapter-Work, Energy, and Simple Machines Science Exploration class 9 in english Medium CBSE Notes
Updated on: 02 August 2026

Work, Energy, and Simple Machines

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Chapter Review and Key Points

Chapter 7. Work, Energy, and Simple Machines

This chapter introduces the fundamental concepts of work, energy, power and simple machines. It explains how a force performs work, how work is related to energy, different forms of energy, the principle of conservation of energy, and the role of simple machines in reducing human effort. The chapter connects scientific concepts with everyday activities such as walking, lifting objects, riding a bicycle, using machines and operating tools. 

Chapter Review

Chapter Overview

  • Work – Work is done when a force causes an object to move in the direction of the applied force.
  • Energy – Energy is the capacity of an object or a system to do work.
  • Work-Energy Theorem – The work done on an object is equal to the change in its energy.
  • Mechanical Energy – Mechanical energy is the sum of kinetic energy and potential energy.
  • Kinetic Energy – Energy possessed by an object due to its motion.
  • Potential Energy – Energy possessed by an object due to its position or configuration.
  • Conservation of Mechanical Energy – In the absence of external losses, the total mechanical energy of a system remains constant.
  • Power – Power is the rate at which work is done.
  • Simple Machines – Devices that make work easier by changing the magnitude or direction of the applied force.
  • Efficiency of Machines – Efficiency compares the useful work obtained with the total work supplied.

Key Concepts of the Chapter

  • Scientific Meaning of Work – Work is done only when force produces displacement in its direction. 
  • Formula of Work – Work (W) = Force (F) × Displacement (s).
  • SI Unit of Work – Joule (J).
  • Positive Work – Work is positive when force and displacement act in the same direction.
  • Negative Work – Work is negative when force acts opposite to the displacement.
  • Zero Work – Work becomes zero if there is no displacement, no force, or when force acts perpendicular to displacement. 
  • Energy Transfer – Energy can be transferred through work, heat, radiation and electricity.
  • Forms of Energy – Mechanical, Thermal, Light, Sound, Electrical, Chemical and Nuclear Energy. 
  • Kinetic Energy Formula – K = ½mv².
  • Potential Energy Formula – U = mgh.
  • Mechanical Energy – Mechanical Energy = Kinetic Energy + Potential Energy.
  • Power Formula – Power = Work ÷ Time.
  • SI Unit of Power – Watt (W).
  • Mechanical Advantage – Ratio of load lifted to the effort applied.
  • Velocity Ratio – Ratio of distance moved by effort to the distance moved by load.
  • Efficiency – Efficiency = (Useful Work Output ÷ Work Input) × 100%.

Important Formulae

Physical Quantity Formula
Work W = F × s
Kinetic Energy K = ½mv²
Potential Energy U = mgh
Mechanical Energy ME = KE + PE
Power P = W / t
Efficiency (Useful Output Work ÷ Input Work) × 100%
Mechanical Advantage MA = Load / Effort
Velocity Ratio VR = Distance moved by Effort / Distance moved by Load

Important SI Units

Quantity SI Unit
Work Joule (J)
Energy Joule (J)
Power Watt (W)
Force Newton (N)
Displacement Metre (m)

Real-Life Applications

  • Lifting Objects – Work is done against gravity while lifting a load.
  • Moving Vehicles – Engines convert chemical energy into mechanical energy.
  • Hydroelectric Plants – Water stored at height possesses potential energy which is converted into electrical energy.
  • Sports – Running, jumping and throwing involve continuous conversion of energy.
  • Simple Machines – Levers, pulleys, wheel and axle, inclined planes and screws reduce human effort.
  • Daily Activities – Opening doors, cycling, climbing stairs and lifting school bags involve work and energy.

CBSE Competency Focus

  • Identify situations where work done is positive, negative or zero.
  • Apply work-energy theorem to solve numerical problems.
  • Calculate kinetic and potential energy using the correct formula.
  • Explain conservation of mechanical energy using real-life examples.
  • Compare different forms of energy and their transformations.
  • Analyse the working of simple machines in everyday life.
  • Solve competency-based questions involving efficiency and mechanical advantage.

Chapter at a Glance

Force → Work → Energy → Work-Energy Theorem → Forms of Energy → Mechanical Energy → Kinetic Energy → Potential Energy → Conservation of Mechanical Energy → Power → Simple Machines → Mechanical Advantage → Velocity Ratio → Efficiency

ATP Education Exam Booster

Remember the scientific conditions for work, distinguish between positive, negative and zero work, learn all important formulae with SI units, understand the relationship between work and energy, practise numerical problems on kinetic and potential energy, and master the concepts of power, mechanical advantage, velocity ratio and efficiency. These topics are highly important for CBSE competency-based, case-study and numerical questions.

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