NEB Class 11 • Physics • Mechanics
Work, Energy & Power: NEB Class 11 Physics Guide
Use energy as a precise accounting method for motion, height, springs, friction and machines—while keeping work signs, system boundaries and units physically meaningful.
- Work as energy transfer, not force multiplied blindly
- Work–energy theorem and conservation methods compared
- Nepal-context examples, checks, practice and FAQs
Curriculum and source boundary
Why energy methods follow Dynamics
Dynamics tracks forces and acceleration step by step. Energy methods can connect initial and final states without requiring the detailed time history. Review Dynamics for force diagrams and Vectors for the dot product. The current CDC Physics Grade 11 page is the Nepal scope checkpoint.
The OpenStax work section, work–energy theorem reference, energy conservation section and power section support the concepts used here. International references deepen but do not replace current Nepal course requirements.
Energy transfer by force
Work, angle and sign
For a constant force F and displacement s with angle θ between them, W = Fs cos θ. Only the component of force parallel to displacement transfers energy through mechanical work. Work is positive when that component supports displacement, negative when it opposes displacement and zero when force is perpendicular or displacement is zero.
| Situation | Angle | Work sign | Meaning |
|---|---|---|---|
| Pull in direction of motion | 0° | Positive | Force transfers energy to motion/system |
| Friction opposite sliding | 180° | Negative | Mechanical energy transfers to thermal/internal forms |
| Normal force on horizontal path | 90° | Zero | No parallel displacement component |
| Holding a load stationary | No displacement | Zero mechanical work on load | Human metabolism may still use energy |
The joule is N m = kg m² s−2. Work is scalar even though force and displacement are vectors; it arises from their dot product. Do not assign a spatial direction to work.
For a variable force along x, work equals the signed area under the force–position graph over the interval. Area below the x-axis contributes negative work. This graph method generalizes the constant rectangle Fs.
Net work changes speed
Kinetic energy and the work–energy theorem
Kinetic energy is K = ½mv². It depends on speed magnitude, so it is scalar and non-negative. The net work done on a body equals its change in kinetic energy: Wnet = ΔK = ½mvf² − ½mvi².
Positive net work increases kinetic energy; negative net work decreases it. A force can do positive work while another does negative work. The theorem uses their total. It is often efficient when displacement and speeds are known but time is absent.
Quick theorem example
A 2 kg trolley speeds from 3 to 7 m s−1. Net work = ½×2×(7²−3²) = 40 J. This is net work from all external forces, not necessarily the work of one applied force.
Check: Speed increases, so ΔK and net work are positive.
Energy stored by configuration
Gravitational and elastic potential energy
Potential energy belongs to a system and depends on configuration. Near Earth’s surface, gravitational potential-energy change is ΔUg = mgΔh. Only the height difference matters within the uniform-field model; the zero level is chosen for convenience.
For an ideal spring following Hooke’s law, elastic potential energy relative to equilibrium is Us = ½kx². The displacement x is extension or compression from equilibrium, not total spring length. Both extension and compression give non-negative stored energy because x is squared.
For a conservative force, work equals negative change in potential energy: Wc = −ΔU. Gravity does positive work when an object descends and gravitational potential energy decreases. The OpenStax conservative and non-conservative forces section explains why conservative work depends on endpoints rather than path.
Choose the system boundary
Conservation of mechanical and total energy
If only conservative forces do work within the chosen system, mechanical energy K + U remains constant. If friction or another non-conservative interaction transfers energy, include its work or thermal/internal energy rather than claiming energy vanished.
This convention treats Wnc as work on the system. Other textbooks may arrange terms differently; define your convention. Energy conservation is broader than mechanical-energy conservation: total energy remains accounted for even when mechanical energy becomes thermal energy, sound or deformation.
- Choose the system: object alone, object–Earth or object–spring.
- Choose initial and final states plus a convenient potential-energy zero.
- List energy stores in each state.
- Include transfers across the boundary: external work or heating.
- Solve symbolically and check that energy units and signs balance.
How fast energy transfers
Power and efficiency
Average power is P = W/Δt or ΔE/Δt. Instantaneous mechanical power for a force on a moving point is P = F · v = Fv cos θ. The watt is joule per second. Power is not energy; two machines can do the same work while the more powerful one does it faster.
Efficiency compares useful output energy or power with total input: η = useful output / input. It is dimensionless and often expressed as a percentage. A real passive machine cannot have efficiency above 100%; an answer above one signals inconsistent inputs, outputs or units.
Worked examples
Work, energy and power in Nepal-relevant situations
Example 1: pulling a load
A 60 N force pulls a trolley 8.0 m at 30° above horizontal. Work by the pull is 60×8×cos30° ≈ 416 J. If the trolley has no vertical displacement, the upward force component does no work.
Example 2: lifting books upstairs
A 12 kg box rises vertically by 5.0 m. Increase in gravitational potential energy is mgΔh = 12×9.8×5 = 588 J. If lifted at constant speed, the lifter does approximately +588 J on the box–Earth system while gravity does −588 J on the box.
Example 3: braking work
A 900 kg vehicle slows from 20 to 10 m s−1. Net work = ½×900×(10²−20²) = −135,000 J. Negative work removes kinetic energy from the vehicle’s mechanical motion, largely transforming it into thermal energy.
Example 4: hydropower-style estimate
Water mass flow 50 kg s−1 descends 20 m. Ideal gravitational power is ṁgh = 50×9.8×20 = 9.8 kW. At 75% efficiency, useful output is 7.35 kW.
Check: Useful output is below available input power.
Choose the efficient model
A work–energy problem-solving method
- Sketch the initial and final states, displacement and relevant forces.
- Choose the system and a potential-energy zero.
- Decide whether direct work, work–energy or conservation is most efficient.
- Write the energy equation symbolically with signs.
- Substitute SI units and avoid premature rounding.
- Check sign, energy balance, limiting case and efficiency range.
Use the study guide for a learning plan and the practice set for mixed evidence.
Common traps
Mistakes that break the energy account
Using W = Fs without angle
Use the component parallel to displacement: Fs cosθ for a constant force.
Confusing one force with net work
The work–energy theorem uses the sum of work by all relevant forces.
Claiming friction destroys energy
Mechanical energy transfers to thermal/internal energy; total energy remains accounted for.
Power equals energy
Power is transfer rate. Keep watts, joules and time conversions distinct.
Try without notes
Practice and self-check
- Find work by a 25 N force over 6 m at 60° to displacement.
- A 3 kg object speeds from 2 to 8 m s−1. Find net work.
- Compare gravitational potential changes for two paths reaching the same height.
- Explain mechanical-energy change when friction acts.
- A machine does 12 kJ in 30 s. Find average power.
- Design two machines that do equal work with different power.
Frequently asked questions
Questions students ask about Work, Energy and Power
When is mechanical work zero?
Mechanical work is zero when displacement is zero or the force has no component along displacement, such as an ideal normal force on a horizontal path.
What does negative work mean?
Negative work means the force transfers energy opposite the displacement contribution, often reducing kinetic energy or transferring mechanical energy to other forms.
Is potential energy stored in one object?
Potential energy belongs to a system and its configuration, such as object–Earth or object–spring, not an isolated object alone.
When is mechanical energy conserved?
Mechanical energy K+U is conserved when only conservative forces transfer energy within the chosen system and no non-conservative transfer crosses the boundary.
What is the difference between power and energy?
Energy measures capacity or transfer; power measures how quickly energy is transferred or work is done.
Where can I get help with NEB Class 11 Work, Energy and Power?
For current online or physical tuition options, call 9846662070 and confirm schedule, class mode, teacher availability and fees.
References and next steps
Sources and related study guides
- CDC Nepal: Physics Grade 11
- OpenStax: Work
- OpenStax: Work–Energy Theorem
- OpenStax: Conservation of Energy
- OpenStax: Power
- PhET: Energy Skate Park Basics
Continue with the Class 11 Physics revision roadmap after completing the worked practice set. Academic scope and sources were checked on 2 August 2026; follow current CDC, NEB and college instructions if requirements change.
Ask about online or physical tuition
For focused Class 11 and Class 12 subject tuition, lesson clarification, worked-example practice and exam preparation, call 9846662070. Class mode, timetable, teacher availability and fees should be confirmed directly before enrolment.
Related Study Guides
- Dynamics Practice Set: NEB 11 Physics
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