Power - Meaning, Unit, Formula, FAQs

Power - Meaning, Unit, Formula, FAQs

Vishal kumarUpdated on 02 Jul 2025, 04:33 PM IST

Power in physics refers to the amount of work done or energy transferred per unit of time. It is expressed in watts (W) and a watt is the equivalent of one joule per second. Power measures, how fast the energy is used or converted to another form. In electrical systems, for e.g. power = voltage x current (in a charge-neutral case, what this really tells you is how much electrical energy is being consumed, or being pumped, per unit of time. Power is important in running the various types of equipment and machines we use in everyday life. Generally, the higher the power rating, the more work a device can do in less time.

Power - Meaning, Unit, Formula, FAQs
Power

In this article, we are going to read about power and different types of power and also see some solved examples, which belong to the chapter work, energy, and Power, which is one of the important chapters in Class 11 physics. It is not only essential for board exams but also for competitive exams like the Joint Entrance Examination (JEE Main), National Eligibility Entrance Test (NEET), and other entrance exams such as SRMJEE, BITSAT, WBJEE, BCECE, and more. Over the last ten years of the JEE Main exam (from 2013 to 2023), more than fifteen questions have been asked on this concept. And for NEET almost six questions were asked from this concept.

Let's read this entire article to gain an in-depth understanding of the concept of power.

Define Power

Power is defined as the rate at which work is done or energy is transferred.

$M L^2 T^{-3}$

  • $M$: Stands for mass
  • $L$: Stands for length
  • $T$: Stands for time

Units - Watt or Joule/sec (in SI), Erg/sec (in CGS)

Average power

$$
P_{a v g}=\frac{\Delta W}{\Delta t}=\frac{\int_0^t P \cdot d t}{\int_0^t d t}
$$

$P_{\text {avg }}$ : Average power
$\Delta W$ : Change in work done
$\Delta t$ : Change in time
$P$: Power at a given time

The average power is computed over a time interval by taking the total work done divided by the total time taken.

Instantaneous Power:

$$
P=\frac{d W}{d t}=\vec{F} \cdot \vec{v}
$$

- P: Instantaneous power
- $\quad d W / d t$ : Rate of change of work
- $\vec{F}$ : Force vector
- $\vec{v}$ : Velocity vector

Instantaneous power is the dot product of the force applied and the velocity of the object. This represents the power being delivered at any specific moment in time.

Power and Kinetic Energy:

$$
P=\frac{d K}{d t}
$$

- P: Power
- $d K / d t$ : Rate of change of kinetic energy

Power can also be defined as the rate of change of kinetic energy, connecting work-energy principles to power.

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Solved Example Based on Power

Example 1: An engine of a car of mass m = 1000 Kg changes its velocity from 5 m/s to 25 m/s in 5 minutes. The power (in KW) of the engine is

1) 5

2) 2

3) 1

4) 4

Solution:

Calculate the change in kinetic energy $(\Delta K)$ :

$$
\begin{gathered}
\Delta K=\frac{1}{2} \cdot 1000 \cdot\left((25)^2-(5)^2\right) \\
\Delta K=\frac{1}{2} \cdot 1000 \cdot(625-25) \\
\Delta K=\frac{1}{2} \cdot 1000 \cdot 600=300,000 \mathrm{~J}
\end{gathered}
$$

Now, calculate the power:

$$
\begin{aligned}
P & =\frac{\Delta K}{\Delta t}=\frac{300,000}{300} \\
P & =1000 \mathrm{~W}=1 \mathrm{~kW}
\end{aligned}
$$

Final Answer: Hence, the power of the engine is 1 kW.
Correct Option: (3).

Example 2: A constant power-delivering machine has towed a box, which was initially at rest, along a horizontal straight line. The distance moved by the box in time 't' is proportional to :

1) t2/3
2) t
3) t3/2
4) t1/2

Solution:

Power delivered by the machine is constant:

$$
P=F \cdot V
$$

Substitute $F=m a$ and $a=\frac{d V}{d t}$ :

$$
P=m \cdot V \cdot \frac{d V}{d t}
$$

Given $P=C$ (constant):

$$
V \cdot \frac{d V}{d t}=\frac{C}{m}
$$

Integrate:

$$
\frac{V^2}{2}=\frac{C}{m} \cdot t \Longrightarrow V^2 \propto t \Longrightarrow V \propto t^{1 / 2}
$$

Since $V=\frac{d x}{d t}$ :

$$
\frac{d x}{d t} \propto t^{1 / 2}
$$

Integrate again:

$$
x \propto t^{3 / 2}
$$

Final Answer:
Correct Option: (3).

Example 3: Sand is being dropped from a stationary dropper at a rate of 0.5 kg−1 on a conveyor belt moving with a velocity of 5 ms−1. The power needed to keep the belt moving with the same velocity will be :

1) 1.25 W
2) 2.5 W
3) 6.25 W
4) 12.5 W

Solution:

The power needed to maintain the belt's motion is:

$$
P=\frac{d m}{d t} \cdot v^2
$$

Substitute the given values:

$$
\begin{gathered}
P=0.5 \cdot(5)^2 \\
P=0.5 \cdot 25=12.5 \mathrm{~W}
\end{gathered}
$$

Final Answer:
The power required is 12.5 W . Correct Option: (4).

Example 4: Sand is being dropped from a stationary dropper at a rate of $0.5 \mathrm{~kg}-1$ on a conveyor belt moving with a velocity of $5 \mathrm{~ms}-1$. The power needed to keep the belt moving with the same velocity will be:

1) 1.25 W
2) 2.5 W
3) 6.25 W
4) 12.5 W

Solution:

The power needed to keep the conveyor belt moving with the same velocity is given by:

$$
P=\frac{d m}{d t} \cdot v^2
$$


Substituting the values:
- $\frac{d m}{d t}=0.5 \mathrm{~kg} / \mathrm{s}$
- $v=5 \mathrm{~m} / \mathrm{s}$

$$
\begin{gathered}
P=(0.5) \cdot(5)^2 \\
P=0.5 \cdot 25=12.5 \mathrm{~W}
\end{gathered}
$$


Final Answer:
The power required is 12.5 W .
Correct Option: (4).

Frequently Asked Questions (FAQs)

Q: How does power relate to the concept of self-organization in complex systems?
A:
In complex systems, power is often related to the energy flow necessary for self-organization. Self-organizing systems can maintain their structure and function by continuously dissipating energy, which requires a steady power input. This concept is fundamental in understanding phenomena from biological systems to social networks and economic systems.
Q: What is the concept of power flow in quantum systems?
A:
Power flow in quantum systems refers to the rate of energy transfer in quantum processes. It's relevant in fields like quantum optics and quantum information, where understanding and controlling energy flow at the quantum level is crucial. This concept often involves phenomena like quantum coherence and entanglement.
Q: How does power relate to the concept of entropy in non-equilibrium thermodynamics?
A:
In non-equilibrium thermodynamics, power is related to entropy production rate. Systems far from equilibrium can maintain their state by continuously dissipating energy, which increases entropy in the surroundings. This concept is crucial in understanding complex systems like living organisms and certain chemical reactions.
Q: How does power relate to the concept of drag in fluid dynamics?
A:
In fluid dynamics, power is related to drag through the work done against the drag force. The power required to overcome drag is the product of the drag force and velocity. This relationship is crucial in understanding energy requirements in applications like vehicle design and aerodynamics.
Q: How does power relate to the concept of impulse in physics?
A:
Power and impulse are related through force and time. While impulse is the product of force and time (I = F × t), power is the rate of energy transfer. In situations where force is constant, power can be expressed as the impulse divided by time squared: P = I / t².
Q: What is the relationship between power and radiation in electromagnetic waves?
A:
In electromagnetic waves, power is related to radiation through the Poynting vector, which represents the power per unit area of the electromagnetic field. The magnitude of the Poynting vector gives the intensity of the radiation, which is a measure of power flux density.
Q: How does power output change with altitude in wind turbines?
A:
Wind turbine power output changes with altitude due to variations in air density and wind speed. At higher altitudes, air density decreases, which can reduce power output. However, wind speeds often increase with height, potentially offsetting this effect. The relationship is complex and depends on specific atmospheric conditions.
Q: What is the concept of power spectral density in signal processing?
A:
Power spectral density (PSD) in signal processing describes how the power of a signal is distributed across different frequencies. It's a useful tool for analyzing random processes and signals, helping to identify dominant frequency components and characterize noise in systems.
Q: How does power relate to the concept of resonance in physics?
A:
In resonant systems, power transfer is maximized at the resonant frequency. This is because at resonance, the system can absorb energy most efficiently from the driving force. Understanding this relationship is crucial in fields like acoustics, electrical engineering, and mechanical vibrations.
Q: What is the difference between active and reactive power in AC systems?
A:
Active power in AC systems is the power that does useful work and is measured in watts. Reactive power, measured in volt-amperes reactive (VAR), is the power that oscillates between the source and the load without doing useful work. The vector sum of active and reactive power is called apparent power.

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good afternoon,

Left Eye: 6/36 → qualifies as low vision

Right Eye: 6/6 → normal vision

Since your better eye is 6/6, you do not meet the benchmark disability criteria for visual impairment under current rules.

You can still consult a government ophthalmologist at a district hospital or medical board. They may assess:

Whether your condition is progressive or affects daily functioning

If any other disability criteria apply (e.g., binocular vision issues, neurological causes)

If your condition worsens or affects both eyes in future, you may become eligible for a temporary or permanent certificate.

If your left eye has 6/36 vision and your right eye has 6/6 (which is normal), then you may not get a PwD certificate.

According to the government rules, to get a PwD (Persons with Disabilities) certificate for eye problems, both eyes should have serious vision loss. If one eye is normal and only the other eye has low vision, you are usually not considered disabled.

To get a PwD certificate, a person must have 40% or more disability. This usually means both eyes should have very low vision or blindness.

But to be 100% sure, you should visit a government hospital or district medical board. They will check your eye condition and tell you if you are eligible for the certificate.

You can check more details here:
https://disabilityaffairs.gov.in

If you want to pursue M.Tech in Power Systems in Telangana, here are some of the best colleges:

  • IIT Hyderabad
  • JNTU Hyderabad
  • Osmania University, Hyderabad
  • VNR Vignana Jyothi Institute of Engineering and Technology
  • CBIT (Chaitanya Bharathi Institute of Technology)

Most of these accept GATE scores for admission. So prepare well for GATE to get into the best ones.

Thank you!

Both fields have specific scopes. Helicopter engineering falls under aeronautics and is highly specialized, with limited but premium job roles. Power Plant engineering (mechanical/electrical stream) offers broader opportunities in energy sectors and industrial plants. Choose based on your interest—aviation tech vs energy infrastructure—and long-term career goals.


Hello Saicharan,

Indeed, choosing Power Systems and Power Electronics at IIT Madras would be worthwhile due to the brand value of the institute, the faculty, and the interdisciplinary platform. While this program is typically associated with core electrical roles (PSU, R&D, power sector companies), IIT Madras would allow you flexibility if you were willing to select electives and projects in VLSI beyond the main area of study, particularly if you are trying to switch to a new discipline.

The average (PS/PE) package for IIT Madras is in the range of 12–18 LPA, depending on the candidate's skillset and internship/research profile. The opportunities could be some of the top companies in this sphere such as GE, Siemens, Schneider, Tata Power and various R&D wings of MNCs. If you are interested in VLSI and you are willing to put in the extra effort (projects, elective courses, internships), then IIT Madras will give you a better ecosystem to do so than NIT Rourkela because of its network, infrastructure, and placement diversity. Some students from other departments have landed VLSI jobs this way, but it requires significant preparation and initiative.