infrared waves
ocean waves
radio waves
untraviolet waves
Since electromagnetic waves do not require a medium for their transmission, the electromagnetic waves are radio waves, ultraviolet waves and infrared waves.
Electromagnetic waves or radiations are waves which occur as a result of the interaction between the electric and magnetic fields.
Electromagnetic waves do not require a material medium for their transmission and as such can travel through a vacuum.
Some examples of electromagnetic waves are radio waves, ultraviolet waves, microwaves, infrared waves etc.
Therefore, the electromagnetic waves are radio waves, ultraviolet waves and infrared waves.
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Answer:
Explanation:
object distance u = 38.5 cm ( negative )
focal length f = 17.5 cm ( negative )
mirror formula
1 / v + 1 / u = 1 / f
1 / v - 1 / 38.5 = - 1 / 17.5
1 / v = - 1 / 17.5 + 1 / 38.5
= - 0 .03116
v = - 1 / .03116 = - 32 cm
Image will be formed in front of the mirror at 32 cm distance .
Answer:
2.8 cm
Explanation:
= Separation between two first order diffraction minima = 1.4 cm
D = Distance of screen = 1.2 m
m = Order
Fringe width is given by
Fringe width is also given by
For second order
Distance between two second order minima is given by
The distance between the two second order minima is 2.8 cm
Answer:
Explanation:
The force to which the object of mass m is attracted to a star of mass M while being at a distance r is:
Where is the gravitational constant.
Also, Newton's 2nd Law tells us that this object subject by that force will experiment an acceleration given by F=ma.
We have then:
Which means:
The object departs from rest () and travels a distance d, under an acceleration a, we can calculate its final velocity with the formula , which for our case will be:
We assume a constant on the vecinity of the surface because d=0.025m is nothing compared with . With our values then we have:
The acceleration of the particle is 38.87 kg.
The net magnetic field is calculated as follows;
The magnetic force on the charge is calculated as follows;
The acceleration of the particle is calculated as follows;
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Explanation:
It is given that,
Charge on the particle,
Mass of the particle,
Magnetic field component,
Net magnetic field,
Speed of the particle, v = 5 km/s = 5000 m/s
Angle between velocity and magnetic field,
Magnetic force is given by :
Acceleration of the particle is given by,
So, the acceleration of the particle is 38.6 m/s². Hence, this is the required solution.
The charge on the sphere A and sphere B after they are separated is each.
Further Explanation:
Given:
The number of electrons transferred to sphere is .
Concept:
The amount of charge carried by the electrons when reaches the spheres kept in contact with each other is first distributed equally on each sphere. Later as the spheres are moved away from one another, the charge on each sphere remains the same as it was when they were in contact.
The amount of charge on one electron is .
So, the amount of charge carried by the electrons is given as.
Since the charge is disturbed equally on the two sphere, so the amount of charge carried by each sphere s half of the total charge.
Thus, the amount of the charge carried by each sphere after separating from each other is .
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Answer Details:
Grade: College
Chapter: Electrostatics
Subject: Physics
Keywords: Metal spheres, two identical, in contact, neutral, charged, electrons, charge on electron, charge on metallic sphere, charge of sphere A.
The charge on the sphere A and sphere B after they are separated is each
Electric charge is the physical property of matter that causes it to experience a force when placed in an electromagnetic field.
The amount of charge carried by the electrons when reaches the spheres kept in contact with each other is first distributed equally on each sphere. Later as the spheres are moved away from one another, the charge on each sphere remains the same as it was when they were in contact.
The amount of charge on one electron is
So, the amount of charge carried by the electrons is given as.
Since the charge is disturbed equally on the two sphere, so the amount of charge carried by each sphere s half of the total charge.
Thus, the amount of the charge carried by each sphere after separating from each other is
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