The atmosphere extend from the Earth up to 10,000 km.
An atmosphere is the layers of gases surrounding a planet Earth. It's atmosphere is composed of about 78% nitrogen, 21% oxygen, and other gases.
Earth's atmosphere has five major layers. From lowest to highest, the layers are the troposphere, stratosphere, mesosphere, thermosphere and exosphere.
The exosphere is the topmost layer of Earth's atmosphere . It extends from the end of thermosphere, about 700 km above sea level, to about 10,000 km.
Thus, the atmosphere extend from the Earth up to 10,000 km.
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The exosphere is the outermost layer of Earth's atmosphere (i.e. the upper limit of the atmosphere). It extends from the exobase, which is located at the top of the thermosphere at an altitude of about 700 km above sea level, to about 10,000 km (6,200 mi; 33,000,000 ft) where it merges into the solar wind.
Answer:
Explanation:
In this problem we have three important moments; the instant in which the ball is released (1), the instant in which the ball starts to fly freely (2) and the instant in which has its maximum height (3). From the conservation of mechanical energy, the total energy in each moment has to be the same. In (1), it is only elastic potential energy; in (2) and (3) are both gravitational potential energy and kinetic energy. Writing this and substituting by known values, we obtain:
Since we only care about the velocity , we can keep only the second and third parts of the equation and solve:
So, the speed of the ball just after the launch is 17.3m/s.
F= k (m1m2/r^2)
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b. reduced by one-quarter.
c. increased by half.
d. increased by one-quarter.
Answer: Option (B) is the correct answer.
Explanation:
The radiation in which waves of electromagnetic field travel or propagate through the space and carries electromagnetic radient energy is known as electromagnetic radiation.
The relation between energy and frequency is as follows.
............ (1)
where, E = energy
h = plank's constant
= frequency
Therefore, the frequency of the emitted radiation is directly proportional to its energy.
Also, frequency is proportional to c over wavelength. The relation is as follows.
........ (2)
where, = frequency
c = speed of light
= wavelength
Placing the value of frequency from equation (2) to equation (1) as follows.
Thus, the wavelength of the emitted radiation is inversely proportional to its energy.