Answer: The correct answer is higher frequency.
Explanation:
Doppler's effect is defined as the apparent change in the frequency of an electromagnetic wave due to the relative motion of an observer and source.
In the given problem, a stationary police officer directs radio waves emitted by a radar gun at a vehicle moving toward the officer. In this case, there will be higher frequency.
If a stationary police officer directs radio waves emitted by a radar gun at a vehicle moving away the officer. In this case, there will be smaller frequency but will have a longer wavelength.
Therefore, the radio waves reflected from the vehicle and received by the radar gun have a higher frequency.
The emitted radio waves, the radio waves reflected from the vehicle and received by the radar gun have a higher wavelength.
A sudden change in the frequency due to the distance between the objects and source is explained by the doppler effect.
As the source and observer travel toward each other, the frequency of sound, light, or other waves increases or decreases.
The emitted radio waves, the radio waves reflected from the vehicle and received by the radar gun have a higher wavelength.
Hence option 4 is correct.
To learn more about the doppler effect refer to the link;
together and PROTONS move from one object to the other.
Answer:
true
Explanation:
yes because I said so
b. the light
c. the wave
d. the speed
b. Cardiac and smooth muscles are made of muscle fibers, nerves, and cartilage and are responsible for all movement in the body.
c. Smooth muscles, which are made of blood vessels, fibers, and nerves, allow for all activities that use slow-twitch muscle fibers.
d. Skeletal muscles, which are made of tendons, nerves, and fibers, line the body cavities and allow for support and movement.
A. Skeletal muscles, which are made of fibers, nerves, and blood vessels, contract in order to make the body move.
Answer:
A.
Skeletal muscles, which are made of fibers, nerves, and blood vessels, contract in order to make the body move.
Explanation:
Explanation:
i think a ball of lead with a diameter of 2.00 cm heavier
B. 1.2 m/s
C. 21.3 m/s
D. 12.8 m/s
The impact speed of the backpack is approximately 12.8 m/s.
To calculate the impact speed of the backpack, we can use the principle of conservation of energy. The potential energy of the backpack at the top of the window is converted into kinetic energy at the bottom. Assuming no air resistance, we can equate the potential energy to the kinetic energy:
mgh = 1/2mv^2
Here, m is the mass of the backpack, g is the acceleration due to gravity (9.8 m/s^2), and h is the height of the window (8.3 m). By rearranging the equation and solving for v, we can find the impact speed of the backpack.
Using the given values:
v = sqrt(2gh) = sqrt(2 * 9.8 * 8.3) ≈ 12.8 m/s
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