what can accurately be said about a resultant wave that displays both reinforcement and interference?

Answers

Answer 1
Answer: As the frequency of the waves increases, a greater number of wavelengths pass a given point per second. From the wave formula, we see that there is an indirect relationship between frequency and the wavelength. thus, as the frequency increases the wavelength decreases resulting to a smaller distance between the waves which will show greater number of wavelengths between waves.

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Compared to time kept on Earth, there is a physical slowing of time when you travel at _____.a. everyday low speeds.
b. relativistic speeds.
c. both A and B
d. none of the above

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If the distance between you and another person is changing,
(you are in motion relative to each other, and it doesn't matter
how fast), and you both have clocks, then ...

-- you will say that your clock and your heartbeat are running normally
but his his clock and heartbeat are running slow;

-- he will say that his clock and his heartbeat are running normally
but your clock and heartbeat are running slow.

You'll both be correct.

How is a star color related to its temperature?

Answers

The color of a star is related to its temperature because a relatively cool star glows red as a very hot one glows bluish - white or even blue.

One uniform sphere of matter has a radius of 0.50 m and a mass of 65 kg. A second uniform sphere has a radius of 0.80 m and a mass of 87 kg. The surfaces of the spheres are 1.20 m apart, as measured on a line drawn between the centers of the spheres. What is the magnitude of the gravitational force that each sphere exerts on the other?

Answers

Answer:

6.04\cdot 10^(-8)N

Explanation:

The magnitude of the gravitational force between the two spheres is given by:

F=G(m_1 m_2)/(r^2)

where

G is the gravitational constant

m1 , m2 are the masses of the two spheres

r is the distance between the centres of the two spheres

Here we have:

m1 = 65 kg is the mass of the first sphere

m2 = 87 kg is the mass of the second sphere

the distance between the centres of the two spheres is equal to the sum of the radius of each sphere and the distance between the surfaces:

r = 0.50 m + 0.80 m + 1.20 m = 2.50 m

Substituting the numbers into the formula, we find:

F=(6.67\cdot 10^(-11) )((65 kg)(87 kg))/((2.50 m)^2)=6.04\cdot 10^(-8)N

Final answer:

To calculate the gravitational force between the two spheres, we use Newton's law of gravitation. Substituting the given values into the formula will give us the magnitude of the gravitational force.

Explanation:

To calculate the magnitude of the gravitational force between two spheres, we can use Newton's law of gravitation, which states that the force is equal to the gravitational constant (G) multiplied by the product of the masses of the spheres and divided by the square of the distance between their centers. In this case, the gravitational force exerted by the first sphere on the second sphere can be calculated as:

F = (G * m1 * m2) / r^2

Substituting the given values, we get:

F = (6.67 × 10-11 N·m2/kg2)(65 kg)(87 kg) / (1.2 m)2

Calculating this expression will give us the magnitude of the gravitational force. The force exerted by the second sphere on the first sphere will have the same magnitude.

Learn more about Gravitational force here:

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What is the difference between mass and weight

Answers

Mass is a property of an object.  It doesn't change, no matter where the object is.

Weight is the gravitational force between two objects.  It depends on the masses
of both objects, and also on the distance between their centers, so it changes,
depending on the mass of the OTHER object involved, and on the distance
between them.

What is the expression of the chemical composition of a compound

Answers

Element formula....

I do hope this helps you Darling

Answer: the correct answer is chemical formula .

Explanation:

Please help on this one?

Answers

The answer is C. Hope this helps.

The location you could place the north pole of the bar magnet so that it would be pulled toward the magnet in the illustration would be C. Have a great day! :)