Study the entries i | Aster Classes

Science Chapter 1 – Gravitation SSC, SCIENCE PART I, NEW SYLLABUS, FOR BOARD EXAM 2020,

Question 1:

Study the entries in the following table and rewrite them putting the connected items in a single row.

IIIIII
MASSm/s2Zero at the Centre
WEIGHTkgMeasure of inertia
ACCELARATION DUE TO GRAVITYNm2/kg2same in the entire universe
GRAVITATIONAL CONSTANTNDepends on the height

SOLUTION: –

IIIIII
MASSkgMeasure of inertia
WEIGHTNZero at the Centre
ACCELARATION DUE TO GRAVITYm/s2Depends on the height
GRAVITATIONAL CONSTANTNm2/kg2same in the entire universe

Question 2:

Answer the following questions.

a. What is the difference between mass and weight of an object. Will the mass and weight of an object on the earth be same as their values on Mars? Why?

ANSWER:

a. Difference between mass and weight of an object is as follows

MASSWEIGHT
Mass is the amount of matter contained in a body.Weight is the force exerted on a body due to the gravitational pull of another body such as Earth, the sun and the moon.
Mass is an intrinsic property of a body.
Weight is an extrinsic property of a body.
Mass is the measure of inertia. 

Weight is the measure of force.
The mass of a body remains the same everywhere in the universe.


The weight of a body depends on the local acceleration due to gravity where it is placed.
The mass of a body cannot be zero.The weight of a body can be zero.


The mass of an object on the Earth will be same as that on Mars but its weight on both the planets will be different. This is because the weight (W) of an object at a place depends on the acceleration due to gravity of that place i.e. 



b. What  are (i) free fall, (ii) acceleration due to gravity (iii) escape velocity (iv) centripetal force ?

ANSWER:

(i) A body is said to be under free fall when no other force except the force of gravity is acting on it.

(ii) The acceleration with which an object moves towards the Centre of Earth during its free fall is called acceleration due to gravity. It is denoted by the letter ‘g’. It is a constant for every object falling on Earth’s surface.

(iii) The minimum velocity required to project an object to escape from the Earth’s gravitational pull is known as escape velocity. It is given as:

(iv) The force required to keep an object under circular motion is known as centripetal force. This force always acts towards the centre of the circular path.

c.  Write the three laws given by Kepler. How did they help Newton to arrive at the inverse square law of gravity?

ANSWER:

Three laws given by Kepler is as follows:


First Law: The orbits of the planets are in the shape of ellipse, having the Sun at one focus.


Second Law: The area swept over per hour by the radius joining the Sun and the planet is the same in all parts of the planet’s orbit.

Third Law: The squares of the periodic times of the planets are proportional to the cubes of their mean distances from the Sun.Newton used Kepler’s third law of planetary motion to arrive at the inverse-square rule. He assumed that the orbits of the planets around the Sun are circular, and not elliptical, and so derived the inverse-square rule for gravitational force using the formula for centripetal force. This is given as:

where, m is the mass of the particle, r is the radius of the circular path of the particle and v is the velocity of the particle. Newton used this formula to determine the force acting on a planet revolving around the Sun. Since the mass m of a planet is constant, equation (i) can be written as:

Now, if the planet takes time T to complete one revolution around the Sun, then its velocity v is given as:

where, r is the radius of the circular orbit of the planet. Or, we can write it as, 

[as the factor 2π is a constant]

On squaring both sides of this equation, we get:

On multiplying and dividing the right-hand side of this relation by r, we get:

According to Kepler’s third law of planetary motion, the factor is constant , Hence, equation (vi) becomes:

On using equation (vii) in equation (ii), we get:

Hence, the gravitational force between the sun and a planet is inversely proportional to the square of the distance between them.

d. A stone thrown vertically upwards with an initial velocity u reaches a height ‘h’ before coming down. Show that the time taken to go up is the same as the time taken to come down.

For vertical upward motion of the stone:


S = hu = uv = 0a = -g
Let t be the time taken by the ball to reach height h. Thus, using second equation of motion, we have

For vertical downward motion of the stone:

S = hu = 0a = g

Let v’ be the velocity of the ball with which it hits the ground. Let t’ be the time taken by the ball to reach the ground. Thus, using the second equation of motion, we have

Hence, from (i) and (ii), we observe that the time taken by the stone to go up is the same as the time taken by it to come down.

e. If the value of g suddenly becomes twice its value, it will become two times more difficult to pull a heavy object along the floor. Why?

ANSWER:

Let the mass of the heavy object be m. Thus, the weight of the object or the pull of the floor on the object is

W = mg

Now, if g becomes twice, the weight of the object or the pull of the floor on the object also becomes twice i.e.

W’ = 2mg = 2W

Thus, because of the doubling of the pull on the object due to the floor, it will become two times more difficult to pull it along the floor.

Question 3:

Explain why the value of g is zero at the centre of the earth.

ANSWER:

At the centre of the Earth, the force due to the upper half of the Earth will cancel the force due to lower half. In the similar manner, force due to any portion of the Earth at the centre will be cancelled due to the portion opposite to it. Thus, the gravitational force at the centre on any body will be 0. Since, from Newton’s law, we know

F = mg Since, mass m of an object can never be 0. Therefore, when F = 0, g has to be 0. Thus, the value of g is zero at the centre of the Earth.

Question 4:

Let the period of revolution of a planet at a distance R from a star be T. Prove that if it was at a distance of 2R from the star, its period of revolution will be

Question 5:

Solve the following examples.


a. An object takes 5 s to reach the ground from a height of 5 m on a planet. What is the value of g on the planet?

b. The radius of planet A is half the radius of planet B. If the mass of A is MA, what must be the mass of B so that the value of g on B is half that of its value on A?

c. The mass and weight of an object on earth are 5 kg and 49 N respectively. What will be their values on the moon? Assume that the acceleration due to gravity on the moon is 1/6th of that on the earth.

d. An object thrown vertically upwards reaches a height of 500 m. What was its initial velocity? How long will the object take to come back to the earth? Assume g = 10 m/s

e. A ball falls off a table and reaches the ground in 1 s. Assuming g = 10 m/s2, calculate its speed on reaching the ground and the height of  the table.

f. The masses of the earth and moon are 6 × 1024 kg and 7.4 × 1022 kg, respectively. The distance between them is 3.8 × 105km. Calculate the gravitational force of attraction between the two? Use G = 6.7 × 10–11 N m2 kg–2

g. The mass of the earth is 6 × 1024 kg. The distance between the earth and the sun is 1.5 × 1011 m. If the gravitational force between the two is 3.5 × 1022 N, what us the mass of the sun? Use G = 6.7 × 10–11 N m2 kg–2

1st sum solution
2nd sum solution



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